WO2021222843A1 - Wireless power transmitters and associated base stations for transmitting power at extended separation distances - Google Patents

Wireless power transmitters and associated base stations for transmitting power at extended separation distances Download PDF

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Publication number
WO2021222843A1
WO2021222843A1 PCT/US2021/030315 US2021030315W WO2021222843A1 WO 2021222843 A1 WO2021222843 A1 WO 2021222843A1 US 2021030315 W US2021030315 W US 2021030315W WO 2021222843 A1 WO2021222843 A1 WO 2021222843A1
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WO
WIPO (PCT)
Prior art keywords
power
transmitter
coil
voltage
power transmitter
Prior art date
Application number
PCT/US2021/030315
Other languages
French (fr)
Inventor
Md. Nazmul Alam
Original Assignee
Nucurrent, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US16/863,703 external-priority patent/US20210344227A1/en
Priority claimed from US16/863,691 external-priority patent/US11482890B2/en
Priority claimed from US16/863,682 external-priority patent/US11239709B2/en
Priority claimed from US16/863,706 external-priority patent/US20210344228A1/en
Priority claimed from US16/863,698 external-priority patent/US11476722B2/en
Priority claimed from US16/863,710 external-priority patent/US11310934B2/en
Application filed by Nucurrent, Inc. filed Critical Nucurrent, Inc.
Priority to EP21797787.5A priority Critical patent/EP4143948A1/en
Priority to CN202180036348.4A priority patent/CN115699513A/en
Publication of WO2021222843A1 publication Critical patent/WO2021222843A1/en

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/34Special means for preventing or reducing unwanted electric or magnetic effects, e.g. no-load losses, reactive currents, harmonics, oscillations, leakage fields
    • H01F27/36Electric or magnetic shields or screens
    • H01F27/366Electric or magnetic shields or screens made of ferromagnetic material
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/2823Wires
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F38/00Adaptations of transformers or inductances for specific applications or functions
    • H01F38/14Inductive couplings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/10Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
    • H02J50/12Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling of the resonant type
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/70Circuit arrangements or systems for wireless supply or distribution of electric power involving the reduction of electric, magnetic or electromagnetic leakage fields
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J50/00Circuit arrangements or systems for wireless supply or distribution of electric power
    • H02J50/80Circuit arrangements or systems for wireless supply or distribution of electric power involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices
    • H04B5/43
    • H04B5/79

Definitions

  • the present disclosure generally relates to systems and methods for wireless transfer of electrical power and, more particularly, to wireless power transmitters for transmitting power at extended separation distances.
  • Wireless power transfer systems are used in a variety of applications for the wireless transfer of electrical energy, electrical power signals, electromagnetic energy, electrical data signals, among other known wirelessly transmittable signals. Such systems often use inductive wireless power transfer, which occurs when magnetic fields created by a transmitting element induce an electric field, and hence, an electric current, in a receiving element. These transmission and receiver elements will often take the form of coiled wires and/or antennas. [0003] Because some wireless power transfer systems are operable and/or most efficient in the near-field, some transmitters may be limited to having operability only at restrictively small gaps between the transmitter coil and the receiver coil.
  • typical wireless power transmitters under the Wireless Power Consortium’s QiTM standard may be limited to operability at a maximum coil-to-coil separation gap (which may be referred to herein as a “separation gap” or “gap”) of about 3 millimeters (mm) to about 5 mm.
  • the separation gap is sometimes known as the Z-height or Z-distance and is generally measured as the distance between the transmitter coil and receiver coil.
  • modern mobile devices may be used with cases, grip devices, and/or wallets, among other things, that can obstruct wireless power transmission to the mobile device and/or create a separation gap that disallows operability of wireless power transmission.
  • Legacy wireless power transmitter designs further may be incapable of desired commercial applications (e.g., through object chargers, under table chargers, infrastructure chargers, ruggedized computing device charging, among other things), due to the limitations in separation gap inherent to legacy, near-field wireless power transfer systems.
  • Increasing the separation gap, while keeping satisfactory performance e.g., thermal performance, transfer/charging speed, efficiency, etc.
  • wireless power transmitters and/or associated base stations are desired that are capable of delivering wireless power signals to a power receiver at a separation gap larger than the about 3 mm to about 5 mm separation gaps of legacy transmitters, so that such wireless power transmitters can be attached to the bottom of a surface and transmit to a receiver atop said surface.
  • Such wireless power transmitters are desired for use in vehicles.
  • wireless power transmitters at such larger gap distances may require and/or may be enhanced via more precision and/or granular power controls.
  • new systems, methods, and apparatus for mitigating such potential heating issues are desired.
  • the overall structure of the transmitter is configured in a way that allows the transmitter to transfer power at an operating frequency of about 87 kilohertz (kHz) to about 205 kHz and achieve the same and/or enhanced relative characteristics (e.g., rate of power transfer, speed of power transfer, power level, power level management, among other things) of power transfer as legacy transmitters that operated in that frequency range.
  • kHz kilohertz
  • a transmitter may be configured with a ferrite core that substantially surrounds the transmitter antenna on three sides. The only place that the ferrite core does not surround the transmitter antenna is on the top (e.g., in the direction of power transfer) and where the power lines connect to the transmitter antenna.
  • This overall structure of the transmitter allows for the combination of power transfer characteristics, power level characteristics, self-resonant frequency restraints, design requirements, adherence to standards bodies’ required characteristics, bill of materials (BOM) and/or form factor constraints, among other things, that allow for power transfer over larger separation gaps.
  • Transmission of one or more of electrical energy, electrical power, electromagnetic energy or electronic data signals from one of such coiled antennas to another generally, operates at an operating frequency and/or an operating frequency range.
  • the operating frequency may be selected for a variety of reasons, such as, but not limited to, power transfer characteristics, power level characteristics, self-resonant frequency restraints, design requirements, adherence to standards bodies’ required characteristics, bill of materials (BOM) and/or form factor constraints, among other things.
  • self- resonating frequency generally refers to the resonant frequency of an inductor due to the parasitic characteristics of the component.
  • a vehicle may be a machine that transports people and/or cargo.
  • exemplary vehicles include automobiles such as cars, trucks, buses, and other land vehicles.
  • Other examples of vehicles may include airplanes, boats, golf carts, small industrial vehicles, farming equipment, construction equipment, nautical vehicles, mixed use vehicles, recreational vehicles, sport vehicles, public transportation vehicles, and trains.
  • Vehicular power sources introduce challenges for designing wireless power transmitters, because the input power is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things, which may cause damage and/or disfunction in one or both of a power transmitter and the power source system, itself. To that end, a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry. Additionally or alternatively, electrical noise produced by a vehicular power source, even that of relatively low energy, can cause significant interruption to digital communications.
  • ESD electrostatic discharge
  • a vehicle in an embodiment, includes a vehicular power input regulator that is configured to receive input power and filter the input power to a filtered input power.
  • the vehicular power input regulator includes an input protection circuit, and a DC/DC voltage converter.
  • An inverter circuit receives the filtered input power and converting the filtered input power to a power signal. This power signal is provided to a high Z wireless charger.
  • power profiles may require more sophisticated and/or precision controls, compared to legacy wireless power transmitters. Such examples may involve higher power input to the wireless power transmitter and, thus, more expensive and/or complicated voltage regulation mechanisms may be required in the power conditioning system and/or amplifier design.
  • voltage regulation mechanisms may be removed from the wireless power transmitter and the wireless power transmitter may utilize control schemes, disclosed herein, to control the input power to the wireless power transmitter, via communications with an external input power source.
  • bill of materials BOM
  • the power transmitters utilizing said schemes, disclosed herein may have greater compatibility and/or performance when utilized with off-the-shelf power supplies (e.g., Universal Serial Bus (USB) power supplies,
  • USB Universal Serial Bus
  • Lightning power supplies Qualcomm Quick Charge devices, USB-C power supplies, USB- PD (USB Power Delivery) power supplies, Mini -USB power supplies, proprietary power supplies, input/outputs on electronic devices (e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power supply, a battery, a generator, among other things).
  • electronic devices e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power supply, a battery, a generator, among other things).
  • data either determined by a method or process or stored in a database, may be utilized to relate power output levels, via an operating point, with specific operating frequencies, within an operating frequency range of operation for the power transmitter.
  • granular control of power, voltage, and/or current levels may be achieved by dynamically altering the operating frequency, within the operating frequency range, to achieve a desired power level for output to the power receiver.
  • thermal mitigation should be utilized in new, higher separation gap wireless power transmitters.
  • the systems and apparatus described herein allow for such thermal mitigation, so that the large separation gap is achieved without doing damage to one or more of the power transmitter, the device to be powered and/or power receiver associated with said device, the surface to which the power transmitter is mounted, or combinations thereof.
  • the utilization of the power transmitters and/or transmitter antennas, disclosed herein, as part of a surface mountable power transmitter allow for greater modularity in transmitter placement, relative to the surface upon which the power transmitter is mounted. Further, in some examples, the extended separation distance achieved by the power transmitters, disclosed herein, may allow for usage of surface mountable power transmitters on thicker surface thicknesses and/or thicker materials for the surfaces, when compared with legacy surface-associated power transmitters.
  • a housing is provided that includes two or more airflow openings and/or channels configured for providing airflow to an electronic device when it is being powered and/or charged by the wireless power transmitters disclosed herein.
  • multiple cooling and/or airflow channels may be utilized in mitigating any thermal issues associated with wireless power transmission via the wireless power transmitter.
  • Such thermal issues may include, but are not limited to including, heating of the wireless power transmitter, heating of components of the wireless power transmitter, heating of a housing operatively associated with the wireless power transmitter, heating of a mobile device caused from wireless power transmission, heating of a mobile device caused by the mobile device, heating of an enclosure of a mobile device, heating of materials proximate to the systems, or any combinations thereof.
  • Such housings may allow for higher power wireless transmission, which may allow for faster wireless charging of a mobile device, when compared to legacy devices, while also maintaining a greater separation gap and/or Z-distance, in comparison to legacy wireless power transmitters.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal.
  • the power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face.
  • the power transmitter further includes a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
  • the coil has a thickness in a range of about 2 mm to about 3 mm.
  • the at least one layer comprises a first layer and a second layer.
  • the Litz wire is a bifilar Litz wire.
  • the first layer includes a first number of turns in a range of about 4 turns to about 5 turns
  • the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
  • the Litz wire has a diameter in a range of about 1 mm to about 1.5 mm and includes a plurality of strands, the plurality of strands including a number of strands in a range of about 80 strands to about 120 strands.
  • each of the plurality of strands has a diameter in a range of about 0.05 mm to about 0.1 mm.
  • a base station for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the base station includes an interface surface, a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal.
  • the base station further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face.
  • the base station further includes a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the interface surface is separated from the coil by an interface gap distance, the interface gap distance in a range of about 8 millimeters (mm) to about 10 mm.
  • the interface surface extends across substantially all of the top face of the coil.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • the base station further includes at least one user feedback mechanism configured for aiding a user in aligning a power receiver with an active area for wireless power transmission via the coil, the power receiver configured to acquire near field inductive power from the coil.
  • the at least one user feedback mechanism includes a marking on the interface surface to indicate the location of the active area.
  • the at least one user feedback mechanism includes a visual feedback display, this is configured to indicate proper alignment of the power receiver with the active area.
  • the at least one user feedback mechanism includes one or more of an audible feedback mechanism, a tactile feedback mechanism that is configured to indicated if the power receiver is in proper alignment with the active area or a tactile feedback mechanism that is configured to indicate if the power receiver is in proper alignment with the active area.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal.
  • the power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including a first layer and a second layer, each of the first layer and the second layer including a respective number of turns in a range of about 4 turns to about 5 turns.
  • the coil defines at least a top face and has an outer diameter length in an outer diameter length range of about 40 mm to about 50 mm, an inner diameter length in an inner diameter length range of about 15 mm to about 25 mm, and a thickness in a thickness range of about 2 mm to about 3 mm.
  • the power transmitter further includes an E-Core type shielding comprising a ferrite core and defining a cavity, the cavity configured with an E-Core configuration such that the ferrite core substantially surrounds all but the top face of the coil.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter.
  • the power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal.
  • the power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the input protection circuit includes an overvoltage protection circuit.
  • the input protection circuit includes an undervoltage protection circuit.
  • the input protection circuit includes an electrostatic discharge protection circuit.
  • the input protection circuit includes an electromagnetic interference mitigation circuit.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a shielding outer edge of the shielding extends about 4.5 mm to about 6.5 mm outward from a coil outer edge of the coil.
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm..
  • the coil has a thickness in a range of about 2 mm to about 3 mm.
  • the at least two layers includes a first layer and a second layer
  • the Litz wire is a bifilar Litz wire.
  • the first layer includes about 4.5 turns and wherein the second layer includes about 4.5 turns.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed.
  • the power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter.
  • the power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal.
  • the power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the input protection circuit includes an overvoltage protection circuit.
  • the input protection circuit includes an undervoltage protection circuit.
  • the input protection circuit includes an electrostatic discharge protection circuit.
  • the input protection circuit includes an electromagnetic interference mitigation circuit.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a shielding outer edge of the shielding extends about 4.5 mm to about 6.5 mm outward from a coil outer edge of the coil.
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
  • the coil has a thickness in a range of about 2 mm to about 3 mm.
  • the at least two layers includes a first layer and a second layer
  • the Litz wire is a bifilar Litz wire.
  • the first layer includes about 4.5 turns and wherein the second layer includes about 4.5 turns.
  • a base station for a wireless power transfer system at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed.
  • the base station includes a vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter.
  • the base station further includes an interface surface, a control and communications circuit, and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal.
  • the base station further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the input protection circuit includes an overvoltage protection circuit.
  • the input protection circuit includes an undervoltage protection circuit.
  • the input protection circuit includes an electrostatic discharge protection circuit.
  • the input protection circuit includes an electromagnetic interference mitigation circuit.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit, the input protection circuit including one or more of an overvoltage protection circuit, an undervoltage protection circuit, an electrostatic discharge protection circuit, an electromagnetic interference mitigation circuit, and any combinations thereof, and a DC/DC voltage converter.
  • the power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal.
  • the power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured with an E- Core configuration such that the ferrite core substantially surrounds all but the top face of the coil.
  • the coil has an outer diameter length in an outer diameter length range of about 40 mm to about 50 mm, an inner diameter length in an inner diameter length range of about 15 mm to about 25 mm, and a thickness in a thickness range of about 2 mm to about 3 mm.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes a control and communications unit configured to provide power control signals to control a power level of a power signal configured for transmission to a power receiver.
  • the power transmitter further includes an inverter circuit configured to receive a direct current (DC) power from a power supply external to the power transmitter and convert the input power to a power signal.
  • DC direct current
  • the power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • control and communications unit is further configured to receive power request signals from the power receiver and determine the power control signals based on the power request signals.
  • control and communications unit is configured to provide the power control signals to the power supply external to the power transmitter and the power supply is configured to configure an input DC power to generate the DC power supplied based on the power control signals and provide the DC power the inverter circuit.
  • the power supply includes a voltage regulator and a power supply controller configured to receive the power control signals, generate voltage regulation instructions for altering a DC voltage of the DC power, based on the power control signals, and provide the voltage regulation instructions to the voltage regulator to control the DC voltage of the DC power.
  • the voltage regulation instructions include voltage step up instructions or voltage step down instructions for the voltage regulator, the voltage step up instructions and voltage step down instructions having a step level, the step level being a change in voltage at which the voltage regulator is configured to step up or step down the DC voltage of the DC power.
  • the step level is in a range of about 10 millivolts (mV) to about 500 mV.
  • the step level is about 200 mV.
  • the power signal is an alternating current (AC) power signal having a root mean square voltage and the control and communications circuit is configured to generate a pulse width modulation signal for configuring an alternating current (AC) frequency for the power signal, at the operating frequency, the pulse width modulation signals modified by a duty cycle alteration, the duty cycle alteration configured to decrease the root means square voltage of the power signal.
  • AC alternating current
  • the control and communications circuit is configured to generate a pulse width modulation signal for configuring an alternating current (AC) frequency for the power signal, at the operating frequency, the pulse width modulation signals modified by a duty cycle alteration, the duty cycle alteration configured to decrease the root means square voltage of the power signal.
  • the output power has a root mean square voltage, the root means square voltage being less than the stepped up or stepped down DC voltage.
  • control and communications circuit is configured to generate a pulse width modulation signal for configuring an alternating current (AC) frequency for the power signals at the operating frequency, the pulse width modulation signals modified by a duty cycle alteration, the duty cycle alteration configured to alter an amount of power transmitted to the power receiver over a period of time.
  • AC alternating current
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes a control and communications unit configured to provide power control signals to a power supply external to the power transmitter for controlling a power level of a power signal configured for transmission to a power receiver, the power supply configured to configure a direct current (DC) power based on the power control signals.
  • the power transmitter further includes an inverter circuit configured to receive the DC power from the power supply external to the power transmitter and convert the input power to a power signal.
  • the power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face and shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
  • the at least one layer comprises a first layer and a second layer.
  • the first layer includes a first number of turns in a range of about 4 turns to about 5 turns
  • the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
  • a system for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz includes a power transmitter and a power supply.
  • the power transmitter includes a control and communications unit configured to provide power control signals for controlling a power level of a power signal configured for transmission to a power receiver and an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal.
  • DC direct current
  • the power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the power supply is external to the power transmitter, the power supply configured to configure the DC power based on the power control signals.
  • the power supply includes a voltage regulator and a power supply controller configured to receive the input power signals, generate voltage regulation instructions for altering the DC input power, based on the power control signals, the voltage regulation instructions including voltage step up instructions or voltage step down instructions for the DC/DC convertor, the voltage step up instructions and voltage step down instructions having a step level, the step level being a change in voltage at which the voltage regulator is configured to step up or step down the DC voltage of the DC power, and provide the voltage regulation instructions to the voltage regulator to control a DC voltage of the DC power.
  • a power transmitter for wireless power transfer at an operating frequency selected from an operating frequency range, the operating frequency range being about 87 kilohertz (kHz) to about 205 kHz.
  • the power transmitter includes a control and communications unit configured to provide power control signals to control a power level of a power signal configured for transmission to a power receiver and including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range.
  • PWM pulse width modulation
  • the power transmitter further includes an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal, coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • DC direct current
  • control and communications unit is further configured to receive power request signals from the power receiver and determine the power control signals based on the power request signals.
  • control and communications unit is configured to provide the power control signals to a power supply external to the power transmitter and the power supply is configured to configure an input DC power to generate the DC power supplied based on the power control signals and provide the DC power the inverter circuit.
  • the power supply includes a voltage regulator and a power supply controller configured to receive the power control signals, generate voltage regulation instructions for altering a DC voltage of the DC power, based on the power control signals, and provide the voltage regulation instructions to the voltage regulator to control the DC voltage of the DC power.
  • control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configured to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range.
  • the voltage regulation instructions include selecting a base DC voltage for assignment as the DC voltage of the DC power and the power supply is configured to configure the DC power having a base DC voltage for the DC voltage, wherein the base voltage is selected from one or more preset DC power voltage levels.
  • the preset DC power voltages include or more of 5 Volts (V), 9 V, 15 V, or 20 V.
  • the one or more base voltage levels includes a first base voltage level and a second base voltage level, the first base voltage level is electrically associated with a first base power level and the second base voltage level is electrically associated with a second base power level, and the frequency shift is determined such that a AC output power level for the power signal is greater than the first base power level and less than the second base power level.
  • control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configured to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed.
  • the power transmitter includes a control and communications unit configured to provide power control signals to a power supply external to the power transmitter for controlling a power level of a power signal configured for transmission to a power receiver, the power supply configured to configure a direct current (DC) power based on the power control signals, the control and communications unit further including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range.
  • a control and communications unit configured to provide power control signals to a power supply external to the power transmitter for controlling a power level of a power signal configured for transmission to a power receiver, the power supply configured to configure a direct current (DC) power based on the power control signals
  • DC direct current
  • the control and communications unit further including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range.
  • PWM pulse width modulation
  • the power transmitter further includes an inverter circuit configured to receive the DC power from the power supply external to the power transmitter and convert the input power to a power signal, a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • an inverter circuit configured to receive the DC power from the power supply external to the power transmitter and convert the input power to a power signal
  • a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
  • the at least one layer comprises a first layer and a second layer.
  • the first layer includes a first number of turns in a range of about 4 turns to about 5 turns
  • the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
  • a system for wireless power transfer at an operating frequency selected from an operating frequency range, the operating frequency range being about 87 kilohertz (kHz) to about 205 kHz includes a power transmitter and a power supply.
  • the power transmitter includes a control and communications unit configured to provide power control signals for controlling a power level of a power signal configured for transmission to a power receiver and including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range.
  • PWM pulse width modulation
  • the power transmitter further includes an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal, a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the power supply is supply external to the power transmitter, the power supply configured to configure the DC power based on the power control signals.
  • the power supply includes a voltage regulator to configure the DC power to have a base DC voltage for the DC voltage and a power supply controller configured to receive the input power signals, generate voltage regulation instructions for altering the DC power, based on the power control signals, the voltage regulation instructions including instructions for selecting the base DC voltage for assignment as the DC voltage of the DC power, the base DC voltage selected from one or more preset DC power voltage levels, and provide the voltage regulation instructions to the voltage regulator to configure the a DC voltage of the DC power.
  • the preset DC power voltages include or more of 5 Volts (V), 9 V, 15 V, or 20 V.
  • the one or more base voltage levels includes a first base voltage level and a second base voltage level
  • the first base voltage level is electrically associated with a first base power level
  • the second base voltage level is electrically associated with a second base power level
  • the frequency shift is determined such that an AC output power level for the power signal is greater than the first base power level and less than the second base power level.
  • the control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configure to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range.
  • a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed.
  • the power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, and a transmitter antenna.
  • the transmitter antenna includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the power transmitter further includes a surface mountable housing, the surface mountable housing substantially connected to, at least, the transmitter antenna and the surface mountable housing including a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface such that the transmitter antenna is configured to couple with a receiver antenna of the power receiver when the receiver antenna is proximate to a top side of the structural surface.
  • the surface mountable housing further includes a heat sink, the heat sink configured to rest, at least in part, below the transmitter antenna, when the power transmitter is connected to the structural surface, and configured to direct heat generated by the power transmitter away from the structural surface
  • the power transmitter further includes a transmitter electronics circuit board, the transmitter electronics circuit board including components of one or more of the control and communications circuit, the inverter circuit, or combinations thereof, and the heat sink is configured to dissipate heat, generated by one or more of the electronics circuit board or components located on the electronics circuit board, away from the structural surface.
  • the power transmitter further includes a thermal interface material, the thermal interface material disposed between the electronics circuit board and the heat sink and configured to direct heat from the electronics circuit board to the heat sink.
  • the thermal interface material includes one or more of a thermal paste, a thermal adhesive, a thermal gap filter, a thermally conductive pad, a thermal tape, a phase-change material, a metal thermal interface, or combinations thereof.
  • the surface mountable housing further includes an antenna housing, the antenna housing substantially surrounding a side wall of the transmitter antenna and the antenna housing is connected to the heat sink and positioned between the heat sink and the structural surface.
  • the heat sink defines one or more cut outs, each of the one or more cut outs configured to increase external surface area of the heat sink.
  • the heat sink is formed, at least in part, from aluminum.
  • thickness between the underside of the structural surface and the top side of the structural surface is in a range of about 5 millimeters (mm) to about 15 mm, and the surface mountable housing is configured to mount directly to the underside of the structural surface via the connection system.
  • a surface thickness is defined as a thickness between the underside of the structural surface and the top side of the structural surface
  • the structural member defines a hole
  • the hole defining a hole ceiling and a hole opening
  • a hole thickness is defined as a thickness between the hole ceiling and the hole opening
  • the hole thickness is less than the surface thickness
  • the surface mountable housing is configured to mount to the hole ceiling of the hole of the structural surface.
  • the surface thickness is in a range of about 20 mm to about 60 mm and the hole thickness is in a range of about 5 mm to about 50 mm.
  • a surface mountable power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz, the surface mountable power transmitter configured to be mounted on an underside of a structural surface, is disclosed.
  • the surface mountable power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, and a transmitter antenna.
  • the transmitter antenna includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
  • the power transmitter further includes a surface mountable housing, the surface mountable housing substantially connected to, at least, the transmitter antenna and the surface mountable housing including a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface such that the transmitter antenna is configured to couple with a receiver antenna of the power receiver when the receiver antenna is proximate to a top side of the structural surface.
  • the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
  • the at least one layer comprises a first layer and a second layer.
  • the Litz wire is a bifilar Litz wire.
  • the first layer includes a first number of turns in a range of about 4 turns to about 5 turns
  • the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
  • a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
  • the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
  • the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
  • a surface mountable housing for a power transmitter for wireless power transfer at an operating frequency selected from a range of a about 87 kilohertz (kHz) to about 205 kHz, the power transmitter including, at least, a transmitter antenna is disclosed.
  • the surface mountable housing includes a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface, such that the transmitter antenna is configured to couple with a receiver antenna of a power receiver when the receiver antenna is proximate to a top side of the structural surface.
  • the surface mountable housing further includes a heat sink, the heat sink configured to rest, at least in part, below the transmitter antenna, when the power transmitter is connected to the structural surface, and configured to direct heat generated by the power transmitter away from the structural surface, and an antenna housing, the antenna housing substantially surrounding a side wall of the transmitter antenna, the antenna housing connected to the heat sink and positioned between the heat sink and the structural surface.
  • a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface.
  • the power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing.
  • the transmitter antenna includes at least one coil configured to transmit the power signal to the power receiver, the at least one coil formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil.
  • the housing is configured for housing, at least, the transmitter antenna and defines a forward surface, configured for placement of the mobile device for wireless power transfer, an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
  • the power transmitter further includes a fan configured to provide at least some of the airflow to the airflow opening and the housing further defines a fan cavity configured to house, at least, the fan and the fan cavity is in fluid communication with, at least, the airflow opening, to provide the at least some of the airflow to the airflow opening.
  • the housing further defines a back surface, wherein a thickness for the housing is defined between the forward surface and the back surface and wherein the first airflow channel includes a first airflow channel cavity, the first airflow channel cavity being a cavity extending, at least in part, about the thickness.
  • the first airflow channel further includes a first channel opening, the first channel opening in fluid communication with, at least, the airflow opening, the first channel opening configured to provide at least some of the airflow from the airflow opening to one or more of the first airflow channel cavity or the rear surface of the mobile device.
  • the first channel opening is defined as a first protrusion opening in the protrusion top face, the first protrusion opening in fluid communication with, at least, the airflow opening.
  • the first airflow channel further includes at least one vent in fluid communication with the first airflow channel cavity, the at least one vent configured to mitigate heat from the mobile device rear surface.
  • the at least one vent opens to an environment external to the housing and is configured to facilitate one or more of entry or exit, for an external airflow, to the housing.
  • the first airflow channel cavity is configured to mechanically receive a mechanical body associated with the mobile device, wherein receipt of the mechanical body, at least in part, aligns the transmitter antenna with a receiver antenna of the mobile device, for the purposes of wireless power transfer and the mechanical body is one or more of a mechanical feature of the mobile device, a peripheral associated with the mobile device, a removable feature associated with the mobile device, or any combinations thereof.
  • the second airflow channel includes a second channel opening, the second channel opening in fluid communication with, at least, the airflow opening, the second channel opening configured to provide at least some of the airflow from the airflow opening to the mobile device front surface.
  • the housing further defines a housing base structure and a housing stand structure
  • the housing stand structure includes the forward surface and a back surface, the forward surface and back surface being separated by a housing stand structure thickness
  • the housing base structure includes a top surface and a bottom surface, the top surface and the bottom surface being separated by a housing base structure thickness
  • the housing stand structure and the housing base structure are respectively positioned such that an angle is formed, at least in part, by a first portion of the back surface and a second portion of the top surface, and the angle is greater than about 0 degrees and less than about 180 degrees.
  • a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface.
  • the power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing.
  • the transmitter antenna includes at least one coil configured to transmit the power signal to the power receiver, the at least one coil formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil.
  • the housing is configured for housing, at least, the transmitter antenna and defines a top surface, upon which the mobile device is placed for wireless power transfer, a bottom surface, wherein a housing thickness is, at least in part, defined between the top surface and the bottom surface.
  • the housing further defines an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
  • the airflow opening is configured for fluid communication with an external airflow source, the external airflow source providing at least some of the airflow to the airflow opening.
  • the external airflow source is an airflow source operatively associated with a vehicle.
  • the power transmitter further includes a fan configured for providing at least some of the airflow to the airflow opening and the housing is further defining a fan cavity for housing, at least, the fan and the fan cavity is in fluid communication with, at least, the airflow opening, for providing the at least some of the airflow to the airflow opening.
  • the first airflow channel includes a first airflow channel cavity, the first airflow cavity being a cavity extending, at least in part, along the housing thickness, from the top surface and towards the bottom surface.
  • the first airflow channel further includes a first channel opening, the first channel opening in fluid communication with, at least, the airflow opening, the first channel opening providing at least some of the airflow from the airflow opening to one or more of the first airflow channel cavity, the rear surface of the mobile device, and combinations thereof.
  • the first channel opening is defined as a first protrusion opening in the protrusion top face, the first protrusion opening in fluid communication with, at least, the airflow opening.
  • a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface.
  • the power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing.
  • the transmitter antenna includes a transmitter coil array including a top face and two or more transmitter coils, the two or more transmitter coils configured to transmit the power signal to the power receiver, the two or more transmitter coils formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil.
  • the housing is configured for housing, at least, the transmitter antenna and defines a top surface, upon which the mobile device is placed for wireless power transfer, a bottom surface, wherein a housing thickness is, at least in part, defined between the top surface and the bottom surface.
  • the housing further defines an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
  • the ferrite core includes an exterior wall for surrounding the exterior diameters of each of the two or more transmitter coils and one or more ferrite inner cores occupying space in between Litz wire of the two or more coils within one or more interior diameters of each of the two or more transmitter coils.
  • FIG. 1 A is an exemplary block diagram of an embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
  • FIG. IB is an exemplary block diagram of another embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
  • FIG. 2A is an exemplary block diagram for a power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 1, in accordance with FIG. 1 A and an embodiment of the present disclosure.
  • FIG. 2B is an exemplary block diagram for another power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 1, in accordance with FIG. IB and an embodiment of the present disclosure.
  • FIG. 3 is an exemplary block diagram for components of a control and communications system of the power transmitter of FIGS. 2, in accordance with FIGS. 1-2 and an embodiment of the present disclosure.
  • FIG. 4 is an exemplary block diagram for components of a sensing system of the control and communications system of FIG. 3, in accordance with FIGS. 1-3 and an embodiment of the present disclosure.
  • FIG. 5 A is an exemplary block diagram for components of a power conditioning system of the power transmitter of FIGS. 1 A and 2 A, in accordance with FIGS. 1 A and 2 A and an embodiment of the present disclosure.
  • FIG. 5B is an exemplary block diagram for components of a power conditioning system of the power transmitter of FIGS. 1 A and 2B, in accordance with FIGS. 1 A and 2B and an embodiment of the present disclosure.
  • FIG. 5C is an exemplary block diagram for components of a power conditioning system of any of the power transmitters of FIGS. 1-2, in accordance with FIGS. 1-2 and an embodiment of the present disclosure.
  • FIG. 6 is an exemplary block diagram of another embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
  • FIG. 7 is an exemplary block diagram for another wireless power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 6, in accordance with FIGS. 1-6 and an embodiment of the present disclosure.
  • FIG. 8 is an exemplary voltage plot illustrating transient voltage surges, in accordance with the present disclosure.
  • FIG. 9A is an exemplary block diagram for a configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 9B is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 9C is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 9D is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 9E is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 10 is an exemplary block diagram illustrating exemplary components of an input protection circuit for any of the vehicular power input regulators of FIGS. 9A-E, in accordance with FIGS. 1-5, 9A-E, and the present disclosure.
  • FIG. 11 A is an exemplary block diagram for components of the power transmitter of FIGS. 1-5 and an external power supply of the wireless power transfer system of FIG. 1, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 1 IB is an exemplary block diagram illustrating similar components of the power transmitter as those of FIG. 11 A, but further illustrating a duty cycle shift in the process of generating a power signal, in accordance with FIGS. 1-11 A and the present disclosure.
  • FIG. 11C is an exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 11 A and 1 IB, in accordance with FIGS. 1-1 IB and the present disclosure.
  • FIG. 12A is an exemplary block diagram for components of the power transmitter of FIGS. 1-5 and an external power supply of the wireless power transfer system of FIG. 1, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 12B is an exemplary block diagram illustrating similar components of the power transmitter as those of FIG. 12 A, but further illustrating a duty cycle shift in the process of generating a power signal, in accordance with FIGS. 1-5, 12A and the present disclosure.
  • FIG. 12C is an exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 12A and 12B, in accordance with FIGS. 1-5, 12A-B, and the present disclosure.
  • FIG 12D is another exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 12A-C, in accordance with FIGS. 1-5, 12A-C and the present disclosure.
  • FIG. 13 is a block diagram for a method of controlling power output in the wireless power transmitter of FIGS. 1-5 and 12-D and utilizing elements illustrated in FIGS. 12, in accordance with FIGS. 1-5, 12A-D and the present disclosure.
  • FIG. 14 is an exemplary electrical schematic diagram of components of the power transmitter of FIGS. 1-13, in accordance with FIGS. 1-13 and the present disclosure.
  • FIG. 15 is a perspective view of a shape of a transmitter coil of the power transmitter of FIGS. 1-14, in accordance with FIGS. 1-14 and an embodiment of the present disclosure.
  • FIG. 16 is a cross-section of components of a base station, with which the power transmitter 20 is associated, in accordance with FIGS. 1-15 and the present disclosure.
  • FIG. 17 is a perspective view of a shielding associated with the transmitter coil of FIGS. 1-16, in accordance with FIGS. 1-16 and an embodiment of the present disclosure.
  • FIG. 18A is a perspective view of the transmitter coil of FIGS. 1-17 and the shielding of FIGS. 16 and 17, in accordance with FIGS. 1-5 and the present disclosure.
  • FIG. 18B is an exploded perspective view of the transmitter coil of FIGS. 1-18A and the shielding of FIGS. 16 and 17, in accordance with FIGS. 1-18 A and the present disclosure.
  • FIG. 19A is an exemplary block diagram for an embodiment of the base station of FIGS. 1-18 in accordance with FIGS. 1-18 and the present disclosure.
  • FIG. 19B is an exemplary block diagram for another embodiment of the base station of FIGS. 1-18 in accordance with FIGS. 1-18 and the present disclosure.
  • FIG. 20 is a readout of an actual simulation of magnetic fields generated by the coils and/or transmitters illustrated in FIGS. 1-19 and disclosed herein.
  • FIG. 20A is a perspective view of an exemplary array of transmitter coils for use with the systems, methods, and apparatus of FIGS. 1-20, each of the array of transmitter coils constructed, at least in part, in accordance with coils and/or antennas of FIGS. 1-20, in accordance with FIGS. 1-20 and the present disclosure.
  • FIG. 2 IB is a cross sectional side view of the array of transmitter coils of FIG. 20A, in accordance with FIGS. 1-21A, and the present disclosure.
  • FIG. 22 is a perspective view of a shielding for the exemplary array of transmitter coils of FIGS. 21A and 21B, in accordance with FIGS. 1-21B, and the present disclosure.
  • FIG. 23 A is a perspective view of an exemplary housing of the systems, methods, and apparatus of FIGS. l-22and/or operatively associated with the systems, methods, and apparatus of FIGS. 1-22, and a mobile device powered and/or charged by the systems, methods, and apparatus of FIGS. 1-22, in accordance with FIGS. 1-22 and the present disclosure.
  • FIG. 23B is a front view of the housing and mobile device of FIG. 23 A, in accordance with FIGS. 1-23 A, and the present disclosure.
  • FIG. 24A is a perspective view of the housing and mobile device of FIGS. 23A-B, with the housing illustrated as transparent, as to show components located there, in accordance with FIGS. 1-23, and the present disclosure.
  • FIG. 24B is a front view of the housing and mobile device of FIGS. 20-24A, with the housing and mobile device illustrated as transparent, as to show components located within the housing, in accordance with FIGS. 1-24 A, and the present disclosure.
  • FIG. 25 is a side, cross-sectional view of the housing and mobile device of FIGS. 20-24, in accordance with FIGS. 1-24 and the present disclosure.
  • FIG. 26A is a side perspective view of the housing of FIGS. 23-25, without the mobile device, in accordance with FIGS. 1-25, and the present disclosure.
  • FIG. 26B is another side perspective view of the housing of FIGS. 23-25, without the mobile device and further illustrating air channel openings, in accordance with FIGS. 1- 26A, and the present disclosure.
  • FIG. 27A is a perspective view of another exemplary housing of the systems, methods, and apparatus of FIGS. 1-22 and/or operatively associated with the systems, methods, and apparatus of FIGS. 1-22, and a mobile device powered and/or charged by the systems, methods, and apparatus of FIGS. 1-22, the housing including similar features to the housing of FIGS. 23-26, in accordance with FIGS. 1-26, and the present disclosure.
  • FIG. 27B is a top view of the housing and mobile device of FIG. 24A, in accordance with FIGS. 1-27A, and the present disclosure.
  • FIG. 28 A is a side, cross-sectional view of the housing and mobile device of FIGS. 26, in accordance with FIGS. 1-27B, and the present disclosure.
  • FIG. 28B is a side, cross-sectional view of the housing and mobile device of FIGS. 27 and 28A, with an external airflow source, in accordance with FIGS. 1-28A, and the present disclosure.
  • FIG. 29A is a perspective top view of a surface mountable power transmitter utilizing one or more of the power transmitters, the transmitter antennas, or combinations thereof, described in FIGS. 1-20, in accordance with FIGS. l-20and the present disclosure.
  • FIG. 29B is a perspective bottom view of the surface mountable power transmitter of FIG. 29 A, in accordance with FIGS. 1-20, 29 A and the present disclosure.
  • FIG. 29C is an exploded perspective view of the surface mountable power transmitter of FIGS 29A-B, in accordance with FIGS. 1-20, 29B and the present disclosure.
  • FIG. 29D is a side, cross-sectional view of the surface mountable power transmitter of FIGS. 29A-C, in accordance with FIGS. 1-20, 29A-C and the present disclosure.
  • FIG. 29E is a bottom view of the surface mountable power transmitter of FIGS. 29A-D, in accordance with FIGS. 1-20, 29A-D, and the present disclosure.
  • FIG. 30 is cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating an exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29, and the present disclosure.
  • FIG. 31 A is a cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating another exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29A-E, and the present disclosure.
  • FIG. 3 IB is a bottom perspective view of the illustrated exemplary usage of the surface mountable power transmitter of FIG. 31 A, in accordance with FIGS. 1-20, 29, 31 A and the present disclosure.
  • FIG. 32 is a cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating another exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29A-E, and the present disclosure.
  • FIG. 33 is a flow chart for an exemplary method for designing a power transmitter, in accordance with FIGS. 1-32 and the present disclosure.
  • FIG. 34 is a flow chart for an exemplary method for manufacturing a power transmitter, in accordance with FIGS. 1-33 and the present disclosure.
  • the wireless power transfer system 10 provides for the wireless transmission of electrical signals, such as, but not limited to, electrical energy, electrical power signals, and electromagnetic energy. Additionally, the wireless power transfer system 10 may provide for wireless transmission of electronically transmittable data (“electronic data”) independent of and/or associated with the aforementioned electrical signals. Specifically, the wireless power transfer system 10 provides for the wireless transmission of electrical signals via near field magnetic coupling. As shown in the embodiments of FIGS. 1 A-B, the wireless power transfer system 10 includes a power transmitter 20 and a power receiver 30. The power receiver 30 is configured to receive electrical energy, electrical power, electromagnetic energy, and/or electronic data from, at least, the power transmitter 20.
  • the power transmitter 20 and power receiver 30 may be configured to transmit electrical energy, via transmitter antenna 21 and receiver antenna 31, electrical power, electromagnetic energy, and/or electronically transmittable data across, at least, a separation distance or gap 17.
  • a separation distance or gap such as the gap 17, in the context of a wireless power transfer system, such as the system 10, does not include a physical connection, such as a wired connection.
  • the combination of the power transmitter 20 and the power receiver 30 create an electrical connection without the need for a physical connection.
  • Electrical connection refers to any facilitation of a transfer of an electrical current, voltage, and/or power from a first location, device, component, and/or source to a second location, device, component, and/or destination.
  • An “electrical connection” may be a physical connection, such as, but not limited to, a wire, a trace, a via, among other physical electrical connections, connecting a first location, device, component, and/or source to a second location, device, component, and/or destination.
  • an “electrical connection” may be a wireless electrical connection, such as, but not limited to, magnetic, electromagnetic, resonant, and/or inductive field, among other wireless electrical connections, connecting a first location, device, component, and/or source to a second location, device, component, and/or destination.
  • the gap 17 may be referenced as a “Z-Distance,” because, if one considers an antenna 21, 31 to be disposed substantially along a common X-Y plane, then the distance separating the antennas 21, 31 is the gap in a “Z” or “depth” direction.
  • flexible and/or non-planar coils are certainly contemplated by embodiments of the present disclosure and, thus, it is contemplated that the gap 17 may not be uniform, across an envelope of connection distances between the antennas 21, 31. It is contemplated that various tunings, configurations, and/or other parameters may alter the possible maximum distance of the gap 17, such that electrical transmission from the power transmitter 20 to the power receiver 30 remains possible.
  • the wireless power transfer system 10 operates when the power transmitter 20 and the power receiver 30 are coupled.
  • the terms “couples,” “coupled,” and “coupling” generally refers to magnetic field coupling, which occurs when the energy of a transmitter and/or any components thereof and the energy of a receiver and/or any components thereof are coupled to each other through a magnetic field.
  • Coupling of the power transmitter 20 and the power receiver 30, in the system 10 may be represented by a resonant coupling coefficient of the system 10 and, for the purposes of wireless power transfer, the coupling coefficient for the system 10 may be in the range of about 0.01 and 0.9.
  • the power transmitter 20 may be operatively associated with a base station 11.
  • the base station 11 may be a device, such as a charger, that is able to provide near-field inductive power, via the power transmitter 20, to a power receiver.
  • the base station 11 may be configured to provide such near-field inductive power as specified in the QiTM Wireless Power Transfer System, Power Class 0 Specification.
  • the base station 11 may carry a logo to visually indicate to a user that the base station 11 complies with the QiTM Wireless Power Transfer System, Power Class 0 Specification.
  • the power transmitter 20 may receive power from an input power source 12.
  • the base station 11 may be any electrically operated device, circuit board, electronic assembly, dedicated charging device, or any other contemplated electronic device.
  • Example base stations 11, with which the power transmitter 20 may be associated therewith, include, but are not limited to including, a device that includes an integrated circuit, cases for wearable electronic devices, receptacles for electronic devices, a portable computing device, clothing configured with electronics, storage medium for electronic devices, charging apparatus for one or multiple electronic devices, dedicated electrical charging devices, activity or sport related equipment, goods, and/or data collection devices, among other contemplated electronic devices.
  • the input power source 12 may be or may include one or more electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices. Additionally or alternatively, the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20 (e.g., transformers, regulators, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components). Further, as discussed below with reference to FIGS.
  • AC alternating current
  • DC direct current
  • the input power source 12 may include, may be implemented by, and/or may be operatively associated with, for the purpose of power distribution, an external power supply 45, which directly provides a direct current (DC) power input to the power transmitter 20.
  • the external power supply 45 may include or comprise one or more Universal Serial Bus (USB) power supplies, Lightning power supplies, Qualcomm Quick Charge devices, USB-C power supplies, USB-PD (USB Power Delivery) power supplies, Mini -USB power supplies, proprietary power supplies, input/outputs on electronic devices (e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power supply, a battery, a generator, among known power supplies.
  • USB Universal Serial Bus
  • Lightning power supplies Qualcomm Quick Charge devices
  • USB-C power supplies USB-PD (USB Power Delivery) power supplies
  • Mini -USB power supplies proprietary power supplies
  • input/outputs on electronic devices e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power
  • the input power source 12 may be operatively associated with a vehicle 15, thus, the input power source 12 may be or may include one or more vehicular electrical inputs, vehicular batteries, vehicular power rails, electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices.
  • the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20 (e.g., transformers, regulators, rectifiers, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components).
  • connection apparatus from said electrical input source to the wireless transmission system 20 e.g., transformers, regulators, rectifiers, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components.
  • Electrical energy received by the power transmitter 20 is then used for at least two purposes: providing electrical power to internal components of the power transmitter 20 and providing electrical power
  • the transmitter coil 21 is configured to wirelessly transmit the electrical signals conditioned and modified for wireless transmission by the power transmitter 20 via near-field magnetic coupling (NFMC).
  • Near-field magnetic coupling enables the transfer of electrical energy, electrical power, electromagnetic energy, and/or electronically transmissible data wirelessly through magnetic induction between the transmitter coil 21 and a receiving coil 31 of, or associated with, the power receiver 30.
  • Near field magnetic coupling may enable “inductive coupling,” which, as defined herein, is a wireless power transmission technique that utilizes an alternating electromagnetic field to transfer electrical energy between two or more antennas/coils.
  • Such inductive coupling is the near field wireless transmission of electrical energy between two magnetically coupled coils that are tuned to resonate at a similar frequency.
  • such near-field magnetic coupling may provide connection via “mutual inductance,” which, as defined herein is the production of an electromotive force in a circuit by a change in current in at least one circuit magnetically coupled to the first.
  • the inductor coils of either the transmitter coil 21 or the receiver coil 31 are strategically positioned to facilitate reception and/or transmission of wirelessly transferred electrical energy, power, electromagnetic energy and/or data through near field magnetic induction.
  • Antenna operating frequencies may comprise all operating frequency ranges, examples of which may include, but are not limited to, about 87 kHz to about 205 kHz (QiTM interface standard).
  • the operating frequencies of the coils 21, 31 may be operating frequencies designated by the International Telecommunications Union (ITU) in the Industrial, Scientific, and Medical (ISM) frequency bands.
  • a “resonant frequency” or “resonant frequency band” refers to a frequency or frequencies wherein amplitude response of the antenna is at a relative maximum, or, additionally or alternatively, the frequency or frequency band where the capacitive reactance has a magnitude substantially similar to the magnitude of the inductive reactance.
  • the transmitting antenna resonant frequency band extends from about 87 kHz to about 205 kHz.
  • the inductor coil of the receiver coil 31 is configured to resonate at a receiving antenna resonant frequency or within a receiving antenna resonant frequency band.
  • the transmitting coil and the receiving coil of the present disclosure may be configured to transmit and/or receive electrical power at a baseline power profile having a magnitude up to about 5 watts (W). In some other examples, the transmitting coil and the receiving coil of the present disclosure may be configured to transmit and/or receive electrical power at an extended power profile, supporting transfer of up to 15 W of power.
  • the power receiver 30 is configured to acquire near-field inductive power from the power transmitter 20.
  • the power receiver 30 is a subsystem of an electronic device 14.
  • the electronic device 14 may be any device that is able to consume near field inductive power as specified in the QiTM Wireless Power Transfer System, Power Class 0 Specification.
  • the electronic device 14 may carry a logo to visually indicate to a user that the electronic device 14 complies with the Specification.
  • the electronic device 14 may be any device that requires electrical power for any function and/or for power storage (e.g., via a battery and/or capacitor). Additionally or alternatively, the electronic device 14 may be any device capable of receipt of electronically transmissible data.
  • the device may be, but is not limited to being, a handheld computing device, a mobile device, a portable appliance, an integrated circuit, an identifiable tag, a kitchen utility device, an automotive device, an electronic tool, an electric vehicle, a game console, a robotic device, a wearable electronic device (e.g., an electronic watch, electronically modified glasses, altered-reality (AR) glasses, virtual reality (VR) glasses, among other things), a portable scanning device, a portable identifying device, a sporting good, an embedded sensor, an Internet of Things (IoT) sensor, IoT enabled clothing, IoT enabled recreational equipment, industrial equipment, medical equipment, a medical device, a tablet computing device, a portable control device, a remote controller for an electronic device, a gaming controller, among other things.
  • a handheld computing device e.g., a mobile device, a portable appliance, an integrated circuit, an identifiable tag, a kitchen utility device, an automotive device, an electronic tool, an electric vehicle, a game console, a robotic device, a wearable
  • arrow-ended lines are utilized to illustrate transferrable and/or communicative signals and various patterns are used to illustrate electrical signals that are intended for power transmission and electrical signals that are intended for the transmission of data and/or control instructions.
  • Solid lines indicate signal transmission of electrical energy, electrical power signals, and/or electromagnetic energy over a physical and/or wireless electrical connection, in the form of power signals that are, ultimately, utilized in wireless power transmission from the power transmitter 20 to the power receiver 30.
  • dotted lines are utilized to illustrate electronically transmittable data signals, which ultimately may be wirelessly transmitted from the power transmitter 20 to the power receiver 30.
  • the wireless power transfer system 10 is illustrated as a block diagram including example sub-systems of the power transmitter 20.
  • the wireless transmission system 20 may include, at least, a power conditioning system 40, a control and communications system 26, a sensing system 50, and the transmission coil 21.
  • a first portion of the electrical energy input from the input power source 12 is configured to electrically power components of the wireless transmission system 20 such as, but not limited to, the control and communications system 26.
  • a second portion of the electrical energy input from the input power source 12 is conditioned and/or modified for wireless power transmission, to the power receiver 30, via the transmission coil 21. Accordingly, the second portion of the input energy is modified and/or conditioned by the power conditioning system 40.
  • first and second portions of the input electrical energy may be modified, conditioned, altered, and/or otherwise changed prior to receipt by the power conditioning system 40 and/or transmission control system 26, by further contemplated subsystems (e.g., a voltage regulator, a current regulator, switching systems, fault systems, safety regulators, among other things).
  • subsystems e.g., a voltage regulator, a current regulator, switching systems, fault systems, safety regulators, among other things.
  • the input power source 12 is a vehicular power source
  • the input power is received by a vehicular power input regulator 90, which is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things.
  • ESD electrostatic discharge
  • a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry.
  • electrical noise produced by a vehicular power source can cause significant interruption to digital communications.
  • the vehicular power input regulator 90 may be configured for transient voltage suppression, among other things, to protect downstream components of the power transmitter 20. Further description of embodiments for the vehicular power input regulator 90 are discussed below, with reference to FIGS. 8-10.
  • the control and communications system 26 generally, comprises digital logic portions of the power transmitter 20.
  • the control and communications system 26 receives and decodes messages from the power receiver 30, executes the relevant power control algorithms and protocols, and drives the frequency of the AC waveform to control the power transfer.
  • the control and communications system 26 also interfaces with other subsystems of the power transmitter 20.
  • the control and communications system 26 may interface with other elements of the power transmitter 20 for user interface purposes.
  • the control and communications system 26 may include a transmission controller 28, a communications system 29, a driver 48, and a memory 27.
  • the transmission controller 28 may be any electronic controller or computing system that includes, at least, a processor which performs operations, executes control algorithms, stores data, retrieves data, gathers data, controls and/or provides communication with other components and/or subsystems associated with the power transmitter 20, and/or performs any other computing or controlling task desired.
  • the transmission controller 28 may be a single controller or may include more than one controller disposed to control various functions and/or features of the power transmitter 20 such as, but not limited to, providing control instructions to the external power supply 45. Functionality of the transmission controller 28 may be implemented in hardware and/or software and may rely on one or more data maps relating to the operation of the power transmitter 20. To that end, the transmission controller 28 may be operatively associated with the memory 27.
  • the memory may include one or more of internal memory, external memory, and/or remote memory (e.g., a database and/or server operatively connected to the transmission controller 28 via a network, such as, but not limited to, the Internet).
  • the internal memory and/or external memory may include, but are not limited to including, one or more of a read only memory (ROM), including programmable read-only memory (PROM), erasable programmable read-only memory (EPROM or sometimes but rarely labelled EROM), electrically erasable programmable read only memory (EEPROM), random access memory (RAM), including dynamic RAM (DRAM), static RAM (SRAM), synchronous dynamic RAM (SDRAM), single data rate synchronous dynamic RAM (SDR SDRAM), double data rate synchronous dynamic RAM (DDR SDRAM, DDR2, DDR3, DDR4), and graphics double data rate synchronous dynamic RAM (GDDR SDRAM, GDDR2, GDDR3, GDDR4, GDDR5, a flash memory, a portable memory, and the like.
  • ROM read only memory
  • PROM programmable read-only memory
  • EPROM erasable programmable read-only memory
  • EEPROM electrically erasable programmable read only memory
  • RAM random access memory
  • DRAM dynamic RAM
  • control and communications system 26 While particular elements of the control and communications system 26 are illustrated as independent components and/or circuits (e.g., the driver 48, the memory 27, the communications system 29, among other contemplated elements) of the control and communications system 26, such components may be integrated with the transmission controller 28.
  • the transmission controller 28 may be an integrated circuit configured to include functional elements of one or both of the transmission controller 28 and the power transmitter 20, generally.
  • the transmission controller 28 is in operative association, for the purposes of data transmission, receipt, and/or communication, with, at least, the memory 27, the communications system 29, the power conditioning system 40, the driver 48, and the sensing system 50.
  • the driver 48 may be implemented to control, at least in part, the operation of the power conditioning system 40.
  • the driver 48 may receive instructions from the transmission controller 28 to generate and/or output a generated pulse width modulation (PWM) signal to the power conditioning system 40.
  • PWM pulse width modulation
  • the PWM signal may be configured to drive the power conditioning system 40 to output electrical power as an alternating current signal, having an operating frequency defined by the PWM signal.
  • the PWM signal may be altered by the controller 28, for, at least, power control purposes.
  • the sensing system 50 may include one or more sensors, wherein each sensor may be operatively associated with one or more components of the power transmitter 20 and configured to provide information and/or data.
  • the term “sensor” is used in its broadest interpretation to define one or more components operatively associated with the power transmitter 20 that operate to sense functions, conditions, electrical characteristics, operations, and/or operating characteristics of one or more of the power transmitter 20, the power receiver 30, the input power source 12, the base station 11, the transmission coil 21, the receiver coil 31, along with any other components and/or subcomponents thereof.
  • the sensing system 50 may include, but is not limited to including, a thermal sensing system 52, an object sensing system 54, a receiver sensing system 56, electrical sensor(s) 57 and/or any other sensor(s) 58.
  • sensing systems may be a foreign object detection (FOD) system.
  • FOD foreign object detection
  • Each of the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56 and/or the other sensor(s) 58, including the optional additional or alternative systems, are operatively and/or communicatively connected to the transmission controller 28.
  • the thermal sensing system 52 is configured to monitor ambient and/or component temperatures within the power transmitter 20 or other elements nearby the power transmitter 20.
  • the thermal sensing system 52 may be configured to detect a temperature within the power transmitter 20 and, if the detected temperature exceeds a threshold temperature, the transmission controller 28 prevents the power transmitter 20 from operating.
  • a threshold temperature may be configured for safety considerations, operational considerations, efficiency considerations, and/or any combinations thereof.
  • the transmission controller 28 determines that the temperature within the power transmitter 20 has increased from an acceptable operating temperature to an undesired operating temperature (e.g., in a non limiting example, the internal temperature increasing from about 20° Celsius (C) to about 50°C, the transmission controller 28 prevents the operation of the power transmitter 20 and/or reduces levels of power output from the power transmitter 20.
  • the thermal sensing system 52 may include one or more of a thermocouple, a thermistor, a negative temperature coefficient (NTC) resistor, a resistance temperature detector (RTD), and/or any combinations thereof.
  • the transmission sensing system 50 may include the object sensing system 54.
  • the object sensing system 54 may be configured to detect presence of unwanted objects in contact with or proximate to the power transmitter 20.
  • the object sensing system 54 is configured to detect the presence of an undesired object.
  • the transmission controller 28 via information provided by the object sensing system 54, detects the presence of an undesired object, then the transmission controller 28 prevents or otherwise modifies operation of the power transmitter 20.
  • the object sensing system 54 utilizes an impedance change detection scheme, in which the transmission controller 28 analyzes a change in electrical impedance observed by the transmission coil 21 against a known, acceptable electrical impedance value or range of electrical impedance values. Additionally or alternatively, in some examples the object sensing system 54 may determine if a foreign object is present by measuring power output associated with the power transmitter 20 and determining power input associated with a receiver associated with the power transmitter 20. In such examples, the object sensing system 54 may calculate a difference between the power associated with the power transmitter 20 and the power associated with the receiver and determine if the difference indicates a loss, consistent with a foreign object not designated for wireless power transmission.
  • the object sensing system 54 may utilize a quality factor (Q) change detection scheme, in which the transmission controller 28 analyzes a change from a known quality factor value or range of quality factor values of the object being detected, such as the receiver coil 31.
  • Q quality factor
  • the “quality factor” or “Q” of an inductor can be defined as (frequency (Hz) x inductance (H))/resistance (ohms), where frequency is the operational frequency of the circuit, inductance is the inductance output of the inductor and resistance is the combination of the radiative and reactive resistances that are internal to the inductor.
  • the object sensing system 54 may include one or more of an optical sensor, an electro-optical sensor, a Hall effect sensor, a proximity sensor, and/or any combinations thereof.
  • the receiver sensing system 56 is any sensor, circuit, and/or combinations thereof configured to detect presence of any wireless receiving system that may be couplable with the power transmitter 20. In some examples, if the presence of any such wireless receiving system is detected, wireless transmission of electrical energy, electrical power, electromagnetic energy, and/or data by the power transmitter to said wireless receiving system is enabled. In some examples, if the presence of a wireless receiver system is not detected, wireless transmission of electrical energy, electrical power, electromagnetic energy, and/or data is prevented from occurring.
  • the receiver sensing system 56 may include one or more sensors and/or may be operatively associated with one or more sensors that are configured to analyze electrical characteristics within an environment of or proximate to the power transmitter 20 and, based on the electrical characteristics, determine presence of a power receiver 30.
  • the electrical sensor(s) 57 may include any sensors configured for detecting and/or measuring any current, voltage, and/or power within the power transmitter 20. Information provided by the electrical sensor(s) 57, to the transmission controller 28, may be utilized independently and/or in conjunction with any information provided to the transmission controller 28 by one or more of the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the other sensor(s) 58, and any combinations thereof.
  • FIG. 5 A a block diagram illustrating an embodiment of the power conditioning system 40A is illustrated.
  • electrical power is received, generally, as a DC power source, via the input power source 12 itself or an intervening power converter, converting an AC source to a DC source (not shown).
  • a voltage regulator 46 receives the electrical power from the input power source 12 and is configured to provide electrical power for transmission by the coil 21 and provide electrical power for powering components of the power transmitter 20.
  • the voltage regulator 46 is configured to convert the received electrical power into at least two electrical power signals, each at a proper voltage for operation of the respective downstream components: a first electrical power signal to electrically power any components of the power transmitter 20 and a second portion conditioned and modified for wireless transmission to the wireless receiver system 30.
  • a first portion is transmitted to, at least, the sensing system 50, the transmission controller 28, and the communications system 29; however, the first portion is not limited to transmission to just these components and can be transmitted to any electrical components of the power transmitter 20.
  • the second portion of the electrical power is provided to an amplifier 42 of the power conditioning system 40A, which is configured to condition the electrical power for wireless transmission by the coil 21.
  • the amplifier may function as an inverter, which receives an input DC power signal from the voltage regulator 46 and generates an AC as output, based, at least in part, on PWM input from the transmission control system 26.
  • the amplifier 42 may be or include, for example, a power stage inverter.
  • the use of the amplifier 42 within the power conditioning system 40A and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier.
  • the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 milliwatts (mW) to about 60 W.
  • FIG. 5B a block diagram illustrating an embodiment of the power conditioning system 40B is illustrated.
  • the filtered input power is received, generally, as a direct current (DC) power source, via the vehicular power input regulator 90 itself or an intervening power converter.
  • a voltage regulator 46 receives the electrical power from the input power source 12 and is configured to provide electrical power for transmission by the coil 21 and provide electrical power for powering components of the power transmitter 20.
  • the voltage regulator 46 is configured to convert the received electrical power into at least two electrical power signals, each at a proper voltage for operation of the respective downstream components: a first electrical power signal to electrically power any components of the power transmitter 20 and a second portion conditioned and modified for wireless transmission to the wireless receiver system 30.
  • a first portion is transmitted to, at least, the sensing system 50, the transmission controller 28, and the communications system 29; however, the first portion is not limited to transmission to just these components and can be transmitted to any electrical components of the power transmitter 20.
  • the second portion of the electrical power is provided to an amplifier 42 of the power conditioning system 40B, which is configured to condition the electrical power for wireless transmission by the coil 21.
  • the amplifier may function as an inverter, which receives an input DC power signal from the voltage regulator 46 and generates an alternating current (AC) as output, based, at least in part, on PWM input from the transmission control system 26.
  • the amplifier 42 may be or include, for example, a power stage inverter. The use of the amplifier 42 within the power conditioning system 40 and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier.
  • the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 mW to about 60 W.
  • FIG. 5C a block diagram illustrating an embodiment of the power conditioning system 40 is illustrated.
  • electrical power is received, generally, as a DC power source, via an external power supply 45.
  • the electrical power is provided to an amplifier 42 of the power conditioning system 40, which is configured to condition the electrical power for wireless transmission by the coil 21.
  • the amplifier 42 may function as an inverter, which receives a DC power signal from the external power supply 45 and generates an AC power signal as output, based, at least in part, on PWM input from the transmission control system 26.
  • the amplifier 42 may be or include, for example, a power stage inverter.
  • the use of the amplifier 42 within the power conditioning system 40 and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier.
  • the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 milliwatts (mW) to about 60 W.
  • the wireless power transfer system 10B includes most of the same elements as the wireless power transfer system 10A and, thus, the base station transmission antenna 21, the receiver antenna 31, the power receiver 30, the load 16, the electronic device 14, and the input power source 12 are functionally equivalent to those of FIG. 1 A and share the same written description as those above, with reference to FIGS. 1-5.
  • the input power source 12 in the wireless power transfer system 10B is operatively associated with a vehicle 15. While it certainly is possible that the system 10A of FIG. 1 A and/or components thereof may be operatively associated with a vehicle, it is particularly illustrated in FIG. 5 for the purposes of this exemplary embodiment of the disclosure.
  • the system 10B includes a power transmitter 20B, which shares many like elements to the power transmitter 20A, as discussed below.
  • the power transmitter 20B may comprise or be operatively associated with a base station 1 IB.
  • the vehicle 15 may be a machine that transports people and/or cargo.
  • exemplary vehicles include automobiles such as cars, trucks, buses, and other land vehicles.
  • Other examples of vehicles may include airplanes, boats, golf carts, small industrial vehicles, farming equipment, construction equipment, nautical vehicles, mixed use vehicles, recreational vehicles, sport vehicles, public transportation vehicles, and trains.
  • the input power source 12 may be or may include one or more vehicular electrical inputs, vehicular batteries, vehicular power rails, electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices.
  • the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20B (e.g., transformers, regulators, rectifiers, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components).
  • FIG. 7 illustrates the power transmitter 20B.
  • the power transmitter 20B includes most of the same elements as the power transmitter 20A and, thus, the control and communications system 26, the power conditioning system 40, the transmitter coil 21, the sensing system 50, and the housing 100 share the same written description as those above, with reference to FIGS. 1-5.
  • the power transmitter 20B includes a vehicular power input regulator 90.
  • the vehicular power input regulator 90 is configured to receive and regulate the power input from the input power source 12 to generate a filtered input power to transmit to the power conditioning system 40.
  • the input power received by the vehicular power input regulator 90 is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things.
  • a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry. Additionally or alternatively, electrical noise produced by a vehicular power source, even that of relatively low energy, can cause significant interruption to digital communications.
  • the vehicular power input regulator 90 may be configured for transient voltage suppression, among other things, to protect downstream components of the power transmitter 20B.
  • FIG. 8 is an exemplary plot 19 illustrating an example voltage embodiment of an input power signal 13, communicated from the input power source 11 to the vehicular power input regulator. It is noted that the plot 19 is not to scale and the voltage values are merely exemplary.
  • the input power signal 13 is generated from a vehicular power source like, for example, an alternator and/or battery of a vehicle. Due to the nature of vehicles and the various affects that components of said vehicle may have on the voltage of the power signal 13, a plurality of transient voltages may be applied to the connection and/or rail upon which the input power signal 13 propagates.
  • the voltage of power in a vehicular power connection and/or rail may have transient spikes and dips that could affect components attached to said connection and/or rail.
  • transients may be alterations to a nominal voltage and include, but are not limited to including, voltage drops due to a crank, load dumps drastically increasing voltage, signal noise, overvoltages from various sources, such as jump starts, reverse battery connections, among other things.
  • the vehicular power input regulator 90 is utilized by the power transmitter 20 to substantially “flatten” the exemplary plot 19, thus providing a constant, safe voltage in the filtered power signal provided to downstream components of the power transmitter 20. As illustrated in FIGS. 9A-E, the vehicular power input regulator 90 includes an input protection circuit 91, which is utilized in removing transients from the input power signal and/or flattening the voltage of the input power signal to a common, sustained voltage.
  • the input protection circuit 91 may include an electrostatic discharge (ESD) protection circuit 94, which is configured to prevent ESD and/or mitigate ESD entering or occurring within the power transmitter 20.
  • ESD electrostatic Discharge
  • “Electrostatic Discharge (ESD),” as defined herein, is the sudden flow of electricity between two electrically charged objects caused by one or more of contact, an electrical short, and/or dielectric breakdown. ESD may occur when differently-charged objects are brought close together or when the dielectric between them breaks down.
  • Exemplary ESD protection circuits 94 may embody or include diodes, Transient Voltage Suppressors (TVS), Zener diodes, among other things.
  • the input protection circuit 91 may further include an electromagnetic interference (EMI) mitigation circuit 95.
  • EMI electromagnetic interference
  • radio-frequency interference refers to disturbances, which may be, generally, unwantedly generated by components of the power transmitter 20, which may affect an electrical circuit, and are generated by electromagnetic induction, electrostatic coupling, and/or conduction, among other sources for EMI. Such disturbances may degrade the performance of the circuit, stop the circuit from functioning and/or may violate EMI limits for commercial products, as provided via regulation. Both man-made and natural sources can generate changing electrical currents and voltages, which may cause EMI.
  • the EMI mitigation circuit 95 may be included to mitigate the ill effects of EMI on components of the power transmitter 20 and/or limit transmission of EMI by the power transmitter 20.
  • the EMI mitigation circuit 95 may embody or include filters, RF filters, common mode chokes, ferrite beads, inductors, tuning networks, among other things.
  • the input protection circuit 91 may include an overvoltage protection circuit 92, which is configured for protecting components and/or subcomponents of the power transmitter 20 from overvoltages in the input power signal.
  • “Overvoltage,” as defined herein, refers to when a voltage in the power transmitter 20 is raised above the upper design limit of any component of the power transmitter 20. Overvoltages may cause damage and/or failure in components of the power transmitter 20. Depending on the duration of an overvoltage, an overvoltage event can be a transient, such as a spike, or may be a substantial constant and/or permanent overvoltage, thus resulting in power surge.
  • Exemplary overvoltage protection circuits 92 may embody or include a crowbar protection circuit, a Zener voltage regulator circuit, Zener diodes, bipolar transistors, voltage regulators, relays, among other known overvoltage protection circuits.
  • the input protection circuit 91 may further include an undervoltage protection circuit 93, which is configured to prevent undervoltages from being passed to the power conditioning system 40.
  • Undervoltage occurs when the voltage of the input electrical power drops below intended voltage levels for operation of the power transmitter 20. Undervoltages may result in components failing, due to a lack of power transmitted, and/or undervoltages may cause components of the power transmitter 20 to draw excess current, which could result in component failure or damage.
  • Undervoltages may be harmful to digital logic elements of the power transmitter 20, as an undervoltage can put a digital logic circuit into an unknown and/or unpredictable state, may corrupt volatile memory, such as Random Access Memory (RAM), cause a microcontroller to perform unforeseen actions, cause unsafe conditions within logic circuitry, among other things. Such occurrences, when caused by undervoltage, may cause component damage, create unsafe conditions, and/or may cause the power transmitter to stop functioning.
  • volatile memory such as Random Access Memory (RAM)
  • RAM Random Access Memory
  • the undervoltage protection circuit 93 may be configured in any proper manner to prevent undervoltage, such as, but not limited to, including extra capacitance to a circuit to provide power during a brownout, including a CPU halt mechanism, and/or switching/detecting elements to shut down the power transmitter 20 until a voltage reaches acceptable limits.
  • Exemplary undervoltage protection circuits 93 may embody or include a comparator circuit, high capacitance circuits, fail-safe circuits, timers, among other things.
  • a DC/DC voltage converter 96A is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20.
  • the DC/DC voltage converter 96A may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a boost-buck converter, a push-pull converter, a full bridge converter, among other things.
  • the input power from the input power source may be about 12 V and the operating voltage for the power transmitter 20 is about 19 V.
  • the DC/DC voltage converter 96 A is configured to boost or step up the voltage of the power signal for the filtered power signal from 12 V to 19 V.
  • the DC/DC voltage converter 96A is configured to buck or step down the voltage of the power signal for the filtered power signal from 24 V to 19 V.
  • a DC/DC input buck converter 96B is included for receiving filtered power, bucking and/or stepping down the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20.
  • the DC/DC voltage converter may be any element, component, and/or component configured for bucking, stepping down, and/or lowering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a transformer, an amplifier, a split-pi converter, a push-pull converter, a full bridge converter, among other things.
  • the input power from the input power source may be about 12 V and the operating voltage for the power transmitter 20 is about 12 V.
  • the DC/DC voltage converter 96B is configured to maintain and/or stabilize the voltage of the input power signal at about 12 V.
  • the DC/DC voltage converter 96B is configured to buck or step down the voltage of the power signal for the filtered power signal from about 24 V to about 12 V.
  • FIG. 9C illustrates another embodiment of a vehicular power input regulator 90C, which is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20.
  • the vehicular power input regulator 90C may include a DC/DC voltage converter 96C, which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a boost-buck converter, a push-pull converter, a full bridge converter, among other things.
  • a DC/DC voltage converter 96C which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer
  • the power transmitter 20 may include an input voltage sensor 97 which is configured to detect and/or measure the input voltage of the power received from the input power source 11. The input voltage sensor 97 then provides such voltage information to the control and communications system 26, which may then control voltage of the DC/DC input converter 96C, based on the detected input voltage. For example, if the input voltage is about 12 V and the operating voltage of the power transmitter 20 is about 19 V, the control and communication system 26 may instruct the DC/DC input converter 96C to boost and/or step up the voltage to about 19 V. In some alternative examples, if the input voltage is about 24 V and the operating voltage of the power transmitter 20 is about 19 V, then the control and communications system 26 may be configured to buck or step down the voltage to about 19 V.
  • FIG. 9D illustrates another embodiment of a vehicular power input regulator 90D, which is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20.
  • the vehicular power input regulator 90D may include a DC/DC buck-boost converter 96D, which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a push-pull converter, a full bridge converter, among other things.
  • a DC/DC buck-boost converter 96D which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter,
  • the buck-boost converter 96D may be configured to detect and/or measure the input voltage of the power received from the input power source 11 and then buck or boost the voltage, based on the desired operating conditions for the power transmitter 20. For example, if the input voltage is about 12 V and the operating voltage of the power transmitter 20 is about 19 V, the buck-boost converter 96D may boost and/or step up the voltage to about 19 V. In some alternative examples, if the input voltage is about 24 V and the operating voltage of the power transmitter 20 is about 19 V, then the buck-boost converter 96D may be configured to buck or step down the voltage to about 19 V.
  • elements of the vehicular power input regulator 90E may be integrated with the power conditioning system 40 of the power transmitter 20.
  • the voltage regulator 46 may be implemented to embody similar functions of any of the DC/DC voltage converters 90A-D of FIGS. 9A-D. To that end, the voltage regulator 46 may be configured to convert the input voltage from the input power source 11 to a proper operating voltage for the power transmitter 20.
  • FIGS. 11 A and 1 IB components of the power transmitter 20 and the external power supply 45 are illustrated, for the purposes of describing power control methods, schemes, and/or components of the power transmitter 20.
  • the block diagram of FIG. 6A illustrates interaction between one or more of the power conditioning system 40, the amplifier 42, the controller 28, the external power supply 45, or components thereof.
  • the external power supply 45 may be any suitable power supply, which is configurable for providing a proper DC power signal (V D C), at a DC voltage, to the amplifier 42.
  • the DC power is conditioned for wireless power transmission as an alternating current (AC) power signal (VAC), via the transmitter antenna 21.
  • the external power supply 45 may provide V D C directly to the amplifier 42, absent any additional voltage step up or down via physical electrical components (e.g., an internal DC/DC converter of the power transmitter 20).
  • V D C alternating current
  • VAC alternating current
  • the external power supply 45 may provide V D C directly to the amplifier 42, absent any additional voltage step up or down via physical electrical components (e.g., an internal DC/DC converter of the power transmitter 20).
  • V D C alternating current
  • V AC alternating current
  • V AC alternating current
  • the external power supply 45 may provide V D C directly to the amplifier 42, absent any additional voltage step up or down via physical electrical components (e.g., an internal DC/DC converter of the power transmitter 20).
  • the external power supply 45 receives an input power VIN, which may be any DC or AC input power, to be conditioned by the external power supply 45, for output directly to the amplifier 42 as VDC.
  • a voltage regulator 46 receives VIN from the input power source 12 and is configured to provide electrical power to the amplifier 42. Accordingly, the voltage regulator 46 is configured to convert the received electrical power into a power signal at a proper voltage for operation of the respective downstream components.
  • the voltage regulator 46 may be any voltage regulator known in the art that is capable of converting in input voltage to an output, direct current voltage, which may include one or more DC/DC converters, amplifiers, transistors, transformers, inverters, switches, diodes, rectifiers, switching systems, among other known voltage regulators. To that end, the voltage regulator 46 may be configured to step up VIN to result in VDC, step down VIN to result in VDC, and/or maintain a substantially similar voltage VIN to result in VDC.
  • Such stepping up, stepping down, and/or maintenance of the voltage for generating V DC may be controlled by a power supply controller 47 of the external power supply 45.
  • the power supply controller 47 may include any internal firm ware and/or may respond to signals from any external controllers (e.g., the transmission controller 28) for determining instructions for provision to the voltage regulator 46, to control voltage levels for the resultant V DC .
  • any external controllers e.g., the transmission controller 28
  • one or more control methods, schemes, and/or components are utilized by the power supply controller 47 to output the desired V DC directly to the amplifier 42.
  • the power supply controller 47 may be any electronic controller or computing system that includes, at least, a processor which performs operations, executes control algorithms, stores data, retrieves data, gathers data, controls and/or provides communication with other components and/or subsystems associated with external power supply 45, and/or performs any other computing or controlling task desired.
  • the power supply controller 47 may be a single controller or may include more than one controller disposed to control various functions and/or features of the external power supply 45. Functionality of the power supply controller 47 may be implemented in hardware and/or software and may rely on one or more data maps relating to the operation of the external power supply 45. To that end, the power supply controller 47 may be operatively associated with memory.
  • the memory may include one or more of internal memory, external memory, and/or remote memory (e.g., a database and/or server operatively connected to the power supply controller 47 via a network, such as, but not limited to, the Internet).
  • the internal memory and/or external memory may include, but are not limited to including, one or more of a read only memory (ROM), including programmable read-only memory (PROM), erasable programmable read-only memory (EPROM or sometimes but rarely labelled EROM), electrically erasable programmable read-only memory (EEPROM), random access memory (RAM), including dynamic RAM (DRAM), static RAM (SRAM), synchronous dynamic RAM (SDRAM), single data rate synchronous dynamic RAM (SDR SDRAM), double data rate synchronous dynamic RAM (DDR SDRAM, DDR2, DDR3, DDR4), and graphics double data rate synchronous dynamic RAM (GDDR SDRAM, GDDR2, GDDR3, GDDR4, GDDR5, a flash memory, a portable memory, and the like.
  • ROM
  • the transmission controller 28 may be utilized for communications with one or more of the external power supply 45, the power supply controller 47, or the amplifier 42, for controlling power levels of power signals within the power transmitter 20.
  • the transmission controller 28 is configured to provide power control signals (P CO n) to control a power level of the power signal VAC, VAC configured for transmission to the power receiver 30.
  • the transmitter controller 28 may include, implement, execute firmware to implement, and/or functionally provide a voltage controller 41 and a pulse-width modulation signal (PWM) generator 43.
  • PWM pulse-width modulation signal
  • the voltage controller 41 is, generally, configured to provide one or both of control instructions for stepping up or stepping down the DC power signal VDC or altering power levels of the AC power signal VAC. Further, to determine the power control signals (Peon), the voltage controller may be configured to receive power request signals (P re q) from the power receiver 30 and determine P CO n based, at least in part, on P re q. Preq may be any information that determines a desired power level for transmission to the power receiver 30, such as, but not limited to, a current charge level of a load associated with the power receiver 30, a voltage at a rectifier of the power receiver 30, a load resistance associated with the power receiver 30, among other electrical information associated with the power receiver 30.
  • the transmitter controller 28 is configured to provide P CO n, at least in part, to the external power supply 45, such that the power supply may utilize information of Peon to configure VDC based, at least in part, on VIN and P CO n, and provide VDC to the amplifier 42.
  • the power supply controller 47 is configured to receive P CO n, at least in part, and generate voltage regulation instructions (V reg ), V reg configured for altering the DC voltage of VDC, based on P con .
  • V reg voltage regulation instructions
  • V reg configured for altering the DC voltage of VDC
  • Pcon step includes a step level, which is a level, step magnitude, and/or change in voltage at which the voltage regulator 46 and/or the power supply controller 47 is configured to step up or step down the DC voltage of VDC, when configuring VDC from VIN.
  • the step levels may be proprietary, with specific voltage levels configured for operation of specific devices and/or operations.
  • the step levels may be a constant rate of change in voltage, from which the power supply 45 is configured to any power level that is a multiple of the step level, up to an upper-bound maximum output power. Utilizing small step levels may allow for greater precisionity in power control, by the power transmitter 20, utilizing external power regulation of the external power supply 45.
  • the step level may be in a range of about 10 millivolts (mV) to about 500 mV. In some other examples, the step level may be about 200 mV. Utilizing step levels in control of an external power supply 45 may allow for the power transmitter 20 to effectively utilize off- the-shelf, inexpensive power supplies, in place of more costly internal voltage regulation hardware.
  • the PWM generator 43 may be utilized for providing a PWM signal to the amplifier, for forming VAC based, at least in part, on the input VDC of the amplifier 42.
  • the PWM generator 43 may generate the PWM signal based, at least, on an operating frequency provided by the operating frequency generator 48.
  • the operating frequency produced by the operating frequency generator 48 may be selected from a range of about 87 kHz to about 205 kHz.
  • the PWM generator further includes a duty cycle shift 49, which may be configured to shift, alter, and/or otherwise configure a duty cycle of the resultant AC power signal VAC, which is generated based, at least in part, on the PWM signal (PWM).
  • a duty cycle refers to the positive voltage cycle of a period of an AC power signal.
  • the initial duty cycle of VAC is about 50% of the period of the sinusoidal waveform.
  • the duty cycle of VAC is decreased, the effective amount of power, over a period of time, will be less than the amount of power output, over a period of time, of an unaltered, about 50% duty cycle for the ideal sinusoidal waveform.
  • FIG. 11C is provided to illustrate the effect of a duty cycle shift on the power output of the amplifier 42, based on the control systems, schemes, and/or apparatus disclosed, with respect to FIGS. 11 A and 1 IB.
  • the power signal VAC is generated at the amplifier 42 based, at least in part, on both VDC and PWM.
  • the output of the amplifier, with inputs of VDC and PWM may result in a substantially sinusoidal wave form having an initial duty cycle (di) that is equal to about 50% of a period of the sinusoidal waveform (T).
  • this unshifted sinusoidal power signal is an initial AC power signal (VAG), which has an initial root mean square voltage (VAcn-ms) .
  • VAcn-ms initial root mean square voltage
  • a root mean square (rms) voltage refers to the square root of the average value of the squared function of instantaneous values for the voltage, over a period of time, for an alternating current signal.
  • VAG has a peak voltage Vp eak , the initial duty cycle di, and a period T. If di is shifted and Vp eak and T remain substantially constant, then an rms voltage of the wave form will shift proportionately with the shift in duty cycle. To that end, as illustrated in FIG.
  • a rms voltage of the shifted, final output VAC having a shifted duty cycle d Shift , will have an altered rms voltage (VAC j ms), when compared to VACi jms.
  • the PWM generator 43 may be configured to receive duty cycle shift information (P COn shift), of P COn , and generate PWM as modified to generate VAC with a modified duty cycle, as illustrated in FIG. 9C.
  • P COn shift duty cycle shift information
  • the root mean square voltage V AC UIS after modification, is less than V A cn- ms would be, absent the duty cycle shift. Accordingly, by shifting the duty cycle of VAC, utilizing the controller 28 and/or the PWM generator 43, precision control of the power levels output for VAC can be achieved through direct software and/or hardware control of a duty cycle shift for VAC.
  • FIGS. 11 A and 1 IB components of the power transmitter 20 and the external power supply 45 are illustrated, for the purposes of describing power control methods, schemes, and/or components of the power transmitter 20.
  • the block diagram of FIG. 12A illustrates interaction between one or more of the power conditioning system 40, the amplifier 42, the controller 28, the external power supply 45, or components thereof.
  • the components of the power transmitter 20 and the external power supply 45 may be like or similar components to those of FIGS. 11 A-C and, thus, share a common description, as discussed above with reference to FIGS. 11 A-C.
  • the transmission controller 28 may be utilized for communications with one or more of the external power supply 45, the power supply controller 47, or the amplifier 42, for controlling power levels of power signals within the power transmitter 20.
  • the transmission controller 28 is configured to provide power control signals (P COn ) to control a power level of the power signal V AC , V AC configured for transmission to the power receiver 30.
  • the transmitter controller 28 may include, implement, execute firmware to implement, and/or functionally provide a voltage controller 41 and a pulse-width modulation signal (PWM) generator 43.
  • PWM pulse-width modulation signal
  • the voltage controller 41 is, generally, configured to provide one or both of control instructions for stepping up or stepping down the DC power signal V DC or altering power levels of the AC power signal V AC . Further, to determine the power control signals (P eon ), the voltage controller may be configured to receive power request signals (P req ) from the power receiver 30 and determine P COn based, at least in part, on P req . P req may be any information that determines a desired power level for transmission to the power receiver 30, such as, but not limited to, a current charge level of a load associated with the power receiver 30, a voltage at a rectifier of the power receiver 30, a load resistance associated with the power receiver 30, among other electrical information associated with the power receiver 30.
  • the transmitter controller 28 For controlling voltage levels of V DC , upon input to the amplifier 42, from the external power supply 45, the transmitter controller 28 is configured to provide P COn , at least in part, to the external power supply 45, such that the power supply may utilize information of Peon to configure VDC based, at least in part, on VIN and P COn , and provide VDC to the amplifier 42.
  • the power supply controller 47 is configured to receive P COn , at least in part, and generate voltage regulation instructions (V reg ), V reg configured for altering the DC voltage of VDC, based on P con .
  • V reg voltage regulation instructions
  • the power supply controller 47 provides V reg to the voltage regulator 46, for the voltage regulator
  • P COn preset may include voltage preset selection instructions (P COn preset ).
  • P eon preset includes a selection of a base DC voltage for the DC power, wherein said selection is selected from one or more preset DC power voltage levels.
  • the preset DC power voltages may be any number of voltages, such that the external power supply 45 knows the preset DC power voltages and the controller 28 is capable of communicating a desired preset DC power voltage to the external power supply 45.
  • the preset DC voltages may be proprietary, with specific voltage levels configured for operation of specific devices and/or operations.
  • the preset DC power voltages include one or more of 5 Volts (V), 9 V, 12 V, 15 V, or 20V. Utilizing preset DC voltages in control of an external power supply 45 may allow for the power transmitter 20 to effectively utilize off-the-shelf, inexpensive power supplies, in place of more costly internal voltage regulation hardware.
  • the preset DC voltages may be a steps at constant rate of change in voltage, from which the power supply 45 is configured to any power level that is a multiple of the step level, up to an upper-bound maximum output power. Utilizing small step levels may allow for greater granularity in power control, by the power transmitter 20, utilizing external power regulation of the external power supply 45.
  • the step level may be in a range of about 10 millivolts (mV) to about 500 mV.
  • the PWM generator 43 may be utilized for providing a PWM signal to the amplifier, for forming VAC based, at least in part, on the input VDC of the amplifier 42.
  • the PWM generator 43 may generate the PWM signal based, at least, on an operating frequency provided by the operating frequency generator 48.
  • the operating frequency produced by the operating frequency generator 48 may be selected from a range of about 87 kHz to about 205 kHz.
  • the PWM generator 48 further includes an operating frequency selector 49.
  • the operating frequency selector 49 may receive frequency shift signals (Pconjreq) of P eon for shifting the operating frequency selected at the frequency generator 48, in response to power requirements for the power transmitter 20.
  • P CO n freq may be frequency shift information for granularly shifting the output power for VAC, based on electrical characteristics of the transmission system 20 response to a particular frequency, within the operating frequency range.
  • the operating frequency, for a frequency shift 49 may be selected based on known or derived voltage or current characteristics at a given frequency.
  • a current output for the power transmitter 20 is greater at a higher operating frequency within the operating range of about 87 kHz to about 205 kHz, wherein the relationship between current output and operating frequency is non-linear.
  • altering the operating frequency thus altering the current output off the power transmitter 20, may raise or lower the output power for VAC.
  • the frequency selector 49 may receive demands for alterations in the base DC voltage of the power supply 45 and granularly determine and generate the resultant output power for VAC.
  • FIGS. 12C and 12D are included to illustrate exemplary implementations of the operating frequency selector 49 and its interaction with the operating frequency generator 48 of the PWM signal generator 43.
  • FIG. 12C illustrates a PWM signal generator 43 A that receives Pcon freq as frequency alteration information (Palt) of Peon.
  • the PWM signal generator 43 C includes a look up table (LUT) 49C, which is referenced to determine a frequency shift for the operating frequency, to achieve the desired frequency alteration of Palt.
  • LUT look up table
  • the LUT 49C may be any database, table, memory, memory accessed remotely, and/or data source which compares a change in power, current, and/or voltage of an output power of the power transmitter 20, with a frequency and/or frequency shift of the operating frequency, which would cause the desired change in power, current and/or voltage of the output power of the power transmitter 20.
  • data stored in and/or accessed by the LUT 49C may be predetermined by one or more of known characteristics of the power transmitter 20, experimental results regarding operation of the power transmitter 20 and/or components thereof, derivations and/or models regarding electrical performance of the power transmitter 20, known electrical and/or physical characteristics associated with the power transmitter 20 and/or components thereof, or any other known electrical to frequency characteristic relationships.
  • a PWM signal generator 43 may include an determiner 49D, for determining a proper operating frequency shift, based on values of Palt.
  • the determiner 49D may be any non-static model, simulation, derived relationship, control loop, integrator, and/or determiner, which receives a requested power change and determines an operating frequency shift, for said power change, based on known values for the base DC power signal and the desired change from the base DC power level.
  • the determiner 49D may be based on experimental derivations, mathematical derivations, observed results derived into a modelled result, among other systems, methods, and apparatus for determining the relationship between power and operating frequency for a given power transmitter 20.
  • FIG. 13 a block diagram for an exemplary method 600 for controlling power input and/or output of the power transmitter 20 is illustrated.
  • the method 600 may begin at block 605, wherein the transmitter controller 28 receives P req from the power receiver 30.
  • the method 600 may include determining P con based on P req .
  • the method 600 includes providing P eon jreset of P eon to the external power supply 45 and/or any components thereof.
  • the external power transmitter 45 determines V re g based, at least, on P con preset (block 620) and determines and provides VDC to the power transmitter 20 (at the amplifier 42), based on V re g (block 625).
  • the method 600 may further include determining a operating frequency shift for P con (P con freq ) for further desired voltage configuration of VAC, as illustrated in block 630. Further, PWM may then be altered and/or adjusted, based on P COn freq , as illustrated in block 635.
  • the amplifier 42 is configured to receive the PWM signal from the transmitter controller 28, as illustrated in block 540. Then, the amplifier 42 generates VAC based, at least in part, on VDC and PWM, as illustrated in block 645.
  • FIG. 14 is an exemplary schematic diagram 120 for an embodiment of the power transmitter 20.
  • the amplifier 42 is a full -bridge inverter 142 which drives the transmitter coil 21 and a series capacitor Cs.
  • the transmitter coil 21 has a self-inductance in a range of about 5 pH to about 7 pH.
  • Cs has a capacitance in a range of about 400 nF to about 450 nF.
  • an input power source 112, embodying the input power source 12 is altered to control the amount of power transferred to the power receiver 30.
  • the input voltage of the input power source 112 to the full-bridge inverter 142 may be altered within a range of about 1 volt (V) to about 19 V, to control power output. In such examples, the resolution of the voltage of the input power source 112 may be 10 millivolts (mV) or less.
  • the power signal of the input power source 112 has an initial input power voltage in a range of about 4.5 V to about 5.5 V.
  • the transmitter coil 21 may be of a wire-wound type, wound of, for example, Litz wire.
  • Litz wire refers to a type of multistrand wire or cable utilized in electronics to carry an alternating current at a frequency. Litz wire is designed to reduce skin effect and proximity effect losses in conductors at frequencies up to about 1 MHz and consists of many thin wire strands, individually insulated and twisted or woven together, following a pattern.
  • the Litz wire may be no. 17 American Wire Gauge (AWG) (1.15 mm) type 2 Litz wire, having 105 strands of no. 40 AWG (0.08 mm diameter), or equivalent wire.
  • AWG American Wire Gauge
  • the Litz wire used for the transmitter coil 21 may be a bifilar Litz wire.
  • utilizing thicker Litz wire, such as the no. 17 AWG type 2 Litz wire, utilizing bifilar Litz wire, and combinations thereof, may result in an increased Quality Factor (Q) for the transmitter coil 21 and higher Q may be directly related to increases in gap 17 height and/or Z-Distance.
  • Q Quality Factor
  • the field emanating from the transmission antenna 21 can reach greater Z-distances and/or charge volumes, in comparison to legacy transmission coils, having lower Q designs.
  • FIG. 15 an exemplary diagram 121, for portraying dimensions of the transmitter antenna 21, is illustrated.
  • the diagram 121 is a top perspective view of the transmitter antenna 21 and shows a top face 60 of the transmitter antenna 21. Note that the diagram 121 is not necessarily to scale and is for illustrative purposes.
  • the top face 60 and the transmitter antenna 21, generally, are relatively circular in shape.
  • an outer diameter d 0 is defined as an exterior diameter of the transmitter antenna 21. In some examples, the outer diameter d 0 has an outer diameter length in a range of about 40 mm to about 50 mm.
  • An inner diameter di is defined as the diameter of the void space in the interior of the transmitter antenna 21.
  • the inner diameter di may have an inner diameter length in a range of about 15 mm to about 25 mm.
  • the outer diameter d 0 and the inner diameter di may be relatively concentric, with respect to one another.
  • the transmitter coil 21 has a thickness t w , which is defined as the thickness of the wire of the coil.
  • the thickness t w may be in a range of about 2 mm to about 3 mm.
  • the transmitter coil 21 may be made of Litz wire and include at least two layers, the at least two layers stacked upon each other.
  • Utilization of one or more of an increased inner diameter di, an increased outer diameter d 0 , multiple Litz wire layers for the antenna 21, specific dimensions disclosed herein, and/or combinations thereof, may be beneficial in achieving greater gap 17 heights and/or Z- distances.
  • Other shapes and sizes of the transmitter antenna 21 may be selected based on the configuration with the selection of the shape and size of the shielding of the transmitter coil. In the event that a desired shielding in required, the transmitter antenna 21 may be shaped and sized such that the shielding surrounds the transmitter antenna 21 in accordance with an embodiment.
  • FIG. 16 a cross-sectional view of the transmitter coil 21, within the base station 11 and partially surrounded by a shielding 80 of the transmitter coil 21, is illustrated.
  • the shielding 80 comprises a ferrite core and defines a cavity 82, the cavity configured such that the ferrite core substantially surrounds all but the top face 60 of the transmitter antenna 21 when the transmitter antenna 21 is placed in the cavity.
  • “surrounds” is intended to include covers, encircles, enclose, extend around, or otherwise provide a shielding for. “Substantially surrounds,” in this context, may take into account small sections of the coil that are not covered. For example, power lines may connect the transmitter coil 21 to a power source.
  • the power lines may come in via an opening in the side wall of the shielding 80.
  • the transmitter coil 21 at or near this connection may not be covered.
  • the transmitter coil 21 may rise slightly out of the cavity and thus the top section of the side walls may not be covered.
  • substantially surrounds would include coverage of at least 50+% of that section of the transmitter antenna.
  • the shielding may provide a greater or lesser extend of coverate for one or more sides of the transmitter antenna 21.
  • the shielding 80 surrounds at least the entire bottom section of the transmitter antenna 21 and almost all of the side sections of the transmitter antenna 21.
  • the entire bottom section of the transmitter antenna 21 may include, for example, the entire surface area of the transmitter antenna 21 or all of the turns of the Litz wire of the transmitter antenna 21.
  • the magnetic ring 84 does not extend all the way up the side wall of the transmitter antenna 21.
  • the side wall may extend all the way up the side wall.
  • the shielding 80 may surround less than the entire bottom section of the transmitter antenna 21.
  • connecting wires e.g., connecting wires 292, as best illustrated in FIGS. 18A, 18B and discussed below
  • the shielding 80 is an “E-Core” type shielding, wherein the cavity 82 and structural elements of the shielding 80 are configured in an E-shape configuration, when the shielding is viewed, cross-sectionally, in a side view.
  • the E-Core configuration is further illustrated in FIG. 17, which is a perspective view of the shielding 80.
  • the shielding 80 may include a magnetic core 86, a magnetic backing 85, and a magnetic ring 84.
  • the magnetic core 86 is spaced inwardly from the outer edge of the magnetic backing 85 and projects in an upward direction from the top surface of the magnetic backing 85.
  • the magnetic core 86 and the magnetic ring 84 function to surround the transmitter coil 21 and to direct and focus magnetic fields, hence improving coupling with the receiver coil 31 of the power receiver 30.
  • the shielding 80 may also cover the inner diameter di of the transmitter coil 21. That is, as shown, the inner section of the E-Core configuration may protrude upward through the middle of the transmitter coil 21.
  • the cavity 82 is configured such that the shielding 80 covers the entire bottom section of the transmitter coil 21 and the entire side sections of the transmitter coil 21.
  • the top section of the transmitter coil 21 is not covered.
  • the bottom section of the transmitter coil 21 is the side of the transmitter coil 21 that is opposite of the direction of the primary power transfer to the receiver coil.
  • the side section of the transmitter coil 21 includes the side section of the outer most winding of the coil 21.
  • FIG. 18A is a perspective view of the transmitter coil 21 and the embodiment of the E-core shielding of FIG. 16 and 18B is an exploded perspective view of the transmitter coil 21 and the embodiment of the E-core shielding of FIG. 16.
  • the transmitter coil 21 is positioned above the shielding 80, whose combination of structural bodies, as discussed above, may include the combination of the magnetic core 86, the magnetic backing 85, and magnetic ring 84.
  • This magnetic shielding combination functions to help direct and concentrate magnetic fields created by transmitter coil 21 and can also limit side effects that would otherwise be caused by magnetic flux passing through nearby metal objects.
  • the magnetic ring defines an opening 88, in which a connecting wire 292 of the transmitter coil 21 can exit the shielding 80.
  • a “shielding material,” from which the shielding 80 is formed, is a material that captures a magnetic field.
  • An example of which is a ferrite material.
  • the material may be a sintered flexible ferrite sheet or a rigid shield and be composed of varying material compositions.
  • the ferrite material for the shielding 80 may include a Ni-Zn ferrite, a Mn-Zn ferrite, and any combinations thereof.
  • the shielding 80 is aligned with the transmitter antenna 21 such that the shielding 80 substantially surrounds the transmitter antenna 21 on all sides, aside from the top face 60.
  • the transmitter antenna 21 may be wound around the magnetic core 86 and be surrounded, on the bottom and sides, respectively, by the magnetic backing 85 and the magnetic ring 84.
  • the shielding 80 in the form of one or both of the magnetic backing and the magnetic core, may extend beyond the outer diameter d 0 of the transmitter antenna 21 by a shielding extending distance d e.
  • the shielding extending distance d e may be in a range of about 5 mm to about 6 mm.
  • the shielding 80, at the magnetic backing 85, and the transmitter coil 21 are separated from one another by a separation distance d s , as illustrated.
  • the separation distance d s may be in a range of about 0.1 mm and 0.5 mm.
  • An interface surface 70 of the base station 11 is located at a interface gap distance dint from the transmitter coil 21 and the shielding 80.
  • the interface surface 70 is a surface on the base station 11 that is configured such that when a power receiver 30 is proximate to the interface surface 70, the power receiver 30 is capable of coupling with the power transmitter 20, via near-field magnetic induction between the transmitter antenna 21 and the receiver antenna 31, for the purposes of wireless power transfer.
  • the interface gap distance dint maybe in a range of about 8 mm to about 10 mm. In such examples, the dint is greater than the standard required Z-distance for QiTM certified wireless power transmission (3-5 mm).
  • a greater dint empty space and/or an insulator can be positioned between the transmission coil 21 and the interface surface 70 to mitigate heat transfer to the interface surface 70, the power receiver 30, and/or the electronic device 14 during operation.
  • a greater dint allows for interface design structures in which objects on or attached to the electronic device 14 may remain attached to the electronic device during operation.
  • design features of the interface surface 70 may be included for interaction with such objects for aligning the power transmitter 20 and the power receiver 30 for operation.
  • the coil 221 includes one or more bifilar Litz wires 290 for the first bifilar coil layer 261 and the second bifilar coil layer 262.
  • “Bifilar,” as defined herein, refers to a wire having two closely spaced, parallel threads and/or wires.
  • Each of the first and second bifilar coil layers 261, 262 include N number of turns.
  • each of the first and second bifilar coil layers 261, 262 include about 4.5 turns and/or the bifilar coil layers 261, 262 may include a number of turns in a range of about 4 to about 5.
  • the one or more bifilar Litz wire 290 may be no. 17 AWG (1.15 mm) type 2 Litz wire, having 105 strands of no. 40 AWG (0.08 mm diameter), or equivalent wire. Utilization of multiple layers, thick Litz wire, bifilar Litz wire, and any combinations thereof, may result in the coil 21 achieving greater Q and/or may result in increases in gap 17 height and/or Z-distance between the coil 21 and a receiver coil.
  • FIG. 19A is a first block diagram 311 A for an implementation of the base station 11. As illustrated, the power transmitter 20 is contained within the base station 11.
  • the base station 11 includes one or more user feedback mechanisms 300, wherein each of the one or more user feedback mechanisms 300 are configured for aiding a user in aligning a power receiver 30 and/or its associated electronic device 14 with an active area 310 for wireless power transmission via the transmitter coil 21, wherein the power receiver 30 is configured to acquire near field inductive power from the transmitter coil 21.
  • the “active area” 310 refers to any area, volume, and/or space proximate to the interface surface 70 wherein the power transmitter 20 is capable of transmitting near field inductive power to a power receiver 30.
  • the one or more user feedback mechanisms 300 may include one or more of a visual feedback display 302, a tactile feedback mechanism 304, an audible feedback mechanism 306, a marking 308 on the interface surface 70, any other feedback mechanisms 300, and any combinations thereof.
  • the visual feedback display 302 is configured for visually indicating proper alignment of the power receiver 30 with the active area 310.
  • the visual feedback display 302 may include, but is not limited to including, a visual screen, a light, a light emitting diode (LED), a liquid crystal display (LCD) display, other visual displays, and/or any combinations thereof.
  • the tactile feedback mechanism 304 is configured for tactilely indicating if the power receiver 30 is in proper alignment with the active area 310.
  • the tactile feedback mechanism 304 may include, but is not limited to including, a haptic feedback device, a vibrating device, other tactile feedback mechanisms, and any combinations thereof.
  • the audible feedback device 306 is configured for audibly indicating if the power receiver 30 is in proper alignment with the active area 310.
  • the audio feedback mechanism 306 may include, but is not limited to including, a speaker, a sound generator, a voice generator, an audio circuit, an amplifier, other audible feedback devices, and any combinations thereof.
  • the marking 308 may be any visual and/or mechanical signifier, indicating where a user of the electronic device 14 should place his/her/their electronic device 14 on the interface surface 70, such that the power transmitter 20 will be in proper alignment with the power receiver 30 of the electronic device 14. Additionally or alternatively, the marking 308 may indicate a location of the active area 310 and/or a proper location within the active area 70. In the exemplary embodiment of the diagram 311 A, the marking 308A may be a substantially two-dimensional visual indicator marked on the interface surface 70. The substantially two-dimensional marking 308A may include, but is not limited to including, a printed indicator, a logo, a message indicating a user should place the electronic device 14 upon the marking 308A, any other substantially two-dimensional markings, and any combinations thereof.
  • the marking 308B is a substantially three-dimensional and/or mechanical marking 308B, such as, but not limited to, an indentation and/or notch in the interface surface 70.
  • the three-dimensional marking 308B may be configured to interact with mechanical feature 72 of the electronic device 14.
  • the mechanical feature 72 may be any mechanical feature of the electronic device 14 and/or another connected mechanical feature and/or device associated with the electronic device 14. Accordingly, interaction between the mechanical feature 72 and the three-dimensional marking 308B may be configured to align the power transmitter 20 with the power receiver 30 of the electronic device 14.
  • the mechanical feature 72 may be an external protrusion located relatively proximate to the power receiver 30 of electronic device 14 and the marking 308B is configured to receive the mechanical feature and, by the nature of such receipt, the power transmitter 20 and the power receiver 30 are properly aligned for near-field inductive wireless power transfer.
  • the electronic device 14 is a mobile device, such as a smart phone and/or tablet computing device
  • the mechanical feature 72 may be an externally attached grip device configured for gripping the electronic device 14 when in use.
  • the marking 308B is configured to receive the grip device mechanical feature 72 and enable proper alignment of the power transmitter 20 and the power receiver 30 for near-field inductive wireless power transfer while the removable mechanical feature 72 remains attached to the electronic device 14.
  • FIG. 20 is an exemplary, actual, simulation 900 of a magnetic field generated by a transmitter coil 21 and/or its associated power transmitter 20 and captured by an exemplary receiver coil 31 and/or its associated power receiver 30, when the transmitter coil 21 and/or power transmitter 20 are designed, manufactured, and/or implemented according to the teachings of this disclosure.
  • the receiver coil 30 was as a standard QiTM receiver coil utilized by commercial electronic devices, such as mobile phones, and the receiver coil 30 was modelled with a metal piece behind the coil, wherein the metal piece was used to simulate a battery.
  • the simulation shows that the magnetic field generated by the transmitter coil 20 was captured by the receiver coil 30 at an extended Z-distance of 9 mm.
  • QiTM wireless transmitter coils typically operate between coil-to-coil distances of about 3 mm to about 5 mm.
  • the shaped-magnetics of the transmitter coil 21 have shown to favorably reshape a magnetic field so that coil-to-coil coupling can occur at extended Z-distances, wherein the Z-distances are extended about 2 times to about 5 times the distance of standard QiTM wireless power transmitters.
  • the shaped-magnetics of the present application can extend coupling of present day a QiTM wireless power transmitter at a Z- distance ranging about 5 mm to about 25 mm.
  • any of the E-core and/or additional or alternative custom shapes for the shielding 80 may successfully be used to reshape the magnetic field for extended Z-distance coupling by a minimum of a 5% compared to standard present-day power transmitters.
  • any of the E-core and custom shapes previously discussed each in conjunction with its relation to a coil to the magnetic has also may further increase z-direction coupling by at least another 5%.
  • An embodiment comprising a structure, the structure comprising a coil and a magnetic material, wherein a gap between the coil and the magnetic material residing at the inner diameter of the coil comprises 2 mm, reshapes the magnetic field so that coupling increases by 5%.
  • the transmitter coils 21, power transmitters 20, and/or base stations 11, disclosed herein may achieve great advancements in Z-distance and/or gap 17 height, when compared to legacy, low-frequency (e.g., in a range of about 87 kHz to about 205 kHz) transmission coils, power transmitters, and/or base stations.
  • legacy, low-frequency (e.g., in a range of about 87 kHz to about 205 kHz) transmission coils, power transmitters, and/or base stations may achieve great advancements in Z-distance and/or gap 17 height, when compared to legacy, low-frequency (e.g., in a range of about 87 kHz to about 205 kHz) transmission coils, power transmitters, and/or base stations.
  • an extended Z-distance not only expands a linear distance, within which a receiver may be placed and properly coupled with a transmitter, but an extended Z-distance expands a three- dimensional charging and/or operational volume (“charge volume
  • the discussion fixes lateral spatial freedom (X and Y distances) for the receiver coil, positioned relative to the transmitter coil, as a control variable. Accordingly, for discussion purposes only, one assumes that the X and Y distances for the base stations 11, power transmitters 20, and/or transmitter coils 21 are substantially similar to the X and Y distances for the legacy system(s). However, it is certainly contemplated that the inventions disclosed herein may increase one or both of the X-distance and Y-distance.
  • the instant example uses the exemplary range of 8-10 mm for the Z-distance of the base stations 11, power transmitters 20, and/or transmitter coils 21, it is certainly contemplated and experimental results have shown that the base stations 11, power transmitters 20, and/or transmitter coils 21 are certainly capable of achieving Z-distances having a greater length than about 10 mm, such as, but not limited to, up to 15 mm and/or up to 30 mm. Accordingly, the following table is merely exemplary and for illustration that the expanded Z-distances, achieved by the base stations 11, power transmitters 20, and/or transmitter coils 21, have noticeable, useful, and beneficial impact on a charge volume associated with one or more of the base stations 11, power transmitters 20, and/or transmitter coils 21.
  • FIGS 21 A and 21B illustrate a coil array 321, which may be utilized as the transmitter antenna 21 of one or more of the power transmitters 21, the base station 11, or combinations thereof.
  • the coil array 321 may include two or more transmitter coils 322, which may be constructed in accordance with the specifications of the transmitter antenna 21, as discussed above, regarding dimensions, materials, and combinations thereof, as discussed with reference to FIGS. 14-18. While the exemplary coil array 321 of FIGS.
  • the coil array 321 is certainly not limited to having only three transmitter coils 322.
  • the transmitter coils 322 are illustrated in a substantially linear and/or rectangular layout, they certainly are not limited to being in a substantially linear and/or rectangular layout; examples of other layouts include, but are not limited to including, a substantially square layout, a substantially triangular layout, an asymmetric layout, among other contemplated layouts.
  • transmitter coils 322 are illustrated as layered and/or stacked with respect to at least one coil (e.g., first and second transmitter coils 322A, 322B are positioned or stacked above a third transmitter coil 322C); however, it is certainly contemplated that the transmitter coils 322 may have other stacking or layered arrangements or the transmitter coils 322 may be not stacked and substantially co-planar. Further, while the transmitter coils 322 are illustrated as substantially circular and/or ovular in shape, it is contemplated that the transmitter coils 322 may be of any acceptable shape for wireless power transfer including, but not limited to, substantially square in shape, substantially rectangular in shape, substantially elliptically shaped, substantially polygonal in shape, among other contemplated shapes.
  • the transmitter coils 322 A, 322B are adjacent to each other on a first plane.
  • the outer edge of the transmitter coils 322A, 322B may be touching or almost touching. Almost touching may take into account a small gap.
  • the transmitter coil 322C is in a second plane that is beneath the first plane.
  • the center of the transmitter coil 322C as shown in FIG 21 A, is positioned between the adjacent transmitter coils 322A, 322B in the second plane.
  • the first plane is different than the second plane.
  • the first plane is above the second plane in the direction of wireless power transmission. It is possible that the first and second plane may be reversed and the second plane is above the second plane in the direction of wireless power transmission.
  • the center of the transmitter coil 322C may be offset from the position between the adjacent transmitter coils 322A, 322B.
  • the center of the transmitter coil 322C may be shifted to align with the center of the transmitter coil 322B or 322A.
  • the coil array 321 includes a shielding 380.
  • the shielding 380 comprises a ferrite core and defines a cavity 382, the cavity 382 configured such that the ferrite core substantially surrounds all but the top faces of each of the transmitter coils 322, similar to the shielding 80 discussed above.
  • the shielding 380 surrounds at least the entire bottom section of the transmitter coils 322 and almost all of the side sections of the transmitter coils 322.
  • the shielding 380 While not necessarily an “E-Core” shielding, the shielding 380, which is illustrated absent the transmitter coils 322 in FIG. 22, is configured to functionally replicate the shielding 80, but for multiple coils. Thus, while not maintaining the substantially E- shaped cross section, the configuration and location of structural members of the shielding 380 are configured to substantially surround the transmitter coils 322, similarly to how the E- Core shielding 80 substantially surrounds a single transmitter antenna 21.
  • the shielding 380 may include a magnetic cores 386, a magnetic backing 385, and a magnetic wall 384.
  • the magnetic cores 386 are spaced inwardly from the outer edge of the magnetic backing 385 and projects in an upward direction from the top surface of the magnetic backing 385.
  • the magnetic cores 386 and the magnetic ring 384 function to surround the transmitter coils 322 and to direct and focus magnetic fields, hence improving coupling with the receiver coil 31 of the power receiver 30.
  • the cavity 382 is configured such that the shielding 380 covers the entire bottom section of the transmitter coils 322 (with, for example, the magnetic backing 385) and the entire side sections of the transmitter coils 322 (with, for example, the magnetic wall 384).
  • the top section of the transmitter coils 322 are not covered.
  • the bottom section of the transmitter coils 322 is the side of the transmitter coils 322 that is opposite of the direction of the primary power transfer to the receiver antenna 31 (e.g., an opposite side to a top face of the coil 322).
  • the side section of the transmitter coils 322 includes the side section of the outer most windings of the transmitter coils 322.
  • the transmitter coils 322 are positioned above the shielding 380, whose combination of structural bodies, as discussed above, may include the combination of the magnetic cores 386, the magnetic backing 385, and magnetic ring 384.
  • This magnetic shielding combination functions to help direct and concentrate magnetic fields created by transmitter coils 322 and can also limit side effects that would otherwise be caused by magnetic flux passing through nearby metal objects.
  • the magnetic ring defines one or more opening(s) 388, in which a connecting wire 389 of each transmitter coils 322 can exit the shielding 380.
  • the shielding 380 may also cover portions of the inner areas associated with the transmitter coils 322. That is, as shown, the inner section of the shielding 380 configuration may protrude upward through the middle of each of the transmitter coils 322.
  • the three magnetic cores 386 A, 386B, and 386C may have differing shapes based on the layout/configuration of the coil array 321. Accordingly, such differing shapes are each configured to fill a gap between open space between elements of each of the transmitter coils 322, such that an area on the interior of the innermost turn of a transmitter coil 322 is substantially filled with one or more of some of another transmitter coil 322 and a magnetic core 386.
  • the shape of the magnetic cores 386A-C are merely exemplary and the magnetic cores 386 can be any shape such that they substantially fill a void in the interior of a transmitter coil 322.
  • FIGS. 23-26 an exemplary housing 400A is illustrated.
  • the power transmitter 20 is housed within the housing 400A and an exemplary mobile device 414 is shown, which may be configured to receive wireless power from the power transmitter 20.
  • the power receiver 30 may be part of or operatively associated with the mobile device and the mobile device 414 may be the electronic device 14 operatively associated with the power receiver 30.
  • FIG. 23A illustrates a perspective view of the exemplary housing 400A and mobile device 414
  • FIG 23B illustrates the housing 400 A and mobile device 414 in a front view, when the mobile device 414 is positioned, relative to the housing 400A, such that the power receiver 30 can receive wireless power signals from the power transmitter 20.
  • the mobile device 414 may have a peripheral 418 associated therewith, wherein the peripheral is a physical device attachable to the mobile device 414.
  • peripherals include, but are not limited to including, cases, grip devices, specialty grip devices, wallets, among other things.
  • the power transmitter 20 may be configured to be couplable with the power transmitter 30, for the purposes of wireless power transfer, through both the housing 400 and the peripheral 418, when the mobile device 414 is placed in proper position relative to the housing 400.
  • FIGS. 24A and 24B present similar perspective and top views, respectively, to those of FIGS. 23 A and 23B, but with the housing 440 illustrated as transparent, such that certain inner components of the system 20 may be illustrated.
  • the transmitter antenna 21 and/or the coil array 321 are housed within the housing 440 and the transmitter antenna 21 is not limited to being implemented with the coil array 321 but, rather, may be any transmitter antenna 21 capable of providing wireless power to a receiver system 30 of the mobile device 414 when the mobile device is positioned, relative to the housing 400, for wireless power transfer.
  • the housing may house a fan 410 that is a part of the power transmission system 20, which may be utilized to generate an air flow used for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, and combinations thereof.
  • the fan 410 and/or any other source of airflow may be positioned to communicate with an airflow opening 430 of the housing 400.
  • the airflow opening 430 may be any cavity, cut out, and/or void within the housing 400 that allows airflow to fluidly communicate between a source for airflow (e.g., the fan 410) and one or more airflow channels of the housing, configured for providing airflow for cooling one or more of the housing 400, the mobile device 414, the power transmitter 20, the transmitter antenna 21, or power transmitter 20 components.
  • Airflow refers to, at least, any movement of air, including materials, gases, and/or particles mixed therewith, into or out of the housing 400 in a fluid manner.
  • airflow may refer to particles, fluids, and/or gaseous bodies flowing from areas of higher pressure to those where pressure is lower.
  • Airflow can be caused by mechanical inducement (e.g., operating a fan and/or an external airflow source) or airflow can be caused by natural sources (e.g., opening an opening to an external, non-vacuum atmosphere).
  • Fluid communication refers to a relationship between two or more structures, voids, and/or regions of a mechanical body, in which a fluid (e.g., a gas, a liquid, a plasma, airflow, etc.) can flow into or out of one another, when subject to some force. [00321] In FIG.
  • an exemplary airflow is illustrated as thick dotted lines with arrows illustrating the direction of the airflow. While illustrated as pushing air outward of the airflow opening 430 of the housing 400, it is certainly contemplated that instead of pushing airflow from the airflow opening 430 to the exterior of the housing 400 for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, or combinations thereof, it is certainly contemplated that the airflow may be reversed and pull airflow through the airflow opening 430, to an external source, to pull heat away from the mobile device 414, for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, and combinations thereof.
  • the housing 400 defines, at least, a forward surface 402A, the airflow opening 430, a first airflow channel 431, a second airflow channel 432 and a protrusion 408.
  • a forward surface 402A is configured for placement of the mobile device 414 for wireless power transfer from the power transmitter 20 to a power receiver 30 of the mobile device 414.
  • the mobile device 414 may rest against the forward surface 402A when positioned, relative to the housing 400, for wireless power transfer.
  • the airflow opening 430 is configured for providing the airflow, as discussed above.
  • the airflow may be provided to the airflow opening via a mechanical device, such as the fan 410.
  • the housing 400 further defines a fan cavity 411 A for housing, at least, the fan and the fan cavity 411 A is in fluid communication with, at least, the airflow opening 430, for providing at least some of the airflow to the airflow opening.
  • the first airflow channel 431 is configured to provide at least some of the airflow, via fluid communication with the airflow opening 430, proximate to one or more of the forward surface 402A and a rear surface 416 of the mobile device 414.
  • the first airflow channel 431 may include a first airflow channel cavity 435.
  • the first airflow channel cavity 435 extends, at least in part, about a first thickness 403 A, which is defined as a thickness between the forward surface 402A and a back surface 404A of the housing.
  • the first airflow channel cavity 435 allows for airflow provided to/from the first airflow channel 431 to direct heat away from one or more of the mobile device rear surface 416, the antenna 21, the mobile device 414, the housing 400, and combinations thereof.
  • the first airflow channel 431 further includes a first channel opening 437, which is in fluid communication with, at least, the airflow opening 430.
  • the first channel opening 437 is configured for providing at least some of the airflow from the airflow opening 430 to one or more of the first airflow channel cavity 435 or the mobile device rear surface 416.
  • the first channel opening 437 is defined as a first opening in a top face 409 of the protrusion 408 and, thus, the protrusion 408 and the opening thereof that defines the first channel opening 437 is in fluid communication with the airflow opening 430.
  • the first airflow channel further includes at least one vent 439 in fluid communication with the first airflow channel cavity 435.
  • the at least one vent 439 is configured to direct airflow to an exterior of the housing 400 and/or the first airflow channel 431 at one or more side of the housing 400; however, the vent(s) 439 are not limited to such placement, so long as the vent(s) 439 remain in fluid communication with the first airflow channel 431 and an environment exterior to the housing 400.
  • the at least one vent 439 opens to an environment external to the housing 400 and allows one or more of entry or exit, for an external airflow, to the housing 400.
  • the protrusion 408 extends outward, at least in part, from the forward surface 402A and includes the protrusion top face 409, wherein the protrusion top face 409 forms an angle with the forward face 402A.
  • the angle 407 is less than about 180 degrees and greater than about 0 degrees. In some examples, the angle 407 is configured such that, when the mobile device 414 is placed adjacent to the forward surface 402A, a mobile device front surface 417 is in a proper viewing angle with respect to a user of the mobile device 414.
  • the second airflow channel 432 is configured to provide at least some of the airflow, via fluid communication with the airflow opening 430, proximate to one or more of the protrusion top face 409, the mobile device front surface 417, or any combinations thereof.
  • the second airflow channel 432 includes a second channel opening 438, the second channel opening 438 being in fluid communication with (e.g., not blocking or restricting), at least, the airflow opening 430.
  • the second channel opening 438 is configured to provide at least some of the airflow from the airflow opening 430 to the mobile device front surface 417.
  • the second channel opening 437 is defined as an opening in the protrusion top face 409 that is in fluid communication with, at least, the airflow opening 430.
  • the airflow opening 430 may be angled inward towards the forward surface 402A, with respect to another surface of the protrusion top face 409. In such examples, the angled airflow opening 430 is configured to provide the airflow in a directed manner at the mobile device front surface 417.
  • the mobile device 414 and/or the associated peripheral 418 may include a protruding mechanical body 419, extending outward in a direction of the rear surface 416 of the mobile device 414.
  • Such an associated peripheral may be one or more of a portion of a case for the mobile device 414, a grip device, a detachable device, an attachment, a case for other peripherals, among other things.
  • the first airflow channel cavity 435 may be configured to mechanically receiver the mechanical body 419 and such receipt of the mechanical body 419, at least in part, aligns the transmitter antenna 21 of the power transmitter 20 with the receiver antenna 31 of the power receiver 30, for the purposes of wireless power transfer.
  • the housing 400A includes and/or defines a housing stand structure 440 and a housing base structure 450.
  • the housing stand structure includes the forward surface 402A and the back surface 404A and extends, at least in part, about the first thickness 403 A.
  • the housing base structure includes a top surface 452 and a bottom surface 454, wherein the top surface 452 and the bottom surface 454 are separated by a housing base structure thickness 456.
  • the housing stand structure 440 and the housing base structure 450 are respectively positioned such that a stand angle 458 is formed, at least in part by a portion of back surface 404A and a portion of the top surface 452.
  • the angle 458 is greater than about 0 degrees and less than about 180 degrees. In some examples, the angle 458 is configured such that, when the mobile device 414 is placed adjacent to the forward surface 402A, the mobile device front surface 416 is in a proper viewing angle, with respect to a user of the mobile device. While not illustrated in the exemplary drawings, it is certainly contemplated that any electrical components of the power transmitter 20 may additionally be housed within the housing 400, such as, but not limited to, components of the control and communications system 26, components of the power conditioning system 40, components of the sensing system 50, and/or any other components of or associated with the power transmitter 20. [00329] Turning now to FIGS. 27A and 27B, another exemplary housing 400B is illustrated.
  • the power transmitter 20 is housed within the housing 400B and the mobile device 414 is shown, which may be configured to receive wireless power from the power transmitter 20.
  • the power receiver 30 may be part of or operatively associated with the mobile device and the mobile device 414 may be the electronic device 14 operatively associated with the power receiver 30.
  • FIG. 27A illustrates a perspective view of the housing 400B and the mobile device 414, while FIG. 27B illustrates the housing 400B and mobile device 414 in a top view, when the mobile device 414 is positioned, relative to the housing 400B, such that the power receiver 30 can receive wireless power signals from the power transmitter 20.
  • the mobile device 414 may have the peripheral 418 associated therewith.
  • One or more of the mobile device 414, the peripheral 418, or components thereof may be similar and/or equivalent elements that were included and described with reference to the housing 400A of FIGS. 23-26.
  • the exemplary housing 400B includes many similar and/or equivalent elements that were included and described with reference to the housing of 400 A of FIGS. 23-26.
  • Such elements may include, but may not be limited to including, the fan 410, the airflow opening 430, the first airflow channel 431, the first airflow channel cavity 435, the first airflow channel opening 437, the one or more vent 439, the protrusion 408, the protrusion top face 409, the second airflow channel 432, and the second airflow channel opening 438.
  • FIGS. 27-28 include the same reference numbers as their associated analogues of FIGS. 20-23 and share the written description, above.
  • the housing 400B does not include separate base and stand structures, but rather is primarily defined as a pad or flat-lying body, save for the protrusion 408, upon which the mobile device 414 may rest when the system 10 performs wireless power transfer.
  • the housing 400B defines a top surface 402B, upon which the mobile device is placed for wireless power transfer and a bottom surface 404B.
  • a housing thickness 403B which is defined as a thickness between the top surface 402B and the bottom surface 404B.
  • the first airflow channel cavity 435 extends, at least in part, along the housing thickness 403B.
  • the housing 400B may include a fan cavity 41 IB, when the fan 410 is included in the power transmitter 20.
  • the fan cavity 41 IB is in fluid communication with the airflow opening 430 and provides airflow to and/or from the airflow opening 430 and/or downstream/upstream fluidly communicable elements of the housing 400, the power transmitter 20, and/or the mobile device 414.
  • the fan cavity 41 IB may be replaced with an external airflow source input cavity 411C.
  • the external airflow source input cavity 411C is in fluid communication with the airflow opening 430 and provides fluid communication between the airflow opening 430 and an external airflow source 460.
  • the external airflow source input cavity 411C may enable fluid communication between the airflow opening 430 and the external airflow source 460, wherein the external airflow source provides at least some of the airflow to the airflow opening 430.
  • the external airflow source 460 may be any external airflow source, such as, but not limited to, an external fan, an external ventilation system, an external air conditioning unit, an external suction device, and/or any other external device and/or source configured for providing airflow to and/or from the airflow opening 430.
  • the input power source 12 to the power transmitter 20B is a vehicular power source (e.g., the examples of FIGS. 1 A, 2B, 5B, 8-10)
  • the external airflow source 460 may be an airflow source of or operatively associated with the vehicle 15.
  • the housings 400 disclosed herein may provide for greater cooling of the mobile device 414 and/or the power transmitter 20 during wireless power transfer, when compared to legacy thermal solutions for wireless power transfer and/or legacy power transmitter designs.
  • Such enhanced cooling may be enabled by the inclusion of multiple airflow channels, such as the first airflow channel 431 and the second airflow channel 432, which are configured for providing airflow to multiple faces of a mobile device 414, simultaneously.
  • Such enhanced cooling of one or both of the power transmitter 20 or the mobile device 414 may enable greater heat mitigation that allows the power transmitter 20 to safely provide greater power levels to a power receiver 30, in comparison to legacy wireless power transmitters.
  • the housings 400 may provide proper wireless power transmission, without thermal issues, in environments with elevated ambient temperatures, such as when the housing 400 is in direct sun light, when the housing 400 is located within a vehicle, when the housing 400 is proximate to machinery and/or electronics that cause elevated heat, among other environments. Additionally or alternatively, such enhanced cooling of one or both of the power transmitter 20 or the mobile device 414 and/or the extended power levels and/or profiled enabled by said cooling may allow for greater Z-distances and/or separation gaps between the power transmitter 20 and the power receiver 30, in comparison to legacy wireless power transfer systems.
  • FIGS. 29A-E illustrate a surface mountable power transmitter 720, which may include similar and/or equivalent elements to the power transmitter 20 including, but not limited to the transmitter antenna 21, the control and communications unit 26, the power conditioning system 40, the sensing system 50, any components of the aforementioned elements, or any combinations thereof.
  • the surface mountable power transmitter 720 further includes a surface mountable housing 700.
  • the surface mountable housing 400 is substantially connected to, at least, the transmitter antenna 21.
  • the surface mountable housing 700 is configured for use to mount, at least, the transmitter antenna 21 to an underside of a structural surface, such that the transmitter antenna 21 is configured to couple with a receiver antenna 31 of the power receiver 30 when the receiver antenna is proximate to a top side of the structural surface.
  • a structural surface is any surface made out of a dielectric material wherein a user of the electronic device 14 would desire to provide wireless power transfer to the electronic device 14, and said surface is within an environment where wireless power transfer can occur (e.g., an environment wherein electricity is available to provide to the power transmitter 720).
  • Examples of structural surfaces include, but are not limited to including, a desk, a desk top, a counter, a counter top, a bar, a table, a table top, an end table, an end table top, furniture, outdoor furniture, a chair, a chair arm, an arm rest, a surface of lounge furniture, a surface of interior seating furniture, home theater furniture, stands, a work space surface, a conference room table surface, a wall, a protrusion from a wall, a public surface, a surface of a vehicle, a bar, a bar top, a ledge, a shelf, a book shelf, an entertainment center, a cabinet surface, among other contemplated surfaces and/or portions of surfaces.
  • Such a surface could be made out of, for example, a wood, polymer, concrete, laminated composite, leather, glass, ceramic, foam, among other dielectric materials used for the surface.
  • the surface mountable housing 700 may include a heat sink 430, which is configured to rest, at least in part, below the transmitter antenna (as best illustrated in the exploded view of the housing 700 in FIG. 29C), when the power transmitter 720 is connected to the structural surface 800.
  • the heat sink 730 is configured to direct heat generated by the power transmitter 720 away from, at least, the structural surface 800.
  • the heat sink 730 may include one or more cut outs, 722, the one or more cutouts configured to increase an external surface area of the heat sink, thus allowing heat to spread over the increased surface area, directing and/or dissipating heat away from the power transmitter 20 components and/or the associated surface. Inclusion of the cutouts 722 results in higher rates of heat dissipation into the environment and, as a result, lower temperatures on the heat sink surfaces and inside the module.
  • the heat sink 730 may be CNC machined or formed using a die casting, forging, stamping or another manufacturing process suitable for low cost mass production.
  • the heat sink 730 may be formed of a metal that has a relatively high thermal conductivity.
  • the heat sink 720 at least in part, can be made out of any metal or metal alloy suitable for die casting and having a high thermal conductivity, such as, but not limited to, an aluminum or an aluminum alloy.
  • one or more surfaces of the heat sink 430 are formed with drafts on an exterior surface of the heat sink 730.
  • the heat sink can be finished with different coatings, chemically treated, and/or painted. Increased emissivity increases heat dissipated by the heat sink, reducing temperature rise of the components inside the module 700.
  • an aluminum, die-casted heat sink 730 is anodized to produce a uniform black finish, which increases emissivity and, thus, improves heat dissipation by the heat sink 730.
  • the power transmitter 720 includes a transmitter electronics circuit board 735.
  • the circuit board 735 may be any circuit board, upon which components of one or more of the control and communications system 26, the power conditioning system 40, and/or the sensing system 50, among other things, may be connected, mounted, operable with, and/or otherwise operatively associated with the circuit board 430.
  • the heat sink 730 is configured to conduct and dissipate heat, generated by one or more of the electronics circuit board 735 and/or any components located on the electronic circuit board 735, away from the structural surface 800.
  • the circuit board 735 may be operatively associated with an external power connector 411, which may be configured to interface with the input power source 11 to provide input power to the power transmitter 720.
  • the external power connector 711 may be any input and/or connector that provides an electrical connection to the input power source, such as, but not limited to, a barrel connector, a Universal Serial Bus (USB) connector, a USB-C connector, a mini -USB connector, Lightning connector, a Thunderbolt connector, a proprietary electrical connector, an AC adaptor connector, among other contemplated connectors.
  • a barrel connector such as, but not limited to, a Universal Serial Bus (USB) connector, a USB-C connector, a mini -USB connector, Lightning connector, a Thunderbolt connector, a proprietary electrical connector, an AC adaptor connector, among other contemplated connectors.
  • a thermal interface material (TIM) 732 is disposed between the electronics circuit board 735 and the heat sink 730.
  • the TIM 432 is placed proximate to one or more heat producing components on and/or operatively associated with the electronics circuit board 735 and/or the power transmitter 720.
  • the thermal interface material 732 is configured to displace air and provide a low thermal impedance path between the electronics circuit board 735 components and the heat sink 730.
  • thermal interface materials include, but are not limited to including a thermal paste, a thermal adhesive, a thermal gap filter, a thermally conductive pad, a thermal tape, a phase-change material, a metal thermal interface, or combinations thereof.
  • materials used in the thermal interface materials may include, but are not limited to including materials such as, but not limited to, epoxies, silicones, urethanes, and acrylates, solvent-based systems, hot-melt adhesives, and pressure-sensitive adhesive tapes, Aluminum oxide, boron nitride, zinc oxide, aluminum nitride, Galinstan, gallium, epoxy resins, cyanoacrylate, metal oxides, silica, ceramic microspheres, paraffin wax, copper, among other materials used in thermal interface materials.
  • materials such as, but not limited to, epoxies, silicones, urethanes, and acrylates, solvent-based systems, hot-melt adhesives, and pressure-sensitive adhesive tapes, Aluminum oxide, boron nitride, zinc oxide, aluminum nitride, Galinstan, gallium, epoxy resins, cyanoacrylate, metal oxides, silica, ceramic microspheres, paraffin wax, copper, among other materials used in thermal interface materials.
  • the housing 700 further includes an antenna housing 710, the antenna housing substantially surrounding a side wall (e.g., the magnetic ring 84 of the shielding 80 of the antenna 21) of the antenna 21.
  • the antenna housing 710 is connected to the heat sink 720, via, for example, a connection system 755 of the housing 700, as discussed below.
  • the antenna housing 710 may be utilized to fix the antenna location within the module, prevent any foreign objects made out of metal to come in vicinity of the antenna, once the module is installed, hold together components of the housing 700 and/or for the purposes of packaging and/or obscuring components of the power transmitter 720 in a finished product of the power transmitter 420.
  • portions of the antenna housing 710 may define a portion of the connection system 755, as is discussed in more detail below.
  • the antenna housing 710 is formed of an injection moldable polymer and/or any other substantially dielectric materials.
  • the power transmitter 720 is illustrated in relation to a first structural surface 800A, to which the power transmitter 720 may be attached and function to transmit wireless power to the power receiver 30 of the electronic device, via coupling between the transmitter antenna 21 and the receiver antenna 31 of the power receiver 30.
  • the structural surface 800A has a top side 804A and an underside 802A; as discussed above, the power transmitter 720 is configured to be mounted to the underside 802 A.
  • the connection system 755 is included to connect the power transmitter 700 to the underside 802 of the structural surface 800.
  • connection system 755 may include one or more connection holes 752; the connection holes 752 configured to accept one ore more fasteners 754 which may mate with the connection hole 752 and then enter the structural surface 800 to secure the power transmitter 720 to the underside 802. While illustrated as a combination of a holes 752 and fasteners 754, the connection system 755 is certainly not limited to a hole/fastener combination and may be and/or include an adhesive, a removable connector, a connective material connection (e.g. Velcro), a magnetic connection, a sealant connection, a fused connection, among other systems, methods, and apparatus for connecting the power transmitter 720 to the structural surface 800.
  • a connective material connection e.g. Velcro
  • FIGS 31 A and 3 IB illustrate the power transmitter 700 mounted to a second structural surface 800B, the structural surface 800B including a hole 810A.
  • the hole defines a hole ceiling 814A and a hole opening 812A.
  • a hole depth 815A is defined as a distance between the hole ceiling 814A and the hole opening 812A.
  • the hole 810A is configured to receive the power transmitter 720, when being mounted on underside surface 802A proximate to the hole ceiling 814A.
  • the hole thickness 815A is less than the surface thickness 805B and the housing 700 is configured to mount to the hole ceiling 814A.
  • FIG. 32 illustrates a third structural surface 800C, having a top side 804C and a underside 802C, defining a surface thickness 805C.
  • the structural surface 800C defines a hole 81 OB, which has a hole ceiling 814B and a hole opening 812B.
  • a thickness between the hole ceiling 814B and the hole opening 812B defines a hole thickness 815B.
  • the hole 810B has a significantly larger thickness 815B, such that the hole thickness 815B is greater than a thickness of the power transmitter 720.
  • the hole 810A is configured to receive the power transmitter 720, when being mounted on underside surface 802C proximate to the hole ceiling 814B.
  • the hole thickness 815B is less than the surface thickness 805B and the housing 700 is configured to mount to the hole ceiling 814B.
  • the surface thickness 805C is in a range of about 20 mm to about 60 mm and the hole thickness 815B is in a range of about 5 mm to about 50 mm.
  • connection system 765 configured for connecting the housing 700 to the underside of the surface 804C.
  • the connection system 465 includes a bracket 760 for mounting to the underside of the surface 804, the bracket 460 defining one or more holes 762, within which fasteners 754 may be inserted to connect the bracket 760 and, by association, the housing 700 to the underside of the surface 804C.
  • the connection system 765 may include an external thermal connector 766, which connects to the bracket 760 to the heat sink 730 via, for example, a center hole 738 of the heat sink 730.
  • the thermal connector 766 may be comprised, at least in part, of an electrically conductive material, similar to the heat sink 730, and be configured to further draw heat away and/or dissipate heat from the heat sink 730, the power transmitter 20, and/or the surface 804.
  • FIG. 33 is an example block diagram for a method 1200 for designing the power transmitter 20.
  • the method 1200 may include designing one or both of the housing 400 and/or cooling structures associated therewith.
  • the method 1200 may further include designing and/or selecting the transmitter coil 21 for the power transmitter 20, as illustrated in block 1210.
  • the method 1200 includes tuning the power transmitter 20, as illustrated in block 1220. Such tuning may be utilized for, but not limited to being utilized for, impedance matching.
  • the method 1200 further includes designing the power conditioning system 40 for the power transmitter 20, as illustrated in block 1230.
  • the power conditioning system 40 may be designed with any of a plurality of power output characteristic considerations, such as, but not limited to, power transfer efficiency, maximizing a transmission gap (e.g., the gap 17), increasing output voltage to a receiver, mitigating power losses during wireless power transfer, increasing power output without degrading fidelity for data communications, optimizing power output for multiple coils receiving power from a common circuit and/or amplifier, among other contemplated power output characteristic considerations.
  • the method 1200 may determine and optimize a connection, and any associated connection components, to configure and/or optimize a connection between the input power source 12 and the power conditioning system 40 of block 1230. Such determining, configuring, and/or optimizing may include designing and/or selecting the vehicular input power regulator 90, selecting and implementing protection mechanisms and/or apparatus, selecting and/or implementing voltage protection mechanisms, among other things.
  • the method 1200 further includes designing and/or programing the control and communications system 26 of the power transmitter 20, as illustrated in block 1250.
  • Components of such designs include, but are not limited to including, the sensing system 50, the driver 41, the transmission controller 28, the memory 27, the communications system 29, the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the electrical sensor(s) 57, the other sensor(s) 58, in whole or in part and, optionally, including any components thereof.
  • FIG. 34 is an example block diagram for a method 2200 for manufacturing the power transmitter 20.
  • the method 2200 may include forming, manufacturing, or otherwise constructing one or both of the housing 400 and/or cooling structures associated therewith.
  • the method 2200 may further include manufacturing and/or selecting the transmitter coil 21 for the power transmitter 20, as illustrated in block 2210.
  • the method 2200 includes tuning the power transmitter 20, as illustrated in block 2220. Such tuning may be utilized for, but not limited to being utilized for, impedance matching.
  • the method 2200 further includes manufacturing the power conditioning system 40 for the power transmitter 20, as illustrated in block 2230.
  • the power conditioning system 40 may be designed and/or manufactured with any of a plurality of power output characteristic considerations, such as, but not limited to, power transfer efficiency, maximizing a transmission gap (e.g., the gap 17), increasing output voltage to a receiver, mitigating power losses during wireless power transfer, increasing power output without degrading fidelity for data communications, optimizing power output for multiple coils receiving power from a common circuit and/or amplifier, among other contemplated power output characteristic considerations.
  • the method 2200 may include connecting and/or optimizing a connection, and any associated connection components, to configure and/or optimize a connection between the input power source 12 and the power conditioning system 40 of block 2230.
  • determining, manufacturing, configuring, and/or optimizing may include designing and/or selecting the vehicular input power regulator 90, selecting and implementing protection mechanisms and/or apparatus, selecting and/or implementing voltage protection mechanisms, among other things.
  • the method 2200 further includes designing and/or programing the control and communications system 26 of the power transmitter 20, as illustrated in block 2250.
  • Components of such designs include, but are not limited to including, the sensing system 50, the driver 41, the transmission controller 28, the memory 27, the communications system 29, the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the electrical sensor(s) 57, the other sensor(s) 58, in whole or in part and, optionally, including any components thereof.
  • the phrase “at least one of’ preceding a series of items, with the term “and” or “or” to separate any of the items, modifies the list as a whole, rather than each member of the list (i.e., each item).
  • the phrase “at least one of’ does not require selection of at least one of each item listed; rather, the phrase allows a meaning that includes at least one of any one of the items, and/or at least one of any combination of the items, and/or at least one of each of the items.
  • phrases “at least one of A, B, and C” or “at least one of A, B, or C” each refer to only A, only B, or only C; any combination of A, B, and C; and/or at least one of each of A, B, and C.
  • a processor configured to monitor and control an operation or a component may also mean the processor being programmed to monitor and control the operation or the processor being operable to monitor and control the operation.
  • a processor configured to execute code can be construed as a processor programmed to execute code or operable to execute code.
  • a phrase such as “an aspect” does not imply that such aspect is essential to the subject technology or that such aspect applies to all configurations of the subject technology.
  • a disclosure relating to an aspect may apply to all configurations, or one or more configurations.
  • An aspect may provide one or more examples of the disclosure.
  • a phrase such as an “aspect” may refer to one or more aspects and vice versa.
  • a phrase such as an “embodiment” does not imply that such embodiment is essential to the subject technology or that such embodiment applies to all configurations of the subject technology.
  • a disclosure relating to an embodiment may apply to all embodiments, or one or more embodiments.
  • An embodiment may provide one or more examples of the disclosure.
  • a phrase such an “embodiment” may refer to one or more embodiments and vice versa.
  • a phrase such as a “configuration” does not imply that such configuration is essential to the subject technology or that such configuration applies to all configurations of the subject technology.
  • a disclosure relating to a configuration may apply to all configurations, or one or more configurations.
  • a configuration may provide one or more examples of the disclosure.
  • a phrase such as a “configuration” may refer to one or more configurations and vice versa.

Abstract

A power transmitter is configured for transmission of wireless power, to a wireless receiver, at extended ranges, including a separation gap greater than 8 millimeters (mm). The power transmitter includes a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face. The power transmitter further includes a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.

Description

WIRELESS POWER TRANSMITTERS AND ASSOCIATED BASE STATIONS FOR TRANSMITTING POWER AT EXTENDED SEPARATION DISTANCES
CROSS-REFERENCE TO RELATED APPLICATIONS [0001] This application claims priority to (i) U.S. Non-Provisional App. No. 16/863,706, filed April 30, 2020, and entitled “WIRELESS POWER TRANSMITTERS AND ASSOCIATED BASE STATIONS FOR TRANSMITTING POWER AT EXTENDED SEPARATION DISTANCES,” (ii) U.S. Non-Provisional App. No. 16/863,691, filed April 30, 2020, and entitled “SURFACE MOUNTABLE WIRELESS POWER TRANSMITTER FOR TRANSMISSION AT EXTENDED RANGE,” (iii) U.S. Non-Provisional App. No. 16/863,703, filed April 30, 2020, and entitled “WIRELESS POWER TRANSMITTERS WITH FRONT END VEHICULAR INPUT POWER PROTECTION,” (iv) U.S. Non- Provisional App. No. 16/863,698, filed April 30, 2020, and entitled “PRECISION POWER LEVEL CONTROL FOR EXTENDED RANGE WIRELESS POWER TRANSFER,” (v) U.S. Non-Provisional App. No. 16/863,682, filed April 30, 2020, and entitled “OPERATING FREQUENCY BASED POWER LEVEL ALTERING IN EXTENDED RANGE WIRELSS POWER TRANSMITTERS,” and (vi) U.S. Non-Provisional App. No. 16/863,710, filed April 30, 2020, and entitled “MULTI-CHANNEL COOLING FOR EXTENDED DISTANCE WIRELESS POWER TRANSMITTER,” each of which is incorporated herein by reference in its entirety.
TECHNICAL FIELD
[0001] The present disclosure generally relates to systems and methods for wireless transfer of electrical power and, more particularly, to wireless power transmitters for transmitting power at extended separation distances.
BACKGROUND
[0002] Wireless power transfer systems are used in a variety of applications for the wireless transfer of electrical energy, electrical power signals, electromagnetic energy, electrical data signals, among other known wirelessly transmittable signals. Such systems often use inductive wireless power transfer, which occurs when magnetic fields created by a transmitting element induce an electric field, and hence, an electric current, in a receiving element. These transmission and receiver elements will often take the form of coiled wires and/or antennas. [0003] Because some wireless power transfer systems are operable and/or most efficient in the near-field, some transmitters may be limited to having operability only at restrictively small gaps between the transmitter coil and the receiver coil. To that end, typical wireless power transmitters under the Wireless Power Consortium’s Qi™ standard may be limited to operability at a maximum coil-to-coil separation gap (which may be referred to herein as a “separation gap” or “gap”) of about 3 millimeters (mm) to about 5 mm. The separation gap is sometimes known as the Z-height or Z-distance and is generally measured as the distance between the transmitter coil and receiver coil.
[0004] As the adoption of wireless power grows, commercial applications are requiring a power transmitter capable of transferring power to a power receiver with a gap greater than 3- 5 mm. By way of example, cabinets and/or counter tops may be more than 3-5mm thick and as a result, prevent wireless charging through such furniture. Accordingly, if a wireless power transmitter is only capable of transmitting through 3-5mm of materials, such a charger may need to, expensively, be built into such infrastructure, like cabinets, countertops, and/or tables. Such need for built in chargers limits modularity, in terms of placement of the power transmitter relative to the infrastructure. As another example, modern mobile devices may be used with cases, grip devices, and/or wallets, among other things, that can obstruct wireless power transmission to the mobile device and/or create a separation gap that disallows operability of wireless power transmission. Legacy wireless power transmitter designs further may be incapable of desired commercial applications (e.g., through object chargers, under table chargers, infrastructure chargers, ruggedized computing device charging, among other things), due to the limitations in separation gap inherent to legacy, near-field wireless power transfer systems. Increasing the separation gap, while keeping satisfactory performance (e.g., thermal performance, transfer/charging speed, efficiency, etc.) will increase the number of commercial applications that can utilize wireless power.
[0005] Further, current standards specifications, regulations, and/or end-user product specifications may require particular power levels, for transmission to a power receiver. To that end, the power receiver may have particular power requests and/or particular limits for efficiency, safety, and/or any other power control reasons. SUMMARY
[0006] Accordingly, new wireless power transmitters that are capable of attachment underneath a surface and can properly couple with a power receiver atop said surface are desired. To that end, wireless power transmitters and/or associated base stations are desired that are capable of delivering wireless power signals to a power receiver at a separation gap larger than the about 3 mm to about 5 mm separation gaps of legacy transmitters, so that such wireless power transmitters can be attached to the bottom of a surface and transmit to a receiver atop said surface. Such wireless power transmitters are desired for use in vehicles. Additionally, wireless power transmitters at such larger gap distances may require and/or may be enhanced via more precision and/or granular power controls. Further, to mitigate any heating issues that may occur due to an increased power and/or an associated increase in separation gap, new systems, methods, and apparatus for mitigating such potential heating issues are desired.
[0007] In an embodiment, the overall structure of the transmitter is configured in a way that allows the transmitter to transfer power at an operating frequency of about 87 kilohertz (kHz) to about 205 kHz and achieve the same and/or enhanced relative characteristics (e.g., rate of power transfer, speed of power transfer, power level, power level management, among other things) of power transfer as legacy transmitters that operated in that frequency range.
As a result, the separation gap may be increased from about 3-5mm to around 15mm or greater using the overall structure of the transmitter. In an embodiment, a transmitter may be configured with a ferrite core that substantially surrounds the transmitter antenna on three sides. The only place that the ferrite core does not surround the transmitter antenna is on the top (e.g., in the direction of power transfer) and where the power lines connect to the transmitter antenna. This overall structure of the transmitter allows for the combination of power transfer characteristics, power level characteristics, self-resonant frequency restraints, design requirements, adherence to standards bodies’ required characteristics, bill of materials (BOM) and/or form factor constraints, among other things, that allow for power transfer over larger separation gaps.
[0008] Transmission of one or more of electrical energy, electrical power, electromagnetic energy or electronic data signals from one of such coiled antennas to another, generally, operates at an operating frequency and/or an operating frequency range. The operating frequency may be selected for a variety of reasons, such as, but not limited to, power transfer characteristics, power level characteristics, self-resonant frequency restraints, design requirements, adherence to standards bodies’ required characteristics, bill of materials (BOM) and/or form factor constraints, among other things. It is to be noted that, “self- resonating frequency,” as known to those having skill in the art, generally refers to the resonant frequency of an inductor due to the parasitic characteristics of the component.
[0009] A vehicle may be a machine that transports people and/or cargo. Exemplary vehicles include automobiles such as cars, trucks, buses, and other land vehicles. Other examples of vehicles may include airplanes, boats, golf carts, small industrial vehicles, farming equipment, construction equipment, nautical vehicles, mixed use vehicles, recreational vehicles, sport vehicles, public transportation vehicles, and trains. Vehicular power sources introduce challenges for designing wireless power transmitters, because the input power is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things, which may cause damage and/or disfunction in one or both of a power transmitter and the power source system, itself. To that end, a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry. Additionally or alternatively, electrical noise produced by a vehicular power source, even that of relatively low energy, can cause significant interruption to digital communications.
[0010] In an embodiment, a vehicle includes a vehicular power input regulator that is configured to receive input power and filter the input power to a filtered input power. The vehicular power input regulator includes an input protection circuit, and a DC/DC voltage converter. An inverter circuit receives the filtered input power and converting the filtered input power to a power signal. This power signal is provided to a high Z wireless charger. As such, because of the configuration of the vehicular power input regulator, the vehicular power sources are protected against power surges, transients, and electrostatic discharge.
[0011] In some examples, power profiles, such as those defined by the Qi Standard, may require more sophisticated and/or precision controls, compared to legacy wireless power transmitters. Such examples may involve higher power input to the wireless power transmitter and, thus, more expensive and/or complicated voltage regulation mechanisms may be required in the power conditioning system and/or amplifier design. To that end, utilizing the systems and methods disclosed herein, such voltage regulation mechanisms may be removed from the wireless power transmitter and the wireless power transmitter may utilize control schemes, disclosed herein, to control the input power to the wireless power transmitter, via communications with an external input power source. By utilizing communications with the external power source, bill of materials (BOM) may be decreased, for such power transmitters, resulting in lower cost power transmitters. Additionally or alternatively, by utilizing such control schemes, the power transmitters utilizing said schemes, disclosed herein, may have greater compatibility and/or performance when utilized with off-the-shelf power supplies (e.g., Universal Serial Bus (USB) power supplies,
Lightning power supplies, Qualcomm Quick Charge devices, USB-C power supplies, USB- PD (USB Power Delivery) power supplies, Mini -USB power supplies, proprietary power supplies, input/outputs on electronic devices (e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power supply, a battery, a generator, among other things).
[0012] In some examples disclosed herein, data either determined by a method or process or stored in a database, may be utilized to relate power output levels, via an operating point, with specific operating frequencies, within an operating frequency range of operation for the power transmitter. To that end, due to the differing power characteristics at different operating points, granular control of power, voltage, and/or current levels may be achieved by dynamically altering the operating frequency, within the operating frequency range, to achieve a desired power level for output to the power receiver.
[0013] Further, as increasing the separation gap may be associated with a rise in power levels, proper thermal mitigation should be utilized in new, higher separation gap wireless power transmitters. The systems and apparatus described herein allow for such thermal mitigation, so that the large separation gap is achieved without doing damage to one or more of the power transmitter, the device to be powered and/or power receiver associated with said device, the surface to which the power transmitter is mounted, or combinations thereof.
[0014] Additionally, the utilization of the power transmitters and/or transmitter antennas, disclosed herein, as part of a surface mountable power transmitter allow for greater modularity in transmitter placement, relative to the surface upon which the power transmitter is mounted. Further, in some examples, the extended separation distance achieved by the power transmitters, disclosed herein, may allow for usage of surface mountable power transmitters on thicker surface thicknesses and/or thicker materials for the surfaces, when compared with legacy surface-associated power transmitters.
[0015] Additionally, in some embodiments of the present disclosure, a housing is provided that includes two or more airflow openings and/or channels configured for providing airflow to an electronic device when it is being powered and/or charged by the wireless power transmitters disclosed herein. By utilizing the housings disclosed herein, multiple cooling and/or airflow channels may be utilized in mitigating any thermal issues associated with wireless power transmission via the wireless power transmitter. Such thermal issues may include, but are not limited to including, heating of the wireless power transmitter, heating of components of the wireless power transmitter, heating of a housing operatively associated with the wireless power transmitter, heating of a mobile device caused from wireless power transmission, heating of a mobile device caused by the mobile device, heating of an enclosure of a mobile device, heating of materials proximate to the systems, or any combinations thereof. Such housings may allow for higher power wireless transmission, which may allow for faster wireless charging of a mobile device, when compared to legacy devices, while also maintaining a greater separation gap and/or Z-distance, in comparison to legacy wireless power transmitters.
[0016] In accordance with one aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face. The power transmitter further includes a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0017] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0018] In a refinement, a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil [0019] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[0020] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
[0021] In a refinement, wherein the coil has a thickness in a range of about 2 mm to about 3 mm.
[0022] In a refinement, the at least one layer comprises a first layer and a second layer.
[0023] In a further refinement, the Litz wire is a bifilar Litz wire.
[0024] In a further refinement, the first layer includes a first number of turns in a range of about 4 turns to about 5 turns, and wherein the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
[0025] In another refinement, the Litz wire has a diameter in a range of about 1 mm to about 1.5 mm and includes a plurality of strands, the plurality of strands including a number of strands in a range of about 80 strands to about 120 strands.
[0026] In a further refinement, each of the plurality of strands has a diameter in a range of about 0.05 mm to about 0.1 mm.
[0027] In accordance with another aspect of the disclosure, a base station for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The base station includes an interface surface, a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal. The base station further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face. The base station further includes a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0028] In a refinement, the interface surface is separated from the coil by an interface gap distance, the interface gap distance in a range of about 8 millimeters (mm) to about 10 mm. [0029] In a refinement, the interface surface extends across substantially all of the top face of the coil.
[0030] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration. [0031] In a refinement, the base station further includes at least one user feedback mechanism configured for aiding a user in aligning a power receiver with an active area for wireless power transmission via the coil, the power receiver configured to acquire near field inductive power from the coil.
[0032] In a further refinement, the at least one user feedback mechanism includes a marking on the interface surface to indicate the location of the active area.
[0033] In another further refinement, the at least one user feedback mechanism includes a visual feedback display, this is configured to indicate proper alignment of the power receiver with the active area.
[0034] In another further refinement, the at least one user feedback mechanism includes one or more of an audible feedback mechanism, a tactile feedback mechanism that is configured to indicated if the power receiver is in proper alignment with the active area or a tactile feedback mechanism that is configured to indicate if the power receiver is in proper alignment with the active area.
[0035] In accordance with yet another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit and an inverter circuit configured to receive input power and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including a first layer and a second layer, each of the first layer and the second layer including a respective number of turns in a range of about 4 turns to about 5 turns. The coil defines at least a top face and has an outer diameter length in an outer diameter length range of about 40 mm to about 50 mm, an inner diameter length in an inner diameter length range of about 15 mm to about 25 mm, and a thickness in a thickness range of about 2 mm to about 3 mm. The power transmitter further includes an E-Core type shielding comprising a ferrite core and defining a cavity, the cavity configured with an E-Core configuration such that the ferrite core substantially surrounds all but the top face of the coil.
[0036] In accordance with one aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter. The power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal. The power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0037] In a refinement, the input protection circuit includes an overvoltage protection circuit.
[0038] In a refinement, the input protection circuit includes an undervoltage protection circuit.
[0039] In a refinement, the input protection circuit includes an electrostatic discharge protection circuit.
[0040] In a refinement, the input protection circuit includes an electromagnetic interference mitigation circuit.
[0041] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0042] In a refinement, a shielding outer edge of the shielding extends about 4.5 mm to about 6.5 mm outward from a coil outer edge of the coil.
[0043] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[0044] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm..
[0045] In a refinement, the coil has a thickness in a range of about 2 mm to about 3 mm.
[0046] In a refinement, the at least two layers includes a first layer and a second layer
[0047] In a further refinement, the Litz wire is a bifilar Litz wire.
[0048] In yet a further refinement, the first layer includes about 4.5 turns and wherein the second layer includes about 4.5 turns. [0049] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter. The power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal. The power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0050] In a refinement, the input protection circuit includes an overvoltage protection circuit.
[0051] In a refinement, the input protection circuit includes an undervoltage protection circuit.
[0052] In a refinement, the input protection circuit includes an electrostatic discharge protection circuit.
[0053] In a refinement, the input protection circuit includes an electromagnetic interference mitigation circuit.
[0054] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0055] In a refinement, a shielding outer edge of the shielding extends about 4.5 mm to about 6.5 mm outward from a coil outer edge of the coil.
[0056] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[0057] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
[0058] In a refinement, the coil has a thickness in a range of about 2 mm to about 3 mm.
[0059] In a refinement, the at least two layers includes a first layer and a second layer
[0060] In a further refinement, the Litz wire is a bifilar Litz wire. [0061] In yet a further refinement, the first layer includes about 4.5 turns and wherein the second layer includes about 4.5 turns.
[0062] In accordance with another aspect of the disclosure, a base station for a wireless power transfer system at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The base station includes a vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit and a DC/DC voltage converter. The base station further includes an interface surface, a control and communications circuit, and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal. The base station further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil. [0063] In a refinement, the input protection circuit includes an overvoltage protection circuit.
[0064] In a refinement, the input protection circuit includes an undervoltage protection circuit.
[0065] In a refinement, the input protection circuit includes an electrostatic discharge protection circuit.
[0066] In a refinement, the input protection circuit includes an electromagnetic interference mitigation circuit.
[0067] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0068] In accordance with yet another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes vehicular power input regulator configured for receiving input power and filtering the input power to a filtered input power, the vehicular power input regulator including an input protection circuit, the input protection circuit including one or more of an overvoltage protection circuit, an undervoltage protection circuit, an electrostatic discharge protection circuit, an electromagnetic interference mitigation circuit, and any combinations thereof, and a DC/DC voltage converter. The power transmitter further includes a control and communications circuit and an inverter circuit receiving the filtered input power and converting the filtered input power to a power signal. The power transmitter further includes a coil for transmitting the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, each of the at least one layer having N turns, the coil defining, at least a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured with an E- Core configuration such that the ferrite core substantially surrounds all but the top face of the coil. The coil has an outer diameter length in an outer diameter length range of about 40 mm to about 50 mm, an inner diameter length in an inner diameter length range of about 15 mm to about 25 mm, and a thickness in a thickness range of about 2 mm to about 3 mm.
[0069] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit configured to provide power control signals to control a power level of a power signal configured for transmission to a power receiver. The power transmitter further includes an inverter circuit configured to receive a direct current (DC) power from a power supply external to the power transmitter and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0070] In a refinement, the control and communications unit is further configured to receive power request signals from the power receiver and determine the power control signals based on the power request signals.
[0071] In a refinement, the control and communications unit is configured to provide the power control signals to the power supply external to the power transmitter and the power supply is configured to configure an input DC power to generate the DC power supplied based on the power control signals and provide the DC power the inverter circuit. [0072] In a further refinement, the power supply includes a voltage regulator and a power supply controller configured to receive the power control signals, generate voltage regulation instructions for altering a DC voltage of the DC power, based on the power control signals, and provide the voltage regulation instructions to the voltage regulator to control the DC voltage of the DC power.
[0073] In yet a further refinement, the voltage regulation instructions include voltage step up instructions or voltage step down instructions for the voltage regulator, the voltage step up instructions and voltage step down instructions having a step level, the step level being a change in voltage at which the voltage regulator is configured to step up or step down the DC voltage of the DC power.
[0074] In yet a further refinement, the step level is in a range of about 10 millivolts (mV) to about 500 mV.
[0075] In yet another further refinement, the step level is about 200 mV.
[0076] In a further refinement, the power signal is an alternating current (AC) power signal having a root mean square voltage and the control and communications circuit is configured to generate a pulse width modulation signal for configuring an alternating current (AC) frequency for the power signal, at the operating frequency, the pulse width modulation signals modified by a duty cycle alteration, the duty cycle alteration configured to decrease the root means square voltage of the power signal.
[0077] In yet a further refinement, the output power has a root mean square voltage, the root means square voltage being less than the stepped up or stepped down DC voltage.
[0078] In a refinement, the control and communications circuit is configured to generate a pulse width modulation signal for configuring an alternating current (AC) frequency for the power signals at the operating frequency, the pulse width modulation signals modified by a duty cycle alteration, the duty cycle alteration configured to alter an amount of power transmitted to the power receiver over a period of time.
[0079] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit configured to provide power control signals to a power supply external to the power transmitter for controlling a power level of a power signal configured for transmission to a power receiver, the power supply configured to configure a direct current (DC) power based on the power control signals. The power transmitter further includes an inverter circuit configured to receive the DC power from the power supply external to the power transmitter and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face and shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0080] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0081] In a refinement, a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
[0082] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[0083] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
[0084] In a refinement, the at least one layer comprises a first layer and a second layer.
[0085] In a further refinement, the first layer includes a first number of turns in a range of about 4 turns to about 5 turns, and wherein the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
[0086] In accordance with another aspect of the disclosure, a system for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The system includes a power transmitter and a power supply. The power transmitter includes a control and communications unit configured to provide power control signals for controlling a power level of a power signal configured for transmission to a power receiver and an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal. The power transmitter further includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil. The power supply is external to the power transmitter, the power supply configured to configure the DC power based on the power control signals. The power supply includes a voltage regulator and a power supply controller configured to receive the input power signals, generate voltage regulation instructions for altering the DC input power, based on the power control signals, the voltage regulation instructions including voltage step up instructions or voltage step down instructions for the DC/DC convertor, the voltage step up instructions and voltage step down instructions having a step level, the step level being a change in voltage at which the voltage regulator is configured to step up or step down the DC voltage of the DC power, and provide the voltage regulation instructions to the voltage regulator to control a DC voltage of the DC power.
[0087] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from an operating frequency range, the operating frequency range being about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit configured to provide power control signals to control a power level of a power signal configured for transmission to a power receiver and including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range. The power transmitter further includes an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal, coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0088] In a refinement, the control and communications unit is further configured to receive power request signals from the power receiver and determine the power control signals based on the power request signals.
[0089] In a refinement, the control and communications unit is configured to provide the power control signals to a power supply external to the power transmitter and the power supply is configured to configure an input DC power to generate the DC power supplied based on the power control signals and provide the DC power the inverter circuit. [0090] In a further refinement, the power supply includes a voltage regulator and a power supply controller configured to receive the power control signals, generate voltage regulation instructions for altering a DC voltage of the DC power, based on the power control signals, and provide the voltage regulation instructions to the voltage regulator to control the DC voltage of the DC power.
[0091] In a further refinement, the control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configured to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range.
[0092] In another further refinement, the voltage regulation instructions include selecting a base DC voltage for assignment as the DC voltage of the DC power and the power supply is configured to configure the DC power having a base DC voltage for the DC voltage, wherein the base voltage is selected from one or more preset DC power voltage levels.
[0093] In yet a further refinement, the preset DC power voltages include or more of 5 Volts (V), 9 V, 15 V, or 20 V.
[0094] In another further refinement, the one or more base voltage levels includes a first base voltage level and a second base voltage level, the first base voltage level is electrically associated with a first base power level and the second base voltage level is electrically associated with a second base power level, and the frequency shift is determined such that a AC output power level for the power signal is greater than the first base power level and less than the second base power level.
[0095] In a refinement, the control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configured to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range. [0096] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit configured to provide power control signals to a power supply external to the power transmitter for controlling a power level of a power signal configured for transmission to a power receiver, the power supply configured to configure a direct current (DC) power based on the power control signals, the control and communications unit further including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range. The power transmitter further includes an inverter circuit configured to receive the DC power from the power supply external to the power transmitter and convert the input power to a power signal, a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
[0097] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[0098] In a refinement, a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
[0099] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[00100] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
[00101] In a refinement, the at least one layer comprises a first layer and a second layer.
[00102] In a further refinement, the first layer includes a first number of turns in a range of about 4 turns to about 5 turns, and wherein the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
[00103] In yet another aspect of the disclosure, a system for wireless power transfer at an operating frequency selected from an operating frequency range, the operating frequency range being about 87 kilohertz (kHz) to about 205 kHz is disclosed. The system includes a power transmitter and a power supply. The power transmitter includes a control and communications unit configured to provide power control signals for controlling a power level of a power signal configured for transmission to a power receiver and including a pulse width modulation (PWM) signal generator for determining and selecting the operating frequency from the operating frequency range. The power transmitter further includes an inverter circuit configured to receive a direct current (DC) power and convert the input power to a power signal, a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil. The power supply is supply external to the power transmitter, the power supply configured to configure the DC power based on the power control signals. The power supply includes a voltage regulator to configure the DC power to have a base DC voltage for the DC voltage and a power supply controller configured to receive the input power signals, generate voltage regulation instructions for altering the DC power, based on the power control signals, the voltage regulation instructions including instructions for selecting the base DC voltage for assignment as the DC voltage of the DC power, the base DC voltage selected from one or more preset DC power voltage levels, and provide the voltage regulation instructions to the voltage regulator to configure the a DC voltage of the DC power.
[00104] In a refinement, the preset DC power voltages include or more of 5 Volts (V), 9 V, 15 V, or 20 V.
[00105] In a refinement, the one or more base voltage levels includes a first base voltage level and a second base voltage level, the first base voltage level is electrically associated with a first base power level and the second base voltage level is electrically associated with a second base power level, and the frequency shift is determined such that an AC output power level for the power signal is greater than the first base power level and less than the second base power level.
[00106] In a refinement, the control and communications circuit is configured to generate frequency shift signals for the power input signals, the frequency shift signals provided to the PWM signal generator and configure to alter a power level of the power signal of the inverter circuit by shifting the operating frequency, within the operating frequency range. [00107] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz is disclosed. The power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, and a transmitter antenna. The transmitter antenna includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil. The power transmitter further includes a surface mountable housing, the surface mountable housing substantially connected to, at least, the transmitter antenna and the surface mountable housing including a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface such that the transmitter antenna is configured to couple with a receiver antenna of the power receiver when the receiver antenna is proximate to a top side of the structural surface.
[00108] In a refinement, at least part of the surface mountable housing further includes a heat sink, the heat sink configured to rest, at least in part, below the transmitter antenna, when the power transmitter is connected to the structural surface, and configured to direct heat generated by the power transmitter away from the structural surface [00109] In a further refinement, the power transmitter further includes a transmitter electronics circuit board, the transmitter electronics circuit board including components of one or more of the control and communications circuit, the inverter circuit, or combinations thereof, and the heat sink is configured to dissipate heat, generated by one or more of the electronics circuit board or components located on the electronics circuit board, away from the structural surface.
[00110] In yet a further refinement, the power transmitter further includes a thermal interface material, the thermal interface material disposed between the electronics circuit board and the heat sink and configured to direct heat from the electronics circuit board to the heat sink.
[00111] In yet a further refinement, the thermal interface material includes one or more of a thermal paste, a thermal adhesive, a thermal gap filter, a thermally conductive pad, a thermal tape, a phase-change material, a metal thermal interface, or combinations thereof. [00112] In another further refinement, the surface mountable housing further includes an antenna housing, the antenna housing substantially surrounding a side wall of the transmitter antenna and the antenna housing is connected to the heat sink and positioned between the heat sink and the structural surface. [00113] In another further refinement, the heat sink defines one or more cut outs, each of the one or more cut outs configured to increase external surface area of the heat sink.
[00114] In another further refinement, the heat sink is formed, at least in part, from aluminum.
[00115] In a refinement, thickness between the underside of the structural surface and the top side of the structural surface is in a range of about 5 millimeters (mm) to about 15 mm, and the surface mountable housing is configured to mount directly to the underside of the structural surface via the connection system.
[00116] In a refinement, a surface thickness is defined as a thickness between the underside of the structural surface and the top side of the structural surface, the structural member defines a hole, the hole defining a hole ceiling and a hole opening, a hole thickness is defined as a thickness between the hole ceiling and the hole opening, the hole thickness is less than the surface thickness, and the surface mountable housing is configured to mount to the hole ceiling of the hole of the structural surface.
[00117] In a further refinement, the surface thickness is in a range of about 20 mm to about 60 mm and the hole thickness is in a range of about 5 mm to about 50 mm.
[00118] In accordance with another aspect of the disclosure, a surface mountable power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz, the surface mountable power transmitter configured to be mounted on an underside of a structural surface, is disclosed. The surface mountable power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, and a transmitter antenna. The transmitter antenna includes a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face, and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil. The power transmitter further includes a surface mountable housing, the surface mountable housing substantially connected to, at least, the transmitter antenna and the surface mountable housing including a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface such that the transmitter antenna is configured to couple with a receiver antenna of the power receiver when the receiver antenna is proximate to a top side of the structural surface.
[00119] In a refinement, the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
[00120] In a refinement, the at least one layer comprises a first layer and a second layer.
[00121] In a further refinement, the Litz wire is a bifilar Litz wire..
[00122] In yet a further refinement, the first layer includes a first number of turns in a range of about 4 turns to about 5 turns, and wherein the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
[00123] In a refinement, a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
[00124] In a refinement, the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
[00125] In a refinement, the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
[00126] In accordance with yet another aspect of the disclosure, a surface mountable housing for a power transmitter for wireless power transfer at an operating frequency selected from a range of a about 87 kilohertz (kHz) to about 205 kHz, the power transmitter including, at least, a transmitter antenna, is disclosed. The surface mountable housing includes a connector system configured for use to mount, at least, the transmitter antenna to an underside of a structural surface, such that the transmitter antenna is configured to couple with a receiver antenna of a power receiver when the receiver antenna is proximate to a top side of the structural surface. The surface mountable housing further includes a heat sink, the heat sink configured to rest, at least in part, below the transmitter antenna, when the power transmitter is connected to the structural surface, and configured to direct heat generated by the power transmitter away from the structural surface, and an antenna housing, the antenna housing substantially surrounding a side wall of the transmitter antenna, the antenna housing connected to the heat sink and positioned between the heat sink and the structural surface. [00127] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface. The power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing. The transmitter antenna includes at least one coil configured to transmit the power signal to the power receiver, the at least one coil formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil. The housing is configured for housing, at least, the transmitter antenna and defines a forward surface, configured for placement of the mobile device for wireless power transfer, an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
[00128] In a refinement, the power transmitter further includes a fan configured to provide at least some of the airflow to the airflow opening and the housing further defines a fan cavity configured to house, at least, the fan and the fan cavity is in fluid communication with, at least, the airflow opening, to provide the at least some of the airflow to the airflow opening. [00129] In a refinement, the housing further defines a back surface, wherein a thickness for the housing is defined between the forward surface and the back surface and wherein the first airflow channel includes a first airflow channel cavity, the first airflow channel cavity being a cavity extending, at least in part, about the thickness.
[00130] In a further refinement, the first airflow channel further includes a first channel opening, the first channel opening in fluid communication with, at least, the airflow opening, the first channel opening configured to provide at least some of the airflow from the airflow opening to one or more of the first airflow channel cavity or the rear surface of the mobile device. [00131] In yet a further refinement, the first channel opening is defined as a first protrusion opening in the protrusion top face, the first protrusion opening in fluid communication with, at least, the airflow opening.
[00132] In another further refinement, the first airflow channel further includes at least one vent in fluid communication with the first airflow channel cavity, the at least one vent configured to mitigate heat from the mobile device rear surface.
[00133] In yet a further refinement, the at least one vent opens to an environment external to the housing and is configured to facilitate one or more of entry or exit, for an external airflow, to the housing.
[00134] In another further refinement, the first airflow channel cavity is configured to mechanically receive a mechanical body associated with the mobile device, wherein receipt of the mechanical body, at least in part, aligns the transmitter antenna with a receiver antenna of the mobile device, for the purposes of wireless power transfer and the mechanical body is one or more of a mechanical feature of the mobile device, a peripheral associated with the mobile device, a removable feature associated with the mobile device, or any combinations thereof.
[00135] In a refinement, the second airflow channel includes a second channel opening, the second channel opening in fluid communication with, at least, the airflow opening, the second channel opening configured to provide at least some of the airflow from the airflow opening to the mobile device front surface.
[00136] In a refinement, the housing further defines a housing base structure and a housing stand structure, the housing stand structure includes the forward surface and a back surface, the forward surface and back surface being separated by a housing stand structure thickness, the housing base structure includes a top surface and a bottom surface, the top surface and the bottom surface being separated by a housing base structure thickness, the housing stand structure and the housing base structure are respectively positioned such that an angle is formed, at least in part, by a first portion of the back surface and a second portion of the top surface, and the angle is greater than about 0 degrees and less than about 180 degrees.
[00137] In a refinement, the angle is configured such that, when the mobile device is placed adjacent to the forward surface, the mobile device front surface is in a proper viewing angle with respect to a user of the mobile device. [00138] In accordance with another aspect of the disclosure, a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface. The power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing. The transmitter antenna includes at least one coil configured to transmit the power signal to the power receiver, the at least one coil formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil. The housing is configured for housing, at least, the transmitter antenna and defines a top surface, upon which the mobile device is placed for wireless power transfer, a bottom surface, wherein a housing thickness is, at least in part, defined between the top surface and the bottom surface. The housing further defines an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
[00139] In a refinement, the airflow opening is configured for fluid communication with an external airflow source, the external airflow source providing at least some of the airflow to the airflow opening.
[00140] In a further refinement, the external airflow source is an airflow source operatively associated with a vehicle.
[00141] In a refinement, the power transmitter further includes a fan configured for providing at least some of the airflow to the airflow opening and the housing is further defining a fan cavity for housing, at least, the fan and the fan cavity is in fluid communication with, at least, the airflow opening, for providing the at least some of the airflow to the airflow opening.
[00142] In a refinement, the first airflow channel includes a first airflow channel cavity, the first airflow cavity being a cavity extending, at least in part, along the housing thickness, from the top surface and towards the bottom surface.
[00143] In a further refinement, the first airflow channel further includes a first channel opening, the first channel opening in fluid communication with, at least, the airflow opening, the first channel opening providing at least some of the airflow from the airflow opening to one or more of the first airflow channel cavity, the rear surface of the mobile device, and combinations thereof.
[00144] In another further refinement, the first channel opening is defined as a first protrusion opening in the protrusion top face, the first protrusion opening in fluid communication with, at least, the airflow opening.
[00145] In accordance with yet another aspect of the disclosure, a power transmitter for wireless power transfer to a mobile device having a power receiver couplable with the power transmitter, the mobile device defining, at least, a mobile device front surface and a mobile device rear surface. The power transmitter includes a control and communications unit, an inverter circuit configured to receive input power and convert the input power to a power signal, a transmitter antenna, and a housing. The transmitter antenna includes a transmitter coil array including a top face and two or more transmitter coils, the two or more transmitter coils configured to transmit the power signal to the power receiver, the two or more transmitter coils formed of wound Litz wire and including at least one layer and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the at least one coil. The housing is configured for housing, at least, the transmitter antenna and defines a top surface, upon which the mobile device is placed for wireless power transfer, a bottom surface, wherein a housing thickness is, at least in part, defined between the top surface and the bottom surface. The housing further defines an airflow opening configured to provide an airflow, a first airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the forward surface or the mobile device rear surface, a protrusion extending outward, at least in part, from the forward surface, the protrusion having a protrusion top face, the protrusion top face forming an angle with the forward face, the angle being less than about 180 degrees and greater than about 0 degrees, and a second airflow channel configured to provide at least some of the airflow, via fluid communication with the airflow opening, proximate to one or more of the protrusion top face, the mobile device top surface, and any combinations thereof.
[00146] In a refinement, the ferrite core includes an exterior wall for surrounding the exterior diameters of each of the two or more transmitter coils and one or more ferrite inner cores occupying space in between Litz wire of the two or more coils within one or more interior diameters of each of the two or more transmitter coils.
[00147] These and other aspects and features of the present disclosure will be better understood when read in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS [00148] FIG. 1 A is an exemplary block diagram of an embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
[00149] FIG. IB is an exemplary block diagram of another embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
[00150] FIG. 2A is an exemplary block diagram for a power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 1, in accordance with FIG. 1 A and an embodiment of the present disclosure.
[00151] FIG. 2B is an exemplary block diagram for another power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 1, in accordance with FIG. IB and an embodiment of the present disclosure.
[00152] FIG. 3 is an exemplary block diagram for components of a control and communications system of the power transmitter of FIGS. 2, in accordance with FIGS. 1-2 and an embodiment of the present disclosure.
[00153] FIG. 4 is an exemplary block diagram for components of a sensing system of the control and communications system of FIG. 3, in accordance with FIGS. 1-3 and an embodiment of the present disclosure.
[00154] FIG. 5 A is an exemplary block diagram for components of a power conditioning system of the power transmitter of FIGS. 1 A and 2 A, in accordance with FIGS. 1 A and 2 A and an embodiment of the present disclosure. [00155] FIG. 5B is an exemplary block diagram for components of a power conditioning system of the power transmitter of FIGS. 1 A and 2B, in accordance with FIGS. 1 A and 2B and an embodiment of the present disclosure.
[00156] FIG. 5C is an exemplary block diagram for components of a power conditioning system of any of the power transmitters of FIGS. 1-2, in accordance with FIGS. 1-2 and an embodiment of the present disclosure.
[00157] FIG. 6 is an exemplary block diagram of another embodiment of a wireless power transfer system, in accordance with an embodiment of the present disclosure.
[00158] FIG. 7 is an exemplary block diagram for another wireless power transmitter, which may be used in conjunction with the wireless power transfer system of FIG. 6, in accordance with FIGS. 1-6 and an embodiment of the present disclosure.
[00159] FIG. 8 is an exemplary voltage plot illustrating transient voltage surges, in accordance with the present disclosure.
[00160] FIG. 9A is an exemplary block diagram for a configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
[00161] FIG. 9B is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
[00162] FIG. 9C is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
[00163] FIG. 9D is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
[00164] FIG. 9E is an exemplary block diagram for another configuration of a vehicular power input regulator of the power transmitter of FIGS. 1-5, in accordance with FIGS. 1-5 and the present disclosure.
[00165] FIG. 10 is an exemplary block diagram illustrating exemplary components of an input protection circuit for any of the vehicular power input regulators of FIGS. 9A-E, in accordance with FIGS. 1-5, 9A-E, and the present disclosure. [00166] FIG. 11 A is an exemplary block diagram for components of the power transmitter of FIGS. 1-5 and an external power supply of the wireless power transfer system of FIG. 1, in accordance with FIGS. 1-5 and the present disclosure.
[00167] FIG. 1 IB is an exemplary block diagram illustrating similar components of the power transmitter as those of FIG. 11 A, but further illustrating a duty cycle shift in the process of generating a power signal, in accordance with FIGS. 1-11 A and the present disclosure.
[00168] FIG. 11C is an exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 11 A and 1 IB, in accordance with FIGS. 1-1 IB and the present disclosure.
[00169] FIG. 12A is an exemplary block diagram for components of the power transmitter of FIGS. 1-5 and an external power supply of the wireless power transfer system of FIG. 1, in accordance with FIGS. 1-5 and the present disclosure.
[00170] FIG. 12B is an exemplary block diagram illustrating similar components of the power transmitter as those of FIG. 12 A, but further illustrating a duty cycle shift in the process of generating a power signal, in accordance with FIGS. 1-5, 12A and the present disclosure.
[00171] FIG. 12C is an exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 12A and 12B, in accordance with FIGS. 1-5, 12A-B, and the present disclosure.
[00172] FIG 12D is another exemplary block diagram illustrating components and/or functions associated with one or more of a transmitter controller, a pulse width modulation generator, or components thereof of FIGS. 12A-C, in accordance with FIGS. 1-5, 12A-C and the present disclosure.
[00173] FIG. 13 is a block diagram for a method of controlling power output in the wireless power transmitter of FIGS. 1-5 and 12-D and utilizing elements illustrated in FIGS. 12, in accordance with FIGS. 1-5, 12A-D and the present disclosure.
[00174] FIG. 14 is an exemplary electrical schematic diagram of components of the power transmitter of FIGS. 1-13, in accordance with FIGS. 1-13 and the present disclosure. [00175] FIG. 15 is a perspective view of a shape of a transmitter coil of the power transmitter of FIGS. 1-14, in accordance with FIGS. 1-14 and an embodiment of the present disclosure.
[00176] FIG. 16 is a cross-section of components of a base station, with which the power transmitter 20 is associated, in accordance with FIGS. 1-15 and the present disclosure. [00177] FIG. 17 is a perspective view of a shielding associated with the transmitter coil of FIGS. 1-16, in accordance with FIGS. 1-16 and an embodiment of the present disclosure. [00178] FIG. 18A is a perspective view of the transmitter coil of FIGS. 1-17 and the shielding of FIGS. 16 and 17, in accordance with FIGS. 1-5 and the present disclosure. [00179] FIG. 18B is an exploded perspective view of the transmitter coil of FIGS. 1-18A and the shielding of FIGS. 16 and 17, in accordance with FIGS. 1-18 A and the present disclosure.
[00180] FIG. 19A is an exemplary block diagram for an embodiment of the base station of FIGS. 1-18 in accordance with FIGS. 1-18 and the present disclosure.
[00181] FIG. 19B is an exemplary block diagram for another embodiment of the base station of FIGS. 1-18 in accordance with FIGS. 1-18 and the present disclosure.
[00182] FIG. 20 is a readout of an actual simulation of magnetic fields generated by the coils and/or transmitters illustrated in FIGS. 1-19 and disclosed herein.
[00183] FIG. 20A is a perspective view of an exemplary array of transmitter coils for use with the systems, methods, and apparatus of FIGS. 1-20, each of the array of transmitter coils constructed, at least in part, in accordance with coils and/or antennas of FIGS. 1-20, in accordance with FIGS. 1-20 and the present disclosure.
[00184] FIG. 2 IB is a cross sectional side view of the array of transmitter coils of FIG. 20A, in accordance with FIGS. 1-21A, and the present disclosure.
[00185] FIG. 22 is a perspective view of a shielding for the exemplary array of transmitter coils of FIGS. 21A and 21B, in accordance with FIGS. 1-21B, and the present disclosure. [00186] FIG. 23 A is a perspective view of an exemplary housing of the systems, methods, and apparatus of FIGS. l-22and/or operatively associated with the systems, methods, and apparatus of FIGS. 1-22, and a mobile device powered and/or charged by the systems, methods, and apparatus of FIGS. 1-22, in accordance with FIGS. 1-22 and the present disclosure. [00187] FIG. 23B is a front view of the housing and mobile device of FIG. 23 A, in accordance with FIGS. 1-23 A, and the present disclosure.
[00188] FIG. 24A is a perspective view of the housing and mobile device of FIGS. 23A-B, with the housing illustrated as transparent, as to show components located there, in accordance with FIGS. 1-23, and the present disclosure.
[00189] FIG. 24B is a front view of the housing and mobile device of FIGS. 20-24A, with the housing and mobile device illustrated as transparent, as to show components located within the housing, in accordance with FIGS. 1-24 A, and the present disclosure.
[00190] FIG. 25 is a side, cross-sectional view of the housing and mobile device of FIGS. 20-24, in accordance with FIGS. 1-24 and the present disclosure.
[00191] FIG. 26A is a side perspective view of the housing of FIGS. 23-25, without the mobile device, in accordance with FIGS. 1-25, and the present disclosure.
[00192] FIG. 26B is another side perspective view of the housing of FIGS. 23-25, without the mobile device and further illustrating air channel openings, in accordance with FIGS. 1- 26A, and the present disclosure.
[00193] FIG. 27A is a perspective view of another exemplary housing of the systems, methods, and apparatus of FIGS. 1-22 and/or operatively associated with the systems, methods, and apparatus of FIGS. 1-22, and a mobile device powered and/or charged by the systems, methods, and apparatus of FIGS. 1-22, the housing including similar features to the housing of FIGS. 23-26, in accordance with FIGS. 1-26, and the present disclosure.
[00194] FIG. 27B is a top view of the housing and mobile device of FIG. 24A, in accordance with FIGS. 1-27A, and the present disclosure.
[00195] FIG. 28 A is a side, cross-sectional view of the housing and mobile device of FIGS. 26, in accordance with FIGS. 1-27B, and the present disclosure.
[00196] FIG. 28B is a side, cross-sectional view of the housing and mobile device of FIGS. 27 and 28A, with an external airflow source, in accordance with FIGS. 1-28A, and the present disclosure.
[00197] FIG. 29A is a perspective top view of a surface mountable power transmitter utilizing one or more of the power transmitters, the transmitter antennas, or combinations thereof, described in FIGS. 1-20, in accordance with FIGS. l-20and the present disclosure. [00198] FIG. 29B is a perspective bottom view of the surface mountable power transmitter of FIG. 29 A, in accordance with FIGS. 1-20, 29 A and the present disclosure.
[00199] FIG. 29C is an exploded perspective view of the surface mountable power transmitter of FIGS 29A-B, in accordance with FIGS. 1-20, 29B and the present disclosure. [00200] FIG. 29D is a side, cross-sectional view of the surface mountable power transmitter of FIGS. 29A-C, in accordance with FIGS. 1-20, 29A-C and the present disclosure.
[00201] FIG. 29E is a bottom view of the surface mountable power transmitter of FIGS. 29A-D, in accordance with FIGS. 1-20, 29A-D, and the present disclosure.
[00202] FIG. 30 is cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating an exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29, and the present disclosure.
[00203] FIG. 31 A is a cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating another exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29A-E, and the present disclosure.
[00204] FIG. 3 IB is a bottom perspective view of the illustrated exemplary usage of the surface mountable power transmitter of FIG. 31 A, in accordance with FIGS. 1-20, 29, 31 A and the present disclosure.
[00205] FIG. 32 is a cross sectional side view of the surface mountable power transmitter of FIGS. 29A-E, illustrating another exemplary usage of the surface mountable power transmitter of FIGS. 29A-E, with respect to a surface, in accordance with FIGS. 1-20, 29A-E, and the present disclosure.
[00206] FIG. 33 is a flow chart for an exemplary method for designing a power transmitter, in accordance with FIGS. 1-32 and the present disclosure.
[00207] FIG. 34 is a flow chart for an exemplary method for manufacturing a power transmitter, in accordance with FIGS. 1-33 and the present disclosure.
[00208] While the following detailed description will be given with respect to certain illustrative embodiments, it should be understood that the drawings are not necessarily to scale and the disclosed embodiments are sometimes illustrated diagrammatically and in partial views. In addition, in certain instances, details which are not necessary for an understanding of the disclosed subject matter or which render other details too difficult to perceive may have been omitted. It should therefore be understood that this disclosure is not limited to the particular embodiments disclosed and illustrated herein, but rather to a fair reading of the entire disclosure and claims, as well as any equivalents thereto. Additional, different, or fewer components and methods may be included in the systems and methods.
DETAILED DESCRIPTION
[00209] In the following description, numerous specific details are set forth by way of examples in order to provide a thorough understanding of the relevant teachings. However, it should be apparent to those skilled in the art that the present teachings may be practiced without such details. In other instances, well known methods, procedures, components, and/or circuitry have been described at a relatively high-level, without detail, in order to avoid unnecessarily obscuring aspects of the present teachings.
[00210] Referring now to the drawings and with specific reference to FIGS. 1 A-B, a wireless power transfer system 10A is illustrated. The wireless power transfer system 10 provides for the wireless transmission of electrical signals, such as, but not limited to, electrical energy, electrical power signals, and electromagnetic energy. Additionally, the wireless power transfer system 10 may provide for wireless transmission of electronically transmittable data (“electronic data”) independent of and/or associated with the aforementioned electrical signals. Specifically, the wireless power transfer system 10 provides for the wireless transmission of electrical signals via near field magnetic coupling. As shown in the embodiments of FIGS. 1 A-B, the wireless power transfer system 10 includes a power transmitter 20 and a power receiver 30. The power receiver 30 is configured to receive electrical energy, electrical power, electromagnetic energy, and/or electronic data from, at least, the power transmitter 20.
[00211] As illustrated, the power transmitter 20 and power receiver 30 may be configured to transmit electrical energy, via transmitter antenna 21 and receiver antenna 31, electrical power, electromagnetic energy, and/or electronically transmittable data across, at least, a separation distance or gap 17. A separation distance or gap, such as the gap 17, in the context of a wireless power transfer system, such as the system 10, does not include a physical connection, such as a wired connection. There may be intermediary objects located in a separation distance or gap, such as the gap 17, such as, but not limited to, air, a counter top, a casing for an electronic device, a grip device for a mobile device, a plastic filament, an insulator, a mechanical wall, among other things; however, there is no physical, electrical connection at such a separation distance or gap.
[00212] The combination of the power transmitter 20 and the power receiver 30 create an electrical connection without the need for a physical connection. “Electrical connection,” as defined herein, refers to any facilitation of a transfer of an electrical current, voltage, and/or power from a first location, device, component, and/or source to a second location, device, component, and/or destination. An “electrical connection” may be a physical connection, such as, but not limited to, a wire, a trace, a via, among other physical electrical connections, connecting a first location, device, component, and/or source to a second location, device, component, and/or destination. Additionally or alternatively, an “electrical connection” may be a wireless electrical connection, such as, but not limited to, magnetic, electromagnetic, resonant, and/or inductive field, among other wireless electrical connections, connecting a first location, device, component, and/or source to a second location, device, component, and/or destination.
[00213] Alternatively, the gap 17 may be referenced as a “Z-Distance,” because, if one considers an antenna 21, 31 to be disposed substantially along a common X-Y plane, then the distance separating the antennas 21, 31 is the gap in a “Z” or “depth” direction. However, flexible and/or non-planar coils are certainly contemplated by embodiments of the present disclosure and, thus, it is contemplated that the gap 17 may not be uniform, across an envelope of connection distances between the antennas 21, 31. It is contemplated that various tunings, configurations, and/or other parameters may alter the possible maximum distance of the gap 17, such that electrical transmission from the power transmitter 20 to the power receiver 30 remains possible.
[00214] The wireless power transfer system 10 operates when the power transmitter 20 and the power receiver 30 are coupled. As defined herein, the terms “couples,” “coupled,” and “coupling” generally refers to magnetic field coupling, which occurs when the energy of a transmitter and/or any components thereof and the energy of a receiver and/or any components thereof are coupled to each other through a magnetic field. Coupling of the power transmitter 20 and the power receiver 30, in the system 10, may be represented by a resonant coupling coefficient of the system 10 and, for the purposes of wireless power transfer, the coupling coefficient for the system 10 may be in the range of about 0.01 and 0.9. [00215] The power transmitter 20 may be operatively associated with a base station 11.
The base station 11 may be a device, such as a charger, that is able to provide near-field inductive power, via the power transmitter 20, to a power receiver. In some examples, the base station 11 may be configured to provide such near-field inductive power as specified in the Qi™ Wireless Power Transfer System, Power Class 0 Specification. In some such examples, the base station 11 may carry a logo to visually indicate to a user that the base station 11 complies with the Qi™ Wireless Power Transfer System, Power Class 0 Specification.
[00216] The power transmitter 20 may receive power from an input power source 12. The base station 11 may be any electrically operated device, circuit board, electronic assembly, dedicated charging device, or any other contemplated electronic device. Example base stations 11, with which the power transmitter 20 may be associated therewith, include, but are not limited to including, a device that includes an integrated circuit, cases for wearable electronic devices, receptacles for electronic devices, a portable computing device, clothing configured with electronics, storage medium for electronic devices, charging apparatus for one or multiple electronic devices, dedicated electrical charging devices, activity or sport related equipment, goods, and/or data collection devices, among other contemplated electronic devices.
[00217] The input power source 12 may be or may include one or more electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices. Additionally or alternatively, the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20 (e.g., transformers, regulators, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components). Further, as discussed below with reference to FIGS. IB, 5C, and 9-12, the input power source 12 may include, may be implemented by, and/or may be operatively associated with, for the purpose of power distribution, an external power supply 45, which directly provides a direct current (DC) power input to the power transmitter 20. The external power supply 45 may include or comprise one or more Universal Serial Bus (USB) power supplies, Lightning power supplies, Qualcomm Quick Charge devices, USB-C power supplies, USB-PD (USB Power Delivery) power supplies, Mini -USB power supplies, proprietary power supplies, input/outputs on electronic devices (e.g., a computer, a multi device charger, an automobile console, a mobile device, a portable power supply, a battery, a generator, among known power supplies.
[00218] In some other examples, such as the system 10B of FIG. 1A, the input power source 12 may be operatively associated with a vehicle 15, thus, the input power source 12 may be or may include one or more vehicular electrical inputs, vehicular batteries, vehicular power rails, electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices. Additionally or alternatively, the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20 (e.g., transformers, regulators, rectifiers, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components). [00219] Electrical energy received by the power transmitter 20 is then used for at least two purposes: providing electrical power to internal components of the power transmitter 20 and providing electrical power to the transmitter coil 21. The transmitter coil 21 is configured to wirelessly transmit the electrical signals conditioned and modified for wireless transmission by the power transmitter 20 via near-field magnetic coupling (NFMC). Near-field magnetic coupling enables the transfer of electrical energy, electrical power, electromagnetic energy, and/or electronically transmissible data wirelessly through magnetic induction between the transmitter coil 21 and a receiving coil 31 of, or associated with, the power receiver 30. Near field magnetic coupling may enable “inductive coupling,” which, as defined herein, is a wireless power transmission technique that utilizes an alternating electromagnetic field to transfer electrical energy between two or more antennas/coils. Such inductive coupling is the near field wireless transmission of electrical energy between two magnetically coupled coils that are tuned to resonate at a similar frequency. Further, such near-field magnetic coupling may provide connection via “mutual inductance,” which, as defined herein is the production of an electromotive force in a circuit by a change in current in at least one circuit magnetically coupled to the first.
[00220] In one or more embodiments, the inductor coils of either the transmitter coil 21 or the receiver coil 31 are strategically positioned to facilitate reception and/or transmission of wirelessly transferred electrical energy, power, electromagnetic energy and/or data through near field magnetic induction. Antenna operating frequencies may comprise all operating frequency ranges, examples of which may include, but are not limited to, about 87 kHz to about 205 kHz (Qi™ interface standard). The operating frequencies of the coils 21, 31 may be operating frequencies designated by the International Telecommunications Union (ITU) in the Industrial, Scientific, and Medical (ISM) frequency bands.
[00221] As known to those skilled in the art, a “resonant frequency” or “resonant frequency band” refers to a frequency or frequencies wherein amplitude response of the antenna is at a relative maximum, or, additionally or alternatively, the frequency or frequency band where the capacitive reactance has a magnitude substantially similar to the magnitude of the inductive reactance. In one or more embodiments the transmitting antenna resonant frequency band extends from about 87 kHz to about 205 kHz. In one or more embodiments the inductor coil of the receiver coil 31 is configured to resonate at a receiving antenna resonant frequency or within a receiving antenna resonant frequency band.
[00222] In some examples, the transmitting coil and the receiving coil of the present disclosure may be configured to transmit and/or receive electrical power at a baseline power profile having a magnitude up to about 5 watts (W). In some other examples, the transmitting coil and the receiving coil of the present disclosure may be configured to transmit and/or receive electrical power at an extended power profile, supporting transfer of up to 15 W of power.
[00223] The power receiver 30 is configured to acquire near-field inductive power from the power transmitter 20. In some examples, the power receiver 30 is a subsystem of an electronic device 14. The electronic device 14 may be any device that is able to consume near field inductive power as specified in the Qi™ Wireless Power Transfer System, Power Class 0 Specification. In some such examples, the electronic device 14 may carry a logo to visually indicate to a user that the electronic device 14 complies with the Specification. [00224] The electronic device 14 may be any device that requires electrical power for any function and/or for power storage (e.g., via a battery and/or capacitor). Additionally or alternatively, the electronic device 14 may be any device capable of receipt of electronically transmissible data. For example, the device may be, but is not limited to being, a handheld computing device, a mobile device, a portable appliance, an integrated circuit, an identifiable tag, a kitchen utility device, an automotive device, an electronic tool, an electric vehicle, a game console, a robotic device, a wearable electronic device (e.g., an electronic watch, electronically modified glasses, altered-reality (AR) glasses, virtual reality (VR) glasses, among other things), a portable scanning device, a portable identifying device, a sporting good, an embedded sensor, an Internet of Things (IoT) sensor, IoT enabled clothing, IoT enabled recreational equipment, industrial equipment, medical equipment, a medical device, a tablet computing device, a portable control device, a remote controller for an electronic device, a gaming controller, among other things.
[00225] For the purposes of illustrating the features and characteristics of the disclosed embodiments, arrow-ended lines are utilized to illustrate transferrable and/or communicative signals and various patterns are used to illustrate electrical signals that are intended for power transmission and electrical signals that are intended for the transmission of data and/or control instructions. Solid lines indicate signal transmission of electrical energy, electrical power signals, and/or electromagnetic energy over a physical and/or wireless electrical connection, in the form of power signals that are, ultimately, utilized in wireless power transmission from the power transmitter 20 to the power receiver 30. Further, dotted lines are utilized to illustrate electronically transmittable data signals, which ultimately may be wirelessly transmitted from the power transmitter 20 to the power receiver 30.
[00226] Turning now to FIG. 2A, the wireless power transfer system 10 is illustrated as a block diagram including example sub-systems of the power transmitter 20. The wireless transmission system 20 may include, at least, a power conditioning system 40, a control and communications system 26, a sensing system 50, and the transmission coil 21. A first portion of the electrical energy input from the input power source 12 is configured to electrically power components of the wireless transmission system 20 such as, but not limited to, the control and communications system 26. A second portion of the electrical energy input from the input power source 12 is conditioned and/or modified for wireless power transmission, to the power receiver 30, via the transmission coil 21. Accordingly, the second portion of the input energy is modified and/or conditioned by the power conditioning system 40. While not illustrated, it is certainly contemplated that one or both of the first and second portions of the input electrical energy may be modified, conditioned, altered, and/or otherwise changed prior to receipt by the power conditioning system 40 and/or transmission control system 26, by further contemplated subsystems (e.g., a voltage regulator, a current regulator, switching systems, fault systems, safety regulators, among other things).
[00227] Referring now to FIG. 2B and with reference to FIG. IB, the input power source 12 is a vehicular power source, the input power is received by a vehicular power input regulator 90, which is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things. To that end, a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry. Additionally or alternatively, electrical noise produced by a vehicular power source, even that of relatively low energy, can cause significant interruption to digital communications. The vehicular power input regulator 90 may be configured for transient voltage suppression, among other things, to protect downstream components of the power transmitter 20. Further description of embodiments for the vehicular power input regulator 90 are discussed below, with reference to FIGS. 8-10.
[00228] The control and communications system 26, generally, comprises digital logic portions of the power transmitter 20. The control and communications system 26 receives and decodes messages from the power receiver 30, executes the relevant power control algorithms and protocols, and drives the frequency of the AC waveform to control the power transfer. As discussed in greater detail below, the control and communications system 26 also interfaces with other subsystems of the power transmitter 20. For example, the control and communications system 26 may interface with other elements of the power transmitter 20 for user interface purposes.
[00229] Referring now to FIG. 3, with continued reference to FIGS. 1 and 2, subcomponents and/or systems of the control and communications system 26 are illustrated. The control and communications system 26 may include a transmission controller 28, a communications system 29, a driver 48, and a memory 27. [00230] The transmission controller 28 may be any electronic controller or computing system that includes, at least, a processor which performs operations, executes control algorithms, stores data, retrieves data, gathers data, controls and/or provides communication with other components and/or subsystems associated with the power transmitter 20, and/or performs any other computing or controlling task desired. The transmission controller 28 may be a single controller or may include more than one controller disposed to control various functions and/or features of the power transmitter 20 such as, but not limited to, providing control instructions to the external power supply 45. Functionality of the transmission controller 28 may be implemented in hardware and/or software and may rely on one or more data maps relating to the operation of the power transmitter 20. To that end, the transmission controller 28 may be operatively associated with the memory 27. The memory may include one or more of internal memory, external memory, and/or remote memory (e.g., a database and/or server operatively connected to the transmission controller 28 via a network, such as, but not limited to, the Internet). The internal memory and/or external memory may include, but are not limited to including, one or more of a read only memory (ROM), including programmable read-only memory (PROM), erasable programmable read-only memory (EPROM or sometimes but rarely labelled EROM), electrically erasable programmable read only memory (EEPROM), random access memory (RAM), including dynamic RAM (DRAM), static RAM (SRAM), synchronous dynamic RAM (SDRAM), single data rate synchronous dynamic RAM (SDR SDRAM), double data rate synchronous dynamic RAM (DDR SDRAM, DDR2, DDR3, DDR4), and graphics double data rate synchronous dynamic RAM (GDDR SDRAM, GDDR2, GDDR3, GDDR4, GDDR5, a flash memory, a portable memory, and the like. Such memory media are examples of nontransitory machine readable and/or computer readable memory media.
[00231] While particular elements of the control and communications system 26 are illustrated as independent components and/or circuits (e.g., the driver 48, the memory 27, the communications system 29, among other contemplated elements) of the control and communications system 26, such components may be integrated with the transmission controller 28. In some examples, the transmission controller 28 may be an integrated circuit configured to include functional elements of one or both of the transmission controller 28 and the power transmitter 20, generally. [00232] As illustrated, the transmission controller 28 is in operative association, for the purposes of data transmission, receipt, and/or communication, with, at least, the memory 27, the communications system 29, the power conditioning system 40, the driver 48, and the sensing system 50. The driver 48 may be implemented to control, at least in part, the operation of the power conditioning system 40. In some examples, the driver 48 may receive instructions from the transmission controller 28 to generate and/or output a generated pulse width modulation (PWM) signal to the power conditioning system 40. In some such examples, the PWM signal may be configured to drive the power conditioning system 40 to output electrical power as an alternating current signal, having an operating frequency defined by the PWM signal. As discussed in greater detail below with reference to FIGS.
11 A-l IB, the PWM signal may be altered by the controller 28, for, at least, power control purposes.
[00233] The sensing system 50 may include one or more sensors, wherein each sensor may be operatively associated with one or more components of the power transmitter 20 and configured to provide information and/or data. The term “sensor” is used in its broadest interpretation to define one or more components operatively associated with the power transmitter 20 that operate to sense functions, conditions, electrical characteristics, operations, and/or operating characteristics of one or more of the power transmitter 20, the power receiver 30, the input power source 12, the base station 11, the transmission coil 21, the receiver coil 31, along with any other components and/or subcomponents thereof.
[00234] As illustrated in the embodiment of FIG. 4, the sensing system 50 may include, but is not limited to including, a thermal sensing system 52, an object sensing system 54, a receiver sensing system 56, electrical sensor(s) 57 and/or any other sensor(s) 58. Within these systems, there may exist even more specific optional additional or alternative sensing systems addressing particular sensing aspects required by an application, such as, but not limited to: a condition-based maintenance sensing system, a performance optimization sensing system, a state-of-charge sensing system, a temperature management sensing system, a component heating sensing system, an IoT sensing system, an energy and/or power management sensing system, an impact detection sensing system, an electrical status sensing system, a speed detection sensing system, a device health sensing system, among others. The object sensing system 54, may be a foreign object detection (FOD) system. [00235] Each of the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56 and/or the other sensor(s) 58, including the optional additional or alternative systems, are operatively and/or communicatively connected to the transmission controller 28. The thermal sensing system 52 is configured to monitor ambient and/or component temperatures within the power transmitter 20 or other elements nearby the power transmitter 20. The thermal sensing system 52 may be configured to detect a temperature within the power transmitter 20 and, if the detected temperature exceeds a threshold temperature, the transmission controller 28 prevents the power transmitter 20 from operating. Such a threshold temperature may be configured for safety considerations, operational considerations, efficiency considerations, and/or any combinations thereof. In a non-limiting example, if, via input from the thermal sensing system 52, the transmission controller 28 determines that the temperature within the power transmitter 20 has increased from an acceptable operating temperature to an undesired operating temperature (e.g., in a non limiting example, the internal temperature increasing from about 20° Celsius (C) to about 50°C, the transmission controller 28 prevents the operation of the power transmitter 20 and/or reduces levels of power output from the power transmitter 20. In some non-limiting examples, the thermal sensing system 52 may include one or more of a thermocouple, a thermistor, a negative temperature coefficient (NTC) resistor, a resistance temperature detector (RTD), and/or any combinations thereof.
[00236] As depicted in FIG. 4, the transmission sensing system 50 may include the object sensing system 54. The object sensing system 54 may be configured to detect presence of unwanted objects in contact with or proximate to the power transmitter 20. In some examples, the object sensing system 54 is configured to detect the presence of an undesired object. In some such examples, if the transmission controller 28, via information provided by the object sensing system 54, detects the presence of an undesired object, then the transmission controller 28 prevents or otherwise modifies operation of the power transmitter 20. In some examples, the object sensing system 54 utilizes an impedance change detection scheme, in which the transmission controller 28 analyzes a change in electrical impedance observed by the transmission coil 21 against a known, acceptable electrical impedance value or range of electrical impedance values. Additionally or alternatively, in some examples the object sensing system 54 may determine if a foreign object is present by measuring power output associated with the power transmitter 20 and determining power input associated with a receiver associated with the power transmitter 20. In such examples, the object sensing system 54 may calculate a difference between the power associated with the power transmitter 20 and the power associated with the receiver and determine if the difference indicates a loss, consistent with a foreign object not designated for wireless power transmission.
[00237] Additionally or alternatively, the object sensing system 54 may utilize a quality factor (Q) change detection scheme, in which the transmission controller 28 analyzes a change from a known quality factor value or range of quality factor values of the object being detected, such as the receiver coil 31. The “quality factor” or “Q” of an inductor can be defined as (frequency (Hz) x inductance (H))/resistance (ohms), where frequency is the operational frequency of the circuit, inductance is the inductance output of the inductor and resistance is the combination of the radiative and reactive resistances that are internal to the inductor. “Quality factor,” as defined herein, is generally accepted as an index (figure of measure) that measures the efficiency of an apparatus like an antenna, a circuit, or a resonator. In some examples, the object sensing system 54 may include one or more of an optical sensor, an electro-optical sensor, a Hall effect sensor, a proximity sensor, and/or any combinations thereof.
[00238] The receiver sensing system 56 is any sensor, circuit, and/or combinations thereof configured to detect presence of any wireless receiving system that may be couplable with the power transmitter 20. In some examples, if the presence of any such wireless receiving system is detected, wireless transmission of electrical energy, electrical power, electromagnetic energy, and/or data by the power transmitter to said wireless receiving system is enabled. In some examples, if the presence of a wireless receiver system is not detected, wireless transmission of electrical energy, electrical power, electromagnetic energy, and/or data is prevented from occurring. Accordingly, the receiver sensing system 56 may include one or more sensors and/or may be operatively associated with one or more sensors that are configured to analyze electrical characteristics within an environment of or proximate to the power transmitter 20 and, based on the electrical characteristics, determine presence of a power receiver 30. [00239] The electrical sensor(s) 57 may include any sensors configured for detecting and/or measuring any current, voltage, and/or power within the power transmitter 20. Information provided by the electrical sensor(s) 57, to the transmission controller 28, may be utilized independently and/or in conjunction with any information provided to the transmission controller 28 by one or more of the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the other sensor(s) 58, and any combinations thereof.
[00240] Referring now to FIG. 5 A, and with continued reference to FIGS. 1-4, a block diagram illustrating an embodiment of the power conditioning system 40A is illustrated. At the power conditioning system 40A, electrical power is received, generally, as a DC power source, via the input power source 12 itself or an intervening power converter, converting an AC source to a DC source (not shown). A voltage regulator 46 receives the electrical power from the input power source 12 and is configured to provide electrical power for transmission by the coil 21 and provide electrical power for powering components of the power transmitter 20. Accordingly, the voltage regulator 46 is configured to convert the received electrical power into at least two electrical power signals, each at a proper voltage for operation of the respective downstream components: a first electrical power signal to electrically power any components of the power transmitter 20 and a second portion conditioned and modified for wireless transmission to the wireless receiver system 30. As illustrated in FIG. 3, such a first portion is transmitted to, at least, the sensing system 50, the transmission controller 28, and the communications system 29; however, the first portion is not limited to transmission to just these components and can be transmitted to any electrical components of the power transmitter 20.
[00241] The second portion of the electrical power is provided to an amplifier 42 of the power conditioning system 40A, which is configured to condition the electrical power for wireless transmission by the coil 21. The amplifier may function as an inverter, which receives an input DC power signal from the voltage regulator 46 and generates an AC as output, based, at least in part, on PWM input from the transmission control system 26. The amplifier 42 may be or include, for example, a power stage inverter. The use of the amplifier 42 within the power conditioning system 40A and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier. For example, the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 milliwatts (mW) to about 60 W.
[00242] Referring now to FIG. 5B, and with continued reference to FIGS. 1 A, 2B, and 3-4, a block diagram illustrating an embodiment of the power conditioning system 40B is illustrated. At the power conditioning system 40B, the filtered input power is received, generally, as a direct current (DC) power source, via the vehicular power input regulator 90 itself or an intervening power converter. A voltage regulator 46 receives the electrical power from the input power source 12 and is configured to provide electrical power for transmission by the coil 21 and provide electrical power for powering components of the power transmitter 20. Accordingly, the voltage regulator 46 is configured to convert the received electrical power into at least two electrical power signals, each at a proper voltage for operation of the respective downstream components: a first electrical power signal to electrically power any components of the power transmitter 20 and a second portion conditioned and modified for wireless transmission to the wireless receiver system 30. As illustrated in FIG. 3, such a first portion is transmitted to, at least, the sensing system 50, the transmission controller 28, and the communications system 29; however, the first portion is not limited to transmission to just these components and can be transmitted to any electrical components of the power transmitter 20.
[00243] The second portion of the electrical power is provided to an amplifier 42 of the power conditioning system 40B, which is configured to condition the electrical power for wireless transmission by the coil 21. The amplifier may function as an inverter, which receives an input DC power signal from the voltage regulator 46 and generates an alternating current (AC) as output, based, at least in part, on PWM input from the transmission control system 26. The amplifier 42 may be or include, for example, a power stage inverter. The use of the amplifier 42 within the power conditioning system 40 and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier. For example, the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 mW to about 60 W. [00244] Referring now to FIG. 5C, and with continued reference to FIGS. 1-4, a block diagram illustrating an embodiment of the power conditioning system 40 is illustrated. At the power conditioning system 40, electrical power is received, generally, as a DC power source, via an external power supply 45. The electrical power is provided to an amplifier 42 of the power conditioning system 40, which is configured to condition the electrical power for wireless transmission by the coil 21. The amplifier 42 may function as an inverter, which receives a DC power signal from the external power supply 45 and generates an AC power signal as output, based, at least in part, on PWM input from the transmission control system 26. The amplifier 42 may be or include, for example, a power stage inverter. The use of the amplifier 42 within the power conditioning system 40 and, in turn, the power transmitter 20 enables wireless transmission of electrical signals having much greater amplitudes than if transmitted without such an amplifier. For example, the addition of the amplifier 42 may enable the wireless transmission system 20 to transmit electrical energy as an electrical power signal having electrical power from about 10 milliwatts (mW) to about 60 W.
[00245] Turning now to FIG. 6, another wireless power transfer system 10B is illustrated. The wireless power transfer system 10B includes most of the same elements as the wireless power transfer system 10A and, thus, the base station transmission antenna 21, the receiver antenna 31, the power receiver 30, the load 16, the electronic device 14, and the input power source 12 are functionally equivalent to those of FIG. 1 A and share the same written description as those above, with reference to FIGS. 1-5. In contrast with the wireless power transfer system 10 A, the input power source 12 in the wireless power transfer system 10B is operatively associated with a vehicle 15. While it certainly is possible that the system 10A of FIG. 1 A and/or components thereof may be operatively associated with a vehicle, it is particularly illustrated in FIG. 5 for the purposes of this exemplary embodiment of the disclosure. Additionally, the system 10B includes a power transmitter 20B, which shares many like elements to the power transmitter 20A, as discussed below. The power transmitter 20B may comprise or be operatively associated with a base station 1 IB.
[00246] The vehicle 15 may be a machine that transports people and/or cargo. Exemplary vehicles include automobiles such as cars, trucks, buses, and other land vehicles. Other examples of vehicles may include airplanes, boats, golf carts, small industrial vehicles, farming equipment, construction equipment, nautical vehicles, mixed use vehicles, recreational vehicles, sport vehicles, public transportation vehicles, and trains. Thus, the input power source 12 may be or may include one or more vehicular electrical inputs, vehicular batteries, vehicular power rails, electrical storage devices, such as an electrochemical cell, a battery pack, and/or a capacitor, among other storage devices. Additionally or alternatively, the input power source 12 may be any electrical input source (e.g., any alternating current (AC) or direct current (DC) delivery port) and may include connection apparatus from said electrical input source to the wireless transmission system 20B (e.g., transformers, regulators, rectifiers, conductive conduits, traces, wires, or equipment, goods, computer, camera, mobile phone, and/or other electrical device connection ports and/or adaptors, such as but not limited to USB or lighting ports and/or adaptors, among other contemplated electrical components). [00247] FIG. 7 illustrates the power transmitter 20B. The power transmitter 20B includes most of the same elements as the power transmitter 20A and, thus, the control and communications system 26, the power conditioning system 40, the transmitter coil 21, the sensing system 50, and the housing 100 share the same written description as those above, with reference to FIGS. 1-5. In contrast with the wireless power transfer system 20A, the power transmitter 20B includes a vehicular power input regulator 90. The vehicular power input regulator 90 is configured to receive and regulate the power input from the input power source 12 to generate a filtered input power to transmit to the power conditioning system 40. [00248] When the input power source 12 is a vehicular power source, the input power received by the vehicular power input regulator 90 is susceptible to one or more of power surges, transients, and electrostatic discharge (ESD), among other things. To that end, a single transient voltage spike has potential to damage and/or disrupt components of the power transmitter’s electrical circuitry. Additionally or alternatively, electrical noise produced by a vehicular power source, even that of relatively low energy, can cause significant interruption to digital communications. The vehicular power input regulator 90 may be configured for transient voltage suppression, among other things, to protect downstream components of the power transmitter 20B.
[00249] FIG. 8 is an exemplary plot 19 illustrating an example voltage embodiment of an input power signal 13, communicated from the input power source 11 to the vehicular power input regulator. It is noted that the plot 19 is not to scale and the voltage values are merely exemplary. The input power signal 13 is generated from a vehicular power source like, for example, an alternator and/or battery of a vehicle. Due to the nature of vehicles and the various affects that components of said vehicle may have on the voltage of the power signal 13, a plurality of transient voltages may be applied to the connection and/or rail upon which the input power signal 13 propagates. As illustrated, and viewed in reference to the baseline 0 V level, the voltage of power in a vehicular power connection and/or rail may have transient spikes and dips that could affect components attached to said connection and/or rail. As illustrated, such transients may be alterations to a nominal voltage and include, but are not limited to including, voltage drops due to a crank, load dumps drastically increasing voltage, signal noise, overvoltages from various sources, such as jump starts, reverse battery connections, among other things.
[00250] The vehicular power input regulator 90 is utilized by the power transmitter 20 to substantially “flatten” the exemplary plot 19, thus providing a constant, safe voltage in the filtered power signal provided to downstream components of the power transmitter 20. As illustrated in FIGS. 9A-E, the vehicular power input regulator 90 includes an input protection circuit 91, which is utilized in removing transients from the input power signal and/or flattening the voltage of the input power signal to a common, sustained voltage.
[00251] Turning now to FIG. 10 and with continued reference to FIGS. 9A-E, components of the input protection circuit 91 are illustrated. The input protection circuit 91 may include an electrostatic discharge (ESD) protection circuit 94, which is configured to prevent ESD and/or mitigate ESD entering or occurring within the power transmitter 20. “Electrostatic Discharge (ESD),” as defined herein, is the sudden flow of electricity between two electrically charged objects caused by one or more of contact, an electrical short, and/or dielectric breakdown. ESD may occur when differently-charged objects are brought close together or when the dielectric between them breaks down. Exemplary ESD protection circuits 94 may embody or include diodes, Transient Voltage Suppressors (TVS), Zener diodes, among other things.
[00252] The input protection circuit 91 may further include an electromagnetic interference (EMI) mitigation circuit 95. EMI, which may, alternatively, be referred to as “radio-frequency interference,” refers to disturbances, which may be, generally, unwantedly generated by components of the power transmitter 20, which may affect an electrical circuit, and are generated by electromagnetic induction, electrostatic coupling, and/or conduction, among other sources for EMI. Such disturbances may degrade the performance of the circuit, stop the circuit from functioning and/or may violate EMI limits for commercial products, as provided via regulation. Both man-made and natural sources can generate changing electrical currents and voltages, which may cause EMI. Accordingly, the EMI mitigation circuit 95 may be included to mitigate the ill effects of EMI on components of the power transmitter 20 and/or limit transmission of EMI by the power transmitter 20. The EMI mitigation circuit 95 may embody or include filters, RF filters, common mode chokes, ferrite beads, inductors, tuning networks, among other things.
[00253] The input protection circuit 91 may include an overvoltage protection circuit 92, which is configured for protecting components and/or subcomponents of the power transmitter 20 from overvoltages in the input power signal. “Overvoltage,” as defined herein, refers to when a voltage in the power transmitter 20 is raised above the upper design limit of any component of the power transmitter 20. Overvoltages may cause damage and/or failure in components of the power transmitter 20. Depending on the duration of an overvoltage, an overvoltage event can be a transient, such as a spike, or may be a substantial constant and/or permanent overvoltage, thus resulting in power surge. Exemplary overvoltage protection circuits 92 may embody or include a crowbar protection circuit, a Zener voltage regulator circuit, Zener diodes, bipolar transistors, voltage regulators, relays, among other known overvoltage protection circuits.
[00254] The input protection circuit 91 may further include an undervoltage protection circuit 93, which is configured to prevent undervoltages from being passed to the power conditioning system 40. “Undervoltage,” as defined herein, occurs when the voltage of the input electrical power drops below intended voltage levels for operation of the power transmitter 20. Undervoltages may result in components failing, due to a lack of power transmitted, and/or undervoltages may cause components of the power transmitter 20 to draw excess current, which could result in component failure or damage. Undervoltages may be harmful to digital logic elements of the power transmitter 20, as an undervoltage can put a digital logic circuit into an unknown and/or unpredictable state, may corrupt volatile memory, such as Random Access Memory (RAM), cause a microcontroller to perform unforeseen actions, cause unsafe conditions within logic circuitry, among other things. Such occurrences, when caused by undervoltage, may cause component damage, create unsafe conditions, and/or may cause the power transmitter to stop functioning.
[00255] The undervoltage protection circuit 93 may be configured in any proper manner to prevent undervoltage, such as, but not limited to, including extra capacitance to a circuit to provide power during a brownout, including a CPU halt mechanism, and/or switching/detecting elements to shut down the power transmitter 20 until a voltage reaches acceptable limits. Exemplary undervoltage protection circuits 93 may embody or include a comparator circuit, high capacitance circuits, fail-safe circuits, timers, among other things. [00256] Returning now to FIG. 9A, a DC/DC voltage converter 96A is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20. The DC/DC voltage converter 96A may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a boost-buck converter, a push-pull converter, a full bridge converter, among other things. In some examples, the input power from the input power source may be about 12 V and the operating voltage for the power transmitter 20 is about 19 V. In such examples, the DC/DC voltage converter 96 A is configured to boost or step up the voltage of the power signal for the filtered power signal from 12 V to 19 V. In some other examples, the DC/DC voltage converter 96A is configured to buck or step down the voltage of the power signal for the filtered power signal from 24 V to 19 V.
[00257] In another embodiment of the vehicular power input regulator 90B illustrated in FIG. 9B, a DC/DC input buck converter 96B is included for receiving filtered power, bucking and/or stepping down the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20. The DC/DC voltage converter may be any element, component, and/or component configured for bucking, stepping down, and/or lowering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a transformer, an amplifier, a split-pi converter, a push-pull converter, a full bridge converter, among other things. In some examples, the input power from the input power source may be about 12 V and the operating voltage for the power transmitter 20 is about 12 V. In such examples, the DC/DC voltage converter 96B is configured to maintain and/or stabilize the voltage of the input power signal at about 12 V. In some other examples, the DC/DC voltage converter 96B is configured to buck or step down the voltage of the power signal for the filtered power signal from about 24 V to about 12 V.
[00258] FIG. 9C illustrates another embodiment of a vehicular power input regulator 90C, which is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20. The vehicular power input regulator 90C may include a DC/DC voltage converter 96C, which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a boost-buck converter, a push-pull converter, a full bridge converter, among other things. In the exemplary embodiment of FIG. 9C, the power transmitter 20 may include an input voltage sensor 97 which is configured to detect and/or measure the input voltage of the power received from the input power source 11. The input voltage sensor 97 then provides such voltage information to the control and communications system 26, which may then control voltage of the DC/DC input converter 96C, based on the detected input voltage. For example, if the input voltage is about 12 V and the operating voltage of the power transmitter 20 is about 19 V, the control and communication system 26 may instruct the DC/DC input converter 96C to boost and/or step up the voltage to about 19 V. In some alternative examples, if the input voltage is about 24 V and the operating voltage of the power transmitter 20 is about 19 V, then the control and communications system 26 may be configured to buck or step down the voltage to about 19 V.
[00259] FIG. 9D illustrates another embodiment of a vehicular power input regulator 90D, which is included for receiving filtered power, converting the input voltage of the filtered power, and outputting the filtered power signal at the operating input voltage for the power transmitter 20. The vehicular power input regulator 90D may include a DC/DC buck-boost converter 96D, which may be any element, component, and/or component configured for altering a DC voltage of a DC power signal, which may include, but is not limited to including one or more of a buck converter, a step-down converter, a boost converter, a transformer, an amplifier, a split-pi converter, a push-pull converter, a full bridge converter, among other things. In the exemplary embodiment of FIG. 9D, the buck-boost converter 96D may be configured to detect and/or measure the input voltage of the power received from the input power source 11 and then buck or boost the voltage, based on the desired operating conditions for the power transmitter 20. For example, if the input voltage is about 12 V and the operating voltage of the power transmitter 20 is about 19 V, the buck-boost converter 96D may boost and/or step up the voltage to about 19 V. In some alternative examples, if the input voltage is about 24 V and the operating voltage of the power transmitter 20 is about 19 V, then the buck-boost converter 96D may be configured to buck or step down the voltage to about 19 V.
[00260] In an exemplary embodiment of a vehicular power input regulator 90E, as illustrated in FIG. 9E, elements of the vehicular power input regulator 90E may be integrated with the power conditioning system 40 of the power transmitter 20. In such examples, the voltage regulator 46 may be implemented to embody similar functions of any of the DC/DC voltage converters 90A-D of FIGS. 9A-D. To that end, the voltage regulator 46 may be configured to convert the input voltage from the input power source 11 to a proper operating voltage for the power transmitter 20.
[00261] Turning now to FIGS. 11 A and 1 IB, with continued reference to FIGS. 1-5, components of the power transmitter 20 and the external power supply 45 are illustrated, for the purposes of describing power control methods, schemes, and/or components of the power transmitter 20. To that end, the block diagram of FIG. 6A illustrates interaction between one or more of the power conditioning system 40, the amplifier 42, the controller 28, the external power supply 45, or components thereof.
[00262] The external power supply 45, as discussed above, may be any suitable power supply, which is configurable for providing a proper DC power signal (VDC), at a DC voltage, to the amplifier 42. The DC power is conditioned for wireless power transmission as an alternating current (AC) power signal (VAC), via the transmitter antenna 21. In some examples, the external power supply 45 may provide VDC directly to the amplifier 42, absent any additional voltage step up or down via physical electrical components (e.g., an internal DC/DC converter of the power transmitter 20). However, while not utilizing hardware internal to the power transmitter to alter VDC, it is certainly contemplated, as discussed below, that voltage, current, and/or power levels of the resultant power signal VAC may be altered by control via the controller 28.
[00263] The external power supply 45 receives an input power VIN, which may be any DC or AC input power, to be conditioned by the external power supply 45, for output directly to the amplifier 42 as VDC. A voltage regulator 46 receives VIN from the input power source 12 and is configured to provide electrical power to the amplifier 42. Accordingly, the voltage regulator 46 is configured to convert the received electrical power into a power signal at a proper voltage for operation of the respective downstream components. The voltage regulator 46 may be any voltage regulator known in the art that is capable of converting in input voltage to an output, direct current voltage, which may include one or more DC/DC converters, amplifiers, transistors, transformers, inverters, switches, diodes, rectifiers, switching systems, among other known voltage regulators. To that end, the voltage regulator 46 may be configured to step up VIN to result in VDC, step down VIN to result in VDC, and/or maintain a substantially similar voltage VIN to result in VDC.
[00264] Such stepping up, stepping down, and/or maintenance of the voltage for generating VDC may be controlled by a power supply controller 47 of the external power supply 45. The power supply controller 47 may include any internal firm ware and/or may respond to signals from any external controllers (e.g., the transmission controller 28) for determining instructions for provision to the voltage regulator 46, to control voltage levels for the resultant VDC. AS discussed in more detail below, one or more control methods, schemes, and/or components are utilized by the power supply controller 47 to output the desired VDC directly to the amplifier 42.
[00265] The power supply controller 47 may be any electronic controller or computing system that includes, at least, a processor which performs operations, executes control algorithms, stores data, retrieves data, gathers data, controls and/or provides communication with other components and/or subsystems associated with external power supply 45, and/or performs any other computing or controlling task desired. The power supply controller 47 may be a single controller or may include more than one controller disposed to control various functions and/or features of the external power supply 45. Functionality of the power supply controller 47 may be implemented in hardware and/or software and may rely on one or more data maps relating to the operation of the external power supply 45. To that end, the power supply controller 47 may be operatively associated with memory. The memory may include one or more of internal memory, external memory, and/or remote memory (e.g., a database and/or server operatively connected to the power supply controller 47 via a network, such as, but not limited to, the Internet). The internal memory and/or external memory may include, but are not limited to including, one or more of a read only memory (ROM), including programmable read-only memory (PROM), erasable programmable read-only memory (EPROM or sometimes but rarely labelled EROM), electrically erasable programmable read-only memory (EEPROM), random access memory (RAM), including dynamic RAM (DRAM), static RAM (SRAM), synchronous dynamic RAM (SDRAM), single data rate synchronous dynamic RAM (SDR SDRAM), double data rate synchronous dynamic RAM (DDR SDRAM, DDR2, DDR3, DDR4), and graphics double data rate synchronous dynamic RAM (GDDR SDRAM, GDDR2, GDDR3, GDDR4, GDDR5, a flash memory, a portable memory, and the like. Such memory media are examples of nontransitory machine readable and/or computer readable memory media. In some examples, power supply controller 47 may be an integrated circuit configured to include functional elements of one or both of the power supply controller 47 and the external power supply 45, generally.
[00266] As illustrated in FIGS. 11 A-C, the transmission controller 28 may be utilized for communications with one or more of the external power supply 45, the power supply controller 47, or the amplifier 42, for controlling power levels of power signals within the power transmitter 20. Particularly, the transmission controller 28 is configured to provide power control signals (PCOn) to control a power level of the power signal VAC, VAC configured for transmission to the power receiver 30. For controlling voltages of one or more of VAC, VDC, or any intervening power signals of the power transmitter 20, the transmitter controller 28 may include, implement, execute firmware to implement, and/or functionally provide a voltage controller 41 and a pulse-width modulation signal (PWM) generator 43.
[00267] The voltage controller 41 is, generally, configured to provide one or both of control instructions for stepping up or stepping down the DC power signal VDC or altering power levels of the AC power signal VAC. Further, to determine the power control signals (Peon), the voltage controller may be configured to receive power request signals (Preq) from the power receiver 30 and determine PCOn based, at least in part, on Preq. Preq may be any information that determines a desired power level for transmission to the power receiver 30, such as, but not limited to, a current charge level of a load associated with the power receiver 30, a voltage at a rectifier of the power receiver 30, a load resistance associated with the power receiver 30, among other electrical information associated with the power receiver 30. [00268] For controlling voltage levels of VDC, upon input to the amplifier 42, from the external power supply 45, the transmitter controller 28 is configured to provide PCOn, at least in part, to the external power supply 45, such that the power supply may utilize information of Peon to configure VDC based, at least in part, on VIN and PCOn, and provide VDC to the amplifier 42. In some such examples, such as those illustrated in FIG. 6A, the power supply controller 47 is configured to receive PCOn, at least in part, and generate voltage regulation instructions (Vreg), Vreg configured for altering the DC voltage of VDC, based on Pcon. The power supply controller 47 provides Vreg to the voltage regulator 46, for the voltage regulator
46 to regulate and/or control levels of the DC voltage of VDC, prior to input to the amplifier 42.
[00269] In some examples, information of PCOn transmitted to the power supply controller
47 may include voltage step up instructions and/or voltage step down instructions (PCOn step). Pcon step includes a step level, which is a level, step magnitude, and/or change in voltage at which the voltage regulator 46 and/or the power supply controller 47 is configured to step up or step down the DC voltage of VDC, when configuring VDC from VIN. In some examples, the step levels may be proprietary, with specific voltage levels configured for operation of specific devices and/or operations. In some other examples, the step levels may be a constant rate of change in voltage, from which the power supply 45 is configured to any power level that is a multiple of the step level, up to an upper-bound maximum output power. Utilizing small step levels may allow for greater precisionity in power control, by the power transmitter 20, utilizing external power regulation of the external power supply 45. For example, the step level may be in a range of about 10 millivolts (mV) to about 500 mV. In some other examples, the step level may be about 200 mV. Utilizing step levels in control of an external power supply 45 may allow for the power transmitter 20 to effectively utilize off- the-shelf, inexpensive power supplies, in place of more costly internal voltage regulation hardware.
[00270] Turning now to FIG. 1 IB, the PWM generator 43 may be utilized for providing a PWM signal to the amplifier, for forming VAC based, at least in part, on the input VDC of the amplifier 42. The PWM generator 43 may generate the PWM signal based, at least, on an operating frequency provided by the operating frequency generator 48. In some examples, the operating frequency produced by the operating frequency generator 48 may be selected from a range of about 87 kHz to about 205 kHz.
[00271] In some examples, the PWM generator further includes a duty cycle shift 49, which may be configured to shift, alter, and/or otherwise configure a duty cycle of the resultant AC power signal VAC, which is generated based, at least in part, on the PWM signal (PWM). A duty cycle, as defined herein, refers to the positive voltage cycle of a period of an AC power signal. In an exemplary, ideal, sinusoidal waveform for the AC power signal VAC, the initial duty cycle of VAC is about 50% of the period of the sinusoidal waveform. Thus, if the duty cycle of VAC is decreased, the effective amount of power, over a period of time, will be less than the amount of power output, over a period of time, of an unaltered, about 50% duty cycle for the ideal sinusoidal waveform.
[00272] For the purposes of explanation and example, FIG. 11C is provided to illustrate the effect of a duty cycle shift on the power output of the amplifier 42, based on the control systems, schemes, and/or apparatus disclosed, with respect to FIGS. 11 A and 1 IB. As illustrated in FIGS. 11 A and 1 IB, the power signal VAC is generated at the amplifier 42 based, at least in part, on both VDC and PWM. As illustrated in FIG. 9C, the output of the amplifier, with inputs of VDC and PWM, may result in a substantially sinusoidal wave form having an initial duty cycle (di) that is equal to about 50% of a period of the sinusoidal waveform (T). As illustrated, this unshifted sinusoidal power signal is an initial AC power signal (VAG), which has an initial root mean square voltage (VAcn-ms). A root mean square (rms) voltage refers to the square root of the average value of the squared function of instantaneous values for the voltage, over a period of time, for an alternating current signal.
In other words, one may consider a rms voltage to refer to an equivalent DC value which tells you how many volts of voltage and/or amperes of current that a waveform is comparable to, in terms of its ability to produce the same power. As illustrated, VAG has a peak voltage Vpeak, the initial duty cycle di, and a period T. If di is shifted and Vpeak and T remain substantially constant, then an rms voltage of the wave form will shift proportionately with the shift in duty cycle. To that end, as illustrated in FIG. 11C, if di is shifted and/or reduced by a shift (s) and substantially maintains a constant T and Vpeak, then a rms voltage of the shifted, final output VAC, having a shifted duty cycle dShift, will have an altered rms voltage (VACjms), when compared to VACijms.
[00273] In some examples, the PWM generator 43 may be configured to receive duty cycle shift information (PCOn shift), of PCOn, and generate PWM as modified to generate VAC with a modified duty cycle, as illustrated in FIG. 9C. In such examples, the root mean square voltage VAC UIS, after modification, is less than VAcn-ms would be, absent the duty cycle shift. Accordingly, by shifting the duty cycle of VAC, utilizing the controller 28 and/or the PWM generator 43, precision control of the power levels output for VAC can be achieved through direct software and/or hardware control of a duty cycle shift for VAC.
[00274] By utilizing the duty cycle shifting systems, methods, and/or apparatus in conjunction with the external power supply control systems methods and/or apparatus, precision power level control for an output power signal can be achieved by the power transmitter 20. Additionally, such systems, methods, and/or apparatus may allow for greater precisionity in controls and/or greater range of controls, without need to include additional and/or costly voltage regulation hardware within the power transmitter 20, itself. As discussed above, said systems, methods, and apparatus are beneficial for utilizing the power transmitter 20 with known, affordable, off-the-shelf power supply components, for cost reduction and/or bill of materials reduction.
[00275] Turning now to FIGS. 11 A and 1 IB, with continued reference to FIGS. 1-10, components of the power transmitter 20 and the external power supply 45 are illustrated, for the purposes of describing power control methods, schemes, and/or components of the power transmitter 20. To that end, the block diagram of FIG. 12A illustrates interaction between one or more of the power conditioning system 40, the amplifier 42, the controller 28, the external power supply 45, or components thereof. Accordingly, the components of the power transmitter 20 and the external power supply 45 may be like or similar components to those of FIGS. 11 A-C and, thus, share a common description, as discussed above with reference to FIGS. 11 A-C.
[00276] As illustrated in FIGS. 12A-D, the transmission controller 28 may be utilized for communications with one or more of the external power supply 45, the power supply controller 47, or the amplifier 42, for controlling power levels of power signals within the power transmitter 20. Particularly, the transmission controller 28 is configured to provide power control signals (PCOn) to control a power level of the power signal VAC, VAC configured for transmission to the power receiver 30. For controlling voltages of one or more of VAC, VDC, or any intervening power signals of the power transmitter 20, the transmitter controller 28 may include, implement, execute firmware to implement, and/or functionally provide a voltage controller 41 and a pulse-width modulation signal (PWM) generator 43.
[00277] The voltage controller 41 is, generally, configured to provide one or both of control instructions for stepping up or stepping down the DC power signal VDC or altering power levels of the AC power signal VAC. Further, to determine the power control signals (Peon), the voltage controller may be configured to receive power request signals (Preq) from the power receiver 30 and determine PCOn based, at least in part, on Preq. Preq may be any information that determines a desired power level for transmission to the power receiver 30, such as, but not limited to, a current charge level of a load associated with the power receiver 30, a voltage at a rectifier of the power receiver 30, a load resistance associated with the power receiver 30, among other electrical information associated with the power receiver 30. [00278] For controlling voltage levels of VDC, upon input to the amplifier 42, from the external power supply 45, the transmitter controller 28 is configured to provide PCOn, at least in part, to the external power supply 45, such that the power supply may utilize information of Peon to configure VDC based, at least in part, on VIN and PCOn, and provide VDC to the amplifier 42. In some such examples, such as those illustrated in FIG. 12A, the power supply controller 47 is configured to receive PCOn, at least in part, and generate voltage regulation instructions (Vreg), Vreg configured for altering the DC voltage of VDC, based on Pcon. The power supply controller 47 provides Vreg to the voltage regulator 46, for the voltage regulator
46 to regulate and/or control levels of the DC voltage of VDC, prior to input to the amplifier 42.
[00279] In some examples, information of PCOn transmitted to the power supply controller
47 may include voltage preset selection instructions (PCOn preset). Peon preset includes a selection of a base DC voltage for the DC power, wherein said selection is selected from one or more preset DC power voltage levels. The preset DC power voltages may be any number of voltages, such that the external power supply 45 knows the preset DC power voltages and the controller 28 is capable of communicating a desired preset DC power voltage to the external power supply 45. In some examples, the preset DC voltages may be proprietary, with specific voltage levels configured for operation of specific devices and/or operations. In some examples, the preset DC power voltages include one or more of 5 Volts (V), 9 V, 12 V, 15 V, or 20V. Utilizing preset DC voltages in control of an external power supply 45 may allow for the power transmitter 20 to effectively utilize off-the-shelf, inexpensive power supplies, in place of more costly internal voltage regulation hardware.
[00280] In some other examples, the preset DC voltages may be a steps at constant rate of change in voltage, from which the power supply 45 is configured to any power level that is a multiple of the step level, up to an upper-bound maximum output power. Utilizing small step levels may allow for greater granularity in power control, by the power transmitter 20, utilizing external power regulation of the external power supply 45. For example, the step level may be in a range of about 10 millivolts (mV) to about 500 mV.
[00281] Turning now to FIG. 12B, the PWM generator 43 may be utilized for providing a PWM signal to the amplifier, for forming VAC based, at least in part, on the input VDC of the amplifier 42. The PWM generator 43 may generate the PWM signal based, at least, on an operating frequency provided by the operating frequency generator 48. In some examples, the operating frequency produced by the operating frequency generator 48 may be selected from a range of about 87 kHz to about 205 kHz.
[00282] In some examples, the PWM generator 48 further includes an operating frequency selector 49. The operating frequency selector 49 may receive frequency shift signals (Pconjreq) of Peon for shifting the operating frequency selected at the frequency generator 48, in response to power requirements for the power transmitter 20. In some examples, PCOn freq may be frequency shift information for granularly shifting the output power for VAC, based on electrical characteristics of the transmission system 20 response to a particular frequency, within the operating frequency range. For example, the operating frequency, for a frequency shift 49, may be selected based on known or derived voltage or current characteristics at a given frequency.
[00283] In a non-limiting example, based on operating point analysis of a wireless power transmitter, it is found that a current output for the power transmitter 20, is greater at a higher operating frequency within the operating range of about 87 kHz to about 205 kHz, wherein the relationship between current output and operating frequency is non-linear. Thus, at a constant DC voltage for the DC power input to the amplifier 42, altering the operating frequency, thus altering the current output off the power transmitter 20, may raise or lower the output power for VAC. TO that end, the frequency selector 49 may receive demands for alterations in the base DC voltage of the power supply 45 and granularly determine and generate the resultant output power for VAC.
[00284] For the purposes of explanation and example, FIGS. 12C and 12D are included to illustrate exemplary implementations of the operating frequency selector 49 and its interaction with the operating frequency generator 48 of the PWM signal generator 43. FIG. 12C illustrates a PWM signal generator 43 A that receives Pcon freq as frequency alteration information (Palt) of Peon. The PWM signal generator 43 C includes a look up table (LUT) 49C, which is referenced to determine a frequency shift for the operating frequency, to achieve the desired frequency alteration of Palt. To that end, the LUT 49C may be any database, table, memory, memory accessed remotely, and/or data source which compares a change in power, current, and/or voltage of an output power of the power transmitter 20, with a frequency and/or frequency shift of the operating frequency, which would cause the desired change in power, current and/or voltage of the output power of the power transmitter 20. To that end, data stored in and/or accessed by the LUT 49C may be predetermined by one or more of known characteristics of the power transmitter 20, experimental results regarding operation of the power transmitter 20 and/or components thereof, derivations and/or models regarding electrical performance of the power transmitter 20, known electrical and/or physical characteristics associated with the power transmitter 20 and/or components thereof, or any other known electrical to frequency characteristic relationships.
[00285] Additionally or alternatively, as illustrated in the example of FIG. 12D, a PWM signal generator 43 may include an determiner 49D, for determining a proper operating frequency shift, based on values of Palt. Thus, the determiner 49D may be any non-static model, simulation, derived relationship, control loop, integrator, and/or determiner, which receives a requested power change and determines an operating frequency shift, for said power change, based on known values for the base DC power signal and the desired change from the base DC power level. The determiner 49D may be based on experimental derivations, mathematical derivations, observed results derived into a modelled result, among other systems, methods, and apparatus for determining the relationship between power and operating frequency for a given power transmitter 20. [00286] By utilizing the frequency shifting systems, methods, and/or apparatus in conjunction with the external power supply control systems methods and/or apparatus, granular power level control for an output power signal can be achieved by the power transmitter 20. Additionally, such systems, methods, and/or apparatus may allow for greater granularity in controls and/or greater range of controls, without need to include additional and/or costly voltage regulation hardware within the power transmitter 20, itself. As discussed above, said systems, methods, and apparatus are beneficial for utilizing the power transmitter 20 with known, affordable, off-the-shelf power supply components, for cost reduction and/or bill of materials reduction.
[00287] Turning now to FIG. 13 and with continued reference to FIGS. 12A-C, a block diagram for an exemplary method 600 for controlling power input and/or output of the power transmitter 20 is illustrated. The method 600 may begin at block 605, wherein the transmitter controller 28 receives Preq from the power receiver 30. As illustrated in block 610, the method 600 may include determining Pcon based on Preq. Further, the method 600 includes providing Peon jreset of Peon to the external power supply 45 and/or any components thereof.
The external power transmitter 45 determines Vreg based, at least, on Pcon preset (block 620) and determines and provides VDC to the power transmitter 20 (at the amplifier 42), based on Vreg (block 625).
[00288] In some examples, such as those best described with reference to FIG. 11C, the method 600 may further include determining a operating frequency shift for Pcon (Pcon freq) for further desired voltage configuration of VAC, as illustrated in block 630. Further, PWM may then be altered and/or adjusted, based on PCOn freq, as illustrated in block 635.
[00289] The amplifier 42 is configured to receive the PWM signal from the transmitter controller 28, as illustrated in block 540. Then, the amplifier 42 generates VAC based, at least in part, on VDC and PWM, as illustrated in block 645.
[00290] FIG. 14 is an exemplary schematic diagram 120 for an embodiment of the power transmitter 20. In the schematic, the amplifier 42 is a full -bridge inverter 142 which drives the transmitter coil 21 and a series capacitor Cs. In some examples, wherein the operating frequency of the power transmitter 20 is in the range of about 87 kHz and about 205 kHz, the transmitter coil 21 has a self-inductance in a range of about 5 pH to about 7 pH. In some such examples, Cs has a capacitance in a range of about 400 nF to about 450 nF. [00291] Based on controls configured by the control and communications system 26, an input power source 112, embodying the input power source 12, is altered to control the amount of power transferred to the power receiver 30. The input voltage of the input power source 112 to the full-bridge inverter 142 may be altered within a range of about 1 volt (V) to about 19 V, to control power output. In such examples, the resolution of the voltage of the input power source 112 may be 10 millivolts (mV) or less. In some examples, when the power transmitter 20, 120 first applies a power signal for transfer to the power receiver 30, the power signal of the input power source 112 has an initial input power voltage in a range of about 4.5 V to about 5.5 V.
[00292] The transmitter coil 21 may be of a wire-wound type, wound of, for example, Litz wire. As defined herein, Litz wire refers to a type of multistrand wire or cable utilized in electronics to carry an alternating current at a frequency. Litz wire is designed to reduce skin effect and proximity effect losses in conductors at frequencies up to about 1 MHz and consists of many thin wire strands, individually insulated and twisted or woven together, following a pattern. In some examples, the Litz wire may be no. 17 American Wire Gauge (AWG) (1.15 mm) type 2 Litz wire, having 105 strands of no. 40 AWG (0.08 mm diameter), or equivalent wire. In some examples, the Litz wire used for the transmitter coil 21 may be a bifilar Litz wire. To that end, utilizing thicker Litz wire, such as the no. 17 AWG type 2 Litz wire, utilizing bifilar Litz wire, and combinations thereof, may result in an increased Quality Factor (Q) for the transmitter coil 21 and higher Q may be directly related to increases in gap 17 height and/or Z-Distance. As Q is directly related to the magnitude of the magnetic field produced by the transmitter antenna 21 and, thus, with a greater magnitude magnetic field produced, the field emanating from the transmission antenna 21 can reach greater Z-distances and/or charge volumes, in comparison to legacy transmission coils, having lower Q designs. While Litz wire is described and illustrated, other equivalents and/or functionally similar wires may be used. Furthermore, other sizes and thicknesses of Litz wire may be used. [00293] Turning to FIG. 15, an exemplary diagram 121, for portraying dimensions of the transmitter antenna 21, is illustrated. The diagram 121 is a top perspective view of the transmitter antenna 21 and shows a top face 60 of the transmitter antenna 21. Note that the diagram 121 is not necessarily to scale and is for illustrative purposes. The top face 60 and the transmitter antenna 21, generally, are relatively circular in shape. As illustrated, an outer diameter d0 is defined as an exterior diameter of the transmitter antenna 21. In some examples, the outer diameter d0 has an outer diameter length in a range of about 40 mm to about 50 mm. An inner diameter di is defined as the diameter of the void space in the interior of the transmitter antenna 21. The inner diameter di may have an inner diameter length in a range of about 15 mm to about 25 mm. The outer diameter d0 and the inner diameter di may be relatively concentric, with respect to one another. The transmitter coil 21 has a thickness tw, which is defined as the thickness of the wire of the coil. The thickness tw may be in a range of about 2 mm to about 3 mm. In such examples, the transmitter coil 21 may be made of Litz wire and include at least two layers, the at least two layers stacked upon each other. Utilization of one or more of an increased inner diameter di, an increased outer diameter d0, multiple Litz wire layers for the antenna 21, specific dimensions disclosed herein, and/or combinations thereof, may be beneficial in achieving greater gap 17 heights and/or Z- distances. Other shapes and sizes of the transmitter antenna 21 may be selected based on the configuration with the selection of the shape and size of the shielding of the transmitter coil. In the event that a desired shielding in required, the transmitter antenna 21 may be shaped and sized such that the shielding surrounds the transmitter antenna 21 in accordance with an embodiment.
[00294] Turning now to FIG. 16, a cross-sectional view of the transmitter coil 21, within the base station 11 and partially surrounded by a shielding 80 of the transmitter coil 21, is illustrated. The shielding 80 comprises a ferrite core and defines a cavity 82, the cavity configured such that the ferrite core substantially surrounds all but the top face 60 of the transmitter antenna 21 when the transmitter antenna 21 is placed in the cavity. As used herein, “surrounds” is intended to include covers, encircles, enclose, extend around, or otherwise provide a shielding for. “Substantially surrounds,” in this context, may take into account small sections of the coil that are not covered. For example, power lines may connect the transmitter coil 21 to a power source. The power lines may come in via an opening in the side wall of the shielding 80. The transmitter coil 21 at or near this connection may not be covered. In another example, the transmitter coil 21 may rise slightly out of the cavity and thus the top section of the side walls may not be covered. By way of example, substantially surrounds would include coverage of at least 50+% of that section of the transmitter antenna. However, in other examples, the shielding may provide a greater or lesser extend of coverate for one or more sides of the transmitter antenna 21.
[00295] In an embodiment, as shown in FIG. 16, the shielding 80 surrounds at least the entire bottom section of the transmitter antenna 21 and almost all of the side sections of the transmitter antenna 21. As used herein, the entire bottom section of the transmitter antenna 21 may include, for example, the entire surface area of the transmitter antenna 21 or all of the turns of the Litz wire of the transmitter antenna 21. With respect to the side walls, as shown in FIG. 16, the magnetic ring 84 does not extend all the way up the side wall of the transmitter antenna 21. However, as shown in other illustrations, the side wall may extend all the way up the side wall.
[00296] In another embodiment, the shielding 80 may surround less than the entire bottom section of the transmitter antenna 21. For example, connecting wires (e.g., connecting wires 292, as best illustrated in FIGS. 18A, 18B and discussed below) may be run through an opening in the bottom of the shielding 80.
[00297] In an embodiment, as shown in FIG. 16, the shielding 80 is an “E-Core” type shielding, wherein the cavity 82 and structural elements of the shielding 80 are configured in an E-shape configuration, when the shielding is viewed, cross-sectionally, in a side view. The E-Core configuration is further illustrated in FIG. 17, which is a perspective view of the shielding 80. The shielding 80 may include a magnetic core 86, a magnetic backing 85, and a magnetic ring 84. The magnetic core 86 is spaced inwardly from the outer edge of the magnetic backing 85 and projects in an upward direction from the top surface of the magnetic backing 85. The magnetic core 86 and the magnetic ring 84 function to surround the transmitter coil 21 and to direct and focus magnetic fields, hence improving coupling with the receiver coil 31 of the power receiver 30.
[00298] In addition to covering the entire outer diameter of the transmitter coil 21, the shielding 80 may also cover the inner diameter di of the transmitter coil 21. That is, as shown, the inner section of the E-Core configuration may protrude upward through the middle of the transmitter coil 21.
[00299] In an embodiment, the cavity 82 is configured such that the shielding 80 covers the entire bottom section of the transmitter coil 21 and the entire side sections of the transmitter coil 21. The top section of the transmitter coil 21 is not covered. The bottom section of the transmitter coil 21 is the side of the transmitter coil 21 that is opposite of the direction of the primary power transfer to the receiver coil. With a wire wound transmitter coil 21, the side section of the transmitter coil 21 includes the side section of the outer most winding of the coil 21.
[00300] FIG. 18A is a perspective view of the transmitter coil 21 and the embodiment of the E-core shielding of FIG. 16 and 18B is an exploded perspective view of the transmitter coil 21 and the embodiment of the E-core shielding of FIG. 16. The transmitter coil 21 is positioned above the shielding 80, whose combination of structural bodies, as discussed above, may include the combination of the magnetic core 86, the magnetic backing 85, and magnetic ring 84. This magnetic shielding combination functions to help direct and concentrate magnetic fields created by transmitter coil 21 and can also limit side effects that would otherwise be caused by magnetic flux passing through nearby metal objects. In some examples, the magnetic ring defines an opening 88, in which a connecting wire 292 of the transmitter coil 21 can exit the shielding 80.
[00301] As defined herein, a “shielding material,” from which the shielding 80 is formed, is a material that captures a magnetic field. An example of which is a ferrite material. The ferrite shield material selected for the shielding 80 also depends on the operating frequency, as the complex magnetic permeability (p=p'-j*p") is frequency dependent. The material may be a sintered flexible ferrite sheet or a rigid shield and be composed of varying material compositions. In some examples, the ferrite material for the shielding 80 may include a Ni-Zn ferrite, a Mn-Zn ferrite, and any combinations thereof.
[00302] Returning now to FIG. 16 and with continued reference to FIGS. 17 and 18, the shielding 80 is aligned with the transmitter antenna 21 such that the shielding 80 substantially surrounds the transmitter antenna 21 on all sides, aside from the top face 60. In other words, the transmitter antenna 21 may be wound around the magnetic core 86 and be surrounded, on the bottom and sides, respectively, by the magnetic backing 85 and the magnetic ring 84. As illustrated, the shielding 80, in the form of one or both of the magnetic backing and the magnetic core, may extend beyond the outer diameter d0 of the transmitter antenna 21 by a shielding extending distance de. In some examples, the shielding extending distance de may be in a range of about 5 mm to about 6 mm. The shielding 80, at the magnetic backing 85, and the transmitter coil 21 are separated from one another by a separation distance ds, as illustrated. In some examples, the separation distance ds may be in a range of about 0.1 mm and 0.5 mm.
[00303] An interface surface 70 of the base station 11 is located at a interface gap distance dint from the transmitter coil 21 and the shielding 80. The interface surface 70 is a surface on the base station 11 that is configured such that when a power receiver 30 is proximate to the interface surface 70, the power receiver 30 is capable of coupling with the power transmitter 20, via near-field magnetic induction between the transmitter antenna 21 and the receiver antenna 31, for the purposes of wireless power transfer. In some examples, the interface gap distance dint maybe in a range of about 8 mm to about 10 mm. In such examples, the dint is greater than the standard required Z-distance for Qi™ certified wireless power transmission (3-5 mm). Accordingly, by having a greater dint, empty space and/or an insulator can be positioned between the transmission coil 21 and the interface surface 70 to mitigate heat transfer to the interface surface 70, the power receiver 30, and/or the electronic device 14 during operation. Further, such a greater dint allows for interface design structures in which objects on or attached to the electronic device 14 may remain attached to the electronic device during operation. As described in greater detail below, design features of the interface surface 70 may be included for interaction with such objects for aligning the power transmitter 20 and the power receiver 30 for operation.
[00304] Returning now to FIG. 18B, an exemplary coil 221 for use as the transmitter antenna 21 is illustrated in the exploded view of the transmitter antenna 21 and shielding 80. The coil 221 includes one or more bifilar Litz wires 290 for the first bifilar coil layer 261 and the second bifilar coil layer 262. “Bifilar,” as defined herein, refers to a wire having two closely spaced, parallel threads and/or wires. Each of the first and second bifilar coil layers 261, 262 include N number of turns. In some examples, each of the first and second bifilar coil layers 261, 262 include about 4.5 turns and/or the bifilar coil layers 261, 262 may include a number of turns in a range of about 4 to about 5. In some examples, the one or more bifilar Litz wire 290 may be no. 17 AWG (1.15 mm) type 2 Litz wire, having 105 strands of no. 40 AWG (0.08 mm diameter), or equivalent wire. Utilization of multiple layers, thick Litz wire, bifilar Litz wire, and any combinations thereof, may result in the coil 21 achieving greater Q and/or may result in increases in gap 17 height and/or Z-distance between the coil 21 and a receiver coil. [00305] FIG. 19A is a first block diagram 311 A for an implementation of the base station 11. As illustrated, the power transmitter 20 is contained within the base station 11. In some examples, the base station 11 includes one or more user feedback mechanisms 300, wherein each of the one or more user feedback mechanisms 300 are configured for aiding a user in aligning a power receiver 30 and/or its associated electronic device 14 with an active area 310 for wireless power transmission via the transmitter coil 21, wherein the power receiver 30 is configured to acquire near field inductive power from the transmitter coil 21. The “active area” 310, as defined herein, refers to any area, volume, and/or space proximate to the interface surface 70 wherein the power transmitter 20 is capable of transmitting near field inductive power to a power receiver 30.
[00306] The one or more user feedback mechanisms 300 may include one or more of a visual feedback display 302, a tactile feedback mechanism 304, an audible feedback mechanism 306, a marking 308 on the interface surface 70, any other feedback mechanisms 300, and any combinations thereof. The visual feedback display 302 is configured for visually indicating proper alignment of the power receiver 30 with the active area 310. The visual feedback display 302 may include, but is not limited to including, a visual screen, a light, a light emitting diode (LED), a liquid crystal display (LCD) display, other visual displays, and/or any combinations thereof. The tactile feedback mechanism 304 is configured for tactilely indicating if the power receiver 30 is in proper alignment with the active area 310. The tactile feedback mechanism 304 may include, but is not limited to including, a haptic feedback device, a vibrating device, other tactile feedback mechanisms, and any combinations thereof. The audible feedback device 306 is configured for audibly indicating if the power receiver 30 is in proper alignment with the active area 310. The audio feedback mechanism 306 may include, but is not limited to including, a speaker, a sound generator, a voice generator, an audio circuit, an amplifier, other audible feedback devices, and any combinations thereof.
[00307] The marking 308 may be any visual and/or mechanical signifier, indicating where a user of the electronic device 14 should place his/her/their electronic device 14 on the interface surface 70, such that the power transmitter 20 will be in proper alignment with the power receiver 30 of the electronic device 14. Additionally or alternatively, the marking 308 may indicate a location of the active area 310 and/or a proper location within the active area 70. In the exemplary embodiment of the diagram 311 A, the marking 308A may be a substantially two-dimensional visual indicator marked on the interface surface 70. The substantially two-dimensional marking 308A may include, but is not limited to including, a printed indicator, a logo, a message indicating a user should place the electronic device 14 upon the marking 308A, any other substantially two-dimensional markings, and any combinations thereof.
[00308] In an alternative embodiment in a second schematic block diagram 31 IB illustrated in FIG. 19B, the marking 308B is a substantially three-dimensional and/or mechanical marking 308B, such as, but not limited to, an indentation and/or notch in the interface surface 70. The three-dimensional marking 308B may be configured to interact with mechanical feature 72 of the electronic device 14. The mechanical feature 72 may be any mechanical feature of the electronic device 14 and/or another connected mechanical feature and/or device associated with the electronic device 14. Accordingly, interaction between the mechanical feature 72 and the three-dimensional marking 308B may be configured to align the power transmitter 20 with the power receiver 30 of the electronic device 14. For example, the mechanical feature 72 may be an external protrusion located relatively proximate to the power receiver 30 of electronic device 14 and the marking 308B is configured to receive the mechanical feature and, by the nature of such receipt, the power transmitter 20 and the power receiver 30 are properly aligned for near-field inductive wireless power transfer. In some such examples, the electronic device 14 is a mobile device, such as a smart phone and/or tablet computing device, and the mechanical feature 72 may be an externally attached grip device configured for gripping the electronic device 14 when in use. In such examples, the marking 308B is configured to receive the grip device mechanical feature 72 and enable proper alignment of the power transmitter 20 and the power receiver 30 for near-field inductive wireless power transfer while the removable mechanical feature 72 remains attached to the electronic device 14.
[00309] FIG. 20 is an exemplary, actual, simulation 900 of a magnetic field generated by a transmitter coil 21 and/or its associated power transmitter 20 and captured by an exemplary receiver coil 31 and/or its associated power receiver 30, when the transmitter coil 21 and/or power transmitter 20 are designed, manufactured, and/or implemented according to the teachings of this disclosure. The receiver coil 30 was as a standard Qi™ receiver coil utilized by commercial electronic devices, such as mobile phones, and the receiver coil 30 was modelled with a metal piece behind the coil, wherein the metal piece was used to simulate a battery. The simulation shows that the magnetic field generated by the transmitter coil 20 was captured by the receiver coil 30 at an extended Z-distance of 9 mm. As discussed previously, Qi™ wireless transmitter coils typically operate between coil-to-coil distances of about 3 mm to about 5 mm. The shaped-magnetics of the transmitter coil 21 have shown to favorably reshape a magnetic field so that coil-to-coil coupling can occur at extended Z-distances, wherein the Z-distances are extended about 2 times to about 5 times the distance of standard Qi™ wireless power transmitters. Furthermore, the shaped-magnetics of the present application can extend coupling of present day a Qi™ wireless power transmitter at a Z- distance ranging about 5 mm to about 25 mm. Any of the E-core and/or additional or alternative custom shapes for the shielding 80, may successfully be used to reshape the magnetic field for extended Z-distance coupling by a minimum of a 5% compared to standard present-day power transmitters. In addition, any of the E-core and custom shapes previously discussed, each in conjunction with its relation to a coil to the magnetic has also may further increase z-direction coupling by at least another 5%. An embodiment comprising a structure, the structure comprising a coil and a magnetic material, wherein a gap between the coil and the magnetic material residing at the inner diameter of the coil comprises 2 mm, reshapes the magnetic field so that coupling increases by 5%.
[00310] As is discussed above, the transmitter coils 21, power transmitters 20, and/or base stations 11, disclosed herein, may achieve great advancements in Z-distance and/or gap 17 height, when compared to legacy, low-frequency (e.g., in a range of about 87 kHz to about 205 kHz) transmission coils, power transmitters, and/or base stations. To that end, an extended Z-distance not only expands a linear distance, within which a receiver may be placed and properly coupled with a transmitter, but an extended Z-distance expands a three- dimensional charging and/or operational volume (“charge volume”), within which a receiver may receive wireless power signals from a transmitter. For the following example, the discussion fixes lateral spatial freedom (X and Y distances) for the receiver coil, positioned relative to the transmitter coil, as a control variable. Accordingly, for discussion purposes only, one assumes that the X and Y distances for the base stations 11, power transmitters 20, and/or transmitter coils 21 are substantially similar to the X and Y distances for the legacy system(s). However, it is certainly contemplated that the inventions disclosed herein may increase one or both of the X-distance and Y-distance. Furthermore, while the instant example uses the exemplary range of 8-10 mm for the Z-distance of the base stations 11, power transmitters 20, and/or transmitter coils 21, it is certainly contemplated and experimental results have shown that the base stations 11, power transmitters 20, and/or transmitter coils 21 are certainly capable of achieving Z-distances having a greater length than about 10 mm, such as, but not limited to, up to 15 mm and/or up to 30 mm. Accordingly, the following table is merely exemplary and for illustration that the expanded Z-distances, achieved by the base stations 11, power transmitters 20, and/or transmitter coils 21, have noticeable, useful, and beneficial impact on a charge volume associated with one or more of the base stations 11, power transmitters 20, and/or transmitter coils 21.
Figure imgf000071_0001
Thus, by utilizing the base stations 11, power transmitters 20, and/or transmitter coils 21, the effective charge volume may increase by more than 100 percent, when compared to legacy, low-frequency wireless power transmitters. Accordingly, the base stations 11, power transmitters 20, and/or transmitter coils 21 may achieve large Z-distances, gap heights, and/or charge volumes that were not possible with legacy low frequency, but thought only possible in lower power, high frequency (e.g., above about 2 Mhz) wireless power transfer systems. [00311] FIGS 21 A and 21B illustrate a coil array 321, which may be utilized as the transmitter antenna 21 of one or more of the power transmitters 21, the base station 11, or combinations thereof. As illustrated, the coil array 321 may include two or more transmitter coils 322, which may be constructed in accordance with the specifications of the transmitter antenna 21, as discussed above, regarding dimensions, materials, and combinations thereof, as discussed with reference to FIGS. 14-18. While the exemplary coil array 321 of FIGS.
21 A-B shows three transmitter coils 322, the coil array 321 is certainly not limited to having only three transmitter coils 322. Further, as the transmitter coils 322 are illustrated in a substantially linear and/or rectangular layout, they certainly are not limited to being in a substantially linear and/or rectangular layout; examples of other layouts include, but are not limited to including, a substantially square layout, a substantially triangular layout, an asymmetric layout, among other contemplated layouts. Further, while the transmitter coils 322 are illustrated as layered and/or stacked with respect to at least one coil (e.g., first and second transmitter coils 322A, 322B are positioned or stacked above a third transmitter coil 322C); however, it is certainly contemplated that the transmitter coils 322 may have other stacking or layered arrangements or the transmitter coils 322 may be not stacked and substantially co-planar. Further, while the transmitter coils 322 are illustrated as substantially circular and/or ovular in shape, it is contemplated that the transmitter coils 322 may be of any acceptable shape for wireless power transfer including, but not limited to, substantially square in shape, substantially rectangular in shape, substantially elliptically shaped, substantially polygonal in shape, among other contemplated shapes.
[00312] As shown in FIG. 21 A, the transmitter coils 322 A, 322B are adjacent to each other on a first plane. In some embodiments, the outer edge of the transmitter coils 322A, 322B may be touching or almost touching. Almost touching may take into account a small gap. The transmitter coil 322C is in a second plane that is beneath the first plane. The center of the transmitter coil 322C, as shown in FIG 21 A, is positioned between the adjacent transmitter coils 322A, 322B in the second plane. The first plane is different than the second plane. The first plane is above the second plane in the direction of wireless power transmission. It is possible that the first and second plane may be reversed and the second plane is above the second plane in the direction of wireless power transmission. In some embodiments, the center of the transmitter coil 322C may be offset from the position between the adjacent transmitter coils 322A, 322B. For example, in an embodiment, the center of the transmitter coil 322C may be shifted to align with the center of the transmitter coil 322B or 322A. [00313] As illustrated, the coil array 321 includes a shielding 380. The shielding 380 comprises a ferrite core and defines a cavity 382, the cavity 382 configured such that the ferrite core substantially surrounds all but the top faces of each of the transmitter coils 322, similar to the shielding 80 discussed above. As illustrated, the shielding 380 surrounds at least the entire bottom section of the transmitter coils 322 and almost all of the side sections of the transmitter coils 322.
[00314] While not necessarily an “E-Core” shielding, the shielding 380, which is illustrated absent the transmitter coils 322 in FIG. 22, is configured to functionally replicate the shielding 80, but for multiple coils. Thus, while not maintaining the substantially E- shaped cross section, the configuration and location of structural members of the shielding 380 are configured to substantially surround the transmitter coils 322, similarly to how the E- Core shielding 80 substantially surrounds a single transmitter antenna 21. The shielding 380 may include a magnetic cores 386, a magnetic backing 385, and a magnetic wall 384. The magnetic cores 386 are spaced inwardly from the outer edge of the magnetic backing 385 and projects in an upward direction from the top surface of the magnetic backing 385. The magnetic cores 386 and the magnetic ring 384 function to surround the transmitter coils 322 and to direct and focus magnetic fields, hence improving coupling with the receiver coil 31 of the power receiver 30.
[00315] As viewed in FIG. 22, the cavity 382 is configured such that the shielding 380 covers the entire bottom section of the transmitter coils 322 (with, for example, the magnetic backing 385) and the entire side sections of the transmitter coils 322 (with, for example, the magnetic wall 384). The top section of the transmitter coils 322 are not covered. The bottom section of the transmitter coils 322 is the side of the transmitter coils 322 that is opposite of the direction of the primary power transfer to the receiver antenna 31 (e.g., an opposite side to a top face of the coil 322). With a wire wound transmitter coils 322, the side section of the transmitter coils 322 includes the side section of the outer most windings of the transmitter coils 322.
[00316] The transmitter coils 322 are positioned above the shielding 380, whose combination of structural bodies, as discussed above, may include the combination of the magnetic cores 386, the magnetic backing 385, and magnetic ring 384. This magnetic shielding combination functions to help direct and concentrate magnetic fields created by transmitter coils 322 and can also limit side effects that would otherwise be caused by magnetic flux passing through nearby metal objects. In some examples, the magnetic ring defines one or more opening(s) 388, in which a connecting wire 389 of each transmitter coils 322 can exit the shielding 380.
[00317] In addition to substantially surrounding the outer diameter of the transmitter coils 322, the shielding 380 may also cover portions of the inner areas associated with the transmitter coils 322. That is, as shown, the inner section of the shielding 380 configuration may protrude upward through the middle of each of the transmitter coils 322. In the instant example, the three magnetic cores 386 A, 386B, and 386C may have differing shapes based on the layout/configuration of the coil array 321. Accordingly, such differing shapes are each configured to fill a gap between open space between elements of each of the transmitter coils 322, such that an area on the interior of the innermost turn of a transmitter coil 322 is substantially filled with one or more of some of another transmitter coil 322 and a magnetic core 386. Note, that the shape of the magnetic cores 386A-C are merely exemplary and the magnetic cores 386 can be any shape such that they substantially fill a void in the interior of a transmitter coil 322.
[00318] Turning now to FIGS. 23-26, an exemplary housing 400A is illustrated. The power transmitter 20 is housed within the housing 400A and an exemplary mobile device 414 is shown, which may be configured to receive wireless power from the power transmitter 20. Thus, the power receiver 30 may be part of or operatively associated with the mobile device and the mobile device 414 may be the electronic device 14 operatively associated with the power receiver 30. FIG. 23A illustrates a perspective view of the exemplary housing 400A and mobile device 414, while FIG 23B illustrates the housing 400 A and mobile device 414 in a front view, when the mobile device 414 is positioned, relative to the housing 400A, such that the power receiver 30 can receive wireless power signals from the power transmitter 20. In some examples, the mobile device 414 may have a peripheral 418 associated therewith, wherein the peripheral is a physical device attachable to the mobile device 414. Examples of peripherals include, but are not limited to including, cases, grip devices, specialty grip devices, wallets, among other things. In some examples, the power transmitter 20 may be configured to be couplable with the power transmitter 30, for the purposes of wireless power transfer, through both the housing 400 and the peripheral 418, when the mobile device 414 is placed in proper position relative to the housing 400.
[00319] FIGS. 24A and 24B present similar perspective and top views, respectively, to those of FIGS. 23 A and 23B, but with the housing 440 illustrated as transparent, such that certain inner components of the system 20 may be illustrated. The transmitter antenna 21 and/or the coil array 321 are housed within the housing 440 and the transmitter antenna 21 is not limited to being implemented with the coil array 321 but, rather, may be any transmitter antenna 21 capable of providing wireless power to a receiver system 30 of the mobile device 414 when the mobile device is positioned, relative to the housing 400, for wireless power transfer. As will be discussed in more detail below, the housing may house a fan 410 that is a part of the power transmission system 20, which may be utilized to generate an air flow used for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, and combinations thereof.
[00320] As best illustrated in the cross section of the housing 400A in FIG. 25, the fan 410 and/or any other source of airflow may be positioned to communicate with an airflow opening 430 of the housing 400. The airflow opening 430 may be any cavity, cut out, and/or void within the housing 400 that allows airflow to fluidly communicate between a source for airflow (e.g., the fan 410) and one or more airflow channels of the housing, configured for providing airflow for cooling one or more of the housing 400, the mobile device 414, the power transmitter 20, the transmitter antenna 21, or power transmitter 20 components. “Airflow,” as defined herein, refers to, at least, any movement of air, including materials, gases, and/or particles mixed therewith, into or out of the housing 400 in a fluid manner. In some examples, airflow may refer to particles, fluids, and/or gaseous bodies flowing from areas of higher pressure to those where pressure is lower. Airflow can be caused by mechanical inducement (e.g., operating a fan and/or an external airflow source) or airflow can be caused by natural sources (e.g., opening an opening to an external, non-vacuum atmosphere). “Fluid communication,” as defined herein, refers to a relationship between two or more structures, voids, and/or regions of a mechanical body, in which a fluid (e.g., a gas, a liquid, a plasma, airflow, etc.) can flow into or out of one another, when subject to some force. [00321] In FIG. 25, an exemplary airflow is illustrated as thick dotted lines with arrows illustrating the direction of the airflow. While illustrated as pushing air outward of the airflow opening 430 of the housing 400, it is certainly contemplated that instead of pushing airflow from the airflow opening 430 to the exterior of the housing 400 for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, or combinations thereof, it is certainly contemplated that the airflow may be reversed and pull airflow through the airflow opening 430, to an external source, to pull heat away from the mobile device 414, for cooling one or more of power transmitter 20 components, the antenna 21, the mobile device 414, the housing 400, and combinations thereof.
[00322] To allow for such cooling, the housing 400 defines, at least, a forward surface 402A, the airflow opening 430, a first airflow channel 431, a second airflow channel 432 and a protrusion 408. Such structural elements of the housing 400 A may be best illustrated in the perspective views of the housing 400 A, with the mobile device 414 removed, of FIGS. 26 A and 26B. The forward surface 402A is configured for placement of the mobile device 414 for wireless power transfer from the power transmitter 20 to a power receiver 30 of the mobile device 414. For example, the mobile device 414 may rest against the forward surface 402A when positioned, relative to the housing 400, for wireless power transfer. The airflow opening 430 is configured for providing the airflow, as discussed above. As discussed above, the airflow may be provided to the airflow opening via a mechanical device, such as the fan 410. In some such examples, the housing 400 further defines a fan cavity 411 A for housing, at least, the fan and the fan cavity 411 A is in fluid communication with, at least, the airflow opening 430, for providing at least some of the airflow to the airflow opening.
[00323] The first airflow channel 431 is configured to provide at least some of the airflow, via fluid communication with the airflow opening 430, proximate to one or more of the forward surface 402A and a rear surface 416 of the mobile device 414. In some examples and as best illustrated in the perspective view of the housing 400A of FIGS. 26A and 26B, the first airflow channel 431 may include a first airflow channel cavity 435. The first airflow channel cavity 435 extends, at least in part, about a first thickness 403 A, which is defined as a thickness between the forward surface 402A and a back surface 404A of the housing. The first airflow channel cavity 435 allows for airflow provided to/from the first airflow channel 431 to direct heat away from one or more of the mobile device rear surface 416, the antenna 21, the mobile device 414, the housing 400, and combinations thereof. In some examples and as best illustrated in FIG. 26B, the first airflow channel 431 further includes a first channel opening 437, which is in fluid communication with, at least, the airflow opening 430. The first channel opening 437 is configured for providing at least some of the airflow from the airflow opening 430 to one or more of the first airflow channel cavity 435 or the mobile device rear surface 416. In some such examples, the first channel opening 437 is defined as a first opening in a top face 409 of the protrusion 408 and, thus, the protrusion 408 and the opening thereof that defines the first channel opening 437 is in fluid communication with the airflow opening 430.
[00324] In some examples, the first airflow channel further includes at least one vent 439 in fluid communication with the first airflow channel cavity 435. As illustrated, the at least one vent 439 is configured to direct airflow to an exterior of the housing 400 and/or the first airflow channel 431 at one or more side of the housing 400; however, the vent(s) 439 are not limited to such placement, so long as the vent(s) 439 remain in fluid communication with the first airflow channel 431 and an environment exterior to the housing 400. Thus, the at least one vent 439 opens to an environment external to the housing 400 and allows one or more of entry or exit, for an external airflow, to the housing 400.
[00325] The protrusion 408 extends outward, at least in part, from the forward surface 402A and includes the protrusion top face 409, wherein the protrusion top face 409 forms an angle with the forward face 402A. The angle 407 is less than about 180 degrees and greater than about 0 degrees. In some examples, the angle 407 is configured such that, when the mobile device 414 is placed adjacent to the forward surface 402A, a mobile device front surface 417 is in a proper viewing angle with respect to a user of the mobile device 414. [00326] The second airflow channel 432 is configured to provide at least some of the airflow, via fluid communication with the airflow opening 430, proximate to one or more of the protrusion top face 409, the mobile device front surface 417, or any combinations thereof. In some examples, the second airflow channel 432 includes a second channel opening 438, the second channel opening 438 being in fluid communication with (e.g., not blocking or restricting), at least, the airflow opening 430. The second channel opening 438 is configured to provide at least some of the airflow from the airflow opening 430 to the mobile device front surface 417. In some examples, the second channel opening 437 is defined as an opening in the protrusion top face 409 that is in fluid communication with, at least, the airflow opening 430. In some such examples, the airflow opening 430 may be angled inward towards the forward surface 402A, with respect to another surface of the protrusion top face 409. In such examples, the angled airflow opening 430 is configured to provide the airflow in a directed manner at the mobile device front surface 417.
[00327] Returning to FIG. 25, in some examples, the mobile device 414 and/or the associated peripheral 418 may include a protruding mechanical body 419, extending outward in a direction of the rear surface 416 of the mobile device 414. Such an associated peripheral may be one or more of a portion of a case for the mobile device 414, a grip device, a detachable device, an attachment, a case for other peripherals, among other things. In such examples and as illustrated in FIG. 25, the first airflow channel cavity 435 may be configured to mechanically receiver the mechanical body 419 and such receipt of the mechanical body 419, at least in part, aligns the transmitter antenna 21 of the power transmitter 20 with the receiver antenna 31 of the power receiver 30, for the purposes of wireless power transfer. [00328] Referring now to all of FIGS. 23-26, as illustrated, the housing 400A includes and/or defines a housing stand structure 440 and a housing base structure 450. The housing stand structure includes the forward surface 402A and the back surface 404A and extends, at least in part, about the first thickness 403 A. The housing base structure includes a top surface 452 and a bottom surface 454, wherein the top surface 452 and the bottom surface 454 are separated by a housing base structure thickness 456. The housing stand structure 440 and the housing base structure 450 are respectively positioned such that a stand angle 458 is formed, at least in part by a portion of back surface 404A and a portion of the top surface 452. The angle 458 is greater than about 0 degrees and less than about 180 degrees. In some examples, the angle 458 is configured such that, when the mobile device 414 is placed adjacent to the forward surface 402A, the mobile device front surface 416 is in a proper viewing angle, with respect to a user of the mobile device. While not illustrated in the exemplary drawings, it is certainly contemplated that any electrical components of the power transmitter 20 may additionally be housed within the housing 400, such as, but not limited to, components of the control and communications system 26, components of the power conditioning system 40, components of the sensing system 50, and/or any other components of or associated with the power transmitter 20. [00329] Turning now to FIGS. 27A and 27B, another exemplary housing 400B is illustrated. The power transmitter 20 is housed within the housing 400B and the mobile device 414 is shown, which may be configured to receive wireless power from the power transmitter 20. Thus, the power receiver 30 may be part of or operatively associated with the mobile device and the mobile device 414 may be the electronic device 14 operatively associated with the power receiver 30. FIG. 27A illustrates a perspective view of the housing 400B and the mobile device 414, while FIG. 27B illustrates the housing 400B and mobile device 414 in a top view, when the mobile device 414 is positioned, relative to the housing 400B, such that the power receiver 30 can receive wireless power signals from the power transmitter 20. As with the examples of FIGS. 23-26, the mobile device 414 may have the peripheral 418 associated therewith. One or more of the mobile device 414, the peripheral 418, or components thereof may be similar and/or equivalent elements that were included and described with reference to the housing 400A of FIGS. 23-26.
[00330] As illustrated in one or more of FIGS. 26A, 26B and/or the cross-sectional views of FIGS. 28 A and 28B, the exemplary housing 400B includes many similar and/or equivalent elements that were included and described with reference to the housing of 400 A of FIGS. 23-26. Such elements may include, but may not be limited to including, the fan 410, the airflow opening 430, the first airflow channel 431, the first airflow channel cavity 435, the first airflow channel opening 437, the one or more vent 439, the protrusion 408, the protrusion top face 409, the second airflow channel 432, and the second airflow channel opening 438. Accordingly, such elements in FIGS. 27-28 include the same reference numbers as their associated analogues of FIGS. 20-23 and share the written description, above.
[00331] In contrast to the housing 400 A, the housing 400B does not include separate base and stand structures, but rather is primarily defined as a pad or flat-lying body, save for the protrusion 408, upon which the mobile device 414 may rest when the system 10 performs wireless power transfer. To that end, the housing 400B defines a top surface 402B, upon which the mobile device is placed for wireless power transfer and a bottom surface 404B. A housing thickness 403B, which is defined as a thickness between the top surface 402B and the bottom surface 404B. To that end, the first airflow channel cavity 435 extends, at least in part, along the housing thickness 403B. [00332] As best illustrated in FIGS. 28A, the housing 400B may include a fan cavity 41 IB, when the fan 410 is included in the power transmitter 20. The fan cavity 41 IB is in fluid communication with the airflow opening 430 and provides airflow to and/or from the airflow opening 430 and/or downstream/upstream fluidly communicable elements of the housing 400, the power transmitter 20, and/or the mobile device 414.
[00333] Alternatively, as illustrated in FIG. 28B, the fan cavity 41 IB may be replaced with an external airflow source input cavity 411C. The external airflow source input cavity 411C is in fluid communication with the airflow opening 430 and provides fluid communication between the airflow opening 430 and an external airflow source 460. Thus, the external airflow source input cavity 411C may enable fluid communication between the airflow opening 430 and the external airflow source 460, wherein the external airflow source provides at least some of the airflow to the airflow opening 430. To that end, the external airflow source 460 may be any external airflow source, such as, but not limited to, an external fan, an external ventilation system, an external air conditioning unit, an external suction device, and/or any other external device and/or source configured for providing airflow to and/or from the airflow opening 430. In some examples wherein the input power source 12 to the power transmitter 20B is a vehicular power source (e.g., the examples of FIGS. 1 A, 2B, 5B, 8-10), the external airflow source 460 may be an airflow source of or operatively associated with the vehicle 15.
[00334] The housings 400 disclosed herein may provide for greater cooling of the mobile device 414 and/or the power transmitter 20 during wireless power transfer, when compared to legacy thermal solutions for wireless power transfer and/or legacy power transmitter designs. Such enhanced cooling may be enabled by the inclusion of multiple airflow channels, such as the first airflow channel 431 and the second airflow channel 432, which are configured for providing airflow to multiple faces of a mobile device 414, simultaneously. Such enhanced cooling of one or both of the power transmitter 20 or the mobile device 414 may enable greater heat mitigation that allows the power transmitter 20 to safely provide greater power levels to a power receiver 30, in comparison to legacy wireless power transmitters. Further, the housings 400, disclosed herein, may provide proper wireless power transmission, without thermal issues, in environments with elevated ambient temperatures, such as when the housing 400 is in direct sun light, when the housing 400 is located within a vehicle, when the housing 400 is proximate to machinery and/or electronics that cause elevated heat, among other environments. Additionally or alternatively, such enhanced cooling of one or both of the power transmitter 20 or the mobile device 414 and/or the extended power levels and/or profiled enabled by said cooling may allow for greater Z-distances and/or separation gaps between the power transmitter 20 and the power receiver 30, in comparison to legacy wireless power transfer systems.
[00335] FIGS. 29A-E illustrate a surface mountable power transmitter 720, which may include similar and/or equivalent elements to the power transmitter 20 including, but not limited to the transmitter antenna 21, the control and communications unit 26, the power conditioning system 40, the sensing system 50, any components of the aforementioned elements, or any combinations thereof. In addition to the cited elements of the power transmitter 20, the surface mountable power transmitter 720 further includes a surface mountable housing 700. The surface mountable housing 400 is substantially connected to, at least, the transmitter antenna 21.
[00336] The surface mountable housing 700 is configured for use to mount, at least, the transmitter antenna 21 to an underside of a structural surface, such that the transmitter antenna 21 is configured to couple with a receiver antenna 31 of the power receiver 30 when the receiver antenna is proximate to a top side of the structural surface. Such configurations of the housing 700 and a structural surface 800 will be discussed in more detail, with respect to FIGS. 29-32. A “structural surface,” as defined herein, is any surface made out of a dielectric material wherein a user of the electronic device 14 would desire to provide wireless power transfer to the electronic device 14, and said surface is within an environment where wireless power transfer can occur (e.g., an environment wherein electricity is available to provide to the power transmitter 720). Examples of structural surfaces include, but are not limited to including, a desk, a desk top, a counter, a counter top, a bar, a table, a table top, an end table, an end table top, furniture, outdoor furniture, a chair, a chair arm, an arm rest, a surface of lounge furniture, a surface of interior seating furniture, home theater furniture, stands, a work space surface, a conference room table surface, a wall, a protrusion from a wall, a public surface, a surface of a vehicle, a bar, a bar top, a ledge, a shelf, a book shelf, an entertainment center, a cabinet surface, among other contemplated surfaces and/or portions of surfaces. Such a surface could be made out of, for example, a wood, polymer, concrete, laminated composite, leather, glass, ceramic, foam, among other dielectric materials used for the surface.
[00337] The surface mountable housing 700 may include a heat sink 430, which is configured to rest, at least in part, below the transmitter antenna (as best illustrated in the exploded view of the housing 700 in FIG. 29C), when the power transmitter 720 is connected to the structural surface 800. The heat sink 730 is configured to direct heat generated by the power transmitter 720 away from, at least, the structural surface 800. In some examples and as best illustrated in FIGS. 29B and 29E, the heat sink 730 may include one or more cut outs, 722, the one or more cutouts configured to increase an external surface area of the heat sink, thus allowing heat to spread over the increased surface area, directing and/or dissipating heat away from the power transmitter 20 components and/or the associated surface. Inclusion of the cutouts 722 results in higher rates of heat dissipation into the environment and, as a result, lower temperatures on the heat sink surfaces and inside the module.
[00338] Additionally or alternatively, in some examples, the heat sink 730 may be CNC machined or formed using a die casting, forging, stamping or another manufacturing process suitable for low cost mass production. In some examples, the heat sink 730 may be formed of a metal that has a relatively high thermal conductivity. The heat sink 720, at least in part, can be made out of any metal or metal alloy suitable for die casting and having a high thermal conductivity, such as, but not limited to, an aluminum or an aluminum alloy. In some examples, wherein the heat sink 730 is formed by die casting, one or more surfaces of the heat sink 430 are formed with drafts on an exterior surface of the heat sink 730.
[00339] In order to increase emissivity, the heat sink can be finished with different coatings, chemically treated, and/or painted. Increased emissivity increases heat dissipated by the heat sink, reducing temperature rise of the components inside the module 700. In some examples, an aluminum, die-casted heat sink 730 is anodized to produce a uniform black finish, which increases emissivity and, thus, improves heat dissipation by the heat sink 730. [00340] Further, in some examples, the power transmitter 720 includes a transmitter electronics circuit board 735. The circuit board 735 may be any circuit board, upon which components of one or more of the control and communications system 26, the power conditioning system 40, and/or the sensing system 50, among other things, may be connected, mounted, operable with, and/or otherwise operatively associated with the circuit board 430. In such examples, the heat sink 730 is configured to conduct and dissipate heat, generated by one or more of the electronics circuit board 735 and/or any components located on the electronic circuit board 735, away from the structural surface 800. In some examples, the circuit board 735 may be operatively associated with an external power connector 411, which may be configured to interface with the input power source 11 to provide input power to the power transmitter 720. The external power connector 711 may be any input and/or connector that provides an electrical connection to the input power source, such as, but not limited to, a barrel connector, a Universal Serial Bus (USB) connector, a USB-C connector, a mini -USB connector, Lightning connector, a Thunderbolt connector, a proprietary electrical connector, an AC adaptor connector, among other contemplated connectors.
[00341] In some examples, a thermal interface material (TIM) 732 is disposed between the electronics circuit board 735 and the heat sink 730. In some examples, the TIM 432 is placed proximate to one or more heat producing components on and/or operatively associated with the electronics circuit board 735 and/or the power transmitter 720. The thermal interface material 732 is configured to displace air and provide a low thermal impedance path between the electronics circuit board 735 components and the heat sink 730. Examples of thermal interface materials include, but are not limited to including a thermal paste, a thermal adhesive, a thermal gap filter, a thermally conductive pad, a thermal tape, a phase-change material, a metal thermal interface, or combinations thereof. In some examples, materials used in the thermal interface materials may include, but are not limited to including materials such as, but not limited to, epoxies, silicones, urethanes, and acrylates, solvent-based systems, hot-melt adhesives, and pressure-sensitive adhesive tapes, Aluminum oxide, boron nitride, zinc oxide, aluminum nitride, Galinstan, gallium, epoxy resins, cyanoacrylate, metal oxides, silica, ceramic microspheres, paraffin wax, copper, among other materials used in thermal interface materials.
[00342] In some examples, the housing 700 further includes an antenna housing 710, the antenna housing substantially surrounding a side wall (e.g., the magnetic ring 84 of the shielding 80 of the antenna 21) of the antenna 21. The antenna housing 710 is connected to the heat sink 720, via, for example, a connection system 755 of the housing 700, as discussed below. The antenna housing 710 may be utilized to fix the antenna location within the module, prevent any foreign objects made out of metal to come in vicinity of the antenna, once the module is installed, hold together components of the housing 700 and/or for the purposes of packaging and/or obscuring components of the power transmitter 720 in a finished product of the power transmitter 420. In some examples, portions of the antenna housing 710 may define a portion of the connection system 755, as is discussed in more detail below. In some examples, the antenna housing 710 is formed of an injection moldable polymer and/or any other substantially dielectric materials.
[00343] Turning now to FIG. 30 and with continued reference to FIGS. 1-29, the power transmitter 720 is illustrated in relation to a first structural surface 800A, to which the power transmitter 720 may be attached and function to transmit wireless power to the power receiver 30 of the electronic device, via coupling between the transmitter antenna 21 and the receiver antenna 31 of the power receiver 30. The structural surface 800A has a top side 804A and an underside 802A; as discussed above, the power transmitter 720 is configured to be mounted to the underside 802 A. As best illustrated in FIG. 30, the connection system 755 is included to connect the power transmitter 700 to the underside 802 of the structural surface 800. As illustrated, the connection system 755 may include one or more connection holes 752; the connection holes 752 configured to accept one ore more fasteners 754 which may mate with the connection hole 752 and then enter the structural surface 800 to secure the power transmitter 720 to the underside 802. While illustrated as a combination of a holes 752 and fasteners 754, the connection system 755 is certainly not limited to a hole/fastener combination and may be and/or include an adhesive, a removable connector, a connective material connection (e.g. Velcro), a magnetic connection, a sealant connection, a fused connection, among other systems, methods, and apparatus for connecting the power transmitter 720 to the structural surface 800.
[00344] FIGS 31 A and 3 IB illustrate the power transmitter 700 mounted to a second structural surface 800B, the structural surface 800B including a hole 810A. The hole defines a hole ceiling 814A and a hole opening 812A. A hole depth 815A is defined as a distance between the hole ceiling 814A and the hole opening 812A. In some examples, the hole 810A is configured to receive the power transmitter 720, when being mounted on underside surface 802A proximate to the hole ceiling 814A. In some examples, the hole thickness 815A is less than the surface thickness 805B and the housing 700 is configured to mount to the hole ceiling 814A. [00345] In another example, FIG. 32 illustrates a third structural surface 800C, having a top side 804C and a underside 802C, defining a surface thickness 805C. The structural surface 800C defines a hole 81 OB, which has a hole ceiling 814B and a hole opening 812B. A thickness between the hole ceiling 814B and the hole opening 812B defines a hole thickness 815B. In comparison to the hole 810A of FIGS 31, the hole 810B has a significantly larger thickness 815B, such that the hole thickness 815B is greater than a thickness of the power transmitter 720. In some examples, the hole 810A is configured to receive the power transmitter 720, when being mounted on underside surface 802C proximate to the hole ceiling 814B. In some examples, the hole thickness 815B is less than the surface thickness 805B and the housing 700 is configured to mount to the hole ceiling 814B. In some examples, the surface thickness 805C is in a range of about 20 mm to about 60 mm and the hole thickness 815B is in a range of about 5 mm to about 50 mm.
[00346] As illustrated in FIG. 32, the housing 700 is operatively associated with an alternative connection system 765, configured for connecting the housing 700 to the underside of the surface 804C. The connection system 465 includes a bracket 760 for mounting to the underside of the surface 804, the bracket 460 defining one or more holes 762, within which fasteners 754 may be inserted to connect the bracket 760 and, by association, the housing 700 to the underside of the surface 804C. In some examples, the connection system 765 may include an external thermal connector 766, which connects to the bracket 760 to the heat sink 730 via, for example, a center hole 738 of the heat sink 730. The thermal connector 766 may be comprised, at least in part, of an electrically conductive material, similar to the heat sink 730, and be configured to further draw heat away and/or dissipate heat from the heat sink 730, the power transmitter 20, and/or the surface 804.
[00347] FIG. 33 is an example block diagram for a method 1200 for designing the power transmitter 20. The method 1200 may include designing one or both of the housing 400 and/or cooling structures associated therewith. The method 1200 may further include designing and/or selecting the transmitter coil 21 for the power transmitter 20, as illustrated in block 1210. The method 1200 includes tuning the power transmitter 20, as illustrated in block 1220. Such tuning may be utilized for, but not limited to being utilized for, impedance matching. [00348] The method 1200 further includes designing the power conditioning system 40 for the power transmitter 20, as illustrated in block 1230. The power conditioning system 40 may be designed with any of a plurality of power output characteristic considerations, such as, but not limited to, power transfer efficiency, maximizing a transmission gap (e.g., the gap 17), increasing output voltage to a receiver, mitigating power losses during wireless power transfer, increasing power output without degrading fidelity for data communications, optimizing power output for multiple coils receiving power from a common circuit and/or amplifier, among other contemplated power output characteristic considerations. Further, at block 1240, the method 1200 may determine and optimize a connection, and any associated connection components, to configure and/or optimize a connection between the input power source 12 and the power conditioning system 40 of block 1230. Such determining, configuring, and/or optimizing may include designing and/or selecting the vehicular input power regulator 90, selecting and implementing protection mechanisms and/or apparatus, selecting and/or implementing voltage protection mechanisms, among other things.
[00349] The method 1200 further includes designing and/or programing the control and communications system 26 of the power transmitter 20, as illustrated in block 1250. Components of such designs include, but are not limited to including, the sensing system 50, the driver 41, the transmission controller 28, the memory 27, the communications system 29, the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the electrical sensor(s) 57, the other sensor(s) 58, in whole or in part and, optionally, including any components thereof.
[00350] FIG. 34 is an example block diagram for a method 2200 for manufacturing the power transmitter 20. The method 2200 may include forming, manufacturing, or otherwise constructing one or both of the housing 400 and/or cooling structures associated therewith. The method 2200 may further include manufacturing and/or selecting the transmitter coil 21 for the power transmitter 20, as illustrated in block 2210. The method 2200 includes tuning the power transmitter 20, as illustrated in block 2220. Such tuning may be utilized for, but not limited to being utilized for, impedance matching.
[00351] The method 2200 further includes manufacturing the power conditioning system 40 for the power transmitter 20, as illustrated in block 2230. The power conditioning system 40 may be designed and/or manufactured with any of a plurality of power output characteristic considerations, such as, but not limited to, power transfer efficiency, maximizing a transmission gap (e.g., the gap 17), increasing output voltage to a receiver, mitigating power losses during wireless power transfer, increasing power output without degrading fidelity for data communications, optimizing power output for multiple coils receiving power from a common circuit and/or amplifier, among other contemplated power output characteristic considerations. Further, at block 2240, the method 2200 may include connecting and/or optimizing a connection, and any associated connection components, to configure and/or optimize a connection between the input power source 12 and the power conditioning system 40 of block 2230. Such determining, manufacturing, configuring, and/or optimizing may include designing and/or selecting the vehicular input power regulator 90, selecting and implementing protection mechanisms and/or apparatus, selecting and/or implementing voltage protection mechanisms, among other things.
[00352] The method 2200 further includes designing and/or programing the control and communications system 26 of the power transmitter 20, as illustrated in block 2250. Components of such designs include, but are not limited to including, the sensing system 50, the driver 41, the transmission controller 28, the memory 27, the communications system 29, the thermal sensing system 52, the object sensing system 54, the receiver sensing system 56, the electrical sensor(s) 57, the other sensor(s) 58, in whole or in part and, optionally, including any components thereof.
[00353] As used herein, the phrase “at least one of’ preceding a series of items, with the term “and” or “or” to separate any of the items, modifies the list as a whole, rather than each member of the list (i.e., each item). The phrase “at least one of’ does not require selection of at least one of each item listed; rather, the phrase allows a meaning that includes at least one of any one of the items, and/or at least one of any combination of the items, and/or at least one of each of the items. By way of example, the phrases “at least one of A, B, and C” or “at least one of A, B, or C” each refer to only A, only B, or only C; any combination of A, B, and C; and/or at least one of each of A, B, and C.
[00354] The predicate words “configured to”, “operable to”, and “programmed to” do not imply any particular tangible or intangible modification of a subject, but, rather, are intended to be used interchangeably. In one or more embodiments, a processor configured to monitor and control an operation or a component may also mean the processor being programmed to monitor and control the operation or the processor being operable to monitor and control the operation. Likewise, a processor configured to execute code can be construed as a processor programmed to execute code or operable to execute code.
[00355] A phrase such as “an aspect” does not imply that such aspect is essential to the subject technology or that such aspect applies to all configurations of the subject technology. A disclosure relating to an aspect may apply to all configurations, or one or more configurations. An aspect may provide one or more examples of the disclosure. A phrase such as an “aspect” may refer to one or more aspects and vice versa. A phrase such as an “embodiment” does not imply that such embodiment is essential to the subject technology or that such embodiment applies to all configurations of the subject technology. A disclosure relating to an embodiment may apply to all embodiments, or one or more embodiments. An embodiment may provide one or more examples of the disclosure. A phrase such an “embodiment” may refer to one or more embodiments and vice versa. A phrase such as a “configuration” does not imply that such configuration is essential to the subject technology or that such configuration applies to all configurations of the subject technology. A disclosure relating to a configuration may apply to all configurations, or one or more configurations. A configuration may provide one or more examples of the disclosure. A phrase such as a “configuration” may refer to one or more configurations and vice versa.
[00356] The word “exemplary” is used herein to mean “serving as an example, instance, or illustration.” Any embodiment described herein as “exemplary” or as an “example” is not necessarily to be construed as preferred or advantageous over other embodiments. Furthermore, to the extent that the term “include,” “have,” or the like is used in the description or the claims, such term is intended to be inclusive in a manner similar to the term “comprise” as “comprise” is interpreted when employed as a transitional word in a claim. Furthermore, to the extent that the term “include,” “have,” or the like is used in the description or the claims, such term is intended to be inclusive in a manner similar to the term “comprise” as “comprise” is interpreted when employed as a transitional word in a claim. [00357] All structural and functional equivalents to the elements of the various aspects described throughout this disclosure that are known or later come to be known to those of ordinary skill in the art are expressly incorporated herein by reference and are intended to be encompassed by the claims. Moreover, nothing disclosed herein is intended to be dedicated to the public regardless of whether such disclosure is explicitly recited in the claims. No claim element is to be construed under the provisions of 35 U.S.C. § 112, sixth paragraph, unless the element is expressly recited using the phrase “means for” or, in the case of a method claim, the element is recited using the phrase “step for.”
[00358] Reference to an element in the singular is not intended to mean “one and only one” unless specifically so stated, but rather “one or more.” Unless specifically stated otherwise, the term “some” refers to one or more. Pronouns in the masculine (e.g., his) include the feminine and neuter gender (e.g., her and its) and vice versa. Headings and subheadings, if any, are used for convenience only and do not limit the subject disclosure. [00359] While this specification contains many specifics, these should not be construed as limitations on the scope of what may be claimed, but rather as descriptions of particular implementations of the subject matter. Certain features that are described in this specification in the context of separate embodiments can also be implemented in combination in a single embodiment. Conversely, various features that are described in the context of a single embodiment can also be implemented in multiple embodiments separately or in any suitable sub-combination. Moreover, although features may be described above as acting in certain combinations and even initially claimed as such, one or more features from a claimed combination can in some cases be excised from the combination, and the claimed combination may be directed to a sub combination or variation of a sub combination.

Claims

CLAIMS What is claimed is:
1. A power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz, the power transmitter comprising: a control and communications unit; an inverter circuit configured to receive input power and convert the input power to a power signal; a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face; and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
2. The power transmitter of claim 1, wherein the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
3. The power transmitter of claim 1, wherein a shielding outer edge of the shielding extends about 4.5 millimeters (mm) to about 6.5 mm outward from a coil outer edge of the coil.
4. The power transmitter of claim 1, wherein the coil has an outer diameter length in a range of about 40 mm to about 50 mm.
5. The power transmitter of claim 1, wherein the coil has an inner diameter length in a range of about 15 mm to about 25 mm.
6. The power transmitter of claim 1, wherein the coil has a thickness in a range of about 2 mm to about 3 mm.
7. The power transmitter of claim 1, wherein the at least one layer comprises a first layer and a second layer.
8. The power transmitter of claim 7, wherein the Litz wire is a bifilar Litz wire.
9. The power transmiter of claim 8, wherein the first layer includes a first number of turns in a range of about 4 turns to about 5 turns, and wherein the second layer includes a second number of turns in a range of about 4 turns to about 5 turns.
10. The power transmiter of claim 1, wherein the Litz wire has a diameter in a range of about 1 mm to about 1.5 mm and includes a plurality of strands, the plurality of strands including a number of strands in a range of about 80 strands to about 120 strands.
11. The power transmiter of claim 10, wherein each of the plurality of strands has a diameter in a range of about 0.05 mm to about 0.1 mm.
12. A base station for a wireless power transfer system at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz, the base system comprising: an interface surface; a control and communications unit; an inverter circuit configured to receive input power and convert the input power to a power signal; a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including at least one layer, the coil defining, at least, a top face; and a shielding comprising a ferrite core and defining a cavity, the cavity configured such that the ferrite core substantially surrounds all but the top face of the coil.
13. The base station of claim 12, wherein the interface surface is separated from the coil by an interface gap distance, the interface gap distance in a range of about 8 millimeters (mm) to about 10 mm.
14. The base station of claim 12, wherein the interface surface extends across substantially all of the top face of the coil.
15. The base station of claim 12, wherein the shielding is an E-Core type shielding and the cavity is configured in an E-shape configuration.
16. The base station of claim 12, further comprising at least one user feedback mechanism configured for aiding a user in aligning a power receiver with an active area for wireless power transmission via the coil, the power receiver configured to acquire near field inductive power from the coil.
17. The base station of claim 16, wherein the at least one user feedback mechanism includes a marking on the interface surface to indicate the location of the active area.
18. The base station of claim 16, wherein the at least one user feedback mechanism includes a visual feedback display, this is configured to indicate proper alignment of the power receiver with the active area.
19. The base station of claim 16, wherein the at least one user feedback mechanism includes one or more of an audible feedback mechanism, a tactile feedback mechanism that is configured to indicated if the power receiver is in proper alignment with the active area or a tactile feedback mechanism that is configured to indicate if the power receiver is in proper alignment with the active area.
20. A power transmitter for wireless power transfer at an operating frequency selected from a range of about 87 kilohertz (kHz) to about 205 kHz, the power transmitter comprising: a control and communications unit; an inverter circuit configured to receive input power and convert the input power to a power signal; a coil configured to transmit the power signal to a power receiver, the coil formed of wound Litz wire and including a first layer and a second layer, each of the first layer and the second layer including a respective number of turns in a range of about 4 turns to about 5 turns, the coil defining, at least a top face, the coil having an outer diameter length in an outer diameter length range of about 40 mm to about 50 mm, the coil having an inner diameter length in an inner diameter length range of about 15 mm to about 25 mm, and the coil has a thickness in a thickness range of about 2 mm to about 3 mm; and an E-Core type shielding comprising a ferrite core and defining a cavity, the cavity configured with an E-Core configuration such that the ferrite core substantially surrounds all but the top face of the coil.
PCT/US2021/030315 2020-04-30 2021-04-30 Wireless power transmitters and associated base stations for transmitting power at extended separation distances WO2021222843A1 (en)

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EP21797787.5A EP4143948A1 (en) 2020-04-30 2021-04-30 Wireless power transmitters and associated base stations for transmitting power at extended separation distances
CN202180036348.4A CN115699513A (en) 2020-04-30 2021-04-30 Wireless power transmitter and associated base station for transferring power at extended separation distances

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US16/863,703 US20210344227A1 (en) 2020-04-30 2020-04-30 Wireless power transmitters with front end vehicular input power protection
US16/863,706 2020-04-30
US16/863,691 2020-04-30
US16/863,698 2020-04-30
US16/863,710 2020-04-30
US16/863,691 US11482890B2 (en) 2020-04-30 2020-04-30 Surface mountable wireless power transmitter for transmission at extended range
US16/863,682 US11239709B2 (en) 2020-04-30 2020-04-30 Operating frequency based power level altering in extended range wireless power transmitters
US16/863,682 2020-04-30
US16/863,706 US20210344228A1 (en) 2020-04-30 2020-04-30 Wireless power transmitters and associated base stations for transmitting power at extended separation distances
US16/863,703 2020-04-30
US16/863,698 US11476722B2 (en) 2020-04-30 2020-04-30 Precision power level control for extended range wireless power transfer
US16/863,710 US11310934B2 (en) 2020-04-30 2020-04-30 Multi-channel cooling for extended distance wireless power transmitter

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060209487A1 (en) * 2003-03-19 2006-09-21 Josef Schmidt Transmitter head and system for contactless energy transmission
WO2014092339A1 (en) * 2012-12-13 2014-06-19 Lg Innotek Co., Ltd. Wirless power receiver and method of controlling the same
WO2015064815A1 (en) * 2013-10-31 2015-05-07 주식회사 한림포스텍 Hybrid wireless power transmission system and method therefor
US20170331335A1 (en) * 2014-11-05 2017-11-16 Hewlett-Packard Development Company, L.P. Assisting wireless transfer of power to a machine
WO2019148070A2 (en) * 2018-01-26 2019-08-01 Indigo Technologies, Inc. Wireless power transfer systems with integrated impedance matching and methods for using the same

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060209487A1 (en) * 2003-03-19 2006-09-21 Josef Schmidt Transmitter head and system for contactless energy transmission
WO2014092339A1 (en) * 2012-12-13 2014-06-19 Lg Innotek Co., Ltd. Wirless power receiver and method of controlling the same
WO2015064815A1 (en) * 2013-10-31 2015-05-07 주식회사 한림포스텍 Hybrid wireless power transmission system and method therefor
US20170331335A1 (en) * 2014-11-05 2017-11-16 Hewlett-Packard Development Company, L.P. Assisting wireless transfer of power to a machine
WO2019148070A2 (en) * 2018-01-26 2019-08-01 Indigo Technologies, Inc. Wireless power transfer systems with integrated impedance matching and methods for using the same

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