WO2015081065A1 - Wireless transmission of line-frequency and line-voltage ac - Google Patents

Wireless transmission of line-frequency and line-voltage ac Download PDF

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Publication number
WO2015081065A1
WO2015081065A1 PCT/US2014/067300 US2014067300W WO2015081065A1 WO 2015081065 A1 WO2015081065 A1 WO 2015081065A1 US 2014067300 W US2014067300 W US 2014067300W WO 2015081065 A1 WO2015081065 A1 WO 2015081065A1
Authority
WO
WIPO (PCT)
Prior art keywords
line frequency
rectified
frequency
high frequency
line
Prior art date
Legal status (The legal status 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 status listed.)
Ceased
Application number
PCT/US2014/067300
Other languages
English (en)
French (fr)
Inventor
Bruce Richard LONG
Andrew William DAGA
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Momentum Dynamics Corp
Original Assignee
Momentum Dynamics Corp
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
Application filed by Momentum Dynamics Corp filed Critical Momentum Dynamics Corp
Priority to JP2016534117A priority Critical patent/JP2016540479A/ja
Priority to EP21192627.4A priority patent/EP3930165A1/en
Priority to MX2016006864A priority patent/MX355980B/es
Priority to CA2931810A priority patent/CA2931810C/en
Priority to EP14866281.0A priority patent/EP3074988A4/en
Priority to KR1020167016665A priority patent/KR102323955B1/ko
Priority to CN201480071049.4A priority patent/CN106104725B/zh
Publication of WO2015081065A1 publication Critical patent/WO2015081065A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M5/00Conversion of AC power input into AC power output, e.g. for change of voltage, for change of frequency, for change of number of phases
    • H02M5/02Conversion of AC power input into AC power output, e.g. for change of voltage, for change of frequency, for change of number of phases without intermediate conversion into DC
    • H02M5/04Conversion of AC power input into AC power output, e.g. for change of voltage, for change of frequency, for change of number of phases without intermediate conversion into DC by static converters
    • H02M5/22Conversion of AC power input into AC power output, e.g. for change of voltage, for change of frequency, for change of number of phases without intermediate conversion into DC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
    • H02M5/225Conversion of AC power input into AC power output, e.g. for change of voltage, for change of frequency, for change of number of phases without intermediate conversion into DC by static converters using discharge tubes with control electrode or semiconductor devices with control electrode comprising two stages of AC-AC conversion, e.g. having a high frequency intermediate link
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT 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
    • H02JELECTRIC POWER NETWORKS; CIRCUIT 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

Definitions

  • the invention relates to the transmission of electrical energy by means of resonant induction. More specifically, the invention relates to a method of wireless transmission that provides line frequency sinusoidal alternating current to the load with minimum circuit complexity.
  • Inductive power transmission has many important applications spanning many industries and markets. Although the disclosure contained here contemplates the use of this invention to applications requiring relatively high power (in excess of 100 watts), the potential list of power applications is not limited and this invention can be applied to a wide range of power requirements.
  • Figure 1 shows a conceptual representation of a prior art resonant inductive power transmission system.
  • a source of alternating electrical energy is applied to the primary of a loosely coupled, air gap transformer.
  • Magnetic coupling between the transformer primary and the transformer secondary transfers some proportion of the primary side energy to the transformer secondary, which is removed by some distance from the primary.
  • the magnitude of the magnetic field generated by the primary is proportional to the current flowing in the primary winding. For this reason, it is highly desirable to use resonance to increase the magnitude of the primary winding currents and in this way to maximize the magnitude of that portion of the primary winding magnetic field that is linked into or coupled into the secondary.
  • the magnetic flux from the primary induces a voltage into the secondary winding.
  • Maximum secondary current and therefore maximum power transmission occurs when the secondary winding is resonant as well.
  • the result is a two-pole resonant circuit consisting of two magnetically coupled resonant circuits.
  • the resonant circuits can be parallel resonant with the inductor and capacitor wired in parallel or they can be series wired and series resonant. Furthermore the primary and secondary side resonances need not share the same form.
  • Resonant inductive power transfer provides a means for the wireless transference of electrical power.
  • the most common application for such technology is for the wireless recharging of batteries.
  • alternating current with a line frequency of 50-60 Hz is drawn from the electrical grid, converted to direct current and converted again to alternating current but at a frequency much higher than line frequency.
  • Inductive transmission frequencies in the range of 20-100 kHz are commonly used.
  • the conversion from line frequency to the much higher inductive transmission frequencies is necessary in order to reduce the size and weight of the wireless transmission inductive components.
  • Figure 1 is a conceptual block diagram of a prior art resonant inductive wireless power transfer system. Alternating line current is rectified by line frequency rectifier 10 and ripple filtered by line frequency ripple filter 12 to convert the alternating lines current into direct current that is applied to a DC-to-AC inverter 14 that generates high frequency alternating current at the transmission transformer operating frequency.
  • Transmission transformer 16 is an air core transformer having primary and secondary windings.
  • induced current is rectified by high frequency rectifier 18 and ripple filtered by high frequency ripple filter 20 thereby converting it into direct current that is applied to the load 22, usually a battery.
  • Figure 1 also shows the system waveforms present at the interfaces between functional blocks. Waveform conversion proceeds as follows: Line Frequency AC ⁇ Rectified Line Frequency AC ⁇ DC ⁇ High Frequency AC ⁇ Rectified High Frequency AC ⁇ DC.
  • the final result of the waveform conversion chain shown in Figure 1 is direct current, used in many wireless power applications for battery charging.
  • the desired end product is line frequency AC which, according to conventional art, may be implemented by incorporating an additional DC-AC inverter 24 waveform conversion stage, converting direct current into alternating current of the desired frequency as shown in prior art Figure 2 for application to a line frequency AC load 26.
  • line frequency AC which, according to conventional art, may be implemented by incorporating an additional DC-AC inverter 24 waveform conversion stage, converting direct current into alternating current of the desired frequency as shown in prior art Figure 2 for application to a line frequency AC load 26.
  • the most basic approach converts the dc current into a line frequency square wave which is then filtered into a sinusoid, or more commonly applied un- filtered to the AC load 26 in lieu of a sine wave with the sometimes harmful effects of the square wave harmonic content.
  • the invention addresses the above-mentioned limitations of the prior art by providing a wireless power transmission circuit for wirelessly transmitting line frequency sinusoidal AC power to a load where the line frequency ripple filter of conventional circuits is eliminated and the secondary side DC-to-AC inverter is replaced by a simple polarity inversion circuit.
  • the envelope of the high frequency AC developed by the primary side DC-AC inverter is no longer constant but varies continuously in a half-sinusoidal fashion.
  • Wireless transmission occurs as in the prior art only with a half- sinusoidal, constantly varying envelope, not the constant amplitude envelope of the prior art.
  • High frequency rectification and high frequency ripple filtering occurs as in the prior art but the ripple filter time constant is selected so that resulting waveform is an accurate replica of the rectified line frequency voltage present on the transmitter side.
  • a polarity inversion stage replaces the DC-to-AC inverter of conventional art to generate the line frequency AC.
  • the invention provides a wireless power transmission system for providing an AC line frequency to a load, comprising on the transmission side a line frequency rectifier that rectifies a source AC line frequency and a DC-to-AC inverter that inverts the rectified AC line frequency to an envelope modulated high frequency AC with an amplitude that varies continuously in a half-sinusoidal fashion at a line frequency rate, a resonant air gap wireless transmission transformer that transmits the envelope modulated high frequency AC, and on the receiver side a high frequency rectifier that rectifies the transmitted envelope modulated high frequency AC, a high frequency ripple filter that filters the rectified high frequency AC into a rectified line frequency AC, and a polarity inversion circuit that inverts every other half cycle of the rectified high frequency AC so as to create a line frequency sinusoidal voltage waveform for application to the load as the AC line frequency.
  • the polarity inversion circuit comprises an envelope detector and a polarity detector that are responsive to the envelope modulated high frequency AC to control polarity inversion timing of the polarity inversion circuit. Also, a time constant of the high frequency ripple filter is selected so that the rectified line frequency AC is an accurate replica of the rectified AC line frequency voltage present at an output of the line frequency rectifier on a transmission side of the transformer.
  • the invention also includes a method for providing wireless power transmission at an alternating current (AC) line frequency to a load including the steps of rectifying a source AC line frequency, inverting the rectified AC line frequency to an envelope modulated high frequency AC with an amplitude that varies continuously in a half-sinusoidal fashion at a line frequency rate, wirelessly transmitting the envelope modulated high frequency AC over a resonant air gap wireless transmission transformer, rectifying the transmitted envelope modulated high frequency AC, filtering the rectified high frequency AC into a rectified line frequency AC, inverting every other half cycle of the rectified high frequency AC so as to create a line frequency sinusoidal voltage waveform, and applying the line frequency sinusoidal voltage waveform to the load as the AC line frequency.
  • AC alternating current
  • the polarity inverting step comprises detecting an envelope of the rectified line frequency AC and inverting the polarity of every half cycle of the rectified line frequency AC using a polarity detector. Also, a time constant of the filtering step is selected so that the rectified line frequency AC is an accurate replica of the rectified AC line frequency voltage present in the rectifying step on a transmission side of the transformer.
  • Figure 1 shows a conceptual representation of a prior art resonant inductive power transmission system drawing line frequency power and wirelessly providing DC power to a load.
  • Figure 2 shows a conceptual representation of a prior art resonant inductive power transmission system drawing line frequency power and wirelessly providing AC power to a load. This system is essentially identical to the system shown in Figure 1 with the addition of a final DC-AC, 60 Hz inverter stage.
  • FIG. 3 shows a conceptual representation of the apparatus for wireless transmission of AC line frequency power in accordance with the invention.
  • Figure 4 shows an exemplary embodiment of the apparatus for wireless transmission of AC line frequency power in accordance with the invention.
  • FIGURES 3-4 A detailed description of illustrative embodiments of the present invention will now be described with reference to FIGURES 3-4. Although this description provides a detailed example of possible implementations of the present invention, it should be noted that these details are intended to be exemplary and in no way delimit the scope of the invention.
  • FIG. 3 A conceptual representation of an apparatus for wirelessly transmitting line frequency sinusoidal AC power to a load is shown in Figure 3.
  • the first deviation from prior art occurs on the transmitter side of the system.
  • the line frequency ripple filter 12 of conventional circuits is absent, and the DC-to-AC inverter 14 is driven by a rectified AC waveform, not by filtered, direct current.
  • This means the envelope of the high frequency AC is not constant but varies continuously in a half-sinusoidal fashion.
  • Wireless transmission occurs as before only with a half-sinusoidal, constantly varying envelope, not the constant amplitude envelope of the prior art.
  • High frequency rectification by high frequency rectifier 18 and high frequency ripple filtering by high frequency ripple filter 20 occurs as in the prior art but the ripple filter time constant is selected so that resulting waveform is an accurate replica of the rectified line frequency voltage present on the transmitter side.
  • a polarity inversion stage 28 replaces the DC-to-AC inverter 24 of prior art Figure 2.
  • Every other half-sinusoid-half-cycle is polarity inverted to produce a conventional sinusoidal voltage.
  • Polarity inversion timing is controlled by the envelope detection functions performed by envelope detector 30 and polarity detector 32 as shown in Figure 3. Because the envelope detector 30 and polarity detector 32 use the rectified-half- sinusoid amplitude envelope of the wirelessly transmitted high frequency AC, the line frequency sinusoidal voltage applied to the line frequency load is an exact, instantaneous replica of the line frequency waveform applied to the transmitter.
  • FIGURE 4 shows an exemplary embodiment of the invention.
  • alternating line frequency voltage is rectified in a bridge rectifier 10 comprised of Diodes Di f arranged as illustrated.
  • the resulting rectified half-sine voltage waveform is applied to the power supply and return nodes of a conventional H-bridge 34 comprised of transistors Q hb -
  • the H-bridge 34 switches at a high frequency relative to the line frequency creating a voltage waveform having a sinusoidal envelope and a high frequency carrier that is essentially an amplitude modulated high frequency carrier with 100% sinusoidal modulation.
  • This modulated waveform is applied to the primary side of a resonant air gap transformer 16 for wireless transmission to the secondary side of the transformer.
  • L p and L s are the primary and secondary side winding self-inductances.
  • C p is the primary side resonating capacitor which also functions as a DC blocking capacitor.
  • C s is the secondary side resonating capacitor.
  • the transformer secondary side voltage is applied to a high frequency power rectifier circuit 18 comprised of diodes D hf , inductor L f and capacitor C f .
  • the inductor L f and capacitor C f comprise a ripple filter 20 with a short time constant that removes the high frequency ripple components while having essentially no effect on the line frequency envelope.
  • the resulting rectified half-sine voltage is applied to the power supply and return nodes of a second H-bridge circuit 36 comprised of transistors Q pb which provides a polarity inversion function.
  • the polarity inversion H-bridge 36 passes the positive going half-sinusoid waveform with no change in polarity. Conversely, when the H-bridge control voltage from the comparator 38 is zero, the H-bridge 36 inverts the half-sinusoid waveform producing in this way the negative half sinusoid portions of the output waveform for application to the AC load 26.
  • the polarity inversion control signal originates with a sample of the resonant air gap transformer secondary winding voltage derived by capacitors Ca which function as a voltage divider. This amplitude scaled version of the transformer secondary voltage is applied to a diode bridge comprised of diodes D ed which functions as a full wave envelope detector 30. High frequency ripple in the envelope detected waveform is removed by components C e and R e which make up a high frequency filter which has a time constant too small to materially affect the envelope.
  • the envelope detected, high frequency filtered signal passes through a DC Blocking capacitor C b and across a DC pull down resistor R g going into the input of voltage comparator 38.
  • the voltage comparator 38 creates a positive output voltage when the detected, filtered and DC blocked waveform has positive polarity and a zero output voltage when the applied waveform has negative polarity.
  • This polarity control signal when applied to the polarity inversion H-bridge 36 converts the half-sinusoidal voltage waveform provided by rectifier and filter components D hf , L f and C f into the continuous sinusoidal voltage required by the AC load 26.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Inverter Devices (AREA)
  • Cable Transmission Systems, Equalization Of Radio And Reduction Of Echo (AREA)
PCT/US2014/067300 2013-11-27 2014-11-25 Wireless transmission of line-frequency and line-voltage ac Ceased WO2015081065A1 (en)

Priority Applications (7)

Application Number Priority Date Filing Date Title
JP2016534117A JP2016540479A (ja) 2013-11-27 2014-11-25 ライン周波数およびライン電圧acの無線伝送
EP21192627.4A EP3930165A1 (en) 2013-11-27 2014-11-25 Wireless transmission of line-frequency and line-voltage ac
MX2016006864A MX355980B (es) 2013-11-27 2014-11-25 Transmision inalambrica de corriente alterna (ca) de voltaje de linea y frecuencia de linea.
CA2931810A CA2931810C (en) 2013-11-27 2014-11-25 Wireless transmission of line-frequency and line-voltage ac
EP14866281.0A EP3074988A4 (en) 2013-11-27 2014-11-25 Wireless transmission of line-frequency and line-voltage ac
KR1020167016665A KR102323955B1 (ko) 2013-11-27 2014-11-25 라인 주파수 및 라인 전압 ac의 무선 송신
CN201480071049.4A CN106104725B (zh) 2013-11-27 2014-11-25 线频率和线电压交流电的无线传输

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201361909721P 2013-11-27 2013-11-27
US61/909,721 2013-11-27

Publications (1)

Publication Number Publication Date
WO2015081065A1 true WO2015081065A1 (en) 2015-06-04

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PCT/US2014/067300 Ceased WO2015081065A1 (en) 2013-11-27 2014-11-25 Wireless transmission of line-frequency and line-voltage ac

Country Status (8)

Country Link
US (1) US9735695B2 (https=)
EP (2) EP3930165A1 (https=)
JP (1) JP2016540479A (https=)
KR (1) KR102323955B1 (https=)
CN (1) CN106104725B (https=)
CA (1) CA2931810C (https=)
MX (1) MX355980B (https=)
WO (1) WO2015081065A1 (https=)

Cited By (4)

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JP5989285B1 (ja) * 2016-01-22 2016-09-07 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
JP6058222B1 (ja) * 2016-01-22 2017-01-11 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
JP6113360B1 (ja) * 2016-01-22 2017-04-12 三菱電機エンジニアリング株式会社 電力伝送装置及び高周波電源
JP2018050190A (ja) * 2016-09-21 2018-03-29 横河電機株式会社 周期検出装置および周期検出方法

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CN106655538B (zh) * 2017-01-06 2019-06-25 重庆大学 一种基于交流包络调制无线电能传输系统
JP7414405B2 (ja) * 2019-05-23 2024-01-16 キヤノン株式会社 制御システムおよび制御方法
US12027877B2 (en) 2020-09-21 2024-07-02 Powermat Technologies Ltd. AC to AC wireless power systems
US11289952B1 (en) 2021-02-10 2022-03-29 Nucurrent, Inc. Slotted communications in virtual AC power signal transfer with variable slot width
US11923695B2 (en) 2021-02-10 2024-03-05 Nucurrent, Inc. Wireless power transmitters for virtual AC power signals
US11942797B2 (en) * 2021-02-10 2024-03-26 Nucurrent, Inc. Virtual AC power signal transfer using wireless power transfer system
US11444492B2 (en) 2021-02-10 2022-09-13 Nucurrent, Inc. Wireless power transfer systems for kitchen appliances
CN113300484A (zh) * 2021-05-14 2021-08-24 鲁东大学 一种通过相位调制抑制无线供电系统工频纹波的方法
CN113300483A (zh) * 2021-05-14 2021-08-24 鲁东大学 一种通过调频抑制无线供电系统工频纹波方法
CN116236691A (zh) * 2023-03-17 2023-06-09 上海杉翎医疗科技有限公司 植入式刺激系统、方法、计算机设备和存储介质
CN120880124A (zh) * 2024-04-30 2025-10-31 台达电子工业股份有限公司 具电压步阶变化与电压极性转换的电源转换系统

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JP5989285B1 (ja) * 2016-01-22 2016-09-07 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
JP6058222B1 (ja) * 2016-01-22 2017-01-11 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
JP6113360B1 (ja) * 2016-01-22 2017-04-12 三菱電機エンジニアリング株式会社 電力伝送装置及び高周波電源
WO2017126111A1 (ja) * 2016-01-22 2017-07-27 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
WO2017126110A1 (ja) * 2016-01-22 2017-07-27 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
WO2017126112A1 (ja) * 2016-01-22 2017-07-27 三菱電機エンジニアリング株式会社 電力伝送装置、高周波電源及び高周波整流回路
JP2018050190A (ja) * 2016-09-21 2018-03-29 横河電機株式会社 周期検出装置および周期検出方法

Also Published As

Publication number Publication date
JP2016540479A (ja) 2016-12-22
EP3074988A1 (en) 2016-10-05
US20150145345A1 (en) 2015-05-28
KR102323955B1 (ko) 2021-11-08
CN106104725A (zh) 2016-11-09
MX355980B (es) 2018-05-08
MX2016006864A (es) 2016-10-28
EP3074988A4 (en) 2017-07-12
EP3930165A1 (en) 2021-12-29
CA2931810A1 (en) 2015-06-04
CN106104725B (zh) 2018-11-02
CA2931810C (en) 2024-01-23
US9735695B2 (en) 2017-08-15
KR20160091365A (ko) 2016-08-02

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