WO2022148201A1 - 无线充电的方法、设备以及系统 - Google Patents

无线充电的方法、设备以及系统 Download PDF

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Publication number
WO2022148201A1
WO2022148201A1 PCT/CN2021/136398 CN2021136398W WO2022148201A1 WO 2022148201 A1 WO2022148201 A1 WO 2022148201A1 CN 2021136398 W CN2021136398 W CN 2021136398W WO 2022148201 A1 WO2022148201 A1 WO 2022148201A1
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WO
WIPO (PCT)
Prior art keywords
charging
power
power supply
wireless
supply device
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PCT/CN2021/136398
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English (en)
French (fr)
Inventor
何泽瑞
崔瑞
于东洋
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华为技术有限公司
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Publication of WO2022148201A1 publication Critical patent/WO2022148201A1/zh

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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/00032Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange
    • 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
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0029Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with safety or protection devices or circuits

Definitions

  • the present application relates to the field of electronic devices, and more particularly, to a method, device and system for wireless charging.
  • Wireless charging technology can facilitate the charging of electronic devices. After the charging coil of the electronic device is aligned with the wireless charger, the magnetic signal emitted by the wireless charging base can cause the charging coil to generate an induced current, which can then charge the battery of the electronic device.
  • an electronic device with a wireless charging function can charge other electronic devices with a wireless charging function.
  • the battery 1 of the electronic device 1 can power the charging coil 1 and generate a magnetic signal
  • the charging coil 1 of the electronic device 1 can be aligned with the charging coil 2 of the electronic device 2, so that the magnetic signal generated by the charging coil 1 can make the electronic device 2 .
  • the charging coil 2 generates an induced current, so that the electronic device 1 can charge the battery 2 of the electronic device 2 .
  • the wireless charging performance of the electronic device 1 should be paid attention to.
  • the present application provides a method, device and system for wireless charging, with the purpose of improving the wireless charging performance of electronic devices.
  • a method for wireless charging including:
  • the power supply device sends a charging state request data packet to the power receiving device through the wireless charging chip, where the charging state request data packet is used to request n pieces of charging state information of the power receiving device;
  • the power supply device receives a charging state feedback data packet from the power receiving device through the wireless charging chip, and the charging state feedback data packet includes the n pieces of charging state information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, and charge-discharge cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • the power supply device can exchange the charging status information of the power receiving device with the power receiving device through the wireless charging chip, which is conducive to reducing the amount of hardware involved in the interaction between the power supply device and the power receiving device, and is conducive to reducing the number of wireless Unnecessary energy consumption during charging.
  • the power supply device obtains the charging status information of the power receiving device, which is conducive to rationally adjusting the wireless charging mode, thereby improving the use performance of the power supply device and the charging performance of the power receiving device.
  • the method further includes:
  • the power supply device reduces the charging output power.
  • the power supply device can determine whether it is necessary to wirelessly (reversely) charge the power receiving device according to the charging state information of the power receiving device, or can determine whether the battery of the power receiving device may have a potential charging hazard.
  • the power supply equipment can improve the safety of wireless reverse charging by reducing the charging output power step by step, which is conducive to taking into account the wireless reverse charging function and the safety of wireless reverse charging.
  • the way of gradually reducing the charging output power can usually have relatively strong flexibility.
  • the method further includes:
  • the power supply device stops wireless reverse charging of the power receiving device.
  • the power supply device can determine whether it is necessary to wirelessly reversely charge the power receiving device according to the charging status information of the power receiving device, or can determine whether the battery of the power receiving device may have hidden charging risks.
  • the power supply equipment can automatically stop charging to improve the safety of wireless reverse charging, which is conducive to taking into account the wireless reverse charging function and the safety of wireless reverse charging.
  • the way of automatically stopping charging can usually have relatively high safety.
  • the first preset condition includes at least one of the following:
  • the current power of the power receiving device is greater than the preset power off-charge
  • the charging temperature of the power receiving device is greater than the preset charging temperature
  • the wireless charging energy efficiency ratio of the power receiving device is less than the preset energy consumption ratio
  • the battery health index of the power receiving device is less than a preset health score
  • the device identification of the power receiving device belongs to the device blacklist.
  • the standby time of the power receiving apparatus may be relatively long.
  • the power consumption of the power supply device can be reduced, thereby helping to improve the standby time of the power supply device.
  • the wireless charging energy efficiency ratio is less than the preset energy consumption ratio can correspond to "the difference between the reverse charging output power and the charging input power is greater than the preset power". If the difference between the reverse charging output power and the charging input power is greater than the preset power, it may mean that the power loss during the wireless reverse charging process is relatively large. The possible reason may be, for example, leakage, that is, there may be potential safety hazards. By turning off the wireless reverse charging function or reducing the charging output power, it is beneficial to improve the safety of wireless reverse charging.
  • the power receiving device feeds back power to the power supply device, and the purpose is usually to instruct the power supply device to provide appropriate wireless reverse charging power. Power indication information, instructing the power supply equipment to reduce the output power. However, this power indication information cannot reflect the actual power received by the power receiving device, nor can it reflect whether there is a potential safety hazard during the wireless reverse charging process.
  • the power supply device may determine that the battery of the power receiving device is currently in a non-healthy charging state. By turning off the wireless reverse charging function or reducing the charging output power, it is beneficial to improve the safety of wireless reverse charging.
  • the charging performance of the power receiving device may seriously affect the performance of the power supplying device.
  • the method further includes:
  • the power supply device displays a first parameter control
  • the power supply device modifies any one of the following parameters in response to an operation acting on the first parameter control: the preset off-charging amount, the preset charging temperature, the preset energy consumption ratio, the preset Health score, blacklist of said devices.
  • the display interface may include parameter controls.
  • the user can adjust the preset conditions for the power supply equipment to reduce the charging output power or automatically stop charging through a series of gesture operations acting on the parameter controls.
  • the method provided by the present application has relatively good user experience.
  • the method further includes:
  • the power supply device displays charging estimation information, and the charging estimation information is determined from the charging status information of the power receiving device.
  • the power supply device may process the charging state information of the power receiving device to obtain data that can relatively intuitively reflect the current wireless charging state.
  • the method provided by the present application has relatively good user experience.
  • the charging estimation information includes at least one of the following: an estimated charging time and an estimated local power consumption.
  • the method further includes:
  • the power supply device displays charging status information of the power receiving device.
  • the power supply device can dynamically display the charging state information of the power receiving device, so as to provide flexibility for the user to know the current wireless charging state.
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery.
  • the charging state of the power receiving device The information includes the current power level of the earphone box battery, the current power level of the left headset battery, and the current power level of the right headset battery.
  • the Bluetooth headset When the Bluetooth headset is placed in the headset box, the Bluetooth headset is usually turned off, and the Bluetooth headset usually cannot interact with surrounding devices through the Bluetooth communication module.
  • the charging status information of the Bluetooth headset is exchanged through the wireless charging chip, so that the user can know the charging status of the Bluetooth headset through the power supply device, thereby helping to improve the user experience of the Bluetooth headset during the wireless charging process.
  • the method further includes:
  • the power supply device sends the charging state information of the power receiving device and the charging state information of the power supply device to the monitoring device;
  • the power supply device receives instruction information from the monitoring device, the instruction information instructs the power supply device to adjust the charging output power, or to stop wireless reverse charging for the power receiving device.
  • the user can know the wireless charging status between the power supply device and the power receiving device through the monitoring device. This is beneficial to reduce the number of interruptions of wireless charging (because the user can know the current wireless charging status without cutting off the wireless charging relationship between the power supply device and the power receiving device). In addition, it is also beneficial to reduce the power consumption of the power supply device and the power receiving device during the wireless charging process. In addition, the user can adjust the wireless charging mode by controlling the power supply device through the monitoring device, which has strong flexibility.
  • the method further includes:
  • the power supply device reduces the charging output power, or stops wireless reverse charging for the power receiving device.
  • the power supply device can determine whether it is necessary to wirelessly reversely charge the power receiving device according to the charging state information of the power supply device.
  • the power supply equipment can automatically stop charging or reduce the charging output power to increase the standby time of the power supply equipment, which is also conducive to maintaining the normal operation of other components of the power supply equipment.
  • the second preset condition includes at least one of the following:
  • the current power of the power supply equipment reaches or is less than the power off-charging capacity of the machine
  • the single power consumption of the power supply device reaches or exceeds the single power consumption limit.
  • the power supply device can reduce its own power consumption by turning off the wireless reverse charging function or reducing the charging output power, thereby helping to improve the standby time of the power supply device.
  • the power supply equipment can reduce its own power consumption by turning off the wireless reverse charging function or reducing the charging output power, which is conducive to improving the standby time of the power supply equipment and maintaining The normal operation of other components of the power supply equipment.
  • the method further includes:
  • the power supply device displays a second parameter control
  • the power supply device modifies any one of the following parameters: the amount of the local machine to stop charging and the limit of the single power consumption.
  • the display interface may include parameter controls.
  • the user can adjust the preset conditions for the power supply equipment to reduce the charging output power or automatically stop charging through a series of gesture operations acting on the parameter controls.
  • the method provided by the present application has relatively good user experience.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the in the header or message of the charging status request packet.
  • the charging state request data packet includes a first type of command symbol
  • the first type of command symbol corresponds to the first type of charging state information
  • the first type of command symbol The type of charge state information includes the n pieces of charge state information
  • the first type of command symbol is carried in the header or message of the charge state request data packet.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • the static charging state information usually does not change significantly. Therefore, distinguishing the static charging state information from the dynamic charging state information is beneficial to save the overhead of wireless charging data packets.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • the wireless Qi protocol is different from the Bluetooth protocol and the wireless LAN protocol.
  • the power supply device and the power receiving device In the process of wireless reverse charging of the power receiving device by the power supply device, the power supply device and the power receiving device always need to interact through the wireless Qi protocol to maintain a normal wireless charging state.
  • the Bluetooth protocol and the wireless local area network protocol are not necessary for the power supply device and the power receiving device. If the power receiving device does not have the Bluetooth function and the wireless local area network function, the power receiving device will not be able to provide the power supply device with the charging status information of the power receiving device through the Bluetooth protocol or the wireless local area network protocol. Then, the usability of the power supply equipment may be reduced.
  • the transmission of charging status information through Bluetooth protocol, wireless local area network protocol, etc. will involve interaction and cooperation between multiple modules (such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules) (such as the need to The data packets of the Bluetooth protocol are converted to the data packets of the wireless Qi protocol). This may consume more data processing resources.
  • modules such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules
  • a method for wireless charging including:
  • the power receiving device receives a charging state request data packet from the power supply device through the wireless charging chip, where the charging state request data packet is used to request n pieces of charging state information of the power receiving device;
  • the power receiving device sends a charging state feedback data packet to the power supply device through the wireless charging chip, and the charging state feedback data packet includes the n pieces of charging state information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • the power receiving device can exchange the charging status information of the power receiving device with the power supply device through the wireless charging chip, which is beneficial to reduce the amount of hardware involved in the interaction between the power supply device and the power receiving device, and is conducive to reducing the number of wireless Unnecessary energy consumption during charging.
  • the power receiving device provides charging status information of the power receiving device to the power supply device, which is conducive to rationally adjusting the wireless charging mode, thereby improving the use performance of the power supply device and the charging performance of the power receiving device.
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery
  • the n pieces of charge status information include The current power of the headset box battery, the current power of the left headset battery, and the current power of the right headset battery.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the in the header or message of the charging status request packet.
  • the charging state request data packet includes a first type of command symbol
  • the first type of command symbol corresponds to the first type of charging state information
  • the state-of-charge-like information includes the n pieces of state-of-charge information.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • a method for wireless charging including:
  • the monitoring device displays a user interface, where the user interface includes charging state information of the power supply device, charging state information of the power receiving device, and a target control, where the target control corresponds to the power supply device or the power receiving device;
  • the monitoring device sends instruction information to the power supply device, where the instruction information is used to instruct the power supply device to adjust the charging output power, or stop the wireless reaction for the power receiving device. to charge.
  • the user can know the wireless charging status between the power supply device and the power receiving device through the monitoring device. This is beneficial to reduce the number of interruptions of wireless charging (because the user can know the current wireless charging status without cutting off the wireless charging relationship between the power supply device and the power receiving device). In addition, it is also beneficial to reduce the power consumption of the power supply device and the power receiving device during the wireless charging process. Moreover, the user can adjust the wireless charging mode by controlling the power supply device through the monitoring device, which has strong flexibility.
  • a power supply device including:
  • processors one or more processors
  • the one or more memories store one or more computer programs comprising instructions that, when executed by the one or more processors, cause the power supply device to perform:
  • a charging state feedback data packet is received from the power receiving device, and the charging state feedback data packet includes the n pieces of charging state information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • the power supply device when the charging state information of the power receiving device satisfies the first preset condition, the power supply device further executes:
  • the power supply device when the charging state information of the power receiving device satisfies the first preset condition, the power supply device further executes:
  • the first preset condition includes at least one of the following:
  • the current power of the power receiving device is greater than the preset power off-charge
  • the charging temperature of the power receiving device is greater than the preset charging temperature
  • the wireless charging energy efficiency ratio of the power receiving device is less than the preset energy consumption ratio
  • the battery health index of the power receiving device is less than a preset health score
  • the device identification of the power receiving device belongs to the device blacklist.
  • the power supply device further performs:
  • any one of the following parameters is modified: the preset off-charge amount, the preset charging temperature, the preset energy consumption ratio, the preset health score, the device blacklist.
  • the power supply device further performs:
  • the charging estimation information includes at least one of the following: an estimated charging time and an estimated local power consumption.
  • the power supply device further performs:
  • the charging status information of the power receiving device is displayed.
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery.
  • the charging state of the power receiving device The information includes the current power level of the earphone box battery, the current power level of the left headset battery, and the current power level of the right headset battery.
  • the power supply device further performs:
  • Receive instruction information from the monitoring device the instruction information instructing the power supply device to adjust the charging output power, or to stop wireless reverse charging of the power receiving device.
  • the power supply device when the charging state information of the power supply device satisfies the second preset condition, the power supply device further executes:
  • the second preset condition includes at least one of the following:
  • the current power of the power supply equipment reaches or is less than the power off-charging capacity of the machine
  • the single power consumption of the power supply device reaches or exceeds the single power consumption limit.
  • the power supply device further performs:
  • any one of the following parameters is modified: the amount of the local machine to stop charging, the limit of the single power consumption.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the in the header or message of the charging status request packet.
  • the charging state request data packet includes a first type of command symbol
  • the first type of command symbol corresponds to the first type of charging state information
  • the first type of command symbol The type of charge state information includes the n pieces of charge state information, and the first type of command symbol is carried in the header or message of the charge state request data packet.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • a power receiving device including:
  • processors one or more processors
  • the one or more memories store one or more computer programs comprising instructions that, when executed by the one or more processors, cause the power receiving device to execute :
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery
  • the n pieces of charge status information include The current power of the headset box battery, the current power of the left headset battery, and the current power of the right headset battery.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the in the header or message of the charging status request packet.
  • the charging state request data packet includes a first type of command symbol, the first type of command symbol corresponds to the first type of charging state information, the first type of command symbol
  • the state-of-charge-like information includes the n pieces of state-of-charge information.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • a monitoring device including:
  • processors one or more processors
  • the one or more memories store one or more computer programs comprising instructions that, when executed by the one or more processors, cause the monitoring device to perform:
  • the user interface includes charging state information of the power supply device, charging state information of the power receiving device, and a target control, the target control corresponding to the power supply device or the power receiving device;
  • instruction information is sent to the power supply device, where the instruction information is used to instruct the power supply device to adjust the charging output power, or to stop wireless reverse charging for the power receiving device.
  • a wireless charging system including a power supply device and a power receiving device, wherein,
  • the power supply device sends a charging state request data packet to the power receiving device through the wireless charging chip, and the charging state request data packet is used to request n pieces of charging state information of the power receiving device;
  • the power receiving device sends a charging state feedback data packet to the power supply device through the wireless charging chip, and the charging state feedback data packet includes the n pieces of charging state information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • the power supply device is further configured to: reduce the charging output power when the charging state information of the power receiving device satisfies the first preset condition.
  • the power supply device is further configured to: when the charging state information of the power receiving device satisfies the first preset condition, the power supply device stops the The power receiving device is wirelessly reverse charged.
  • the first preset condition includes at least one of the following:
  • the current power of the power receiving device is greater than the preset power off-charge
  • the charging temperature of the power receiving device is greater than the preset charging temperature
  • the wireless charging energy efficiency ratio of the power receiving device is less than the preset energy consumption ratio
  • the battery health index of the power receiving device is less than a preset health score
  • the device identification of the power receiving device belongs to the device blacklist.
  • the power supply device is further configured to:
  • any one of the following parameters is modified: the preset off-charge amount, the preset charging temperature, the preset energy consumption ratio, the preset health score, the device blacklist.
  • the power supply device is further configured to: display charging estimation information, where the charging estimation information is determined by charging state information of the power receiving device.
  • the charging estimation information includes at least one of the following: an estimated charging time and an estimated local power consumption.
  • the power supply device is further configured to: display charging state information of the power receiving device.
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery
  • the state of charge of the power receiving device is The information includes the current power level of the earphone box battery, the current power level of the left headset battery, and the current power level of the right headset battery.
  • system further includes a monitoring device, wherein,
  • the power supply device is further configured to: the monitoring device sends the charging state information of the power receiving device and the charging state information of the power supply device;
  • the monitoring device is further configured to: in response to the target operation acting on the target control, send indication information to the power supply device, where the indication information is used to instruct the power supply device to adjust the charging output power, or stop charging the power Wireless reverse charging of the receiving device.
  • the power supply device is further configured to: reduce the charging output power, or stop the charging when the charging state information of the power supply device satisfies the second preset condition Wirelessly reverse charge the power receiving device.
  • the second preset condition includes at least one of the following:
  • the current power of the power supply equipment reaches or is less than the power off-charging capacity of the machine
  • the single power consumption of the power supply device reaches or exceeds the single power consumption limit.
  • the power supply device is further configured to:
  • any one of the following parameters is modified: the amount of the local machine to stop charging, the limit of the single power consumption.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the in the header or message of the charging status request packet.
  • the charging state request data packet includes a first type of command symbol
  • the first type of command symbol corresponds to the first type of charging state information
  • the first type of command symbol The type of charge state information includes the n pieces of charge state information
  • the first type of command symbol is carried in the header or message of the charge state request data packet.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • an apparatus comprising: a sending unit configured to send a charging state request data packet to a power receiving device through a wireless charging protocol, where the charging state request data packet is used to request the power receiving device n pieces of charging state information; the receiving unit is configured to receive a charging state feedback data packet from the power receiving device through a wireless charging protocol, where the charging state feedback data packet includes the n pieces of charging state information, wherein all the The n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, number of charging and discharging cycles, wireless Charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • an apparatus comprising: a receiving unit configured to receive a charging state request data packet from a power supply device through a wireless charging protocol, where the charging state request data packet is used to request the power receiving device n pieces of charging status information; a sending unit, configured to send a charging status feedback data packet to the power supply device through a wireless charging protocol, where the charging status feedback data packet includes the n pieces of charging status information, wherein the n
  • the charging status information includes at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, number of charging and discharging cycles, and wireless charging energy efficiency ratio , Device ID, n is an integer greater than or equal to 1.
  • an apparatus comprising: a display unit for displaying a user interface, wherein the user interface includes charging status information of a power supply device, charging status information of the power receiving device, and a target control, the The target control corresponds to the power supply device or the power receiving device; the sending unit is configured to respond to the target operation acting on the target control, and send indication information to the power supply device, where the indication information is used to indicate the power supply
  • the device adjusts the charging output power, or stops wireless reverse charging of the power receiving device.
  • a computer program product comprising instructions, when the computer program product is run on an electronic device, the electronic device is made to execute any possible implementation manner of the first to third aspects the method described.
  • a computer-readable storage medium comprising instructions that, when the instructions are executed on an electronic device, cause the electronic device to perform any possible implementation of the first to third aspects above method described.
  • a thirteenth aspect provides a chip for executing instructions, and when the chip runs, the chip executes the method described in any possible implementation manner of the first aspect to the third aspect.
  • FIG. 1 is a schematic diagram of a hardware structure of an electronic device provided by an embodiment of the present application.
  • FIG. 2 is a schematic diagram of a software structure of an electronic device provided by an embodiment of the present application.
  • FIG. 3 is a schematic diagram of an application scenario provided by an embodiment of the present application.
  • FIG. 4 is a schematic diagram of a device interaction provided by an embodiment of the present application.
  • FIG. 5 is a schematic diagram of a wireless charging protocol data packet provided by an embodiment of the present application.
  • FIG. 6 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 7 is a diagram of a user interface provided by an embodiment of the present application.
  • FIG. 8 is a diagram of a user interface provided by an embodiment of the present application.
  • FIG. 9 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 10 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 11 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 12 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 13 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 14 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 15 is a diagram of a user interface provided by an embodiment of the present application.
  • FIG. 16 is a diagram of a user interface provided by an embodiment of the present application.
  • FIG. 17 is a schematic diagram of an application scenario provided by an embodiment of the present application.
  • FIG. 18 is a diagram of a user interface provided by an embodiment of the present application.
  • FIG. 19 is a schematic diagram of an application scenario provided by an embodiment of the present application.
  • FIG. 20 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 21 is a schematic flowchart of a method for wireless charging provided by an embodiment of the present application.
  • FIG. 22 is a schematic structural diagram of an apparatus for wireless charging provided by an embodiment of the present application.
  • FIG. 23 is a schematic structural diagram of an apparatus for wireless charging provided by an embodiment of the present application.
  • FIG. 24 is a schematic structural diagram of an apparatus for wireless charging provided by an embodiment of the present application.
  • FIG. 25 is a schematic structural diagram of an electronic device provided by an embodiment of the present application.
  • references in this specification to "one embodiment” or “some embodiments” and the like mean that a particular feature, structure, or characteristic described in connection with the embodiment is included in one or more embodiments of the present application.
  • appearances of the phrases “in one embodiment,” “in some embodiments,” “in other embodiments,” “in other embodiments,” etc. in various places in this specification are not necessarily All refer to the same embodiment, but mean “one or more but not all embodiments” unless specifically emphasized otherwise.
  • the terms “including”, “including”, “having” and their variants mean “including but not limited to” unless specifically emphasized otherwise.
  • the electronic device may be a portable electronic device that also includes other functions such as personal digital assistant and/or music player functions, such as a mobile phone, a tablet computer, a wearable electronic device with wireless communication capabilities (eg, a smart watch) Wait.
  • portable electronic devices include, but are not limited to, carry-on Or portable electronic devices with other operating systems.
  • the above-mentioned portable electronic device may also be other portable electronic devices, such as a laptop computer (Laptop) or the like. It should also be understood that, in some other embodiments, the above-mentioned electronic device may not be a portable electronic device, but a desktop computer.
  • FIG. 1 shows a schematic structural diagram of an electronic device 100 .
  • the methods provided by the embodiments of the present application may be implemented, for example, by the hardware units shown in FIG. 1 .
  • the electronic device 100 may include a processor 110 , an external memory interface 120 , an internal memory 121 , a universal serial bus (USB) interface 130 , a wireless charging module 131 , a charging management module 140 , a power management module 141 , and a battery 142 , antenna 1, antenna 2, mobile communication module 150, wireless communication module 160, audio module 170, speaker 170A, receiver 170B, microphone 170C, headphone jack 170D, camera 193, display screen 194, and subscriber identification module (subscriber identification module, SIM) card interface 195, etc.
  • a processor 110 an external memory interface 120 , an internal memory 121 , a universal serial bus (USB) interface 130 , a wireless charging module 131 , a charging management module 140 , a power management module 141 , and a battery 142 , antenna 1, antenna 2, mobile communication module 150, wireless communication module 160, audio module 170, speaker 170A, receiver 170B, microphone 170C, headphone jack 170D, camera 19
  • the structures illustrated in the embodiments of the present application do not constitute a specific limitation on the electronic device 100 .
  • the electronic device 100 may include more or less components than shown, or combine some components, or separate some components, or arrange different components.
  • the illustrated components may be implemented in hardware, software, or a combination of software and hardware.
  • the processor 110 may include one or more processing units, for example, the processor 110 may include an application processor (application processor, AP), a modem processor, a graphics processor (graphics processing unit, GPU), an image signal processor (image signal processor, ISP), controller, video codec, digital signal processor (digital signal processor, DSP), baseband processor, and/or neural network processor (neural-network processing unit, NPU), etc. Wherein, different processing units may be independent components, or may be integrated in one or more processors.
  • electronic device 100 may also include one or more processors 110 . Among them, the controller can generate the operation control signal according to the instruction operation code and the timing signal, and complete the control of fetching and executing the instruction.
  • a memory may also be provided in the processor 110 for storing instructions and data.
  • the memory in the processor 110 may be a cache memory. This memory may hold instructions or data that have just been used or recycled by the processor 110 . If the processor 110 needs to use the instruction or data again, it can be called directly from the memory. In this way, repeated access is avoided, and the waiting time of the processor 110 is reduced, thereby improving the efficiency of the electronic device 100 in processing data or executing instructions.
  • the processor 110 may include one or more interfaces.
  • the interface may include an inter-integrated circuit (I2C) interface, an inter-integrated circuit sound (I2S) interface, a pulse code modulation (pulse code modulation, PCM) interface, a universal asynchronous transceiver (universal) asynchronous receiver/transmitter, UART) interface, mobile industry processor interface (MIPI), general-purpose input/output (GPIO) interface, SIM card interface, and/or USB interface, etc.
  • the USB interface 130 is an interface that conforms to the USB standard specification, and may specifically be a Mini USB interface, a Micro USB interface, a USB Type C interface, and the like.
  • the USB interface 130 can be used to connect a charger to charge the electronic device 100, and can also be used to transmit data between the electronic device 100 and peripheral devices.
  • the USB interface 130 can also be used to connect an earphone, and play audio through the earphone.
  • the interface connection relationship between the modules illustrated in the embodiments of the present application is only a schematic illustration, and does not constitute a structural limitation of the electronic device 100 .
  • the electronic device 100 may also adopt different interface connection manners in the foregoing embodiments, or a combination of multiple interface connection manners.
  • the charging management module 140 is used to receive charging input from the charger.
  • the charger may be a wireless charger or a wired charger.
  • the charging management module 140 may receive charging input from the wired charger through the USB interface 130 .
  • the charging management module 140 can receive wireless charging input through a wireless charging coil of the electronic device 100 , and the wireless charging coil can be accommodated in the wireless charging module 131 . While the charging management module 140 charges the battery 142 , it can also supply power to the electronic device through the power management module 141 .
  • the power management module 141 is used for connecting the battery 142 , the charging management module 140 and the processor 110 .
  • the power management module 141 receives input from the battery 142 and/or the charging management module 140 and supplies power to the processor 110 , the internal memory 121 , the external memory, the display screen 194 , the camera 193 , and the wireless communication module 160 .
  • the power management module 141 can also be used to monitor parameters such as battery capacity, battery cycle times, battery health status (leakage, impedance).
  • the power management module 141 may also be provided in the processor 110 .
  • the power management module 141 and the charging management module 140 may also be provided in the same device.
  • the battery 142 can also reversely charge other electronic devices through the power management module 141, a wireless charging coil, and the like.
  • the wireless communication function of the electronic device 100 may be implemented by the antenna 1, the antenna 2, the mobile communication module 150, the wireless communication module 160, the modulation and demodulation processor, the baseband processor, and the like.
  • Antenna 1 and Antenna 2 are used to transmit and receive electromagnetic wave signals.
  • Each antenna in electronic device 100 may be used to cover a single or multiple communication frequency bands. Different antennas can also be reused to improve antenna utilization.
  • the antenna 1 can be multiplexed as a diversity antenna of the wireless local area network. In other embodiments, the antenna may be used in conjunction with a tuning switch.
  • the mobile communication module 150 may provide wireless communication solutions including 2G/3G/4G/5G etc. applied on the electronic device 100 .
  • the mobile communication module 150 may include at least one filter, switch, power amplifier, low noise amplifier (LNA) and the like.
  • the mobile communication module 150 can receive electromagnetic waves from the antenna 1, filter, amplify, etc. the received electromagnetic waves, and transmit them to the modulation and demodulation processor for demodulation.
  • the mobile communication module 150 can also amplify the signal modulated by the modulation and demodulation processor, and then turn it into an electromagnetic wave for radiation through the antenna 1 .
  • at least part of the functional modules of the mobile communication module 150 may be provided in the processor 110 .
  • at least part of the functional modules of the mobile communication module 150 may be provided in the same device as at least part of the modules of the processor 110 .
  • the wireless communication module 160 can provide applications on the electronic device 100 including wireless local area networks (WLAN) (such as wireless fidelity (Wi-Fi) networks), bluetooth (BT), global navigation satellites Wireless communication solutions such as global navigation satellite system (GNSS), frequency modulation (FM), near field communication (NFC), and infrared technology (IR).
  • WLAN wireless local area networks
  • BT Bluetooth
  • GNSS global navigation satellite system
  • FM frequency modulation
  • NFC near field communication
  • IR infrared technology
  • the wireless communication module 160 may be one or more devices integrating at least one communication processing module.
  • the wireless communication module 160 receives electromagnetic waves via the antenna 2 , frequency modulates and filters the electromagnetic wave signals, and sends the processed signals to the processor 110 .
  • the wireless communication module 160 can also receive the signal to be sent from the processor 110 , perform frequency modulation on it, amplify it, and convert it into electromagnetic waves for radiation through the antenna 2 .
  • the electronic device 100 implements a display function through a GPU, a display screen 194, an application processor, and the like.
  • the GPU is a microprocessor for image processing, and is connected to the display screen 194 and the application processor.
  • the GPU is used to perform mathematical and geometric calculations for graphics rendering.
  • Processor 110 may include one or more GPUs that execute program instructions to generate or alter display information.
  • Display screen 194 is used to display images, videos, and the like.
  • Display screen 194 includes a display panel.
  • the display panel can be a liquid crystal display (LCD), an organic light-emitting diode (OLED), an active-matrix organic light-emitting diode or an active-matrix organic light-emitting diode (active-matrix organic light).
  • LED diode AMOLED
  • flexible light-emitting diode flexible light-emitting diode (flex light-emitting diode, FLED), Miniled, MicroLed, Micro-oLed, quantum dot light-emitting diode (quantum dot light emitting diodes, QLED) and so on.
  • electronic device 100 may include one or more display screens 194 .
  • the display screen 194 of the electronic device 100 may be a flexible screen.
  • the flexible screen has attracted much attention due to its unique characteristics and great potential.
  • flexible screens have the characteristics of strong flexibility and bendability, which can provide users with new interactive methods based on the bendable characteristics, and can meet more needs of users for electronic devices.
  • the foldable display screen on the electronic device can be switched between a small screen in a folded state and a large screen in an unfolded state at any time. Therefore, users are using the split-screen function more and more frequently on electronic devices equipped with foldable displays.
  • the electronic device 100 may implement a shooting function through an ISP, a camera 193, a video codec, a GPU, a display screen 194, an application processor, and the like.
  • the ISP is used to process the data fed back by the camera 193 .
  • the shutter is opened, the light is transmitted to the camera photosensitive element through the lens, the light signal is converted into an electrical signal, and the camera photosensitive element transmits the electrical signal to the ISP for processing, and converts it into an image visible to the naked eye.
  • ISP can also perform algorithm optimization on image noise, brightness, and skin tone.
  • ISP can also optimize the exposure, color temperature and other parameters of the shooting scene.
  • the ISP may be provided in the camera 193 .
  • Camera 193 is used to capture still images or video.
  • the object is projected through the lens to generate an optical image onto the photosensitive element.
  • the photosensitive element may be a charge coupled device (CCD) or a complementary metal-oxide-semiconductor (CMOS) phototransistor.
  • CMOS complementary metal-oxide-semiconductor
  • the photosensitive element converts the optical signal into an electrical signal, and then transmits the electrical signal to the ISP to convert it into a digital image signal.
  • the ISP outputs the digital image signal to the DSP for processing.
  • DSP converts digital image signals into standard RGB, YUV and other formats of image signals.
  • the electronic device 100 may include one or more cameras 193 .
  • a digital signal processor is used to process digital signals, in addition to processing digital image signals, it can also process other digital signals. For example, when the electronic device 100 selects a frequency point, the digital signal processor is used to perform Fourier transform on the frequency point energy and so on.
  • Video codecs are used to compress or decompress digital video.
  • the electronic device 100 may support one or more video codecs.
  • the electronic device 100 can play or record videos of various encoding formats, such as: Moving Picture Experts Group (moving picture experts group, MPEG) 1, MPEG2, MPEG3, MPEG4 and so on.
  • MPEG Moving Picture Experts Group
  • MPEG2 moving picture experts group
  • MPEG3 MPEG4
  • MPEG4 Moving Picture Experts Group
  • the NPU is a neural network (NN) computing processor.
  • NN neural network
  • Applications such as intelligent cognition of the electronic device 100 can be implemented through the NPU, such as image recognition, face recognition, speech recognition, text understanding, and the like.
  • the external memory interface 120 can be used to connect an external memory card, such as a Micro SD card, to expand the storage capacity of the electronic device 100 .
  • the external memory card communicates with the processor 110 through the external memory interface 120 to realize the data storage function. For example to save files like music, video etc in external memory card.
  • Internal memory 121 may be used to store one or more computer programs including instructions.
  • the processor 110 may execute the above-mentioned instructions stored in the internal memory 121, thereby causing the electronic device 100 to execute the method for off-screen display, various applications and data processing provided in some embodiments of the present application.
  • the internal memory 121 may include a storage program area and a storage data area.
  • the stored program area may store the operating system; the stored program area may also store one or more applications (such as gallery, contacts, etc.) and the like.
  • the storage data area may store data (such as photos, contacts, etc.) created during the use of the electronic device 100 and the like.
  • the internal memory 121 may include high-speed random access memory, and may also include non-volatile memory, such as one or more magnetic disk storage components, flash memory components, universal flash storage (UFS), and the like.
  • the processor 110 may cause the electronic device 100 to execute the instructions provided in the embodiments of the present application by executing the instructions stored in the internal memory 121 and/or the instructions stored in the memory provided in the processor 110 .
  • the electronic device 100 may implement audio functions through an audio module 170, a speaker 170A, a receiver 170B, a microphone 170C, an earphone interface 170D, an application processor, and the like. Such as music playback, recording, etc.
  • FIG. 2 is a block diagram of the software structure of the electronic device 100 according to the embodiment of the present application.
  • the method provided by the embodiment of the present application may be implemented by, for example, the software unit shown in FIG. 2 .
  • the layered architecture divides the software into several layers, and each layer has a clear role and division of labor. Layers communicate with each other through software interfaces.
  • the Android system is divided into four layers, which are, from top to bottom, an application layer, an application framework layer, an Android runtime (Android runtime) and a system library, and a kernel layer.
  • the application layer can include a series of application packages.
  • the application package can include applications such as gallery, calendar, calling, maps, navigation, etc.
  • the application framework layer provides an application programming interface (application programming interface, API) and a programming framework for applications in the application layer.
  • the application framework layer includes some predefined functions.
  • the application framework layer may include window managers, content providers, view systems, telephony managers, resource managers, notification managers, and the like.
  • a window manager is used to manage window programs.
  • the window manager can get the size of the display screen, determine whether there is a status bar, lock the screen, take screenshots, etc.
  • Content providers are used to store and retrieve data and make these data accessible to applications.
  • the data may include video, images, audio, calls made and received, browsing history and bookmarks, phone book, etc.
  • the view system includes visual controls, such as controls for displaying text, controls for displaying pictures, and so on. View systems can be used to build applications.
  • a display interface can consist of one or more views.
  • the display interface including the short message notification icon may include a view for displaying text and a view for displaying pictures.
  • the phone manager is used to provide the communication function of the electronic device 100 .
  • the management of call status including connecting, hanging up, etc.).
  • the resource manager provides various resources for the application, such as localization strings, icons, pictures, layout files, video files and so on.
  • the notification manager enables applications to display notification information in the status bar, which can be used to convey notification-type messages, and can disappear automatically after a brief pause without user interaction. For example, the notification manager is used to notify download completion, message reminders, etc.
  • the notification manager can also display notifications in the status bar at the top of the system in the form of graphs or scroll bar text, such as notifications of applications running in the background, and notifications on the screen in the form of dialog windows. For example, text information is prompted in the status bar, a prompt sound is issued, the electronic device vibrates, and the indicator light flashes.
  • Android Runtime includes core libraries and a virtual machine. Android runtime is responsible for scheduling and management of the Android system.
  • the core library consists of two parts: one is the function functions that the java language needs to call, and the other is the core library of Android.
  • the application layer and the application framework layer run in virtual machines.
  • the virtual machine executes the java files of the application layer and the application framework layer as binary files.
  • the virtual machine is used to perform functions such as object lifecycle management, stack management, thread management, safety and exception management, and garbage collection.
  • a system library can include multiple functional modules. For example: surface manager (surface manager), media library (media library), 3D graphics processing library (eg: OpenGL ES), 2D graphics engine (eg: SGL), etc.
  • surface manager surface manager
  • media library media library
  • 3D graphics processing library eg: OpenGL ES
  • 2D graphics engine eg: SGL
  • the Surface Manager is used to manage the display subsystem and provides a fusion of 2D and 3D layers for multiple applications.
  • the media library supports playback and recording of a variety of commonly used audio and video formats, as well as still image files.
  • the media library can support a variety of audio and video encoding formats, such as: MPEG4, H.264, MP3, AAC, AMR, JPG, PNG, etc.
  • the 3D graphics processing library is used to implement 3D graphics drawing, image rendering, compositing, and layer processing.
  • 2D graphics engine is a drawing engine for 2D drawing.
  • the kernel layer is the layer between hardware and software.
  • the kernel layer contains at least display drivers, camera drivers, audio drivers, and sensor drivers.
  • FIG. 3 is a schematic diagram of four possible wireless reverse charging scenarios provided by an embodiment of the present application. It should be understood that the wireless reverse charging scenario provided by the embodiments of the present application is only an example. The embodiments of the present application are not intended to limit the specific form of the wireless reverse charging scenario. It should be understood that the solutions provided by the embodiments of the present application may also be applied to other wireless reverse charging scenarios.
  • the wireless reverse charging scenario may include a mobile phone 301 and a watch 302 .
  • both the mobile phone 301 and the watch 302 may have a wireless charging function.
  • the mobile phone 301 can also enable the wireless reverse charging function. After the wireless charging area of the watch 302 is aligned with the wireless charging area of the mobile phone 301 , the mobile phone can charge the watch 302 wirelessly.
  • the watch 302 may not have the wireless reverse charging function, or the watch 302 may temporarily disable the wireless reverse charging function.
  • the wireless reverse charging scenario may include a mobile phone 303 and a Bluetooth headset 304 .
  • the mobile phone 303 and the Bluetooth headset 304 can both have a wireless charging function.
  • the mobile phone 303 can also enable the wireless reverse charging function.
  • the mobile phone can wirelessly charge the Bluetooth headset 304 .
  • the Bluetooth headset 304 may not have the wireless reverse charging function, or the Bluetooth headset 304 may temporarily disable the wireless reverse charging function.
  • the wireless reverse charging scenario may include a first mobile phone 305 and a second mobile phone 306 .
  • both the first mobile phone 305 and the second mobile phone 306 may have a wireless charging function.
  • the first mobile phone 305 can also enable the wireless reverse charging function.
  • the mobile phone can wirelessly charge the second mobile phone 306 .
  • the second mobile phone 306 may not have the wireless reverse charging function, or the second mobile phone 306 may temporarily disable the wireless reverse charging function.
  • the wireless reverse charging scenario may include a tablet computer 307 and a stylus 308 .
  • the tablet computer 307 and the stylus 308 can both have a wireless charging function.
  • the tablet computer 307 can also enable the wireless reverse charging function.
  • the mobile phone can wirelessly charge the stylus 308 .
  • the stylus 308 may not have the wireless reverse charging function, or the stylus 308 may temporarily disable the wireless reverse charging function.
  • the embodiments of the present application may not limit the specific type of the electronic device in the wireless reverse charging scenario.
  • the power supply device an electronic device that enables the wireless reverse charging function and wirelessly charges other devices
  • the power receiving device electronic device wirelessly charged by the power supply device
  • a power supply device 410 and a power receiving device 420 wherein both the power supply device 410 and the power receiving device 420 may have wireless charging capability.
  • Power supply 410 may also have wireless reverse charging capabilities.
  • the power supply device 410 may be, for example, the mobile phone 301 , the mobile phone 303 , the first mobile phone 305 , and the tablet computer 307 shown in FIG. 3 .
  • the power receiving device 420 may be, for example, the watch 302, the Bluetooth headset 304, the second mobile phone 306, and the stylus 308 shown in FIG. 3 .
  • the hardware units and software structures of the power supply device 410 and the power receiving device 420 may refer to the electronic device 100 shown in FIG. 1 and FIG. 2 .
  • the power supply device 410 may include, for example, a battery 242 , a wireless charging chip 143 (for example, the wireless charging chip 143 may correspond to the power management module 141 and/or the charging management module 140 shown in FIG. 1 ), and the wireless charging coil 132 .
  • the power receiving device 420 may include, for example, a battery 342 , a wireless charging chip 243 , and a wireless charging coil 232 .
  • the power supply device 410 can control the battery 242 to output current to the wireless charging coil 132 through the wireless charging chip 143, so that the wireless charging coil 132 can emit a high-frequency magnetic field.
  • the wireless charging coil 132 of the power supply device 410 is paired with the wireless charging coil 232 of the power receiving device 420 , the high frequency magnetic field can pass through the wireless charging coil 232 so that an induced current can be generated on the wireless charging coil 232 .
  • the wireless charging chip 243 can detect the induced current and input the induced current to the battery 342 .
  • the interaction between the wireless charging chip 143 and the wireless charging chip 243 can also be realized through, for example, a wireless charging protocol (wireless Qi protocol).
  • the data packets of the wireless Qi protocol may be transmitted through the magnetic field medium between the wireless charging coil 132 and the wireless charging coil 232 .
  • the charge power of the battery 342 may be different depending on the power of the battery 342 .
  • the induced current required to be generated by the wireless charging coil 232 is generally relatively large.
  • the induced current that the wireless charging coil 232 needs to generate is generally relatively small.
  • the wireless charging chip 143 can send the wireless Qi protocol data packet to the wireless charging chip 243 through the wireless charging coil 132 , and the data packet can be used to request the wireless charging power of the battery 342 ; the wireless charging chip 243 can receive the wireless charging power through the wireless charging coil 232 . data packets, and feedback the wireless charging power of the battery 342 to the wireless charging chip 143 through the wireless Qi protocol.
  • the wireless charging chip 143 can adjust the output power of the wireless charging coil 132 to match the wireless charging power of the battery 342 .
  • the wireless charging chip 243 may indicate the wireless charging power to the wireless charging chip 143 through the wireless Qi protocol
  • the wireless charging power may reflect the wireless charging requirement of the rechargeable battery 342 .
  • the wireless charging power cannot reflect the actual wireless charging state of the rechargeable battery 342 (eg, the wireless charging power cannot reflect whether the wireless charging state of the rechargeable battery 342 is healthy and safe).
  • the charging state of the rechargeable battery 342 may also affect the wireless charging performance of the power supply device 410 , thereby affecting the user experience of the power supply device 410 .
  • the embodiments of the present application provide a new data packet format of the wireless Qi protocol, so as to facilitate the realization of more flexible interaction in a wireless charging scenario.
  • the following describes a data packet format of a wireless Qi protocol provided by an embodiment of the present application with reference to FIG. 5 .
  • the data packet of the wireless Qi protocol may include a preamble (preamble), a header (header), a message (message), and a checksum (checksum).
  • the preamble may include n bits, where eg 11 ⁇ n ⁇ 22.
  • the preamble can be used to synchronize the wireless charging chips of two electronic devices, and can also be used to determine the starting position of the header.
  • the header can be used to indicate the data packet type of the wireless Qi protocol, and can also be used to indicate the data volume or the length of the packet.
  • the message can include multiple bytes, which can be used to indicate the specific content of the data packet.
  • Checksums can be used to verify that packets are not transmitted in error. For example, the calculation formula of the checksum can be: Among them, H can refer to the header, B0, B1, ..., Bn are the bytes in the message, respectively, Can refer to the XOR operation.
  • the following describes a wireless charging method provided by an embodiment of the present application with reference to FIG. 6 .
  • the method shown in FIG. 6 can realize the interaction between the power supply device 410 and the power receiving device.
  • the power supply device 410 sends a charging state request data packet to the power receiving device 420, where the charging state request data packet is used to request n pieces of charging state information, where n is an integer greater than or equal to 1, and the charging state request data packet is a wireless Qi protocol packets.
  • the power receiving device 420 receives the charging state request data packet from the power supplying device 410 .
  • the power supply device 410 may, for example, send a charging status request data packet to the wireless charging chip 243 of the power receiving device 420 through the wireless Qi protocol and the wireless charging chip 143 .
  • the header and/or message of the charging state request data packet can be used to request the charging state information of the power receiving device 420, where the charging state information may include, for example, charging voltage (voltage), charging current (current), and charging internal resistance (tbat) ), current capacity (capacity, soc), charging input power, charging temperature (temperature, tbat), battery health status (such as the health index of the battery being charged 342), current operating frequency, and total battery capacity (full charge capacity, FCC) , one or more of the number of charge and discharge cycles (cycle), wireless charging energy efficiency ratio (ratio), device identification, and the like.
  • the charging voltage may include, for example, at least one of the following: charging front-end voltage (vbus) and battery terminal voltage (vbat).
  • the charging current may include at least one of the following: charging front-end current (ibus) and battery terminal current (ibat).
  • the device identification may include, for example, at least one of the following: device type, device sub-model.
  • the charging state request data packet includes n command symbols, and the n charging state information corresponds to the n command symbols one-to-one.
  • the power supply device 410 may indicate n pieces of charging state information through n command symbols.
  • the power supply device 410 and the power receiving device 420 may agree on a command symbol corresponding to the charging state information in advance.
  • the command character corresponding to the charging state information may be specified by the wireless Qi protocol.
  • the charging state request data packet may include, for example, a first header, a first message, and a first checksum.
  • the format of the charging state request data packet can be, for example, as shown in Table 1.
  • the first header may be used to indicate the data amount of the first packet (that is, the number of bytes occupied by the first packet) and the type of the data packet.
  • the first header may include the command character "0x18”
  • the data packet type indicated by "0x18” may be, for example, a charging state request data packet
  • the data amount of the first packet indicated by "0x18” may be 1 byte (1 byte can include 8 bits, and the 8 bits can be b0, b1, b2, b3, b4, b5, b6, b7 respectively).
  • the first header may also use command characters such as "0x28", “0x38”, "0x19", "0x29", “0x39”, and the like. This embodiment of the present application may not limit the specific form of the command character used by the first header.
  • the first message may be used to indicate the request for charging state information of the battery 342 of the power receiving device 420 .
  • the first message may include one or more command symbols (command, cmd), and the one or more command symbols may correspond one-to-one with one or more charging status information.
  • the first message may include a first command symbol, a second command symbol, ..., the nth command symbol, wherein the first command symbol may correspond to the first charging state information, and the second command symbol may correspond to the second charging state Information correspondence, ..., the nth command symbol may correspond to the nth charge state information.
  • the command character of the first packet may be represented by, for example, "0xXX", and "0xXX” may take a value of 0x00-0xFF.
  • 0x11 can correspond to the charging front-end voltage
  • 0x12 can correspond to the battery terminal voltage
  • 0x13 can correspond to the charging front-end current
  • 0x14 can correspond to the battery terminal current
  • 0x15 can correspond to the charging internal resistance
  • 0x16 can correspond to the current power
  • 0x17 Can correspond to wireless reverse charging input power
  • 0x18 can correspond to charging temperature
  • 0x19 can correspond to battery health status
  • 0x20 can correspond to current operating frequency
  • 0x21 can correspond to total battery capacity
  • 0x22 can correspond to the number of charge-discharge cycles
  • 0x23 can correspond to the wireless charging energy efficiency ratio
  • 0x24 can correspond to the device type
  • 0x25 can correspond to the device sub-model. It should be understood that the specific command symbols
  • the encoding method of the charging state request data packet may be, for example, amplitude shift keying (ASN).
  • the coding method of the charging status request data packet may also be On-Off Neying (OON), Frequency Shift Neying (FSN), and Gauss Frequency Shift Neying (Gauss Frequency Shift Neying). , GFSN) any of.
  • the power receiving device 420 sends a charging state feedback data packet to the power supply device 410 according to the charging state request data packet, where the charging state feedback data packet includes the n pieces of charging state information, and the charging state feedback data packet is: Data packets of the wireless Qi protocol.
  • the power supply device 410 receives the charging state feedback data packet from the power receiving device 420 .
  • the power receiving device 420 can acquire the charging state of the battery 342 of the power receiving device 420 and send the charging state feedback data packet to the power receiving device 420 to send the power receiving device 420
  • the state of charge of the battery 342 is fed back to the power supply device 410 .
  • the power supply device 410 may request and acquire the single charge state information from the power receiving device 420 .
  • the power supply device 410 may request and obtain a plurality of charge state information from the power receiving device 420 .
  • the power receiving device 420 can send a charging status feedback data packet to the wireless charging chip 143 of the power supply device 410 through the wireless charging chip 243 through the wireless Qi protocol.
  • the header and/or the message of the charging state feedback data packet can be used to feed back the charging state information of the power receiving device 420, wherein the charging state information may include, for example, charging voltage, charging current, charging input power, charging internal resistance, current electric quantity, One or more of charging temperature, battery state of health, total battery capacity, number of charging and discharging cycles, wireless charging energy efficiency ratio (ie, wireless charging energy conversion efficiency), device identification, and the like.
  • the charging state feedback data packet may include, for example, a second header, a second message, and a second checksum.
  • the format of the charging state feedback data packet can be, for example, as shown in Table 2.
  • the second header may be used to indicate the data volume of the second packet (that is, the number of bytes occupied by the second packet) and the data packet type.
  • the second header may include the command character "0xnf", the type of the data packet indicated by "0xnf" may be, for example, a charging status feedback data packet, and the data amount of the second packet indicated by "0xnf” may be n bytes (n bytes can be B0, B1, ..., Bn-1 respectively; each byte can include 8 bits, and the 8 bits can be b0, b1, b2, b3, b4, b5, b6, b7 respectively).
  • the second message may include, for example, one or more state-of-charge information of the battery 342 of the power receiving device 420 .
  • the second message may include first charging state information, second charging state information, . . . , and nth charging state information.
  • the first charging state information, the second charging state information, . . . , and the nth charging state information may respectively occupy n bytes of the second packet.
  • the coding manner of the charging state feedback data packet may be, for example, frequency shift keying (Frequency shift neying, FSN).
  • the coding method of the charging status feedback data packet may also be On-Off Neying (OON), Amplitude Shift Neying (ASN) and Gauss Frequency Shift Neying (Gauss Frequency Shift Neying). , GFSN) any of.
  • the charging status request data packet is used to indicate a target period, and the target period is the feedback period of the n charging status information.
  • the power supply device 410 may request the power receiving device 420 to feed back n pieces of charge state information according to the target period through the charge state request data packet.
  • the power receiving device 420 may periodically send n pieces of charge state information to the power supply device 410 according to the charge state request data packet.
  • the power supply device 410 can request the data packet 1 through the charging state, and request the power receiving device 420 to feed back the charging voltage and the charging current according to the cycle 1; 2 Feedback the current power, where period 1 is less than period 2. That is, the power supply device 410 can request the data packet 1 through the charging state, so that the power receiving device 420 can feed back the charging voltage and the charging current at a relatively fast frequency; and the power supply device 410 can request the data packet 2 through the charging state, This enables the power receiving device 420 to feed back the current power at a relatively slow frequency.
  • the power supply device 410 may indicate the target period through other wireless Qi data packets, so as to request the power receiving device 420 to feed back the n pieces of charging state information according to the target period.
  • Indicating the feedback cycle of the charging status information through the wireless Qi data packet is beneficial to reduce the number of signaling sent by the power supply device 410 to the power receiving device 420, and is also conducive to flexibly adjust the feedback frequency of the charging status information, which is conducive to taking into account the power consumption of the power supply device. power and charging performance. For example, when the feedback period of the charging state information is relatively appropriate, the power consumed by the power supply device in processing the charging state information and the power supplied to the power receiving device may be relatively appropriate, and the power supply device can obtain an appropriate amount of charging state information, in order to achieve relatively good charging performance.
  • the charging state request data packet includes a first type of command symbol, the first type of command symbol is used to indicate the first type of charging state information, and the first type of charging state information includes the n charging states information, n is an integer greater than 1.
  • the power receiving device 420 sends the n pieces of charging state information to the power supply device 410 according to the first type of command symbol.
  • the power supply device 410 may request the first type of charging state information from the power receiving device 420 through the first type of command symbol.
  • the first type of command symbol may be used to identify the first type of charge state information.
  • the first type of charge state information may be dynamic charge state information or static charge state information, for example.
  • Dynamic state-of-charge information may refer to state-of-charge information that typically changes during charging.
  • the dynamic charging status information may include charging voltage, charging current, charging internal resistance, charging input power, current power, charging temperature, battery health status, and the like.
  • Static state-of-charge information may refer to state-of-charge information that generally does not change during charging.
  • the static state of charge information may include total battery capacity, number of charge and discharge cycles, wireless charging energy efficiency ratio, device identification, and the like.
  • the power receiving device 420 may only feed back part of the state of charge information of the first type of state of charge information.
  • the first type of charge state information may include a first part of charge state information and a second part of charge state information, the power receiving device 420 has been authorized to feed back the first part of charge state information, and is not authorized to feed back the second part of charge state information, wherein the first part of the charge state information
  • One type of state-of-charge information may include the n pieces of state-of-charge information.
  • the power supply device 410 sends a second type of command symbol to the power receiving device 420, where the second type of command symbol is used to indicate the second type of charging state information, and the second type of charging state information includes m pieces of charging state information.
  • m is an integer greater than 1; the power supply device 410 receives the m pieces of charge state information from the power receiving device 420 , and there is no intersection between the first type of charge state information and the second type of charge state information.
  • the power receiving device 420 receives a second type of command symbol from the power supply device 410, the second type of command symbol is used to indicate the second type of charging state information, and the second type of charging state information includes m pieces of charging state information, m is an integer greater than 1; the power receiving device 420 sends the m pieces of charge state information to the power supply device 410 according to the second type of command symbol, the first type of charge state information and the second type of charge state information There is no intersection between.
  • the feedback period of the first type of charge state information may be different from the feedback period of the second type of charge state information.
  • the first type of charge state information is static charge state information
  • the second type of charge state information is dynamic charge state information. Since the static charging state information generally does not change during the charging process, the power supply device 410 can obtain the static charging state information from the power receiving device 420 through the first charging state request data packet when the wireless reverse charging is just started. After that, the power supply device 410 may send the second charging state request data packet to the power receiving device 420, and obtain dynamic charging state information from the power receiving device 420 multiple times.
  • Classifying the charging state information is beneficial to reducing signaling overhead of the power supply device 410 , and classifying the charging state information is also conducive to flexibly regulating signaling transmission between the power supply device 410 and the power receiving device 420 .
  • the embodiment shown in FIG. 6 enables the charging status information to be exchanged between the power supply device 410 and the power supply device 410 through the wireless Qi protocol.
  • the wireless Qi protocol is different from the Bluetooth protocol and the wireless local area network protocol.
  • the power supply device 410 and the power receiving device 420 always need to interact through the wireless Qi protocol to maintain the wireless Qi protocol. Normal wireless charging status.
  • the Bluetooth protocol and the wireless local area network protocol are not necessarily used for the power supply device 410 and the power receiving device 420 .
  • the power receiving device 420 does not have the Bluetooth function or the wireless LAN function, the power receiving device 420 will not be able to provide the power supply device 410 with the charging status information of the power receiving device 420 through the Bluetooth protocol or the wireless LAN protocol. Then, the usage performance of the power supply device 410 may be degraded.
  • the transmission of charging status information through Bluetooth protocol, wireless local area network protocol, etc. will involve interaction and cooperation between multiple modules (such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules) (such as the need to The data packets of the Bluetooth protocol are converted to the data packets of the wireless Qi protocol). This may consume more data processing resources.
  • modules such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules
  • FIG. 7 is a user interface 700 of the power supply device 410 provided by the embodiment of the present application.
  • the user interface 700 may be, for example, a setting interface for the battery of the power supply device 410 .
  • User interface 700 may include a switch control 701 for wireless reverse charging.
  • the power supply device 410 can turn on or turn off the wireless reverse charging function in response to a user's gesture operation (such as a click, etc.) acting on the switch control 701 .
  • a user's gesture operation such as a click, etc.
  • the power supply device 410 may display an icon 702 of wireless reverse charging on the user interface 700 .
  • User interface 700 may also include parameter setting controls 703 for wireless reverse charging.
  • the power supply device 410 may respond to the user's gesture operation (eg, click) on the parameter setting control 703 , so as to adjust the wireless reverse charging parameters of the power supply device 410 .
  • FIG. 8 is a user interface 800 of the power supply device 410 provided by the embodiment of the present application.
  • the user interface 800 may be, for example, a setting interface for wireless reverse charging of the power supply device 410 .
  • the user interface 800 may include, for example, a switch control 801 for automatically stopping charging.
  • the power supply device 410 may respond to the user's gesture operation (eg, click) on the switch control 801 to enable the automatic charging stop function (ie, the function of automatically turning off the wireless reverse charging function) of the power supply device 410 . That is to say, when the switch control 801 for automatic charging stop is turned on, the power supply device 410 can determine whether the preset condition for automatic charging stop is satisfied. If the preset condition is satisfied, the power supply device 410 may actively stop wireless reverse charging for the power receiving device 420 .
  • the user interface 800 may include a parameter control 802 for a local off-charge amount.
  • the power supply device 410 may acquire the current power of the power supply device 410 .
  • the power supply device 410 can determine whether the current power of the power supply device is greater than the power off-charging capacity of the local machine. In the case that the current power of the power supply device 410 is greater than the power of the device to stop charging, the power supply device 410 can maintain the wireless reverse charging function turned on.
  • the power supply device 410 can automatically stop charging operation, that is, the wireless reverse charging function is automatically turned off.
  • the charging capacity of the local machine may be, for example, 40%. That is to say, when the current power of the power supply device 410 is less than 40%, or when the current power of the power supply device 410 is reduced to 40%, the power supply device 410 can automatically turn off the wireless reverse charging function of the power supply device 410 .
  • the power supply device 410 can respond to the user's gesture operation (such as clicking, etc.) on the parameter control 802, and a series of subsequent gesture operations (such as sliding, inputting characters, etc.), so as to adjust the stop charging amount of the device. It should be understood that the embodiment of the present application may not limit the specific value of the power off-charge amount of the local machine.
  • the power supply device 410 can turn off the wireless reverse charging function to reduce its own power consumption, thereby helping to improve the standby time of the power supply device 410 .
  • the user interface 800 may include a parameter control 803 for a single power consumption limit.
  • the power supply device 410 can acquire the single power consumption of the power supply device.
  • the power supply device 410 can record the initial power when the wireless reverse charging starts, and determine whether the difference between the current power of the power supply device 410 and the initial power is greater than the single power consumption Limited.
  • the difference between the current power and the initial power may reflect the power consumed by the power supply device 410 during the wireless reverse charging process, which may be referred to as single power consumption for short.
  • the power supply device 410 may count the power consumed by the wireless reverse charging function, and determine whether the power is greater than the single power consumption limit.
  • the power consumed by the wireless reverse charging function during one wireless reverse charging process can be described as a single power consumption.
  • the power supply device 410 can determine whether the single power consumption of the power supply device 410 is greater than the single power consumption limit. If the single power consumption is less than the single power consumption limit, the power supply device 410 can keep the wireless reverse charging function turned on. As shown by 1003 in FIG. 10 , if the single power consumption is greater than the single power consumption limit, the power supply device 410 may perform an operation of automatically stopping charging, that is, automatically turning off the wireless reverse charging function.
  • the single power consumption limit may be, for example, 20%. That is to say, when the single power consumption limit is greater than 20%, the power supply device 410 can automatically turn off the wireless reverse charging function of the power supply device 410 .
  • the power supply device 410 can adjust the single power consumption limit in response to the user's gesture operation (eg, clicking, etc.) on the parameter control 803 and a series of subsequent gesture operations (eg, sliding, inputting characters, etc.). It should be understood that the embodiment of the present application may not limit the specific value of the single power consumption limit.
  • the power supply device 410 can turn off the wireless reverse charging function to reduce its own power consumption, thereby helping to improve the standby time of the power supply device 410 and maintaining the power supply device.
  • Other components of 410 work normally.
  • the user interface 800 may include a parameter control 804 for the amount of charge off the peer device.
  • the power supply device 410 may acquire the current amount of electricity of the power reception device 420 .
  • the power supply device 410 can obtain the current power of the power receiving device 420 from the power receiving device 420 , for example, by requesting a data packet of the charging state.
  • the power supply device 410 can determine whether the current power of the power receiving device 420 is greater than the power off-charging capacity of the opposite device. In the case that the current power of the power receiving device 420 is less than the amount of the charging stop of the peer device, the power supply device 410 can maintain the wireless reverse charging function turned on. As shown in 1103 in FIG.
  • the power supply device 410 when the power of the power supply device 410 is greater than the charging stop capacity of the opposite end device, or the power supply device 410 increases to the charging stop capacity of the opposite end device, the power supply device 410 can automatically stop charging operation, that is, the wireless reverse charging function is automatically turned off.
  • the power off-charging capacity of the peer device may be, for example, 90%. That is to say, when the current power level of the power receiving device 420 is greater than 90%, or when the current power level of the power receiving device 420 rises to 90%, the power supply device 410 may automatically turn off the wireless reaction of the power supply device 410. to the charging function.
  • the power supply device 410 can respond to the user's gesture operation (eg, click, etc.) on the parameter control 804, and a series of subsequent gesture operations (eg, slide, input characters, etc.), so as to adjust the power off of the opposite device. It should be understood that the embodiment of the present application may not limit the specific value of the power off-charging amount of the opposite terminal device.
  • the standby time of the power receiving apparatus 420 may be relatively long.
  • the power consumption of the power supply device 410 can be reduced, which is beneficial to increase the standby time of the power supply device 410 .
  • user interface 800 may include parameter controls 805 for historically charged devices.
  • the power supply device 410 may obtain the device identification of the power receiving device 420 from the power receiving device 420 through the charging state request data packet.
  • the power supplying device 410 may record the device identification of the power receiving device 420 .
  • the power supply device 410 may count the number of times of wireless reverse charging of the power receiving device 420 .
  • the power supply device 410 may display the device identification of the power receiving device 420 and the number of times of wireless reverse charging on the user interface 800 . As shown in FIG. 8 , the power supply device 410 used to wirelessly reverse charge the Bluetooth headset A, the watch B, and the Bluetooth headset C. The number of times of wireless reverse charging of the Bluetooth headset A is 20 times, and the number of times of wireless reverse charging of the watch B is 15 times. times, the number of wireless reverse charging times for the Bluetooth headset C is 20 times.
  • the power supply device 410 may display the wireless reverse charging record of the power supply device 410 (ie, the list of power receiving devices 420 ) in response to the user's gesture operation (eg, click) on the parameter control 805 .
  • the power supply device 410 provided wireless reverse charging functionality to a relatively large number of electronic devices. This is beneficial for prompting the user to properly place the charger of the power receiving device 420 , so as to reduce the number of times of wireless reverse charging of the power supply device 410 .
  • the power supply device 410 may highlight the device identifier of the power receiving device 420 on the user interface 800 so that the user can view the current device information of the power receiving device 420 .
  • the power supply device 410 may respond to the user's gesture operation (eg, click, etc.) acting on the parameter control 805, thereby setting the target device identifier in the device blacklist. That is, the power supply device 410 may acquire the device identification of the power receiving device 420 from the power receiving device 420, and determine whether the device identification belongs to the device blacklist. If so, the power supply device 410 may perform an operation of automatically stopping charging, that is, automatically turning off the wireless reverse charging function. If not, the power supply device 410 can keep the wireless reverse charging function turned on, and wirelessly reverse charge the power receiving device 420 .
  • the user's gesture operation eg, click, etc.
  • the charging performance of the power receiving device 420 may seriously affect the usage performance of the power supplying device 410 .
  • FIG. 12 shows a wireless charging method provided by an embodiment of the present application. The method shown in FIG. 12 can be applied to the wireless reverse charging scenario shown in FIG. 3 and other wireless reverse charging scenarios.
  • the power supply device 410 may, for example, obtain the battery health status of the power receiving device 420 through the method shown in FIG. 6 .
  • the battery state of health may belong to a type of state-of-charge information.
  • the power supply device 410 may determine whether the battery of the power receiving device 420 is currently in a healthy charging state or a non-healthy charging state according to the battery health state.
  • the power supply device 410 may match the score corresponding to the battery health state with a preset health score, so as to determine whether the battery of the power receiving device 420 is currently in a healthy charging state or a non-healthy charging state.
  • the power supply device 410 may determine that the battery of the power receiving device is currently in a healthy charging state. Then the power supply device 410 can continue to wirelessly reverse charge the power receiving device 420 and continue to monitor the battery health status of the power receiving device 420 (as shown by 1201 in FIG. 12 ).
  • the power supply device 410 may determine that the battery of the power receiving device is currently in a non-healthy charging state. Then, as shown by 1203 in FIG. 12 , the power supply device 410 may actively stop wirelessly reverse charging the power receiving device 420 .
  • FIG. 13 shows a wireless charging method provided by an embodiment of the present application. The method shown in FIG. 13 can be applied to the wireless reverse charging scenario shown in FIG. 3 and other wireless reverse charging scenarios.
  • the power supply device 410 can acquire the charging input power of the power receiving device 420 and the charging output power of the power supply device 410 .
  • the charging input power may refer to the wireless charging power received by the power supply device 410 from the power receiving device 420 .
  • the charging output power may refer to the power output by the power supply device 410 in the wireless reverse charging function, that is, the power output by the power supply device 410 for the wireless reverse charging of the power receiving device 420 .
  • the power supply device 410 requests the charging input power from the power receiving device 420 through the wireless Qi protocol and the charging state request data packet.
  • the charging input power may belong to a kind of charging state information.
  • the power supply device 410 requests the power receiving device 420 for charging current and charging voltage through the wireless Qi protocol and the charging state request data packet.
  • the power receiving device 420 may determine or estimate the charging input power of the power receiving device 420 according to the charging current and charging voltage of the power receiving device 420 .
  • the power supply device 410 can determine whether the difference between the reverse charging output power and the charging input power is greater than the preset power.
  • the difference between the reverse charging output power and the charging input power can reflect the power loss during the wireless reverse charging process.
  • the difference between the reverse charging output power and the charging input power is less than the preset power, it may mean that most of the power output by the power supply device 410 can be used for wireless reverse charging of the power receiving device 420 . Then, the power supply device 410 can continue to wirelessly reverse charge the power receiving device 420, and continue to monitor the difference between the reverse charging output power and the charging input power (as shown by 1301 in FIG. 13 ).
  • the power supply device 410 may actively stop wireless reverse charging for the power receiving device 420 .
  • the power receiving device 420 feeds back power to the power supply device 410, and the purpose is usually to instruct the power supply device 410 to provide appropriate wireless reverse charging power.
  • the power receiving device 420 can send The power supply device 410 sends power indication information, instructing the power supply device 410 to reduce the output power.
  • this power indication information cannot reflect the power actually received by the power receiving device 420, nor can it reflect whether there is a potential safety hazard during the wireless reverse charging process.
  • the method shown in FIG. 13 is beneficial to reduce the occurrence probability of wireless reverse charging safety accidents.
  • FIG. 14 is a method for wireless charging provided by an embodiment of the present application. The method shown in FIG. 14 can be applied to the wireless reverse charging scenario shown in FIG. 3 and other wireless reverse charging scenarios.
  • the power supply device 410 may acquire the charging temperature of the power reception device 420 .
  • the charging temperature may be, for example, the temperature of the battery 342 of the power receiving device 420 .
  • the power supply device 410 requests the power receiving device 420 for the charging temperature through the wireless Qi protocol and the charging state request data packet.
  • the power supply device 410 may determine whether the charging temperature of the power receiving device 420 is greater than the first preset charging temperature. If the charging temperature of the power receiving device 420 is too high, the battery 342 of the power receiving device 420 may have a charging hazard.
  • the charging temperature of the power receiving device 420 is lower than the first preset charging temperature, it may mean that the battery 342 of the power receiving device 420 may currently be in a normal charging state, and the probability of a safety hazard is relatively small. Then, the power supply device 410 can continue to wirelessly reversely charge the power receiving device 420 and continue to monitor the charging temperature of the power receiving device 420 (as shown by 1401 in FIG. 14 ).
  • the charging temperature of the power receiving device 420 is greater than the first preset charging temperature, it may mean that the battery 342 of the power receiving device 420 may present a potential safety hazard. Then, as shown by 1403 in FIG. 14 , the power supply device 410 can reduce the charging output power of the power supply device to the first output power. In a possible scenario, the first output power is zero or close to zero, which may be equivalent to the power supply device 410 automatically turning off the wireless reverse charging function.
  • the power supply device 410 may determine that when the charging temperature of the power receiving device 420 is greater than the second preset charging temperature, the power supply device 410 may reduce the charging output power of the power supply device to the second output power, and the second preset charging The temperature is greater than the first preset charging temperature, and the second output power is less than the first output power.
  • the method provided by the embodiment of the present application can reduce the charging output power of the power supply device 410 step by step, which is favorable for taking into account the wireless reverse charging function and the safety of wireless reverse charging.
  • the power supply device 410 may adjust the wireless reverse charging mode by gradually reducing the charging output power. For example, in the case that the current power of the power supply device 410 is lower than the power consumption of the local machine, and/or, in the case that the single power consumption of the power supply device 410 is higher than the single power consumption limit, and/or, in the case of In the case that the current power of the power receiving device 420 is higher than the charging stop of the opposite end device, the power supply device 410 may adjust the wireless reverse charging mode by gradually reducing the charging output power.
  • the step-by-step method of reducing the charging output power may be performed before the above-mentioned automatic charging stop operation, or may replace the above-mentioned automatic charging stop operation.
  • FIG. 15 is a user interface 1500 of the power supply device 410 provided by the embodiment of the present application.
  • the user interface 1500 may be, for example, a lock screen interface or an application program interface of the power supply device 410 .
  • the power supply device 410 may be, for example, the mobile phone 301 shown in (a) in FIG. 3
  • the power receiving device 420 may be, for example, the watch 302 shown in (a) in FIG. 3 .
  • User interface 1500 may include wireless reverse charging window 1501 .
  • the power supply device 410 may display one or more charging status information of the power receiving device 420 within the wireless reverse charging window 1501 .
  • the wireless reverse charging window 1501 may include the current power level, charging voltage, total battery capacity, (input) charging current, etc. of the power receiving device 420; wherein, the current power level of the power receiving device 420 may be 50%, The charging voltage of the power receiving device 420 may be 4100 mV, the total battery capacity of the power receiving device 420 may be 200 mAh, and the charging current of the power receiving device 420 may be 400 mA.
  • the charging state information of the power supply device 410 may further include at least one of the following: charging input power, charging internal resistance, charging temperature, battery state of health, number of charging and discharging cycles, wireless charging energy efficiency ratio, and device identification.
  • the wireless reverse charging window 1501 may include a device icon of the power receiving device 420 .
  • the device icon may be a watch icon.
  • the device icon may be determined according to, for example, the device identification of the power receiving device 420 or the like.
  • the power supply device 410 may determine a wireless reverse charging scheme according to the device type.
  • the power supply device 410 can charge the power receiving device 420 according to a charging mode suitable for a watch.
  • the batteries of different device types are often quite different, and different charging modes are selected according to the device types, which is beneficial to protect the batteries of the power supply device 410 and the power receiving device 420 .
  • the power supply device 410 may display one or more charging status information of the power supply device 410 in the wireless reverse charging window 1501 .
  • the wireless reverse charging window 1501 may include the (output) charging current of the power supply device 410, etc.; wherein, the charging current of the power supply device 410 may be 500 mA.
  • the charging state information of the power supply device 410 may include at least one of the following: charging voltage, charging current, charging temperature, current power level, battery state of health, and charging output power.
  • the power supply device 410 may display the charging estimation information corresponding to the power receiving device 420 in the wireless reverse charging window 1501, and the charging estimation information may be determined by one or more charging status information of the power receiving device 420. .
  • the wireless reverse charging window 1501 may include an estimated charging time of the power receiving device 420, and the estimated charging time may be the estimated time required for the power supply device 410 to fully charge the power receiving device 420; Estimated full time can be 30 minutes.
  • the estimated charging time can be determined according to, for example, the charging current of the power receiving device 420, the total battery capacity, the current power, the number of charging and discharging cycles, and the like:
  • soc is the current power
  • fcc is the total capacity of the battery
  • cur is the charging current.
  • the aging factor can be estimated by modeling based on the number of charge-discharge cycles.
  • the wireless reverse charging window 1501 may include the estimated power consumption of the local machine, and the estimated power consumption of the local machine may be the estimated power consumption of the power supply device 410 when the power supply device 410 is fully charged;
  • the estimated power consumption of the machine can be 20%.
  • the estimated power consumption of the machine can be determined, for example, according to the total battery capacity, current power, number of charging and discharging cycles, and wireless charging energy efficiency ratio of the power receiving device 420:
  • soc is the current power
  • fcc is the total capacity of the battery
  • ratio is the wireless charging energy efficiency ratio.
  • the aging factor can be estimated by modeling based on the number of charge-discharge cycles.
  • the wireless charging energy efficiency ratio can be obtained, for example, in the following manner: the power supply device 410 can obtain the average output power of wireless reverse charging of the power supply device 410, and send the average output power of wireless reverse charging to the power receiving device 420, and the average output power of wireless reverse charging can be obtained.
  • the output power may be the average value of the charging output power; the power receiving device 420 may obtain the average wireless reverse charging input power of the power receiving device 420, and according to the wireless reverse charging average output power and the wireless reverse charging average output power, Determine the wireless charging energy efficiency ratio; after that, the power receiving device 420 may feed back the wireless charging energy efficiency ratio to the power supply device 410 .
  • FIG. 16 is a user interface 1600 of the power supply device 410 provided by the embodiment of the present application.
  • the user interface 1600 may be, for example, a negative one-screen interface or an application program interface of the power supply device 410 .
  • the power supply device 410 may be, for example, the mobile phone 303 shown in (b) in FIG. 3
  • the power receiving device 420 may be, for example, the Bluetooth headset 304 shown in (b) in FIG. 3 .
  • the Bluetooth headset 304 may include a headset box battery, a left headset battery, and a right headset battery.
  • the mobile phone 303 can wirelessly reverse charge the battery of the earphone box, and the battery of the earphone box can charge the battery of the left earphone and the battery of the right earphone.
  • the Bluetooth earphone 304 can not only feed back the charging status information of the earphone box battery to the mobile phone 303 , but also feed back the charging status information of the left earphone battery and the charging status information of the right earphone battery to the mobile phone 303 .
  • the user interface 1600 may include a wireless reverse charging window 1601 .
  • the mobile phone 303 can display the current capacity of the left earphone battery (40%), the current capacity of the right earphone battery (42%), and the current capacity of the earphone box battery (72%) in the wireless reverse charging window 1601 .
  • the mobile phone 303 can also display other charging status information of the battery of the earphone box, the battery of the left earphone, and the battery of the right earphone.
  • the wireless reverse charging window 1601 can also display the wireless charging icon 1602 in the area corresponding to the Bluetooth headset 304 .
  • the Bluetooth headset when the Bluetooth headset is placed in the headset box, the Bluetooth headset is usually turned off, and the Bluetooth headset usually cannot interact with surrounding devices through the Bluetooth communication module.
  • the example shown in FIG. 16 can exchange the charging status information of the Bluetooth headset through the wireless Qi protocol, so that the user can know the charging status of the Bluetooth headset through the power supply device, which is beneficial to improve the user experience of the Bluetooth headset during the wireless charging process.
  • FIG. 17 to 18 are schematic diagrams of a wireless charging scenario provided by an embodiment of the present application. It should be understood that the wireless charging scenario provided by the embodiments of the present application is only an example. The embodiments of the present application are not intended to limit the specific form of the wireless charging scenario. It should be understood that the solutions provided in the embodiments of the present application may also be applied to other wireless charging scenarios or wireless reverse charging scenarios.
  • the wireless charging scenario may include a mobile phone 1701 , a tablet computer 1702 , a wireless charger 1703 , a tablet computer 1704 , and a stylus 1705 .
  • the wireless charger 1703 can wirelessly charge the tablet computer 1702
  • the tablet computer 1704 can wirelessly reversely charge the stylus 1705 .
  • the wireless charging scenario provided by this embodiment of the present application may include the mobile phone 1701, the tablet computer 1702, and the wireless charger 1703 shown in FIG. 17, but does not include the tablet computer 1704 and the stylus 1705.
  • the wireless charging scenario of 1701 may include the mobile phone 1701, the tablet computer 1702, and the wireless charger 1703 shown in FIG. 17, but does not include the tablet computer 1704 and the stylus 1705.
  • the wireless charger 1703 can wirelessly charge other electronic devices, such as mobile phones, wristbands, watches, earphones, keyboards, styluses, notebook computers, electric toothbrushes and other portable electronic devices in addition to wirelessly charging the tablet computer 1702 .
  • the tablet computer 1704 can also wirelessly reverse charge other electronic devices, such as mobile phones, bracelets, watches, headphones, keyboards, styluses, laptops, electric toothbrushes, etc. Electronic equipment.
  • the wireless charger 1703 can send a charging status request data packet to the tablet computer 1702 through the wireless Qi protocol, and then can obtain the charging status information of the tablet computer 1702 from the tablet computer 1702 .
  • the wireless charger 1703 may correspond to the power supply device 410 in FIG. 6
  • the tablet computer 1702 may correspond to the power receiving device 420 in FIG. 6 .
  • the wireless charger 1703 can send the charging status information of the tablet computer 1702 to the mobile phone 1701 through a wireless communication protocol (eg, Bluetooth protocol, wireless local area network protocol, Internet of Things protocol, etc.).
  • the mobile phone 1701 may be a monitoring device in a wireless charging scenario.
  • the mobile phone 1701 can display the charging status information of the tablet computer 1702 .
  • the user interface 1800 may include a wireless charging icon of the tablet computer 1702 , the current battery level of the tablet computer 1702 , and the change trend of the battery level of the tablet computer 1702 .
  • user interface 1800 may include controls 1801 corresponding to tablet computer 1702 .
  • the mobile phone 1701 can control the wireless charger 1703 to adjust the charging output power of the tablet computer 1702 , or stop wirelessly charging the tablet computer 1702 .
  • the user may instruct the mobile phone 1701 to reduce the charging output power of the wireless charger 1703 through a gesture operation acting on the control 1801 .
  • the mobile phone 1701 can send instruction information to the wireless charger 1703 according to the gesture operation, so as to instruct the wireless charger 1703 to reduce the charging output power.
  • the tablet computer 1704 can send the charging status request data packet to the stylus 1705 through the wireless Qi protocol, and then can obtain the charging status information of the stylus 1705 from the stylus 1705 .
  • the tablet computer 1704 may correspond to the power supply device 410 in FIG. 6
  • the stylus 1705 may correspond to the power receiving device 420 in FIG. 6 .
  • the tablet computer 1704 can send the charging status information of the stylus 1705 and the charging status information of the tablet computer 1704 to the mobile phone 1701 through a wireless communication protocol (such as a short-range communication protocol such as a Bluetooth protocol, a wireless local area network protocol, etc.). .
  • the mobile phone 1701 can display the charging status information of the stylus 1705 and the charging status information of the tablet computer 1704 . As shown in FIG.
  • the user interface 2000 may include a wireless charging icon of the stylus 1705 , the current battery level of the stylus 1705 , the battery change trend of the stylus 1705 , the wireless reverse charging icon of the tablet computer 1704 , and the current battery level of the tablet computer 1704 , the power change trend of the tablet PC 1704.
  • user interface 1800 may include a wireless reverse charging relationship between tablet 1704 and stylus 1705 .
  • user interface 1800 may include controls 1802 corresponding to tablet computer 1704 and/or controls 1802 corresponding to stylus 1705 .
  • the mobile phone 1701 can control the tablet computer 1704 to adjust the charging output power of the stylus 1705 , or stop wirelessly charging the stylus 1705 .
  • the user may instruct the mobile phone 1701 to reduce the charging output power of the tablet computer 1704 through a gesture operation acting on the control 1802 or the control 1803 .
  • the mobile phone 1701 can send instruction information to the tablet computer 1704 according to the gesture operation, so as to instruct the tablet computer 1704 to reduce the charging output power.
  • the mobile phone 1701 can obtain battery status information of other electronic devices in the wireless charging scenario through a wireless communication protocol (such as a Bluetooth protocol, a wireless local area network protocol, an Internet of Things protocol, etc.), and display the battery on the user interface 1800. status information.
  • a wireless communication protocol such as a Bluetooth protocol, a wireless local area network protocol, an Internet of Things protocol, etc.
  • the user interface 1800 may include, for example, the current battery level of the smart watch (34%), the current battery level of the Bluetooth headset (45%), the current battery level of the Bluetooth keyboard (66%), and the current battery level of the smart bracelet (87%). %).
  • FIG. 19 is a schematic diagram of a wireless charging scenario provided by an embodiment of the present application. It should be understood that the wireless charging scenario provided by the embodiments of the present application is only an example. The embodiments of the present application are not intended to limit the specific form of the wireless charging scenario. It should be understood that the solutions provided in the embodiments of the present application may also be applied to other wireless charging scenarios.
  • the wireless charging scenario may include a mobile phone 1901 and a wireless charger 1902 .
  • the wireless charger 1902 can wirelessly charge the mobile phone 1901 .
  • the wireless charger 1902 can also wirelessly charge other electronic devices, such as tablet computers, wristbands, watches, earphones, keyboards, styluses, notebook computers, electric toothbrushes and other portable electronic devices.
  • the embodiments of the present application take a mobile phone 1901 as an example for description.
  • the wireless charger 1902 can send the charging status request data packet to the mobile phone 1901 through the wireless Qi protocol, and then can obtain the charging status information of the mobile phone 1901 from the mobile phone 1901 .
  • the wireless charger 1902 may correspond to the power supply device 410 in FIG. 6
  • the mobile phone 1901 may correspond to the power receiving device 420 in FIG. 6 .
  • the wireless charger 1902 can display the charging status information of the mobile phone 1901 . As shown in FIG. 19 , the wireless charger 1902 can display on the display interface that the current battery level of the mobile phone 1901 is 51%. The display interface of the wireless charger 1902 can also display other charging status information of the mobile phone 1901, such as charging voltage, charging current, charging input power, charging internal resistance, charging temperature, battery health status, total battery capacity, number of charging and discharging cycles, wireless Charging energy efficiency ratio (ie wireless charging energy conversion efficiency), device identification, etc.
  • the user can learn the charging status information of the mobile phone 1902 by observing the display interface of the wireless charger 1902 . Therefore, during the wireless charging process, the user does not need to wake up the mobile phone 1901 frequently to check the charging status of the mobile phone 1901 . On the one hand, it is beneficial to reduce the number of interruptions of wireless charging (because the user does not need to remove the mobile phone from the wireless charger to observe the current power of the mobile phone). On the other hand, it is beneficial to reduce the power consumption of the mobile phone during the wireless charging process.
  • the wireless charging method provided by the embodiments of the present application is beneficial to improve the charging performance or the use performance of the power supply device, and also helps to improve the security in a wireless charging scenario.
  • FIG. 20 shows a schematic flowchart of a method 2000 for wireless charging according to an embodiment of the present application.
  • the method 2000 can be implemented by the above-mentioned power supply device and power receiving device.
  • the method 2000 includes:
  • a power supply device sends a charging state request data packet to a power receiving device through a wireless charging chip, where the charging state request data packet is used to request n pieces of charging state information of the power receiving device, wherein the n charging states
  • the information includes at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, number of charging and discharging cycles, wireless charging energy efficiency ratio, equipment identifier, n is an integer greater than or equal to 1.
  • the power receiving device receives a charging state request data packet from the power supply device through the wireless charging chip, where the charging state request data packet is used to request n pieces of charging state information of the power receiving device.
  • the charging state request data packet may include, for example, a first preamble, a first header, a first packet, and a first checksum.
  • the first header may be used to indicate the data amount (, the data packet type of the first packet.
  • the first header may include the command character "0xa8" or "0xa9", and the data packet type indicated by "0xa8” or "0xa9”
  • a data packet may be requested for the charging state, and the data amount of the first packet indicated by "0xa8” or "0xa9” may be a bytes.
  • the charging state request data packet includes n command symbols corresponding to the n charging state information one-to-one, and the n command symbols are carried in the header or message of the charging state request data packet. middle.
  • the first message may include a first command symbol, a second command symbol, ..., an nth command symbol, wherein the first command symbol may correspond to the first charging state information, and the second command symbol may correspond to the second charging state information , whereas, the nth command symbol may correspond to the nth charge state information.
  • the command character of the first packet may be represented by, for example, "0xXX", and "0xXX” may take a value of 0x00-0xFF.
  • 0x11 can correspond to the charging front-end voltage
  • 0x12 can correspond to the battery terminal voltage
  • 0x13 can correspond to the charging front-end current
  • 0x14 can correspond to the battery terminal current
  • 0x15 can correspond to the charging internal resistance
  • 0x16 can correspond to the current power
  • 0x17 Can correspond to wireless reverse charging input power
  • 0x18 can correspond to charging temperature
  • 0x19 can correspond to battery health status
  • 0x20 can correspond to current operating frequency
  • 0x21 can correspond to total battery capacity
  • 0x22 can correspond to the number of charge-discharge cycles
  • 0x23 can correspond to the wireless charging energy efficiency ratio
  • 0x24 can correspond to the device type
  • 0x25 can correspond to the device sub-model. It should be understood that the specific command symbols
  • the charging state request data packet includes a first type of command symbol, the first type of command symbol corresponds to a first type of charging state information, and the first type of charging state information includes the n charging states information, the first type of command symbol is carried in the header or message of the charging state request data packet.
  • the first type of command symbol may be used to identify the first type of charge state information.
  • the first type of charge state information is dynamic charge state information or static charge state information.
  • Dynamic state-of-charge information may refer to state-of-charge information that typically changes during charging.
  • the dynamic charging status information may include charging voltage, charging current, charging internal resistance, charging input power, current power, charging temperature, battery health status, and the like.
  • Static state-of-charge information may refer to state-of-charge information that generally does not change during charging.
  • the static state of charge information may include total battery capacity, number of charge and discharge cycles, wireless charging energy efficiency ratio, device identification, and the like.
  • the state-of-charge request data is used to indicate a target period, and the target period is a feedback period of the n pieces of state-of-charge information.
  • the power supply device may request the power receiving device to feed back n pieces of charging state information according to the target period through the charging state request data packet.
  • the power receiving device may periodically send n pieces of charging state information to the power supply device according to the charging state request data packet.
  • the charging state request data packet and the charging state feedback data packet are both data packets of the wireless charging Qi protocol.
  • the wireless Qi protocol is different from the Bluetooth protocol and the wireless local area network protocol.
  • the power supply device 410 and the power receiving device 420 always need to interact through the wireless Qi protocol to maintain the wireless Qi protocol. Normal wireless charging status.
  • the Bluetooth protocol and the wireless local area network protocol are not necessarily used for the power supply device 410 and the power receiving device 420 . If the power receiving device 420 does not have the Bluetooth function or the wireless LAN function, the power receiving device 420 will not be able to provide the power supply device 410 with the charging status information of the power receiving device 420 through the Bluetooth protocol or the wireless LAN protocol. Then, the usage performance of the power supply device 410 may be degraded.
  • the transmission of charging status information through Bluetooth protocol, wireless local area network protocol, etc. will involve interaction and cooperation between multiple modules (such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules) (such as the need to The data packets of the Bluetooth protocol are converted to the data packets of the wireless Qi protocol). This may consume more data processing resources.
  • modules such as Bluetooth radio frequency module, memory, processor, wireless charging chip, battery and other modules
  • the power receiving device sends, through the wireless charging chip, a charging state feedback data packet to the power supply device, where the charging state feedback data packet includes the n pieces of charging state information.
  • the power supply device receives a charging state feedback data packet from the power receiving device through the wireless charging chip, and the charging state feedback data packet includes the n pieces of charging state information.
  • the charging state feedback data packet may include, for example, a preamble, a second header, a second message, and a second checksum.
  • the second header may be used to indicate the data volume and data packet type of the second packet.
  • the second header may include the command character "0xnf", the type of the data packet indicated by "0xnf" may be, for example, a charging status feedback data packet, and the data amount of the second packet indicated by "0xnf" may be n bytes .
  • the second message may include, for example, first charging state information, second charging state information, . . . , and nth charging state information.
  • the first charging state information, the second charging state information, . . . , and the nth charging state information may respectively occupy n bytes of the second packet.
  • the method further includes:
  • the power supply device reduces the charging output power.
  • the power supply device can determine whether it is necessary to wirelessly (reversely) charge the power receiving device according to the charging status information of the power receiving device, or can determine whether the battery of the power receiving device is There may be a charging hazard.
  • the power supply equipment can improve the safety of wireless reverse charging by reducing the charging output power step by step, which is conducive to taking into account the wireless reverse charging function and the safety of wireless reverse charging.
  • the method further includes:
  • the power supply device stops wireless reverse charging of the power receiving device.
  • the power supply device can determine whether it is necessary to wirelessly reverse charge the power receiving device according to the charging status information of the power receiving device, or can determine whether the battery of the power receiving device may exist Hazardous charging.
  • the power supply equipment can automatically stop charging to improve the safety of wireless reverse charging, which is conducive to taking into account the wireless reverse charging function and the safety of wireless reverse charging.
  • the first preset condition includes at least one of the following:
  • the current power of the power receiving device is greater than the preset power off-charge
  • the charging temperature of the power receiving device is greater than the preset charging temperature
  • the wireless charging energy efficiency ratio of the power receiving device is less than the preset energy consumption ratio
  • the battery health index of the power receiving device is less than a preset health score
  • the device identification of the power receiving device belongs to the device blacklist.
  • the preset charge-stopping amount may correspond to the “charge-stopping amount of the peer device” in the examples shown in FIG. 8 , FIG. 11 , and FIG. 14 .
  • the power supply device when the power of the power supply device is greater than the amount of power off the peer device, or when the power of the power supply device rises to the amount of power off the peer device, the power supply device can automatically stop charging. operation, or reduce the charging output power to the first output power.
  • the preset charge-off capacity may be, for example, 90%.
  • the power supply device may reduce the charging output power of the power supply device to the first output power.
  • the first output power is zero or close to zero, which can be equivalent to the power supply device automatically turning off the wireless reverse charging function.
  • the wireless charging energy efficiency ratio is less than the preset energy consumption ratio may correspond to "the difference between the reverse charging output power and the charging input power is greater than the preset power" in the examples shown in FIGS. 13 and 14 .
  • the power supply device can automatically stop charging, or reduce the charging output power to the first output power.
  • the power supply device can automatically stop charging, or reduce the charging output power to the first output power.
  • the power supply device may acquire the device identification of the power receiving device from the power receiving device, and determine whether the device identification belongs to the device blacklist. If so, the power supply device may perform an operation of automatically stopping charging, or reduce the charging output power to the first output power.
  • the method further includes:
  • the power supply device displays a first parameter control
  • the power supply device modifies any one of the following parameters in response to an operation acting on the first parameter control: the preset off-charging amount, the preset charging temperature, the preset energy consumption ratio, the preset Health score, blacklist of said devices.
  • the power supply device may display a user interface 800, which may include parameter controls 804-805.
  • the power supply device can respond to the user's gesture operations (such as clicking, etc.) on the parameter controls 804 to 805, and a series of subsequent gesture operations (such as sliding, inputting characters, etc.), so as to adjust the charging capacity of the peer device and the device blacklist.
  • the user interface 800 may further include parameter controls corresponding to the preset charging temperature, the preset energy consumption ratio, and the preset health score.
  • the method further includes: the power supply device displays charging estimation information, and the charging estimation information is determined by charging state information of the power receiving device.
  • the estimated charging time can be the estimated time required for the power supply equipment to be fully charged with the power receiving equipment.
  • the estimated power consumption of the machine can be the estimated power consumption of the receiving device when the power supply device is fully charged.
  • the wireless reverse charging window 1501 may include the estimated charging time (30 minutes) of the power receiving device, and the estimated power consumption (20%) of the local device.
  • the charging estimation information includes at least one of the following: estimated full time and estimated power consumption of the device.
  • the estimated charging time can be determined according to, for example, the charging current of the power receiving device, the total battery capacity, the current power level, the number of charging and discharging cycles, etc.:
  • the estimated power consumption of the machine can be determined according to the total battery capacity, current power, number of charge and discharge cycles, and wireless charging energy efficiency ratio of the power receiving device:
  • soc is the current power
  • fcc is the total capacity of the battery
  • cur is the charging current
  • ratio is the wireless charging energy efficiency ratio
  • the aging factor can be obtained based on the number of charging and discharging cycles and through modeling evaluation.
  • the method further includes: displaying, by the power supply device, charging status information of the power receiving device.
  • the power supply device may display the charging status information of the power receiving device on the user interface.
  • the power supply device may display the current power (50%), charging voltage (4100mV), total battery capacity (200mAh), and charging current (400mA) of the power receiving device on the user interface 1500 .
  • the power receiving device is a Bluetooth headset
  • the Bluetooth headset includes a headset box battery, a left headset battery, and a right headset battery
  • the charging status information of the power receiving device includes the current power of the headset box battery, The current power of the left earphone battery, the current power of the right earphone battery.
  • the power supply device may display the current charge of the left earphone battery (40%), the current charge of the right earphone battery (42%), and the current charge of the earphone case battery (72%) on the user interface 1600 .
  • the method further includes:
  • the power supply device reduces the charging output power, or stops wireless reverse charging for the power receiving device.
  • the power supply device can determine whether it is necessary to wirelessly reversely charge the power receiving device according to the charging state information of the power supply device.
  • the power supply equipment can improve the performance of the power supply equipment by gradually reducing the charging output power or automatically stopping the charging.
  • the second preset condition includes at least one of the following:
  • the current power of the power supply equipment reaches or is less than the power off-charging capacity of the machine
  • the single power consumption of the power supply device reaches or exceeds the single power consumption limit.
  • the power supply device when the current power of the power supply device is less than the power-off capacity of the local machine, or the current power of the power-supply device is reduced to the power-off-charge capacity of the local machine, the power supply device can perform automatic charging.
  • the charging capacity of the local machine may be, for example, 40%.
  • the power supply device can automatically stop charging, or reduce the charging output power to the first output power .
  • the single power consumption limit may be, for example, 20%.
  • the method further includes:
  • the power supply device displays a second parameter control
  • the power supply device modifies any one of the following parameters: the amount of the local machine to stop charging and the limit of the single power consumption.
  • the power supply device may display a user interface 800 that may include parameter controls 802-803.
  • the power supply device can respond to the user's gesture operations (such as clicking, etc.) on the parameter controls 802 to 803 and a series of subsequent gesture operations (such as sliding, inputting characters, etc.), so as to adjust the amount of power off and the limit of single power consumption. .
  • the method further includes:
  • the power supply device sends the charging state information of the power receiving device and the charging state information of the power supply device to the monitoring device;
  • Receive instruction information from the monitoring device the instruction information instructing the power supply device to adjust the charging output power, or to stop wireless reverse charging of the power receiving device.
  • the mobile phone 1701 may display a user interface 1800 , and the user interface 1800 may include the current battery level of the tablet computer 1704 and the current battery level of the stylus 1705 .
  • User interface 1800 may also include controls 1802 corresponding to tablet 1704 , and/or controls 1802 corresponding to stylus 1705 .
  • the mobile phone 1701 can control the tablet computer 1704 to adjust the charging output power of the stylus 1705 , or stop wirelessly charging the stylus 1705 .
  • FIG. 21 shows a schematic flowchart of a method 2100 for wireless charging according to an embodiment of the present application.
  • the method 2100 can be implemented by the above-mentioned monitoring device.
  • the method 2100 includes:
  • the monitoring device displays a user interface, where the user interface includes charging state information of the power supply device, charging state information of the power receiving device, and a target control, where the target control corresponds to the power supply device or the power receiving device.
  • the monitoring device in response to the target operation acting on the target control, sends instruction information to the power supply device, where the instruction information is used to instruct the power supply device to adjust the charging output power, or to stop the wireless connection for the power receiving device. Reverse charging.
  • a mobile phone 1701 can display a user interface 1800 .
  • the user interface 1800 can include the current battery level of the tablet computer 1704 and the current battery level of the stylus 1705 .
  • User interface 1800 may also include controls 1802 corresponding to tablet 1704 , and/or controls 1802 corresponding to stylus 1705 .
  • the mobile phone 1701 can control the tablet computer 1704 to adjust the charging output power of the stylus 1705 , or stop wirelessly charging the stylus 1705 .
  • FIG. 22 shows a schematic block diagram of an apparatus 2200 provided by an embodiment of the present application.
  • the apparatus 2200 can be set in the above-mentioned power supply device 410 or the wireless charging chip of the power supply device 410.
  • the device 2200 includes: a sending unit 2210, configured to send a charging state request data packet to the power receiving device, the charging state request data packet for requesting n pieces of charge state information of the power receiving device; the receiving unit 2220 is configured to receive a charge state feedback data packet from the power receiving device, the charge state feedback data packet including the n pieces of charge state information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Number of times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • FIG. 23 shows a schematic block diagram of an apparatus 2300 provided by an embodiment of the present application.
  • the apparatus 2300 may be provided in the above-mentioned power receiving device 420 or the wireless charging chip of the power receiving device 420, and the apparatus 2300 includes: a receiving unit 2310, configured to receive a charging state request data packet from the power supply device, the charging state request data packet is used to request n pieces of charging status information of the power receiving device; the sending unit 2320 is configured to send a charging status feedback data packet to the power supply device, where the charging status feedback data packet includes the n charging status information,
  • the n pieces of charging state information include at least one of the following: charging voltage, charging current, charging internal resistance, current power, charging input power, charging temperature, battery health index, current operating frequency, total battery capacity, charging and discharging cycle Times, wireless charging energy efficiency ratio, device identification, n is an integer greater than or equal to 1.
  • FIG. 24 shows a schematic block diagram of an apparatus 2300 provided by an embodiment of the present application.
  • the apparatus 2300 can be set in the above-mentioned monitoring equipment, and the apparatus 2300 includes: a display unit 2410 for displaying a user interface, where the user interface includes the charging status information of the power supply equipment, the charging status information of the power receiving equipment, the target control, the target control corresponds to the power supply device or the power receiving device; the sending unit 2420 is configured to respond to the target operation acting on the target control, and send indication information to the power supply device, and the indication information uses It is used to instruct the power supply device to adjust the charging output power, or to stop wireless reverse charging for the power receiving device.
  • FIG. 25 shows a schematic structural diagram of an electronic device 2500 provided by an embodiment of the present application.
  • the electronic device includes: one or more processors 2510, one or more memories 2520, and the one or more memories 2520 store one or more computer programs, and the one or more computer programs include instruction.
  • the instruction is executed by the one or more processors 2510, the electronic device 2500 is made to execute the technical solution on any device side of the power supply device, the power receiving device, and the monitoring device in the above embodiments.
  • An embodiment of the present application provides a system including a power supply device and a power receiving device, and the system is used to implement the technical solutions in the foregoing embodiments.
  • the implementation principle and technical effect thereof are similar to the related embodiments of the above method, and are not repeated here.
  • An embodiment of the present application provides a computer program product, which enables the power supply device to execute the technical solutions in the foregoing embodiments when the computer program product is running on a power supply device.
  • the implementation principle and technical effect thereof are similar to the related embodiments of the above method, and are not repeated here.
  • the embodiments of the present application provide a computer program product, which enables the power receiving device to execute the technical solutions in the foregoing embodiments when the computer program product runs on a power receiving device.
  • the implementation principle and technical effect thereof are similar to the related embodiments of the above method, and are not repeated here.
  • the embodiments of the present application provide a computer program product, which enables the monitoring device to execute the technical solutions in the foregoing embodiments when the computer program product is running on the monitoring device.
  • the implementation principle and technical effect thereof are similar to the related embodiments of the above method, and are not repeated here.
  • An embodiment of the present application provides a readable storage medium, where the readable storage medium contains instructions, when the instructions are executed on a power supply device, the power supply device is caused to execute the technical solutions of the foregoing embodiments.
  • the implementation principle and technical effect thereof are similar, and are not repeated here.
  • An embodiment of the present application provides a readable storage medium, where the readable storage medium contains instructions, when the instructions are executed on a power receiving device, the power receiving device causes the power receiving device to execute the technical solutions of the foregoing embodiments.
  • the implementation principle and technical effect thereof are similar, and are not repeated here.
  • An embodiment of the present application provides a readable storage medium, where the readable storage medium contains instructions, when the instructions are executed on a monitoring device, the monitoring device is caused to execute the technical solutions of the foregoing embodiments.
  • the implementation principle and technical effect thereof are similar, and are not repeated here.
  • An embodiment of the present application provides a chip, which is used for executing an instruction, and when the chip is running, executes the technical solutions in the foregoing embodiments.
  • the implementation principle and technical effect thereof are similar, and are not repeated here.
  • the disclosed system, apparatus and method may be implemented in other manners.
  • the apparatus embodiments described above are only illustrative.
  • the division of the units is only a logical function division. In actual implementation, there may be other division methods.
  • multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not implemented.
  • the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of devices or units, and may be in electrical, mechanical or other forms.
  • the units described as separate components may or may not be physically separated, and components displayed as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution in this embodiment.
  • each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
  • the functions, if implemented in the form of software functional units and sold or used as independent products, may be stored in a computer-readable storage medium.
  • the technical solution of the present application can be embodied in the form of a software product in essence, or the part that contributes to the prior art or the part of the technical solution.
  • the computer software product is stored in a storage medium, including Several instructions are used to cause a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present application.
  • the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disk and other media that can store program codes .

Abstract

一种无线充电的方法、系统,以及供电设备(410)、电力接收设备(420)、监控设备。供电设备(410)的无线充电芯片(143)与电力接收设备(420)的无线充电芯片(243)可以交互电力接收设备(420)的充电状态信息。供电设备(410)可以根据电力接收设备(420)的充电状态信息,自主调整无线充电模式。这有利于提高无线充电过程中的安全性,也有利于维持供电设备(410)的使用性能。

Description

无线充电的方法、设备以及系统
本申请要求于2021年1月7日提交中国专利局、申请号为202110020009.9、申请名称为“一种充电方法”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请要求于2021年1月22日提交中国专利局、申请号为202110088869.6、申请名称为“无线充电的方法、设备以及系统”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及电子设备领域,并且更具体地,涉及一种无线充电的方法、设备以及系统。
背景技术
无线充电技术可以方便电子设备充电。当电子设备的充电线圈与无线充电器对齐后,无线充电底座发射的磁信号可以使该充电线圈产生感应电流,进而可以为电子设备的电池充电。
在无线充电技术的基础上又发展出无线反向充电技术。也就是说,具有无线充电功能的电子设备可以为其他具有无线充电功能的电子设备充电。例如,电子设备1的电池1可以为充电线圈1供电并产生磁信号,电子设备1的充电线圈1可以与电子设备2的充电线圈2对齐,从而充电线圈1产生的磁信号可以使电子设备2的充电线圈2产生感应电流,进而电子设备1可以为电子设备2的电池2充电。作为提供电能的一方,电子设备1的无线充电性能应当被关注。
发明内容
本申请提供一种无线充电的方法、设备以及系统,目的是提升电子设备的无线充电性能。
第一方面,提供了一种无线充电的方法,包括:
供电设备通过无线充电芯片,向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
所述供电设备通过所述无线充电芯片,从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
在本申请中,供电设备可以通过无线充电芯片与电力接收设备交互该电力接收设备的充电状态信息,有利于减少在供电设备与电力接收设备交互过程中涉及到的硬件数量,有利于减小无线充电过程中不必要的耗能。另外,供电设备获取到电力接收设备的充电状态 信息,有利于合理调整无线充电模式,进而有利于提升供电设备的使用性能以及电力接收设备的充电性能。
结合第一方面,在第一方面的某些实现方式中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
所述供电设备降低充电输出功率。
在本申请中,供电设备可以根据电力接收设备的充电状态信息,判断是否有必要为电力接收设备无线(反向)充电,或者可以判断电力接收设备的电池是否可能存在充电隐患。供电设备可以通过逐级减小充电输出功率的方式,提升无线反向充电的安全性,进而有利于兼顾无线反向充电功能以及无线反向充电安全。逐级减小充电输出功率的方式通常可以具有相对较强的灵活性。
结合第一方面,在第一方面的某些实现方式中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
所述供电设备停止为所述电力接收设备无线反向充电。
在本申请中,供电设备可以根据电力接收设备的充电状态信息,判断是否有必要为电力接收设备无线反向充电,或者可以判断电力接收设备的电池是否可能存在充电隐患。供电设备可以通过自动停充的方式,提升无线反向充电的安全性,进而有利于兼顾无线反向充电功能以及无线反向充电安全。自动停充的方式通常可以具有相对较高的安全性。
结合第一方面,在第一方面的某些实现方式中,所述第一预设条件包括以下至少一项:
所述电力接收设备的当前电量大于预设停充电量;
所述电力接收设备的充电温度大于预设充电温度;
所述电力接收设备的无线充电能效比小于预设能耗比;
所述电力接收设备的电池健康指数小于预设健康分数;
所述电力接收设备的设备标识属于设备黑名单。
在电力接收设备的剩余电量相对足够的情况下,电力接收设备的待机时间可以相对较长。通过关闭无线反向充电功能或降低充电输出功率,可以降低供电设备的耗电量,进而有利于提升供电设备的待机时间。
如果电力接收设备的充电温度越高,电力接收设备的电池342存在充电隐患的概率越大。通过关闭无线反向充电功能或降低充电输出功率,有利于兼顾无线反向充电功能以及无线反向充电安全。
“无线充电能效比小于预设能耗比”可以对应“反向充电输出功率与充电输入功率的差值大于预设功率”。如果反向充电输出功率与充电输入功率的差值大于预设功率,可以意味着无线反向充电过程中的电能损耗相对较大,可能的原因例如可以是漏电等,即可能存在安全隐患。通过关闭无线反向充电功能或降低充电输出功率,有利于提高无线反向充电的安全性。另外,在一些可能的场景中,电力接收设备向供电设备反馈功率,目的通常是指示供电设备提供合适的无线反充功率,例如在电力接收设备电量即将充满时,电力接收设备可以向供电设备发送功率指示信息,指示供电设备降低输出功率。但是这一功率指示信息并不能反映电力接收设备实际接收到的功率,也无法反映无线反向充电过程中是否存在安全隐患。
如果电池健康状态对应的分数低于预设健康分数,则供电设备可以判断电力接收设备 的电池当前处于非健康充电状态。通过关闭无线反向充电功能或降低充电输出功率,有利于提高无线反向充电的安全性。
电力接收设备的充电性能可能会严重影响供电设备的使用性能。通过判断电力接收设备的设备标识是否属于设备黑名单,有利于维持供电设备的使用性能。
结合第一方面,在第一方面的某些实现方式中,所述方法还包括:
所述供电设备显示第一参数控件;
所述供电设备响应作用于所述第一参数控件的操作,修改以下任一项参数:所述预设停充电量、所述预设充电温度、所述预设能耗比、所述预设健康分数、所述设备黑名单。
显示界面可以包括参数控件。用户可以通过作用在参数控件上的一系列手势操作,调整供电设备降低充电输出功率或自动停充的预设条件。本申请提供的方法具有相对较优的用户体验感。
结合第一方面,在第一方面的某些实现方式中,所述方法还包括:
所述供电设备显示充电预估信息,所述充电预估信息由所述电力接收设备的充电状态信息确定。
在本申请中,供电设备可以对电力接收设备的充电状态信息进行处理,得到能够相对直观反映当前无线充电状态的数据。本申请提供的方法具有相对较优的用户体验感。
结合第一方面,在第一方面的某些实现方式中,所述充电预估信息包括以下至少一项:预估充满时间、本机预估消耗电量。
结合第一方面,在第一方面的某些实现方式中,所述方法还包括:
所述供电设备显示所述电力接收设备的充电状态信息。
在本申请中,供电设备可以动态显示电力接收设备的充电状态信息,以提供用户获知当前无线充电状态的灵活性。
结合第一方面,在第一方面的某些实现方式中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述电力接收设备的充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
当蓝牙耳机放置在耳机盒内时,蓝牙耳机通常处于关机状态,蓝牙耳机通常无法通过蓝牙通信模块与周围设备交互。通过无线充电芯片交互蓝牙耳机的充电状态信息,使得用户可以通过供电设备获知蓝牙耳机的充电状态,进而有利于提高蓝牙耳机在无线充电过程中的用户体验感。
结合第一方面,在第一方面的某些实现方式中,所述方法还包括:
所述供电设备向监控设备发送所述电力接收设备的充电状态信息以及所述供电设备的充电状态信息;
所述供电设备从所述监控设备接收指示信息,所述指示信息指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
用户可以通过监控设备获知供电设备与电力接收设备之间的无线充电状况。这样有利于减少无线充电被打断的次数(因为用户不需要切断供电设备与电力接收设备之间的无线充电关系,就可以了解当前无线充电状态)。另外,还有利于减少供电设备、电力接收设备在无线充电过程中的电量消耗。并且,用户可以通过监控设备控制供电设备调整无线充 电模式,具有较强的灵活性。
结合第一方面,在第一方面的某些实现方式中,在所述供电设备的充电状态信息满足第二预设条件的情况下,所述方法还包括:
所述供电设备降低充电输出功率,或停止为所述电力接收设备无线反向充电。
在本申请中,供电设备可以根据供电设备的充电状态信息,判断是否有必要为电力接收设备无线反向充电。供电设备可以通过自动停充或降低充电输出功率的方式,提升供电设备的待机时间,也有利于维持供电设备的其他元器件的正常工作。
结合第一方面,在第一方面的某些实现方式中,所述第二预设条件包括以下至少一项:
所述供电设备的当前电量达到或小于本机停充电量;
所述供电设备的单次耗电量达到或大于单次耗电限量。
在供电设备自身的剩余电量不足的情况下,供电设备可以通过关闭无线反向充电功能或降低充电输出功率,来降低自身的耗电量,进而有利于提升供电设备的待机时间。
在供电设备自身电量消耗过大的情况下,供电设备可以通过关闭无线反向充电功能或降低充电输出功率,来降低自身的耗电量,进而有利于提升供电设备的待机时间,也有利于维持供电设备的其他元器件的正常工作。
结合第一方面,在第一方面的某些实现方式中,所述方法还包括:
所述供电设备显示第二参数控件;
所述供电设备响应作用于所述第二参数控件的操作,修改以下任一项参数:所述本机停充电量、所述单次耗电限量。
显示界面可以包括参数控件。用户可以通过作用在参数控件上的一系列手势操作,调整供电设备降低充电输出功率或自动停充的预设条件。本申请提供的方法具有相对较优的用户体验感。
结合第一方面,在第一方面的某些实现方式中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
通过约定与充电状态信息对应的命令符,有利于节省无线充电数据包的开销。
结合第一方面,在第一方面的某些实现方式中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息,所述第一类命令符承载于所述充电状态请求数据包的报头或报文中。
通过约定与某一类充电状态信息对应的命令符,有利于节省无线充电数据包的开销。
结合第一方面,在第一方面的某些实现方式中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
在一次无线充电过程中,静态充电状态信息通常不会发生明显的变化,因此将静态充电状态信息与动态充电状态信息区分开,有利于节省无线充电数据包的开销。
结合第一方面,在第一方面的某些实现方式中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
通过约定充电状态信息的反馈周期,有利于节省无线充电数据包的开销。
结合第一方面,在第一方面的某些实现方式中,所述充电状态请求数据包、所述充电 状态反馈数据包均为无线充电Qi协议的数据包。
无线Qi协议与蓝牙协议、无线局域网协议不同。在供电设备为电力接收设备无线反向充电的过程中,供电设备与电力接收设备之间始终需要通过无线Qi协议进行交互,以维持正常的无线充电状态。而蓝牙协议、无线局域网协议对于供电设备、电力接收设备而言不是必须使用的。如果电力接收设备不具有蓝牙功能、无线局域网功能,电力接收设备将无法通过蓝牙协议或无线局域网协议,向供电设备提供电力接收设备的充电状态信息。那么,供电设备的使用性能可以被降低。
另外,开启短距离通信功能的数量越多,电子设备的耗电量也就越大(需要时刻维持蓝牙链接或无线局域网链接),这样更加难以兼顾耗电量与无线充电性能。
并且,通过蓝牙协议、无线局域网协议等传输充电状态信息,会涉及到多个模块(例如蓝牙射频模块、存储器、处理器、无线充电芯片、电池等模块)之间的交互、配合(例如需要将蓝牙协议的数据包转换为无线Qi协议的数据包)。这可能会占用较多的数据处理资源。
第二方面,提供了一种无线充电的方法,包括:
电力接收设备通过无线充电芯片,从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
所述电力接收设备通过所述无线充电芯片,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
在本申请中,电力接收设备可以通过无线充电芯片与供电设备交互该电力接收设备的充电状态信息,有利于减少在供电设备与电力接收设备交互过程中涉及到的硬件数量,有利于减小无线充电过程中不必要的耗能。另外,电力接收设备向供电设备提供电力接收设备的充电状态信息,有利于合理调整无线充电模式,进而有利于提升供电设备的使用性能以及电力接收设备的充电性能。
结合第二方面,在第二方面的某些实现方式中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述n个充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
结合第二方面,在第二方面的某些实现方式中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
结合第二方面,在第二方面的某些实现方式中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息。
结合第二方面,在第二方面的某些实现方式中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
结合第二方面,在第二方面的某些实现方式中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
结合第二方面,在第二方面的某些实现方式中,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
第三方面,提供了一种无线充电的方法,包括:
监控设备显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应;
所述监控设备响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
用户可以通过监控设备获知供电设备与电力接收设备之间的无线充电状况。这样有利于减少无线充电被打断的次数(因为用户不需要切断供电设备与电力接收设备之间的无线充电关系,就可以了解当前无线充电状态)。另外,还有利于减少供电设备、电力接收设备在无线充电过程中的电量消耗。并且,用户可以通过监控设备控制供电设备调整无线充电模式,具有较强的灵活性。
第四方面,提供了一种供电设备,包括:
一个或多个处理器;
一个或多个存储器;
所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述供电设备执行:
通过无线充电芯片,向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
通过所述无线充电芯片,从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
结合第四方面,在第四方面的某些实现方式中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述供电设备还执行:
降低充电输出功率。
结合第四方面,在第四方面的某些实现方式中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述供电设备还执行:
停止为所述电力接收设备无线反向充电。
结合第四方面,在第四方面的某些实现方式中,所述第一预设条件包括以下至少一项:
所述电力接收设备的当前电量大于预设停充电量;
所述电力接收设备的充电温度大于预设充电温度;
所述电力接收设备的无线充电能效比小于预设能耗比;
所述电力接收设备的电池健康指数小于预设健康分数;
所述电力接收设备的设备标识属于设备黑名单。
结合第四方面,在第四方面的某些实现方式中,所述供电设备还执行:
显示第一参数控件;
响应作用于所述第一参数控件的操作,修改以下任一项参数:所述预设停充电量、所述预设充电温度、所述预设能耗比、所述预设健康分数、所述设备黑名单。
结合第四方面,在第四方面的某些实现方式中,所述供电设备还执行:
显示充电预估信息,所述充电预估信息由所述电力接收设备的充电状态信息确定。
结合第四方面,在第四方面的某些实现方式中,所述充电预估信息包括以下至少一项:预估充满时间、本机预估消耗电量。
结合第四方面,在第四方面的某些实现方式中,所述供电设备还执行:
显示所述电力接收设备的充电状态信息。
结合第四方面,在第四方面的某些实现方式中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述电力接收设备的充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
结合第四方面,在第四方面的某些实现方式中,所述供电设备还执行:
向监控设备发送所述电力接收设备的充电状态信息以及所述供电设备的充电状态信息;
从所述监控设备接收指示信息,所述指示信息指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
结合第四方面,在第四方面的某些实现方式中,在所述供电设备的充电状态信息满足第二预设条件的情况下,所述供电设备还执行:
降低充电输出功率,或停止为所述电力接收设备无线反向充电。
结合第四方面,在第四方面的某些实现方式中,所述第二预设条件包括以下至少一项:
所述供电设备的当前电量达到或小于本机停充电量;
所述供电设备的单次耗电量达到或大于单次耗电限量。
结合第四方面,在第四方面的某些实现方式中,所述供电设备还执行:
显示第二参数控件;
响应作用于所述第二参数控件的操作,修改以下任一项参数:所述本机停充电量、所述单次耗电限量。
结合第四方面,在第四方面的某些实现方式中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
结合第四方面,在第四方面的某些实现方式中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息,所述第一类命令符承载于所述充电状态请求数据包的报头或报文中。
结合第四方面,在第四方面的某些实现方式中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
结合第四方面,在第四方面的某些实现方式中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
结合第四方面,在第四方面的某些实现方式中,所述充电状态请求数据包、所述充电 状态反馈数据包均为无线充电Qi协议的数据包。
第五方面,提供了一种电力接收设备,包括:
一个或多个处理器;
一个或多个存储器;
所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述电力接收设备执行:
通过无线充电芯片,从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
通过所述无线充电芯片,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
结合第五方面,在第五方面的某些实现方式中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述n个充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
结合第五方面,在第五方面的某些实现方式中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
结合第五方面,在第五方面的某些实现方式中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息。
结合第五方面,在第五方面的某些实现方式中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
结合第五方面,在第五方面的某些实现方式中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
结合第五方面,在第五方面的某些实现方式中,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
第六方面,提供了一种监控设备,包括:
一个或多个处理器;
一个或多个存储器;
所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述监控设备执行:
显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应;
响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
第七方面,提供了一种无线充电的系统,包括供电设备、电力接收设备,其中,
所述供电设备通过无线充电芯片,向所述电力接收设备发送充电状态请求数据包,所 述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
所述电力接收设备通过所述无线充电芯片,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:在所述电力接收设备的充电状态信息满足第一预设条件的情况下,降低充电输出功率。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述供电设备停止为所述电力接收设备无线反向充电。
结合第七方面,在第七方面的某些实现方式中,所述第一预设条件包括以下至少一项:
所述电力接收设备的当前电量大于预设停充电量;
所述电力接收设备的充电温度大于预设充电温度;
所述电力接收设备的无线充电能效比小于预设能耗比;
所述电力接收设备的电池健康指数小于预设健康分数;
所述电力接收设备的设备标识属于设备黑名单。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:
显示第一参数控件;
响应作用于所述第一参数控件的操作,修改以下任一项参数:所述预设停充电量、所述预设充电温度、所述预设能耗比、所述预设健康分数、所述设备黑名单。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:显示充电预估信息,所述充电预估信息由所述电力接收设备的充电状态信息确定。
结合第七方面,在第七方面的某些实现方式中,所述充电预估信息包括以下至少一项:预估充满时间、本机预估消耗电量。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:显示所述电力接收设备的充电状态信息。
结合第七方面,在第七方面的某些实现方式中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述电力接收设备的充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
结合第七方面,在第七方面的某些实现方式中,所述系统还包括监控设备,其中,
所述供电设备还用于:监控设备发送所述电力接收设备的充电状态信息以及所述供电设备的充电状态信息;
所述监控设备还用于:响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:在所述供电设备的充电状态信息满足第二预设条件的情况下,降低充电输出功率,或停止为所述电力接 收设备无线反向充电。
结合第七方面,在第七方面的某些实现方式中,所述第二预设条件包括以下至少一项:
所述供电设备的当前电量达到或小于本机停充电量;
所述供电设备的单次耗电量达到或大于单次耗电限量。
结合第七方面,在第七方面的某些实现方式中,所述供电设备还用于:
显示第二参数控件;
响应作用于所述第二参数控件的操作,修改以下任一项参数:所述本机停充电量、所述单次耗电限量。
结合第七方面,在第七方面的某些实现方式中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
结合第七方面,在第七方面的某些实现方式中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息,所述第一类命令符承载于所述充电状态请求数据包的报头或报文中。
结合第七方面,在第七方面的某些实现方式中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
结合第七方面,在第七方面的某些实现方式中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
结合第七方面,在第七方面的某些实现方式中,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
第八方面,提供了一种装置,该装置包括:发送单元,用于通过无线充电协议,向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;接收单元单元,用于通过无线充电协议,从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
第九方面,提供了一种装置,该装置包括:接收单元,用于通过无线充电协议,从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;发送单元,用于通过无线充电协议,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
第十方面,提供了一种装置,该装置包括:显示单元,用于显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应;发送单元,用于响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调 整充电输出功率,或停止为所述电力接收设备无线反向充电。
第十一方面,提供了一种包含指令的计算机程序产品,当所述计算机程序产品在电子设备上运行时,使得所述电子设备执行第一方面至第三方面的任一种可能的实现方式所述的方法。
第十二方面,提供了一种计算机可读存储介质,包括指令,当所述指令在电子设备上运行时,使得所述电子设备执行上述第一方面至第三方面的任一种可能的实现方式所述的方法。
第十三方面,提供了一种芯片用于执行指令,当所述芯片运行时,所述芯片执行上述第一方面至第三方面的任一种可能的实现方式所述的方法。
附图说明
图1是本申请实施例提供的一种电子设备的硬件结构示意图。
图2是本申请实施例提供的一种电子设备的软件结构示意图。
图3是本申请实施例提供的一种应用场景的示意图。
图4是本申请实施例提供的一种设备交互的示意图。
图5是本申请实施例提供的一种无线充电协议数据包的示意图。
图6是本申请实施例提供的一种无线充电的方法的示意性流程图。
图7是本申请实施例提供的一种用户界面图。
图8是本申请实施例提供的一种用户界面图。
图9是本申请实施例提供的一种无线充电的方法的示意性流程图。
图10是本申请实施例提供的一种无线充电的方法的示意性流程图。
图11是本申请实施例提供的一种无线充电的方法的示意性流程图。
图12是本申请实施例提供的一种无线充电的方法的示意性流程图。
图13是本申请实施例提供的一种无线充电的方法的示意性流程图。
图14是本申请实施例提供的一种无线充电的方法的示意性流程图。
图15是本申请实施例提供的一种用户界面图。
图16是本申请实施例提供的一种用户界面图。
图17是本申请实施例提供的一种应用场景的示意图。
图18是本申请实施例提供的一种用户界面图。
图19是本申请实施例提供的一种应用场景的示意图。
图20是本申请实施例提供的一种无线充电的方法的示意性流程图。
图21是本申请实施例提供的一种无线充电的方法的示意性流程图。
图22是本申请实施例提供的一种无线充电的装置的示意性结构图。
图23是本申请实施例提供的一种无线充电的装置的示意性结构图。
图24是本申请实施例提供的一种无线充电的装置的示意性结构图。
图25是本申请实施例提供的一种电子设备的示意性结构图。
具体实施方式
下面将结合附图,对本申请中的技术方案进行描述。
以下实施例中所使用的术语只是为了描述特定实施例的目的,而并非旨在作为对本申请的限制。如在本申请的说明书和所附权利要求书中所使用的那样,单数表达形式“一个”、“一种”、“所述”、“上述”、“该”和“这一”旨在也包括例如“一个或多个”这种表达形式,除非其上下文中明确地有相反指示。还应当理解,在本申请以下各实施例中,“至少一个”、“一个或多个”是指一个、两个或两个以上。术语“和/或”,用于描述关联对象的关联关系,表示可以存在三种关系;例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B的情况,其中A、B可以是单数或者复数。字符“/”一般表示前后关联对象是一种“或”的关系。
在本说明书中描述的参考“一个实施例”或“一些实施例”等意味着在本申请的一个或多个实施例中包括结合该实施例描述的特定特征、结构或特点。由此,在本说明书中的不同之处出现的语句“在一个实施例中”、“在一些实施例中”、“在其他一些实施例中”、“在另外一些实施例中”等不是必然都参考相同的实施例,而是意味着“一个或多个但不是所有的实施例”,除非是以其他方式另外特别强调。术语“包括”、“包含”、“具有”及它们的变形都意味着“包括但不限于”,除非是以其他方式另外特别强调。
以下介绍了本申请实施例提供的电子设备、用于这样的电子设备的用户界面、和用于使用这样的电子设备的实施例。在一些实施例中,电子设备可以是还包含其它功能诸如个人数字助理和/或音乐播放器功能的便携式电子设备,诸如手机、平板电脑、具备无线通讯功能的可穿戴电子设备(如智能手表)等。便携式电子设备的示例性实施例包括但不限于搭载
Figure PCTCN2021136398-appb-000001
或者其它操作系统的便携式电子设备。上述便携式电子设备也可以是其它便携式电子设备,诸如膝上型计算机(Laptop)等。还应当理解的是,在其他一些实施例中,上述电子设备也可以不是便携式电子设备,而是台式计算机。
示例性的,图1示出了电子设备100的结构示意图。本申请实施例提供的方法例如可以通过图1所示的硬件单元实现。
电子设备100可以包括处理器110,外部存储器接口120,内部存储器121,通用串行总线(universal serial bus,USB)接口130,无线充电模组131,充电管理模块140,电源管理模块141,电池142,天线1,天线2,移动通信模块150,无线通信模块160,音频模块170,扬声器170A,受话器170B,麦克风170C,耳机接口170D,摄像头193,显示屏194,以及用户标识模块(subscriber identification module,SIM)卡接口195等。
可以理解的是,本申请实施例示意的结构并不构成对电子设备100的具体限定。在本申请另一些实施例中,电子设备100可以包括比图示更多或更少的部件,或者组合某些部件,或者拆分某些部件,或者不同的部件布置。图示的部件可以以硬件,软件或软件和硬件的组合实现。
处理器110可以包括一个或多个处理单元,例如:处理器110可以包括应用处理器(application processor,AP),调制解调处理器,图形处理器(graphics processing unit,GPU),图像信号处理器(image signal processor,ISP),控制器,视频编解码器,数字信号处理器(digital signal processor,DSP),基带处理器,和/或神经网络处理器(neural-networn processing unit,NPU)等。其中,不同的处理单元可以是独立的部件,也可以集成在一个或多个处理器中。在一些实施例中,电子设备100也可以包括一个或多个处理器110。其中,控制器可以根据指令操作码和时序信号,产生操作控制信号,完成 取指令和执行指令的控制。在其他一些实施例中,处理器110中还可以设置存储器,用于存储指令和数据。示例性地,处理器110中的存储器可以为高速缓冲存储器。该存储器可以保存处理器110刚用过或循环使用的指令或数据。如果处理器110需要再次使用该指令或数据,可从所述存储器中直接调用。这样就避免了重复存取,减少了处理器110的等待时间,因而提高了电子设备100处理数据或执行指令的效率。
在一些实施例中,处理器110可以包括一个或多个接口。接口可以包括集成电路间(inter-integrated circuit,I2C)接口,集成电路间音频(inter-integrated circuit sound,I2S)接口,脉冲编码调制(pulse code modulation,PCM)接口,通用异步收发传输器(universal asynchronous receiver/transmitter,UART)接口,移动产业处理器接口(mobile industry processor interface,MIPI),通用输入输出(general-purpose input/output,GPIO)接口,SIM卡接口,和/或USB接口等。其中,USB接口130是符合USB标准规范的接口,具体可以是Mini USB接口,Micro USB接口,USB Type C接口等。USB接口130可以用于连接充电器为电子设备100充电,也可以用于电子设备100与外围设备之间传输数据。该USB接口130也可以用于连接耳机,通过耳机播放音频。
可以理解的是,本申请实施例示意的各模块间的接口连接关系,只是示意性说明,并不构成对电子设备100的结构限定。在本申请另一些实施例中,电子设备100也可以采用上述实施例中不同的接口连接方式,或多种接口连接方式的组合。
充电管理模块140用于从充电器接收充电输入。其中,充电器可以是无线充电器,也可以是有线充电器。在一些有线充电的实施例中,充电管理模块140可以通过USB接口130接收有线充电器的充电输入。在一些无线充电的实施例中,充电管理模块140可以通过电子设备100的无线充电线圈接收无线充电输入,无线充电线圈可以收容于无线充电模组131中。充电管理模块140为电池142充电的同时,还可以通过电源管理模块141为电子设备供电。
电源管理模块141用于连接电池142,充电管理模块140与处理器110。电源管理模块141接收电池142和/或充电管理模块140的输入,为处理器110,内部存储器121,外部存储器,显示屏194,摄像头193,和无线通信模块160等供电。电源管理模块141还可以用于监测电池容量,电池循环次数,电池健康状态(漏电,阻抗)等参数。在其他一些实施例中,电源管理模块141也可以设置于处理器110中。在另一些实施例中,电源管理模块141和充电管理模块140也可以设置于同一个器件中。
在一种可能的实现方式中,电池142还可以通过电源管理模块141、无线充电线圈等为其他电子设备反向充电。
电子设备100的无线通信功能可以通过天线1,天线2,移动通信模块150,无线通信模块160,调制解调处理器以及基带处理器等实现。
天线1和天线2用于发射和接收电磁波信号。电子设备100中的每个天线可用于覆盖单个或多个通信频带。不同的天线还可以复用,以提高天线的利用率。例如:可以将天线1复用为无线局域网的分集天线。在另外一些实施例中,天线可以和调谐开关结合使用。
移动通信模块150可以提供应用在电子设备100上的包括2G/3G/4G/5G等无线通信的解决方案。移动通信模块150可以包括至少一个滤波器,开关,功率放大器,低噪声放大器(low noise amplifier,LNA)等。移动通信模块150可以由天线1接收电磁波,并对接 收的电磁波进行滤波,放大等处理,传送至调制解调处理器进行解调。移动通信模块150还可以对经调制解调处理器调制后的信号放大,经天线1转为电磁波辐射出去。在一些实施例中,移动通信模块150的至少部分功能模块可以被设置于处理器110中。在一些实施例中,移动通信模块150的至少部分功能模块可以与处理器110的至少部分模块被设置在同一个器件中。
无线通信模块160可以提供应用在电子设备100上的包括无线局域网(wireless local area networns,WLAN)(如无线保真(wireless fidelity,Wi-Fi)网络),蓝牙(bluetooth,BT),全球导航卫星系统(global navigation satellite system,GNSS),调频(frequency modulation,FM),近距离无线通信技术(near field communication,NFC),红外技术(infrared,IR)等无线通信的解决方案。无线通信模块160可以是集成至少一个通信处理模块的一个或多个器件。无线通信模块160经由天线2接收电磁波,将电磁波信号调频以及滤波处理,将处理后的信号发送到处理器110。无线通信模块160还可以从处理器110接收待发送的信号,对其进行调频,放大,经天线2转为电磁波辐射出去。
电子设备100通过GPU,显示屏194,以及应用处理器等实现显示功能。GPU为图像处理的微处理器,连接显示屏194和应用处理器。GPU用于执行数学和几何计算,用于图形渲染。处理器110可包括一个或多个GPU,其执行程序指令以生成或改变显示信息。
显示屏194用于显示图像,视频等。显示屏194包括显示面板。显示面板可以采用液晶显示屏(liquid crystal display,LCD),有机发光二极管(organic light-emitting diode,OLED),有源矩阵有机发光二极体或主动矩阵有机发光二极体(active-matrix organic light emitting diode的,AMOLED),柔性发光二极管(flex light-emitting diode,FLED),Miniled,MicroLed,Micro-oLed,量子点发光二极管(quantum dot light emitting diodes,QLED)等。在一些实施例中,电子设备100可以包括1个或多个显示屏194。
电子设备100的显示屏194可以是一种柔性屏,目前,柔性屏以其独特的特性和巨大的潜力而备受关注。柔性屏相对于传统屏幕而言,具有柔韧性强和可弯曲的特点,可以给用户提供基于可弯折特性的新交互方式,可以满足用户对于电子设备的更多需求。对于配置有可折叠显示屏的电子设备而言,电子设备上的可折叠显示屏可以随时在折叠形态下的小屏和展开形态下大屏之间切换。因此,用户在配置有可折叠显示屏的电子设备上使用分屏功能,也越来越频繁。
电子设备100可以通过ISP,摄像头193,视频编解码器,GPU,显示屏194以及应用处理器等实现拍摄功能。
ISP用于处理摄像头193反馈的数据。例如,拍照时,打开快门,光线通过镜头被传递到摄像头感光元件上,光信号转换为电信号,摄像头感光元件将所述电信号传递给ISP处理,转化为肉眼可见的图像。ISP还可以对图像的噪点,亮度,肤色进行算法优化。ISP还可以对拍摄场景的曝光,色温等参数优化。在一些实施例中,ISP可以设置在摄像头193中。
摄像头193用于捕获静态图像或视频。物体通过镜头生成光学图像投射到感光元件。感光元件可以是电荷耦合器件(charge coupled device,CCD)或互补金属氧化物半导体(complementary metal-oxide-semiconductor,CMOS)光电晶体管。感光元件把光信号转 换成电信号,之后将电信号传递给ISP转换成数字图像信号。ISP将数字图像信号输出到DSP加工处理。DSP将数字图像信号转换成标准的RGB,YUV等格式的图像信号。在一些实施例中,电子设备100可以包括1个或多个摄像头193。
数字信号处理器用于处理数字信号,除了可以处理数字图像信号,还可以处理其他数字信号。例如,当电子设备100在频点选择时,数字信号处理器用于对频点能量进行傅里叶变换等。
视频编解码器用于对数字视频压缩或解压缩。电子设备100可以支持一种或多种视频编解码器。这样,电子设备100可以播放或录制多种编码格式的视频,例如:动态图像专家组(moving picture experts group,MPEG)1,MPEG2,MPEG3,MPEG4等。
NPU为神经网络(neural-networn,NN)计算处理器,通过借鉴生物神经网络结构,例如借鉴人脑神经元之间传递模式,对输入信息快速处理,还可以不断的自学习。通过NPU可以实现电子设备100的智能认知等应用,例如:图像识别,人脸识别,语音识别,文本理解等。
外部存储器接口120可以用于连接外部存储卡,例如Micro SD卡,实现扩展电子设备100的存储能力。外部存储卡通过外部存储器接口120与处理器110通信,实现数据存储功能。例如将音乐,视频等文件保存在外部存储卡中。
内部存储器121可以用于存储一个或多个计算机程序,该一个或多个计算机程序包括指令。处理器110可以通过运行存储在内部存储器121的上述指令,从而使得电子设备100执行本申请一些实施例中所提供的灭屏显示的方法,以及各种应用以及数据处理等。内部存储器121可以包括存储程序区和存储数据区。其中,存储程序区可存储操作系统;该存储程序区还可以存储一个或多个应用(比如图库、联系人等)等。存储数据区可存储电子设备100使用过程中所创建的数据(比如照片,联系人等)等。此外,内部存储器121可以包括高速随机存取存储器,还可以包括非易失性存储器,例如一个或多个磁盘存储部件,闪存部件,通用闪存存储器(universal flash storage,UFS)等。在一些实施例中,处理器110可以通过运行存储在内部存储器121的指令,和/或存储在设置于处理器110中的存储器的指令,来使得电子设备100执行本申请实施例中所提供的灭屏显示的方法,以及其他应用及数据处理。电子设备100可以通过音频模块170,扬声器170A,受话器170B,麦克风170C,耳机接口170D,以及应用处理器等实现音频功能。例如音乐播放,录音等。
图2是本申请实施例的电子设备100的软件结构框图。本申请实施例提供的方法例如可以通过图2所示的软件单元实现。
分层架构将软件分成若干个层,每一层都有清晰的角色和分工。层与层之间通过软件接口通信。在一些实施例中,将Android系统分为四层,从上至下分别为应用程序层,应用程序框架层,安卓运行时(Android runtime)和系统库,以及内核层。应用程序层可以包括一系列应用程序包。
如图2所示,应用程序包可以包括图库,日历,通话,地图,导航等应用程序。
应用程序框架层为应用程序层的应用程序提供应用编程接口(application programming interface,API)和编程框架。应用程序框架层包括一些预先定义的函数。
如图2所示,应用程序框架层可以包括窗口管理器,内容提供器,视图系统,电话管 理器,资源管理器,通知管理器等。
窗口管理器用于管理窗口程序。窗口管理器可以获取显示屏大小,判断是否有状态栏,锁定屏幕,截取屏幕等。
内容提供器用来存放和获取数据,并使这些数据可以被应用程序访问。所述数据可以包括视频,图像,音频,拨打和接听的电话,浏览历史和书签,电话簿等。
视图系统包括可视控件,例如显示文字的控件,显示图片的控件等。视图系统可用于构建应用程序。显示界面可以由一个或多个视图组成的。例如,包括短信通知图标的显示界面,可以包括显示文字的视图以及显示图片的视图。
电话管理器用于提供电子设备100的通信功能。例如通话状态的管理(包括接通,挂断等)。
资源管理器为应用程序提供各种资源,比如本地化字符串,图标,图片,布局文件,视频文件等等。
通知管理器使应用程序可以在状态栏中显示通知信息,可以用于传达告知类型的消息,可以短暂停留后自动消失,无需用户交互。比如通知管理器被用于告知下载完成,消息提醒等。通知管理器还可以是以图表或者滚动条文本形式出现在系统顶部状态栏的通知,例如后台运行的应用程序的通知,还可以是以对话窗口形式出现在屏幕上的通知。例如在状态栏提示文本信息,发出提示音,电子设备振动,指示灯闪烁等。
Android Runtime包括核心库和虚拟机。Android runtime负责安卓系统的调度和管理。
核心库包含两部分:一部分是java语言需要调用的功能函数,另一部分是安卓的核心库。
应用程序层和应用程序框架层运行在虚拟机中。虚拟机将应用程序层和应用程序框架层的java文件执行为二进制文件。虚拟机用于执行对象生命周期的管理,堆栈管理,线程管理,安全和异常的管理,以及垃圾回收等功能。
系统库可以包括多个功能模块。例如:表面管理器(surface manager),媒体库(media libraries),三维图形处理库(例如:OpenGL ES),2D图形引擎(例如:SGL)等。
表面管理器用于对显示子系统进行管理,并且为多个应用程序提供了2D和3D图层的融合。
媒体库支持多种常用的音频,视频格式回放和录制,以及静态图像文件等。媒体库可以支持多种音视频编码格式,例如:MPEG4,H.264,MP3,AAC,AMR,JPG,PNG等。
三维图形处理库用于实现三维图形绘图,图像渲染,合成,和图层处理等。
2D图形引擎是2D绘图的绘图引擎。
内核层是硬件和软件之间的层。内核层至少包含显示驱动,摄像头驱动,音频驱动,传感器驱动。
图3是本申请实施例提供的4种可能的无线反向充电场景的示意图。应理解,本申请实施例提供的无线反向充电场景仅仅是一种示例。本申请实施例无意于限定无线反向充电场景的具体形式。应理解,本申请实施例提供的方案还可以应用于其他无线反向充电场景中。
如图3中的(a)所示,无线反向充电场景可以包括手机301、手表302。其中,手机301、手表302均可以具有无线充电功能。手机301还可以开启无线反向充电功能。在手 表302的无线充电区域与手机301的无线充电区域对准后,手机可以给手表302无线充电。手表302可以不具有无线反向充电功能,或者,手表302可以暂不开启无线反向充电功能。
如图3中的(b)所示,无线反向充电场景可以包括手机303、蓝牙耳机304。其中,手机303、蓝牙耳机304均可以具有无线充电功能。手机303还可以开启无线反向充电功能。在蓝牙耳机304的无线充电区域与手机303的无线充电区域对准后,手机可以给蓝牙耳机304无线充电。蓝牙耳机304可以不具有无线反向充电功能,或者,蓝牙耳机304可以暂不开启无线反向充电功能。
如图3中的(c)所示,无线反向充电场景可以包括第一手机305、第二手机306。其中,第一手机305、第二手机306均可以具有无线充电功能。第一手机305还可以开启无线反向充电功能。在第二手机306的无线充电区域与第一手机305的无线充电区域对准后,手机可以给第二手机306无线充电。第二手机306可以不具有无线反向充电功能,或者,第二手机306可以暂不开启无线反向充电功能。
如图3中的(d)所示,无线反向充电场景可以包括平板电脑307、手写笔308。其中,平板电脑307、手写笔308均可以具有无线充电功能。平板电脑307还可以开启无线反向充电功能。在手写笔308的无线充电区域与平板电脑307的无线充电区域对准后,手机可以给手写笔308无线充电。手写笔308可以不具有无线反向充电功能,或者,手写笔308可以暂不开启无线反向充电功能。
应理解,本申请实施例可以不限定无线反向充电场景中电子设备的具体类型。例如,供电设备(开启无线反向充电功能并给其他设备无线充电的电子设备)例如可以为手机、平板电脑、笔记本电脑等便携式电子设备。电力接收设备(被供电设备无线充电的电子设备)例如可以为手机、手环、手表、耳机、键盘、手写笔、电动牙刷等便携式电子设备。
下面结合图4阐述无线充电的工作原理。
在无线充电场景中,存在供电设备410和电力接收设备420,其中供电设备410、电力接收设备420均可以具有无线充电能力。供电设备410还可以具有无线反向充电能力。供电设备410例如可以为图3所示的手机301、手机303、第一手机305、平板电脑307。电力接收设备420例如可以为图3所示的手表302、蓝牙耳机304、第二手机306、手写笔308。供电设备410和电力接收设备420的硬件单元和软件结构可以参照图1、图2所示的电子设备100。
供电设备410例如可以包括电池242、无线充电芯片143(无线充电芯片143例如可以对应图1所示的电源管理模块141和/或充电管理模块140),以及无线充电线圈132。电力接收设备420例如可以包括电池342、无线充电芯片243,以及无线充电线圈232。
供电设备410可以通过无线充电芯片143,控制电池242向无线充电线圈132输出电流,从而,无线充电线圈132可以发射高频磁场。在供电设备410的无线充电线圈132与电力接收设备420的无线充电线圈232配对的情况下,该高频磁场可以穿过无线充电线圈232,使得无线充电线圈232上可以产生感应电流。无线充电芯片243可以检测该感应电流,并将该感应电流输入至电池342。
除此以外,通过例如无线充电协议(无线Qi协议),还可以实现无线充电芯片143与无线充电芯片243之间的交互。无线Qi协议的数据包可以通过无线充电线圈132与无线充电线圈232之间的磁场媒介传输。
在一个可能的示例中,电池342的电量不同,电池342的充电功率也可能不同。在电池342处于正常充电状态(在该状态下,电池342的电量尚未充满,且电池342的电量相对较小)时,无线充电线圈232需要产生的感应电流通常相对较大。在电池342处于或接近电量充满状态时,无线充电线圈232需要产生的感应电流通常相对较小。无线充电芯片143可以通过无线充电线圈132,向无线充电芯片243发送无线Qi协议的数据包,该数据包可以用于请求电池342的无线充电功率;无线充电芯片243可以通过无线充电线圈232接收该数据包,并将电池342的无线充电功率通过无线Qi协议反馈给无线充电芯片143。无线充电芯片143可以调整无线充电线圈132的输出功率,以匹配电池342的无线充电功率。
虽然无线充电芯片243可以通过无线Qi协议向无线充电芯片143指示无线充电功率,该无线充电功率可以反映被充电池342的无线充电需求。然而,无线充电功率并不能反映被充电池342的实际的无线充电状态(例如无线充电功率无法反映被充电池342的无线充电状态是否健康、安全)。另外,被充电池342的充电状态也可能影响供电设备410的无线充电性能,进而影响供电设备410的用户体验。为此,本申请实施例提供一种新的无线Qi协议的数据包格式,从而有利于在无线充电场景中实现更加灵活的交互。
下面结合图5,阐述本申请实施例提供的一种无线Qi协议的数据包格式。
无线Qi协议的数据包可以包括前导码(preamble)、报头(header)、报文(message)、校验和(checksum)。前导码可以包括n个比特位,其中例如11≤n≤22。前导码可以用于同步两个电子设备的无线充电芯片,还可以用于确定报头的起始位置。报头可以用于指示无线Qi协议的数据包类型,还可以用于指示报文的数据量或报文的长度。报文可以包括多个字节,可以用于指示数据包的具体内容。校验和可以用于校验数据包是否传输错误。校验和的计算公式例如可以为:
Figure PCTCN2021136398-appb-000002
其中,H可以指报头,B0,B1,……,Bn分别为报文中的字节,
Figure PCTCN2021136398-appb-000003
可以指异或运算。
下面结合图6,阐述本申请实施例提供的一种无线充电的方法。图6所示的方法可以实现供电设备410与电力接收设备之间的交互。
601,供电设备410向电力接收设备420发送充电状态请求数据包,充电状态请求数据包用于请求n个充电状态信息,n为大于或等于1的整数,所述充电状态请求数据包为无线Qi协议的数据包。
相应地,电力接收设备420从供电设备410接收所述充电状态请求数据包。
结合图4、图5可知,供电设备410例如可以通过无线Qi协议,通过无线充电芯片143,向电力接收设备420的无线充电芯片243发送充电状态请求数据包。该充电状态请求数据包的报头和/或报文可以用于请求电力接收设备420的充电状态信息,其中充电状态信息例如可以包括充电电压(voltage)、充电电流(current)、充电内阻(tbat)、当前电量(capacity,soc)、充电输入功率、充电温度(temperature,tbat)、电池健康状态(例如被充电池342的健康指数)、当前工作频率、电池总容量(full charge capacity,FCC)、充放电循环次数(cycle)、无线充电能效比(ratio)、设备标识等中的一个或多个。充电电压例如可以包括以下至少一项:充电前端电压(vbus)、电池端电压(vbat)。充电电流可以包括以下至少一项:充电前端电流(ibus)、电池端电流(ibat)。设备标识例如可以包括以下至少一项:设备类型、设备子型号。
可选的,所述充电状态请求数据包包括n个命令符,所述n个充电状态信息与所述n个命令符一一对应。
也就是说,供电设备410可以通过n个命令符指示n个充电状态信息。例如,供电设备410与电力接收设备420可以事先约定好充电状态信息所对应命令符。又如,充电状态信息所对应命令符可以通过无线Qi协议规定。
在一个示例中,充电状态请求数据包例如可以包括第一报头、第一报文、第一校验和。充电状态请求数据包的格式例如可以如表一所示。
表一
Figure PCTCN2021136398-appb-000004
第一报头可以用于指示第一报文的数据量(即第一报文所占用的字节数量)、数据包类型。例如,第一报头可以包括命令符“0x18”,“0x18”所指示的数据包类型例如可以为充电状态请求数据包,“0x18”所指示的第一报文的数据量可以为1个字节(1个字节可以包括8位,8位可以分别为b0、b1、b2、b3、b4、b5、b6、b7)。在其他示例中,第一报头还可以使用例如“0x28”、“0x38”、“0x19”、“0x29”、“0x39”等命令符。本申请实施例可以不限定第一报头采用的命令符的具体形式。
第一报文可以用于指示请求电力接收设备420的电池342的充电状态信息。可选的,第一报文可以包括一个或多个命令符(command,cmd),该一个或多个命令符可以与一个或多个充电状态信息一一对应。
例如,第一报文可以包括第一命令符、第二命令符、……、第n命令符,其中第一命令符可以与第一充电状态信息对应,第二命令符可以与第二充电状态信息对应,……,第n命令符可以与第n充电状态信息对应。
第一报文的命令符例如可以由“0xXX”表示,“0xXX”可以取值0x00~0xFF。例如,0x11可以与充电前端电压对应,0x12可以与电池端电压对应,0x13可以与充电前端电流对应,0x14可以与电池端电流对应,0x15可以与充电内阻对应,0x16可以与当前电量对应,0x17可以与无线反向充电输入功对应,0x18可以与充电温度对应,0x19可以与电池健康状态对应,0x20可以与当前工作频率对应,0x21可以与电池总容量对应,0x22可以与充放电循环次数对应,0x23可以与无线充电能效比对应,0x24可以与设备类型对应,0x25可以与设备子型号对应。应理解,本申请实施例可以不限定各个充电状态信息所对应的具体命令符。
充电状态请求数据包的编码方式例如可以为幅移键控(amplitude shift neying,ASN)。可选的,充电状态请求数据包的编码方式还可以为通断键控(On-Off Neying,OON)、频移键控(Frequency shift neying,FSN)和高斯频移键控(Gauss Frequency Shift Neying,GFSN)中的任一种。
602,电力接收设备420根据所述充电状态请求数据包,向供电设备410发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,所述充电状态反馈数据包为无线Qi协议的数据包。
相应地,供电设备410从电力接收设备420接收所述充电状态反馈数据包。
在电力接收设备420接收到充电状态请求数据包后,该电力接收设备420可以获取电 力接收设备420的电池342的充电状态,并向供电设备410发送充电状态反馈数据包,以将电力接收设备420的电池342的充电状态反馈至供电设备410。当n的取值等于1时,供电设备410可以向电力接收设备420请求并获取单个充电状态信息。当n的取值大于1时,供电设备410可以向电力接收设备420请求并获取多个充电状态信息。
结合图4、图5可知,电力接收设备420例如可以通过无线Qi协议,通过无线充电芯片243,向供电设备410的无线充电芯片143发送充电状态反馈数据包。该充电状态反馈数据包的报头和/或报文可以用于反馈电力接收设备420的充电状态信息,其中充电状态信息例如可以包括充电电压、充电电流、充电输入功率、充电内阻、当前电量、充电温度、电池健康状态、电池总容量、充放电循环次数、无线充电能效比(即无线充电能量转换效率)、设备标识等中的一个或多个。
在一个示例中,充电状态反馈数据包例如可以包括第二报头、第二报文、第二校验和。充电状态反馈数据包的格式例如可以如表二所示。
表二
Figure PCTCN2021136398-appb-000005
第二报头可以用于指示第二报文的数据量(即第二报文所占用的字节数量)、数据包类型。例如,第二报头可以包括命令符“0xnf”,“0xnf”所指示的数据包类型例如可以为充电状态反馈数据包,“0xnf”所指示的第二报文的数据量可以为n个字节(n个字节可以分别为B0、B1、……、Bn-1;每个字节可以包括8位,8位可以分别为b0、b1、b2、b3、b4、b5、b6、b7)。
第二报文例如可以包括电力接收设备420的电池342的一个或多个充电状态信息。如表二所示,第二报文可以包括第一充电状态信息、第二充电状态信息、……、第n充电状态信息。第一充电状态信息、第二充电状态信息、……、第n充电状态信息可以分别占用第二报文的n个字节。
充电状态反馈数据包的编码方式例如可以为频移键控(Frequency shift neying,FSN)。可选的,充电状态反馈数据包的编码方式还可以为通断键控(On-Off Neying,OON)、幅移键控(amplitude shift neying,ASN)和高斯频移键控(Gauss Frequency Shift Neying,GFSN)中的任一种。
可选的,所述充电状态请求数据包用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
也就是说,供电设备410可以通过充电状态请求数据包,请求电力接收设备420按照目标周期反馈n个充电状态信息。电力接收设备420可以根据充电状态请求数据包,周期性地向供电设备410发送n个充电状态信息。
例如,供电设备410可以通过充电状态请求数据包1,请求电力接收设备420按照周期1反馈充电电压和充电电流;另外,供电设备410可以通过充电状态请求数据包2,请求电力接收设备420按照周期2反馈当前电量,其中,周期1小于周期2。也就是说,供 电设备410可以通过充电状态请求数据包1,使得电力接收设备420可以按照相对较快的频率,反馈充电电压和充电电流;并且,供电设备410可以通过充电状态请求数据包2,使得电力接收设备420可以按照相对较慢的频率,反馈当前电量。
在其他示例中,供电设备410可以通过其他无线Qi数据包指示目标周期,以请求电力接收设备420按照目标周期反馈该n个充电状态信息。
通过无线Qi数据包指示充电状态信息的反馈周期,有利于减少供电设备410向电力接收设备420发送的信令数量,还有利于灵活调整充电状态信息的反馈频率,进而有利于兼顾供电设备的耗电量和充电性能。例如,在充电状态信息的反馈周期相对合适的情况下,供电设备消耗在处理充电状态信息上的电量、提供给电力接收设备的电量可以相对合适,并且,供电设备可以获得适量的充电状态信息,以实现相对较优的充电性能。
可选的,所述充电状态请求数据包包括第一类命令符,所述第一类命令符用于指示第一类充电状态信息,所述第一类充电状态信息包括所述n个充电状态信息,n为大于1的整数。
相应地,所述电力接收设备420根据所述第一类命令符,向供电设备410发送所述n个充电状态信息。
也就是说,供电设备410可以通过第一类命令符,向电力接收设备420请求第一类充电状态信息。第一类命令符可以用于标识第一类充电状态信息。
在一个示例中,第一类充电状态信息例如可以为动态充电状态信息或静态充电状态信息。
动态充电状态信息可以指在充电过程中通常会发生变化的充电状态信息。例如,动态充电状态信息可以包括充电电压、充电电流、充电内阻、充电输入功率、当前电量、充电温度、电池健康状态等。
静态充电状态信息可以指在充电过程中通常不会发生变化的充电状态信息。例如,静态充电状态信息可以包括电池总容量、充放电循环次数、无线充电能效比、设备标识等。
应理解,多个充电状态信息的分类方式可以有不止一种。本申请实施例可以不限定充电状态信息的具体分类。
在一种可能的情况中,电力接收设备420可以仅反馈第一类充电状态信息的部分充电状态信息。例如,第一类充电状态信息可以包括第一部分充电状态信息和第二部分充电状态信息,电力接收设备420已被授权反馈第一部分充电状态信息,未被授权反馈第二部分充电状态信息,其中第一类充电状态信息可以包括所述n个充电状态信息。
可选的,供电设备410向电力接收设备420发送第二类命令符,所述第二类命令符用于指示第二类充电状态信息,所述第二类充电状态信息包括m个充电状态信息,m为大于1的整数;供电设备410从电力接收设备420接收所述m个充电状态信息,所述第一类充电状态信息与所述第二类充电状态信息之间无交集。
相应地,电力接收设备420从供电设备410接收第二类命令符,所述第二类命令符用于指示第二类充电状态信息,所述第二类充电状态信息包括m个充电状态信息,m为大于1的整数;电力接收设备420根据所述第二类命令符,向供电设备410发送所述m个充电状态信息,所述第一类充电状态信息与所述第二类充电状态信息之间无交集。
可选的,第一类充电状态信息的反馈周期可以与第二类充电状态周期的反馈周期不 同。例如,第一类充电状态信息为静态充电状态信息,第二类充电状态信息为动态充电状态信息。由于静态充电状态信息在充电过程中通常基本不发生变化,供电设备410可以在刚开始无线反向充电时,通过第一充电状态请求数据包,从电力接收设备420获取静态充电状态信息。之后,供电设备410可以向电力接收设备420发送第二充电状态请求数据包,并从电力接收设备420多次获取动态充电状态信息。
对充电状态信息分类有利于减少供电设备410的信令开销,对充电状态信息进行分类也有利于灵活调控供电设备410与电力接收设备420之间的信令传输。
图6所示的实施例通过无线Qi协议,使得在供电设备410与供电设备410之间可以交互充电状态信息。无线Qi协议与蓝牙协议、无线局域网协议不同,在供电设备410为电力接收设备420无线反向充电的过程中,供电设备410与电力接收设备420之间始终需要通过无线Qi协议进行交互,以维持正常的无线充电状态。而蓝牙协议、无线局域网协议对于供电设备410、电力接收设备420而言不是必须使用的。如果电力接收设备420不具有蓝牙功能、无线局域网功能,电力接收设备420将无法通过蓝牙协议或无线局域网协议,向供电设备410提供电力接收设备420的充电状态信息。那么,供电设备410的使用性能可以被降低。
另外,开启短距离通信功能的数量越多,电子设备的耗电量也就越大(需要时刻维持蓝牙链接或无线局域网链接),这样更加难以兼顾耗电量与无线充电性能。
并且,通过蓝牙协议、无线局域网协议等传输充电状态信息,会涉及到多个模块(例如蓝牙射频模块、存储器、处理器、无线充电芯片、电池等模块)之间的交互、配合(例如需要将蓝牙协议的数据包转换为无线Qi协议的数据包)。这可能会占用较多的数据处理资源。
下面结合图7至图19,阐述本申请实施例提供的无线充电的方法。
图7是本申请实施例提供的供电设备410的一种用户界面700。用户界面700例如可以为供电设备410的电池的设置界面。
用户界面700可以包括无线反向充电的开关控件701。供电设备410可以响应用户作用在该开关控件701的手势操作(例如点击等),开启或关闭无线反向充电功能。可选的,在供电设备410的无线反向充电功能被开启的情况下,供电设备410可以在用户界面700上显示无线反向充电的图标702。用户界面700还可以包括无线反向充电的参数设置控件703。供电设备410可以响应用户作用在该参数设置控件703的手势操作(例如点击等),从而调整供电设备410的无线反向充电参数。
图8是本申请实施例提供的供电设备410的一种用户界面800。用户界面800例如可以为供电设备410的无线反向充电的设置界面。
用户界面800例如可以包括自动停充的开关控件801。供电设备410可以响应用户作用在该开关控件801的手势操作(例如点击等),开启供电设备410的自动停充功能(即自动关闭无线反向充电功能的功能)。也就是说,在自动停充的开关控件801处于开启的状态下,供电设备410可以判断自动停充的预设条件是否被满足。如果该预设条件被满足,供电设备410可以主动停止为电力接收设备420无线反向充电。
在一个示例中,用户界面800可以包括本机停充电量的参数控件802。
如图9中的901所示,供电设备410可以获取供电设备410的当前电量。如图9中的 902所示,供电设备410可以判断供电设备的当前电量是否大于本机停充电量。在供电设备410的当前电量大于本机停充电量的情况下,供电设备410可以维持开启无线反向充电功能。如图9中的903所示,在供电设备410的当前电量小于本机停充电量,或者,供电设备410的当前电量降低至本机停充电量的情况下,供电设备410可以执行自动停充的操作,即自动关闭无线反向充电功能。
如图8所示,本机停充电量例如可以为40%。也就是说,在供电设备410的当前电量小于40%的情况下,或者,在供电设备410的当前电量降低至40%的情况下,供电设备410可以自动关闭供电设备410的无线反向充电功能。
供电设备410可以响应用户作用在该参数控件802的手势操作(例如点击等),以及后续一系列的手势操作(例如滑动、输入字符等),从而调整本机停充电量。应理解,本申请实施例可以不限定本机停充电量的具体数值。
在供电设备410自身的剩余电量不足的情况下,供电设备410可以通过关闭无线反向充电功能,来降低自身的耗电量,进而有利于提升供电设备410的待机时间。
在一个示例中,用户界面800可以包括单次耗电限量的参数控件803。
如图10中的1001所示,供电设备410可以获取供电设备的单次耗电量。
例如,在一次无线反向充电过程中,供电设备410可以记录开始无线反向充电时的起始电量,并判断供电设备410的当前电量与该起始电量的差值是否大于该单次耗电限量。该当前电量与该起始电量的差值可以反映供电设备410在该无线反向充电过程中消耗的电量,可以简称为单次耗电量。
又如,在一次无线反向充电过程中,供电设备410可以统计消耗在无线反向充电功能上的电量,并判断该电量是否大于该单次耗电限量。在一次无线反向充电过程中消耗在无线反向充电功能上的电量可以被描述为单次耗电量。
如图10中的1002所示,供电设备410可以判断供电设备410的单次耗电量是否大于该单次耗电限量。如果该单次耗电量小于该单次耗电限量,供电设备410可以维持开启无线反向充电功能。如图10中的1003所示,如果该单次耗电量大于该单次耗电限量,供电设备410可以执行自动停充的操作,即自动关闭无线反向充电功能。
如图8所示,单次耗电限量例如可以为20%。也就是说,在单次耗电限量大于20%的情况下,供电设备410可以自动关闭供电设备410的无线反向充电功能。
供电设备410可以响应用户作用在该参数控件803的手势操作(例如点击等)以及后续一系列的手势操作(例如滑动、输入字符等),从而调整单次耗电限量。应理解,本申请实施例可以不限定单次耗电限量的具体数值。
在供电设备410自身电量消耗过大的情况下,供电设备410可以通过关闭无线反向充电功能,来降低自身的耗电量,进而有利于提升供电设备410的待机时间,也有利于维持供电设备410的其他元器件的正常工作。
在一个示例中,用户界面800可以包括对端设备停充电量的参数控件804。
如图11的1101所示,供电设备410可以获取电力接收设备420的当前电量。结合图6可知,供电设备410例如可以通过充电状态请求数据包,从电力接收设备420获取电力接收设备420的当前电量。如图11的1102所示,供电设备410可以判断电力接收设备420的当前电量是否大于该对端设备停充电量。在电力接收设备420的当前电量小于对端 设备停充电量的情况下,供电设备410可以维持开启无线反向充电功能。如图11的1103所示,在供电设备410的电量大于对端设备停充电量,或者,供电设备410的电量升高至对端设备停充电量的情况下,供电设备410可以执行自动停充的操作,即自动关闭无线反向充电功能。
如图8所示,对端设备停充电量例如可以为90%。也就是说,在电力接收设备420的当前电量大于90%的情况下,或者,在电力接收设备420的当前电量升高至90%的情况下,供电设备410可以自动关闭供电设备410的无线反向充电功能。
供电设备410可以响应用户作用在该参数控件804的手势操作(例如点击等),以及后续一系列的手势操作(例如滑动、输入字符等),从而调整对端设备停充电量。应理解,本申请实施例可以不限定对端设备停充电量的具体数值。
在电力接收设备420的剩余电量相对足够的情况下,电力接收设备420的待机时间可以相对较长。通过关闭无线反向充电功能,可以降低供电设备410的耗电量,进而有利于提升供电设备410的待机时间。
在一个示例中,用户界面800可以包括历史充电设备的参数控件805。
例如,结合图6可知,供电设备410可以通过充电状态请求数据包,从电力接收设备420获取电力接收设备420的设备标识。供电设备410可以记录电力接收设备420的设备标识。可选的,供电设备410可以统计电力接收设备420的无线反向充电次数。
供电设备410可以在用户界面800上显示电力接收设备420的设备标识和无线反向充电次数。如图8所示,供电设备410曾经为蓝牙耳机A、手表B、蓝牙耳机C无线反向充电,其中蓝牙耳机A的无线反向充电次数为20次,手表B的无线反向充电次数为15次,蓝牙耳机C的无线反向充电次数为20次。可选的,供电设备410可以响应用户作用在该参数控件805的手势操作(例如点击等),显示供电设备410的无线反向充电记录(即电力接收设备420的列表)。
统计供电设备410的无线反向充电记录,有利于用户协调供电设备410的耗电方式。例如,在一周内,供电设备410曾为相对较多的电子设备提供无线反向充电功能。这有利于提示用户合理安置该电力接收设备420的充电器,以减少供电设备410的无线反向充电次数。
可选的,供电设备410可以在用户界面800上高亮显示电力接收设备420的设备标识,以便于用户查看当前电力接收设备420的设备信息。
可选的,供电设备410可以响应用户作用在该参数控件805的手势操作(例如点击等),从而将目标设备标识设置在设备黑名单中。也就是说,供电设备410可以从电力接收设备420获取电力接收设备420的设备标识,并判断该设备标识是否属于设备黑名单。如果属于,则供电设备410可以执行自动停充的操作,即自动关闭无线反向充电功能。如果不属于,则供电设备410可以维持开启无线反向充电功能,并为电力接收设备420无线反向充电。
电力接收设备420的充电性能可能会严重影响供电设备410的使用性能。通过判断电力接收设备420的设备标识是否属于设备黑名单,有利于维持供电设备410的使用性能。
图12示出了本申请实施例提供的一种无线充电的方法。图12所示的方法可以应用在图3所示的无线反向充电场景以及其他无线反向充电场景中。
如图12中的1201所示,供电设备410,例如可以通过图6所示的方法,获取电力接收设备420的电池健康状态。电池健康状态可以属于一种充电状态信息。
如图12中的1202所示,供电设备410可以根据电池健康状态,判断电力接收设备420的电池当前处于健康充电状态还是非健康充电状态。
例如,供电设备410可以将该电池健康状态对应的分数,与预设健康分数匹配,从而判断电力接收设备420的电池当前是处于健康充电状态还是非健康充电状态。
如果电池健康状态对应的分数高于预设健康分数,则供电设备410可以判断电力接收设备的电池当前处于健康充电状态。那么供电设备410可以继续为电力接收设备420无线反向充电,并继续监测电力接收设备420的电池健康状态(如图12中的1201所示)。
如果电池健康状态对应的分数低于预设健康分数,则供电设备410可以判断电力接收设备的电池当前处于非健康充电状态。那么,如图12中的1203所示,供电设备410可以主动停止为电力接收设备420无线反向充电。
图13示出了本申请实施例提供的一种无线充电的方法。图13所示的方法可以应用在图3所示的无线反向充电场景以及其他无线反向充电场景中。
如图13中的1301所示,供电设备410可以获取电力接收设备420的充电输入功率,以及供电设备410的充电输出功率。
充电输入功率可以指,供电设备410从电力接收设备420接收到的无线充电功率。充电输出功率可以指,供电设备410在无线反向充电功能上输出的功率,即供电设备410为电力接收设备420无线反向充电而输出的功率。
例如,结合图6可知,供电设备410通过无线Qi协议,通过充电状态请求数据包,向电力接收设备420请求充电输入功率。充电输入功率可以属于一种充电状态信息。
又如,结合图6可知,供电设备410通过无线Qi协议,通过充电状态请求数据包,向电力接收设备420请求充电电流和充电电压。电力接收设备420可以根据电力接收设备420的充电电流和充电电压,确定或估算电力接收设备420的充电输入功率。
如图13中的1302所示,供电设备410可以判断反向充电输出功率与充电输入功率的差值是否大于预设功率。反向充电输出功率与充电输入功率的差值可以反映无线反向充电过程中的电能损耗。
如果反向充电输出功率与充电输入功率的差值小于预设功率,可以意味着供电设备410输出的大部分功率可以用于为电力接收设备420无线反向充电。那么,供电设备410可以继续为电力接收设备420无线反向充电,并继续监测反向充电输出功率与充电输入功率的差值(如图13中的1301所示)。
如果反向充电输出功率与充电输入功率的差值大于预设功率,可以意味着无线反向充电过程中的电能损耗相对较大,可能的原因例如可以是漏电等,即可能存在安全隐患。那么,如图13中的1303所示,供电设备410可以主动停止为电力接收设备420无线反向充电。
在一些可能的场景中,电力接收设备420向供电设备410反馈功率,目的通常是指示供电设备410提供合适的无线反充功率,例如在电力接收设备420电量即将充满时,电力接收设备420可以向供电设备410发送功率指示信息,指示供电设备410降低输出功率。但是这一功率指示信息并不能反映电力接收设备420实际接收到的功率,也无法反映无线 反向充电过程中是否存在安全隐患。图13所示的方法有利于降低无线反向充电安全事故的发生概率。
图14是本申请实施例提供的一种无线充电的方法。图14所示的方法可以应用在图3所示的无线反向充电场景以及其他无线反向充电场景中。
如图14中的1401所示,供电设备410可以获取电力接收设备420的充电温度。
充电温度例如可以是电力接收设备420的电池342的温度。结合图6可知,供电设备410通过无线Qi协议,通过充电状态请求数据包,向电力接收设备420请求充电温度。
如图14中的1402所示,供电设备410可以判断电力接收设备420的充电温度是否大于第一预设充电温度。如果电力接收设备420的充电温度过高,电力接收设备420的电池342可能存在充电隐患。
如果电力接收设备420的充电温度小于第一预设充电温度,可以意味着电力接收设备420的电池342当前可能处于正常充电状态,存在安全隐患的概率相对较小。那么,供电设备410可以继续为电力接收设备420无线反向充电,并继续监测电力接收设备420的充电温度(如图14中的1401所示)。
如果电力接收设备420的充电温度大于第一预设充电温度,可以意味着电力接收设备420的电池342当前可能存在安全隐患。那么,如图14中的1403所示,供电设备410可以降低供电设备的充电输出功率至第一输出功率。在一种可能的场景中,第一输出功率为零或接近零,可以等效成供电设备410自动关闭无线反向充电功能。
可选的,供电设备410可以判断在电力接收设备420的充电温度大于第二预设充电温度的情况下,供电设备410可以降低供电设备的充电输出功率至第二输出功率,第二预设充电温度大于第一预设充电温度,第二输出功率小于第一输出功率。
如果电力接收设备420的充电温度越高,电力接收设备420的电池342存在充电隐患的概率越大。本申请实施例提供的方法可以逐级减小供电设备410的充电输出功率,有利于兼顾无线反向充电功能以及无线反向充电安全。
结合上文的示例可知,在其他场景中,供电设备410可以采用逐级降低充电输出功率的方式,调整无线反向充电模式。例如,在供电设备410的当前电量低于本机停充电量的情况下,和/或,在供电设备410的单次耗电量高于单次耗电限量的情况下,和/或,在电力接收设备420的当前电量高于对端设备停充电量的情况下,供电设备410可以采用逐级降低充电输出功率的方式,调整无线反向充电模式。
逐级降低充电输出功率的方式可以执行在上述自动停充操作之前,或者可以替代上述自动停充操作。
图15是本申请实施例提供的供电设备410的一种用户界面1500。用户界面1500例如可以为供电设备410的锁屏界面或应用程序界面。在图15所示的示例中,供电设备410例如可以为图3中的(a)所示的手机301,电力接收设备420例如可以为图3中的(a)所示的手表302。
用户界面1500可以包括无线反向充电窗口1501。供电设备410可以在无线反向充电窗口1501内显示电力接收设备420的一个或多个充电状态信息。
如图15所示,无线反向充电窗口1501可以包括电力接收设备420的当前电量、充电电压、电池总容量、(输入)充电电流等;其中,电力接收设备420的当前电量可以为 50%,电力接收设备420的充电电压可以为4100mV,电力接收设备420的电池总容量可以为200mAh,电力接收设备420的充电电流可以为400mA。
在其他示例中,供电设备410的充电状态信息还可以包括以下至少一个:充电输入功率、充电内阻、充电温度、电池健康状态、充放电循环次数、无线充电能效比、设备标识。
无线反向充电窗口1501可以包括电力接收设备420的设备图标。如图15所示,该设备图标可以为手表图标。该设备图标例如可以根据电力接收设备420的设备标识等确定。
可选的,供电设备410可以根据设备类型,确定无线反向充电方案。
例如,电力接收设备420为手表的情况下,供电设备410可以按照适用于手表的充电模式为电力接收设备420充电。不同设备类型的电池差异往往较大,根据设备类型选用不同的充电模式,有利于保护供电设备410和电力接收设备420的电池。
可选的,供电设备410可以在无线反向充电窗口1501内显示供电设备410的一个或多个充电状态信息。
如图15所示,无线反向充电窗口1501可以包括供电设备410的(输出)充电电流等;其中,供电设备410的充电电流可以为500mA。
在其他示例中,供电设备410的充电状态信息可以包括以下至少一个:充电电压、充电电流、充电温度、当前电量、电池健康状态、充电输出功率。
可选的,供电设备410可以在无线反向充电窗口1501内显示与电力接收设备420对应的充电预估信息,所述充电预估信息可以由电力接收设备420的一个或多个充电状态信息确定。
如图15所示,无线反向充电窗口1501可以包括电力接收设备420的预估充满时间,该预估充满时间可以为,供电设备410充满电力接收设备420预估需要的时长;其中,该预估充满时间可以为30分钟。
该预估充满时间例如可以根据电力接收设备420的充电电流、电池总容量、当前电量、充放电循环次数等确定:
Figure PCTCN2021136398-appb-000006
其中,soc为当前电量,fcc为电池总容量,cur为充电电流。老化因子可以基于充放电循环次数、通过建模评估的方式得到。
如图15所示,无线反向充电窗口1501可以包括本机预估消耗电量,该本机预估消耗电量可以为,供电设备410充满电力接收设备420预估需要消耗的电量;其中,该本机预估消耗电量可以为20%。
本机预估消耗电量例如可以根据电力接收设备420的电池总容量、当前电量、充放电循环次数、无线充电能效比等确定:
Figure PCTCN2021136398-appb-000007
其中,soc为当前电量,fcc为电池总容量,ratio为无线充电能效比。老化因子可以基于充放电循环次数、通过建模评估的方式得到。无线充电能效比例如可以通过如下方式获取:供电设备410可以获取供电设备410的无线反向充电平均输出功率,并向电力接收设备420发送该无线反向充电平均输出功率,该无线反向充电平均输出功率可以为充电输出功率的平均值;电力接收设备420可以获取电力接收设备420的无线反向充电平均输入功 率,并根据该无线反向充电平均输出功率和该无线反向充电平均输出功率,确定无线充电能效比;之后,电力接收设备420可以将无线充电能效比反馈给供电设备410。
图16是本申请实施例提供的供电设备410的一种用户界面1600。用户界面1600例如可以为供电设备410的负一屏界面或应用程序界面。在图16所示的示例中,供电设备410例如可以为图3中的(b)所示的手机303,电力接收设备420例如可以为图3中的(b)所示的蓝牙耳机304。
与图15所示的示例不同,蓝牙耳机304可以包括耳机盒电池、左耳机电池、右耳机电池。在一个可能的示例中,手机303可以为耳机盒电池无线反向充电,耳机盒电池可以为左耳机电池、右耳机电池充电。在此情况下,蓝牙耳机304除了可以向手机303反馈耳机盒电池的充电状态信息,还可以向手机303反馈左耳机电池的充电状态信息、右耳机电池充电状态信息。
如图16所示,用户界面1600可以包括无线反向充电窗口1601。手机303可以在无线反向充电窗口1601内显示左耳机电池的当前电量(40%)、右耳机电池的当前电量(42%)、耳机盒电池的当前电量(72%)。手机303还可以显示耳机盒电池、左耳机电池、右耳机电池的其他充电状态信息。另外,无线反向充电窗口1601还可以在对应蓝牙耳机304的区域显示无线充电的图标1602。
应理解,当蓝牙耳机放置在耳机盒内时,蓝牙耳机通常处于关机状态,蓝牙耳机通常无法通过蓝牙通信模块与周围设备交互。图16所示的示例可以通过无线Qi协议交互蓝牙耳机的充电状态信息,使得用户可以通过供电设备获知蓝牙耳机的充电状态,进而有利于提高蓝牙耳机在无线充电过程中的用户体验感。
图17至图18是本申请实施例提供的一种无线充电场景的示意图。应理解,本申请实施例提供的无线充电场景仅仅是一种示例。本申请实施例无意于限定无线充电场景的具体形式。应理解,本申请实施例提供的方案还可以应用于其他无线充电场景或无线反向充电场景中。
如图17所示,该无线充电场景可以包括手机1701、平板电脑1702、无线充电器1703、平板电脑1704、手写笔1705。其中,无线充电器1703可以为平板电脑1702无线充电,平板电脑1704可以为手写笔1705无线反向充电。
可选的,本申请实施例提供的无线充电场景可以包括图17所示的手机1701、平板电脑1702、无线充电器1703,但不包括平板电脑1704、手写笔1705,或者,本申请实施例提供的无线充电场景可以包括图17所示的手机1701、平板电脑1702、无线充电器1703,但不包括平板电脑1704、手写笔1705。
应理解,无线充电器1703除了可以为平板电脑1702无线充电,还可以为其他电子设备无线充电,例如手机、手环、手表、耳机、键盘、手写笔、笔记本电脑、电动牙刷等便携式电子设备。
应理解,平板电脑1704除了可以为手写笔1705无线反向充电,还可以我其他电子设备无线反向充电,例如手机、手环、手表、耳机、键盘、手写笔、笔记本电脑、电动牙刷等便携式电子设备。
结合图6所示的方法,无线充电器1703可以通过无线Qi协议,向平板电脑1702发送充电状态请求数据包,进而可以从平板电脑1702获取平板电脑1702的充电状态信息。 无线充电器1703可以对应图6中的供电设备410,平板电脑1702可以对应图6中的电力接收设备420。
如图17所示,无线充电器1703可以通过无线通信协议(例如蓝牙协议、无线局域网协议、物联网协议等通信协议),将平板电脑1702的充电状态信息发送给手机1701。手机1701可以是无线充电场景中的监控设备。手机1701可以显示平板电脑1702的充电状态信息。如图18所示,用户界面1800可以包括平板电脑1702的无线充电图标、平板电脑1702的当前电量以及平板电脑1702的电量变化趋势。
可选的,用户界面1800可以包括与平板电脑1702对应的控件1801。响应用户作用在该控件1801的操作,手机1701可以控制无线充电器1703调整对平板电脑1702的充电输出功率,或停止为平板电脑1702无线充电。例如,用户可以通过作用于控件1801的手势操作,向手机1701指示降低无线充电器1703的充电输出功率。手机1701可以根据该手势操作,向无线充电器1703发送指示信息,以指示无线充电器1703降低充电输出功率。
结合图6所示的方法,平板电脑1704可以通过无线Qi协议,向手写笔1705发送充电状态请求数据包,进而可以从手写笔1705获取手写笔1705的充电状态信息。平板电脑1704可以对应图6中的供电设备410,手写笔1705可以对应图6中的电力接收设备420。
如图17所示,平板电脑1704可以通过无线通信协议(例如蓝牙协议、无线局域网协议等短距离通信协议),将手写笔1705的充电状态信息,以及平板电脑1704的充电状态信息发送给手机1701。手机1701可以显示手写笔1705的充电状态信息以及平板电脑1704的充电状态信息。如图18所示,用户界面2000可以包括手写笔1705的无线充电图标、手写笔1705的当前电量、手写笔1705的电量变化趋势、平板电脑1704的无线反向充电图标、平板电脑1704的当前电量、平板电脑1704的电量变化趋势。可选的,用户界面1800可以包括平板电脑1704与手写笔1705之间的无线反向充电关系。
可选的,用户界面1800可以包括与平板电脑1704对应的控件1802,和/或与手写笔1705对应的控件1802。响应用户作用在该控件1802或该控件1803的操作,手机1701可以控制平板电脑1704调整对手写笔1705的充电输出功率,或停止为手写笔1705无线充电。例如,用户可以通过作用于控件1802或控件1803的手势操作,向手机1701指示降低平板电脑1704的充电输出功率。手机1701可以根据该手势操作,向平板电脑1704发送指示信息,以指示平板电脑1704降低充电输出功率。
可选的,手机1701可以通过无线通信协议(例如蓝牙协议、无线局域网协议、物联网协议等通信协议),获取无线充电场景中其他电子设备的电池状态信息,并在用户界面1800上显示该电池状态信息。如图18所示,用户界面1800例如可以包括智能手表的当前电量(34%)、蓝牙耳机的当前电量(45%)、蓝牙键盘的当前电量(66%)、智能手环的当前电量(87%)。
图19是本申请实施例提供的一种无线充电场景的示意图。应理解,本申请实施例提供的无线充电场景仅仅是一种示例。本申请实施例无意于限定无线充电场景的具体形式。应理解,本申请实施例提供的方案还可以应用于其他无线充电场景中。
如图19所示,该无线充电场景可以包括手机1901、无线充电器1902。其中,无线充电器1902可以为手机1901无线充电。应理解,无线充电器1902除了可以为手机1901无线充电,还可以为其他电子设备无线充电,例如平板电脑、手环、手表、耳机、键盘、手 写笔、笔记本电脑、电动牙刷等便携式电子设备。本申请实施例以手机1901为例进行说明。
结合图6所示的方法,无线充电器1902可以通过无线Qi协议,向手机1901发送充电状态请求数据包,进而可以从手机1901获取手机1901的充电状态信息。无线充电器1902可以对应图6中的供电设备410,手机1901可以对应图6中的电力接收设备420。
无线充电器1902可以显示手机1901的充电状态信息。如图19所示,无线充电器1902可以在显示界面上显示手机1901的当前电量为51%。无线充电器1902的显示界面还可以显示手机1901的其他充电状态信息,例如充电电压、充电电流、充电输入功率、充电内阻、充电温度、电池健康状态、电池总容量、充放电循环次数、无线充电能效比(即无线充电能量转换效率)、设备标识等。
在图19所示的场景中,在手机1901熄屏的情况下,用户可以通过观察无线充电器1902的显示界面,获知手机1902的充电状态信息。因此,在无线充电过程中,用户可以不必频繁唤醒手机1901,以查看手机1901的充电状态。一方面,有利于减少无线充电被打断的次数(因为用户不需要将手机从无线充电器上取下,即可观察到手机的当前电量)。另一方面,有利于减少手机在无线充电过程中的电量消耗。
综上所述,本申请实施例提供的无线充电方法有利于提升供电设备的充电性能或使用性能,还有利于提升无线充电场景中的安全性。
图20示出了本申请实施例的无线充电的方法2000的示意性流程图。该方法2000可以由上述供电设备和电力接收设备实现。该方法2000包括:
2001,供电设备通过无线充电芯片,向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息,其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
相应地,电力接收设备通过无线充电芯片,从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息。
结合图6所示的示例,充电状态请求数据包例如可以包括第一前导码、第一报头、第一报文、第一校验和。
第一报头可以用于指示第一报文的数据量(、数据包类型。例如,第一报头可以包括命令符“0xa8”或“0xa9”,“0xa8”或“0xa9”所指示的数据包类型例如可以为充电状态请求数据包,“0xa8”或“0xa9”所指示的第一报文的数据量可以为a个字节。
一个实施例中,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
第一报文可以包括第一命令符、第二命令符、……、第n命令符,其中第一命令符可以与第一充电状态信息对应,第二命令符可以与第二充电状态信息对应,……,第n命令符可以与第n充电状态信息对应。
第一报文的命令符例如可以由“0xXX”表示,“0xXX”可以取值0x00~0xFF。例如,0x11可以与充电前端电压对应,0x12可以与电池端电压对应,0x13可以与充电前端电流对应,0x14可以与电池端电流对应,0x15可以与充电内阻对应,0x16可以与当前电量对 应,0x17可以与无线反向充电输入功对应,0x18可以与充电温度对应,0x19可以与电池健康状态对应,0x20可以与当前工作频率对应,0x21可以与电池总容量对应,0x22可以与充放电循环次数对应,0x23可以与无线充电能效比对应,0x24可以与设备类型对应,0x25可以与设备子型号对应。应理解,本申请实施例可以不限定各个充电状态信息所对应的具体命令符。
一个实施例中,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息,所述第一类命令符承载于所述充电状态请求数据包的报头或报文中。
结合图6所示的示例,第一类命令符可以用于标识第一类充电状态信息。
一个实施例中,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
动态充电状态信息可以指在充电过程中通常会发生变化的充电状态信息。例如,动态充电状态信息可以包括充电电压、充电电流、充电内阻、充电输入功率、当前电量、充电温度、电池健康状态等。
静态充电状态信息可以指在充电过程中通常不会发生变化的充电状态信息。例如,静态充电状态信息可以包括电池总容量、充放电循环次数、无线充电能效比、设备标识等。
一个实施例中,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
供电设备可以通过充电状态请求数据包,请求电力接收设备按照目标周期反馈n个充电状态信息。电力接收设备可以根据充电状态请求数据包,周期性地向供电设备发送n个充电状态信息。
一个实施例中,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
无线Qi协议与蓝牙协议、无线局域网协议不同,在供电设备410为电力接收设备420无线反向充电的过程中,供电设备410与电力接收设备420之间始终需要通过无线Qi协议进行交互,以维持正常的无线充电状态。而蓝牙协议、无线局域网协议对于供电设备410、电力接收设备420而言不是必须使用的。如果电力接收设备420不具有蓝牙功能、无线局域网功能,电力接收设备420将无法通过蓝牙协议或无线局域网协议,向供电设备410提供电力接收设备420的充电状态信息。那么,供电设备410的使用性能可以被降低。
另外,开启短距离通信功能的数量越多,电子设备的耗电量也就越大(需要时刻维持蓝牙链接或无线局域网链接),这样更加难以兼顾耗电量与无线充电性能。
并且,通过蓝牙协议、无线局域网协议等传输充电状态信息,会涉及到多个模块(例如蓝牙射频模块、存储器、处理器、无线充电芯片、电池等模块)之间的交互、配合(例如需要将蓝牙协议的数据包转换为无线Qi协议的数据包)。这可能会占用较多的数据处理资源。
2002,所述电力接收设备通过所述无线充电芯片,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息。
相应地,所述供电设备通过所述无线充电芯片,从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息。
结合图6所示的示例,充电状态反馈数据包例如可以包括前导码、第二报头、第二报 文、第二校验和。
第二报头可以用于指示第二报文的数据量、数据包类型。例如,第二报头可以包括命令符“0xnf”,“0xnf”所指示的数据包类型例如可以为充电状态反馈数据包,“0xnf”所指示的第二报文的数据量可以为n个字节。
第二报文例如可以包括第一充电状态信息、第二充电状态信息、……、第n充电状态信息。第一充电状态信息、第二充电状态信息、……、第n充电状态信息可以分别占用第二报文的n个字节。
一个实施例中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
所述供电设备降低充电输出功率。
结合图8、图11至图14所示的示例,供电设备可以根据电力接收设备的充电状态信息,判断是否有必要为电力接收设备无线(反向)充电,或者可以判断电力接收设备的电池是否可能存在充电隐患。供电设备可以通过逐级减小充电输出功率的方式,提升无线反向充电的安全性,进而有利于兼顾无线反向充电功能以及无线反向充电安全。
一个实施例中,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
所述供电设备停止为所述电力接收设备无线反向充电。
结合图8、图11至图14所示的示例,供电设备可以根据电力接收设备的充电状态信息,判断是否有必要为电力接收设备无线反向充电,或者可以判断电力接收设备的电池是否可能存在充电隐患。供电设备可以通过自动停充的方式,提升无线反向充电的安全性,进而有利于兼顾无线反向充电功能以及无线反向充电安全。
一个实施例中,所述第一预设条件包括以下至少一项:
所述电力接收设备的当前电量大于预设停充电量;
所述电力接收设备的充电温度大于预设充电温度;
所述电力接收设备的无线充电能效比小于预设能耗比;
所述电力接收设备的电池健康指数小于预设健康分数;
所述电力接收设备的设备标识属于设备黑名单。
预设停充电量可以对应图8、图11、图14所示示例中的“对端设备停充电量”。结合图11和图14所示的示例,在供电设备的电量大于对端设备停充电量,或者,供电设备的电量升高至对端设备停充电量的情况下,供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。如图8所示,预设停充电量例如可以为90%。
如图14所示的示例,如果电力接收设备的充电温度大于第一预设充电温度,供电设备可以降低供电设备的充电输出功率至第一输出功率。在一种可能的场景中,第一输出功率为零或接近零,可以等效成供电设备自动关闭无线反向充电功能。
“无线充电能效比小于预设能耗比”可以对应图13、图14所示示例中的“反向充电输出功率与充电输入功率的差值大于预设功率”。结合图13和图14所示的示例,如果反向充电输出功率与充电输入功率的差值大于预设功率,那么,供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。
结合图13和图14所示的示例,如果电池健康状态对应的分数低于预设健康分数,那 么,供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。
结合8和图14所示的示例,供电设备可以从电力接收设备获取电力接收设备的设备标识,并判断该设备标识是否属于设备黑名单。如果属于,则供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。
一个实施例中,所述方法还包括:
所述供电设备显示第一参数控件;
所述供电设备响应作用于所述第一参数控件的操作,修改以下任一项参数:所述预设停充电量、所述预设充电温度、所述预设能耗比、所述预设健康分数、所述设备黑名单。
参照图8所示的示例,供电设备可以显示用户界面800,该用户界面800可以包括参数控件804~805。供电设备可以响应用户作用在该参数控件804~805的手势操作(例如点击等),以及后续一系列的手势操作(例如滑动、输入字符等),从而调整对端设备停充电量、设备黑名单。应理解,用户界面800还可以包括与所述预设充电温度、所述预设能耗比、所述预设健康分数对应的参数控件。
一个实施例中,所述方法还包括:所述供电设备显示充电预估信息,所述充电预估信息由所述电力接收设备的充电状态信息确定。
预估充满时间可以为,供电设备充满电力接收设备预估需要的时长。
本机预估消耗电量可以为,供电设备充满电力接收设备预估需要消耗的电。
如图15所示的示例,无线反向充电窗口1501可以包括电力接收设备的预估充满时间(30分钟)、本机预估消耗电量(20%)。
一个实施例中,所述充电预估信息包括以下至少一项:预估充满时间、本机预估消耗电量。
结合图15所示的示例,该预估充满时间例如可以根据电力接收设备的充电电流、电池总容量、当前电量、充放电循环次数等确定:
Figure PCTCN2021136398-appb-000008
本机预估消耗电量例如可以根据电力接收设备的电池总容量、当前电量、充放电循环次数、无线充电能效比等确定:
Figure PCTCN2021136398-appb-000009
其中,soc为当前电量,fcc为电池总容量,cur为充电电流,ratio为无线充电能效比,老化因子可以基于充放电循环次数、通过建模评估的方式得到。
一个实施例中,所述方法还包括:所述供电设备显示所述电力接收设备的充电状态信息。
如图15、图16所示的示例,供电设备可以在用户界面上显示电力接收设备的充电状态信息。在图15所示的示例中,供电设备可以在用户界面1500上显示电力接收设备的当前电量(50%)、充电电压(4100mV)、电池总容量(200mAh)、充电电流(400mA)。
一个实施例中,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述电力接收设备的充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
如图16所示的示例,供电设备可以在用户界面1600上显示左耳机电池的当前电量 (40%)、右耳机电池的当前电量(42%)、耳机盒电池的当前电量(72%)。
一个实施例中,在所述供电设备的充电状态信息满足第二预设条件的情况下,所述方法还包括:
所述供电设备降低充电输出功率,或停止为所述电力接收设备无线反向充电。
结合图8至图10、图14所示的示例,供电设备可以根据供电设备的充电状态信息,判断是否有必要为电力接收设备无线反向充电。供电设备可以通过逐级减小充电输出功率的方式或自动停充的方式,提升供电设备的使用性能。
一个实施例中,所述第二预设条件包括以下至少一项:
所述供电设备的当前电量达到或小于本机停充电量;
所述供电设备的单次耗电量达到或大于单次耗电限量。
结合图8、图9、图14所示的示例,在供电设备的当前电量小于本机停充电量,或者,供电设备的当前电量降低至本机停充电量的情况下,供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。如图8所示,本机停充电量例如可以为40%。
结合图8、图10、图14所示的示例,如果供电设备的单次耗电量大于单次耗电限量,供电设备可以执行自动停充的操作,或者降低充电输出功率至第一输出功率。如图8所示,单次耗电限量例如可以为20%。
一个实施例中,所述方法还包括:
所述供电设备显示第二参数控件;
所述供电设备响应作用于所述第二参数控件的操作,修改以下任一项参数:所述本机停充电量、所述单次耗电限量。
参照图8所示的示例,供电设备可以显示用户界面800,该用户界面800可以包括参数控件802~803。供电设备可以响应用户作用在该参数控件802~803的手势操作(例如点击等)以及后续一系列的手势操作(例如滑动、输入字符等),从而调整本机停充电量、单次耗电限量。
一个实施例中,所述方法还包括:
所述供电设备向监控设备发送所述电力接收设备的充电状态信息以及所述供电设备的充电状态信息;
从所述监控设备接收指示信息,所述指示信息指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
参照图17、图18所示的示例,手机1701可以显示用户界面1800,用户界面1800可以包括平板电脑1704的当前电量,以及手写笔1705的当前电量。用户界面1800还可以包括与平板电脑1704对应的控件1802,和/或与手写笔1705对应的控件1802。响应用户作用在该控件1802或该控件1803的操作,手机1701可以控制平板电脑1704调整对手写笔1705的充电输出功率,或停止为手写笔1705无线充电。
图21示出了本申请实施例的无线充电的方法2100的示意性流程图。该方法2100可以由上述监控设备实现。该方法2100包括:
2101,监控设备显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应。
2102所述监控设备响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
参照图17、图18所示的示例,手机1701作为监控设备,可以显示用户界面1800,用户界面1800可以包括平板电脑1704的当前电量,以及手写笔1705的当前电量。用户界面1800还可以包括与平板电脑1704对应的控件1802,和/或与手写笔1705对应的控件1802。响应用户作用在该控件1802或该控件1803的操作,手机1701可以控制平板电脑1704调整对手写笔1705的充电输出功率,或停止为手写笔1705无线充电。
图22示出了本申请实施例提供的装置2200的示意性框图。该装置2200可以设置于上述供电设备410或供电设备410的无线充电芯片中,该装置2200中包括:发送单元2210,用于向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;接收单元2220,用于从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
图23示出了本申请实施例提供的装置2300的示意性框图。该装置2300可以设置于上述电力接收设备420或电力接收设备420的无线充电芯片中,该装置2300中包括:接收单元2310,用于从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;发送单元2320,用于向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
图24示出了本申请实施例提供的装置2300的示意性框图。该装置2300可以设置于上述监控设备中,该装置2300中包括:显示单元2410,用于显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应;发送单元2420,用于响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
图25示出了本申请实施例提供的电子设备2500的示意性结构图。如图25所示,该电子设备包括:一个或多个处理器2510,一个或多个存储器2520,该一个或多个存储器2520存储有一个或多个计算机程序,该一个或多个计算机程序包括指令。当该指令被所述一个或多个处理器2510运行时,使得电子设备2500执行上述实施例中供电设备、电力接收设备、监控设备中的任一设备侧的技术方案。
本申请实施例提供了一种系统,包括供电设备、电力接收设备,该系统用于执行上述实施例中的技术方案。其实现原理和技术效果与上述方法相关实施例类似,此处不再赘述。
本申请实施例提供一种计算机程序产品,当所述计算机程序产品在供电设备运行时,使得供电设备执行上述实施例中的技术方案。其实现原理和技术效果与上述方法相关实施 例类似,此处不再赘述。
本申请实施例提供一种计算机程序产品,当所述计算机程序产品在电力接收设备运行时,使得电力接收设备执行上述实施例中的技术方案。其实现原理和技术效果与上述方法相关实施例类似,此处不再赘述。
本申请实施例提供一种计算机程序产品,当所述计算机程序产品在监控设备运行时,使得监控设备执行上述实施例中的技术方案。其实现原理和技术效果与上述方法相关实施例类似,此处不再赘述。
本申请实施例提供一种可读存储介质,所述可读存储介质包含指令,当所述指令在供电设备运行时,使得所述供电设备执行上述实施例的技术方案。其实现原理和技术效果类似,此处不再赘述。
本申请实施例提供一种可读存储介质,所述可读存储介质包含指令,当所述指令在电力接收设备运行时,使得所述电力接收设备执行上述实施例的技术方案。其实现原理和技术效果类似,此处不再赘述。
本申请实施例提供一种可读存储介质,所述可读存储介质包含指令,当所述指令在监控设备运行时,使得所述监控设备执行上述实施例的技术方案。其实现原理和技术效果类似,此处不再赘述。
本申请实施例提供一种芯片,所述芯片用于执行指令,当所述芯片运行时,执行上述实施例中的技术方案。其实现原理和技术效果类似,此处不再赘述。
本领域普通技术人员可以意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,能够以电子硬件、或者计算机软件和电子硬件的结合来实现。这些功能究竟以硬件还是软件方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本申请的范围。
所属领域的技术人员可以清楚地了解到,为描述的方便和简洁,上述描述的系统、装置和单元的具体工作过程,可以参考前述方法实施例中的对应过程,在此不再赘述。
在本申请所提供的几个实施例中,应该理解到,所揭露的系统、装置和方法,可以通过其它的方式实现。例如,以上所描述的装置实施例仅仅是示意性的,例如,所述单元的划分,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式,例如多个单元或组件可以结合或者可以集成到另一个系统,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,装置或单元的间接耦合或通信连接,可以是电性,机械或其它的形式。
所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部单元来实现本实施例方案的目的。
另外,在本申请各个实施例中的各功能单元可以集成在一个处理单元中,也可以是各个单元单独物理存在,也可以两个或两个以上单元集成在一个单元中。
所述功能如果以软件功能单元的形式实现并作为独立的产品销售或使用时,可以存储在一个计算机可读取存储介质中。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分或者该技术方案的部分可以以软件产品的形式体现出来,该计算机 软件产品存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本申请各个实施例所述方法的全部或部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
以上所述,仅为本申请的具体实施方式,但本申请的保护范围并不局限于此,任何熟悉本技术领域的技术人员在本申请揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本申请的保护范围之内。因此,本申请的保护范围应以所述权利要求的保护范围为准。

Claims (32)

  1. 一种无线充电的方法,其特征在于,包括:
    供电设备通过无线充电芯片,向电力接收设备发送充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
    所述供电设备通过所述无线充电芯片,从所述电力接收设备接收充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
    其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
  2. 根据权利要求1所述的方法,其特征在于,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
    所述供电设备降低充电输出功率。
  3. 根据权利要求1所述的方法,其特征在于,在所述电力接收设备的充电状态信息满足第一预设条件的情况下,所述方法还包括:
    所述供电设备停止为所述电力接收设备无线反向充电。
  4. 根据权利要求2或3所述的方法,其特征在于,所述第一预设条件包括以下至少一项:
    所述电力接收设备的当前电量大于预设停充电量;
    所述电力接收设备的充电温度大于预设充电温度;
    所述电力接收设备的无线充电能效比小于预设能耗比;
    所述电力接收设备的电池健康指数小于预设健康分数;
    所述电力接收设备的设备标识属于设备黑名单。
  5. 根据权利要求4所述的方法,其特征在于,所述方法还包括:
    所述供电设备显示第一参数控件;
    所述供电设备响应作用于所述第一参数控件的操作,修改以下任一项参数:所述预设停充电量、所述预设充电温度、所述预设能耗比、所述预设健康分数、所述设备黑名单。
  6. 根据权利要求1至5中任一项所述的方法,其特征在于,所述方法还包括:
    所述供电设备显示充电预估信息,所述充电预估信息由所述电力接收设备的充电状态信息确定。
  7. 根据权利要求6所述的方法,其特征在于,所述充电预估信息包括以下至少一项:预估充满时间、本机预估消耗电量。
  8. 根据权利要求1至7中任一项所述的方法,其特征在于,所述方法还包括:
    所述供电设备显示所述电力接收设备的充电状态信息。
  9. 根据权利要求8所述的方法,其特征在于,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述电力接收设备的充电状态信息包括所述耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
  10. 根据权利要求1至9中任一项所述的方法,其特征在于,所述方法还包括:
    所述供电设备向监控设备发送所述电力接收设备的充电状态信息以及所述供电设备的充电状态信息;
    从所述监控设备接收指示信息,所述指示信息指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
  11. 根据权利要求1至10中任一项所述的方法,其特征在于,在所述供电设备的充电状态信息满足第二预设条件的情况下,所述方法还包括:
    所述供电设备降低充电输出功率,或停止为所述电力接收设备无线反向充电。
  12. 根据权利要求11所述的方法,其特征在于,所述第二预设条件包括以下至少一项:
    所述供电设备的当前电量达到或小于本机停充电量;
    所述供电设备的单次耗电量达到或大于单次耗电限量。
  13. 根据权利要求12所述的方法,其特征在于,所述方法还包括:
    所述供电设备显示第二参数控件;
    所述供电设备响应作用于所述第二参数控件的操作,修改以下任一项参数:所述本机停充电量、所述单次耗电限量。
  14. 根据权利要求1至13中任一项所述的方法,其特征在于,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
  15. 根据权利要求1至13中任一项所述的方法,其特征在于,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息,所述第一类命令符承载于所述充电状态请求数据包的报头或报文中。
  16. 根据权利要求15所述的方法,其特征在于,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
  17. 根据权利要求1至16中任一项所述的方法,其特征在于,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
  18. 根据权利要求1至17中任一项所述的方法,其特征在于,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
  19. 一种无线充电的方法,其特征在于,包括:
    电力接收设备通过无线充电芯片,从供电设备接收充电状态请求数据包,所述充电状态请求数据包用于请求所述电力接收设备的n个充电状态信息;
    所述电力接收设备通过所述无线充电芯片,向所述供电设备发送充电状态反馈数据包,所述充电状态反馈数据包包括所述n个充电状态信息,
    其中,所述n个充电状态信息包括以下至少一项:充电电压、充电电流、充电内阻、当前电量、充电输入功率、充电温度、电池健康指数、当前工作频率、电池总容量、充放电循环次数、无线充电能效比、设备标识,n为大于或等于1的整数。
  20. 根据权利要求19所述的方法,其特征在于,所述电力接收设备为蓝牙耳机,所述蓝牙耳机包括耳机盒电池、左耳机电池、右耳机电池,所述n个充电状态信息包括所述 耳机盒电池的当前电量、所述左耳机电池的当前电量、所述右耳机电池的当前电量。
  21. 根据权利要求19或20所述的方法,其特征在于,所述充电状态请求数据包包括与所述n个充电状态信息一一对应的n个命令符,所述n个命令符承载于所述充电状态请求数据包的报头或报文中。
  22. 根据权利要求19或20所述的方法,其特征在于,所述充电状态请求数据包包括第一类命令符,所述第一类命令符与第一类充电状态信息对应,所述第一类充电状态信息包括所述n个充电状态信息。
  23. 根据权利要求22所述的方法,其特征在于,所述第一类充电状态信息为动态充电状态信息或静态充电状态信息。
  24. 根据权利要求19至23中任一项所述的方法,其特征在于,所述充电状态请求数据用于指示目标周期,所述目标周期为所述n个充电状态信息的反馈周期。
  25. 根据权利要求19至24中任一项所述的方法,其特征在于,所述充电状态请求数据包、所述充电状态反馈数据包均为无线充电Qi协议的数据包。
  26. 一种无线充电的方法,其特征在于,包括:
    监控设备显示用户界面,所述用户界面包括供电设备的充电状态信息、所述电力接收设备的充电状态信息、目标控件,所述目标控件与所述供电设备或所述电力接收设备对应;
    所述监控设备响应作用在所述目标控件的目标操作,向所述供电设备发送指示信息,所述指示信息用于指示所述供电设备调整充电输出功率,或停止为所述电力接收设备无线反向充电。
  27. 一种供电设备,其特征在于,包括:
    一个或多个处理器;
    一个或多个存储器;
    所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述供电设备执行如权利要求1至18中任一项所述的方法。
  28. 一种电力接收设备,其特征在于,包括:
    一个或多个处理器;
    一个或多个存储器;
    所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述电力接收设备执行如权利要求19至25中任一项所述的方法。
  29. 一种监控设备,其特征在于,包括:
    一个或多个处理器;
    一个或多个存储器;
    所述一个或多个存储器存储有一个或者多个计算机程序,所述一个或者多个计算机程序包括指令,当所述指令被所述一个或多个处理器执行时,使得所述监控设备执行如权利要求26所述的方法。
  30. 一种无线充电的系统,其特征在于,包括如权利要求27所述的供电设备,以及如权利要求28所述的电力接收设备。
  31. 根据权利要求30所述的系统,其特征在于,所述系统还包括如权利要求29所述的监控设备。
  32. 一种计算机可读存储介质,其特征在于,包括计算机指令,当所述计算机指令在电子设备上运行时,使得所述电子设备执行如权利要1至26中任一项所述的方法。
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CN109742824A (zh) * 2019-02-23 2019-05-10 华为技术有限公司 充电系统和电子设备
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