Power receiving apparatus and method

The power receiving device enhances foreign object detection in wireless power transmission systems by using signal strength analysis, improving detection accuracy and safety.

JP2026010199APending Publication Date: 2026-01-21CANON KK
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Patent Information

Application Number
JP2025179809
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-10-24
Publication Date
2026-01-21

AI Technical Summary

Technical Problem

Existing wireless power transmission systems struggle to accurately detect foreign objects that may interfere with power transmission, potentially causing damage due to electromagnetic wave effects.

Method used

A power receiving device equipped with a communication means, determination means, measurement means, and processing means for detecting foreign objects based on signal strength analysis, utilizing methods such as power loss and Q-factor measurement to enhance detection accuracy.

Benefits of technology

Accurately identifies foreign objects, ensuring safe and efficient power transmission by preventing damage from foreign objects.

✦ Generated by Eureka AI based on patent content.

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Abstract

To accurately detect an object different from a power reception device.SOLUTION: The power reception apparatus determines a frequency based on communication with the power transmission apparatus, measures a signal strength at the determined frequency, and performs processing related to foreign object detection using the measured signal strength.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to an object detection technology in wireless power transmission. [Background technology]

[0002] Technological development of wireless power transmission systems has been widely conducted, and the standard (WPC standard) established by the standardization organization Wireless Power Consortium (WPC) as a wireless charging standard is widely known. In such wireless power transmission, it is essential to detect a foreign object within a range where a power transmitting device can transmit power and control power transmission and reception. A foreign object is an object different from a power receiving device. Patent Document 1 describes a method for detecting a foreign object and restricting power transmission and reception when a foreign object is present near a power transmitting and receiving device that complies with the WPC standard. Patent Document 2 describes a method in which a power transmitting device transmits a foreign object detection signal to a power receiving device and determines the presence or absence of a foreign object using an echo signal from the power receiving device. Patent Document 3 describes a technology for detecting a foreign object by short-circuiting a coil in a wireless power transmission system. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-070074 [Patent Document 2] Japanese Patent Application Laid-Open No. 2015-027172 [Patent Document 3] Japanese Patent Application Laid-Open No. 2017-034972 Summary of the Invention [Problem to be solved by the invention]

[0004] The present invention provides a technology for accurately detecting an object other than a power receiving device. [Means for solving the problem]

[0005] A power receiving device according to one aspect of the present invention includes a power receiving means for wirelessly receiving power from a power transmitting device, a communication means for communicating with the power transmitting device, a determination means for determining a frequency based on communication with the power transmitting device, a measurement means for measuring signal strength at the determined frequency, and a processing means for performing processing related to foreign object detection using the measured signal strength. [Effects of the Invention]

[0006] According to the present invention, it is possible to accurately detect an object other than a power receiving device. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a diagram illustrating an example of the configuration of a wireless power transmission system. [Figure 2] FIG. 2 is a diagram illustrating an example of the configuration of a power transmission device. [Figure 3] FIG. 2 illustrates an example of the configuration of a power receiving device. [Figure 4] FIG. 2 is a diagram illustrating an example of a functional configuration of a control unit of the power transmitting device. [Figure 5] FIG. 1 is a diagram showing an example of the flow of processing for power transmission according to the WPC standard. [Figure 6] 1A and 1B are diagrams illustrating the principle of foreign object detection using a waveform attenuation method. [Figure 7] 10A and 10B are diagrams for explaining a method for detecting a foreign object using radio wave transmission during power transmission. [Figure 8] FIG. 10 is a diagram for explaining a method for detecting a foreign object. [Figure 9] FIG. 10 is a diagram for explaining a method for detecting a foreign object. [Figure 10] 10A and 10B are diagrams for explaining a method for setting a foreign object detection threshold value using a power loss method. [Figure 11] FIG. 10 is a diagram illustrating an example of a flow of processing executed by a power transmitting device. [Figure 12] FIG. 10 is a diagram illustrating an example of a flow of processing executed by a power receiving device. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the scope of the claimed invention. Although multiple features are described in the embodiments, not all of these multiple features are necessarily essential to the invention, and multiple features may be combined arbitrarily. Furthermore, in the accompanying drawings, the same reference numerals are used to designate the same or similar components, and redundant explanations will be omitted.

[0009] (Configuration of wireless power transmission system) FIG. 1 shows an example of the configuration of a wireless power transmission system according to this embodiment. This system is, for example, a wireless charging system. This system includes a power transmitting device 101 and a power receiving device 102. Hereinafter, the power transmitting device 101 may be referred to as TX, and the power receiving device 102 may be referred to as RX. RX is an electronic device that has an internal battery and charges the internal battery with power received from TX. TX is an electronic device that wirelessly transmits power to RX placed on, for example, a charging stand 103 provided as part of the housing of TX. Note that, since the charging stand 103 is part of TX, hereinafter, "placed on the charging stand 103" may be referred to as "placed on TX (power transmitting device 101)." The range 104 indicated by the dashed line is the range within which RX can receive power from TX. Note that TX and RX may have a function for executing applications other than wireless charging. RX is, for example, a smartphone, and TX is, for example, an accessory device for charging the smartphone. The TX and RX may be storage devices such as tablets, hard disk drives, or memory devices, or may be information processing devices such as personal computers (PCs). The TX and RX may be image input devices such as imaging devices (cameras, video cameras, etc.) or scanners, or may be image output devices such as printers, copiers, or projectors. The RX may be a vehicle such as an automobile, and the TX may be a charger installed in the console of the automobile.

[0010] In this system, wireless power transmission is performed using an electromagnetic induction method for wireless charging based on the WPC standard. That is, the TX and RX perform wireless power transmission for wireless charging based on the WPC standard between the TX power transmitting antenna and the RX power receiving antenna. Note that, although the wireless power transmission method used in this system is the method specified by the WPC standard, other methods may also be used. For example, an electromagnetic induction method, a magnetic field resonance method, an electric field resonance method, a microwave method, a method using a laser, or the like may also be used. In addition, in this embodiment, wireless power transmission is used for wireless charging, but wireless power transmission may also be performed for purposes other than wireless charging.

[0011] In the WPC standard, the amount of power guaranteed when the power receiving device 102 receives power from the power transmitting device 101 is defined by a value called Guaranteed Power (hereinafter referred to as "GP"). GP indicates a power value that is guaranteed to be output to a load (e.g., a charging circuit, a battery, etc.) of the power receiving device 102, even if the positional relationship between the power receiving device 102 and the power transmitting device 101 fluctuates and the power transmission efficiency between the power receiving antenna and the power transmitting antenna decreases. For example, if the GP is 5 watts, the power transmitting device 101 transmits power by executing control such that 5 watts can be output to the load in the power receiving device 102, even if the positional relationship between the power receiving antenna and the power transmitting antenna fluctuates and the power transmission efficiency decreases.

[0012] Furthermore, when transmitting power from the power transmitting device 101 to the power receiving device 102, if a foreign object, which is not a power receiving device, is present near the power transmitting device 101, the electromagnetic waves used for power transmission may affect the foreign object, raising the temperature of the foreign object and possibly destroying it. Therefore, the WPC standard prescribes a method for the power transmitting device 101 to detect the presence of a foreign object, for example, on the charging stand 103, so that the power transmitting device 101 can take appropriate measures, such as stopping power transmission, if a foreign object is present. Specifically, the WPC standard prescribes a power loss method for detecting a foreign object based on the relationship between the transmitted power in the power transmitting device 101 and the received power in the power receiving device 102. The WPC standard also prescribes a Q-factor measurement method for detecting a foreign object based on a change in the quality factor (Q-factor) of the power transmitting antenna (power transmitting coil) in the power transmitting device 101. The power transmitting device 101 can not only detect an object present on the charging stand 103 as a foreign object, but also detect a foreign object located near the power transmitting device 101. For example, the power transmitting device 101 may detect a foreign object present in the power transmitting range 104.

[0013] Here, foreign object detection based on the power loss method defined in the WPC standard will be described with reference to Fig. 10. The horizontal axis of Fig. 10 represents the transmitted power of the power transmitting device 101, and the vertical axis represents the received power of the power receiving device 102. Note that a foreign object is an object other than the power receiving device 102 that may affect power transmission from the power transmitting device 101 to the power receiving device 102, such as an object such as a conductive metal piece.

[0014] First, the power transmitting device 101 transmits power to the power receiving device 102 at a first transmission power value Pt1, and the power receiving device 102 receives power at a first reception power value Pr1. This state may be referred to as a light load state. The power transmitting device 101 stores the first transmission power value Pt1. Here, the first transmission power value Pt1 or the first reception power value Pr1 is a predetermined minimum transmission power or reception power. At this time, the power receiving device 102 controls the load so that the received power is minimum. For example, the power receiving device 102 may disconnect the load from the power receiving antenna so that the received power is not supplied to the load (such as a charging circuit or a battery). The power receiving device 102 reports the first reception power value Pr1 to the power transmitting device 101. When the power transmitting device 101 receives the first received power value Pr1 from the power receiving device 102, it calculates the power loss between the power transmitting device 101 and the power receiving device 102 to be Pt1-Pr1 (Ploss1), and creates a calibration point 1000 showing the correspondence between Pt1 and Pr1.

[0015] Next, the power transmitting device 101 changes the transmission power value to a second transmission power value Pt2 and transmits power to the power receiving device 102, and the power receiving device 102 receives power at the second received power value Pr2. This state may be called a connected load state. The power transmitting device 101 then stores the second transmission power value Pt2. Here, the second transmission power value Pt2 or the second received power value Pr2 is a predetermined maximum transmission power or received power. At this time, the power receiving device 102 controls the load so that the received power becomes the maximum power. For example, the power receiving device 102 connects the power receiving antenna to the load so that the received power is supplied to the load. The power receiving device 102 reports the second transmission power value Pr2 to the power transmitting device 101. When the power transmitting device 101 receives the second transmission power value Pr2 from the power receiving device 102, it calculates the power loss between the power transmitting device 101 and the power receiving device 102 to be Pt2-Pr2 (Ploss2), and creates a calibration point 1001 indicating the correspondence between Pt2 and Pr2.

[0016] The power transmitting device 101 then creates a straight line 1002 that linearly interpolates between the calibration point 1000 and the calibration point 1001. The straight line 1002 represents the relationship between transmitted power and received power in a state where no foreign object is present near the power transmitting device 101 and the power receiving device 102. Based on the straight line 1002, the power transmitting device 101 can predict the power value that the power receiving device 102 will receive when transmitting power at a predetermined transmitted power in a state where no foreign object is present. For example, if the power transmitting device 101 transmits power at a third transmitted power value Pt3, the third received power value Pr3 that the power receiving device 102 will receive can be estimated from a point 1003 on the straight line 1002 that corresponds to Pt3.

[0017] As described above, it is possible to identify the power loss between the power transmitting device 101 and the power receiving device 102 according to the load based on multiple combinations of the transmitted power value of the power transmitting device 101 and the received power value of the power receiving device 102 measured while changing the load. Furthermore, it is possible to estimate the power loss between the power transmitting device 101 and the power receiving device 102 according to the load by interpolation based on multiple combinations. In this way, the calibration process performed by the power transmitting device 101 and the power receiving device 102 to obtain the combination of the transmitted power value and the received power value by the power transmitting device 101 is hereinafter referred to as "calibration process (CAL process) of the power loss method."

[0018] Assume that after calibration, when the power transmitting device 101 actually transmits power to the power receiving device 102 at Pt3, the power transmitting device 101 receives a received power value Pr3' from the power receiving device 102. The power transmitting device 101 calculates a value Pr3-Pr3' (=Ploss_F0) by subtracting the received power value Pr3' actually received from the power receiving device 102 from the received power value Pr3 in a state where no foreign object is present. This Ploss_F0 can be considered to be the power loss due to power consumed by a foreign object when a foreign object is present near the power transmitting device 101 and the power receiving device 102. Therefore, the power transmitting device 101 can determine the presence of a foreign object when the power Ploss_F0 that would have been consumed by the foreign object exceeds a predetermined threshold. The power transmitting device 101 also calculates in advance the power loss Pt3-Pr3 (Ploss3) between the power transmitting device 101 and the power receiving device 102 from the received power value Pr3 in a state where no foreign object is present. Then, the power transmitting device 101 calculates the power loss Pt3-Pr3' (Ploss3') between the power transmitting device 101 and the power receiving device 102 using the received power value Pr3' received from the power receiving device 102. Then, the power transmitting device 101 may estimate the power Ploss_FO that would have been consumed by the foreign object using Ploss3'-Ploss3 (=Ploss_FO).

[0019] As described above, the power Ploss_FO that would have been consumed by the foreign object may be calculated based on the received power as Pr3-Pr3', or may be calculated based on the magnitude of the power loss as Ploss3'-Ploss3. Note that, although Ploss_FO is calculated as Ploss3'-Ploss3 below, it may also be calculated as Pr3-Pr3'.

[0020] Foreign object detection using the Power Loss method is performed during power transmission (during the Power Transfer phase, described later) based on data obtained in the Calibration phase, described later. Foreign object detection using the Q-factor measurement method is performed before power transmission (before sending a Digital Ping, described later, during the Negotiation or Renegotiation phase).

[0021] In this embodiment, the RX and TX communicate for power transmission and reception control based on the WPC standard. The WPC standard defines multiple phases, including a power transfer phase in which power transmission is performed and one or more phases before the actual power transmission, and in each phase, communication required for power transmission and reception control is performed. The phases before power transmission may include a selection phase, a ping phase, an identification and configuration phase, a negotiation phase, and a calibration phase. Note that the identification and configuration phase will be referred to as the I&C phase below. The processing in each phase will be described below.

[0022] In the Selection phase, the TX intermittently transmits Analog Pings to detect that an object has been placed on the TX's charging base (for example, that the RX or a conductor piece has been placed on the charging base). The TX detects at least one of the voltage and current values ​​of the power transmitting antenna when it transmits Analog Pings, and if the voltage value is below a certain threshold or the current value exceeds a certain threshold, it determines that an object is present and transitions to the Ping phase.

[0023] In the Ping phase, the TX transmits a Digital Ping with higher power than the Analog Ping. The power of the Digital Ping is sufficient to start the control unit of the RX placed on the TX. The RX notifies the TX of the magnitude of the received power voltage. In this way, the TX recognizes that the object detected in the Selection phase is the RX by receiving a response from the RX that received the Digital Ping transmitted by itself. Upon receiving notification of the received power voltage value, the TX transitions to the I&C phase. Furthermore, before transmitting the Digital Ping, the TX measures the Q-factor of the transmitting antenna. This measurement result is used when executing foreign object detection processing using the Q-factor measurement method.

[0024] In the I&C phase, the TX identifies the RX and obtains device configuration information (capability information) from the RX. The RX transmits an ID packet and a configuration packet. The ID packet contains the RX's identifier information, and the configuration packet contains the RX's device configuration information (capability information). When the TX receives the ID packet and the configuration packet, it responds with an acknowledgement (ACK, positive response). Then the I&C phase ends.

[0025] In the Negotiation phase, the GP value is determined based on the GP value requested by the RX and the power transmission capability of the TX. The TX then performs foreign object detection processing using the Q-factor measurement method, for example, in response to a request from the RX. The WPC standard also stipulates that after transitioning to the Power Transfer phase, if a request is received from the RX, processing similar to that in the Negotiation phase is performed again. The phase in which this processing is performed again after transitioning to the Power Transfer phase is called the Renegotiation phase.

[0026] In the calibration phase, calibration is performed based on the WPC standard. RX notifies TX of a predetermined received power value (received power value under light load / received power value under maximum load), and TX adjusts the power for efficient power transmission. The received power value notified to TX can be used for foreign object detection processing using the Power Loss method.

[0027] In the Power Transfer phase, control is performed to start and continue power transmission, and to stop power transmission due to errors or when the device is fully charged. To control this power transmission and reception, the TX and RX communicate by superimposing a signal on the electromagnetic waves transmitted from the power transmitting antenna or power receiving antenna, using the power transmitting antenna and power receiving antenna used when transmitting wireless power based on the WPC standard. The range in which communication based on the WPC standard between the TX and RX is possible is approximately the same as the power transmission range of the TX.

[0028] (Configuration of power transmitting device 101 and power receiving device 102) Next, a description will be given of an example configuration of the power transmitting device 101 (TX) and the power receiving device 102 (RX) of this embodiment. Note that the configuration described below is merely an example, and part (or in some cases the whole) of the described configuration may be replaced with another configuration having a similar function or may be omitted, or further configuration may be added. Furthermore, one block described below may be divided into multiple blocks, or multiple blocks may be integrated into one block. Furthermore, each of the functional blocks described below may be realized by one or more processors executing software instructions, but some or all of the functions included in each functional block may be realized by hardware.

[0029] Fig. 2 shows an example of the configuration of a power transmitting device 101 (TX) according to this embodiment. The TX includes, for example, a control unit 201, a power supply unit 202, a power transmitting unit 203, a communication unit 204, a power transmitting antenna 205, a memory 206, resonant capacitors 207 and 212-213, and switches 208-211. Note that, although Fig. 2 shows the control unit 201, the power supply unit 202, the power transmitting unit 203, the communication unit 204, and the memory 206 as separate functional blocks, two or more or all of these functional blocks may be implemented on the same chip.

[0030] The control unit 201 executes a control program stored in the memory 206, for example, to control the entire TX. That is, the control unit 201 executes control of each functional unit shown in FIG. 2. The control unit 201 further executes control related to power transmission control, including communication for device authentication in the TX. The control unit 201 may also perform control for executing applications other than wireless power transmission. The control unit 201 is configured to include one or more processors, such as a CPU (Central Processing Unit) or an MPU (Micro Processor Unit). The control unit 201 may be configured with hardware, such as an Application Specific Integrated Circuit (ASIC). The control unit 201 may also be configured with an array circuit, such as an FPGA (Field Programmable Gate Array) compiled to execute predetermined processes. The control unit 201 stores information to be stored in the memory 206 while executing various processes. The control unit 201 may measure time using a timer (not shown).

[0031] The power supply unit 202 supplies power to each functional block. The power supply unit 202 is, for example, a commercial power supply or a battery. The battery stores power supplied from the commercial power supply.

[0032] The power transmitting unit 203 converts DC or AC power input from the power supply unit 202 into AC frequency power in the frequency band used for wireless power transmission, and inputs the converted power to the power transmitting antenna 205 to generate electromagnetic waves for receiving power at the RX. The power transmitting unit 203 converts the DC voltage supplied by the power supply unit 202 into AC voltage using a half-bridge or full-bridge switching circuit that uses FETs (Field Effect Transistors). In this case, the power transmitting unit 203 includes a gate driver that controls the ON / OFF of the FETs. The power transmitting unit 203 further controls the intensity of the electromagnetic waves to be output by adjusting the voltage (transmission voltage) or current (transmission current), or both, input to the power transmitting antenna 205. Increasing the transmission voltage or transmission current increases the intensity of the electromagnetic waves, whereas decreasing the transmission voltage or transmission current decreases the intensity of the electromagnetic waves. Furthermore, the power transmitting unit 203 controls the output of power so as to start or stop power transmission from the power transmitting antenna 205 based on an instruction from the control unit 201. Furthermore, the power transmitting unit 203 is assumed to have the capacity to supply enough power to output 15 watts (W) to a charging unit of the power receiving device 102 (RX) that complies with the WPC standard.

[0033] The communication unit 204 performs communication with the RX for power transmission control based on the WPC standard as described above. The communication unit 204 modulates electromagnetic waves output from the power transmitting antenna 205 and transmits information to the RX to perform communication. The communication unit 204 also demodulates the electromagnetic waves transmitted from the power transmitting antenna 205 and modulated by the RX to acquire information transmitted by the RX. That is, the communication performed by the communication unit 204 is performed by superimposing a signal on the electromagnetic waves transmitted from the power transmitting antenna 205. The communication unit 204 may also communicate with the RX using an antenna different from the power transmitting antenna 205 and based on a standard different from the WPC standard, or may selectively use multiple communication methods to communicate with the RX.

[0034] The memory 206 stores a control program executed by the control unit 201. The memory 206 can also store the TX and RX states (transmitted power value, received power value, etc.). For example, the TX state is acquired by the control unit 201, and the RX state is information acquired by the RX control unit 301 and received via the communication unit 204.

[0035] The switches 208 to 211 are each controlled by the control unit 201, and switch between open and short-circuit states to switch the configuration of the TX circuit. When the switch 208 is turned off and open, the power transmitting antenna 205 and the resonant capacitor 207 connected to the power transmitting antenna 205 are disconnected from the power transmitting unit 203. When the switch 208 is turned on and short-circuited, the power transmitting antenna 205 and the resonant capacitor 207 are connected to the power transmitting unit 203.

[0036] The switches 209 to 211 are switches that can form a series resonant circuit including the corresponding resonant capacitor. When the switch 209 is turned on and short-circuited, the power transmitting antenna 205 and the resonant capacitor 207 form a series resonant circuit. This series resonant circuit is configured to resonate at a specific frequency f1. At this time, a current flows through the closed circuit formed by the power transmitting antenna 205, the resonant capacitor 207, and the switch 209. The switch 210 is connected to the resonant capacitor 212, and when the switch 210 is turned on and short-circuited, it forms a series resonant circuit including the power transmitting antenna 205, the resonant capacitor 207, and the resonant capacitor 212. This series resonant circuit is configured to resonate at a specific frequency f2. At this time, a current flows through the closed circuit formed by the power transmitting antenna 205, the resonant capacitor 207, the resonant capacitor 212, and the switch 210. When the switch 211 is connected to the resonant capacitor 213 and is turned on to short-circuit, it can form a series resonant circuit including the power transmitting antenna 205, the resonant capacitor 207, and the resonant capacitor 213. This series resonant circuit is configured to resonate at a specific frequency f3. At this time, a current flows through the closed circuit formed by the power transmitting antenna 205, the resonant capacitor 207, the resonant capacitor 213, and the switch 211.

[0037] When switch 208 is turned on and short-circuited, and switches 209 to 211 are turned off and open, power is supplied from power transmitting unit 203 to power transmitting antenna 205 and resonant capacitor 207 .

[0038] Fig. 3 is a block diagram showing an example of the configuration of a power receiving device 102 (RX) according to this embodiment. The RX includes, for example, a control unit 301, a UI (user interface) unit 302, a power receiving unit 303, a communication unit 304, a power receiving antenna 305, a charging unit 306, a battery 307, a memory 308, switches 309 to 311 and 315, and resonant capacitors 312 to 314. Note that two or more or all of the functional blocks shown separately in Fig. 3 may be implemented on the same chip. Furthermore, the multiple functional blocks shown in Fig. 3 may be realized by a single hardware module.

[0039] The control unit 301 executes a control program stored in the memory 308, for example, to control the entire RX. That is, the control unit 301 executes control of each functional unit shown in FIG. 3. The control unit 301 may also perform control for executing applications other than wireless power transmission. The control unit 301 includes one or more processors, such as a CPU or an MPU. The control unit 301 may control the entire RX (or the entire smartphone if the RX is a smartphone) in cooperation with a running OS (Operating System). The control unit 301 may also be configured with hardware such as an ASIC. The control unit 301 may also be configured to include an array circuit such as an FPGA compiled to execute predetermined processes. The control unit 301 stores information to be stored in the memory 308 while executing various processes. The control unit 301 may also measure time using a timer (not shown).

[0040] The UI unit 302 performs various outputs to the user. The various outputs include, for example, screen display, blinking or color change of an LED (Light Emitting Diode), audio output from a speaker, vibration of the RX main body, and other operations. For this reason, the UI unit 302 is configured to include, for example, a liquid crystal panel, a speaker, a vibration motor, and the like. Note that the UI unit 302 may also have, for example, an input mechanism for receiving operations from the user.

[0041] The power receiving unit 303 acquires, via the power receiving antenna 305, AC power (AC voltage and AC current) generated by electromagnetic induction based on electromagnetic waves radiated from the power transmitting antenna 205 of the TX. The power receiving unit 303 then converts the AC power into DC power or AC power of a predetermined frequency, and outputs the converted power to the charging unit 306, which performs processing to charge the battery 307. For this purpose, the power receiving unit 303 includes, for example, a rectifier unit and a voltage control unit required to supply power to the load in the RX. The above-mentioned GP is the amount of power guaranteed to be output from the power receiving unit 303. The power receiving unit 303 is assumed to have a power supply capacity sufficient to supply power for the charging unit 306 to charge the battery 307 and to output 15 watts of power to the charging unit 306.

[0042] The communication unit 304 communicates with the communication unit 204 of the TX for power receiving control based on the WPC standard as described above. The communication unit 304 demodulates the electromagnetic waves input from the power receiving antenna 305 to acquire information transmitted from the TX. The communication unit 304 also transmits information to the TX by load modulating the input electromagnetic waves to superimpose a signal related to the information to be transmitted to the TX onto the electromagnetic waves. Note that the communication unit 304 may communicate with the TX using a standard other than the WPC standard using an antenna other than the power receiving antenna 305, or may communicate with the TX by selectively using multiple communication standards.

[0043] The memory 308 stores a control program executed by the control unit 301. The memory 308 also stores the TX and RX states. For example, the RX state is acquired by the control unit 301, and the TX state is information acquired by the TX control unit 201 and received via the communication unit 304.

[0044] The switches 309 to 311 and 315 are each controlled by the control unit 301, and switch between open and short circuits to switch the configuration of the RX circuit.

[0045] When the switch 309 is turned on and short-circuited, the power receiving antenna 305 and the resonant capacitor 312 connected to the power receiving antenna 305 form a series resonant circuit. This series resonant circuit is configured to resonate at a specific frequency f4. At this time, a current flows through the closed circuit formed by the power receiving antenna 305, the resonant capacitor 312, and the switch 309. The switch 310 is connected to the resonant capacitor 313. When the switch 310 is turned on and short-circuited, the power receiving antenna 305, the resonant capacitor 312, and the resonant capacitor 313 form a series resonant circuit. This series resonant circuit is configured to resonate at a specific frequency f5. At this time, a current flows through the closed circuit formed by the power receiving antenna 305, the resonant capacitor 312, the resonant capacitor 313, and the switch 310. The switch 311 is connected to the resonant capacitor 314. When the switch 311 is turned on and short-circuited, the power receiving antenna 305, the resonant capacitor 312, and the resonant capacitor 314 form a series resonant circuit. This series resonant circuit is configured to resonate at a specific frequency f6. At this time, a current flows through a closed circuit formed by the power receiving antenna 305, the resonant capacitor 312, the resonant capacitor 314, and the switch 311.

[0046] When switches 309 to 311 are turned off and then opened, the power received by power receiving antenna 305 and resonant capacitor 312 is supplied to power receiving unit 303 .

[0047] The switch 315 is used to control whether or not to supply the received power to a battery, which is a load. The switch 315 also has a function of controlling the load value. When the switch 315 is turned on and short-circuited, the power received by the power receiving antenna 305 is supplied to the battery 307 via the charging unit 306. When the switch 315 is turned off and open, the power received by the power receiving antenna 305 is not supplied to the battery 307. Note that although the switch 315 is arranged between the resonant capacitor 312 and the power receiving unit 303 in FIG. 3 , it may be arranged between the power receiving unit 303 and the charging unit 306. It may also be arranged between the charging unit 306 and the battery 307. It is also possible to arrange the switch 315 as a single block in FIG. 3 , but the switch 315 may be realized as part of the charging unit 306 or part of the power receiving unit 303.

[0048] Next, the function of the control unit 201 of the TX will be described with reference to FIG. 4. The control unit 201 includes, for example, a communication control unit 401, a power transmission control unit 402, a measurement unit 403, a setting unit 404, and a foreign object detection unit 405. The communication control unit 401 performs control communication with the RX based on the WPC standard via the communication unit 204. The power transmission control unit 402 controls the power transmission unit 203 to control power transmission to the RX. The measurement unit 403 measures a waveform attenuation index, which will be described later. It also measures the power transmitted to the RX via the power transmission unit 203 and measures the average transmitted power per unit time. The measurement unit 403 also measures the Q-factor of the power transmitting antenna 205. The setting unit 404 sets a threshold value used for foreign object detection, for example, by calculation processing, based on the waveform attenuation index measured by the measurement unit 403. The foreign object detection unit 405 has a foreign object detection function using a power loss method, a foreign object detection function using a Q-factor measurement method, and a foreign object detection process using a waveform attenuation method. The foreign object detection unit 405 may also have a function of performing foreign object detection processing using other methods. For example, the foreign object detection unit 405 in a TX having an NFC (Near Field Communication) communication function may perform foreign object detection processing using a detection function for a partner device according to the NFC standard. In addition to detecting foreign objects, the foreign object detection unit 405 can also detect changes in the state of the TX. For example, the TX can detect an increase or decrease in the number of power receiving devices 102 on the TX.

[0049] The setting unit 404 sets a threshold value that serves as a reference for determining the presence or absence of a foreign object when the TX performs foreign object detection using the power loss method, the Q-factor measurement method, or the waveform attenuation method. The setting unit 404 may also have a function for setting a threshold value that serves as a reference for determining the presence or absence of a foreign object, which is necessary when performing foreign object detection processing using other methods. The foreign object detection unit 405 can perform foreign object detection processing based on the threshold value set by the setting unit 404 and the waveform attenuation index, transmission power, and Q-factor measured by the measurement unit 403.

[0050] The functions of the communication control unit 401, power transmission control unit 402, measurement unit 403, setting unit 404, and foreign object detection unit 405 are realized as programs that run in the control unit 201. Each functional unit may be configured by an independent program. Each functional unit may operate in parallel while establishing synchronization between programs through event processing or the like. However, two or more of these processing units may be realized by a single program.

[0051] (Process flow for power transmission according to WPC standards) As described above, the WPC standard defines a selection phase, a ping phase, an I&C phase, a negotiation phase, a calibration phase, and a power transfer phase. The operations of the power transmitting device 101 and the power receiving device 102 in these phases will be described below with reference to FIG. 5.

[0052] The TX repeatedly and intermittently transmits Analog Pings according to the WPC standard to detect an object within the power transmission range (F501). Then, the TX executes the processes defined as the Selection phase and Ping phase of the WPC standard and waits for the RX to be placed. The user of the RX brings the RX (e.g., a smartphone) close to the TX for charging (F502). For example, the user places the RX on the TX, thereby bringing the RX close to the TX. When the TX detects the presence of an object within the power transmission range (F503, F504), it transmits Digital Pings according to the WPC standard (F505). When the RX receives the Digital Ping, it can determine that the TX has detected the RX (F506). Furthermore, when a predetermined response to the Digital Ping is received, the TX can determine that the detected object is the RX and that the RX has been placed on the charging stand 103.

[0053] When the TX detects that the RX has been placed, it acquires identification information and capability information from the RX through communication in the I&C phase defined by the WPC standard (F507). The identification information of the RX includes a Manufacturer Code and a Basic Device ID. The capability information of the RX includes information elements that can identify the version of the WPC standard that the RX supports, a Maximum Power Value that specifies the maximum power that the RX can supply to a load, and information indicating whether the RX has a negotiation function in the WPC standard. The TX may acquire the identification information and capability information of the RX through a method other than communication in the I&C phase of the WPC standard. The identification information may also be any other identification information that can identify an individual RX, such as a Wireless Power ID. The capability information may include information other than the above information.

[0054] Next, the TX determines the GP value with the RX through communication in the negotiation phase defined in the WPC standard (F508). Note that in F508, other procedures for determining the GP may be executed, not limited to communication in the negotiation phase defined in the WPC standard. Furthermore, if the TX acquires information indicating that the RX does not support the negotiation phase (for example, in F507), the TX may not execute communication in the negotiation phase and may set the GP value to a small value (for example, defined in advance in the WPC standard). In this embodiment, it is assumed that the GP is determined to be 5 watts in F508.

[0055] After determining the GP, the TX performs calibration based on that GP. In the calibration process, first, the RX transmits information including the received power in a light load state (load disconnected state, load state in which the transmitted power is equal to or less than the first threshold) to the TX (hereinafter, this information will be referred to as "first reference received power information") (F509). In this embodiment, the first reference received power information is the received power information of the RX when the transmitted power of the TX is 250 milliwatts. The first reference received power information is notified using a Received Power Packet (mode 1) defined in the WPC standard, but other messages may also be used for notification. The TX determines whether to accept the first reference received power information based on the power transmission state of its own device. If the TX accepts, it transmits an acknowledgement (ACK) to the RX, and if not, it transmits a negative acknowledgement (NAK) to the RX.

[0056] When RX receives an ACK from TX (F510), it performs processing to transmit information including the received power in a load connection state (maximum load state, a load state in which the transmitted power is equal to or greater than the second threshold) to TX (hereinafter, this information will be referred to as "second reference received power information"). In this embodiment, since GP is 5 watts, the second reference received power information is, for example, the received power information of RX when the transmitted power of TX is 5 watts. Here, the second reference received power information is notified using a Received Power Packet (mode 2) specified in the WPC standard, but this notification may be performed using another message. RX transmits a transmitted power output change instruction including a value (positive value) corresponding to the transmitted power increase in order to increase the transmitted power from TX to 5 watts (F511). When TX receives this transmitted power output change instruction, if it is possible to increase the transmitted power, it responds to RX with an ACK and increases the transmitted power (F512, F513). The second reference received power information is received power information when the transmitted power of TX is 5 watts. Therefore, when TX receives a power increase request exceeding 5 watts from RX, TX responds with a NAK to the transmitted power output change instruction, notifying RX that the transmitted power output cannot be changed (F514). This prevents power above the specified level from being transmitted. Upon receiving a NAK from TX, RX determines that the preset transmitted power has been reached, and transmits second reference received power information regarding the received power in the load-connected state to TX (F516). TX can calculate the amount of power loss between TX and RX in the load-disconnected state and the load-connected state based on the received power values ​​indicated by the first reference received power information and the second reference received power information, and the transmitted power values ​​of TX when those received power values ​​were obtained, respectively. Furthermore, by interpolating based on the relationship between these power losses, the TX can estimate the power loss value between the TX and RX for all possible transmission powers of the TX (here, from 250 milliwatts to 5 watts) (F517). The TX transmits an ACK in response to the second reference received power information from the RX (F518), completing the calibration process. Then, when the TX determines that the charging process of the RX can be started, it starts the power transmission process to the RX, and charging of the RX begins.

[0057] Before starting the power transmission process, the TX and RX perform device authentication (F519). If they mutually determine that they can support a larger GP, the GP may be reset to a larger value, such as 15 watts (F520). In this case, the RX and TX increase the TX's transmission power using a transmission power output change command, ACK, and NAK to increase the TX's transmission power to 15 watts (F521-F524). Then, when the GP reaches 15 watts, the TX and RX perform calibration again. That is, the RX transmits information including the received power in the RX's load-connected state when the TX's transmission power is 15 watts (hereinafter, this information will be referred to as "third reference received power information") (F525). The TX performs calibration based on the received power indicated by the first reference received power information, second reference received power information, and third reference received power information, and the transmitted power when each received power was obtained. This enables the TX to estimate the amount of power loss between the TX and RX for all possible transmission powers (here, from 250 milliwatts to 15 watts) (F526).Then, the TX transmits an ACK in response to the third reference received power information from the RX (F527), completing the calibration process.After that, the TX starts the power transmission process to the RX when it determines that the charging process for the RX can be started, and charging of the RX begins (F528).

[0058] During the power transfer phase, the TX transmits power to the RX. Furthermore, during the power transfer phase, foreign object detection is performed using the power loss method described above. Because foreign object detection using the power loss method can be performed while continuing power transmission, high power transmission efficiency can be maintained. However, the accuracy of foreign object detection may decrease when the power transmitting device 102 is transmitting a large amount of power. Therefore, foreign object detection using only the power loss method may result in erroneous foreign object detection or an erroneous determination that a foreign object is not present even when a foreign object is present. In particular, the power transfer phase is a phase in which the TX transmits power. If a foreign object is present near the TX and RX during power transmission, the foreign object generates significant heat, etc., so it is necessary to improve the accuracy of foreign object detection during this phase. Therefore, in this embodiment, in order to improve the accuracy of foreign object detection, a waveform attenuation method described below is used as a foreign object detection method different from the power loss method, and further foreign object detection is performed.

[0059] (Foreign object detection method using waveform attenuation method) In the power transfer phase, the power transmitting device 101 transmits power to the power receiving device 102. If foreign object detection can be performed using the transmission waveform (voltage waveform or current waveform) related to this power transmission, it will be possible to detect foreign objects without defining and using a new signal for foreign object detection. As such a method, in this embodiment, a method for detecting foreign objects based on the attenuation state of a transmitted wave (this method will be referred to as the "waveform attenuation method") is used. The principle of foreign object detection using this waveform attenuation method will be described with reference to FIG. 6. Here, foreign object detection using a transmission waveform related to power transmission from the power transmitting device 101 (TX) to the power receiving device 102 (RX) will be described as an example.

[0060] In FIG. 6, the waveform shows the change over time in the voltage value 600 (hereinafter simply referred to as the voltage value) of the high-frequency voltage applied to the power transmitting antenna 205 of the TX. The horizontal axis of FIG. 6 represents time, and the vertical axis represents the voltage value. The TX stops transmitting power at time T0 from a state in which the TX is transmitting power to the RX via the power transmitting antenna 205. That is, at time T0, the power supply for power transmission from the power supply unit 202 is stopped. The frequency of the transmission wave for power transmission from the TX is a predetermined frequency, for example, a fixed frequency between 85 kHz and 205 kHz used in the WPC standard. Point 601 is a point on the envelope of the high-frequency voltage and is the voltage value at time T1. (T1, A1) in the figure indicates that the voltage value at time T1 is A1. Similarly, point 602 is a point on the envelope of the high-frequency voltage and is the voltage value at time T2. (T2, A2) in the figure indicates that the voltage value at time T2 is A2. The quality factor (Q value) of the power transmitting antenna 205 can be determined based on the change in the voltage value over time after time T0. For example, the Q value is calculated using Equation 1 based on the time, voltage value, and frequency f of the high-frequency voltage at points 601 and 602 on the voltage value envelope. Q=πf(T2-T1) / ln(A1 / A2) (Equation 1) This Q value decreases when a foreign object is present near TX and RX. This is because the presence of a foreign object causes energy loss. Therefore, focusing on the slope of the voltage attenuation, the presence of a foreign object causes more energy loss due to the foreign object than the absence of a foreign object. Therefore, the slope of the line connecting points 601 and 602 becomes steeper, and the attenuation rate of the waveform amplitude increases. In other words, the waveform attenuation method determines the presence or absence of a foreign object based on the attenuation state of the voltage value between points 601 and 602. The waveform attenuation method can determine the actual presence or absence of a foreign object by comparing any numerical value corresponding to this attenuation state. For example, the determination can be made using the above-mentioned Q value. In this case, a lower Q value means a higher waveform attenuation rate (the degree of decrease in waveform amplitude per unit time). Alternatively, the determination can be made using the slope of the line connecting points 601 and 602, calculated by (A1-A2) / (T2-T1). Furthermore, if the time (T1 and T2) for observing the attenuation state of the voltage value is fixed, the determination may be made using a value (A1-A2) representing the difference between the voltage values ​​or a value (A1 / A2) representing the ratio of the voltage values. Furthermore, if the voltage value A1 immediately after power transmission is stopped is constant, the determination may also be made using the value of the voltage value A2 after a predetermined time has elapsed. Furthermore, the determination may also be made using the value of the time (T2-T1) until the voltage value A1 reaches the predetermined voltage value A2.

[0061] As described above, the presence or absence of a foreign object can be determined based on the attenuation state of the voltage value during the power transmission outage period, and there are multiple values ​​that represent this attenuation state. In this embodiment, these values ​​that represent the attenuation state are called "waveform attenuation indexes." For example, as described above, the Q value calculated by Equation 1 is a value that represents the attenuation state of the voltage value related to power transmission and is included in the "waveform attenuation index." All waveform attenuation indexes correspond to the waveform attenuation rate. Note that in the waveform attenuation method, the waveform attenuation rate itself may be measured as the "waveform attenuation index." The following description will focus on the case where the waveform attenuation rate is used as the waveform attenuation index, but the contents of this embodiment can also be applied to cases where other waveform attenuation indexes are used.

[0062] Even if the vertical axis of FIG. 6 represents the current value flowing through the power transmitting antenna 205, the attenuation state of the current value during the power transmission suspension period changes depending on the presence or absence of a foreign object, as in the case of the voltage value. Furthermore, the waveform attenuation rate is higher when a foreign object is present than when a foreign object is not present. Therefore, a foreign object can also be detected by applying the above-described method to the temporal change in the current value flowing through the power transmitting antenna 205. That is, the presence or absence of a foreign object can be determined and detected using waveform attenuation indicators such as the Q value obtained from the current waveform, the slope of the current value attenuation, the difference between the current values, the ratio of the current values, the absolute value of the current values, and the time until the current value reaches a predetermined value. Furthermore, foreign object detection may be performed based on both the attenuation state of the voltage value and the attenuation state of the current value, such as determining the presence or absence of a foreign object using an evaluation value calculated from the waveform attenuation indicator of the voltage value and the waveform attenuation indicator of the current value. In the above example, the waveform attenuation indicator is measured during a period when the TX temporarily suspends power transmission. However, the waveform attenuation indicator may also be measured during a period when the TX temporarily reduces the power supplied from the power supply unit 202 from a predetermined power level to a lower power level.

[0063] A method for detecting a foreign object based on the transmission waveform during power transmission using the waveform attenuation method will be described with reference to FIG. 7. FIG. 7 shows the transmission waveform when foreign object detection is performed using the waveform attenuation method, with the horizontal axis representing time and the vertical axis representing the voltage value of the power transmitting antenna 205. As in FIG. 6, the vertical axis may represent the current value of the current flowing through the power transmitting antenna 205. Note that, during the transient response period immediately after the TX starts transmitting power, it is expected that the transmission waveform will not be stable. For this reason, during this transient response period, the RX controls the TX so as not to communicate with the TX (communication by load modulation). Furthermore, the TX controls the RX so as not to communicate with the RX (communication by frequency shift keying). The TX temporarily suspends power transmission when it is time to detect a foreign object. Since the amplitude of the transmission waveform attenuates when power transmission is halted, the TX calculates the waveform attenuation rate of this attenuated waveform. The TX then determines that a foreign object is present when the calculated waveform attenuation rate exceeds a predetermined threshold. If no foreign object is detected within a predetermined foreign object detection period, the TX resumes power transmission after that period. After resuming power transmission, the TX repeatedly executes the above-described waiting for the transient response period, identifying the timing of foreign object detection, stopping power transmission, and foreign object detection processing. In this way, foreign object detection can be performed using the waveform attenuation method in addition to the power loss method during the power transfer phase.

[0064] (Processing of power transmission equipment when applying the waveform attenuation method to the WPC standard) Next, a process executed by the power transmitting device 101 when foreign object detection is performed by applying this waveform attenuation method to the WPC standard will be described. When performing foreign object detection using the waveform attenuation method, the power transmitting device 101 measures in advance the waveform attenuation rate when no foreign object is present and calculates a threshold value based on that. The power transmitting device 101 then performs foreign object detection using the waveform attenuation method, and if the measured waveform attenuation rate is greater than the threshold value, it determines that "a foreign object is present" or "there is a possibility that a foreign object is present." On the other hand, if the measured waveform attenuation rate is less than the threshold value, the power transmitting device 101 determines that "no foreign object is present" or "there is a high possibility that a foreign object is not present."

[0065] In the waveform attenuation method, the power transmitting device 101 temporarily stops power transmission and observes the attenuation rate of the transmitted radio wave to detect a foreign object, which can result in a decrease in power transmission efficiency due to the temporary suspension of power transmission. On the other hand, the waveform attenuation method can detect a foreign object with high accuracy even when a large amount of power is being transmitted. In other words, even in situations where it is difficult to accurately detect a foreign object using the power loss method, the waveform attenuation method can detect a foreign object with higher accuracy.

[0066] In the above example, when foreign object detection is performed using the waveform attenuation method, the waveform attenuation rate in a state where no foreign object is present is measured before the start of power transmission, and the threshold value is calculated based on that measurement. Therefore, foreign object detection may be performed using a threshold value calculated from the waveform attenuation rate measured at a timing after the start of power transmission when it is estimated that no foreign object is present. For example, the TX confirms the absence of a foreign object using the power loss method during power transmission, performs a first waveform attenuation rate measurement, and calculates a threshold value based on the measured waveform attenuation rate. Because this first waveform attenuation rate measurement is performed immediately after the absence of a foreign object is confirmed in advance using the power loss method, the measured waveform attenuation rate can be considered to be the waveform attenuation rate in a state where no foreign object is present. Next, the TX resumes power transmission and performs a second waveform attenuation rate measurement when it determines that foreign object detection should be performed. The presence or absence of a foreign object can be determined by comparing the result of the second waveform attenuation rate measurement with the result of the first waveform attenuation rate measurement or a threshold value calculated based on the first waveform attenuation rate measurement. That is, when foreign object detection is performed using the waveform attenuation method, the waveform attenuation rate measured at that time may be compared with the waveform attenuation rate measured previously when no foreign object was present, or with a corresponding threshold value.

[0067] In the above example, the frequency of the transmission wave for power transmission from the power transmitting device 101 is a fixed frequency. However, the presence or absence of a foreign object may be determined by executing the above-described foreign object detection process at each of multiple frequencies and combining the results. By performing foreign object detection using waveform attenuation rates at multiple frequencies rather than just one frequency, foreign object detection can be performed with higher accuracy. This will be described later.

[0068] In addition, in this embodiment, immediately after the power transmitting device 101 stops or starts power transmission, the transmission waveform becomes unstable due to a transient response, so a waiting time is provided before transitioning to each operation. This instability in the transmission waveform is caused by a sudden start or stop of power transmission. Therefore, in order to mitigate this instability in the transmission waveform, the power transmitting device 101 may perform control so as to gradually increase the transmission power when starting power transmission and gradually decrease the transmission power when stopping power transmission. Note that the power transmitting device 101 may gradually increase or decrease the transmission power, or may perform both.

[0069] (Foreign object detection method using waveform attenuation method with multiple frequencies) Foreign objects between the power transmitting device 101 and the power receiving device 102 can cause heat generation during power transmission. Therefore, when a foreign object is detected, the power transmitting device 101 must detect the foreign object early and perform power transmission control, such as stopping power transmission or reducing the transmitted power. Foreign objects between the power transmitting device 101 and the power receiving device 102 can have various sizes and shapes. In the waveform attenuation method described in FIGS. 6 and 7 , the power transmitting device 101 transmits power at a predetermined frequency, temporarily stops the power transmission, and detects a foreign object based on the waveform attenuation rate of the transmitted wave. However, the energy consumed by a foreign object can vary depending on the frequency. Specifically, when foreign object A is present, the waveform attenuation rate of the waveform at frequency X is large but the waveform attenuation rate of the waveform at frequency Y is small. When foreign object B is present, the waveform attenuation rate of the waveform at frequency X is small but the waveform attenuation rate of the waveform at frequency Y is large. This is because the frequency characteristics of the energy consumed by a foreign object vary depending on the size and shape of the foreign object. In the above example, if frequency Y is used for the waveform, the waveform attenuation rate is small even if foreign object A is present, and therefore, even if foreign object A is present, it may be erroneously determined that "no foreign object is present." To prevent such erroneous determination, it is effective to perform foreign object detection using not only the waveform attenuation rate of the waveform of frequency Y but also the waveform attenuation rate of the waveform of frequency X. In other words, measuring the attenuation rates of waveforms of multiple frequencies and performing foreign object detection can reduce the probability of erroneous determination. Below, the processes performed by the power transmitting device 101 and the power receiving device 102 when performing such foreign object detection will be described with reference to FIGS. 11 and 12. FIG. 11 shows an example of the flow of the process performed by the power transmitting device 101, and FIG. 12 shows an example of the flow of the process performed by the power receiving device 102.

[0070] While transmitting power to the power receiving device 102, the power transmitting device 101 uses a predetermined packet via communication to notify the power receiving device 102 that it should perform foreign object detection using a waveform attenuation method (S1101, S1102). Upon receiving the packet, the power receiving device 102 transmits a command requesting the power transmitting device 101 to perform foreign object detection. This command may include time information for notifying the power transmitting device 101 of the time (timing) to perform foreign object detection. Note that the time to perform foreign object detection may be notified to the power receiving device 102 from the power transmitting device 101 using the above-mentioned packet. In this way, the power transmitting device 101 and the power receiving device 102 share information about the timing to perform foreign object detection (S1102, S1202). The power transmitting device 101 stops power transmission at the time to perform foreign object detection (S1103). Then, the power transmitting device 101 turns on the switch 209 to short-circuit, and forms a closed loop circuit formed by the power transmitting antenna 205, the resonant capacitor 207, and the switch 209, which resonates at frequency f1 (S1104). Note that the power transmitting device 101 may stop power transmission after turning on the switch 209 to short-circuit. Alternatively, the power transmitting device 101 may stop power transmission at the same time as turning on the switch 209 to short-circuit. Meanwhile, the power receiving device 102 turns on the switch 209 to short-circuit, and forms a closed loop circuit formed by the power receiving antenna 305, the resonant capacitor 312, and the switch 309, which resonates at frequency f2, during the time when foreign object detection is performed (S1203). As a result, an attenuated waveform of frequency f1 is observed at the power transmitting antenna 205 and resonant capacitor 207 of the power transmitting device 101 (S1105), and an attenuated waveform of frequency f2 is observed at the power receiving antenna 305 and resonant capacitor 312 of the power receiving device 102 (S1204).

[0071] Here, the power transmitting antenna 205 and the power receiving antenna 305 are electromagnetically coupled to each other so that wireless power transmission and wireless communication can be performed therebetween. Therefore, an attenuated waveform of frequency f2 can also be observed in a circuit formed by the power transmitting antenna 205 and the resonant capacitor 207 present in the power transmitting device 101 (S1106). Similarly, an attenuated waveform of frequency f1 can also be observed in a circuit formed by the power receiving antenna 305 and the resonant capacitor 312 present in the power receiving device 102 (S1205). Here, the attenuated waveform observed in the circuit formed by the power transmitting antenna 205 and the resonant capacitor 207 of the power transmitting device 101, or the attenuated waveform observed in the circuit formed by the power receiving antenna 305 and the resonant capacitor 312 of the power receiving device 102, is schematically shown in FIG. 8. When the power transmitting device 101 stops power transmission and turns on switch 209 to short-circuit, and the power receiving device 102 turns on switch 309 to short-circuit, a mixed waveform of frequencies f1 and f2 can be observed during the foreign object detection period, as shown in Fig. 8. Then, as described with reference to Figs. 6 and 7, the power transmitting device 101 and the power receiving device 102 can detect the presence or absence of a foreign object from this waveform attenuation index (S1107, S1206). By performing the above-described operations, the power transmitting device 101 and the power receiving device 102 can observe the waveform attenuation of a mixed wave of two frequencies, rather than a single frequency. Then, by observing the waveform attenuation index of this mixed wave, the power transmitting device 101 and the power receiving device 102 can improve the accuracy of foreign object detection.

[0072] A method for detecting a foreign object from a mixed wave of two frequencies will now be described. As shown in FIG. 8, a waveform in which two frequencies are mixed is observed during a foreign object detection period. By observing the time waveform of the decay waveform of the mixed wave, the decay rates of the waveforms f1 and f2 can be determined. For example, as shown in FIG. 8, the decay state of the waveform of frequency f1 and the decay state of the waveform of frequency f2 can be determined. The method for determining the waveform decay index from the decay waveforms of frequencies f1 and f2 is as described above with reference to FIGS. 6 and 7.

[0073] The power transmitting device 101 or the power receiving device 102 calculates in advance waveform attenuation indexes for frequencies f1 and f2 in a state where no foreign object is present. Then, the power transmitting device 101 or the power receiving device 102 calculates a threshold for frequency f1 based on the waveform attenuation index for frequency f1 in a state where no foreign object is present, and calculates a threshold for frequency f2 based on the waveform attenuation index for frequency f2 in a state where no foreign object is present. The power transmitting device 101 or the power receiving device 102 compares the waveform attenuation index identified from the observed attenuation waveform of frequency f1 with the threshold calculated for frequency f1. Furthermore, the power transmitting device 101 or the power receiving device 102 compares the waveform attenuation index identified from the observed attenuation waveform of frequency f2 with the threshold calculated for frequency f2. Then, the power transmitting device 101 or the power receiving device 102 determines that "a foreign object is present" or "there is a high possibility that a foreign object is present" when the waveform attenuation index for frequency f1 exceeds a threshold and the waveform attenuation index for frequency f2 exceeds a threshold. Alternatively, the power transmitting device 101 or the power receiving device 102 may determine that "a foreign object is present" or "there is a high possibility that a foreign object is present" when the waveform attenuation index for frequency f1 exceeds a threshold or when the waveform attenuation index for frequency f2 exceeds a threshold. In other words, the power transmitting device 101 or the power receiving device 102 can determine that "a foreign object is present" or "there is a high possibility that a foreign object is present" when the waveform attenuation index for either frequency f1 or f2 exceeds a threshold. This enables more reliable foreign object detection.

[0074] As described above, the mixed wave of frequencies f1 and f2 can be observed by both the power transmitting device 101 and the power receiving device 102. Therefore, the above-described "method for detecting a foreign object from a mixed wave of two frequencies" can be performed by both the power transmitting device 101 and the power receiving device 102. In the above-described embodiment, an example has been described in which the threshold value for frequency f1 and the threshold value for frequency f2 are set separately. However, this is not limited to this, and the same value may be set as these threshold values. Furthermore, when the switch 209 is turned ON, the power transmitting device 101 may turn OFF the switch 208 to disconnect the power transmitting antenna 205, the resonant capacitor 207, and the power transmitting unit 203. This makes it possible to eliminate the influence of the power transmitting unit when detecting a foreign object using the waveform attenuation method, thereby enabling more accurate foreign object detection. Furthermore, when the switch 309 is turned ON, the power receiving device 102 may turn the switch 315 OFF to disconnect the power receiving antenna 305 and the resonant capacitor 312 from the power receiving unit 303. This makes it possible to eliminate the influence of the power transmitting unit when detecting a foreign object using the waveform attenuation method, thereby enabling more accurate detection of a foreign object.

[0075] By having at least one of the power transmitting device 101 and the power receiving device 102 operate as described above and detecting foreign objects based on the voltage or current characteristics at multiple frequencies (here, the waveform attenuation index of the attenuated waveform), it becomes possible to detect foreign objects with higher accuracy.

[0076] (Modification 1 of the foreign object detection method using the waveform attenuation method with multiple frequencies) In the above example, a method for detecting foreign objects based on the time waveform (decay waveform) of frequency f1 and the time waveform (decay waveform) of frequency f2 was described. In this modified example, foreign objects are detected from the signal spectra of frequencies f1 and f2, rather than the time waveforms of frequencies f1 and f2. That is, when foreign object detection is performed based on the time waveform, it may not be easy to identify the waveform decay index if noise is mixed in and the time waveform is disturbed. In contrast, in this modified example, arithmetic processing is performed on the time waveform to identify the signal spectrum (signal intensity, frequency spectrum) for each frequency, and foreign objects are detected based on that signal spectrum, making it possible to perform foreign object detection that is robust against disturbances in the time waveform.

[0077] In this modification, for example, the power transmitting device 101 or the power receiving device 102 performs arithmetic processing on the waveform of the analysis section as shown in FIG. 8 to convert at least the components of frequencies f1 and f2 in the frequency domain into an identifiable format. The power transmitting device 101 or the power receiving device 102 can identify the signal spectrum (signal strength, frequency spectrum) for each frequency of the analysis section by, for example, performing a Fourier transform on the waveform of the analysis section. The signal spectrum (signal strength, frequency spectrum) for each frequency of the analysis section is identified as shown in, for example, FIG. 9. If a foreign object is present between the power transmitting device 101 and the power receiving device 102, energy is consumed in the foreign object, and the intensity of the signal spectrum as shown in FIG. 9 also becomes weaker.

[0078] Therefore, the power transmitting device 101 or the power receiving device 102 performs foreign object detection by utilizing this characteristic. For example, the power transmitting device 101 or the power receiving device 102 identifies the signal spectra of frequencies f1 and f2 in a state where no foreign object is present. Then, the power transmitting device 101 or the power receiving device 102 calculates a threshold for frequency f1 based on the signal spectrum of frequency f1 in a state where no foreign object is present. Furthermore, the power transmitting device 101 or the power receiving device 102 calculates a threshold for frequency f2 based on the signal spectrum of frequency f2 in a state where no foreign object is present. Then, the power transmitting device 101 or the power receiving device 102 compares the signal spectrum identified from the observed attenuation waveform of frequency f1 with the threshold for frequency f1. Furthermore, the power transmitting device 101 or the power receiving device 102 compares the signal spectrum identified from the observed attenuation waveform of frequency f2 with the threshold for frequency f2. Then, when the signal spectrum of frequency f1 exceeds the threshold and the signal spectrum of frequency f2 exceeds the threshold, the power transmitting device 101 or the power receiving device 102 determines that "a foreign object is present" or "there is a high possibility that a foreign object is present." Furthermore, when the signal spectrum of frequency f1 exceeds the threshold or when the signal spectrum of frequency f2 exceeds the threshold, the power transmitting device 101 or the power receiving device 102 determines that "a foreign object is present" or "there is a high possibility that a foreign object is present." In other words, when the signal spectrum of at least one of frequency f1 and frequency f2 exceeds the threshold, the power transmitting device 101 or the power receiving device 102 determines that "a foreign object is present" or "there is a high possibility that a foreign object is present."

[0079] This enables more reliable foreign object detection. As described above, the mixed wave of frequency f1 and frequency f2 can be observed by both the power transmitting device 101 and the power receiving device 102. Therefore, the foreign object detection method according to this modification can also be performed by both the power transmitting device 101 and the power receiving device 102. Also, in this modification, the threshold value for frequency f1 and the threshold value for frequency f2 may be set separately or may be set to the same value.

[0080] In this way, by having at least one of the power transmitting device 101 and the power receiving device 102 operate as described above and performing foreign object detection based on signal spectra of multiple frequencies, it becomes possible to detect foreign objects with higher accuracy.

[0081] (Modification 2 of the foreign object detection method using the waveform attenuation method using multiple frequencies) The above-described configuration describes a method for detecting foreign objects based on the time waveform of a mixed wave of frequencies f1 and f2 or the signal spectrum of that time waveform at frequencies f1 and f2. In this configuration, if frequencies f1 and f2 are very close to each other, the correlation between the energy consumption of foreign objects at these frequencies is high, reducing the benefits of detecting foreign objects using multiple frequencies. Furthermore, if the difference between frequencies f1 and f2 is slight, a "beat" occurs in the combined wave, making foreign object detection as described above difficult. For this reason, in this modified example, foreign objects are detected using frequencies different from frequencies f1 and f2 instead of these frequencies, or using additional frequencies in addition to frequencies f1 and f2.

[0082] For example, a frequency f1 determined by the power transmitting antenna 205 and resonant capacitor 207 of the power transmitting device 101 and a frequency f2 determined by the power receiving antenna 305 and resonant capacitor 312 of the power receiving device 102 are specified to be included within a predetermined frequency range. Here, the predetermined frequency ranges are specified so that the frequencies f1 and f2 are separated from each other by a predetermined frequency width. Then, the inductance and capacitance values ​​of the power transmitting antenna 205 and resonant capacitor 207 of the power transmitting device 101 and the power receiving antenna 305 and resonant capacitor 312 of the power receiving device 102 are determined so that the frequencies f1 and f2 are included within the respective frequency ranges. This makes it possible to separate the frequencies f1 and f2 from each other by the predetermined frequency width, enabling more accurate foreign object detection.

[0083] 2 and 3, the power transmitting device 101 or the power receiving device 102 may have a plurality of resonant capacitors, and by switching between them, the resonant frequency of the power transmitting device 101 and the resonant frequency of the power receiving device 102 may be set to be separated in advance by a predetermined frequency width. The power transmitting device 101 and the power receiving device 102 communicate with each other to determine a first resonant frequency of the power transmitting device 101 and a second resonant frequency of the power receiving device 102. At this time, the first resonant frequency and the second resonant frequency are set to be separated by a predetermined frequency width. In order to realize the first resonant frequency determined between the power transmitting device 101 and the power receiving device 102, the power transmitting device 101 controls, for example, a switch 210 connected to the resonant capacitor 212 and a switch 211 connected to the resonant capacitor 213. The power transmitting device 101 executes control to turn on at least one of the switches 209 to 211 so as to achieve a circuit configuration that obtains the determined first resonant frequency. Furthermore, in order to realize the second resonant frequency determined between the power transmitting device 101 and the power receiving device 102, the power receiving device 102 controls, for example, the switch 310 connected to the resonant capacitor 313 and the switch 311 connected to the resonant capacitor 314. The power receiving device 102 executes control to turn on at least one of the switches 309 to 311 so as to achieve a circuit configuration that achieves the determined second resonant frequency. In this way, the power transmitting device 101 and the power receiving device 102 each have a plurality of resonant capacitors and switches, and by appropriately controlling them based on information determined between the power transmitting device 101 and the power receiving device 102, the respective resonant frequencies are spaced apart. This enables more accurate foreign object detection. Note that the power transmitting device 101 and the power receiving device 102 may have more resonant capacitors and switches connected thereto than those shown in FIGS. 2 and 3 . This enables more precise control of the resonant frequency, thereby enabling more accurate foreign object detection.

[0084] As described above, foreign object detection can be performed based on the characteristics (e.g., the attenuation rate of the time waveform) of the voltage or current in the resonant circuit at three or more frequencies. In this case, if the characteristic at one of the three or more frequencies exceeds a threshold, it can be determined that a foreign object is present. Alternatively, if the characteristics at two or more (e.g., all) of the three or more frequencies exceed a threshold, it can be determined that a foreign object is present.

[0085] Furthermore, the frequency f1 determined by the power transmitting antenna 205 and the resonant capacitor 207 of the power transmitting device 101 may be controlled to be at or near 13.56 MHz, which is a frequency band used in NFC (Near Field Communication). Alternatively, or in addition, the frequency f2 determined by the power receiving antenna 305 and the resonant capacitor 312 of the power receiving device 102 may be controlled to be at or near 13.56 MHz, which is a frequency band used in NFC. To achieve this, the power transmitting device 101 or the power receiving device 102 appropriately sets at least one of the inductance and capacitance or controls a switch, as described above, to control the resonant frequency to 13.56 MHz. This makes it possible to detect an NFC-using device or an NFC tag, other than the power receiving device 102, placed on the power transmitting device 101. Note that NFC is just an example, and frequencies used in other wireless standards may be used as the resonant frequency of the power transmitting device 101 or the power receiving device 102. This allows the power transmitting device 101 or the power receiving device 102 to detect that a device conforming to that wireless standard has been placed on the device.

[0086] In the above-described embodiment, the timing for measuring the waveform attenuation index and the signal spectrum in advance in a state where no foreign object is present is described. In the WPC standard, foreign object detection is performed using the Q-factor measurement method in the negotiation phase as described above. If it is determined that no foreign object is present as a result of foreign object detection, the system transitions to the calibration phase and the power transfer phase. That is, transitioning to a phase subsequent to the negotiation phase means that the Q-factor measurement method has determined that no foreign object is present. Therefore, by measuring the waveform attenuation rate in one of the negotiation phase, calibration phase, and power transfer phase, it is highly likely that the waveform attenuation rate in a state where no foreign object is present can be measured. Therefore, the timing for measuring the waveform attenuation rate in a state where no foreign object is present can be any of the negotiation phase, calibration phase, and power transfer phase.

[0087] On the other hand, a foreign object may be introduced between the power transmitting device 101 and the power receiving device 102 during the period from when the absence of a foreign object is confirmed by the Q-factor measurement method in the negotiation phase until the measurement of the waveform attenuation factor in the absence of a foreign object is performed. In such a case, it is expected that the waveform attenuation factor in the absence of a foreign object cannot be measured accurately. For this reason, it is useful to measure the waveform attenuation factor immediately after it is confirmed that no foreign object is present.

[0088] To this end, for example, the power receiving device 102 detects a change in the state of the power transmitting device 101 or the power receiving device 102 and determines whether or not a threshold value used for foreign object detection using the waveform attenuation method needs to be updated or added. If the power receiving device 102 determines that a threshold value needs to be updated or added, it transmits a command to the power transmitting device 101 to execute foreign object detection using the power loss method. In response to receiving this command, the power transmitting device 101 executes foreign object detection using the power loss method and determines whether or not a foreign object is present. If the power transmitting device 101 determines that no foreign object is present or that there is a high possibility that no foreign object is present, it notifies the power receiving device 102 that a foreign object is not present. The power receiving device 102 executes an operation to set a threshold value used for foreign object detection using the waveform attenuation method and to update or add the threshold value. In other words, if the power receiving device 102 is notified that no foreign object is present, it transmits a command to the power transmitting device 101 requesting that a measurement be performed to set a threshold value for foreign object detection using the waveform attenuation method. In response to receiving this command, the power transmitting device 101 suspends power transmission. The power transmitting device 101 and the power receiving device 102 also control the circuits as described above to measure the waveform attenuation index and signal spectrum of frequencies f1 and f2. The power transmitting device 101 then uses the measured waveform attenuation index and signal spectrum to calculate and set a threshold value for foreign object detection using the waveform attenuation method.

[0089] In this way, when the power receiving device 102 determines to update or change the threshold value for the waveform attenuation method, it causes the power transmitting device 101 to confirm that no foreign object is present using the power loss method immediately before performing the operation for updating or changing the threshold value for the waveform attenuation method. Then, in response to confirmation that no foreign object is present, the power receiving device 102 performs the operation for updating or changing the threshold value for the waveform attenuation method. This makes it possible to sufficiently increase the probability that no foreign object is present when performing measurements to set the threshold value for foreign object detection using the waveform attenuation method, and to set the foreign object detection threshold value with greater accuracy.

[0090] In the above example, a method for confirming the absence of a foreign object using the power loss method immediately before performing an operation to update or change the threshold value for the waveform attenuation method has been described. However, the power loss method also has a threshold value for determining the presence or absence of a foreign object. Furthermore, as with the waveform attenuation method, it may be necessary to update or add a threshold value for the power loss method when the state of the power transmitting device 101 or the power receiving device 102 changes. This threshold value update or addition can be performed in the power transfer phase. That is, similar to the above method, when the power receiving device 102 determines to set, update, or change a threshold value for the power loss method, it performs a process for confirming the absence of a foreign object using the waveform attenuation method immediately before performing the operation. Then, in response to confirming the absence of a foreign object using the waveform attenuation method, the power receiving device 102 can perform an operation to update or change the threshold value for the power loss method. For example, when the power receiving device 102 determines that it is necessary to update or add a threshold value used for foreign object detection using the power loss method, it transmits a command to the power transmitting device 101 to perform foreign object detection using the waveform attenuation method. In response to receiving this command, the power transmitting device 101 performs foreign object detection using the waveform attenuation method to determine whether or not a foreign object is present. If the power transmitting device 101 determines that no foreign object is present or that there is a high possibility that no foreign object is present, the power receiving device 102 notifies the power receiving device 102 that no foreign object is present. When notified that no foreign object is present, the power receiving device 102 performs an operation to update or add a threshold value used for foreign object detection using the power loss method. That is, to update or add a threshold value used for foreign object detection, the power receiving device 102 transmits to the power transmitting device 101 a command requesting execution of a measurement to set a threshold value for foreign object detection using the power loss method. The power receiving device 102 then controls the load so that the load is configured to correspond to the transmitted power of the threshold value (point) to be updated or added. Upon receiving the command, the power transmitting device 101 calculates and sets a threshold value for foreign object detection using the power loss method.This makes it possible to sufficiently increase the probability that a foreign object is not present when performing measurements to set the foreign object detection threshold using the Power Loss method, thereby enabling more accurate setting of the foreign object detection threshold. In the above embodiments, power transmission is stopped in order to detect a foreign object, but instead of completely stopping power transmission, power may be reduced to, for example, close to zero.

[0091] The present invention can also be realized by supplying a program that realizes one or more functions of the above-described embodiments to a system or device via a network or a storage medium, and having one or more processors in the computer of the system or device read and execute the program. It can also be realized by a circuit (e.g., ASIC) that realizes one or more functions.

[0092] The invention is not limited to the above-described embodiments, and various changes and modifications can be made without departing from the spirit and scope of the invention. Accordingly, the following claims are appended to apprise the public of the scope of the invention. [Explanation of symbols]

[0093] 101: power transmitting device, 201: control unit, 203: power transmitting unit, 205: power transmitting antenna, 207, 212 to 213: resonance capacitors

Claims

1. power receiving means for wirelessly receiving power from the power transmitting device; a communication means for communicating with the power transmitting device; a determination means for determining a frequency based on communication with the power transmitting device; a measuring means for measuring the signal strength at the determined frequency; a processing means for performing processing related to foreign object detection using the measured signal strength; A power receiving device comprising:

2. The power receiving device according to claim 1 , wherein the measuring means measures the signal strength during a period in which power transmission is restricted.

3. the determining means determines a first frequency and a second frequency based on communication with the power transmitting device; the measuring means measures a signal strength for the first frequency and a signal strength for the second frequency; 3. The power receiving device according to claim 1, wherein the processing means performs the processing based on the signal strength for the first frequency and the signal strength for the second frequency.

4. A method performed by a power receiving device, Communicating with the power transmission device; determining a frequency based on communication with the power transmitting device; measuring the signal strength at the determined frequency; performing a process related to foreign object detection using the measured signal intensity; A method characterized by:

5. A program for causing a computer to function as each of the means of the power receiving device according to any one of claims 1 to 3.

Citation Information

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