Wireless power system that can operate with audiovisual electronic devices
The wireless power system facilitates seamless pairing and control of audiovisual devices with wireless power receiving devices, addressing user experience and functionality issues by enabling device-specific pairing and alignment, thus enhancing the user interface and power transmission efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- APPLE INC
- Filing Date
- 2025-01-17
- Publication Date
- 2026-04-30
AI Technical Summary
Existing wireless charging systems lack efficient methods for pairing and controlling audiovisual electronic devices with wireless power receiving devices, leading to suboptimal user experience and functionality.
A wireless power system that includes a wireless power transmission device and a wireless power reception device, allowing audiovisual electronic devices to determine pairing mode with the reception device, establish communication links, and control user interfaces based on device attachment, with optional user permission and magnetic alignment structures for proper coil alignment.
Enables seamless pairing and control of audiovisual electronic devices with wireless power receiving devices, enhancing user experience by allowing audiovisual functions and data exchange, while ensuring proper alignment and efficient power transmission.
Smart Images

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Abstract
Description
Technical Field
[0001] This application claims priority to U.S. Patent Application No. 17 / 349,766, filed on June 16, 2021, and U.S. Provisional Patent Application No. 63 / 167,534, filed on March 29, 2021, the entireties of which are incorporated herein by reference. This application generally relates to power systems, and more specifically, to wireless power systems for charging electronic devices.
Background Art
[0002] In a wireless charging system, a wireless power transmission device such as a charging mat or charging pack wirelessly transmits power to a wireless power reception device such as a portable electronic device. The portable electronic device has a coil and a rectifier circuit. The coil of the portable electronic device receives an alternating current wireless power signal from the wireless power transmission device. The rectifier circuit converts the received signal into direct current power.
Summary of the Invention
[0003] A wireless power system has a wireless power transmission device and a wireless power reception device. The wireless power transmission device may include a coil and a wireless power transmission circuit coupled to the coil. The wireless power transmission circuit may be configured to transmit a wireless power signal using the coil. The wireless power reception device may include a coil configured to receive a wireless power signal from the wireless power transmission device and a rectifier circuit configured to convert the wireless power signal into direct current power.
[0004] A wireless power transmission device may have a wired connection to an audiovisual electronic device. When a wireless power receiving device is attached to a wireless power transmission device, the audiovisual electronic device can determine whether the wireless power receiving device is permitted to enter pairing mode. If permitted, the audiovisual electronic device can enter pairing mode with the wireless power receiving device. In pairing mode, the wireless power receiving device can send commands to the audiovisual electronic device to present audio or visual functions supported by the wireless power receiving device, or to send and receive data.
[0005] If the wireless powered device is still not permitted to enter pairing mode with the audiovisual electronic device, a request for permission may be displayed to the user. If the user permits pairing mode, the wireless powered device and the audiovisual electronic device can establish a communication link.
[0006] In some cases, an audiovisual electronic device may identify multiple candidate devices for a pairing mode in which the user interface of the audiovisual electronic device is controlled by an external device. Depending on whether one of the candidate devices is attached to a wireless power transmission device, the audiovisual electronic device can enter a pairing mode with that candidate device. [Brief explanation of the drawing]
[0007] [Figure 1] This is a schematic diagram of an exemplary wireless charging system, including a wireless power transmission device and a wireless power reception device, according to several embodiments.
[0008] [Figure 2] This is a circuit diagram of a wireless power transmission and reception circuit according to several embodiments.
[0009] [Figure 3]This is a side view of an exemplary wireless power transmission device, such as a wireless charging pack connected to a connector plug via a cable, according to several embodiments.
[0010] [Figure 4] This is a state diagram of an exemplary audiovisual electronic device capable of operating with a wireless charging system, according to several embodiments.
[0011] [Figure 5] This is a flowchart illustrating exemplary operations involved in operating a system in which attraction between a wireless power transmitting device and a wireless power receiving device triggers communication between the wireless power receiving device and an audiovisual electronic device, according to several embodiments.
[0012] [Figure 6] This is a flowchart illustrating exemplary operations in which the attraction of a wireless power transmitting device and a wireless power receiving device, according to several embodiments, is involved in operating a system that triggers a pairing mode between a wireless power receiving device and an audiovisual electronic device.
[0013] [Figure 7] This is a flowchart illustrating exemplary operations involved in operating a wireless power transmission device that can operate with wireless power receiving devices and audiovisual electronic devices, according to several embodiments.
[0014] [Figure 8] This is a flowchart illustrating exemplary operations involved in operating an audiovisual electronic device that can operate in conjunction with a wireless power receiving device and a wireless power transmitting device, according to several embodiments.
[0015] [Figure 9] This is a flowchart illustrating exemplary operations involved in operating a wireless power receiving device that can operate with wireless power transmitting devices and audiovisual electronic devices, according to several embodiments. [Modes for carrying out the invention]
[0016] A wireless power system includes wireless power transmission devices such as wireless charging packs. These wireless power transmission devices wirelessly transmit power to wireless power receiving devices, such as cellular phones, watches, tablet computers, earphone cases, or other electronic devices. The wireless power receiving devices use the power from the wireless power transmission devices to power themselves and charge their internal batteries.
[0017] An exemplary wireless power system (wireless charging system) is shown in Figure 1. As shown in Figure 1, the wireless power system 8 includes a wireless power transmission device such as a wireless power transmission device 12 and a wireless power receiving device such as a wireless power receiving device 24. The wireless power transmission device 12 includes a control circuit 16. The wireless power receiving device 24 includes a control circuit 30. The control circuits within system 8, such as control circuits 16 and 30, are used to control the operation of system 8. These control circuits may include processing circuits associated with application-specific integrated circuits having a microprocessor, power management unit, baseband processor, digital signal processor, microcontroller, and / or processing circuits. The processing circuits perform desired control and communication functions within devices 12 and 24. For example, the processing circuits may be used to select wireless power coils (in embodiments having multiple coils), determine the power transmission level, process sensor data and other data, process user input, handle negotiations between device 12 and device 24, send and receive in-band and out-of-band data, perform measurements, and otherwise control the operation of system 8.
[0018] The control circuits within System 8 may be configured to perform operations within System 8 using hardware (e.g., dedicated hardware or circuitry), firmware, and / or software. The software code for performing operations within System 8 is stored in a non-temporary computer-readable storage medium (e.g., a tangible computer-readable storage medium) within Control Circuit 16 and / or Control Circuit 30. The software code may be referred to as software, data, program instructions, instructions, or code. The non-temporary computer-readable storage medium may include non-volatile memory such as Non-Volatile Random-Access Memory (NVRAM), one or more hard drives (e.g., magnetic drives or solid-state drives), one or more removable flash drives, or other removable media. The software stored in the non-temporary computer-readable storage medium can be executed on the processing circuits of Control Circuit 16 and / or Control Circuit 30. The processing circuits may include application-specific integrated circuits having processing circuits, one or more microprocessors, a Central Processing Unit (CPU), or other processing circuits.
[0019] The power transmission device 12 may be a standalone power adapter (e.g., a wireless power transmission device including a power adapter circuit), a wireless charging pack, or another device coupled to a power adapter or other device by a cable, a portable device, a device incorporated into furniture, a vehicle, or other system, a removable battery case, or other wireless power transmission equipment. An exemplary configuration in which the wireless power transmission device 12 is a wireless charging pack having a cable with a plug adapted to mate with a device such as a power adapter or other electronic device equipped with a USB connector port may be described herein as an example.
[0020] The power receiving device 24 may be a portable electronic device such as a cellular phone, a wristwatch, a tablet computer, or other electronic device. The power receiving device 24 may also be a device accessory such as a case (which fits and holds an additional electronic device such as a cellular phone or earphone). The power transmitting device 12 may be coupled to a wall outlet (e.g., an AC power source), may use an AC-DC converter to generate direct current (DC) power, and / or may have a battery for supplying power. In some embodiments described herein as an example, the AC-DC converter 14 is a stand-alone power converter or is incorporated into a laptop computer or other device (such as a vehicle) having a connector port. In this type of configuration, the device 12 is separate from the device including the converter 14 and has a cable that is plugged into the connector port to receive DC power from the converter 14.
[0021] DC power can be used to supply power to the control circuit 16. During operation, a controller within the control circuit 16 uses a power transmission circuit (sometimes called a charging circuit) 52 to transmit wireless power to a power receiving circuit 54 of the device 24. The power transmission circuit 52 may be switched on and off based on a control signal provided by the control circuit 16 and may have a switching circuit (e.g., an inverter circuit 61 formed from switches such as transistors) that generates an AC current signal via one or more wireless power transmission coils such as the wireless power transmission coil 36. As an example, the coil 36 may be arranged as a planar coil array (e.g., in a configuration where the device 12 is a wireless charging mat), or may be arranged to form a cluster of coils (e.g., in a configuration where the device 12 is a wireless charging pack). As another example, the device 12 may have only a single coil. As another example, the device 12 may have a plurality of coils (e.g., two or more coils, four or more coils, six or more coils, two to six coils, less than ten coils, etc.).
[0022] When an AC current passes through one or more coils 36, the coils 36 generate an electromagnetic field signal 44 corresponding to the AC current signal. Then, the electromagnetic field signal 44 (which may be referred to as a wireless power signal) can induce a corresponding AC current to flow into one or more nearby receiving coils, such as coil 48 within the power receiving device 24. When an alternating electromagnetic field is received by coil 48, a corresponding alternating current is induced within coil 48. A rectifying circuit, such as rectifying circuit 50, including rectifying components such as synchronous rectifying metal oxide semiconductor transistors disposed within a bridge network, converts the received AC signal (the received alternating signal associated with electromagnetic field signal 44) into a DC voltage signal for powering device 24 from one or more coils 48.
[0023] The DC voltage generated by the rectifier circuit 50 (sometimes called the rectifier output voltage Vrect) can be used to charge a battery such as the battery 58 and to power other components within the device 24. For example, the device 24 may include an input / output device 56. The input / output device 56 may include an input device for collecting user input and / or performing environmental measurements, and may also include an output device for providing output to the user. As an example, the input / output device 56 may include a display (screen) for generating a visual output, a speaker for presenting the output as an audio signal, a light-emitting diode status indicator light and other light-emitting components for emitting light to provide status information and / or other information to the user, a tactile device for generating vibration and other tactile outputs, and / or other output devices. The input / output device 56 may also include sensors for collecting user input and / or performing measurements of the surroundings of the system 8.Exceptional sensors that may be included in the input / output device 56 include three-dimensional sensors (e.g., three-dimensional image sensors such as structured light sensors that emit a light beam and use a two-dimensional digital image sensor to collect image data for a three-dimensional image from a light spot generated when a target is illuminated by the light beam, binocular three-dimensional image sensors that collect three-dimensional images using two or more cameras in a binocular imaging configuration, three-dimensional lidar (light detection and ranging) sensors, three-dimensional high-frequency sensors, or other sensors that collect three-dimensional image data), cameras (e.g., infrared and / or visible cameras having corresponding infrared and / or visible digital image sensors, and / or ultraviolet cameras), eye-tracking sensors (e.g., eye-tracking systems based on image sensors, and, optionally, light sources that emit one or more light beams that are tracked using image sensors after being reflected from the user's eyes), touch sensors, buttons, capacitive proximity sensors, infrared proximity sensors, etc. Sensors such as light-based (optical) proximity sensors, other proximity sensors, force sensors, switch-based contact sensors, gas sensors, pressure sensors, humidity sensors, magnetic sensors, audio sensors (microphones), ambient light sensors, optical sensors for performing spectral measurements and other measurements relating to target objects (e.g., by emitting light and measuring reflected light), microphones for collecting voice commands and other audio inputs, distance sensors, motion, position, and / or orientation sensors configured to collect information relating to motion, position, and / or orientation (e.g., accelerometers, gyroscopes, compasses, and / or inertial measurement units including all of these sensors or subsets of one or two of these sensors), sensors such as buttons for detecting button press input, joysticks having sensors for detecting joystick movement, keyboards, and / or other sensors. These components (forming the load of device 24) may be powered by a DC voltage generated by a rectifier circuit 50 (and / or a DC voltage generated by a battery 58).
[0024] Device 12 may optionally have one or more input / output devices (for example, input and / or output devices of the type described in relation to input / output device 56).
[0025] Device 12 and / or Device 24 can communicate wirelessly using in-band or out-of-band communication. Device 12 may have a wireless transceiver circuit 40 that wirelessly transmits out-of-band signals to Device 24 using, for example, one or more antennas 62. The wireless transceiver circuit 40 may be used to wirelessly receive out-of-band signals from Device 24 using one or more antennas 62. Device 24 may have a wireless transceiver circuit 46 that transmits out-of-band signals to Device 12 using one or more antennas 66. A receiver circuit in the wireless transceiver 46 can receive out-of-band signals from Device 12 using one or more antennas 66. In-band transmission between Device 12 and Device 24 can be performed using coils 36 and 48. In one exemplary configuration, frequency shift keying (FSK) is used to carry in-band data from Device 12 to Device 24, and amplitude shift keying (ASK) is used to carry in-band data from Device 24 to Device 12. During these FSK and ASK transmissions, power may be wirelessly transmitted from device 12 to device 24.
[0026] Out-of-band communication between the power transmitting device 12 and the power receiving device 24 (for example, using antennas 62 and 66) may be performed at any desired frequency.For example, out-of-band communication includes wireless local area network (WLAN) communication bands such as the 2.4GHz and 5GHz Wi-Fi® (IEEE802.11) bands, wireless personal area network (WPAN) communication bands such as the 2.4GHz Bluetooth® band, cellular low band (LB) (e.g., 600-960MHz), cellular low-midband (LMB) (e.g., 1400-1550MHz), cellular midband (MB) (e.g., 1700-2200MHz), cellular high band (HB) (e.g., 2300-2700MHz), cellular ultra-high band (UHB) (e.g., 3300-5000MHz), or other cellular communication bands of approximately 600MHz to approximately 5000MHz (e.g., 3G band, 4G band). It can be performed using cellular telephone communication bands such as LTE bands and 5G New Radio Frequency Range 1 (FR1) bands below 10 GHz, near-field communications (NFC) bands (e.g., at 13.56 MHz), satellite navigation bands (e.g., L1 global positioning system (GPS) band at 1575 MHz, L5 GPS band at 1176 MHz, Global Navigation Satellite System (GLONASS) band, BeiDou Navigation Satellite System (BDS) band, etc.), ultra-wideband (UWB) communication bands supported by the IEEE 802.15.4 protocol, and / or other UWB communication protocols (e.g., a first UWB communication band at 6.5 GHz and / or a second UWB communication band at 8.0 GHz), and / or any other desired communication band.As a further example, transceiver circuits 40 and 46 can support communication at frequencies of approximately 10 GHz to 300 GHz (for example, the extremely high frequency (EHF) or millimeter-wave communication band of approximately 30 GHz to 300 GHz, and / or the centimeter-wave communication band of approximately 10 GHz to 30 GHz (sometimes called the super high frequency (SHF) band)). The communication band processed by the high-frequency transceiver circuit may be referred to herein as the frequency band or simply the "band", and may span a corresponding range of frequencies.
[0027] The control circuit 16 has an external object measurement circuit 41 which can be used to detect external objects adjacent to the device 12 (for example, on top of the charging mat, or, if desired, adjacent to the coupling surface of the charging pack). The circuit 41 can detect foreign objects such as coils, paper clips, and other metallic objects, and can detect the presence of the wireless power receiving device 24 (for example, the circuit 41 can detect the presence of one or more coils 48). During object detection and characterization operations, the external object measurement circuit 41 can be used to perform measurements on the coil 36 to determine whether any device 24 is present on the device 12.
[0028] In an exemplary configuration, the measurement circuit 41 of the control circuit 16 includes a signal generator circuit (e.g., an oscillator circuit that generates AC probe signals at one or more probe frequencies, a pulse generator that can generate impulses so that the impulse response can be measured and inductance information, Q coefficient information, etc. can be collected), and a signal detection circuit (e.g., a filter, an analog-to-digital converter, an impulse response measurement circuit). During measurement, switching circuits within device 12 (e.g., within the pack of device 12) are coordinated by the control circuit 16 to switch each of the coils 36 into use. When each coil 36 is selectively switched into use, the control circuit 16 applies a probe signal to that coil using the signal generator circuit of the signal measurement circuit 41 while measuring the corresponding response using the signal detection circuit of the signal measurement circuit 41. The measurement circuits 43 within the control circuit 30 and / or within the control circuit 16 may also be used to measure current and voltage (e.g., so that this information can be used by device 24 and / or device 12).
[0029] Alignment structures such as magnetic alignment structures 64 and 68 may be optionally included in the system. As shown in Figure 1, the wireless power transmission device 12 may have a magnetic alignment structure 64. The wireless power receiving device 24 may have a magnetic alignment structure 68. Each magnetic alignment structure 64 in the power transmission device can be magnetically coupled to the corresponding magnetic alignment structure 68 in the power receiving device. When the power transmission alignment structure 64 is coupled to the power receiving alignment structure 68, the transmitting coil 36(one or more) can be aligned with the receiving coil(one or more) 48. Thus, the magnetic alignment structure ensures proper alignment of the receiving coil with respect to the transmitting coil. The magnetic alignment structures 64 and 68 may be permanent magnets (for example, formed from a hard magnetic material that remains magnetized over time). The magnetic alignment structures may have any desired shape or arrangement. As an example, the magnetic alignment structure may form a circular ring (for example, when viewed from above). In some examples, the alignment structure may include a plurality of discrete parts arranged in an arc shape to form a circular ring. To enable the magnetic alignment structure to easily align coils 36 and 48, coil(s) 36 may be adjacent to the magnetic alignment structure 64 and / or coil 48 may be adjacent to the magnetic alignment structure 68. In practice, coil 36 and the magnetic alignment structure 64 may be a concentric circular ring and / or coil 48 and the magnetic alignment structure 68 may be a concentric circular ring.
[0030] In possible configurations, the antenna 62 of the transmitting device 12 includes an NFC loop, and the antenna 66 of the receiving device 24 includes an NFC loop. Thus, the transmitting device 12 and the receiving device 24 can communicate using Near Field Communication (NFC). When the transmitting device alignment structure 64 is coupled to the receiving device alignment structure 68, the NFC loop of the transmitting device 12 can be aligned with the NFC loop of the receiving device 24.
[0031] Devices 12 and 24 of the wireless charging system 8 can also communicate with audiovisual electronic devices such as the audiovisual electronic device 110 in Figure 1. The audiovisual electronic device 110 (sometimes called an audiovisual interface, audiovisual device, audio device, display, etc.) may be an electronic device such as a cellular phone, a wristwatch, a laptop computer, a desktop computer, a tablet computer, a computer monitor (display), a case that mates with and holds additional electronic devices such as a cellular phone or earphones, or other electronic devices. These embodiments are merely illustrative. The audiovisual interface 110 may also be a smart speaker, a streaming media player, or an in-car entertainment (ICE) system for a vehicle. Generally, the audiovisual electronic device may have audio and / or visual output components.
[0032] As shown in Figure 1, the audiovisual electronic device 110 may include a control circuit 112. The control circuit 112 may be used to control the operation of the audiovisual electronic device 110. This control circuit may include processing circuits associated with an application-specific integrated circuit having a microprocessor, power management unit, baseband processor, digital signal processor, microcontroller, and / or processing circuits. The processing circuits implement desired control and communication functions within the audiovisual electronic device 110.
[0033] The control circuit within the audiovisual electronic device 110 may be configured to perform operations within the audiovisual electronic device 110 using hardware (e.g., dedicated hardware or circuitry), firmware, and / or software. The software code for performing operations within the audiovisual electronic device 110 is stored in a non-temporary computer-readable storage medium (e.g., a tangible computer-readable storage medium) within the control circuit 112. The software code may be referred to as software, data, program instructions, instructions, or code. The non-temporary computer-readable storage medium may include non-volatile memory such as non-volatile random-access memory (NVRAM), one or more hard drives (e.g., magnetic drives or solid-state drives), one or more removable flash drives, or other removable media. The software stored in the non-temporary computer-readable storage medium may be executed on the processing circuit of the control circuit 112. The processing circuit may include an application-specific integrated circuit having a processing circuit, one or more microprocessors, a central processing unit (CPU), or other processing circuits.
[0034] The control circuit 112 may include a wireless transceiver circuit 114 that wirelessly exchanges signals (e.g., transmits and / or receives) with device 12 and / or device 24 using one or more antennas 116. For example, the audiovisual electronic device 110 can communicate with the power transmission device 12 via a wired or wireless link 60. The audiovisual electronic device 110 can communicate with the power transmission device 24 via a wired or wireless link 78. Wireless communication between the audiovisual electronic device 110 and device 12 and / or device 24 can use any of the frequency bands described above in relation to communication between device 12 and device 24. For example, wireless communication between the audiovisual electronic device 110 and device 12 and / or device 24 may use the Bluetooth frequency band or the WiFi frequency band.
[0035] The audiovisual electronic device 110 may also include an input / output (I / O) device 118. Generally, the input / output device 118 may include an input device for collecting user input and / or performing environmental measurements, and an output device for providing output to the user. For example, the audiovisual electronic device 110 may include a display (screen) 120 for presenting visual output, one or more speakers 122 for presenting output as an audio signal, light-emitting diode status indicator lights and other light-emitting components for emitting light to present status information and / or other information to the user, a tactile device for generating vibration and other tactile output, and / or other output devices. The input / output device 118 may also include one or more sensors 124 for collecting user input and / or performing measurements around the audiovisual electronic device 110.Exemplary sensors 124 that may be included in the input / output device 118 include three-dimensional sensors (e.g., three-dimensional image sensors such as structured light sensors that emit a light beam and use a two-dimensional digital image sensor to collect image data for a three-dimensional image from a light spot generated when a target is illuminated by the light beam, binocular three-dimensional image sensors that collect three-dimensional images using two or more cameras in a binocular imaging configuration, three-dimensional lidar (light detection and ranging) sensors, three-dimensional high-frequency sensors, or other sensors that collect three-dimensional image data), cameras (e.g., infrared and / or visible cameras having corresponding infrared and / or visible digital image sensors, and / or ultraviolet cameras), eye-tracking sensors (e.g., eye-tracking systems based on image sensors, and, optionally, light sources that emit one or more light beams that are tracked using image sensors after being reflected from the user's eyes), touch sensors, buttons, capacitive proximity sensors, infrared proximity sensors, etc. Examples of sensors include any light-based (optical) proximity sensor, other proximity sensors, force sensors, switch-based contact sensors, gas sensors, pressure sensors, humidity sensors, magnetic sensors, audio sensors (microphones), ambient light sensors, optical sensors for performing spectral measurements and other measurements about target objects (e.g., by emitting light and measuring reflected light), microphones for collecting voice commands and other audio inputs, distance sensors, motion, position, and / or orientation sensors configured to collect information about motion, position, and / or orientation (e.g., accelerometers, gyroscopes, compasses, and / or inertial measurement units including all of these sensors or subsets of one or two of these sensors), buttons and other sensors for detecting button press input, joysticks with sensors for detecting joystick movement, keyboards, and / or other sensors.
[0036] The input / output devices 118 within the audiovisual electronic device 110 may also include a port 126 (sometimes referred to as connector 126 or connector port 126) configured to mate with a corresponding connector. The port 126 may be, for example, a USB port (e.g., a USB Type-C port, USB 4.0 port, USB 3.0 port, USB 2.0 port, micro USB port, etc.) or a multi-pin connector port.
[0037] The control circuit 112 of the audiovisual electronic device 110 may also include a charging circuit 121. The charging circuit may be configured to supply DC power to the port 126. In this way, the charging circuit may be able to charge a portable electronic device connected to the port. In another possible configuration, the charging circuit may be able to power a wireless power transmission device, and the wireless power transmission device may be able to supply a wireless power signal to the portable electronic device.
[0038] Figure 2 is a schematic diagram of an exemplary wireless charging circuit for system 8. As shown in Figure 2, the circuit 52 may include inverter circuits such as one or more inverters 61, or other drive circuits that generate wireless power signals transmitted via an output circuit including one or more coils 36 and a capacitor such as a capacitor 70. In some embodiments, the device 12 may include a plurality of individually controlled inverters 61, each supplying a drive signal to its respective coil 36. In other embodiments, the inverters 61 are shared among the plurality of coils 36 using a switching circuit.
[0039] During operation, control signals for one or more inverters 61 are provided by the control circuit 16 at the control input 74. While a single inverter 61 and a single coil 36 are shown in the embodiment of Figure 2, multiple inverters 61 and multiple coils 36 may be used if desired. In a multiple-coil configuration, a switching circuit (e.g., a multiplexer circuit) can be used to couple a single inverter 61 to multiple coils 36 and / or each coil 36 to its respective inverter 61. During wireless power transmission operation, transistors in one or more selected inverters 61 are driven by AC control signals from the control circuit 16. The relative phase between inverters can be dynamically adjusted (e.g., a pair of inverters 61 may generate in-phase or out-of-phase (e.g., 180° out-of-phase) output signals).
[0040] By applying a drive signal using one or more inverters 61 (for example, transistors or other switches in circuit 52), the output circuit formed from the selected coil 36 and capacitor 70 generates an AC electromagnetic field (signal 44) that is received by the wireless power receiving circuit 54 using one or more coils 48 and one or more capacitors 72 in device 24.
[0041] If desired, the relative phase between the drive coils 36 (for example, the phase of one of the driven coils 36 relative to one of another adjacent driven coils 36) may be adjusted by the control circuit 16 to help enhance the wireless power transmission between device 12 and device 24. The rectifier circuit 50 is coupled to one or more coils 48 (for example, a pair of coils) and converts the received power from AC to DC, supplying a DC output voltage Vrect between the rectifier output terminals 76 to power load circuits within device 24 (for example, to charge a battery 58, to power a display and / or other input / output devices 56, and / or other components). A single coil 48 or multiple coils 48 may be included within device 24.
[0042] Figure 3 is a side cross-sectional view of System 8 in an exemplary configuration in which the wireless power transmission device 12 is a wireless charging pack. As shown in Figure 3, the device 12 has a device housing 90 (for example, a disk-shaped pack housing formed from a polymer, other dielectric material, and / or other material). The device housing 90 may house a device microcontroller for communicating with a plug 94, a DC-DC power converter circuit such as a step-down voltage converter (e.g., a buck converter), a voltage regulator circuit such as a low-dropout (LDO) regulator, a wireless power transmission circuit such as an inverter 61 (see Figure 2), one or more coils 36, and a capacitor 70, a near-field communication (NFC) circuit for communicating with a powered device 24, an over-temperature protection (OTP) circuit such as a temperature sensor, a debug circuit, a filter circuit, a magnetic alignment structure 64 (see Figure 1) for attracting the device 24 during charging operation, and / or other power transmission device components.
[0043] The cable 92 is coupled to the device housing 90 to supply power to the coil(s) 36. One end of the cable 92 may be pigtail-connected to the housing 90. The other end of the cable 92 is terminated using a plug 94. The plug 94 has a boot portion 98, which may be called the plug's "boot". The boot 98, which may be called the connector boot, may be formed from polymer, metal, and / or other material and may have an internal region configured to house electrical components (e.g., integrated circuits, individual components such as transistors, printed circuits, etc.). The boot 98 has a first end connected to the cable 92 and a second end connected to the connector portion 96 (which may be called the plug's "connector"). The connector 96 may include 24 pins, 10 to 30 pins, 10 or more pins, 20 or more pins, 30 or more pins, 40 or more pins, 50 or more pins, or any preferred number of pins supported within the connector housing. The pins in the connector 96 are configured to mate with corresponding pins in the port 126 of an external device, such as an audiovisual electronic device 110. The audiovisual electronic device 110 may be an in-car entertainment system, a portable electronic device such as a laptop computer, a smart speaker, or any other desired type of system. In some cases, the connector 96 may mate with a standalone power adapter. The plug 94, which has a connector protruding from the boot 98, is sometimes referred to as a male plug. The plug 94 may be a reversible plug (i.e., a plug that can mate with the corresponding connector port in at least two different symmetrical orientations).
[0044] During normal operation of System 8, the power receiving device 24 may be placed on the charging surface of the power transmitting device 12. Magnetic alignment structures 64 and 68 within devices 12 and 24 attract each other, thereby holding devices 12 and 24 together during charging.
[0045] Boot 98 may have a boot housing that accommodates various electrical components. The boot housing may house a boot microcontroller for communicating with the device microcontroller in the housing 90, a DC-DC power converter circuit such as a step-up voltage converter (e.g., a boost converter), a voltage regulator circuit such as a low-dropout (LDO) regulator, an electronic fuse circuit such as an e-fuse or fuse to provide overcurrent protection when detecting a short circuit, overload, mismatched load, or failure event of another device, a filter circuit, and / or other boot components.
[0046] In the example shown in Figure 3, the power transmission device 12 is formed separately from the audiovisual electronic device 110 and connected to the audiovisual electronic device 110. In this type of configuration, the charging circuit 121 within the audiovisual electronic device 110 can power the coil 36 in the power transmission device 12 by supplying DC power via the connector 126. However, this example is merely illustrative. In some cases, the power transmission device 12 may be integrated with the audiovisual electronic device 110 (for example, as a module of the audiovisual electronic device 110). In other words, the audiovisual electronic device 110 may include a power transmission module having the components and functions described in relation to device 12. As an example, the audiovisual electronic device may be an in-car entertainment system having an integrated wireless power transmission coil. During operation, the charging circuit within the in-car entertainment system can supply DC power to the wireless power transmission coil in order to transmit wireless power to a wireless power receiving device.
[0047] The audiovisual electronic device 110 may have multiple operating modes. Figure 4 is a state diagram showing exemplary operating modes of the audiovisual electronic device. The audiovisual electronic device may operate in normal mode 130. In normal mode, the audiovisual electronic device 110 may not be paired with an external electronic device. The audiovisual electronic device may enter pairing mode 132 by pairing with an external electronic device. When in pairing mode 132, the audiovisual electronic device can exchange information with the external electronic device (for example, using a wired or wireless communication link). In pairing mode 132, one or more output devices within the audiovisual electronic device may be controlled using information from the external electronic device. In pairing mode, the audiovisual electronic device may be synchronized with the external electronic device.
[0048] In normal mode, an audiovisual electronic device may display one or more affordances representing functions provided by the audiovisual electronic device. An affordance is a user interface element that indicates the action / result associated with that part of the user interface. For example, one example of an affordance is a button with a musical note icon (e.g., a virtual button on a touch-sensitive display). When this affordance is displayed on the audiovisual electronic device and selected by the user (e.g., using touch input), the audiovisual electronic device can enter a mode in which music is played. Some non-exclusive examples of functions provided by an audiovisual electronic device are operating a radio (e.g., AM / FM radio) or a navigation application. When the affordance for the radio function is selected, the audiovisual electronic device can display the current radio station and / or selectable preset radio stations. When the affordance for a navigation application is selected, the audiovisual electronic device can display a map of the route the user should follow. The functions provided by an audiovisual electronic device may be self-sufficient (meaning that the functions can be performed in normal mode without being paired with a separate electronic device).
[0049] When an audiovisual electronic device is switched to pairing mode 132, the audiovisual electronic device can switch to displaying one or more affordances representing functions provided by the paired electronic device. For example, the function provided by the paired electronic device may be a music playback function. An affordance representing the music playback function may be displayed on the audiovisual electronic device. If selected by the user, music stored on the paired electronic device can be wirelessly transmitted to the audiovisual electronic device and played using the speaker of the audiovisual electronic device. In general, the functions provided by the paired electronic device require the paired electronic device to be operational. In other words, if the audiovisual electronic device 110 is not paired with another electronic device, the audiovisual electronic device 110 cannot perform the functions provided by the paired electronic device in normal mode 130.
[0050] As one exemplary example described herein, the audiovisual interface 110 may be an in-car entertainment system. During normal mode 130, the in-car entertainment system may use native software for operation. The in-car entertainment system is not controlled by a separate device (e.g., a cellular phone) in normal mode. The in-car entertainment system 110 may also be operable in pairing mode 132. In pairing mode, the in-car entertainment system 110 may exchange information with a separate device, such as a cellular phone, and may be controlled by the separate device. The in-car entertainment system 110 and the paired separate device (e.g., a cellular phone) can operate in pairing mode using a known standard (e.g., CarPlay®).
[0051] In pairing mode 132, the audiovisual interface 110 can operate using information from the powered device 24. In other words, one or more components within the audiovisual interface 110 may be controlled by the device 24. Consider an example where the audiovisual interface 110 is an in-car entertainment system (sometimes called an infotainment system) and the powered device 24 is a cellular phone. While the in-car entertainment system 110 and the cellular phone 24 are connected (for example, in pairing mode 132), the input / output components of the in-car entertainment system 110 (e.g., display, speaker, etc.) may be controlled by the cellular phone 24. For example, a user interface based on an existing home screen in the cellular phone 24 may be provided on the home screen of the in-car entertainment system. In other words, affordances (e.g., buttons and / or icons) from the existing home screen of the cellular phone can be provided for display on the home screen of the in-car entertainment system. Applications on the cellular phone 24 may operate using the user interface of the in-car entertainment system 110. For example, a navigation application within a cellular phone 24 can operate using the input / output components of the in-car entertainment system 110. This makes it possible to use the in-car entertainment system's display 120 (which may be larger than the cellular phone's display and located in a convenient position within the vehicle) for navigation instead of the cellular phone's display. The display 120 may be a touch-sensitive display, and the application (controlled by the cellular phone and displayed using the in-car entertainment system) can receive user input when the user touches the touch-sensitive display. A music application within the cellular phone 24 can provide the in-car entertainment system 110 with music played using the speaker 122.The in-car entertainment system 110 may be customized using information from a cellular phone while in pairing mode 132.
[0052] Information may be exchanged between the in-vehicle entertainment system 110 and a separate control device (e.g., a cellular phone) using wired or wireless communication. In one possible configuration, the control device (e.g., a cellular phone) may be physically connected to the vehicle (and the in-vehicle entertainment system 110) using a cable (e.g., a wired connection). The control device uses this wired connection to provide content to the in-vehicle entertainment system.
[0053] In another possible configuration, a control device (e.g., a cellular phone) may be wirelessly connected to the vehicle (and the in-car entertainment system 110). The control device uses this wireless connection to provide content to the in-car entertainment system. The wireless connection may use the Bluetooth communication band. Alternatively, to increase the bandwidth of the wireless connection, the wireless connection may use a Wi-Fi communication band such as the 2.4GHz and / or 5GHz Wi-Fi communication band. These examples are merely illustrative. In general, any desired frequency band can be used for wireless communication between the control device and the in-car entertainment system.
[0054] Let's consider an example where the power receiving device 24 is a cellular telephone, the power transmitting device 12 is a wireless charger in the vehicle, and the audio-visual interface 110 is an in-vehicle entertainment system.
[0055] In some cases, the cellular phone may be connected directly to the audiovisual interface 110 (bypassing the wireless charger 12) using a wired connection between the cellular phone and the vehicle's port 126. In addition to enabling wired charging, the wired connection between the powered device 24 and the audiovisual interface 110 can also provide a link that allows the audiovisual interface 110 to operate using information from the cellular phone 24 (as described above). The in-car entertainment system can operate using information from the cellular phone (e.g., in pairing mode) while the cellular phone is physically connected to the vehicle.
[0056] By equipping the vehicle with a wireless power transmission device 12, the charging process can be made easier for the user. Instead of connecting the cellular phone 24 to the vehicle with a wire, the cellular phone may simply be placed on the wireless charger inside the vehicle. The wireless charger is coupled to a port 126 inside the vehicle and can receive DC power from the port. This DC power is used to operate the power transmission device and transmit wireless power to the cellular phone. This type of configuration makes it possible for the user to easily charge the cellular phone 24. However, there is no longer a wired connection between the cellular phone 24 and the in-car entertainment system 110. Therefore, the in-car entertainment system 110 may not be aware of the presence of the cellular phone 24 and may not be aware of entering pairing mode with the cellular phone.
[0057] To improve the user experience and facilitate linking the cellular phone 24 with the in-car entertainment system 110, establishing a wireless charging link between the power transmission device 12 and the power receiving device 24 can trigger wireless communication between the power receiving device 24 and the in-car entertainment system 110. When the power receiving device 24 is placed on the power transmission device 12, a wireless charging link is established between the device 24 and the device 12. The power transmission device 12 (which has a wired connection to the vehicle) can notify the in-car entertainment system of the presence of the power receiving device 24. This can trigger the in-car entertainment system 110 to attempt to communicate with the power receiving device 24 in order to establish a link with the power receiving device. Once a link is established between the in-car entertainment system 110 and the power receiving device 24, the in-car entertainment system 110 can enter pairing mode 132 and be controlled by the power receiving device 24.
[0058] As a first example, the user may have previously paired their cellular phone 24 with the in-car entertainment center 110 (for example, ICE 110 may have already operated in pairing mode with the cellular phone 24). Therefore, the cellular phone 24 is a recognized device to the in-car entertainment center 110, and the user has previously authorized the cellular phone 24 to operate in pairing mode with the in-car entertainment system. The user can enter the vehicle and place the cellular phone 24 on the wireless charger 12. Upon detection of the cellular phone, the wireless charger 12 notifies the in-car entertainment system 110 of the presence of the cellular phone 24 in the vehicle. In response, the in-car entertainment system 110 can enter pairing mode with the cellular phone 24 and begin displaying content provided by the cellular phone 24 (for example, it can switch from displaying one or more affordances representing functions provided by the in-car entertainment system to displaying one or more affordances representing functions provided by the cellular phone).
[0059] As a second example, a user may not have previously paired their cellular phone 24 with the in-car entertainment center 110. Therefore, the cellular phone 24 is not a recognized device to the in-car entertainment center 110, and the user has not yet authorized the cellular phone 24 to operate in pairing mode with the in-car entertainment system. The user can enter the vehicle and place the cellular phone 24 on the wireless charger 12. Upon detection of the cellular phone, the wireless charger 12 notifies the in-car entertainment system 110 of the presence of the cellular phone 24 in the vehicle. In response, the in-car entertainment system 110 can attempt to establish communication with the cellular phone 24 (and enter pairing mode with the cellular phone 24). The user may be prompted whether they wish to pair the cellular phone 24 with the in-car entertainment system 110 (for example, the cellular phone 24 may display a prompt to allow pairing). If the user allows pairing, the in-car entertainment system 110 can enter pairing mode with the cellular phone 24 and begin displaying content provided by the cellular phone 24 (for example, it can switch from displaying one or more affordances representing functions provided by the in-car entertainment system to displaying one or more affordances representing functions provided by the cellular phone).
[0060] As a third example, multiple users may enter the vehicle, each with a cellular phone that has previously been paired with the in-car entertainment system 110. The in-car entertainment system 110 can identify the presence of multiple paired cellular phones (for example, using wireless communication). However, because of the presence of multiple paired cellular phones, the in-car entertainment system 110 may not know which cellular phone should be used as the controller for the in-car entertainment system. In this scenario, the in-car entertainment system may refrain from entering pairing mode (because it is unclear which device the in-car entertainment system should pair with). Then, one of the cellular phones can be placed on the wireless charger 12. The wireless charger 12 can report to the in-car entertainment system 110 which cellular phone is on the charger. The in-car entertainment system then enters pairing mode using the cellular phone present on the wireless charger. In other words, placing a cellular phone on the wireless charger acts as a command to use that cellular phone as a control device in pairing mode for the in-car entertainment system.
[0061] As another example, when multiple range electronic devices exist that can be paired with an in-car entertainment system, the in-car entertainment system may pair with a first device (e.g., a default device). Then, when a second device among the range devices is placed on the wireless charger, the wireless charger 12 can report to the in-car entertainment system 110 which device is on the charger. The in-car entertainment system then exits pairing mode with the first device and switches to pairing mode with the second device (which is on the wireless charger).
[0062] Figure 5 is a flowchart of exemplary operations involved in operating a system in which attraction between a wireless power transmitting device and a wireless power receiving device triggers communication between the wireless power receiving device and an audiovisual electronic device. As shown, in step 502, attraction between the power receiving device and the power transmitting device may be detected. When the power receiving device 24 and the power transmitting device 12 are attracted to each other, the magnetic alignment structures 64 and 68 can be magnetically coupled, and the coils 36 and 48 can be aligned. In this configuration, the power transmitting device 12 can transmit wireless power to the power receiving device 24.
[0063] There are many methods for detecting attraction between the power transmitting device 12 and the power receiving device 24. The power transmitting device 12 and / or the power receiving device 24 may include sensors or other components that enable the detection of attraction between the power transmitting device 12 and the power receiving device 24. As described above in relation to Figure 1, an external object measurement circuit 41 in the power transmitting device 12 can be used to perform measurements on the coil 36 to determine whether any device 24 is present on the device 12. Thus, the external object measurement circuit 41 can detect attraction between the power transmitting device 12 and the power receiving device 24.
[0064] Alternatively or additionally, one or more components within the wireless power receiving device 24 may detect attraction between the power transmitting device 12 and the power receiving device 24. The power receiving device 24 may include an NFC loop and / or a magnetic sensor (e.g., a Hall effect sensor) used to detect the attraction of device 24 to device 12. For example, a magnetic sensor within the power receiving device 24 may detect the presence of device 12 when device 24 is positioned adjacent to device 12. In response to the magnetic sensor being triggered, an NFC loop within the power receiving device 24 may attempt to communicate with the corresponding NFC loop within the power transmitting device 12.
[0065] The above example of detecting attraction between the power transmitting device 12 and the power receiving device 24 is merely illustrative. In general, any desired sensor in one or both of devices 12 and 24 may be used to detect attraction. Magnetic sensors (e.g., Hall effect sensors), optical sensors (e.g., cameras, proximity sensors, etc.), measuring circuits coupled to coils 36 and / or 48, or any other desired type of sensor may be included in devices 12 and 24 and used to help detect attraction. In addition, one or more sensors may also be included in the audiovisual electronic device 110 to detect attraction between device 12 and device 24. In the example where the audiovisual electronic device 110 is an in-car entertainment system, the in-car entertainment system may include one or more sensors, such as magnetic sensors (e.g., Hall effect sensors) and / or optical sensors (e.g., cameras, proximity sensors, etc.), to help detect attraction between device 12 and device 24.
[0066] After detecting the attraction between the power receiving device and the power transmitting device, the power transmitting device 12 can negotiate the power transmission rate with the power receiving device 24 and begin delivering wireless power to the power receiving device 24. In addition, in step 504, the device identifier of the power receiving device may be transmitted to the audiovisual electronic device 110. As discussed in relation to Figure 1, the audiovisual electronic device may be an in-car entertainment system. Alternatively, the audiovisual electronic device may be an electronic device such as a laptop computer, tablet computer, desktop computer, or smart speaker.
[0067] There are several ways in which the device identifier of the powered device can be transmitted to the audiovisual electronic device 110. In one possible configuration, the powered device 24 can transmit the device identifier to the powered device 12 using in-band communication. The powered device 12 then relays the device identifier to the audiovisual electronic device 110. In other words, while radio power is being delivered from the powered device 12 to the powered device 24, the powered device 24 can transmit one or more packets (containing the device identifier) to device 12 using coil 48 (e.g., using amplitude shift keying). Device 12 can receive the device identifier in-band (e.g., using coil 36).
[0068] As mentioned above, device 12 may have a wired link 60 to the audiovisual electronic device 110. As shown in Figure 3, for example, the power transmission device 12 may have a connector 96 that mates with a corresponding port 126 in the audiovisual electronic device 110. The wired connection between the power transmission device 12 and the audiovisual electronic device 110 allows the power transmission device 12 to receive DC power from the audiovisual electronic device 110. In addition, the wired connection between the power transmission device 12 and the audiovisual electronic device 110 allows the power transmission device 12 to transmit information such as a device identifier to the audiovisual electronic device 110.
[0069] Therefore, the audiovisual electronic device 110 can receive the device identifier of the powered device 24 via a wired connection with the powered device 12. This example is merely illustrative. In another possible configuration, the audiovisual electronic device 110 can receive the device identifier of the powered device 24 directly from the powered device 24 (for example, using an antenna 116 and out-of-band communication).
[0070] In other words, the powered device 24 and the audiovisual electronic device 110 may have a wireless link 78 that enables communication between the powered device 24 and the audiovisual electronic device 110. The powered device 24 may use its antenna 66 to transmit its device identifier to the audiovisual electronic device 110 (for example, in the Bluetooth or WiFi communication band). The audiovisual electronic device 110 may use its antenna 116 to receive the device identifier.
[0071] In summary, the device identifier may be transmitted from the powered device 24 to the audiovisual electronic device 110 in at least two ways in step 504. The first option is to transmit the device identifier from the powered device 24 to the powered device 12 using in-band communication (e.g., using coils 36 and 48). The device identifier is then provided to the audiovisual electronic device 110 using a wired connection between the powered device 12 and the audiovisual electronic device 110. The second option is to transmit the device identifier directly from the powered device 24 to the audiovisual electronic device 110 using out-of-band communication (e.g., using antennas 66 and 116).
[0072] In the first option, the transmitting device 12 can send a request to device 24 that triggers device 24 to transmit its device identifier in bandwidth to the transmitting device 12 (so that the transmitting device 12 can then relay the device identifier to the audiovisual electronic device 110). Alternatively, device 24 can receive information from device 12 indicating that device 12 is connected to or otherwise in proximity to an additional audiovisual electronic device that it may (or can) pair with the receiving device 24. In response to this information, device 24 can transmit its device identifier to device 12. Alternatively, in some radio power delivery schemes, the receiving device 24 can automatically transmit its device identifier to device 12 as part of the identification phase of the radio power communication protocol. The transmitting device 12 can then relay the device identifier to the audiovisual electronic device 110.
[0073] In a second option, the transmitting device 12 may send a request to device 24 that triggers device 24 to transmit its device identifier out of band to the audiovisual electronic device 110. Alternatively, device 24 may receive information from device 12 indicating that device 12 is connected to or otherwise in close proximity to an audiovisual electronic device that it may (or can) pair with the receiving device 24. In response to this information, device 24 may transmit its device identifier directly to the audiovisual electronic device 110 (for example, using antenna 66).
[0074] It should be noted that, prior to steps 502 and 504, the power transmission device 12 may exchange information with the audiovisual electronic device 110. For example, once a wired connection is established between the power transmission device 12 and the audiovisual electronic device 110, the power transmission device 12 and the audiovisual electronic device 110 can exchange information such as device type and power delivery capability. The power transmission device 12 may receive information from the audiovisual electronic device 110 identifying that the audiovisual electronic device 110 is an in-car entertainment system or other device that it may (or can) pair with the power receiving device 24. Therefore, when an adsorption between the power receiving device 24 and the power transmission device 12 is detected in step 502, the power transmission device 12 and / or the power receiving device 24 know that they should proceed to step 504 (and ensure that the device identifier is transmitted to the audiovisual electronic device 110).
[0075] In step 506, the audiovisual electronic device 110 receives the device identifier 24 and can determine whether the powered device 24 has been paired with the audiovisual electronic device 110 before. The audiovisual electronic device can maintain a list of devices it has previously paired with (for example, a list of authorized device identifiers). If the received device identifier is on the list of authorized device identifiers, the audiovisual electronic device 110 can proceed to step 510 and pair with the powered device 24.
[0076] In step 510, there are many options for how to pair the powered device 24 with the audiovisual electronic device 110. The audiovisual electronic device 110 can directly send a pairing request to device 24 using antennas 116 and 66 (for example, using the Bluetooth or WiFi communication band). Alternatively, the audiovisual electronic device 110 may send a pairing request to device 24 using device 12 as a relay. In other words, the audiovisual electronic device 110 can provide a pairing request to device 12 using a wired connection between the audiovisual electronic device 110 and device 12. Device 12 can then send a pairing request to device 24 using in-band communication (for example, frequency shift keying that occurs while power is being delivered from device 12 to device 24). Upon receiving the pairing request, device 24 can trigger antenna 66 to communicate with antenna 116 of the audiovisual electronic device 110. Triggering antenna 66 to communicate with antenna 116 may involve scanning various frequency bands to identify a frequency band for communication with the audiovisual electronic device 110, and / or transmitting a signal using antenna 66 to establish a wireless link with the audiovisual electronic device 110.
[0077] In step 506, if the received device identifier is not on the list of authorized device identifiers, the audiovisual electronic device 110 may proceed to step 508. In step 508, permission may be requested from the user to pair the powered device 24 with the audiovisual electronic device 110. Permission may be requested using the input / output components of the powered device 24 and / or the audiovisual electronic device 110. For example, the permission request may be displayed on the display in the audiovisual electronic device 110. Alternatively, the permission request may be displayed on the display in the powered device 24.
[0078] If the user rejects the request to pair the power receiving device 24 with the audiovisual electronic device 110, the power receiving device 24 and the audiovisual electronic device 110 may cease communication, and the power receiving device 24 will simply receive wireless power from the power transmitting device 12. If the user permits the request to pair the power receiving device 24 with the audiovisual electronic device 110, the power receiving device 24 and the audiovisual electronic device 110 may be paired in step 510 as described above.
[0079] By pairing the powered device 24 with the audiovisual electronic device 110 in step 510, a communication link can be established between the powered device 24 and the audiovisual electronic device 110. The communication link may be a wireless communication link between the powered device 24 and the audiovisual electronic device 110 (as described above). Alternatively, the communication link may include communication between device 12 and device 24 using coils 36 and 48 (e.g., in-band communication), and communication between device 12 and device 110. In other words, the ongoing communication link between device 24 and the audiovisual electronic device 110 can use device 12 as a repeater.
[0080] There are many ways in which a communication link can be used. For example, consider an example where the audiovisual electronic device 110 is an in-car entertainment system. After the power receiving device 24 and the in-car entertainment system 110 are paired, the in-car entertainment system 110 can enter pairing mode 132. The power receiving device 24 transmits commands and / or data to the in-car entertainment system 110 that are used to control the user interface of the in-car entertainment system 110. For example, the in-car entertainment system 110 can display content provided by the power receiving device 24 via the wireless link on its display.
[0081] In step 510, upon detection of alignment of the receiving device 24 with the transmitting device 12 for wireless power transmission, the control circuit within the receiving device 24 may transmit a command to the audiovisual electronic device 110 to present an audio or visual function supported by the receiving device 24. Alternatively, upon detection of alignment of the receiving device 24 with the transmitting device 12 for wireless power transmission, the control circuit within the receiving device 24 may transmit or receive information.
[0082] Consider another example where the audiovisual electronic device 110 is a laptop or desktop computer. After the powered device 24 and the computer 110 are paired, the powered device 24 and the computer 110 may be synchronized. For example, a photograph taken on the powered device 24 may be transmitted from the powered device 24 to the computer 110 using a communication link and stored on the computer 110. Music or television programs downloaded on the computer 110 may be transmitted from the computer 110 to the powered device 24 using a wireless link and stored on the powered device 24.
[0083] The steps outlined in Figure 5 enable the receiving device 24 to automatically pair with the audiovisual electronic device (and send commands to the audiovisual electronic device) in response to being placed on the transmitting device 12 coupled to the audiovisual electronic device. This enables functions such as the receiving device 24 automatically entering a pairing mode to control the in-car entertainment system 110, or automatically synchronizing the receiving device 24 with the computer 110, in response to the device 24 being attached to the wireless charger 12. However, in some cases, the user may wish to disable this type of function. Therefore, user-controllable settings may exist (for example, on the receiving device 24, the transmitting device 12, and / or the audiovisual electronic device 110) that allow the user to selectively enable and disable automatic pairing and subsequent functions.
[0084] Consider an example where system 110 is an in-car entertainment system. The in-car entertainment system 110 may have settings such as "automatically enter pairing mode with a wireless charging device," which the user can toggle on and off using the input / output component 118. Alternatively or additionally, device 24 may have settings such as "automatically enter pairing mode with an available in-car entertainment system while wireless charging," which the user can toggle on and off using the input / output component 56.
[0085] Consider an example where the audiovisual electronic device 110 is a laptop or desktop computer. The computer 110 may have settings such as "automatically synchronize with wireless charging device," which the user can toggle on and off using the input / output component 118. Alternatively or additionally, device 24 may have settings such as "automatically synchronize with available computers while wireless charging," which the user can toggle on and off using the input / output component 56.
[0086] Figure 5 illustrates an example of how attraction between a power receiving device and a power transmitting device can trigger additional steps associated with an audiovisual electronic device. Another example of this type of functionality is shown in Figure 6.
[0087] Figure 6 is a flowchart of exemplary operations involved in operating a system in which the attraction of a wireless power transmitting device and a wireless power receiving device triggers a pairing mode between the wireless power receiving device and an audiovisual electronic device. As shown in Figure 6, in step 602, multiple candidates for the pairing mode with the audiovisual electronic device 110 can be detected.
[0088] As an example of step 602, consider a scenario in which the audiovisual electronic device 110 is an in-car entertainment system 110. The in-car entertainment system 110 may be able to operate in pairing mode 132 in which the in-car entertainment system is controlled by a separate electronic device such as a cellular phone. The in-car entertainment system 110 and / or the cellular phone may have settings that allow the cellular phone to automatically pair with the in-car entertainment system 110 and enter pairing mode when it is within range. A user may enter the vehicle with a cellular phone that has been previously paired with the in-car entertainment system. Depending on whether the cellular phone is in the vehicle and the vehicle is powered on, the in-car entertainment system and the cellular phone may enter pairing mode 132 in which the cellular phone controls the user interface of the in-car entertainment system.
[0089] However, in some cases, the in-car entertainment system may have multiple authorized cellular phones configured to enter pairing mode 132 when within range. For example, three users may enter the vehicle each holding a cellular phone previously paired with the in-car entertainment system. Each cellular phone individually enters pairing mode 132 and controls the user interface of the in-car entertainment system when the vehicle is turned on. However, because multiple authorized cellular phones are present in the vehicle, the in-car entertainment system 110 does not know which cellular phone to use for pairing mode 132. Therefore, the in-car entertainment system may refrain from entering pairing mode with any one of the cellular phones. In other words, when multiple valid pairing options are available to the in-car entertainment system, the in-car entertainment system does not have to pair with any of the valid options.
[0090] Alternatively, when multiple authorized cellular phones are present in the vehicle, the in-car entertainment system 110 may, by default, enter pairing mode 132 with one of the cellular phones within range.
[0091] In step 604, attraction between one of the candidate power receiving devices and the power transmitting device may be detected. When the power receiving device 24 and the power transmitting device 12 are attracted to each other, the magnetic alignment structures 64 and 68 can be magnetically coupled, and the coils 36 and 48 can be aligned. In this configuration, the power transmitting device 12 can transmit radio power to the power receiving device 24.
[0092] During step 604, in a configuration where the power transmission device is connected to a port in the in-car entertainment system, the in-car entertainment system 110 can power the wireless power transmission coil in the power transmission device 12 using a charging circuit (e.g., charging circuit 121 in Figure 1). In a configuration where the wireless power transmission coil is integrated with the in-car entertainment system, the charging circuit can power the integrated wireless power transmission coil without requiring a user interface code coupled to a port in the in-car entertainment system.
[0093] Any of the techniques discussed in relation to step 502 for detecting attraction between the receiving device 24 and the transmitting device 12 may be used in step 604. After detecting attraction between the receiving device and the transmitting device, the transmitting device 12 can negotiate a power transmission rate with the receiving device 24 and begin delivering wireless power to the receiving device 24.
[0094] In step 606, the in-car entertainment system can enter pairing mode 132 with the power receiving device 24 attached to the power transmitting device 12. Returning to the previous example, in step 602, first, second, and third cellular phones may be identified. The first cellular phone has a first corresponding device identifier, the second cellular phone has a second corresponding device identifier, and the third cellular phone has a third corresponding device identifier. The in-car entertainment system 110 may have the first, second, and third device identifiers on its list of authorized devices. In step 602, the in-car entertainment system 110 can detect the presence of the first, second, and third cellular phones and confirm that all three cellular phones are authorized devices for pairing mode. However, the in-car entertainment system does not enter pairing mode with any of the cellular phones. Alternatively, the in-car entertainment system can enter pairing mode with the first cellular phone by default.
[0095] In step 604, the second cellular phone may be attached to the power transmission device 12. In step 606, the in-car entertainment system may receive information indicating that the second cellular phone is attached to the power transmission device (e.g., the device identifier of the second cellular phone). The in-car entertainment system may receive this information (e.g., the device identifier of the second cellular phone) from the power transmission device (e.g., via a wired connection) or directly from the second cellular phone (e.g., via a wireless connection). Depending on this information, the in-car entertainment system may enter pairing mode 132 with the second cellular phone. In other words, the second cellular phone may control the user interface of the in-car entertainment system.
[0096] In summary, by placing a given device from among several candidate devices on a power transmission device, it is possible to function to select a given device for pairing mode with the in-car entertainment system.
[0097] In some cases, users may wish to disable this type of functionality. Therefore, user-controllable settings may exist (for example, on the power receiving device 24, the power transmitting device 12, and / or the audiovisual electronic device 110) that allow users to selectively enable and disable automatic pairing. User-controllable settings may allow users to prioritize candidate devices for entering pairing mode 132. In this case, the device prioritization can determine which device enters pairing mode instead of attaching to the power transmitting device 12.
[0098] The steps in Figure 6 are described in relation to an example of an in-car entertainment system. However, these steps may be applied to any other type of audiovisual electronic device 110. As another example, consider a case where the audiovisual electronic device 110 is a speaker. Several candidate devices may have been previously paired with the speaker and may be configured to provide music to the speaker. By placing one of the candidate devices on the power transmission device, it can be determined which candidate device will pair with the speaker and control it.
[0099] Figure 7 is a flowchart illustrating exemplary operations involved in operating the power transmission device. In step 702, the power transmission device 12 can receive information identifying a wired connection to an audiovisual electronic device. The information can identify the type of audiovisual electronic device to which the power transmission device is connected. The power transmission device 12 may be connected to port 126 of the audiovisual electronic device.
[0100] In step 704, the power transmission device 12 can detect adsorption to the power receiving device 24. Adsorption may be detected using the measurement circuit 41 and / or any other desired sensor.
[0101] After detecting adsorption to the receiving device, the transmitting device may, in step 706, receive a device identifier from the receiving device using in-band communication. The transmitting device 12 may automatically receive the device identifier after being adsorbed to the receiving device. Alternatively, the transmitting device 12 may send a request to the receiving device 24 (for example, using in-band communication) for the receiving device to transmit device identifier information.
[0102] In addition, after detecting attraction to the power receiving device, the power transmitting device 12 can start delivering wireless power to the power receiving device.
[0103] In step 708, after receiving the device identifier of the powered device 24 from the powered device 24, the powered device 12 may relay the device identifier to the audiovisual electronic device 110 (for example, using a wired connection to the audiovisual electronic device 110). The audiovisual electronic device may then use the device identifier to perform additional steps as desired (for example, pairing with the powered device).
[0104] The power transmission device 12 may further transmit information about the audiovisual electronic device 110 to the power receiving device 24 (for example, after adsorption is detected in step 704). The power transmission device 12 may transmit information about the audiovisual electronic device to the power receiving device 24 using, for example, in-band communication.
[0105] At any point following step 704 (when an attachment to the powered device 24 is detected), the power transmitting device 12 can relay information between the powered device 24 and the audiovisual electronic device 110. The power transmitting device 12 may have a first (wireless, in-band) communication link with the powered device 24 and a second (wired) communication link with the audiovisual electronic device 110. Using these two communication links, the powered device 24 and the audiovisual electronic device 110 can communicate (via the power transmitting device 12).
[0106] The steps in Figure 7 may also be performed by a control circuit within the boot 98 of the transmitting device 12 and / or within the housing 90 of the transmitting device 12.
[0107] Figure 8 is a flowchart illustrating exemplary operations involved in operating the audiovisual electronic device 110. In step 802, the audiovisual electronic device 110 can receive information identifying a wired connection to a wireless power transmission device (e.g., a wireless charging pack). The information can identify the type of power transmission device to which the audiovisual electronic device is connected. The power transmission device 12 may be connected to port 126 of the audiovisual electronic device. The audiovisual electronic device 110 can supply DC power to the wireless power transmission device 12 via port 126. The audiovisual electronic device 110 can supply DC power using a battery and / or using an AC-DC converter (such as AC-DC converter 14 in Figure 1).
[0108] Next, in step 804, the audiovisual electronic device 110 can receive the device identifier of the wireless power receiving device 24 using the wired connection between the audiovisual electronic device 110 and the wireless power transmitting device 12. The device identifier and / or other information provided by the power transmitting device 12 may indicate that the power receiving device 24 is connected to the power transmitting device.
[0109] The example of receiving the device identifier of the wireless power receiving device 24 using a wired connection to the power transmitting device 12 is merely illustrative. The audiovisual electronic device 110 can also wirelessly receive the device identifier of the wireless power receiving device 24 directly from the wireless power receiving device 24 in step 804.
[0110] In step 806, the audiovisual electronic device 110 can take appropriate action based on the received device identifier. There are many possible actions that the audiovisual electronic device 110 can take using this information. First, the audiovisual electronic device 110 can compare the received device identifier with a list of authorized device identifiers to determine whether the attached powered device 24 has been previously paired with the audiovisual electronic device 110 (e.g., step 506 in Figure 5). If it is determined that the attached powered device 24 has been previously paired with the audiovisual electronic device 110, or if permission to pair the attached powered device with the audiovisual electronic device 110 is received (e.g., step 508 in Figure 5), the powered device 24 and the audiovisual electronic device 110 can pair and establish a communication link (e.g., step 510 in Figure 5). After establishing a wireless communication link, the audiovisual electronic device 110 can enter pairing mode 132 in which the powered device 24 controls the user interface of the audiovisual electronic device 110. In pairing mode, the audiovisual electronic device 110 can receive commands from the wireless powered device 24 and present audio or visual functions supported by the wireless powered device 24. Alternatively, the audiovisual electronic device 110 and the powered device 24 may be synchronized after a wireless communication link is established. As another example, in step 806, the audiovisual electronic device 110 may use the received device identifier to select which of several candidate devices should enter pairing mode 132 (for example, step 606 in Figure 6).
[0111] In step 806, the audiovisual electronic device can display user interface affordances on the display 120. The user interface affordances may indicate switching the audiovisual electronic device to pairing mode. Depending on the selection of the user interface affordance (for example, by the user touching the user interface affordance on the touch-sensitive display 120), the audiovisual electronic device can switch its operation (for example, from normal mode to pairing mode) to receive data representing audio or visual functions from the powered device 24.
[0112] At any point following step 804 (when an adsorption to the powered device 24 is detected), the audiovisual electronic device 110 may transmit information to the powered device 24 via the power transmitting device 12 (for example, with device 12 acting as a relay). At any point, the audiovisual electronic device 110 may exchange information wirelessly with the powered device 24 directly. At any point thereafter, once a wired connection has been established between the audiovisual electronic device 110 and the power transmitting device 12, the audiovisual electronic device 110 may exchange information with the power transmitting device 12 using the wired connection.
[0113] In step 806, the audiovisual electronic device 110 can customize the user interface based on the received device identifier. In one of the aforementioned examples, the audiovisual electronic device 110 customizes the user interface by enabling the powered device 24 to control the user interface. However, other configurations are possible. For example, the audiovisual electronic device 110 may have stored preferences associated with the device identifier. Upon receiving the device identifier, the audiovisual electronic device 110 can revert to those stored preferences. Any type of preference (e.g., volume level, display settings, preferred user interface appearance, etc.) may be associated with the device identifier. If the audiovisual electronic device 110 is an in-car entertainment system, vehicle preferences (e.g., preset radio stations, seat position(single or multiple), cabin temperature, steering wheel position, mirror position(single or multiple), etc.) may also be associated with the device identifier. Upon receiving the device identifier, the audiovisual electronic device 110 can set the relevant components in the vehicle to the preferences stored for that device identifier. In addition, one or more sensors (e.g., a camera, a three-dimensional image sensor such as a structured light sensor that emits a light beam, a proximity sensor, a gaze detection sensor, a fingerprint sensor, a touch sensor, etc.) may also be included within the audiovisual electronic device 110 to obtain additional information used to update any of the aforementioned settings within the audiovisual electronic device 110 and to provide the user with a customized experience.
[0114] Figure 9 is a flowchart of exemplary operations involved in operating the power receiving device. In step 902, the power receiving device 24 can detect attraction to the power transmitting device 12. Attraction may be detected using an NFC loop, a magnetic sensor, a measuring circuit 43 coupled to the power receiving coil 48, and / or any other desired sensor.
[0115] After detecting an adsorption to the power transmitting device, the receiving device 24 may, in step 904, transmit a device identifier to the power transmitting device using in-band communication (e.g., amplitude shift keying). The receiving device 24 may automatically transmit the device identifier to the power transmitting device after being adsorbed to the power transmitting device (e.g., according to a wireless charging communication protocol). The receiving device 24 may transmit the device identifier to the power transmitting device 12 after receiving information from the power transmitting device indicating that the power transmitting device is coupled to an audiovisual electronic device that is a pairing candidate. Alternatively, the receiving device 24 may transmit the device identifier to the power transmitting device 12 in response to receiving a request from the power transmitting device 12 (e.g., using in-band communication) for the receiving device to transmit device identifier information to the power transmitting device.
[0116] In addition, in step 904, the power receiving device 24 can begin receiving wireless power from the power transmitting device.
[0117] In step 906, the powered device 24 may receive information from the powered device 12 identifying the wired connection between the powered device and the audiovisual electronic device 110. This example is illustrative. In some cases, step 906 may be omitted (for example, instead of the powered device 12 notifying device 24 of the presence of the audiovisual electronic device 110, the audiovisual electronic device 110 may communicate directly with the powered device 24). In some configurations, the order of steps 904 and 906 may be reversed.
[0118] Subsequently, in step 908, the powered device 24 can invoke pairing mode with the audiovisual electronic device 110. Before entering pairing mode, the powered device 24 can ensure that the user has authorized pairing mode. For example, the audiovisual electronic device 110 may be on the authorized list of devices that the powered device 24 should automatically pair with. In this case, the powered device 24 can enter pairing mode 132 with the audiovisual electronic device 110 without seeking additional permission from the user. In another example where the audiovisual electronic device 110 is not on the authorized list of devices in device 24, the audiovisual electronic device 110 and / or device 24 may display a request to the user for permission to pair. If the user authorizes pairing, the audiovisual electronic device 110 and device 24 enter pairing mode.
[0119] The example in step 908 is merely illustrative. In another example, in step 908, the powered device 24 and the audiovisual electronic device 110 may pair and establish a communication link (for example, step 510 in Figure 5). The communication link may be a wireless communication link, or it may be a communication link using device 12 as a relay (as described above). After the communication link is established, the audiovisual electronic device 110 may enter a pairing mode 132 in which the powered device 24 controls the user interface of the audiovisual electronic device 110 (as described above). The powered device 24 may send commands to the audiovisual electronic device 110 to present the audio or visual functions supported by the powered device 24. Alternatively, after the communication link is established, the audiovisual electronic device 110 and the powered device 24 may be synchronized.
[0120] At any point following step 902 (when an adsorption to the powered device 24 is detected), the powered device 24 may transmit information to the audiovisual electronic device 110 via the power transmitting device 12. In addition, in some configurations, the powered device 24 can exchange information wirelessly and directly with the audiovisual electronic device 110. At any point after the adsorption between the powered device 24 and the power transmitting device 12 is established, the powered device 24 may exchange information with the power transmitting device 12 using in-band communication (while power is being delivered from device 12 to device 24).
[0121] Please note that the order of steps in Figures 5-9 is merely illustrative. You can rearrange the steps and omit certain steps if desired.
[0122] It should be noted that, in some cases, one or more of the aforementioned steps in Figures 5 to 9 may be performed without device 12 transmitting wireless power to device 24. In one possible scenario, device 24 may have a fully charged battery when attached to device 12. Device 12 may not enter a dedicated power transmission phase with device 24, but the attachment between device 12 and device 24 can still trigger the establishment of a wireless communication link between device 24 and the audiovisual electronic device 110. In another possible scenario, device 12 may not be configured to deliver wireless power. Device 12 may simply be a dock or other electronic device that is magnetically attached to device 24 and has a wired connection to the audiovisual electronic device 110. In this type of scenario, devices 12 and 24 may optionally communicate using antennas 62 / 66 instead of coils 36 / 48.
[0123] In-band communication between device 12 and device 24 is described in relation to many of the steps in Figures 5 to 9. It should be understood that any communication between device 12 and device 24 can optionally be performed out-of-band (for example, by using antennas 62 / 66 instead of coils 36 / 48).
[0124] The technology described above is intended to facilitate communication between a power transmitting device 12 and a power receiving device 24 of information such as received power and charge status for controlling wireless power transmission, as well as information such as device type and device identifier for allowing device pairing for communication via protocols such as Bluetooth. Embodiments of this technology are intended to be implemented without the use of personally identifiable information. With due consideration, it should be noted that in any implementation of this technology that involves the use of personally identifiable information, the implementer should adhere to generally recognized privacy policies and practices that meet or exceed industry or government requirements for maintaining user privacy. In particular, personally identifiable information data should be managed and handled in a manner that minimizes the risk of unintended or unauthorized access or use, and the nature of authorized use should be clearly indicated to the user, for example, by providing the user with the opportunity to opt in and / or opt out of sharing information.
[0125] According to one embodiment, an electronic device is provided that can operate with a power transmission device and an audiovisual interface, comprising: a coil configured to receive a wireless power signal from the power transmission device; a rectifier configured to convert the wireless power signal into DC power; a magnetic alignment structure configured to align the coil with the power transmission device; and a control circuit configured to communicate with the audiovisual interface in accordance with detecting the alignment with the power transmission device for wireless power transmission of the electronic device, wherein communication with the audiovisual interface includes transmitting commands to the audiovisual interface to present audio or visual functions supported by the electronic device.
[0126] According to another embodiment, communicating with an audiovisual interface includes instructing the audiovisual interface to switch from displaying one or more affordances representing functions provided by the audiovisual interface to displaying one or more affordances representing functions provided by an electronic device.
[0127] According to another embodiment, commanding an audiovisual interface includes using an antenna different from a coil to command the audiovisual interface via a wireless communication protocol.
[0128] According to another embodiment, communicating with an audiovisual interface includes communicating with the audiovisual interface via a wireless communication protocol using an antenna different from a coil.
[0129] According to another embodiment, communicating with an audiovisual interface includes communicating with the audiovisual interface using an antenna operating in the Bluetooth frequency band.
[0130] According to another embodiment, communicating with an audiovisual interface includes communicating with the audiovisual interface using an antenna operating in the Wi-Fi frequency band.
[0131] According to another embodiment, transmitting a command to an audiovisual interface includes transmitting the command using a coil.
[0132] According to another embodiment, the electronic device includes a display, and the control circuit is further configured to display a request for wireless pairing with the audiovisual interface on the display in accordance with communication with the audiovisual interface.
[0133] According to one embodiment, an audiovisual electronic device is provided, which includes a charging circuit configured to supply power to a wireless power transmission coil, a communication circuit configured to receive at least audio or visual information from one or more range electronic devices, and a control circuit configured to receive data representing one or more audio or visual functions from a first range electronic device among a plurality of range electronic devices using the communication circuit when the wireless power transmission coil is charging a wireless receiver, and to receive data representing one or more audio or visual functions from a second range electronic device among a plurality of range electronic devices using the communication circuit when the wireless power transmission coil is not charging the wireless receiver.
[0134] According to another embodiment, the communication circuit includes a wireless communication circuit configured to communicate using an antenna different from that of a wireless power transmission coil.
[0135] According to another embodiment, the communication circuit includes a wireless communication circuit configured to communicate using a wireless power transmission coil while the wireless power transmission coil transmits a wireless power signal to a wireless receiver.
[0136] According to another embodiment, the communication circuit includes a wired communication circuit configured to communicate using a connector.
[0137] According to another embodiment, the first range electronic device is a wireless receiver.
[0138] In another embodiment, the control circuit is configured to switch the operation of an audiovisual electronic device to receive data representing audio or visual functions from the wireless receiver in accordance with the wireless power transmission coil beginning wireless power transmission to the wireless receiver.
[0139] According to another embodiment, the wireless power transmission coil is adjacent to a magnetic alignment structure configured to align the wireless power transmission coil with the wireless power receiver.
[0140] According to another embodiment, the control circuit is further configured to switch the operation of an audiovisual electronic device to receive data representing audio or visual functions from the wireless receiver, in accordance with the detection of alignment with the wireless power transmission coil of the wireless receiver.
[0141] According to another embodiment, the control circuit is further configured to display user interface affordances on the display of an audiovisual electronic device in accordance with the wireless power transmission coil beginning wireless power transmission to a wireless power receiver, and to switch the operation of the audiovisual electronic device to receive data representing audio or visual functions from the wireless power receiver in accordance with the selection of user interface affordances.
[0142] According to one embodiment, a non-temporary computer-readable storage medium is provided for storing one or more programs configured to be executed by one or more processors of an electronic device capable of operating with a power transmission device and an audiovisual interface, wherein the electronic device includes a coil configured to receive a radio power signal from a power transmission device, a rectifier configured to convert the radio power signal into DC power, and a magnetic alignment structure configured to align the coil with the power transmission device, and the one or more programs include instructions for communicating with the audiovisual interface in accordance with detecting the alignment of the electronic device with the power transmission device for radio power transmission, and communicating with the audiovisual interface includes transmitting instructions to the audiovisual interface for presenting audio or visual functions supported by the electronic device.
[0143] According to another embodiment, a non-temporary computer-readable storage medium communicating with an audiovisual interface includes instructing the audiovisual interface to switch from displaying one or more affordances representing functions provided by the audiovisual interface to displaying one or more affordances representing functions provided by an electronic device.
[0144] According to another embodiment, a non-temporary computer-readable storage medium is provided, wherein the electronic device includes a display, and one or more programs further include instructions for displaying a request for wireless pairing with an audiovisual interface on the display in accordance with communication with the audiovisual interface.
[0145] The above is merely illustrative, and various modifications may be made to the described embodiments. The above embodiments may be implemented individually or in any combination.
Claims
1. An audiovisual electronic device, A charging circuit configured to supply power to a wireless power transmission coil, A communication circuit operably coupled to the charging circuit, A control circuit operably coupled to the charging circuit and the communication circuit, Using the aforementioned communication circuit, when the wireless power transmission coil is charging the electronic device, audio information or visual information is received from the electronic device. An audiovisual electronic device comprising: a control circuit configured to transmit audiovisual information to the electronic device using the aforementioned communication circuit; and an audiovisual electronic device.
2. An audiovisual electronic device according to Claim 1, wherein the audiovisual information transmitted to the electronic device includes audio information.
3. An audiovisual electronic device according to Claim 1, wherein the audiovisual information includes music.
4. An audiovisual electronic device according to Claim 1, wherein the audiovisual information transmitted to the electronic device includes video information.
5. An audiovisual electronic device according to Claim 1, wherein the audiovisual information transmitted to the electronic device includes a television program.
6. An audiovisual electronic device according to Claim 1, wherein transmitting the audiovisual information to the electronic device includes transmitting the audiovisual information to the electronic device using the wireless power transmission coil.
7. An audiovisual electronic device according to claim 6, wherein transmitting the audiovisual information to the electronic device using the wireless power transmission coil includes transmitting the audiovisual information to the electronic device while power is being transmitted from the wireless power transmission coil to the electronic device.
8. An audiovisual electronic device according to Claim 1, An audiovisual electronic device further comprising a touch-sensitive display configured to display the visual information received from the aforementioned electronic device.
9. An audiovisual electronic device according to claim 8, wherein the touch-sensitive display is configured to display the visual information received from the electronic device in pairing mode.
10. An audiovisual electronic device according to claim 9, wherein the touch-sensitive display is configured to display affordances representing functions in a normal mode different from the pairing mode.
11. An audiovisual electronic device according to claim 10, wherein the function includes a navigation application.
12. An audiovisual electronic device according to claim 10, wherein the function includes operating a radio.
13. An audiovisual electronic device according to claim 1, An audiovisual electronic device further comprising one or more speakers configured to present an audio output based on the audio information from the electronic device.
Citation Information
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