Mixed analog front end for wireless charging
A multi-coil wireless charging system with advanced sensing and communication protocols optimizes power transmission for complex devices, reducing power consumption and enhancing simultaneous charging capabilities.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-05
- Publication Date
- 2026-03-31
AI Technical Summary
Conventional wireless charging systems struggle to efficiently communicate and optimize power transmission for complex and varied mobile devices with changing form factors, often consuming excessive power during detection and lacking precision in locating and charging multiple devices simultaneously.
The implementation of a multi-coil wireless charging system with a controller that detects device location using sensing techniques and selectively activates coils, combined with advanced communication protocols like ASK modulation and mixed-signal demodulation to enhance efficiency and capacity for multiple device charging.
This approach reduces power consumption, improves charging precision, and enables simultaneous charging of multiple devices with varying placements by optimizing coil activation and enhancing communication protocols, thus addressing the inefficiencies of conventional systems.
Smart Images

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Abstract
Description
Technical Field
[0001] Priority Claim This application claims the priority and benefit of Provisional Patent Application No. 17 / 736,689, filed with the United States Patent and Trademark Office on May 4, 2022, and Provisional Patent Application No. 63 / 184,776, filed with the United States Patent and Trademark Office on May 5, 2021, and the entire contents of these applications are incorporated herein by reference in their entirety and for all purposes as if fully set forth below.
[0002] The present invention generally relates to wireless charging of batteries, and more specifically, to communication with a device being charged on the surface of a multi-coil wireless charging device.
Background Art
[0003] Wireless charging systems have been developed to enable a particular type of device to charge its internal battery without using a physical charging connection. Devices that can utilize wireless charging include mobile computing / processing devices and mobile communication devices. Standard specifications such as the Qi standard defined by the Wireless Power Consortium enable a device manufactured by a first supplier to be wirelessly charged by a charger manufactured by a second supplier. The specifications for wireless charging are optimized for devices with a relatively simple configuration and tend to provide basic charging functions.
[0004] Conventional wireless charging systems typically use a "digital ping" to determine whether a powered device is present on or near the transmission coil of a wireless charging base station. A digital ping may also be called an active ping. The transmission coil has an inductance (L) and a resonant capacitor with capacitance (C) coupled to the transmission coil to form a resonant LC circuit. A ping is generated by supplying power to the resonant LC circuit. Power is supplied for a certain period of time (90 milliseconds in one example), during which time the transmitter waits for a response from the powered device. The response may be provided as a signal encoded using amplitude shift key (ASK) modulation. As an example, a typical transmitting base station sends pings 12.5 times per second (period = 1 / 80 ms) and consumes (80 mJ × 12.5) = 1 W of power per second.
[0005] Improving wireless charging capabilities is necessary to accommodate increasingly complex mobile devices and changing form factors. For example, to improve the control of the charging procedure in multi-coil, multi-device charging devices, it is necessary to improve communication between the power transmitter and receiver. [Brief explanation of the drawing]
[0006] [Figure 1] Figure 1 shows an example of a charging cell that may be employed to provide a charging surface according to a particular embodiment disclosed herein. [Figure 2] Figure 2 shows an example of an array of charging cells provided in a single layer of a charging surface segment, which may be adapted according to a particular embodiment disclosed herein. [Figure 3] Figure 3 shows an example of the arrangement of charging cells when multiple layers are stacked within a charging surface segment, which may be adapted according to a particular embodiment disclosed herein. [Figure 4] Figure 4 shows the arrangement of power transfer areas provided by a charging surface employing a multi-layer charging cell configured according to a particular embodiment disclosed herein. [Figure 5]Figure 5 shows a wireless transmitter that may be provided on a charger base station according to a particular embodiment disclosed herein. [Figure 6] Figure 6 shows a first topology supporting matrix multiplexing switching for use in a wireless charging device adapted to a particular embodiment disclosed herein. [Figure 7] Figure 7 shows a second topology supporting DC drive in a wireless charging device adapted to a particular embodiment disclosed herein. [Figure 8] Figure 8 shows a controller that supports ASK demodulation according to a particular embodiment disclosed herein. [Figure 9] Figure 9 shows an example of an encoding scheme that may be adapted to digitally encode messages exchanged between a power receiver and a power transmitter, according to a particular embodiment disclosed herein. [Figure 10] Figure 10 shows a wireless transmitter configured to detect a modulated signal transmitted by a powered device, according to a particular embodiment disclosed herein. [Figure 11] Figure 11 shows a specific mode of the signal used for demodulation in the wireless power transmitter shown in Figure 10. [Figure 12] Figure 12 shows a wireless power transmitter configured according to a particular aspect of the present disclosure. [Figure 13] Figure 13 shows how an unattenuated ASK envelope is added to an attenuated peak voltage envelope according to a particular embodiment disclosed herein. [Figure 14] Figure 14 shows an example of a variable attenuation circuit configured according to a particular aspect of this disclosure. [Figure 15] Figure 15 is a flowchart showing an example of a method for communicating with a device while it is charging, according to a particular embodiment disclosed herein. [Figure 16]Figure 16 shows an example of an apparatus employing a processing circuit that may be adapted according to a particular embodiment disclosed herein. [Modes for carrying out the invention]
[0007] The detailed descriptions provided below in relation to the attached drawings are intended to illustrate various configurations and are not intended to show only the configurations in which the concepts described herein can be implemented. The detailed descriptions include specific details to provide a complete understanding of the various concepts. However, it will be apparent to those skilled in the art that these concepts can be implemented without specific details. Sometimes, well-known structures and components are shown in block diagram form to avoid obscuring such concepts.
[0008] Next, specific embodiments of wireless charging systems are presented with reference to various devices and methods. These devices and methods are described in the following detailed description and are illustrated in the accompanying drawings by various blocks, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as “elements”). These elements can be implemented using electronic hardware, computer software, or any combination thereof. Whether such elements are implemented as hardware or software depends on the specific application and the design constraints imposed on the overall system.
[0009] For example, an element, any part of an element, or any combination of elements may be implemented in a “processing system” comprising one or more processors. Examples of processors include microprocessors, microcontrollers, digital signal processors (DSPs), field-programmable gate arrays (FPGAs), programmable logic devices (PLDs), state machines, gate logic, discrete hardware circuits, and other suitable hardware configured to perform the various functions described throughout this disclosure. One or more processors in a processing system may execute software. Software is broadly interpreted to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, execution threads, procedures, functions, etc., whether they are called software, firmware, middleware, microcode, or hardware description languages, etc. Software may reside in a processor-readable storage medium. Processor-readable storage media, also referred to herein as computer-readable media, may include, for example, magnetic storage devices (e.g., hard disks, floppy disks, magnetic strips), optical discs (e.g., compact discs (CDs), digital-purpose discs (DVDs)), smart cards, flash memory devices (e.g., cards, sticks, key drives), near-field wireless communication (NFC) tokens, random-access memory (RAM), read-only memory (ROM), programmable ROM (PROM), erasable PROM (EPROM), electrically erasable PROM (EEPROM), registers, removable disks, carriers, transmission lines, and any other media suitable for storing or transmitting software. Computer-readable media may reside within a processing system, be outside of a processing system, or be distributed across multiple entities including a processing system. Computer-readable media may also be embodied in computer program products.As an example, a computer program product may include computer-readable media within the packaging material. Those skilled in the art will recognize the best way to implement the functions described throughout this disclosure, depending on the specific application and the overall design constraints imposed on the entire system.
[0010] overview Certain aspects of this disclosure relate to systems, apparatus, and methods relating to wireless charging devices, including wireless charging devices, that use multiple transmission coils or provide a freely configurable charging surface capable of simultaneously charging multiple powered devices. In one embodiment, a controller of the wireless charging device can locate the location of a device to be charged and configure one or more transmission coils optimally positioned to supply power to the powered device. A charging cell may comprise or constitute one or more inductive transmission coils, and multiple charging cells may be arranged or configured to provide a charging surface. The location of the device to be charged can be detected via sensing techniques that associate the location of the device with changes in physical properties centered on known locations on the charging surface. In some examples, location sensing can be implemented using capacitive, resistive, inductive, contact, pressure, load, strain, and / or other suitable types of sensing.
[0011] Certain embodiments disclosed herein relate to improved wireless charging technology. Systems, apparatus, and methods are disclosed that can improve the efficiency and capacity of wireless power transmission to a powered device by improving communication between a transmission device and a powered device. According to certain embodiments disclosed herein, power can be wirelessly transmitted from a transmission device to a powered device located at any location on a charging surface which can have any defined size and / or shape, regardless of any individual placement location where charging is possible. In the transmission device, high-frequency components can be extracted from a measurement signal representing the voltage in the transmission coil of a wireless charger during charging operation. This measurement signal can be attenuated to obtain an attenuated measurement signal. The signal representing the high-frequency components can be mixed with the attenuated measurement signal to obtain a scaled measurement signal. The scaled measurement signal can be demodulated to obtain one or more messages related to the charging operation.
[0012] rechargeable cell Certain aspects of this disclosure relate to systems, apparatus, and methods applicable to wireless charging devices having multiple transmission coils or providing a freely configurable charging surface capable of simultaneously charging multiple powered devices. In one embodiment, a controller of the wireless charging device can locate the location of a device to be charged and configure one or more transmission coils optimally positioned to supply power to the powered device. A charging cell may comprise or constitute one or more inductive transmission coils, and multiple charging cells may be arranged or configured to provide a charging surface. The location of the device to be charged can be detected via sensing techniques that associate the device's location with changes in physical properties centered on known locations on the charging surface. In some examples, location sensing can be implemented using capacitive, resistive, or other methods.
[0013] According to certain embodiments disclosed herein, the charging surface of a wireless charger may be provided using charging cells arranged adjacent to the surface of the charger. In one embodiment, the charging cells are arranged in one or more layers below or adjacent to the charging surface according to a honeycomb package configuration. The charging cells may be implemented in a wireless charger using one or more coils, each capable of inducing a magnetic field along an axis substantially orthogonal to the charging surface adjacent to the coil. In this specification, a charging cell means a component having one or more coils configured to generate an electromagnetic field in which each coil is additive to the fields generated by other coils in the charging cell and is oriented along or close to a common axis. In this disclosure, coils in a charging cell may also be referred to as charging coils, transmission coils, Litz coils, or combinations thereof.
[0014] In some implementations, the charging cells include coils stacked along a common axis and / or overlapping to contribute to a magnetic field induced substantially perpendicular to the surface of the charging device. In some embodiments, the charging cells include coils positioned within a defined portion of the surface of the charging device and contributing to an induced magnetic field within a defined portion of the charging surface, the magnetic field contributing to a magnetic flux flowing substantially perpendicular to the charging surface.
[0015] In some implementation examples, a charging cell can be configured by supplying an excitation current to a coil included in one or more dynamically defined charging cells. For example, a wireless charging device includes a stack of multiple coils arranged across a charging surface, and the wireless charging device can detect the position of a device to be charged based on its proximity to one or more stacks of coils. The charging device can select some combinations of the stacks of coils to define or provide a charging cell adjacent to the device to be charged. In some implementation examples, a charging cell can include a single coil or be characterized as a single coil. However, it should be understood that a charging cell can also include multiple stacked coils and / or multiple adjacent coils or stacks of coils. In this specification, a coil may be referred to as a charging coil, a wireless charging coil, a transmitter coil, a transmission coil, a power transmission coil, a power transmitter coil, etc.
[0016] FIG. 1 shows an example of a charging cell 100 that can be deployed and / or configured to provide a charging surface of a wireless charging device. In the present disclosure, it can be understood that the charging surface includes an array of charging cells 100 provided on one or more substrates 106 of a printed circuit board, or an array of charging coils embedded in a structure formed from one or more substrates 106. A circuit composed of one or more integrated circuits (ICs) and / or discrete electronic components can be provided on the one or more substrates 106. This circuit can include drivers and switches used to control the current supplied to the coils used to transmit power to the power receiving device. This circuit can be implemented using a processing circuit including one or more processors and / or one or more controllers configured to perform specific functions disclosed herein. In some embodiments, part or all of the processing circuit may be provided outside the charging device. In some embodiments, a power source can be coupled to the charging device.
[0017] The charging cell 100 can be provided near the outer surface area of the charging device, and one or more devices can be arranged thereon for charging. The charging device can include a plurality of instances of the charging cell 100. In one embodiment, the charging cell 100 has a substantially hexagonal shape that encloses or surrounds one or more coils 102. Each coil can be constructed using a conductor, wire, or circuit board trace capable of receiving a current sufficient to generate an electromagnetic field in the power transmission region 104. In various embodiments, some coils 102 can have an overall shape that is substantially polygonal, including the hexagonal charging cell 100 illustrated in FIG. 1. In some embodiments, one or more coils can have a flat spiral shape or a substantially circular shape. In other implementation examples, coils 102 having a circular, elliptical, or other shape are provided. The shape of the coil 102 can be determined at least in part to optimize the number of turns of each coil, the capabilities or limitations of the manufacturing technology, and / or the layout of the charging cell on a substrate 106 such as a printed circuit board. Each coil 102 can be implemented using a wire in a spiral configuration, a printed circuit board trace, and / or other connectors. Each charging cell 100 can extend across two or more layers separated by an insulator or substrate 106 such that the coils 102 of different layers are centered on a common axis 108.
[0018] FIG. 2 is a diagram showing an example of an arrangement 200 of charging cells 202 provided in a single layer of a segment or a part of a charging surface that can be included in a charging system adapted according to a specific aspect disclosed herein. The charging cells 202 are arranged according to a honeycomb packaging configuration. In this embodiment, the charging cells 202 are arranged end to end without overlapping. This arrangement can be provided without through holes or wire wiring. Other arrangements are also possible, such as an arrangement where some of the charging cells 202 overlap. For example, the wires of two or more coils can be interleaved, arranged concentrically, or overlapped to some extent.
[0019] Figure 3 shows an example of the arrangement of charging cells from two viewpoints 300, 310, where multiple layers are superimposed within a segment or portion of a charging surface, which may be adapted according to a particular embodiment disclosed herein. In this example, four layers of charging cells 302, 304, 306, and 308 are provided within the charging surface. The charging cells within each layer of charging cells 302, 304, 306, and 308 are arranged according to a honeycomb packaging configuration. In one embodiment, the copper layers of charging cells 302, 304, 306, and 308 may be formed on four or more layers of printed circuit board. The arrangement of charging cells 100 can be selected to completely cover an allocated charging area adjacent to the illustrated segment.
[0020] Figure 4 shows the arrangement of power transmission areas defined or configured on a charging surface 400 provided by a charging system according to a particular embodiment disclosed herein. The illustrated charging surface 400 is composed of four layers of charging cells 402, 404, 406, and 408. In Figure 4, each power transmission area provided by a charging cell of the first layer charging cell 402 is labeled "L1", each power transmission area provided by a charging cell of the second layer charging cell 404 is labeled "L2", each power transmission area provided by a charging cell of the third layer charging cell 406 is labeled "L3", and each power transmission area provided by a charging cell of the fourth layer charging cell 408 is labeled "L4".
[0021] Wireless Transmitter Figure 5 shows a specific embodiment of a wireless transmitter 500 that may be provided in a base station of a wireless charger. The base station of the wireless charger may include one or more processing circuits used to control the operation of the wireless charger. A controller 502 may receive a feedback signal that has been filtered by a filter circuit 508 or otherwise processed. The controller may control the operation of a driver circuit 504 that supplies AC to a resonant circuit 506. In some examples, the controller 502 generates a digital frequency reference signal used to control the frequency of the AC current output by the driver circuit 504. In some examples, the digital frequency reference signal may be generated using a programmable counter or the like. In some examples, the driver circuit 504 includes a power inverter circuit and one or more power amplifiers that cooperate to generate AC current from a DC power source or input. In some examples, the digital frequency reference signal may be generated by the driver circuit 504 or by another circuit. The resonant circuit 506 includes a capacitor 512 and an inductor 514. The inductor 514 may represent or include one or more transmission coils in a charging cell that generate magnetic flux in response to the AC current. The resonant circuit 506 is also referred to herein as a tank circuit, an LC tank circuit, or an LC tank, and the voltage 516 measured at the LC node 510 of the resonant circuit 506 is also referred to as the tank voltage.
[0022] Passive ping technology can use voltages and / or currents measured or observed at the LC node 510 to identify the presence of a charging coil adjacent to the charging pad of a device adapted according to a particular embodiment disclosed herein. Conventional wireless charging devices include circuits that measure the voltage at the LC node 510 of the resonant circuit 506 and the current in the resonant circuit 506. These voltages and currents may be monitored for power regulation purposes and / or to support communication between devices. According to a particular embodiment of this disclosure, the voltage at the LC node 510 of the wireless transmitter 500 shown in Figure 5 may be monitored to support passive ping technology that can detect the presence of a rechargeable device or other object based on the response of the resonant circuit 506 to a short burst of energy (ping) transmitted through the resonant circuit 506.
[0023] Passive Ping discovery technology can provide high-speed, low-power discovery. Passive Ping can be generated by driving a network containing a resonant circuit 506 with a high-speed pulse containing a small amount of energy. The high-speed pulse excites the resonant circuit 506, causing the network to oscillate at its intrinsic resonant frequency until the injected energy decays and disappears. The response of the resonant circuit 506 to the high-speed pulse can be partially determined by the resonant frequency of the resonant LC circuit. The response of the resonant circuit 506 to passive Ping (initial voltage V0) is determined by the voltage V observed at the LC node 510. LC Therefore, it can be expressed as follows: TIFF0007837573000001.tif12170
[0024] The voltage or current in the resonant circuit 506 can be monitored when the controller 502 or other processor uses digital ping to detect the presence of an object. Digital ping is generated by driving the resonant circuit 506 for a certain period of time. The resonant circuit 506 is a tuned network that includes the transmission coil of the wireless charger. The powered device can modulate the voltage or current observed in the resonant circuit 506 by changing the impedance exhibited by the powered circuit in response to the signaling state of the modulation signal. The controller 502 or other processor then waits for a data modulation response indicating that the powered device is nearby.
[0025] Selective coil excitation According to certain embodiments disclosed herein, power transmission coils in one or more charging cells can be selectively activated to provide an optimal electromagnetic field for charging a compatible device. In some embodiments, power transmission coils are assigned to charging cells, and some charging cells may overlap with others. An optimal charging setting can be selected on a per-charging-cell basis. In some examples, the charging setting may include charging cells on a charging surface that are determined to be aligned with or located near the device being charged. The controller may activate a single power transmission coil or a combination of power transmission coils based on the charging setting, which is based on the detection of the location of the device being charged. In some embodiments, the wireless charging device may have a driver circuit that can selectively activate one or more power transmission coils or one or more predetermined charging cells during a charging event.
[0026] Figure 6 shows a first topology 600 supporting matrix multiplexing switching for use in a wireless charging device adapted to a particular embodiment disclosed herein. The wireless charging device can select one or more charging cells 100 to charge a powered device. Charging cells 100 not in use can be disconnected from the current. In the honeycomb packaging configuration illustrated in Figures 2 and 3, a relatively large number of charging cells 100 can be used, requiring a corresponding number of switches. According to a particular embodiment disclosed herein, the charging cells 100 may be logically arranged in a matrix 608 having a plurality of cells connected to two or more switches that allow power to be supplied to a particular cell. In the illustrated topology 600, a two-dimensional matrix 608 is provided, where the dimensions may be represented by X and Y coordinates. Each of the first set of switches 606 is configured to selectively couple the first terminal of each cell in the cell column to the first terminal of a voltage source or current source 602 that supplies current to excite a coil during wireless charging. Each of the second set of switches 604 is configured to selectively connect the second terminal of each cell in the cell column to the second terminal of a voltage source or current source 602. When both terminals of a cell are connected to the voltage source or current source 602, the charging cell becomes active.
[0027] Using Matrix 608 significantly reduces the number of switching components required to operate a tuned LC circuit network. For example, while N individually connected cells require at least N switches, a 2D Matrix 608 with N cells can be operated with √N switches. Using Matrix 608 results in substantial cost savings and reduces circuit and / or layout complexity. In one example, a 9-cell implementation can be implemented using a 3x3 Matrix 608 with 6 switches, saving 3 switches. In another example, a 16-cell implementation can be implemented using a 4x4 Matrix 608 with 8 switches, saving 8 switches.
[0028] During operation, at least two switches are closed, actively coupling one coil or charging cell to the voltage or current source 602. Multiple switches can be closed at once to facilitate the connection of multiple coils or charging cells to the voltage or current source 602. For example, multiple switches can be closed to enable an operating mode that drives multiple transmission coils when transferring power to a powered device.
[0029] Figure 7 shows a second topology 700 in which each individual coil or charge cell is directly driven by a driver circuit 702, according to a particular embodiment disclosed herein. The driver circuit 702 may be configured to select one or more coils or charge cells 100 from a coil group 704 to charge a powered device. It should be understood that the concepts disclosed herein in relation to the charge cells 100 may be applied to the selective excitation of individual coils or coil stacks. Unused charge cells 100 do not carry current. A relatively large number of charge cells 100 can be used, and a switching matrix may be employed to drive individual coils or coil groups. In one example, a first switching matrix may constitute a connection that defines the charge cells or coil group used during a charging event, and a second switching matrix may be used to excite the charge cells and / or selected coil group.
[0030] Control messages during the charging procedure Certain aspects of this disclosure relate to wireless communication of configuration, control, status, and other information between a power transmitter and a power receiver being wirelessly charged by the power transmitter. This configuration, control, status, and other information is communicated before and during power transmission and transmitted in messages encoded according to a standard defined protocol. As an example, the Qi protocol provides a power receiver with wireless control over a power transmitter by enabling it to send messages to the power transmitter over a power link. These messages can convey requests, commands, status, and other information. The Qi protocol is implemented in many wireless charging devices and manages the wireless interconnection between power transmitters and power receivers. Some Qi protocols use amplitude shift key (ASK) modulation for message exchange from the power receiver to the power transmitter. As an example, the power receiver can generate an ASK signal by varying the load of the power receiving circuit. The load variation is reflected in the load of the resonant circuit 506 during the charging transaction, respectively, through magnetic coupling between the transmit and receive coils of the power transmitter and power receiver. Load fluctuations can be detected by measuring the voltage or current in the tank circuit.
[0031] Figure 8 shows an example of a processing circuit 800 that may be configured to receive and decode an ASK modulated signal. The processing circuit 800 includes a processor 802 that may be coupled to a memory device 804 and / or registers, or other types of storage that can store messages transmitted using the ASK modulated signal 812 and / or messages decoded from the received ASK modulated signal 812. The processing circuit 800 includes an ASK decoder 806 that may be implemented using hardware, software, or some combination of hardware and software. The ASK decoder 806 may use a clock signal received from a clock generation or recovery circuit 808 to control the timing of the transmitted ASK modulated signal 812 and control the sampling and decoding of the received ASK modulated signal 812.
[0032] In some examples, a digital signal processor (DSP) can be used to decode the ASK modulated signal 812 that modulates the voltage or current in the tank circuit of an inductive power transmission device. In the wireless transmitter 500 of Figure 5, the ASK modulated signal 812 can represent, or be derived from, a measurement of the charging current 518 or voltage 516 measured at the LC node 510 of the resonant circuit 506. In many examples, interrupts can be used to identify or measure the timing between level changes of the ASK modulated signal 812. In one example, the demodulation circuit can use a timer provided by a microcontroller (MCU) to measure or calculate the time between edges of the ASK modulated signal 812 or between interrupts triggered by those edges. The ASK modulated signal 812 may also be decoded using continuous time measurements. In another example, a DSP or digital signal controller can be used to demodulate the ASK modulated signal using a digital signal processing method.
[0033] Figure 9 shows examples of encoding schemes 900, 920 that can be adapted to digitally encode messages exchanged between a power receiver and a power transmitter. In the first example, differential biphase encoding scheme 900 encodes binary bits in phase with respect to the data signal 904. In the illustrated example, each bit of the data byte 906 is encoded in the corresponding cycle 908 of the encoder clock signal 902. The value of each bit is encoded in the data signal 904 in the corresponding cycle 908 with or without a transition 910 (phase change).
[0034] In a second example, amplitude modulation can be used. In one embodiment, the tank voltage or charging current 924 is modulated using a data coding scheme 920 that defines or induces various power signal amplitudes observed in the tank circuit. In the illustrated example, the binary bits of the data byte 926 are coded at the level of the charging current 924. Each bit of the data byte 926 is coded at the corresponding cycle 928 of the encoder clock signal 922. The value of each bit is coded at the voltage level of the charging current 924 relative to the nominal 100% voltage level 930 of the charging current 924 during the corresponding cycle 908.
[0035] Figure 10 shows an example of a system that may be configured to support ASK modulation according to a particular aspect of the present disclosure. In the illustrated example, a wireless power transmitter 1000 is configured to transmit power to a wireless power receiver 1020. The charging operation is controlled by a processing circuit 1002 that controls a driver circuit 1004 according to a defined charging setting for charging the wireless power receiver 1020. The driver circuit 1004 supplies a charging current to a resonant circuit 1006 which includes at least one transmitting inductor 1016, which may represent the inductance of one or more wireless power transmission coils. The tank voltage 1012 measured across the transmitting inductor 1016 is the product of the current flowing through the transmitting inductor 1016 and other impedances of the resonant circuit 1006. The impedance of the resonant circuit 1006 may include several components related to the wireless power receiver 1020. For example, the impedance of the power conversion circuit 1022 and the load 1026 of the wireless power receiver 1020 contribute to the impedance of the resonant circuit 1006 during the charging operation.
[0036] In some examples, the wireless power receiver 1020 comprises a modulation circuit 1024, which can be used to modulate the tank voltage 1012 by changing the impedance contributed by the wireless power receiver 1020 to the impedance of the resonant circuit 1006. The contributed impedance includes contributions from the power conversion circuit 1022, the load 1026, and the modulation circuit 1024. In the illustrated example, the wireless power receiver 1020 is configured to modulate the tank voltage 1012 by changing the impedance of the modulation circuit 1024. A modulation resistor 1034 coupled to the load 1026 can be switched in / out according to the modulation signal supplied to the gate 1030 of a switching transistor 1032. In the illustrated example, the switching transistor 1032 is configured to act as a switch that is on when the modulation signal is in a first signal state and off when the modulation signal is in a second signal state. Here, when the modulated signal is in the first signal state, the switching transistor 1032 connects the modulation resistor 1034 in parallel with the load 1026, thereby reducing the impedance contributed to the resonant circuit 1006 compared to the impedance of the resonant circuit 1006 when the modulated signal is in the second signal state.
[0037] In the illustrated example, the modulation circuit 1024 is coupled in parallel with the load 1026. In other examples, the modulation circuit 1024 may be coupled in parallel with the receiving inductor 1028 in the power conversion circuit 1022.
[0038] In the illustrated example, the switching transistor 1032 is normally off, and modulation is achieved by turning on the switching transistor 1032 to lower the impedance of the resonant circuit 1006. In other examples, the switching transistor 1032 is normally on, and modulation is achieved by turning on the switching transistor 1032 to increase the impedance of the resonant circuit 1006.
[0039] The wireless power transmitter 1000 may be configured to detect a modulated signal transmitted by the wireless power receiver 1020. The modulated signal may be detected by the tank voltage 1012 or by the current flowing through the transmitting inductor 1016. In some examples, the modulated signal is encoded using ASK modulation. In some examples, the modulated signal used to modulate the tank voltage 1012 may be encoded using pulse-width modulation.
[0040] In a specific example, the measurement circuit 1008 may be configured to obtain a measurement signal 1014 indicating the tank voltage 1012 at the LC node 1018 of the resonant circuit 1006, or a measurement signal 1014 indicating the current flow through the LC node 1018. The measurement circuit 1008 may be provided or configured to support various calculations, including the calculation or estimation of the Q factor of the resonant circuit 1006. The measurement circuit 1008 may include analog-to-digital converters (ADCs), filters, amplifiers, attenuators, comparators, counters, etc. The measurement circuit 1008 can supply the received data signal 1014 to the demodulation circuit 1010. The received data signal 1014 may represent a modulated signal which is a component of the tank voltage 1012. The demodulation circuit decodes the information from the received data signal 1014 and provides data, control, or status information to the processing circuit 1002.
[0041] Figure 11 is a graph 1100 illustrating a specific mode of demodulation in the wireless power transmitter 1000 shown in Figure 10. The first curve 1102 represents the tank voltage 1012 during charging operation. When power supply is initiated, the tank voltage 1012 rises to a peak voltage level. The peak voltage level is represented or referred to as the envelope voltage level 1104, the direct current (DC) voltage level, and / or the peak DC level. At some point 1110, the wireless power receiver 1020 begins modulating the tank voltage 1012. Due to the effect of modulation, the tank voltage 1012 can be increased or decreased in response to the modulated signal. The modulated signal is transmitted in an ASK envelope 1106, in the illustrated example, where the ASK envelope 1106 is superimposed on the envelope voltage level 1104 and exhibits the amplitude of excursions resulting from the modulated signal from the envelope voltage level 1104.
[0042] In some wireless charging systems, the measurement circuit 1008 is configured to measure the envelope voltage level 1104 in addition to the voltage level within the ASK envelope 1106. The measurement circuit 1008 can use an ADC circuit to acquire a sample of the tank voltage 1012 and measure the voltage level of the sample to provide a digital representation of the voltage level. The processor can separate the ASK fluctuation from the envelope voltage level 1104 by digital processing of the ADC output.
[0043] In certain implementations, the input to the ADC circuit has a limited voltage range, for example, it can handle input signals with a maximum amplitude of 1-2 volts. The envelope voltage level 1104 may be considerably higher than 1-2 volts, and in some cases may reach up to 100 volts. Therefore, the measurement circuit 1008 may scale the envelope voltage level 1104 to a lower voltage level 1114 that can be sensed by the ADC. The second curve 1112 represents the attenuated tank voltage 1012, with the corresponding attenuated ASK envelope 1116 superimposed. ASK modulation can result in an ASK envelope 1106 having an amplitude or swing of 0.5%-2% of the envelope voltage level 1104. In the example of a 100-volt envelope voltage level 1104 and 500mV–2V ASK modulation, the downscaling factor 50 required to attenuate the envelope voltage level 1104 results in an attenuated ASK envelope 1116 with an amplitude or swing of 10mV–40mV. The 10mV–40mV range of the attenuated ASK envelope 1116 can degrade the signal-to-noise ratio (SNR) at the ADC input, and the ADC may not be sensitive enough to provide more than a few bits or increments of ADC deflection to cover the amplitude of the attenuated modulated signal. In some cases, the measurement circuit 1008 may not be able to detect small fluctuations in the amplitude of the attenuated modulated signal, and quantization errors in the ADC output may cause the demodulator to generate false information from the modulated signal.
[0044] Certain aspects of this disclosure provide a measurement and demodulation circuit capable of maximizing the amplitude of an ASK modulated signal derived from a measurement signal representing a tank voltage 1012, including the case where the measurement signal is attenuated so that it falls within a voltage range supported by the measurement circuit. In one example, a low-frequency signal representing an envelope voltage level 1104 is separated from a high-frequency ASK modulated signal extracted from an ASK envelope 1106. The low-frequency and high-frequency signals are attenuated or amplified individually using mixed-signal techniques to generate inputs to the measurement circuit, so that the voltage states of the ASK modulated signal are distinguishable at the ADC output by an optimized number of bits or a large number of bits. In one aspect, a high SNR of the ASK modulated signal is maintained while the low-frequency signal is attenuated, enabling accurate demodulation of the ASK modulated signal.
[0045] Figure 12 shows a wireless power transmitter 1200 configured according to a particular aspect of the present disclosure. The wireless power transmitter 1200 includes a processing circuit 1202 that controls a driver circuit 1204 and receives the output of an ASK demodulator 1212. The driver circuit 1204 supplies a charging current 1218 to a resonant circuit 1206 which includes at least one transmitting inductor 1214. The tank voltage signal 1216 represents a voltage measured across the transmitting inductor 1214 and may represent the product of the current flowing through the transmitting inductor 1214 and the impedance of the resonant circuit 1206 or the transmitting inductor 1214. In some embodiments, the tank voltage signal 1216 represents a voltage measured across a small resistance contained in the resonant circuit 1206 or between the driver circuit 1204 and the resonant circuit 1206 for measurement purposes.
[0046] The wireless power transmitter 1200 may be configured to detect a modulated signal of the tank voltage signal 1216. For example, the modulated signal is encoded using ASK modulation or pulse width modulation. According to a particular aspect of the present disclosure, a variable attenuation circuit 1208 is used to apply various levels of attenuation to the modulated signal, which represents the voltage fluctuations associated with the peak envelope voltage level 1104 and the ASK envelope 1106.
[0047] In one aspect of this disclosure, different attenuations may be applied to signals of different frequencies or different frequency bands. In Example 1300 shown in Figure 13, an unattenuated modulated signal containing high-frequency components may be extracted from the tank voltage signal 1216 using a high-pass or band-pass filter. The modulated signal is transmitted within the ASK envelope 1308. The low-frequency components of the tank voltage signal 1216 can be attenuated without affecting the modulated signal. In some cases, the tank voltage signal 1216 may be rectified or averaged after the extraction of the modulated signal. In some examples, a low-pass filter can be used to generate a DC signal representing a DC voltage level equivalent to that of the tank voltage signal 1216, by rectification, averaging, or other means. The DC signal may be attenuated before, during, or after the low-pass filtering. The attenuated tank signal 1220 can be obtained by combining the high-frequency components corresponding to the ASK envelope 1308 with the attenuated DC signal. The attenuated tank signal 1220 can be represented by a curve 1302 that depicts an attenuated and filtered version of the tank voltage signal 1216, which has a superimposed unattenuated ASK envelope component 1304 corresponding to the high-frequency modulated signal generated by the powered device. The level of attenuation applied to obtain the DC signal can be selected to obtain an average voltage level 1306, which is defined or configured based on the input specifications of the ADC or ADC included in the demodulator used to measure the tank voltage.
[0048] In the illustrated example 1300, the modulated signal of the ASK envelope 1308 is combined with a DC signal, and the combined signal can be supplied to an ADC circuit. The output of the ADC circuit can be processed by a processing circuit, a digital signal processor, or other suitable processing device. In some implementations, the ASK envelope 1308 is supplied directly to the demodulation circuit without recombining with the DC signal. In some implementations, the ASK envelope 1308 is offset to a DC voltage level optimized for capture by the ADC used in the demodulation circuit.
[0049] In certain examples, the variable attenuation circuit 1208 can separate the ASK-encoded signal from the signal representing the peak envelope voltage level 1104 (peak envelope signal) and apply a different attenuation coefficient to the separated signal. In another example, the variable attenuation circuit 1208 may allow the ASK-encoded signal to bypass the attenuation circuit used to scale the peak envelope signal. In some examples, different auto-variable attenuation or amplification can be applied to the ASK-encoded signal and the peak envelope signal based on their respective expected, observed, or measured voltage levels.
[0050] The wireless power transmitter 1200 may include a measurement circuit 1210 that generates a received data signal 1222 indicating the voltage level of a sample acquired from the attenuation tank signal 1220. The received data signal 1222 represents a modulated signal and can be provided to an ASK demodulator 1212, which may be configured to decode information from the received data signal 1222 and provide data, control, or status information to a processing circuit 1202.
[0051] Figure 14 shows an example of a variable attenuation circuit 1400 configured according to a particular aspect of the present disclosure. A schematic diagram 1420 of one implementation example of the variable attenuation circuit 1400 is also provided. In the illustrated example, a modulated signal 1402 representing the tank voltage is supplied to a peak detector 1404 capable of specifying and holding the peak envelope voltage. The output of the peak detector 1404 is supplied to an attenuator 1406 and a high-pass filter 1408. The attenuator 1406 may be configured to reduce the peak envelope voltage level to a desired level range. In one example, the desired level range is selected considering compatibility with voltage limits associated with the input of the ADC circuit. In some examples, the attenuator 1406 may be adjustable and can be set based on the measured peak voltage level. The high-pass filter 1408 may be configured to block low-frequency signals, including DC levels and frequencies used for power transmission. The high-pass filter 1408 may be configured to pass signals in a frequency range that includes frequencies characteristic of the modulated signal.
[0052] The outputs of attenuator 1406 and high-pass filter 1408 can be added together using mixer 1410. In one example, the output 1414 of mixer 1410 can be represented by curve 1302 shown in Figure 13. In some implementations, the scaled output 1416 is provided using low-pass filter 1412 to remove frequencies higher than the expected modulation-related frequencies from the output 1414 of mixer 1410.
[0053] Figure 15 is a flowchart 1500 illustrating an example of a method for communicating with a device during charging. This method can be performed by a controller of a multi-charging cell, multi-device wireless charger. In block 1502, the controller can extract high-frequency components from a measurement signal representing the voltage in the transmission coil of the wireless charger during charging operation. In block 1504, the controller can attenuate the measurement signal to obtain an attenuated measurement signal. In block 1506, the controller can mix the signal representing the high-frequency components with the attenuated measurement signal to obtain a scaled measurement signal. In block 1508, the controller can demodulate the scaled measurement signal to obtain one or more messages related to the charging operation.
[0054] In some examples, mixing a signal representing high-frequency components with an attenuated signal involves attenuating the high-frequency components to obtain a signal representing the attenuated high-frequency components.
[0055] In various examples, the controller can supply a scaled measurement signal to an ADC, which can then decode one or more messages from a series of digital values supplied by the ADC. These digital values can represent voltage samples of the scaled measurement signal over a period of time.
[0056] In some examples, the controller may supply the scaled measurement signal to the ADC by applying a low-pass filter to the scaled measurement signal.
[0057] In certain cases, the controller may use a high-pass filter to extract high-frequency components from the measured signal.
[0058] In some examples, the high-frequency components correspond to an ASK modulated signal. An ASK modulated signal may be received from a wirelessly charged device participating in a charging operation.
[0059] Example of a processing circuit Figure 16 shows an example of a hardware implementation of device 1600, which can be incorporated into a wireless charging device or power receiving device that enables wireless charging of a battery. In some examples, device 1600 can perform one or more of the functions disclosed herein. According to various aspects of this disclosure, elements, any part of elements, or any combination of elements disclosed herein can be implemented using a processing circuit 1602. The processing circuit 1602 may include one or more processors 1604 controlled by some combination of hardware modules and software modules. Examples of processors 1604 include microprocessors, microcontrollers, digital signal processors (DSPs), SoCs, ASICs, field-programmable gate arrays (FPGAs), programmable logic devices (PLDs), state machines, sequencers, gate logic, discrete hardware circuits, and other suitable hardware configured to perform the various functions described throughout this disclosure. One or more processors 1604 may include dedicated processors that perform specific functions and may be configured, enhanced, or controlled by one of the software modules 1616. One or more processors 1604 may be configured through a combination of software modules 1616 that are loaded during initialization, and may be further configured by loading or unloading one or more software modules 1616 during operation.
[0060] In the illustrated example, the processing circuit 1602 may be implemented in a bus architecture generally represented by bus 1610. Bus 1610 may include any number of interconnection buses and bridges depending on the specific application and overall design constraints of the processing circuit 1602. Bus 1610 links various circuits, including one or more processors 1604 and storage 1606. Storage 1606 may include memory devices and mass storage devices, also referred to herein as computer-readable media and / or processor-readable media. Storage 1606 may include temporary storage media and / or non-temporary storage media.
[0061] Bus 1610 may link various other circuits, such as timing sources, timers, peripherals, voltage regulators, and power management circuits. Bus interface 1608 can provide an interface between bus 1610 and one or more transceivers 1612. For example, transceivers 1612 may be provided to enable device 1600 to communicate with a charging device or powered device according to a standard protocol. Depending on the nature of device 1600, a user interface 1618 (e.g., keypad, display, speaker, microphone, joystick) may also be provided and can be connected to bus 1610 directly or via bus interface 1608 for communication.
[0062] The processor 1604 can be responsible for managing the bus 1610 and for overall processing, including the execution of software stored on a computer-readable medium, including the storage 1606. In this regard, the processing circuit 1602, including the processor 1604, can be used to implement any of the methods, functions, and techniques disclosed herein. The storage 1606 can be used to store data manipulated by the processor 1604 when the software is executed, and the software can be configured to perform any one of the methods disclosed herein.
[0063] One or more processors 1604 of the processing circuit 1602 can execute software. Software is broadly interpreted to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, execution threads, procedures, functions, algorithms, etc., regardless of whether they are called software, firmware, middleware, microcode, or hardware description languages. The software may reside in storage 1606 in a computer-readable format or on external computer-readable media. External computer-readable media and / or storage 1606 may include non-temporary computer-readable media. Non-temporary computer-readable media may include, for example, magnetic storage devices (e.g., hard disks, floppy disks, magnetic strips), optical discs (e.g., compact discs (CDs), digital multipurpose discs (DVDs)), smart cards, flash memory devices (e.g., "flash drives", cards, sticks, key drives), RAM, ROM, programmable read-only memory (PROM), erasable PROM (EPROM) including EEPROM, registers, removable disks, and any other suitable media for storing software and / or instructions that a computer can access and read. The computer-readable media and / or storage 1606 may also include, for example, carrier waves, transmission lines, and any other suitable media for transmitting software and / or instructions that a computer can access and read. The computer-readable media and / or storage 1606 may reside in the processing circuit 1602, reside in the processor 1604, be outside the processing circuit 1602, or be distributed across multiple entities including the processing circuit 1602. The computer-readable medium and / or storage 1606 may be embodied in a computer program product.As an example, a computer program product may include computer-readable media within the packaging material. Those skilled in the art will recognize the best way to implement the functions described throughout this disclosure, depending on the specific application and the overall design constraints imposed on the entire system.
[0064] Storage 1606 can maintain and / or organize software such as loadable code segments, modules, applications, and programs, also referred to herein as software modules 1616. Each software module 1616 may contain instructions and data that, when installed or loaded into processing circuit 1602 and executed by one or more processors 1604, contribute to a runtime image 1614 that controls the operation of one or more processors 1604. Certain instructions, when executed, can cause processing circuit 1602 to perform a function according to certain methods, algorithms, and processes described herein.
[0065] Some of the software modules 1616 may be loaded during the initialization of the processing circuit 1602, and these software modules 1616 can configure the processing circuit 1602 to enable the execution of various functions disclosed herein. For example, some software modules 1616 can configure the internal devices and / or logic circuits 1622 of the processor 1604 and manage access to external devices such as transceivers 1612, bus interfaces 1608, user interfaces 1618, timers, and numerical coprocessors. The software modules 1616 may include control programs and / or operating systems that interact with interrupt handlers and device drivers and control access to various resources provided by the processing circuit 1602. Resources may include memory, processing time, access to transceivers 1612, user interfaces 1618, and so on.
[0066] One or more processors 1604 of the processing circuit 1602 are multifunctional, thereby loading several software modules 1616 and configuring them to execute different functions or different instances of the same function. Furthermore, one or more processors 1604 may be adapted to manage background tasks initiated in response to inputs from, for example, the user interface 1618, the transceiver 1612, and device drivers. To support the execution of multiple functions, one or more processors 1604 may be configured to provide a multitasking environment, thereby implementing each of the multiple functions as a set of tasks provided by one or more processors 1604 as needed. In one example, the multitasking environment may be implemented using a time-sharing program 1620 that passes control of the processor 1604 between different tasks, thereby returning control of one or more processors 1604 to the time-sharing program 1620 in response to the completion of any outstanding operations and / or inputs such as interrupts. When a task has control of one or more processors 1604, the processing circuit is effectively specialized for the purposes addressed by the functions associated with the controlled task. The time-sharing program 1620 may include an operating system, a main loop that transfers control in a round-robin manner, a function that assigns control of one or more processors 1604 according to function priority, and / or an interrupt-operated main loop that responds to external events by providing control of one or more processors 1604 to processing functions.
[0067] In one embodiment, the device 1600 operates as or includes a wireless charging device comprising a battery charging power supply coupled to a charging circuit, a plurality of charging cells provided on the surface of the wireless charging device, and a controller or processing circuit which may include one or more processors 1604. The plurality of charging cells may be configured or arranged adjacent to a surface that functions as a charging surface. At least one coil may be configured to guide an electromagnetic field through the charge transmission region of each charging cell.
[0068] According to certain aspects of the present disclosure, the device 1600 may be a power transmitter adapted to improve the decoding of information transmitted by a powered device by modulating a tank voltage. The device 1600 may include a high-pass filter configured to extract high-frequency components from a measurement signal representing a voltage in a transmission coil of one of a plurality of charging cells during a charging operation; a first attenuator configured to attenuate the measurement signal to provide an attenuated measurement signal; a mixer configured to add the signal representing the high-frequency components to the attenuated measurement signal to obtain a scaled measurement signal; and a demodulator configured to decode one or more messages related to the charging operation from the scaled measurement signal.
[0069] In some examples, the device 1600 includes a second attenuator configured to reduce high-frequency components and supply a signal representing the high-frequency components.
[0070] In various embodiments, the apparatus 1600 includes an ADC circuit configured to receive the scaled measurement signal and provide a series of digital values representing voltage samples of the scaled measurement signal over a period of time. The demodulator may be configured to decode one or more messages from the series of digital values. The apparatus 1600 may include a low-pass filter configured to filter the output of the mixer and provide the scaled measurement signal.
[0071] In certain examples, the high-frequency component corresponds to an amplitude-shift key modulated signal. The high-frequency component includes individual frequencies, harmonics, or frequency bands. The amplitude-shift key modulated signal is received from a wireless powered device participating in a charging operation.
[0072] In another embodiment, the storage 1606 holds instructions and information configured to one or more processors 1604 to extract high-frequency components from a measurement signal representing the voltage in the transmission coil of a wireless charger during charging operation, attenuate the measurement signal to obtain an attenuated measurement signal, mix the signal representing the high-frequency components with the attenuated measurement signal to obtain a scaled measurement signal, and demodulate the scaled measurement signal to obtain one or more messages related to the charging operation.
[0073] In various embodiments, the storage medium includes a code that attenuates high-frequency components to obtain a signal representing attenuated high-frequency components.
[0074] In some embodiments, the storage medium includes a code for providing the scaled measurement signal to an ADC circuit and decoding one or more messages from a series of digital values provided by the ADC circuit. The series of digital values may represent voltage samples of the scaled measurement signal over a period of time.
[0075] In certain embodiments, the storage medium includes code for low-pass filtering the scaled measurement signal. In some examples, the storage medium includes code for using a high-pass filter to extract high-frequency components from the measured signal.
[0076] In various embodiments, the high-frequency component may correspond to an ASK modulated signal. The ASK modulated signal may be received from a wireless power receiving device participating in the charging operation.
[0077] Several implementation examples are described in the following numbered sections. 1. A method for communicating with a device during charging, comprising the steps of: extracting a high-frequency component from a measurement signal representing the voltage in the transmission coil of a wireless charging device during charging; attenuating the measurement signal to obtain an attenuated measurement signal; mixing the signal representing the high-frequency component with the attenuated measurement signal to obtain a scaled measurement signal; and demodulating the scaled measurement signal to obtain one or more messages related to the charging operation.
[0078] 2. The method according to item 1, further comprising the step of attenuating the high-frequency component in order to obtain a signal representing the high-frequency component.
[0079] 3. The method of item 1 or item 2, further comprising the steps of supplying the scaled measurement signal to an analog-to-digital converter, and decoding one or more messages from a series of digital values supplied by the analog-to-digital converter, wherein the series of digital values represent voltage samples of the scaled measurement signal over a period of time.
[0080] 4. The method according to item 3, wherein the step of supplying the scaled measurement signal to an analog-to-digital converter includes the step of applying a low-pass filter to the scaled measurement signal.
[0081] 5. The method according to any one of items 1 to 4, further comprising the step of using a high-pass filter to extract high-frequency components from the measurement signal.
[0082] 6. The method according to any one of items 1 to 5, wherein the high-frequency component corresponds to an amplitude shift key modulation signal.
[0083] 7. The method of item 6, wherein an amplitude-shift key modulated signal is received from a wireless powered device participating in a charging operation.
[0084] 8. A wireless charging device comprising: a plurality of charging cells provided on the surface of a wireless charging device; a high-pass filter configured to extract high-frequency components from a measurement signal representing the voltage in a transmission coil of one of the plurality of charging cells during charging operation; a first attenuator configured to attenuate the measurement signal to provide an attenuated measurement signal; a mixer configured to add the signal representing the high-frequency components to the attenuated measurement signal to obtain a scaled measurement signal; and a demodulator configured to decode one or more messages related to the charging operation from the scaled measurement signal.
[0085] 9. The wireless charging device according to item 8, further comprising a second attenuator configured to attenuate the high-frequency components and supply a signal representing the high-frequency components.
[0086] 10. The wireless charging device according to item 8 or 9, further comprising an analog-to-digital converter configured to receive the scaled measurement signal and provide a series of digital values representing voltage samples of the scaled measurement signal over a period of time, wherein the demodulator is configured to decode one or more messages from the series of digital values.
[0087] 11. The wireless charging device according to item 10, further comprising a low-pass filter configured to filter the output of the mixer and provide the scaled measurement signal.
[0088] 12. The high-frequency component corresponds to an amplitude shift key modulation signal, as described in any of items 8 to 11 of the wireless charging device.
[0089] 13. The wireless charging device described in item 12, which receives the amplitude shift key modulation signal from a wireless power receiving device participating in the charging operation.
[0090] 14. A processor-readable storage medium comprising code that causes the following steps to be performed: extracting a high-frequency component from a measurement signal representing the voltage in a transmission coil of a wireless charging device during charging operation; attenuating the measurement signal to obtain an attenuated measurement signal; mixing the signal representing the high-frequency component with the attenuated measurement signal to obtain a scaled measurement signal; and demodulating the scaled measurement signal to obtain one or more messages related to the charging operation.
[0091] 15. The storage medium according to item 14, further comprising a code for attenuating the high-frequency components in order to obtain a signal representing the high-frequency components.
[0092] 16. A storage medium according to item 14 or 15, further comprising a code that causes the following steps to be performed: supplying the scaled measurement signal to an analog-to-digital converter; decoding 14 or more messages from a series of digital values supplied by the analog-to-digital converter, wherein the series of digital values represent voltage samples of the scaled measurement signal over a period of time.
[0093] 17. A storage medium according to any one of items 14 to 16, further comprising code for performing low-pass filtering on the scaled measurement signal.
[0094] 18. A storage medium according to any one of items 14 to 17, further comprising code causing a high-pass filter to be used to extract high-frequency components from the measurement signal.
[0095] 19. The high-frequency component corresponds to the amplitude shift key modulation signal, and is a storage medium as described in any of items 14 to 18.
[0096] 20. The amplitude shift key modulation signal is received from a wireless power receiving device participating in the charging operation, in the storage medium described in item 19.
[0097] The above-mentioned descriptions are provided to enable a person skilled in the art to carry out the various embodiments described herein. Various modifications to these embodiments will be obvious to a person skilled in the art, and the general principles set forth herein can be applied to other embodiments. For this reason, the claims are not intended to be limited to the embodiments shown herein, but the entire scope consistent with the language of the claims is recognized, and references to singular elements mean "one or more" and not "only" unless otherwise specified. Unless otherwise specified, the term "several" means one or more. All structural and functional equivalents to elements of the various embodiments described throughout this disclosure, known to a person skilled in the art, or to become known to a person skilled in the art, are expressly incorporated herein by reference and are intended to be included in the claims. Furthermore, nothing disclosed herein is intended to be made available to the public, whether such disclosure is expressly contained in the claims or not. No element of a claim should be construed under the provisions of 35 U.S. SC § 112, Chapter 6 unless that element is expressly contained in the phrase "means for" or, in the case of a method claim, in the phrase "step for".
Claims
1. A method of communicating with a device while it is charging, A process for extracting high-frequency components from a signal representing the tank voltage measured in the transmission coil of a wireless charging device during charging operation, A step of attenuating a signal representing the tank voltage to obtain an attenuated signal having a voltage level within a range of voltage levels that matches the voltage limit associated with the input to the analog / digital conversion circuit, A step of superimposing the signal representing the high-frequency component onto the attenuated signal to obtain a scaled measurement signal, A method comprising the step of demodulating the scaled measurement signal to obtain one or more messages related to the charging operation.
2. The method according to claim 1, further comprising the step of attenuating the high-frequency component in order to obtain a signal representing the high-frequency component.
3. The steps include supplying the scaled measurement signal to the analog / digital converter, The method according to claim 1, further comprising the steps of decoding one or more messages from a series of digital values supplied by the analog-to-digital converter, wherein the series of digital values represent voltage samples of the scaled measurement signal over a period of time.
4. The step of supplying the scaled measurement signal to an analog / digital converter includes the step of applying a low-pass filter to the scaled measurement signal. The method according to claim 3, wherein the analog-to-digital converter is configured to measure the tank voltage.
5. The method according to claim 1, further comprising the step of using a high-pass filter to extract high-frequency components from the signal representing the tank voltage.
6. The method according to claim 1, wherein the high-frequency component corresponds to an amplitude shift key modulation signal.
7. The method according to claim 6, wherein the amplitude-shift key modulated signal is received from a wireless power receiving device participating in the charging operation.
8. A wireless charging device, Multiple charging cells are provided on the surface of the wireless charging device, Analog / digital conversion circuit, A high-pass filter configured to extract high-frequency components from a signal representing the tank voltage measured in the transmission coil of one of several charging cells during charging operation, A first attenuator coupled to a rectifier, wherein the first attenuator and the rectifier are configured to attenuate a signal representing the tank voltage to obtain an attenuated signal having a voltage level within a range of voltage levels that matches the voltage limit associated with the input to the analog / digital conversion circuit, A mixer configured to superimpose the signal representing the high-frequency component onto the attenuated signal to obtain a scaled measurement signal, A wireless charging device comprising a demodulator configured to decode one or more messages related to a charging operation from the scaled measurement signal.
9. The wireless charging device according to claim 8, further comprising a second attenuator configured to attenuate the high-frequency components and supply a signal representing the high-frequency components.
10. The analog-to-digital converter is configured to receive the scaled measurement signal and to provide a series of digital values representing voltage samples of the scaled measurement signal over a period of time, The wireless charging device according to claim 8, wherein the demodulator is configured to decode one or more messages from the series of digital values.
11. Furthermore, it includes a low-pass filter configured to filter the output of the mixer and provide the scaled measurement signal, The wireless charging device according to claim 10, wherein the analog-to-digital converter is configured to measure the tank voltage.
12. The wireless charging device according to claim 8, wherein the high-frequency component corresponds to an amplitude shift key modulation signal.
13. The wireless charging device according to claim 12, wherein the amplitude shift key modulation signal is received from a wireless power receiving device participating in the charging operation.
14. A processor-readable storage medium, A process for extracting high-frequency components from a signal representing the tank voltage measured in the transmission coil of a wireless charging device during charging operation, A step of attenuating a signal representing the tank voltage to obtain an attenuated signal having a voltage level within a voltage level range that matches the voltage limit associated with the input to the analog / digital conversion circuit, A step of superimposing the signal representing the high-frequency component onto the attenuated signal to obtain a scaled measurement signal, A processor-readable storage medium including code that causes the step of demodulating the scaled measurement signal to obtain one or more messages related to the charging operation.
15. The storage medium according to claim 14, further comprising a code for attenuating the high-frequency components in order to obtain a signal representing the high-frequency components.
16. Furthermore, the process includes supplying the scaled measurement signal to the analog / digital converter, A step of decoding one or more messages from a series of digital values supplied by the analog-to-digital converter, wherein the series of digital values represent voltage samples of the scaled measurement signal over a certain period of time. A storage medium according to claim 14, which includes code to execute.
17. The storage medium according to claim 14, further comprising code for performing low-pass filtering on the scaled measurement signal, wherein the analog-to-digital converter is configured to measure the tank voltage.
18. The storage medium according to claim 14, further comprising code causing a high-pass filter to be used to extract high-frequency components from the signal representing the tank voltage.
19. The storage medium according to any one of claims 14, wherein the high-frequency component corresponds to an amplitude shift key modulation signal.
20. The storage medium according to claim 19, wherein the amplitude shift key modulation signal is received from a wireless power receiving device participating in the charging operation.
Citation Information
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