Adaptive Foreign Object Detection and Avoidance in Multi-Coil Wireless Charging Devices
A wireless charging system with a matrix of coils and adaptive FOD methods addresses the challenge of complex mobile devices by dynamically avoiding FOD, ensuring efficient and continuous charging.
Patent Information
- Application Number
- JP2023511779
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-08-11
- Filing Date
- 2021-08-12
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2041-08-12
AI Technical Summary
Existing wireless charging systems struggle to adapt to the increasing complexity and varying form factors of mobile devices, particularly in managing foreign object detection (FOD) to avoid power loss, noise, and heating, while maintaining efficient charging operations.
The implementation of a wireless charging system with multiple charging coils arranged in a matrix configuration, utilizing passive and active ping techniques, and adaptive foreign object detection methods to dynamically avoid FOD conditions, allowing continuous charging even when foreign objects are present.
Enables efficient and adaptive wireless charging by selectively energizing coils to optimize charging, reducing power dissipation and heat induction, and maintaining charging operations despite the presence of foreign objects.
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Abstract
Description
[Technical field]
[0001] Priority claim This application claims priority to and the benefit of nonprovisional patent application Ser. No. 17 / 400,045, filed in the United States Patent Office on August 11, 2021, and provisional patent application Ser. No. 63 / 066,310, filed in the United States Patent Office on August 16, 2020, the entire contents of which are incorporated herein by reference in their entirety and for all applicable purposes as if fully set forth below.
[0002] The present invention relates generally to wireless charging of batteries, including batteries in mobile computing devices, and more particularly to adaptive foreign object detection and avoidance in wireless charging devices having multiple charging coils. [Background technology]
[0003] Wireless charging systems have been developed to allow certain types of devices to charge their internal batteries without using a physical charging connection. Devices that can utilize wireless charging include mobile and / or communications devices. Standards such as the Qi standard from the Wireless Power Consortium allow devices manufactured by one supplier to be wirelessly charged by chargers manufactured by a second supplier. Wireless charging standards tend to be optimized for relatively simple devices and provide basic charging functionality.
[0004] A wireless charging system may include the ability to detect a foreign object (i.e., an object that cannot be charged or receive charging energy) that is placed on a charging surface of the wireless charging system. This foreign object detection (FOD) allows the charging system to limit or stop the energy provided by a charging coil in a multi-coil charging system that is near the foreign object to avoid unnecessary power loss, system noise, and even unnecessary heating of the foreign object. Typically, when an FOD condition occurs, the charging coils in the vicinity of the foreign object enter a permanent FOD state where charging is limited or stopped.
[0005] Improvements in wireless charging capabilities are necessary to keep up with the ever-increasing complexity of mobile devices and changing form factors, including the need for wireless charging to operate. [Brief description of the drawings]
[0006] [Figure 1] FIG. 1 is a diagram illustrating an example of a charging cell provided on a charging surface included in a wireless charging device according to certain embodiments disclosed herein. [Diagram 2] FIG. 2 illustrates an example arrangement of charging cells in a single layer of a segment of a charging surface included in a wireless charging device according to certain embodiments disclosed herein. [Diagram 3] FIG. 3 illustrates an example of an arrangement of charge cells when multiple layers of charge cells are stacked within a segment of a charging surface of a wireless charging device according to certain embodiments disclosed herein. [Figure 4] FIG. 4 is a diagram illustrating the layout of power transfer areas provided by a charging surface of a charging device employing multiple layers of charging cells configured according to certain embodiments disclosed herein. [Diagram 5] FIG. 5 is a diagram illustrating a wireless transmitter that may be provided in a charger base station in accordance with certain aspects disclosed herein. [Figure 6] FIG. 6 is a diagram illustrating a first example of a response to a passive Ping in accordance with certain aspects disclosed herein. [Figure 7] FIG. 7 is a diagram illustrating a second example of a response to a passive Ping in accordance with certain aspects disclosed herein. [Figure 8] FIG. 8 illustrates an example of observed differences in responses to a passive Ping in accordance with certain aspects disclosed herein. [Figure 9] FIG. 9 is a flow chart illustrating a method including passive ping implemented in a wireless charging device adapted according to certain aspects disclosed herein. [Figure 10] FIG. 10 illustrates a wireless charging system that employs zero-crossing detection to obtain measurements at one or more points in each period of the current or voltage in a resonant circuit in accordance with certain aspects of the disclosure. [Figure 11] FIG. 11 is a diagram illustrating zero cross slot type foreign object detection in accordance with certain aspects of the present disclosure. [Figure 12] FIG. 12 is a diagram illustrating a first topology supporting matrix multiplexing switching for use in a wireless charger adapted according to certain aspects disclosed herein. [Figure 13] FIG. 13 is a diagram illustrating a second topology for supporting DC drive in a wireless charger adapted in accordance with certain aspects disclosed herein. [Figure 14] FIG. 14 illustrates various coil combinations that may be used to adaptively avoid persistent foreign object detection (FOD) conditions in accordance with aspects disclosed herein. [Figure 15] FIG. 15 illustrates a flowchart of a method for adaptively avoiding FOD conditions according to aspects disclosed herein. [Figure 16] FIG. 16 illustrates an example of an apparatus employing processing circuitry that can be adapted in accordance with certain aspects disclosed herein. [Figure 17] FIG. 17 illustrates a flowchart of a method of operating a charging device in accordance with certain aspects of the disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] The detailed description set forth below in conjunction with the accompanying drawings is intended to describe various configurations and is not intended to represent the only configurations in which the concepts described herein may be practiced. The detailed description includes specific details to provide a thorough understanding of the various concepts. However, it will be apparent to those skilled in the art that the concepts may be practiced without the specific details. At times, well-known structures and components are shown in block diagram form in order to avoid obscuring such concepts.
[0008] Certain aspects of a wireless charging system are now presented with reference to various apparatus and methods that are described in the following detailed description and illustrated in the accompanying drawings by various blocks, modules, components, circuits, steps, processes, algorithms, etc. (collectively referred to as "elements"). These elements may be implemented using electronic hardware, computer software, or any combination thereof. Whether such elements are implemented as hardware or software depends on the particular application and design constraints imposed on the overall system.
[0009] For example, an element, any portion of an element, or any combination of elements may be implemented in a "processing system" including 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 various functions described throughout this disclosure. The one or more processors of the processing system may execute software. Software shall be construed broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, threads of execution, procedures, functions, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or the like. Software may reside in a processor-readable storage medium. The processor-readable storage medium, also referred to herein as computer-readable medium, may include, for example, magnetic storage devices (e.g., hard disks, floppy disks, magnetic strips), optical disks (e.g., compact disks (CDs), digital versatile disks (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, carrier waves, transmission lines, or any other medium suitable for storing or transmitting software. The computer-readable medium may be resident in the processing system, external to the processing system, or distributed across multiple entities including the processing system. The computer-readable medium may be embodied in a computer program product.As an example, a computer program product may include a computer readable medium in packaging materials.Those skilled in the art will recognize the best way to implement the described functionality presented throughout this disclosure depending on the particular application and the overall design constraints imposed on the overall system.
[0010] overview Certain aspects of the present disclosure relate to systems, devices, and methods applicable to wireless charging devices. A charging cell is comprised of one or more inductive coils to provide a charging surface for the charging device that enables the charging device to wirelessly charge one or more rechargeable devices. The location of the device being charged can be detected via sensing techniques that relate the device's location to a change in a physical property about a known location on the charging surface. Position sensing can be implemented using capacitive, resistive, inductive, contact, pressure, load, strain, and / or another suitable type of sensing.
[0011] In one aspect of the disclosure, an apparatus includes a power source for charging a battery, a plurality of charging cells arranged in a matrix, a first plurality of switches, each configured to couple a row of coils in the matrix to a first terminal of the battery charging power source, and a second plurality of switches, each configured to couple a column of coils in the matrix to a second terminal of the battery charging power source. Each charging cell of the plurality of charging cells may include one or more coils surrounding a power transfer area. The plurality of charging cells may be positioned adjacent to a charging surface of the charging device without overlapping power transfer areas of the charging cells of the plurality of charging cells.
[0012] In some cases, the apparatus may be referred to as a charging surface. Power may be wirelessly transmitted to a powered device located anywhere on the surface of the apparatus. The devices may have any prescribed size and / or shape and may be located in any individual configuration that allows charging. Multiple devices may be charged simultaneously on a single charging surface. The apparatus may track the movement of one or more devices across the charging surface.
[0013] Charging cell According to certain aspects disclosed herein, a charging surface is provided with charging cells in a charging device, the charging cells being disposed adjacent to the charging surface. In one example, the charging cells are disposed in one or more layers of the charging surface according to a honeycomb packaging configuration. The charging cells can be implemented using one or more coils, each capable of inducing a magnetic field along an axis substantially perpendicular to the charging surface adjacent the coil. As used herein, a charging cell refers to a component having one or more coils configured to generate an electromagnetic field that is additive to the field generated by other coils in the charging cell and oriented along or adjacent a common axis. In some examples, the coils in the charging cells are formed using traces on a printed circuit board. In some examples, the coils of the charging cells are formed by helically winding wire to obtain a planar coil or a coil having a generally cylindrical profile. As an example, Litz wire can be used to form a planar or generally flat winding to provide a coil with a central power transfer area.
[0014] In some implementations, the charge cells include coils that are stacked along a common axis and / or overlap to contribute to an induced magnetic field substantially orthogonal to the charging surface. In some implementations, the charge cells include coils that are disposed within a defined portion of the charging surface and contribute to an induced magnetic field within a substantially orthogonal portion of the charging surface associated with the charge cells. In some implementations, the charge cells may be configurable by providing activation currents to coils included in the dynamically defined charge cells. For example, a charging device may include a stack of multiple coils deployed across a charging surface, and the charging device may detect the location of a device to be charged and select some combination of the stack of coils to provide a charge cell adjacent to the device to be charged. In some implementations, a charge cell may include or be characterized as a single coil. However, it should be understood that a charge cell may include multiple stacked coils and / or multiple adjacent coils or stacks of coils. Coils may be referred to herein as charging coils, wireless charging coils, transmitter coils, transmission coils, power transmitting coils, power transmitter coils, etc.
[0015] FIG. 1 illustrates an example of a charging cell 100 that may be deployed and / or configured to provide a charging surface for a charging device. As described herein, the charging surface may include an array of charging cells 100 disposed on one or more substrates 106. Circuitry of one or more integrated circuits (ICs) and / or discrete electronic components may be disposed on the one or more substrates 106. The circuitry may include drivers and switches used to control current provided to a coil used to transfer power to a powered device. The circuitry may be configured as a processing circuitry including one or more processors and / or one or more controllers that may be configured to perform certain functions disclosed herein. In some embodiments, some or all of the processing circuitry may be disposed external to the charging device. In some embodiments, a power source may be coupled to the charging device.
[0016] The charging cell 100 can be provided near an exterior surface area of a charging apparatus on which one or more devices can be placed for charging. The charging apparatus can include multiple instances of the charging cell 100. In one example, the charging cell 100 has a substantially hexagonal shape surrounding one or more coils 102 that can be constructed with conductors, wires, or circuit board traces that can receive sufficient current to generate an electromagnetic field in a power transfer area 104. In various embodiments, some coils 102 can have a shape that is substantially polygonal, including the hexagonal charging cell 100 illustrated in FIG. 1. In other embodiments, coils 102 having other shapes are provided. The shape of the coils 102 can be determined, at least in part, by the capabilities or limitations of manufacturing technology and / or to optimize the layout of the charging cell on a substrate 106, such as a printed circuit board. Each coil 102 can be implemented using wires, printed circuit board traces, and / or other connectors in a spiral configuration. Each charging cell 100 can span two or more layers separated by an insulator or substrate 106 such that the coils 102 on different layers are centered on a common axis 108.
[0017] 2 illustrates an example of an array 200 of charge cells 202 in a single layer of a segment of a charging surface of a charging device that may be adapted according to certain aspects disclosed herein. The charge cells 202 are arranged according to a honeycomb packaging configuration. In this example, the charge cells 202 are arranged end-to-end with no overlap. This arrangement can be provided without through holes or wire routing. Other arrangements are possible, such as an arrangement in which the charge cells 202 partially overlap. For example, the wires of two or more coils can be interleaved to some extent.
[0018] FIG. 3 illustrates an example of a charge cell arrangement from two perspectives 300, 310 when multiple layers are stacked within a segment of a charging surface that may be adapted according to certain aspects disclosed herein. A layer of charge cells 302, 304, 306, 308 is provided within a segment of a charging surface. The charge cells within each layer of charge cells 302, 304, 306, 308 are arranged according to a honeycomb packaging configuration. In one embodiment, the layers of charge cells 302, 304, 306, 308 may be formed on four or more layers of printed circuit boards. The arrangement of the charge cells 100 may be selected to completely cover the assigned charging area adjacent the illustrated segment. The charge cells 302, 304, 306, 308 illustrated in FIG. 3 may correspond to the power transfer area provided by a polygonal transfer coil. In another implementation, the charge coil may include a helically wound planar coil constructed from wire, each wound to provide a substantially circular power transfer area. In the latter example, multiple helically wound planar coils may be deployed in a stack beneath the charging surface of the wireless charging device.
[0019] 4 is a diagram illustrating the arrangement of power transfer areas across a surface 400 of a charging device employing layers of charge cells configured according to certain embodiments disclosed herein. The illustrated charging surface is comprised of four layers of charge cells 402, 404, 406, 408, which may correspond to layers 302, 304, 306, 308 of charge cells in FIG. 3. In FIG. 4, the power transfer areas provided by the first layer of charge cells 402 are labeled "L1," the power transfer areas provided by the second layer of charge cells 404 are labeled "L2," the power transfer areas provided by the third layer of charge cells 406 are labeled "L3," and the power transfer areas provided by the fourth layer of charge cells 408 are labeled "L4."
[0020] Wireless transmitter 5 illustrates a wireless transmitter 500 that may be provided in a charger base station or wireless charging system. A controller 502 may receive a feedback signal that is filtered or otherwise processed by a conditioning circuit 508. The controller may control the operation of a driver circuit 504 that provides an alternating current to a resonant circuit 506 that includes a capacitor 512 and an inductor 514. The resonant circuit 506 is also referred to herein as a tank circuit, LC tank circuit, or LC tank, and the voltage 516 measured at an LC node 510 of the resonant circuit 506 is also referred to as the tank voltage.
[0021] The wireless transmitter 500 can be used by the charging device to determine if a compatible device has been placed on the charging surface. For example, the charging device can identify when a compatible device has been placed on the charging surface by sending an intermittent test signal (active Ping or digital Ping) via the wireless transmitter 500, where the resonant circuit 506 can detect or receive an encoded signal if the compatible device responds to the test signal or changes a characteristic of the test signal. The charging device can be configured to excite one or more coils in at least one charging cell upon receiving a response signal defined by a standard, convention, manufacturer, or application. In some examples, the compatible device can respond to the Ping by communicating the received signal strength so that the charging device can find the optimal charging cell to be used to charge the compatible device.
[0022] Passive Ping According to certain aspects disclosed herein, coils in one or more charging cells can be selectively energized to provide an optimal electromagnetic field for charging a compatible device. In some examples, coils are assigned to charging cells, and some charging cells may overlap with other charging cells. In the latter case, optimal charging settings can be selected on a per-charge-cell basis. In other examples, charging cells may be defined based on placement of a device to be charged on a charging device surface. In other such examples, the combination of coils activated for each charging event may be different. In some implementations, the charging device may include a driver circuit that can select one or more cells and / or one or more predetermined charging cells for excitation during a charging event.
[0023] The wireless charging device may be adapted to support a low power discovery technique that may replace and / or supplement a conventional Ping transmission according to certain embodiments disclosed herein. A conventional Ping is generated by driving a resonant LC circuit that includes a transmission coil of the base station. The base station then waits for an ASK modulated response from the powered device. The low power discovery technique may provide fast and / or low power discovery using a passive Ping. According to certain embodiments, a passive Ping may be generated by driving a network that includes a resonant LC circuit with a fast pulse that includes a small amount of energy. The fast pulse excites the resonant LC circuit, causing the network to oscillate at its natural resonant frequency until the injected energy decays and dissipates. In one example, the fast pulse may have a duration that corresponds to a half period of the resonant frequency of the network and / or the resonant LC circuit. If the base station is configured to wirelessly transmit power in the frequency range 100 kHz to 200 kHz, the fast pulse may have a duration of less than 2.5 μs.
[0024] Passive Ping can be characterized and / or configured based on the natural frequency at which a network including a resonant LC circuit rings and the rate at which energy decays within the network. The ringing frequency of a network and / or resonant LC circuit can be defined as: TIFF0007680071000001.tif11170
[0025] The rate of decay is controlled by the quality factor (Q factor) of the oscillator network, defined as follows: TIFF0007680071000002.tif13170
[0026] Equation 1 and Equation 2 show that the resonant frequency is affected by L and C, and the Q factor is affected by L, C, and R. In a base station provided in accordance with an embodiment disclosed herein, the wireless driver has a fixed value of C determined by the selection of the resonant capacitor. The values of L and R are determined by the wireless transmit coil and the object or device placed adjacent to the wireless transmit coil.
[0027] The wireless transmitting coil is configured to magnetically couple with the receiving coil of a device placed in close proximity to the transmitting coil and couple a portion of its energy to a nearby rechargeable device. The values of L and R of the transmitting circuit can be affected by the characteristics of the rechargeable device and other objects in the vicinity of the transmitting coil. For example, placing a ferrous material with high magnetic permeability close to the transmitting coil can increase the total inductance (L) of the transmitting coil as shown in Equation 1, resulting in a lower resonant frequency. Energy can be lost through heating of the material due to eddy current induction, which is characterized by an increase in the value of R, thereby lowering the Q factor as shown in Equation 2.
[0028] Placing a wireless receiver near the transmitting coil can also affect the Q factor and resonant frequency. The receiver contains a tuned LC network with a high Q factor, which can lower the Q factor of the transmitting coil. The resonant frequency of the transmitting coil can be lowered by adding magnetic material to the receiver, which becomes part of the overall magnetic system. Table 1 shows the effect of different types of objects in close proximity to the transmitting coil. TIFF0007680071000003.tif31170
[0029] A passive ping technique can use the voltage and / or current measured or observed at the LC node 510 to identify the presence of a receiving coil in proximity to a charging pad of a device adapted according to certain aspects disclosed herein. Many conventional wireless charger transmitters are provided with circuitry to measure the voltage at the LC node 510 and / or the current in the network. These voltages and currents may be monitored for power regulation purposes and / or to support communication between devices. In the example shown in FIG. 5, the voltage at the LC node 510 is monitored, however, it is contemplated that the current may additionally or alternatively be monitored to support passive ping. Passive Ping (initial voltage V 0 ) is the response of the resonant circuit 506 to the voltage at the LC node 510 (V LC ), it can be expressed as follows: TIFF0007680071000004.tif12170
[0030] 6 shows a first example of a response 600 to a passive Ping that decays according to Equation 3. After an excitation pulse at time t=0, the voltage and / or current was observed to oscillate at the resonant frequency defined in Equation 1 with a decay rate defined in Equation 3. The first cycle of oscillation begins at a voltage level V 0 Starting with V LC continues to decay to zero as controlled by the Q factor and ω. The example shown in Figure 6 shows a typical open or no-load response when no object is placed on or near the charging pad. In Figure 6, a value of 20 is assumed for the Q factor.
[0031] 7 shows a second example where the response 700 to a passive Ping decays according to Equation 3. After an excitation pulse at time=0, the voltage and / or current was observed to oscillate at the resonant frequency defined in Equation 1 with a decay rate defined in Equation 3. The first cycle of oscillation begins at a voltage level V 0 Starting with V LCcontinues to decay to zero as controlled by the Q factor and ω. The example shown in Figure 7 shows the load response when an object is present on or near the charging pad and loads the coil. In Figure 6, the Q factor can have a value of 7. V LCは , voltage response 700 oscillates at a higher frequency than voltage response 600 .
[0032] 8 shows a set of examples where the difference between responses 800, 820, 840 can be observed. A passive ping is initiated when the driver circuit 504 excites the resonant circuit 506 with a pulse shorter than 2.5 μs. Different types of wireless receivers and foreign objects placed in transmitters will produce different observable responses in the voltage at the LC node 510 of the transmitter and the current in the resonant circuit 506. This difference is expressed as V 0 The variation of the Q factor of the resonant circuit 506 with respect to the oscillation frequency of the resonant circuit 506 may be shown in Table 2. Table 2 shows specific examples of objects placed on the charging pad with respect to the open state. TIFF0007680071000005.tif42170
[0033] In Table 2, the Q factor can be calculated as follows: TIFF0007680071000006.tif11170 where N is the amplitude of 0.5V from the excitation. 0 The number of cycles until the
[0034] FIG. 9 is a flow chart 900 illustrating a method including passive ping implemented in a wireless charging device adapted according to certain aspects disclosed herein. In block 902, a controller can generate a short excitation pulse and provide the short excitation pulse to a network including a resonant circuit. The network has a nominal resonant frequency, and the short excitation pulse can have a duration less than half the nominal resonant frequency of the network. The nominal resonant frequency can be observed when the transmitting coil of the resonant circuit is isolated from external objects including ferrous objects, non-ferrous objects, and receiving coils in rechargeable devices. In some examples, the short excitation pulse has a duration corresponding to one or more cycles of the nominal resonant frequency of the network. In some examples, the short excitation pulse has a duration corresponding to five or more cycles of the nominal resonant frequency of the network.
[0035] In block 904, the controller may determine the resonant frequency of the network or monitor the decay of the resonance of the network in response to the pulse. According to certain embodiments disclosed herein, when a device or other object is placed near the transmission coil, the resonant frequency and / or Q-factor associated with the network may change. The resonant frequency may increase or decrease from a nominal resonant frequency observed when the transmission coil of the resonant circuit is isolated from the outside. The Q-factor of the network may increase or decrease relative to a nominal Q-factor that may be measured when the transmission coil of the resonant circuit is isolated from the outside object. According to certain embodiments disclosed herein, if the difference in Q-factor lengthens or accelerates the decay of the amplitude of oscillations in the resonant circuit with respect to the delay associated with the nominal Q-factor, the duration of the delay may indicate the presence or type of object placed near the transmission coil.
[0036] In one example, the controller can identify the resonant frequency of the network using a transition detection circuit configured to detect zero crossings of a signal representing the voltage at the LC node 510 using a comparator or the like. In some examples, a direct current (DC) component can be filtered from the signal to provide the zero crossings. In some examples, a comparator can account for the DC component and detect crossings of a common voltage level using an offset. A counter may be employed to count the detected zero crossings. In another example, the controller can identify the resonant frequency of the network using a transition detection circuit configured to detect crossings through a threshold voltage by the signal representing the voltage at the LC node 510, where the amplitude of the signal is clamped or limited within a range of voltages that can be detected and monitored by a logic circuit. In this example, a counter may be employed to count the transitions of the signal. The resonant frequency of the network may be measured, estimated, and / or calculated using other methods.
[0037] In another example, V LC is the voltage level V 0 A timer or counter can be employed to determine the time that elapses from when the pulse decays to a threshold voltage level. This time can be used to characterize the decay of the network. The threshold voltage level can be selected to provide sufficient granularity so that the counter or timer can distinguish between various responses 800, 820, 840 to the pulse. LC is represented by detected or measured peak, peak-to-peak, envelope, and / or rectified voltage levels. The attenuation characteristics of the network may be measured, estimated, or calculated using other methodologies.
[0038] If the controller determines in block 906 that the change in resonant frequency relative to the nominal resonant frequency indicates the presence of an object near the transmission coil, the controller may attempt to identify the object in block 912. If the controller determines in block 906 that the resonant frequency is substantially the same as the nominal resonant frequency, the controller may consider the damping characteristics of the amplitude of the vibration in the resonant circuit in block 908. The controller may determine that the resonant frequency of the network is substantially the same as the nominal resonant frequency if the frequency remains within a defined frequency range centered on or including the nominal resonant frequency. In some implementations, the controller may use the change in resonant frequency and damping characteristics to identify the object. In these latter implementations, the controller may continue in block 908 regardless of the resonant frequency and use the change in resonant frequency as an additional parameter in identifying an object placed near the transmission coil.
[0039] In block 908, the controller may use a timer and / or may determine the initial V O It is possible to count the cycles of oscillation in a resonant circuit that have elapsed between the amplitude and a threshold amplitude that is used to evaluate the damping characteristics. O In block 910, the initial V O The number of cycles or time elapsed between the amplitude and the threshold amplitude can be used to characterize the decay of the amplitude of oscillation in the resonant circuit and compare the decay characteristic to a corresponding nominal decay characteristic. If no change in frequency or delay characteristic is detected in block 910, the controller can determine that there is no object near the transmit coil and end the procedure. If a change in frequency and / or delay characteristic is detected in block 910, the controller can identify an object in block 912.
[0040] At block 912, the controller may be configured to identify a powered device placed on the charging pad. The controller may be configured to ignore other types of objects or powered devices that are not optimally positioned on the charging pad, such as a powered device that is misaligned with a transmitting coil that provides a passive ping. In some implementations, the controller may use a lookup table indexed by resonant frequency, decay time, change in resonant frequency, change in decay time, and / or Q-factor estimates. The lookup table may provide information identifying a particular device type and / or charging parameters to be used in charging the identified device or device type.
[0041] In some examples, passive ping uses very short excitation pulses that may be less than a half cycle of the nominal resonant frequency observed at the LC node 910 of the resonant circuit 906. A conventional ping may actively drive the transmit coil for 16,000 cycles or more. The power and time consumed by a conventional ping may exceed the power and time usage of a passive ping by several orders of magnitude. As an example, a passive ping consumes about 0.25 μJ per ping and has a maximum ping time of about 100 μs, while a conventional active ping consumes about 80 mJ per ping and has a maximum ping time of about 90 ms. In this example, the energy dissipation can be reduced by a factor of 320,000 and the time per ping can be reduced by a factor of 900.
[0042] Passive Ping can be used in conjunction with another low power sensing method, such as capacitive sensing, which can provide an ultra-low power detection method to determine the presence or absence of an object near the charging surface. After capacitive sensing, passive Pings can be sent with each coil, either sequentially or simultaneously, to create a more accurate map of the location of potential receiving devices or objects. After the passive Ping procedure is performed, an active digital Ping can be provided at the most likely device location.
[0043] Foreign object detection According to some embodiments, foreign object detection (FOD) can be used to detect foreign objects (FO) that may be placed on the charging surface of the wireless charging device or base. A device or other object that cannot receive wirelessly transmitted power from the wireless charging device or base may be considered a foreign object. A foreign object is detected by a passive Ping transmitted through one or more idle charging cells that are in the vicinity of the foreign object, and detection of a foreign object can trigger further detection procedures including sending a digital Ping through the idle charging cells. FOD can also be performed while a rechargeable device is receiving power through a charging cell. In one example, a driver coupled to an active charging cell, such as driver 504 in FIG. 5, can be periodically turned off for a short period of time. In another example, a slot can be provided when a controller detects a change in the operating characteristics of an active charging cell, turning off a driver coupled to an active charging cell for a short period of time to check for device movement during charging or the presence of a foreign object. The short period of time that the driver is turned off may be referred to as a slot. During the driver inactivity time provided by the slot, various measurements can be analyzed to detect the presence of a foreign object. For example, the energy in a resonant tank circuit (e.g., 506) can be allowed to decay. By measuring this rate of attenuation, the Q-factor can be determined. The determination of the Q-factor can then be used to detect foreign objects, for example, using the techniques described above in connection with Table 2. Additionally, other more efficient FOD methodologies may be used.
[0044] FIG. 10 illustrates an example of a system 1000 that may be configured to perform slot-based foreign object detection to detect a foreign object (FO) on the surface of a wireless charging device 1002. The driver circuit 1010 of the wireless charging device 1002 is periodically turned off for a short period of time, which may be called a slot, during which the energy of the resonant circuit 1004 driven by the driver circuit 1010 decays. The Q-factor of the resonant circuit 1004 can be determined by measuring this decay rate. A high sample rate is typically required to accurately measure the AC waveform of the resonant circuit 1004 without aliasing or artifacts that would compromise the accuracy of the Q-factor measurement. The sample rate can be as much as 10 to 20 times the frequency of the current in the resonant circuit 1004, which typically requires the use of a fast and expensive analog-to-digital converter (ADC).
[0045] In certain aspects of the disclosure, zero-crossing detectors 1012, 1014 are used to provide timing information during slots reserved for foreign object detection that ensures that a low-cost ADC can obtain accurate measurements of the voltage at the same point of each period of the AC waveform in the resonant circuit 1004. Zero-crossing slot-based foreign object detection can be used to detect either the zero crossing of the voltage and / or current of the resonant circuit 1004. Upon detecting the zero crossing, a hold-off timer starts, triggering the sample-and-hold circuit of the ADC. In one example, the hold-off timer triggers the sample-and-hold circuit after ¼ period of the AC waveform in the resonant circuit 1004. In this example, the ADC reads samples taken at the peak of the AC wave. A sample frequency lower than the fundamental frequency of the AC waveform can be used.
[0046] FIG. 11 includes timing diagrams 1100, 1120 illustrating certain aspects of zero-crossing, slot-based foreign object detection. Measurement slots 1106, 1126 are provided during normal charging operation periods 1104, 1108 or 1124, 1128. The first timing diagram 1100 relates to an example of a signal 1102 representing the energy, voltage, or current in the resonant circuit 1004 when no foreign object is present, where the slow decay 1112 in the signal 1102 corresponds to a resonant circuit having a high Q factor. The second timing diagram 1120 relates to an example of a signal 1122 representing the energy, voltage, or current in the resonant circuit 1004 when a foreign object 1030 (see FIG. 10) is present between the wireless charging device 1002 and the receiver 1032 (e.g., including a coil (Ls) and may simply be referred to as a power receiver (PRx)), where the decay 1132 corresponds to a circuit having a low Q factor. A zero-crossing, slot-based foreign object detection technique according to certain aspects of the present disclosure uses sample points 1114, 1134 that are identified based on detected zero crossings identified by zero-crossing signals 1110, 1130.
[0047] Returning to FIG. 10, this figure illustrates an example of a wireless charging device 1002 that employs zero-crossing detection to obtain measurements 1006, 1008 at one or more points in each period of the current or voltage in a resonant circuit 1004. As an example, the measurements may be used for slot-type foreign object detection in accordance with certain aspects disclosed herein. The wireless charging device 1002 includes a capacitor (C p ) and inductor (L pThe resonant circuit 1004 includes a driver circuit 1010 that generates a charging current to drive a resonant circuit 1004 that includes an LC tank circuit having a capacitance C. The charging current may be substantially the same as the current in the inductor. In some implementations, a voltage measurement signal 1006 representative of a voltage across the resonant circuit 1004 is provided to a first zero-crossing detector 1012. The first zero-crossing detector 1012 provides an output 1016 (ZVS) indicative of the timing of zero crossings of the voltage across the resonant circuit 1004. In some implementations, a current measurement signal 1008 representative of a current across the resonant circuit 1004 is provided to a second zero-crossing detector 1014. The second zero-crossing detector 1014 provides an output 1018 (ZVS) indicative of the timing of zero crossings of the current in the resonant circuit 1004.
[0048] A capture timing circuit 1020 may be used to track the zero crossings and determine or manage a sample and hold circuit 1024. In one example, the capture timing circuit 1020 may include or utilize a hold-off timer 1022 that may locate a peak amplitude of the voltage or current across the resonant circuit 1004 that occurs after a period corresponding to a half-cycle of the resonant circuit 1004. In another example, the capture timing circuit 1020 may include or utilize a hold-off timer 1022 that may locate one or more points of the voltage or current across the resonant circuit 1004. The sample and hold circuit 1024 provides an output that is digitized by an ADC 1026 to obtain a measurement 1028. The measurement 1028 may be used to track the rate of decay of the energy of the resonant circuit 1004.
[0049] Selective Coil Excitation According to certain aspects disclosed herein, the transmit coils in one or more charging cells can be selectively energized to provide an optimal electromagnetic field for charging a compatible device. In some examples, transmit coils are assigned to the charging cells, and some charging cells may overlap with other charging cells. In the latter case, an optimal charging configuration can be selected on a per-charge cell basis. In other examples, the charging cells may be defined based on the placement of the device to be charged on the charging surface. In such other examples, the combination of coils activated for each charging event may be different. In some implementations, the charging device may include a driver circuit that can select one or more cells and / or one or more predetermined charging cells for excitation during a charging event.
[0050] FIG. 12 illustrates a first topology 1200 supporting matrix multiplexing switching for use in a wireless charger adapted according to certain aspects disclosed herein. The wireless charger can select one or more charge cells 100 to charge a powered device. Unused charge cells 100 can be disconnected from current. The honeycomb packaging configuration illustrated in FIG. 2 can use a relatively large number of charge cells 100 requiring a corresponding number of switches. According to certain aspects disclosed herein, the charge cells 100 can be logically arranged in a matrix 1208 having a number of cells connected to two or more switches that allow a particular cell to be powered. In the illustrated topology 1200, a two-dimensional matrix 1208 is provided, where the dimensions can be represented by X and Y coordinates. Each of the first set of switches 1206 is configured to selectively couple a first terminal of each cell in the string of cells to a wireless transmitter and / or receiver circuit 1202 that provides a current to activate the coil during wireless charging. Each of the second set of switches 1204 is configured to selectively couple a second terminal of each cell in the string of cells to the wireless transmitter and / or receiver circuitry 1202. A cell is active when both terminals of the cell are coupled to the wireless transmitter and / or receiver circuitry 1202.
[0051] The use of the matrix 1208 can significantly reduce the number of switching components required to operate a network of tuned LC circuits. For example, N individually connected cells require at least N switches, whereas a two-dimensional matrix 1208 having N cells can be operated with √N switches. The use of the matrix 1208 can provide significant cost savings and reduced circuit and / or layout complexity. In one example, a nine-cell implementation can be implemented in a 3x3 matrix 1208 using six switches, saving three switches. In another example, a 16-cell implementation can be implemented in a 4x4 matrix 1208 using eight switches, saving eight switches.
[0052] During operation, at least two switches are closed to actively couple one coil to the wireless transmitter and / or receiver circuitry 1202. Multiple switches may be closed at once to facilitate connection of multiple coils to the wireless transmitter and / or receiver circuitry 1202. For example, multiple switches may be closed to enable a mode of operation that drives multiple transmit coils when transferring power to a powered device.
[0053] FIG. 13 illustrates a second topology 1300 in which each coil or charge cell is driven individually and / or directly by a driver circuit 1302 according to certain aspects disclosed herein. The driver circuit 1302 may be configured to select one or more coils or charge cells 100 from a coil group 1304 to charge a powered device. It should be understood that the concepts disclosed herein with respect to the charge cells 100 may be applied to selective excitation of individual coils or coil stacks. Charge cells 100 that are not in use do not draw current. A relatively large number of charge cells 100 may be used, and a switching matrix may be employed to drive the individual coils or coil groups. In one example, a first switching matrix may configure connections that define the charge cells or coil groups to be used during a charging event, and a second switching matrix may be used to excite the charge cells and / or selected coil groups.
[0054] Avoiding Dynamic Foreign Object Detection Conditions When a conventional wireless charging system detects a foreign object, it enters a permanent FOD state and stops all power transfer from the charging coil and cells to the receiving device (PRx) until the foreign object is removed (or the FOD state is no longer detected).
[0055] A multi-device or multi-coil wireless charger provided according to certain aspects disclosed herein can continue charging operations using unaffected charging cells. In one example, the controller can maintain a list of charging cells that can be included in the charging configuration. The controller can maintain a list of charging cells that are disabled or otherwise excluded from being included in the charging configuration. The list of disabled charging cells can include charging cells that are likely to interfere with another active charging cell when activated. Also, the list of disabled charging cells can include charging cells in which a foreign object has been detected. In one aspect of the disclosure, the multi-device wireless charger can continuously probe for a foreign object using a passive ping procedure, thereby identifying when the foreign object has been removed. In some implementations, the multi-device wireless charger can indicate the presence of a foreign object through a message or indicator displayed on the multi-device wireless charger or transmitted to a rechargeable device located near the foreign object. In another aspect of the disclosure, the multi-device wireless charger can refrain from sending active pings through disabled charging cells, thereby potentially reducing power dissipation and avoiding heat induction in the foreign object. The active ping can also be referred to as a digital ping.
[0056] In certain examples, the multi-device wireless charger may be capable of configuring a charging configuration near the foreign object using charging coils or charging cells that are not blocked by the foreign object. The charging configuration may be capable of providing power to the PRx regardless of the presence of the foreign object. Thus, the present disclosure provides systems, apparatus, and methods for providing adaptive FOD determination that enable the multi-device wireless charger to dynamically or actively avoid foreign objects and enable the multi-device wireless charger to support, detect, monitor, or charge multiple rechargeable devices, as described herein.
[0057] A foreign object may cause a significant area of the surface of the multi-device wireless charger to be unable to charge. The multi-device wireless charger may be configured to disable one or more charging zones if a foreign object obstructs all of the charging cells in the affected zone. The multi-device wireless charger may be further configured to reconfigure the charging surface to provide a reconfigured charging zone. The charging zone may be associated with a driver or charging circuit that may be configured to transmit power through some combination of charging cells that are surrounded by or overlap a portion of the charging zone. In one example, the charging surface may define three zones, each containing a number of charging cells that may be configured to receive charging current from one of three drivers. If a foreign object, such as an incompatible mobile phone, is placed on the charging surface, blocking a majority or all of the charging cells in a zone, the zone may be reconfigured to include the charging cells that are not blocked by the foreign object. The other two zones may be resized to accommodate the previously blocked zone. In this example, device detection and other overhead may be reduced in each of the miniaturized zones while still retaining multi-device charging functionality.
[0058] The ability to mark individual or groups of charging cells as inactive due to the presence of a foreign object allows the multi-device wireless charger to continue to operate, at least in a limited manner. In some examples, the multi-device wireless charger can define a charging configuration that allows the system to power nearby PRxs using charging cells that are not affected by the foreign object, thereby avoiding a persistent FOD condition with respect to the nearby PRxs.
[0059] 14 illustrates an example embodiment 1400 of a multi-coil charging device 1402 in various different combinations or times (e.g., 1420, 1422, and 1424) of the same multi-coil charging device 1402 in accordance with the presently disclosed apparatus and methods. The multi-coil charging device 1402 includes multiple charging coils or cells 1404 (only a portion of the coils are drawn as circles and indicated by reference numbers to avoid cluttering the figure).
[0060] In the illustrated example, a power receiving device (PRx coil) 1406 is positioned proximate to the charging apparatus 1402, and more specifically, positioned over multiple coils of the multiple coils 1404. Although the disclosure is not so limited, in this example it is assumed that three coils 1404a, 1404b, and 1404c are proximate to the PRx coil 1406 and can provide power to the PRx 1406. Additionally, it is assumed that a foreign object 1408 is placed on the surface of the charging apparatus 1402, and in this example is located over coils 1404a and 1404b.
[0061] Assume that in a first time scenario or state 1420, coil 1404a is selected to provide charging power to PRx 1406 (shown cross-hatched to indicate that this coil 1404 is active). Since FO 1408 is located above coil 1404a, it senses FO 1408 and triggers an FOD condition. In conventional systems, this FOD trigger would simply lead to a permanent FOD condition. However, in this example, the charging controller of charging device 1402 can switch to the next available coil as shown in time scenario 1422.
[0062] At time scenario 1422, the charger controller next selects coil 1404b and determines whether this coil is blocked (fully or partially) by the FO 1408. In the illustrated example, coil 1404b is covered by the FO 1408, so an FOD condition is again triggered.
[0063] At the next time scenario 1424, the charger controller switches to the third available coil 1404c. In this case, the FO 1408 does not cover this coil 1404c, so the foreign object detection procedure will not find an FO. Therefore, the charger controller activates coil 1404c to provide power to the PRx 1406, and a persistent FOD condition is actively avoided for the PRx 1406.
[0064] 15 illustrates a flowchart of a method 1500 for adaptively avoiding an FOD condition in a wireless charging device or system according to aspects disclosed herein. Once FOD is triggered for at least one coil or cell, as shown in block 1502, method 1500 proceeds to decision block 1504 to determine whether other coils are available for connection to PRx. Note that the determination of available coils may already be performed prior to the process of method 1500. If there are no other coils available to serve PRx, flow proceeds to block 1506 where a permanent FOD condition is set by the controller of the charging device.
[0065] On the other hand, if at block 1504 another coil is available for power connection, flow proceeds to block 1508 where connection of the selected coil is attempted using the newly selected coil from among the available coils. The charger controller then checks whether the FOD condition is still triggered. If so, flow returns to block 1504 to select the next coil from among the available coils. If there are no more available coils, flow proceeds to block 1506 to trigger a persistent FOD condition. Alternatively, if the process of blocks 1504, 1508, and 1510 results in a coil that does not trigger an FOD condition for PRx, flow proceeds to block 1512 where normal charging operations are resumed, thus avoiding the initiation of a persistent FOD condition for PRx.
[0066] Processing circuit example FIG. 16 illustrates an example of a hardware implementation of a device 1600 that can be incorporated into a charging device that enables wireless charging of a battery. In some examples, the device 1600 can perform one or more functions disclosed herein. According to various aspects of the present disclosure, the elements, any portion of the elements, or any combination of the elements disclosed herein can be implemented using a processing circuit 1602. The processing circuit 1602 can include one or more processors 1604 controlled by some combination of hardware and software modules. Examples of the processor 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 various functions described throughout the present disclosure. The one or more processors 1604 can include processors dedicated to performing specific functions and can be configured, augmented, or controlled by one of the software modules 1616. The one or more processors 1604 may be configured through a combination of software modules 1616 loaded during initialization, and may be further configured by loading or unloading one or more software modules 1616 during operation.
[0067] In the depicted example, the processing circuit 1602 may be implemented in a bus architecture, generally indicated by a bus 1610. The bus 1610 may include any number of interconnected buses and bridges, depending on the particular application of the processing circuit 1602 and overall design constraints. The bus 1610 links various circuits, including one or more processors 1604 and storage 1606. The storage 1606 may include memory devices and mass storage devices, and are also referred to herein as computer-readable media and / or processor-readable media. The storage 1606 may include transitory and / or non-transitory storage media.
[0068] The bus 1610 may link various other circuits such as timing sources, timers, peripherals, voltage regulators, and power management circuits. The bus interface 1608 may provide an interface between the bus 1610 and one or more transceivers 1612. In one example, the transceiver 1612 may be provided to allow the device 1600 to communicate with a charging device or a powered device according to a standard defined protocol. Depending on the nature of the device 1600, a user interface 1618 (e.g., keypad, display, speaker, microphone, joystick) may also be provided and may be communicatively coupled to the bus 1610 directly or via the bus interface 1608.
[0069] The processor 1604 may 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 circuitry 1602, including the processor 1604, may be used to implement any of the methods, functions, and techniques disclosed herein. The storage 1606 may be used to store data that is manipulated by the processor 1604 when executing software, which may be configured to perform any one of the methods disclosed herein.
[0070] The one or more processors 1604 of the processing circuitry 1602 can execute software. Software shall be interpreted broadly to mean instructions, instruction sets, code, code segments, program code, programs, subprograms, software modules, applications, software applications, software packages, routines, subroutines, objects, executable files, threads of execution, procedures, functions, algorithms, etc., whether referred to as software, firmware, middleware, microcode, hardware description language, or otherwise. The software may reside in the storage 1606 in computer readable form or on an external computer readable medium. The external computer readable medium and / or the storage 1606 may include a non-transitory computer readable medium. The non-transitory computer readable medium may include, for example, magnetic storage devices (e.g., hard disks, floppy disks, magnetic strips), optical disks (e.g., compact disks (CDs), digital versatile disks (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 medium for storing software and / or instructions that can be accessed and read by a computer. The computer readable medium and / or storage 1606 may also include, for example, carrier waves, transmission lines, and any other suitable medium for transmitting software and / or instructions that can be accessed and read by a computer. The computer readable medium and / or storage 1606 may be resident in the processing circuit 1602, in the processor 1604, external to the processing circuit 1602, or 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 a computer readable medium in packaging materials.Those skilled in the art will recognize the best way to implement the described functionality presented throughout this disclosure depending on the particular application and the overall design constraints imposed on the overall system.
[0071] The storage 1606 may maintain and / or organize software, such as loadable code segments, modules, applications, programs, etc., also referred to herein as software modules 1616. Each of the software modules 1616 may include instructions and data that, when installed or loaded into the processing circuitry 1602 and executed by one or more processors 1604, contribute to a runtime image 1614 that controls the operation of the one or more processors 1604. Particular instructions, when executed, may cause the processing circuitry 1602 to perform functions in accordance with particular methods, algorithms, and processes described herein.
[0072] Some of the software modules 1616 may be loaded during initialization of the processing circuit 1602, and these software modules 1616 may configure the processing circuit 1602 to enable the execution of various functions disclosed herein. For example, some of the software modules 1616 may configure the internal devices and / or logic circuits 1622 of the processor 1604 and may manage access to external devices such as the transceiver 1612, the bus interface 1608, the user interface 1618, timers, math co-processors, etc. The software modules 1616 may include a control program and / or operating system that interacts with interrupt handlers and device drivers and controls access to various resources provided by the processing circuit 1602. The resources may include memory, processing time, access to the transceiver 1612, the user interface 1618, etc.
[0073] The one or more processors 1604 of the processing circuitry 1602 are multifunctional, whereby some of the software modules 1616 are loaded and configured to execute different functions or different instances of the same function. Additionally, the 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, the one or more processors 1604 may be configured to provide a multitasking environment, whereby each of the multiple functions is implemented as a set of tasks provided by the one or more processors 1604 as needed. In one example, the multitasking environment may be implemented using a time-sharing program 1620 that hands off control of the processor 1604 between different tasks, whereby each task returns control of the one or more processors 1604 to the time-sharing program 1620 upon completion of outstanding operations and / or in response to inputs such as interrupts. When a task has control of the one or more processors 1604, the processing circuitry is effectively specialized for the purpose addressed by the function associated with the controlling 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 allocates 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.
[0074] In one embodiment, the apparatus 1600 includes or operates as a wireless charging apparatus having a battery charging power source coupled to a charging circuit, a plurality of charging cells, and a controller that may be included or implemented in one or more processors 1604. The plurality of charging cells may be configured to provide a charging surface. At least one coil may be configured to direct an electromagnetic field through a charge transfer area of each charging cell. The controller may be configured to cause the charging circuit to provide a charging current to the resonant circuit when the power receiving device is placed on the charging surface, detect a change or rate of change in a voltage or current level associated with the resonant circuit or in power transferred to the power receiving device, and determine that the power receiving device has been removed from the charging surface when the change or rate of change in the voltage or current level or in power transferred to the power receiving device exceeds a threshold value.
[0075] In some implementations, the resonant circuit includes a transmit coil. The controller may be further configured to determine that the powered device is removed from the charging surface when a voltage measured at terminals of the transmit coil exceeds a threshold voltage level. In one example, the threshold voltage level is stored in a lookup table and is identified when the transmit coil is electromagnetically uncoupled. In another example, the threshold voltage level is identified when the powered device is initially placed on the charging surface.
[0076] In a particular implementation, the controller is further configured to cause the transmitting coil to issue a Ping that can be received by a powered device (e.g., PRx) in proximity to the wireless charging apparatus (e.g., placed on the wireless charging surface). Additionally, the transmitting coil can be configured to receive a Ping response, such as an ASK modulation response, from the powered device (PRx). Furthermore, the magnitude measured at the resonant circuit is less than a threshold current level. In one example, the threshold current level is maintained in a look-up table and is determined when no object is electromagnetically coupled to the coil of the resonant circuit. In another example, the threshold current level is identified when the powered device is initially placed on the charging surface.
[0077] In some embodiments, the apparatus 1600 has one or more sensors disposed proximate to an exterior surface of the charging apparatus. The controller may be further configured to receive measurements from the one or more sensors and measure a voltage or current level associated with the resonant circuit if one of the measurements indicates physical removal of the powered device.
[0078] In some implementations, the storage 1606 may retain instructions and information that may be configured to cause the one or more processors 1604 to detect the presence of a foreign object near at least one of a plurality of charging coils in a charging device selected by the controller to provide charging energy to a powered device. In particular, this function of detecting an FOD trigger may include, for example, the process of block 1502 of FIG. 15 and may be detected by the apparatus and process described above in connection with FIGS. 10 and 11, for example.
[0079] In a further implementation, the storage 1606 retains instructions and information configured to cause the one or more processors 1604 to determine whether one or more other charging coils of the plurality of charging coils can provide charging energy to the powered device. In particular, the function of determining whether one or more other charging coils of the plurality of charging coils can provide charging energy to the powered device may include, as an example, the processing of block 1504 of FIG. 15. Furthermore, the instructions may cause the one or more processors 1604 to determine the ability to provide charging energy based on passive and / or active Ping, as described above.
[0080] Additionally, storage 1606 retains instructions and information configured to cause the one or more processors 1604 to determine, for each of the one or more other charging coils, whether a foreign object is proximate to the other charging coil. In particular aspects, this functionality may include, by way of example, the processing of blocks 1508 and 1510 of FIG. 15. Additionally, it is noted that the instructions may include FOD determination instructions, such as those implemented in the methodologies discussed in connection with FIGS.
[0081] Additionally, the storage 1606 retains instructions and information configured to cause the one or more processors 1604 to select at least one of the one or more other charging coils that are not in proximity to the foreign object to supply charging energy to the power receiving device. Note that in certain aspects, this selection function may include at least a portion of the processes of blocks 1508, 1510, and 1512 of FIG. 15, as an example.
[0082] 17 is a flow chart illustrating a method 1700 of operating a charging device according to certain aspects of the disclosure. The method 1700 may be performed by a controller in the charging device. In block 1702, the controller may detect the presence of a foreign object near at least one charging coil of a plurality of charging coils in the charging device selected to supply charging energy to a powered device. In certain aspects, the process of block 1702 may include the process of block 1502 of FIG. 15, as an example.
[0083] Further, the controller may determine whether one or more other charging coils of the plurality of charging coils can provide charging energy to the powered device, as shown in block 1704. The process of block 1704 may include the process of block 1504. Furthermore, it should be noted that the determination of whether one or more other charging coils can provide charging energy may be based on a search for predefined or stored coils that can provide charging energy. For example, the controller may access a look-up table in a memory (e.g., storage 1606) that includes a list of coils that can provide energy to the powered device. This pre-determination may be made during initialization when the powered device is placed in proximity to a charging device. In other aspects, the determination of available coils may be performed after a FOD condition is detected, through passive and / or active pinging of the powered device, through scanning of all or a subset of coils (e.g., coils close to previously used coils, coils in a charging zone), etc.
[0084] Additionally, for each of the one or more other charging coils, the controller may determine whether a foreign object is proximate to the other charging coil, as shown in block 1706. In particular aspects, the process of block 1704 may include the processes of blocks 1508 and 1510 of FIG.
[0085] Additionally, the controller may select at least one of the one or more other charging coils that are not in proximity to the foreign object to supply charging energy to the power receiving device, as shown in block 1708. It should be noted that in certain aspects, the process of block 1708 may include at least a portion of the processes of blocks 1508, 1510, and 1512 of FIG.
[0086] Some examples are described in the following numbered sections. 1. A method of operating a charging device, comprising the steps of: detecting the presence of a foreign object in proximity to at least one charging coil among a plurality of charging coils in the charging device, the charging coil being selected for supplying charging energy to a power receiving device; determining whether one or more other charging coils among the plurality of charging coils are capable of supplying charging energy to the power receiving device; determining, for each of the one or more other charging coils, whether a foreign object is in proximity to the other charging coil; and selecting at least one of the one or more other charging coils that is not in proximity to the foreign object for supplying charging energy to the power receiving device.
[0087] 2. The method of claim 1, further comprising setting a permanent foreign object detection (FOD) state of the power receiving device when all of the one or more other charging coils are determined to be in proximity to a foreign object.
[0088] 3. The method of claim 2, further comprising the steps of: determining whether the foreign object has been removed after setting a permanent FOD state of the power receiving device; and resetting the FOD state of the power receiving device after the foreign object has been removed.
[0089] 4. A method according to any of items 1 to 3, wherein determining whether the one or more other charging coils can supply charging energy includes accessing a stored list of predetermined coils that can supply charging energy to the power receiving device.
[0090] 5. The method of item 4, wherein a list of predetermined coils capable of supplying charging energy to the power receiving device is predetermined at initial setup when the power receiving device is placed near the charging apparatus and capable of responding to a ping from at least one of a plurality of charging coils.
[0091] 6. The method of any of items 1 to 5, wherein determining whether the one or more other charging coils are capable of supplying charging energy includes determining available coils, which may be performed after detecting the presence of a foreign object, and further includes scanning to determine whether one or more of the multiple charging coils of the charging device are capable of supplying charging energy to the power receiving device.
[0092] 7. The method of claim 6, wherein scanning to determine whether one or more of the multiple charging coils of the charging device are capable of supplying charging energy to the power receiving device includes at least one of passive and active pinging with the charging device.
[0093] 8. A charging device comprising: a charging circuit; and a controller configured to detect the presence of a foreign object in proximity to at least one charging coil among a plurality of charging coils in the charging device that is selected for supplying charging energy to a power receiving device, determine whether one or more other charging coils among the plurality of charging coils are capable of supplying charging energy to the power receiving device, determine for each of the one or more other charging coils whether a foreign object is in proximity to the other charging coil, and select at least one of the one or more other charging coils that is not in proximity to the foreign object for supplying charging energy to the power receiving device.
[0094] 9. The charging device of item 8, wherein the controller is configured to set a permanent foreign object detected (FOD) state for the power receiving device when all of the one or more other charging coils are determined to be in proximity to a foreign object.
[0095] 10. The charging device of item 9, wherein the controller is configured to determine whether the foreign object has been removed after setting a permanent FOD state of the power receiving device, and to reset the FOD state of the power receiving device after the foreign object has been removed.
[0096] 11. The charging device of item 8 or 9, wherein the controller is configured to access a stored list of predetermined coils that can supply charging energy to the power receiving device when determining whether the one or more other charging coils can supply charging energy.
[0097] 12. The charging device of item 11, wherein the controller is configured to predetermine at initial configuration a list of predetermined coils capable of supplying charging energy to the power receiving device that can respond to a ping from at least one of a plurality of charging coils when the power receiving device is placed near the charging device.
[0098] 13. A charging device described in any of items 8 to 12, wherein determining whether the one or more other charging coils are capable of supplying charging energy includes determining available coils, which may be performed after detecting the presence of a foreign object, and further includes scanning to determine whether one or more of the multiple charging coils of the charging device are capable of supplying charging energy to the power receiving device.
[0099] 14. The charging device of item 13, wherein the scanning to determine whether one or more of the multiple charging coils of the charging device are capable of supplying charging energy to the power receiving device includes at least one of passive and active pinging with the charging device.
[0100] The above description is provided to enable one skilled in the art to practice the various embodiments described herein. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein may be applied to other embodiments. Thus, the claims are not intended to be limited to the embodiments set forth herein, but are to be accorded the full scope consistent with the language of the claims, and reference to an element in the singular shall mean "one or more," and not "only one," unless otherwise specified. The term "several" refers to one or more, unless otherwise specified. All structural and functional equivalents to the elements of the various embodiments described throughout this disclosure that are known or that later become known to those of skill in the art are expressly incorporated herein by reference and are intended to be included in the claims. Moreover, nothing disclosed herein is intended to be dedicated to the public, regardless of whether such disclosure is expressly set forth in the claims. An element of a claim is not to be construed under the provisions of 35 U.S.C. § 112, Chapter 6, unless the element is expressly recited by the phrase "means for" or, in the case of a method claim, by the phrase "step for."
Claims
1. 1. A method of operating a charging device, comprising: Detecting an object proximate to a surface of the charging device by at least one passive ping using at least one charging coil selected to supply charging energy to a power receiving device among a plurality of charging coils in the charging device; pinging the detected object with one or more active pings from the at least one charging coil; determining that the detected object includes a foreign object when no ping response is received at the at least one charging coil; determining whether one or more other charging coils of the plurality of charging coils are capable of supplying charging energy to the power receiving device; determining, for each of the one or more other charging coils, whether a foreign object is proximate to the other charging coil; and selecting at least one of one or more other charging coils that are not in proximity to a foreign object for supplying charging energy to the power receiving device.
2. 2. The method of claim 1, further comprising setting a permanent foreign object detected (FOD) state for the powered device if all of the one or more other charging coils are determined to be in proximity to a foreign object.
3. determining whether the foreign object has been removed after setting a permanent FOD state of the power receiving device; The method of claim 2 , further comprising: resetting a FOD state of the power receiving device after the foreign object is removed.
4. 2. The method of claim 1, wherein determining whether the one or more other charging coils can supply charging energy includes accessing a stored list of predetermined coils that can supply charging energy to the powered device.
5. 5. The method of claim 4, wherein a list of predetermined coils capable of supplying charging energy to the powered device is predetermined at initialization when the powered device is placed near the charging apparatus and capable of responding to a ping from at least one of a plurality of charging coils.
6. 2. The method of claim 1 , wherein determining whether the one or more other charging coils are capable of supplying charging energy includes determining available coils, which may be performed after detecting the presence of a foreign object, and further includes scanning to determine whether one or more of a plurality of charging coils of the charging device are capable of supplying charging energy to the powered device.
7. The method of claim 6 , wherein scanning to determine whether one or more of a plurality of charging coils of the charging device are capable of supplying charging energy to the powered device includes an active ping with the charging device.
8. A charging device, A charging circuit; A controller, Detecting an object proximate to a surface of the charging device by at least one passive ping using at least one charging coil selected from among a plurality of charging coils in the charging device to supply charging energy to a power receiving device; pinging a detected object with one or more active pings from the at least one charging coil; determining that the detected object includes a foreign object when a ping response is not received at the at least one charging coil; determining whether one or more other charging coils of the plurality of charging coils are capable of supplying charging energy to the power receiving device; For each of the one or more other charging coils, determining whether a foreign object is proximate to the other charging coil; a controller configured to select at least one of the one or more other charging coils that is not in proximity to a foreign object for supplying charging energy to the power receiving device; A charging device comprising:
9. 9. The charging apparatus of claim 8, wherein the controller is configured to set a permanent foreign object detected (FOD) state for the power receiving device if all of the one or more other charging coils are determined to be in proximity to a foreign object.
10. 10. The charging device of claim 9, wherein the controller is configured to determine whether the foreign object has been removed after setting a permanent FOD state of the power receiving device, and to reset the FOD state of the power receiving device after the foreign object has been removed.
11. 9. The charging apparatus of claim 8, wherein the controller is configured to access a stored list of predetermined coils that can supply charging energy to the power receiving device when determining whether the one or more other charging coils can supply charging energy.
12. 12. The charging device of claim 11, wherein the controller is configured to predetermine at initialization a list of predetermined coils capable of supplying charging energy to the power receiving device that can respond to a ping from at least one of a plurality of charging coils when the power receiving device is placed near the charging device.
13. 10. The charging device of claim 8, wherein determining whether the one or more other charging coils are capable of supplying charging energy includes determining available coils, which may be performed after detecting the presence of a foreign object, and further includes scanning to determine whether one or more of a plurality of charging coils of the charging device are capable of supplying charging energy to the power receiving device.
14. The charging device of claim 13 , wherein scanning to determine whether one or more of a plurality of charging coils of the charging device are capable of supplying charging energy to the power receiving device includes an active ping with the charging device.
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