A WIRELESS RECEIVER
20230024250 · 2023-01-26
Inventors
Cpc classification
H02J50/402
ELECTRICITY
International classification
Abstract
This disclosure relates to a power efficient wireless power receiver that is configured to receive and convert wireless power to direct-current (DC) power with minimal wastage. In particular, the receiver is able to selectively switch between a DC power combining topology and a radio-frequency (RF) power combining topology based on the amount of power that has been received so that the maximum amount of power received is optimized.
Claims
1. A wireless power receiver comprising: a pair of antenna modules configured to receive wireless power; a switching module configured to connect the pair of antenna modules to a Direct Current (DC) combining circuit or a Radio Frequency (RF) combining circuit; a detector module configured to receive DC power P.sub.Rx from the DC combining circuit or the RF combining circuit, wherein the detector module is configured to trigger the switching module to connect the pair of antenna modules to the DC combining circuit when the received power P.sub.Rx exceeds a threshold power P.sub.Threshold, and the detector module is configured to trigger the switching module to connect the pair of antenna modules to the RF combining circuit when the received power P.sub.Rx is less than the threshold power P.sub.Threshold.
2. The wireless power receiver according to claim 1 wherein the DC combining circuit comprises: a first and a second DC combining rectifier, whereby the first DC combining rectifier is configured to receive the wireless power from one of the antenna modules and the second DC combining rectifier is configured to receive the wireless power from another one of the antenna modules; and whereby the first and second DC combining rectifiers are configured to convert the wireless power from the pair of antenna modules to DC power P.sub.Rx and to provide the DC power P.sub.Rx, to the detector module.
3. The wireless power receiver according to claim 1, wherein the RF combining circuit comprises: a first and a second beam-forming module, whereby the first beam-forming module is configured to receive the wireless power from the one of the antenna modules and the second beam-forming module is configured to receive the wireless power from the another one of the antenna modules; and a RF combining rectifier configured to convert the beam-formed wireless power from the first and second beam-forming modules to DC power P.sub.Rx and to provide the DC power P.sub.Rx, to the detector module.
4. The wireless power receiver according to claim 3 whereby the first and second beam-forming modules are configured to optimize the wireless power received from the pair of antenna modules.
5. The wireless power receiver according to claim 4, wherein the first and second beam-forming modules each comprise a phase-shifter controllable by the detector module.
6. The wireless power receiver according to claim 1 whereby the one of the antenna modules comprises a pair of antennas and the another one of the antenna modules comprises another pair of antennas.
7. The wireless power receiver according to claim 1 wherein the switching module comprises a plurality of RF switches.
8. The wireless power receiver according to claim 3 whereby the one of the antenna modules comprises a pair of antennas and the another one of the antenna modules comprises another pair of antennas, and wherein the first and second beam-forming modules comprise a plurality of phase-shifters controllable by the detector module, whereby each phase-shifter is configured to transfer wireless power from an antenna to the RF combining rectifier.
9. The wireless power receiver according to claim 1 whereby the one of the antenna modules comprises a pair of antennas and the another one of the antenna modules comprises another pair of antennas; and wherein the DC combining circuit comprises: a first and a second beam-forming module, whereby the first beam-forming module is configured to receive the wireless power from the pair of antennas and the second beam-forming module is configured to receive the wireless power from the another pair of antennas; a first and a second DC combining rectifier, whereby the first DC combining rectifier is configured to receive the wireless power from the pair of antennas and the second DC combining rectifier is configured to receive the wireless power from the another pair of antennas; and whereby the first and second DC combining rectifiers are configured to convert the wireless power from the pair of antennas and the another pair of antennas to DC power P.sub.Rx and to provide the DC power P.sub.Rx, to the detector module.
10. A method for receiving wireless power comprising: receiving, using a pair of antennas modules, wireless power; selectively connecting, using a switching module, the pair of antennas modules to a Direct Current (DC) combining circuit or a Radio Frequency (RF) combining circuit; and receiving, using a detector module, DC power P.sub.Rx from the DC combining circuit or the RF combining circuit, wherein the detector module is configured to trigger the switching module to connect the pair of antenna modules to the DC combining circuit when the received power P.sub.Rx exceeds a threshold power P.sub.Threshold, and is configured to trigger the switching module to connect the pair of antenna modules to the RF combining circuit when the received power P.sub.Rx is less than the threshold power P.sub.Threshold.
11. The method according to claim 10 wherein the DC combining circuit comprises: a first and a second DC combining rectifier, whereby the first DC combining rectifier is configured to receive the wireless power from one of the antenna modules and the second DC combining rectifier is configured to receive the wireless power from another one of the antenna modules; and whereby the first and second DC combining rectifiers are configured to convert the wireless power from the pair of antenna modules to DC power P.sub.Rx and to provide the DC power P.sub.Rx, to the detector module.
12. The method according to claim 10, wherein the RF combining circuit comprises: a first and a second beam-forming module, whereby the first beam-forming module is configured to receive the wireless power from the one of the antenna modules and the second beam-forming module is configured to receive the wireless power from the another one of the antenna modules; a RF combining rectifier configured to convert the beam-formed wireless power from the first and second beam-forming modules to DC power P.sub.Rx and to provide the DC power P.sub.Rx, to the detector module.
13. The method according to claim 12 whereby the first and second beam-forming modules are configured to optimize the wireless power received from the pair of antenna modules.
14. The method according to claim 12, wherein the first and second beam-forming modules each comprise a phase-shifter controllable by the detector module.
15. The method according to claim 10 whereby the one of the antenna modules comprises a pair of antennas and the another one of the antenna modules comprises another pair of antennas.
16. The method according to claim 10 wherein the switching module comprises a plurality of RF switches.
17. The method according to claim 12 whereby the one of the antenna modules comprises a pair of antennas and the another one of the antenna modules comprises another pair of antennas, and wherein the first and second beam-forming modules comprise a plurality of phase-shifters controllable by the detector module, whereby each phase-shifter is configured to transfer wireless power from an antenna to the RF combining rectifier.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The above advantages and features in accordance with this invention are described in the following detailed description and are shown in the following drawings:
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DETAILED DESCRIPTION
[0047] This invention relates to a wireless power receiver that is configured to receive and convert wireless power to direct-current (DC) power in an efficient manner regardless of the distance between the transmitter and the receiver. In particular, the receiver is able to selectively switch between a DC power combining topology and a radio-frequency (RF) power combining topology based on the amount of power that has been received so that the maximum amount of power received may be optimized.
[0048] Hence, when the receiver determines that the received power is below a certain threshold, the receiver will utilize the RF combining circuit, which utilizes beamforming techniques, to ensure that the receiver receives the maximum amount of transmitted power by adjusting the received waveform accordingly. As the rectifier has low efficiency ratings, the beamforming approach is not efficient at higher power levels. Hence, when the receiver detects large power levels, the DC combining circuit which utilizes separate rectennas (i.e. an antenna coupled with a rectifier) to receive the wireless power will be utilized instead to maximize the amount of power received.
[0049] As mentioned in the previous section, a conventional wireless power transfer system is illustrated in
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[0052] To achieve this, in accordance with embodiments of the invention, phase shifters in circuit 205 are configured to be 90° out-of-phase with each other such that the wireless power received by antenna 206 becomes 90° out-of-phase with the power received by antenna 207 once the received power has passed through the two phase shifters. The power that is coherently-phased is then rectified by the rectifier accordingly.
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[0054] Hence, based on the plot shown in
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[0056] Hence, when receiver 450 (which incorporates DC combining circuit 405) is operated at a nearer distance d2 (as compared to distance d in
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[0058] Antennas 501-504 may comprise any type of antenna that is suitable for receiving and/or transmitting wireless power and switching modules 506, 507 may comprise any type of RF switches that are suitable for switching RF power. As illustrated in
[0059] In accordance with embodiments of the invention, beamforming modules 516 and 517 may utilize analogue beamforming techniques to beam form the received waveforms. In particular, modules 516 and 517 may comprise phase shifters whose phases are controlled individually by detector module 550. Detector module 550 will then adjust the phases of each of the phase shifters so that the waveforms that pass through these phase shifters will combine constructively at rectifier 521 to maximize the amount of rectified power.
[0060] In operation, antennas 501-504 will each receive wireless power transmitted from a nearby transmitter. Under the assumption that receiver 500 is operating in a DC combining mode, i.e. the DC combining circuits are selected, the DC combining circuit will then cause the wireless power received to be rectified by each associated rectifier before the rectified signals are all summed and detected by detector module 550. In other words, the wireless power received by antenna 501 will be rectified by rectifier 511; the wireless power received by antenna 502 will be rectified by rectifier 512; the wireless power received by antenna 503 will be rectified by rectifier 513; the wireless power received by antenna 504 will be rectified by rectifier 514 and the sum of the DC power rectified by rectifiers 511-514 will then be provided to module 550.
[0061] If detector module 550 determines that the total received power is less than a predetermined threshold power, P.sub.Threshold, detector module 550 will then cause switching modules 506 and 507 to connect antennas 501-504 to the RF combining circuit instead. In other words, the RF switches in switching modules 506 and 507 will switch their outputs from the DC combining circuit to the RF combining circuit. In embodiments of the invention, the predetermined threshold power, P.sub.Threshold, is determined based on the breakdown power of the rectifiers 511-514 and 521 which may result in a P.sub.Threshold value between 2 and 5 Volts.
[0062] When this happens, wireless power received by antennas 501-504 will instead be provided to beamforming modules 516 and 517 accordingly. Under the assumption that analogue beamforming techniques are adopted, phase shifters provided within beamforming modules 516 and 517 will then cause the received waveforms to be phase shifted. The phase shifted waveforms from beamforming modules 516 and 517 are then rectified by rectifier 521 and the rectified power is subsequently provided to detector module 550. Based on the received power, detector module 550 will then adjust the phases of the phase shifters in beamforming modules 516 and 517 such that the waveform provided to rectifier 521 is at its optimum coherent phase. The optimum rectified signal is then provided to detector module 550 and onto the load accordingly.
[0063] Conversely, if at any time detector module 550 determines that the total received power is more than the predetermined threshold power, P.sub.Threshold, detector module 550 will then cause switching modules 506 and 507 to connect antennas 501-504 back to the DC combining circuit instead so that the individual rectifiers 511-514 will rectify the wireless power received by antennas 501-504 directly before summing the rectified DC power at detector module 550 and at the load.
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[0065] One skilled in the art will recognize that wireless power receivers 500 and 600 may comprise of any number of antennas without departing from the invention. This means that when the number of antennas increases, the number of switching modules, the number of rectifiers in DC combining circuit and the number of beamforming modules will have to be increased accordingly and conversely, when the number of antennas decreases, the number of switching modules, the number of rectifiers in DC combining circuit and the number of beamforming modules will have to be reduced accordingly.
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[0067] As illustrated in
[0068] In accordance with embodiments of the invention, beamforming modules 706 and 707 may utilize analogue or digital beamforming techniques to beam form the received waveforms as previously discussed however for brevity, it is assumed that analogues beamforming techniques are adopted for receiver 700.
[0069] In operation, antennas 701a and 701b will each receive wireless power transmitted from a nearby transmitter. Under the assumption that receiver 700 is operating in a DC combining mode, i.e. the DC combining circuits are selected, the DC combining circuit will then cause the wireless power received by antennas 701a and 701b to be rectified by rectifier 511. Similarly, the DC combining circuit will then cause the wireless power received by antennas 702a and 702b to be rectified by rectifier 512. The rectifier power from rectifiers 511 and 512 are then summed at detector module 550 and provided to the load.
[0070] If detector module 550 determines that the total received power is less than a predetermined threshold power, P.sub.Threshold, detector module 550 will then cause switching module 506 to connect antennas 701a, 701b, 702a and 702b to the RF combining circuit instead. In other words, the RF switches in switching module 506 will switch their outputs from the DC combining circuit to the RF combining circuit.
[0071] When this happens, wireless power received by antennas 701a, 701b, 702a and 702b will be provided to beamforming modules 706 and 707 instead. Under the assumption that analogue beamforming techniques are adopted, phase shifters provided within beamforming modules 706 and 707 will then cause the received waveforms to be phase shifted. The phase shifted waveforms from beamforming modules 706 and 707 are then rectified by rectifier 521 and the rectified power is subsequently provided to detector module 550. Based on the received power, detector module 550 will then adjust the phases of the phase shifters in beamforming modules 706 and 707 such that the waveform provided to rectifier 521 is at its optimum coherent phase. The optimum rectified signal is then provided to detector module 550 and onto the load accordingly.
[0072] Conversely, if at any time detector module 550 determines that the total received power is more than the predetermined threshold power, P.sub.Threshold, detector module 550 will then cause switching module 506 to connect antennas 701a, 701b, 702a and 702b back to the DC combining circuit instead so that the rectifiers 511 and 512 will rectify the wireless power received by antennas 701a, 701b, 702a and 702b directly before summing the rectified DC power at detector module 550 and at the load.
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[0074] The main difference is that the waveforms received by 701a and 701b are beamformed by beamforming module 706 regardless whether the RF or DC combining circuits are selected.
[0075] In operation, antennas 701a and 701b will each receive wireless power transmitted from a nearby transmitter. Under the assumption that receiver 700 is operating in a DC combining mode, i.e. the DC combining circuits are selected, the DC combining circuit will then cause the wireless power received by antennas 701a and 701b to be beamformed by beamforming module 706 before the beamformed waveform is rectified by rectifier 511. Similarly, the DC combining circuit will then cause the wireless power received by antennas 702a and 702b to be beamformed by beamforming module 706 before the beamformed waveform is rectified by rectifier 512. The rectifier power from rectifiers 511 and 512 are then summed at detector module 550 and provided to the load. Based on the received power, detector module 550 will then adjust the phases of the phase shifters in beamforming modules 706 and 707 such that the waveform provided to rectifier 521 is at its optimum coherent phase. The optimum rectified signal is then provided to detector module 550 and onto the load accordingly
[0076] If detector module 550 determines that the total received power is less than a predetermined threshold power, P Threshold detector module 550 will then cause switching module 506 to connect antennas 701a, 701b, 702a and 702b to the RF combining circuit instead. In other words, the RF switches in switching module 506 will switch their outputs from the DC combining circuit to the RF combining circuit.
[0077] When this happens, wireless power received by antennas 701a, 701b, 702a and 702b will be provided to beamforming modules 706 and 707 instead. Under the assumption that analogue beamforming techniques are adopted, phase shifters provided within beamforming modules 706 and 707 will then cause the received waveforms to be phase shifted. The phase shifted waveforms from beamforming modules 706 and 707 are then rectified by rectifier 521 and the rectified power is subsequently provided to detector module 550. Based on the received power, detector module 550 will then adjust the phases of the phase shifters in beamforming modules 706 and 707 such that the waveform provided to rectifier 521 is at its optimum coherent phase. The optimum rectified signal is then provided to detector module 550 and onto the load accordingly.
[0078] Conversely, if at any time detector module 550 determines that the total received power is more than the predetermined threshold power, P.sub.Threshold, detector module 550 will then cause switching module 506 to connect antennas 701a, 701b, 702a and 702b back to the DC combining circuit instead so that the rectifiers 511 and 512 will rectify the wireless power received by antennas 701a, 701b, 702a and 702b directly before summing the rectified DC power at detector module 550 and at the load.
[0079] One skilled in the art will recognize that wireless power receivers 700 and 800 may comprise of any number of antennas without departing from the invention and when the number of antennas increases, the number of switching modules, the number of rectifiers in DC combining circuit and the number of beamforming modules will have to be increased accordingly.
[0080] In accordance with embodiments of the invention, a method for receiving wireless power using components in a wireless power receiver comprises the following steps:
[0081] Step 1, receiving, using a pair of antennas modules, wireless power;
[0082] Step 2, selectively connecting, using a switching module, the pair of antennas modules to a Direct Current (DC) combining circuit or a Radio Frequency (RF) combining circuit; and
[0083] Step 3, receiving, using a detector module, DC power P.sub.Rx from the DC combining circuit or the RF combining circuit, wherein the detector module is configured to trigger the switching module to connect the pair of antenna modules to the DC combining circuit when the received power P.sub.Rx exceeds a threshold power P.sub.Threshold, and is configured to trigger the switching module to connect the pair of antenna modules to the RF combining circuit when the received power P.sub.Rx is less than the threshold power P.sub.Threshold.
[0084] In embodiments of the invention, a process is needed for receiving wireless power using components in a wireless power receiver. The following description and
[0085] Process 900 begins at step 902 whereby wireless power is received. Process 900 then measures the DC power P.sub.Rx produced by a DC combining circuit. If process 900 determines at step 906 that the DC power P.sub.Rx is less than a threshold power P.sub.Threshold, process 900 then progresses to step 908 whereby process 900 switches the combining circuit to the RF combining circuit from the DC combining circuit. Process 900 then fine tunes the beam-forming modules at step 910 to ensure that the waveform is coherent. The rectified power received from the RF combining circuit is then stored in a load at step 912. If wireless power is detected at step 916, process 900 then returns to step 902 and all the processes repeat until no further wireless power is detected at step 916. Process 900 then ends.
[0086] Alternatively, if process 900 determines at step 906 that the DC power P.sub.Rx is more than a threshold power P.sub.Threshold, process 900 then progresses to step 914 whereby the received power is provided to a load and process 900 then progresses to step 916. Similarly, if wireless power is detected at step 916, process 900 then returns to step 902 and all the processes repeat until no further wireless power is detected at step 916. Process 900 then ends.
Simulated Results for the RF and DC Combining Circuits
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[0089] Based on the plots illustrated in
[0090] The rectifiers referred in this disclosure are realized by a combination of diode circuits which individually have a very low resistance when switched ON resulting in low isolation levels between its output and input. In an embodiment of the invention, the rectifier's circuit and/or the phase shifter's circuit may be used to dynamically match the antenna to 50-Ohms at different power levels.
[0091] An embodiment of the rectifier circuit is shown in
[0092] An embodiment of the switching module 1405 is illustrated in
[0093] An embodiment of a RF phase shifter 1505 is shown in
[0094] The above is a description of embodiments of a device and method in accordance with the present invention as set forth in the following claims. It is envisioned that others may and will design alternatives that fall within the scope of the following claims.