Wireless power communication

US10348099B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10348099-B2
Application numberUS-201715648038-A
CountryUS
Kind codeB2
Filing dateJul 12, 2017
Priority dateOct 17, 2013
Publication dateJul 9, 2019
Grant dateJul 9, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A remote device in accordance with the present invention includes an adaptive power receiver that receives wireless power from the wireless power supply by induction. The adaptive power receiver may be switched among two or more modes of operation, including, for example, a high-Q mode and a low-Q mode. By controlling the duty cycle of the switching between modes, the amount of energy received by the adaptive receiver may be controlled to communicate to the wireless power supply. This control is a form of adaptive resonance communication or Q control communication. Distortion can be reduced or eliminated by ramping between duty cycles with adjustment to intermediate duty cycle values.

First claim

Opening claim text (preview).

The invention claimed is: 1. A remote device for receiving wireless power from a wireless power supply, said remote device comprising: an adaptive power receiver capable of receiving power from the wireless power supply through inductive coupling, said adaptive power receiver configurable to a first mode and configurable to a second mode; a load for receiving electrical power generated in said adaptive power receiver, wherein in said first mode, said adaptive power receiver is capable of storing energy received from the wireless power supply, wherein said second mode, said adaptive power receiver releases said stored energy to said load; and a controller operably coupled to the adaptive power receiver, said controller configured to communicate information to the wireless power supply by switching between said first mode and said second mode. 2. The remote device of claim 1 wherein said controller is capable of controlling power received from the wireless power supply by selectively configuring the adaptive power receiver between said first mode and said second mode. 3. The remote device of claim 1 wherein the each bit of the information communicated to the wireless power supply is represented by a plurality of transitions between the first mode and the second mode. 4. The remote device of claim 3 wherein said controller controls a duty cycle of said first mode with respect to said second mode over a bit time, wherein increasing said duty cycle increases a duration of time over which said adaptive power receiver is in said first mode, and wherein decreasing said duty cycle decreases said duration of time over which said adaptive power receiver is in said first mode; and wherein said controller is capable of communicating to the wireless power supply by selectively adjusting said duty cycle between two values to shift impedance of the remote device, wherein adjusting said duty cycle between two values includes adjusting said duty cycle between one or more intermediate duty cycle values. 5. The remote device as claimed in claim 4 wherein number and size of said one or more intermediate duty cycle steps are selected to reduce ringing in said communication. 6. The remote device as claimed in claim 4 wherein number and size of said one or more intermediate duty cycle steps are selected to reduce zero bit decay. 7. The remote device as claimed in claim 4 wherein number and size of said one or more intermediate duty cycle steps are selected to produce a constant duty cycle during a portion of said bit time. 8. The remote device as claimed in claim 4 wherein number and size of said one or more intermediate duty cycle steps are selected to produce a varying duty cycle during the entire bit time. 9. The remote device as claimed in claim 1 wherein said first mode is a high-Q mode and said second mode is a low-Q mode. 10. The remote device as claimed in claim 9 wherein said controller controls the duration at which said adaptive power receiver is in said high-Q mode in order to maintain the effective Q of the adaptive power receiver above or below a threshold, thereby improving efficiency of power transfer between the wireless power supply and said remote device. 11. The remote device as claimed in claim 1 wherein said adaptive power receiver includes adaptive control circuitry capable of both rectifying received power and switching the adaptive power receiver between said first mode and said second mode. 12. The remote device as claimed in claim 1 wherein said first mode is resonant and said second mode is highly resonant. 13. The remote device as claimed in claim 1 further comprising a supplemental receiver capable of receiving power from the wireless power supply through inductive coupling, wherein in said first mode, said adaptive power receiver provides power to said supplemental receiver from said wireless power supply and bypasses providing power directly to said load, and wherein in said second mode, said adaptive power receiver provides power directly to said load. 14. The remote device as claimed in claim 1 wherein said adaptive power receiver has reduced equivalent series resistance in said first mode compared to said second mode. 15. The remote device as claimed in claim 1 wherein said controller controls said adaptive power receiver to increase an amount of power received in response to determining that power received is below a threshold. 16. The remote device as claimed in claim 1 wherein said adaptive power receiver includes a single inductor capable of inductively coupling with the wireless power supply. 17. A method for controlling power received from a wireless power supply in a remote device, said method comprising: receiving power in an adaptive power receiver via inductive coupling with the wireless power supply; selectively configuring the adaptive power receiver in a first mode in which the adaptive power receiver is capable of storing energy received from the wireless power supply; selectively configuring the adaptive power receiver in a second mode in which the adaptive power receiver releases stored energy to a load; switching between the first mode and the second mode to communicate information to the wireless power supply. 18. The method of claim 17 comprising switching between the first mode and the second mode a plurality of times for each bit of the information communicated to the wireless power supply. 19. The method of claim 17 comprising: cycling between the first mode and the second mode at a first duty cycle to control the amount of power received by the adaptive power receiver; cycling between the first mode and the second mode at a second duty cycle to control the amount of power received by the adaptive power receiver; and wherein said transitioning includes transitioning between cycling between the first mode and the second mode at the first duty cycle and cycling between the first mode and the second mode at a second duty cycle to communicate the information to the wireless power supply, wherein said transitioning includes cycling between the first mode and the second mode at one or more intermediate duty cycles, said intermediate duty cycles being between said first duty cycle and said second duty cycle. 20. The method of claim 19 wherein number and size of said one or more intermediate duty cycle steps are selected to reduce ringing in said communication. 21. The method of claim 19 wherein number and size of said one or more intermediate duty cycle steps are selected to reduce zero bit decay. 22. The method of claim 17 wherein the first mode is a high-Q mode and the second mode is a low-Q mode. 23. The method of claim 22 including controlling the duration at which said adaptive power receiver is in said high-Q mode in order to maintain the effective Q of the adaptive power receiver above or below a threshold, thereby improving efficiency of power transfer between the wireless power supply and said remote device. 24. A wireless power system for transmitting wireless power from a wireless power supply to a remote device and communicating from the remote device to the wireless power supply, said wireless power system comprising: a remote device including, an adaptive power receiver capable of receiving power from the wireless power supply through inductive coupling, said adaptive power receiver configurable to a first mode and configurable to a second mode; a load for receiving electri

Assignees

Inventors

Classifications

  • responsive to the presence of foreign objects, e.g. detection of living beings · CPC title

  • Arrangements for providing Galvanic isolation, e.g. by means of magnetic or capacitive coupling · CPC title

  • H02J50/80Primary

    involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices · CPC title

  • Pulse width modulation; Pulse position modulation · CPC title

  • Inductive couplings {(for wireless supply or distribution of electric power using inductive coupling H02J50/10)} · CPC title

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What does patent US10348099B2 cover?
A remote device in accordance with the present invention includes an adaptive power receiver that receives wireless power from the wireless power supply by induction. The adaptive power receiver may be switched among two or more modes of operation, including, for example, a high-Q mode and a low-Q mode. By controlling the duty cycle of the switching between modes, the amount of energy received …
Who is the assignee on this patent?
Philips Ip Ventures B V, Koninklijke Philips Nv
What technology area does this patent fall under?
Primary CPC classification H02J50/80. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jul 09 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 9 related publications on this page (citations in our corpus or others sharing the same primary CPC).