Load-induced resonance-shift-keying modulation scheme for simultaneous near-field wireless power and data transmission through a pair of inductive coils

US11387685B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11387685-B2
Application numberUS-201816638452-A
CountryUS
Kind codeB2
Filing dateAug 14, 2018
Priority dateAug 14, 2017
Publication dateJul 12, 2022
Grant dateJul 12, 2022

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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.

Biomedical implants in accordance with various embodiments of the invention can be implemented in many different ways. The implants can be configured to receive power and transmit data, both wirelessly and simultaneously. Such devices can be configured to receive power from an external source and transmit data, such as but not limited to recorded neural data and/or other biological data, to outside the body. In many cases, the data is transmitted to the device that delivers power to the implant. For example, the power and data transmission system can be implemented with a pair of transceivers. The implant transceiver can receive power wirelessly though an external transceiver while simultaneously transmitting data to the external transceiver. In several embodiments, both forward (power) and reverse (data) links use the same pair of inductive coils in the transceivers, one coil mounted in the implant and the other in the external unit.

First claim

Opening claim text (preview).

What is claimed is: 1. A wireless inductive telemetry link comprising: an external transceiver comprising: a demodulation circuit comprising a counter and a finite state machine circuit for outputting an output data signal; and an internal transceiver comprising: a modulation circuit comprising a switch load capacitor for receiving an input data signal, wherein the switch capacitor is capable of receiving a data signal and modulating the data signal under a load-induced resonance-shift-keying modulation scheme; wherein the external transceiver is configured to transfer power to the internal transceiver while receiving data from the internal transceiver contemporaneously. 2. The wireless inductive telemetry link of claim 1 , wherein: the external transceiver further comprises a first inductive coil; the internal transceiver further comprises a second inductive coil; and the external is configured to transfer power to the internal transceiver while receiving data from the internal transceiver contemporaneously using the first and second inductive coils. 3. The wireless inductive telemetry link of claim 2 , wherein the load-induced resonance-shift-keying modulation scheme is implemented by using a switch capacitor to flip oscillation between two resonant frequencies, ω L and ω H . 4. The wireless inductive telemetry link of claim 1 , wherein the demodulation circuit further comprises an oscillator shut-down switch. 5. The wireless inductive telemetry link of claim 4 , wherein the internal transceiver further comprises a large capacitor for supplying charge at oscillator shut-down. 6. The wireless inductive telemetry link of claim 1 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver. 7. The wireless inductive telemetry link of claim 6 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver within a coil separation d c range of 4.2 centimeters. 8. The wireless inductive telemetry link of claim 7 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver within a coil separation d c range of 0.8 centimeters. 9. The wireless inductive telemetry link of claim 8 , wherein the internal transceiver is configured to transmit data to the external transceiver at a data rate of 5 Mbps. 10. The wireless inductive telemetry link of claim 9 , wherein the power transfer efficiency is above 35%. 11. A method for simultaneous power and data transmission, the method comprising: transmitting data from an internal transceiver to an external transceiver, wherein: the external transceiver comprises a demodulation circuit comprising a counter and a finite state machine circuit for outputting an output data signal; and the internal transceiver comprises a modulation circuit comprising a switch load capacitor for receiving an input data signal, wherein the switch capacitor is capable of receiving a data signal and modulating the data signal under a load-induced resonance-shift-keying modulation scheme; and transferring power from the external transceiver to the internal transceiver contemporaneously with the transmittal of data from the internal transceiver. 12. The method claim 11 , wherein: the external transceiver further comprises a first inductive coil; the internal transceiver further comprises a second inductive coil; and the transmission of data and transferal of power are performed through the first and second inductive coils. 13. The method of claim 12 , wherein the load-induced resonance-shift-keying modulation scheme is implemented by using a switch capacitor to flip oscillation between two resonant frequencies, ω L and ω H . 14. The method of claim 11 , wherein the demodulation circuit further comprises an oscillator shut-down switch. 15. The method of claim 14 , wherein the internal transceiver further comprises a large capacitor for supplying charge at oscillator shut-down. 16. The method of claim 11 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver. 17. The method of claim 16 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver within a coil separation d c range of 4.2 centimeters. 18. The method of claim 17 , wherein the external transceiver is configured to provide self-regulated power to the internal transceiver within a coil separation d c range of 0.8 centimeters. 19. The method of claim 18 , wherein the data is transmitted to the external transceiver at a data rate of 5 Mbps. 20. The method of claim 19 , wherein the power is transferred with a power transfer efficiency above 35%.

Assignees

Inventors

Classifications

  • Medical devices, medical implants or life supporting devices · CPC title

  • Transponders · CPC title

  • One coil at each side, e.g. with primary and secondary coils · CPC title

  • with a number of separate pretuned tuning circuits or separate tuning elements selectively brought into circuit, e.g. for waveband selection or for television channel selection · CPC title

  • H02J50/80Primary

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

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What does patent US11387685B2 cover?
Biomedical implants in accordance with various embodiments of the invention can be implemented in many different ways. The implants can be configured to receive power and transmit data, both wirelessly and simultaneously. Such devices can be configured to receive power from an external source and transmit data, such as but not limited to recorded neural data and/or other biological data, to out…
Who is the assignee on this patent?
Univ California
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 12 2022 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).