IP Library › Granted Patent US 12,573,882
Granted Patent B2
US 12,573,882 · App. 17/437,383 · Granted Mar 10, 2026

Power transfer system and methods

Inventors: Soroush Dehghani Mohammadabadi (Vancouver, CA); Mohammadjavad Shariatzadeh (Vancouver, CA); Ehsan Hadizadeh Hafshejani (Vancouver, CA); Ehud Daon (Vancouver, CA)
Assignee: Daanaa Resolution Inc.
H02J50/12H02J50/005H02J50/05H02J50/402H02J50/60H02J50/80H02J50/90B60L50/60H02J2300/24
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Quick Facts
Patent No.
US 12,573,882
App. No.
17/437,383
Granted
Mar 10, 2026
Kind
B2
Abstract

A system for transferring power from a power source to a receiver.

Claims (32)

1 . A near-field resonant wireless electrical power transfer system configured for simultaneous capacitive power transfer and inductive power transfer according to an adjustable transfer mode ratio of the capacitive power transfer to the inductive power transfer, the system comprising:

a transmitter subsystem comprising a transmitter resonator, the transmitter resonator having a transmitting high self-capacitance configured for capacitive power transmission and a transmitting high self-inductance configured for inductive power transmission, and a power signal tuner module, the power signal tuner module configured to adjust the transfer mode ratio by adjusting a power signal provided by the power signal tuner module to the transmitter resonator at a resonant power signal oscillation frequency freely varying within a predetermined range, wherein the high self-capacitance and the high self-inductance are within a single unified resonant circuit of the transmitter subsystem; and

a receiver subsystem comprising a receiver resonator, the receiver resonator having a receiving high self-capacitance configured for capacitive power reception and a receiving high self-inductance configured for inductive power reception, wherein the high self-capacitance and the high self-inductance are within a single unified resonant circuit of the receiver subsystem, wherein the receiver resonator is configured to receive electrical power from the transmitter resonator at the transfer mode ratio wherein the transmitting high self-capacitance of the transmitter resonator is in E-field communication with the receiving high self-capacitance of the receiver resonator, and the transmitting high self-inductance of the transmitting resonator is in H-field communication with the high self-inductance of the receiving resonator.

2 . The system of claim 1 , wherein the power signal tuner module is configured to adjust the power signal by adjusting a phase difference between a current and a voltage of the power signal provided to the transmitter resonator.

3 . The system of claim 2 , further comprising at least one sensor, wherein the transmitter subsystem further comprises a controller, wherein the controller is configured to receive sensor information from the at least one sensor and automatically provide a tuning instruction to the power signal tuner module based on the sensor information, and wherein the tuner module is configured to adjust according to the tuning instruction the phase difference between the current and the voltage of the power signal provided to the transmitter resonator.

4 . The system of claim 3 , wherein the at least one sensor is disposed in the transmitter subsystem.

5 . The system of claim 3 , wherein the at least one sensor is disposed in the receiver subsystem and the controller is configured for wirelessly receiving the sensor information.

6 . The system of claim 3 , wherein the at least one sensor comprises at least one of a power load sensor, a transmission power sensor, or a surrounding object detector.

7 . The system of claim 3 , wherein the at least one sensor comprises a distance detector for detecting a distance between the transmitter resonator and the receiver resonator.

8 . The system of claim 1 , wherein the resonant power signal oscillation frequency is free to vary within a predetermined frequency band between 6.765 MHz to 6.795 MHz; or 13.553 MHz to 13.567 MHz; or 26.957 MHz to 27.283 MHz; or 40.66 MHz to 40.70 MHz; or 83.996 MHz to 84.004 MHz; or 167.992 MHz to 168.008 MHz; or 433.05 MHz to 434.79 MHz; or 886 MHz to 906 MHz.

9 . The system of claim 1 , wherein the predetermined frequency range is between 1 MHz and 1 GHz.

10 . The system of claim 8 , wherein the system is detuned to a degree that allows the resonant power signal oscillation frequency to vary within opposing limits of the predetermined frequency band.

11 . The system of claim 1 , further comprising an electrical load disposed in electrical communication with an electrically conductive mechanical load-bearing structure, wherein the receiver resonator comprises at least a portion of the electrically conductive mechanical load-bearing structure.

12 . A method for transferring power from a direct current source to a load using a near-field resonant wireless electrical power transfer system, the method comprising:

providing the direct current source in electrical communication with a transmitter subsystem of the near-field resonant wireless electrical power transfer system, the transmitter subsystem comprising a transmitter resonator, a power signal tuner module, and a controller, the transmitter resonator having a transmitting high self-capacitance configured for capacitive power transmission and a transmitting high self-inductance configured for inductive power transmission wherein the high self-capacitance and the high self-inductance are within a single unified resonant circuit of the transmitter subsystem;

providing at least one sensor;

providing the load in electrical communication with a receiver subsystem of the near-field resonant wireless electrical power transfer system;

transferring power by simultaneous capacitive power transfer and inductive power transfer at a resonant power signal oscillation frequency, the resonant power signal oscillation frequency freely varying within a predetermined range, from the transmitter resonator to a receiver resonator of the receiver subsystem, the receiver resonator having a receiving high self-capacitance configured for capacitive power reception and a receiving high self-inductance configured for inductive power reception wherein the high self-capacitance and the high self-inductance are within a single unified resonant circuit of the receiver subsystem; and

adjusting the power signal module to change a transfer mode ratio of the capacitive power transfer to the inductive power transfer at the resonant power signal oscillation frequency wherein the transmitting high self-capacitance of the transmitter resonator is in E-filed communication with the receiving high self-capacitance of the receiver resonator, and the transmitting high self-inductance of the transmitting resonator is in H-field communication with the high self-inductance of the receiving resonator.

13 . The method of claim 12 , wherein adjusting the power signal module comprises adjusting a phase difference between a current and a voltage of a power signal provided from the power signal module to the transmitter resonator.

14 . The method of claim 13 , wherein adjusting the phase difference between the current and the voltage of the power signal comprises:

receiving in the controller sensor information from the at least one sensor,

automatically providing a tuning instruction from the controller to the power signal tuner module based on the sensor information, and

adjusting according to the tuning instruction the phase difference between the current and the voltage of the power signal provided to the transmitter resonator.

15 . The method of claim 14 , wherein

providing the receiver subsystem comprises providing the at least one sensor disposed in the receiver subsystem; and

the receiving in the controller the sensor information comprises wirelessly receiving the sensor information in the controller.

16 . The method of claim 12 , wherein providing the transmitter subsystem comprises providing the at least one sensor disposed in the transmitter subsystem.

17 . The method of claim 12 , wherein providing the at least one sensor comprises providing at least one of a power load sensor, a transmission power sensor, a surrounding object detector, and a distance detector.

18 . The method of claim 17 , further comprising detecting, via the distance detector, a distance between the transmitter resonator and the receiver resonator.

19 . The method of claim 12 , wherein the transferring power comprises allowing the resonant power signal oscillation frequency to vary within a predetermined frequency band contained between 1 MHz and 1 GHz.

20 . The method of claim 19 , further comprising allowing the resonant power signal oscillation frequency to vary within opposing limits of the predetermined frequency band.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 23, 2021
From: MOHAMMADABADI, SOROUSH DEHGHANI; SHARIATZADEH, MOHAMMADJAVAD; HAFSHEJANI, EHSAN HADIZADEH; DAON, EHUD
To: DAANAA RESOLUTION INC.
Reel/Frame 058198/0669 →
Continuity (3)
Provisional Application 62934309 · Nov 12, 2019
Provisional Application 62817159 · Mar 12, 2019
Related Publication 20220368159A1 · Nov 17, 2022
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