IP Library Granted Patent US 10,446,317
Granted Patent B2
US 10,446,317 · App. 15/686,694 · Granted Oct 15, 2019

Object and motion detection in wireless power transfer systems

Inventors: Katherine L. Hall (Arlington, MA); Morris P. Kesler (Bedford, MA); Konrad J. Kulikowski (Pine, CO); Michael Alan Feldstein (Sudbury, MA); Volkan Efe (Watertown, MA)
Assignee: WiTricity Corporation
H01F38/14B60L53/12B60L53/51B60L53/52B60L53/63B60L53/64B60L53/65B60L53/665B60L55/00H01Q7/00H02J50/10H02J50/60H03H7/40B60L2200/12B60L2200/22B60L2200/26B60L2210/10B60L2210/20B60L2210/30B60L2210/40B60L2250/10B60L2250/16B60L2260/28Y02E60/721Y02T10/7005Y02T10/7088Y02T10/725Y02T10/7216Y02T10/7241Y02T90/121Y02T90/122Y02T90/127Y02T90/128Y02T90/14Y02T90/163Y02T90/169Y04S10/126Y04S30/14
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Quick Facts
Patent No.
US 10,446,317
App. No.
15/686,694
Granted
Oct 15, 2019
Kind
B2
Abstract

Described herein are improved configurations for an apparatus that may include a plurality of resonators electrically interconnected and arranged in an array to form a composite resonator for wireless power transfer, each one of the plurality of resonators may include a block of a magnetic material having a conductor wire wrapped around a cross section thereof to form at least one loop enclosing an area substantially equal to the cross section, wherein the plurality of resonators are may be oriented so that a dipole moment of each one of the plurality of resonators is aligned with a dipole moment of each other one of the plurality of resonators.

Claims (78)

1. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein when the second sensor generates an output signal indicative of movement of an object relative to the second sensor, the power and control circuitry does not detect an extraneous object based on an output signal generated by the first sensor.

2. The system of claim 1 , wherein the first sensor is associated with the source resonator.

3. The system of claim 1 , wherein the second sensor is associated with the device resonator.

4. The system of claim 1 , wherein electrical signals generated by both the first and second sensors are used by the power and control circuitry to determine whether at least one of an obstruction and foreign object is present in at least one of the gap and the vicinity of the source resonator.

5. The system of claim 1 , wherein the power and control circuitry is configured so that when the first sensor generates an output signal indicative of an extraneous object in at least one of the gap and the vicinity of the source resonator and when the second sensor generates an output signal indicative of motion of an object in at least one of the gap and the vicinity of the source resonator, the power and control circuitry prevents wireless power transfer from the source resonator to the device resonator.

6. The system of claim 1 , wherein the power and control circuitry is configured so that when the first sensor generates an output signal indicative of an extraneous object in at least one of the gap and the vicinity of the source resonator and when the second sensor generates an output signal indicative of motion of an object in at least one of the gap and the vicinity of the source resonator, the power and control circuitry halts wireless power transfer from the source resonator to the device resonator.

7. The system of claim 1 , wherein at least one of the first and second sensors comprises at least one of an optical sensor, a magnetic sensor, a capacitive sensor, an inductive sensor, a pressure sensor, a temperature sensor, an acoustic sensor, an infrared sensor, and an ultraviolet sensor.

8. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein at least one of the power and control circuitry and the second sensor is configured to determine position information for the device resonator.

9. The system of claim 8 , wherein the second sensor comprises an accelerometer.

10. The system of claim 8 , wherein the second sensor is associated with the device resonator.

11. The system of claim 8 , wherein the power and control circuitry is configured so that when the second sensor generates an output signal indicative of motion of the device resonator relative to the source resonator, the power and control circuitry does not interrupt wireless power transfer between the source and device resonators based on an output signal generated by the first sensor.

12. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the second sensor is configured to provide position and orientation information for the device resonator relative to the source resonator to a controller for alignment of the source resonator and the device resonator.

13. The system of claim 12 , wherein the second sensor is associated with the device resonator.

14. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the first sensor comprises at least one detection element configured so that when a metallic object is present in at least one of the gap and the vicinity of the source resonator, the detection element generates an output signal indicative of the presence of the metallic object.

15. The system of claim 14 , wherein the power and control circuitry is configured so that when the second sensor generates the output signal, the power and control circuitry does not interrupt wireless power transfer between the source and device resonators based on an output signal generated by the first sensor.

16. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the first sensor comprises at least one detection element configured so that when at least one of a human and an animal are present in at least one of the gap and the vicinity of the source resonator, the detection element generates an output signal indicative of the presence of the at least one of the human and the animal.

17. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the first sensor is configured to detect a living object that intercepts at least a portion of an active field volume corresponding to the electromagnetic field generated by the source resonator.

18. The system of claim 17 , wherein the power and control circuitry is configured to discontinue wireless energy transmission between the source and device resonators and transmit a warning message to at least one of a vehicle controller and an operator when the first sensor generates an output signal indicating that the living object intercepted at least a portion of the active field volume corresponding to the electromagnetic field generated by the source resonator.

19. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the object detected by the second sensor comprises at least one of the device resonator and an object connected to the device resonator.

20. The system of claim 19 , wherein the second sensor is associated with the device resonator.

21. The system of claim 19 , wherein the power and control circuitry is configured so that when the second sensor generates an output signal indicative of motion of the device resonator relative to the source resonator, the power and control circuitry does not interrupt wireless power transfer between the source and device resonators based on an output signal generated by the first sensor.

22. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to a vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the source and device resonators, and configured to regulate the wireless power transfer;

a first sensor coupled to the power and control circuitry and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor coupled to the power and control circuitry and configured to detect motion of an object relative to the second sensor in at least one of the gap and the vicinity of the source resonator,

wherein the object detected by the second sensor comprises a living object that has intercepted at least a portion of an active field volume corresponding to the electromagnetic field generated by the source resonator.

23. The system of claim 22 , wherein the power and control circuitry is configured to discontinue wireless energy transmission between the source and device resonators and transmit a warning message to at least one of a vehicle controller and an operator when the second sensor generates an output signal indicating that a living object has intercepted at least a portion of an active field volume corresponding to the electromagnetic field generated by the source resonator.

24. A system for providing power wirelessly to a vehicle, the system comprising:

a source resonator configured to generate an electromagnetic field to transfer power wirelessly;

a device resonator configured to be mounted to the vehicle so that the vehicle can position the device resonator within the electromagnetic field generated by the source resonator to receive energy wirelessly from the source resonator;

power and control circuitry coupled to at least one of the resonators, and configured to regulate the wireless power transfer;

a first sensor associated with the source resonator, coupled to the power and control circuitry, and configured to detect an extraneous object in at least one of a gap between the source and device resonators and a vicinity of the source resonator; and

a second sensor associated with the device resonator, coupled to the power and control circuitry, and configured to monitor the gap to detect motion of the device resonator relative to the source resonator,

wherein the power and control circuitry is configured so that when the second sensor generates an output signal indicative of motion of the device resonator relative to the source resonator, the power and control circuitry does not interrupt wireless power transfer between the source and device resonators based on an output signal generated by the first sensor.

Assignments (4)
ASSIGNMENT OF SECURITY INTEREST Recorded Dec 18, 2025
From: AIR WAVES WIRELESS ELECTRICITY IV, LLC
To: WITRICITY AI TECH, LLC
Reel/Frame 074004/0929 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2025
From: WITRICITY CORPORATION
To: WITRICITY AI TECH, LLC
Reel/Frame 073982/0106 →
SECURITY INTEREST Recorded Dec 5, 2025
From: WITRICITY CORPORATION; WITRICITY HOLDINGS, INC.
To: AIR WAVES WIRELESS ELECTRICITY IV, LLC, AS COLLATERAL AGENT FOR LENDERS
Reel/Frame 073860/0204 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 28, 2017
From: HALL, KATHERINE L.; KESLER, MORRIS P.; KULIKOWSKI, KONRAD J.; FELDSTEIN, MICHAEL A.; EFE, VOLKAN
To: WITRICITY CORPORATION
Reel/Frame 043415/0583 →
Continuity (34)
Continuation 14090224 · Nov 26, 2013
Continuation 12789611 · May 28, 2010
Continuation In Part 12770137 · Apr 29, 2010
Continuation In Part 12767633 · Apr 26, 2010
Continuation In Part 12759047 · Apr 13, 2010
Continuation In Part 12757716 · Apr 9, 2010
Continuation In Part 12749571 · Mar 30, 2010
Continuation In Part 12639489 · Dec 16, 2009
Continuation In Part 12647705 · Dec 28, 2009
Continuation In Part 12567716 · Sep 25, 2009
Continuation In Part 12721118 · Mar 10, 2010
Continuation In Part 12705582 · Feb 13, 2010
Continuation 61152390 · Feb 13, 2009
Provisional Application 61173747 · Apr 29, 2009
Provisional Application 61172633 · Apr 24, 2009
Provisional Application 61100721 · Sep 27, 2008
Provisional Application 61108743 · Oct 27, 2008
Provisional Application 61147386 · Jan 26, 2009
Provisional Application 61152086 · Feb 12, 2009
Provisional Application 61178508 · May 15, 2009
Provisional Application 61182768 · Jun 1, 2009
Provisional Application 61121159 · Dec 9, 2008
Provisional Application 61142977 · Jan 7, 2009
Provisional Application 61142885 · Jan 6, 2009
Provisional Application 61142796 · Jan 6, 2009
Provisional Application 61142889 · Jan 6, 2009
Provisional Application 61142880 · Jan 6, 2009
Provisional Application 61142818 · Jan 6, 2009
Provisional Application 61142887 · Jan 6, 2009
Provisional Application 61156764 · Mar 2, 2009
Provisional Application 61143058 · Jan 7, 2009
Provisional Application 61163695 · Mar 26, 2009
Provisional Application 61169240 · Apr 14, 2009
Related Publication 20180122567A1 · May 3, 2018
Cited By (3)
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