IP Library Granted Patent US 10,371,848
Granted Patent B2
US 10,371,848 · App. 16/026,123 · Granted Aug 6, 2019

Foreign object detection in wireless energy transfer systems

Inventors: Arunanshu Mohan Roy (Cambridge, MA); Noam Katz (Lincoln, RI); Nathaniel Endale Atnafu (Cambridge, MA)
Assignee: WiTricity Corporation
G01V3/081B60L53/12G01V3/104H02J5/005H02J7/025H02J17/00H02J50/12H02J50/60H02J50/70H02J50/80B60L2270/147Y02T10/7005Y02T10/7072Y02T90/122Y02T90/14
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Quick Facts
Patent No.
US 10,371,848
App. No.
16/026,123
Granted
Aug 6, 2019
Kind
B2
Abstract

Systems and methods for detecting foreign object debris around a wireless power transfer system include a plurality of detectors, each detector featuring one or more loops of conducting material, and a controller configured to measure at least one of a voltage and a current in each detector and to determine, based on the measurements, whether foreign object debris is present around the wireless power transfer system, where at least some of the plurality of detectors include a first number of loops of the conducting material, and at least some of the plurality of detectors include a second number of loops of the conducting material larger than the first number.

Claims (25)

1. An apparatus for detecting foreign object debris around a wireless power transfer system, the apparatus comprising:

a plurality of detectors, each detector comprising one or more loops of conducting material and positioned so that each detector receives at least a portion of a common oscillating magnetic field generated by the wireless power transfer system; and

a controller configured to measure at least one of a voltage and a current in each detector and to determine, based on the measurements, whether foreign object debris is present around the wireless power transfer system,

wherein at least some of the plurality of detectors comprise a first number of loops of the conducting material, and at least some of the plurality of detectors comprise a second number of loops of the conducting material larger than the first number.

2. The apparatus of claim 1 , wherein at least some of the plurality of detectors comprise one loop and wherein at least some of the plurality of detectors comprise two loops.

3. The apparatus of claim 2 , wherein at least some of the plurality of detectors comprise three loops.

4. The apparatus of claim 1 , wherein, the common oscillating magnetic field is generated by a wireless power transfer source of the wireless power transfer system, and wherein the at least some of the plurality of detectors comprising the first number of loops are positioned in regions where the magnetic field is larger than in regions in which the at least some of the plurality of detectors comprising the second number of loops are positioned.

5. The apparatus of claim 1 , wherein the plurality of detectors form an array.

6. The apparatus of claim 5 , wherein spacings between at least some adjacent detectors in the array are different.

7. The apparatus of claim 5 , wherein cross-sectional areas of at least some detectors in the array are different from cross-sectional areas of at least some other detectors in the array.

8. A method for detecting foreign object debris around a wireless power transfer system, the method comprising:

measuring at least one of a voltage and a current in each one of a plurality of detectors, wherein the plurality of detectors are positioned so that each detector receives at least a portion of a common oscillating magnetic field generated by the wireless power transfer system; and

determining, based on the measurements, whether foreign object debris is present around the wireless power transfer system,

wherein each of the detectors comprises one or more loops of conducting material; and

wherein at least some of the plurality of detectors comprise a first number of loops of the conducting material, and at least some of the plurality of detectors comprise a second number of loops of the conducting material larger than the first number.

9. The apparatus of claim 1 , wherein the common oscillating magnetic field is generated by a source resonator of the wireless power transfer system.

10. The apparatus of claim 1 , wherein the common oscillating magnetic field is generated by an auxiliary coil that is different from a source resonator of the wireless power transfer system.

11. The apparatus of claim 1 , wherein at least some of the detectors comprising the second number of loops are positioned in regions where a maximum amplitude of the common oscillating magnetic field is smaller than in regions where at least some of the detectors comprising the first number of loops are positioned.

12. The apparatus of claim 11 , wherein each of the detectors comprising the second number of loops is positioned in a region where a maximum amplitude of the common oscillating magnetic field is smaller than in each of the regions where the detectors comprising the first number of loops is positioned.

13. The method of claim 8 , wherein at least some of the plurality of detectors comprise one loop, and wherein at least some of the plurality of detectors comprise two loops.

14. The method of claim 13 , wherein at least some of the plurality of detectors comprise three loops.

15. The method of claim 8 , further comprising generating the common oscillating magnetic field using a source resonator of the wireless power transfer system.

16. The method of claim 8 , further comprising generating the common oscillating magnetic field using an auxiliary coil that is different from a source resonator of the wireless power transfer system.

17. The method of claim 8 , wherein at least some of the detectors comprising the second number of loops are positioned in regions where a maximum amplitude of the common oscillating magnetic field is smaller than in regions where at least some of the detectors comprising the first number of loops are positioned.

18. The method of claim 17 , wherein each of the detectors comprising the second number of loops is positioned in a region where a maximum amplitude of the common oscillating magnetic field is smaller than in each of the regions where the detectors comprising the first number of loops is positioned.

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 Jul 3, 2018
From: ROY, ARUNANSHU MOHAN; KATZ, NOAM; ATNAFU, NATHANIEL ENDALE
To: WITRICITY CORPORATION
Reel/Frame 046261/0668 →
Continuity (4)
Continuation 14706531 · May 7, 2015
Provisional Application 61989799 · May 7, 2014
Provisional Application 62072992 · Oct 30, 2014
Related Publication 20180329101A1 · Nov 15, 2018
Cited By (8)
US 12,261,459 US 12,278,503 US 12,296,698 US 12,298,461 US 12,298,462 US 12,399,295 US 12,626,851 US 12,646,975