IP Library › Granted Patent US 12,627,177
Granted Patent B2
US 12,627,177 · App. 17/887,395 · Granted May 12, 2026

Transmitter coil power foreign object detection

Inventors: Mohammad Ali Saket Tokaldani (Vancouver, CA); Eric Heindel Goodchild (Phoenix, AZ)
Assignee: Aira, Inc.
H02J50/60H02J50/005H02J50/12H02J50/402
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Quick Facts
Patent No.
US 12,627,177
App. No.
17/887,395
Granted
May 12, 2026
Kind
B2
Abstract

Systems, methods and apparatus for wireless charging are disclosed. A wireless charging device has a resonant circuit including one or more power transmitting coils in a charging surface of the charging device, a driver circuit configured to provide a charging current to the resonant circuit, and a controller. The controller is configured to determine an average transmitted power using samples of current and voltage captured from the resonant circuit, and determine that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the wireless charging device. In one example, each sample of current is obtained by measuring a current flowing in the resonant circuit, and each of sample of voltage is obtained by measuring a voltage across the one or more power transmitting coils.

Claims (57)

1 . A method for operating a wireless charging device, comprising:

providing a charging current to a resonant circuit that includes one or more power transmitting coils in a charging surface of a wireless charging device;

determining an average transmitted power using samples of current and voltage captured from the resonant circuit;

determining that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the wireless charging device; and

capturing the samples of current and voltage in one or more sampling cycles having a period that spans a plurality of periods of a cycle of the charging current, wherein each sampling cycle includes a plurality of sampling points,

wherein each of the plurality of sampling points occurs at a different phase of the cycle of the charging current than each of the other samples in the plurality of sampling points, wherein the one or more sampling cycles includes a first sampling cycle and a second sampling cycle,

wherein a first sample of current is captured at a first sampling point in the first sampling cycle, and

wherein a first sample of voltage is captured at a corresponding first sampling point in the second sampling cycle.

2 . The method of claim 1 , wherein each sample of current is obtained by measuring a current flowing in the resonant circuit, and each of sample of voltage is obtained by measuring a voltage across the one or more power transmitting coils.

3 . The method of claim 1 , wherein samples of current and voltage are captured simultaneously at each sampling point in the plurality of sampling points in a single sampling cycle.

4 . A method for operating a wireless charging device, comprising:

providing a charging current to a resonant circuit that includes one or more power transmitting coils in a charging surface of a wireless charging device;

determining an average transmitted power using samples of current and voltage captured from the resonant circuit;

determining that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the wireless charging device;

providing a root clock signal having a root clock frequency;

dividing the root clock frequency by a first integer to obtain a sampling clock frequency that determines frequency of a sampling cycle in which the samples of current and voltage captured from the resonant circuit; and

dividing the root clock signal by a second integer to obtain a charging clock frequency that controls frequency of the charging current, wherein the first integer and the second integer have a largest common divisor of 1.

5 . The method of claim 1 , wherein the parasitic losses are attributable to metallic or magnetically permeable components of the wireless charging device.

6 . A charging device, comprising:

a resonant circuit comprising one or more power transmitting coils in a charging surface of the charging device;

a driver circuit configured to provide a charging current to the resonant circuit; and

a controller configured to:

determine an average transmitted power using samples of current and voltage captured from the resonant circuit; and

determine that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the charging device; and

one or more analog-to-digital converters (ADC) configured to capture the samples of current and voltage based on one or more sampling cycles having a period that spans a plurality of periods of a cycle of the charging current, wherein each sampling cycle includes a plurality of sampling points,

wherein each of the plurality of sampling points occurs at a different phase of the cycle of the charging current than each of the other samples in the plurality of sampling points, and

wherein the one or more ADCs comprise a single ADC configured to:

capture a first sample of current at a first sampling point in a first sampling cycle; and

capture a first sample of voltage at a corresponding first sampling point in a second sampling cycle.

7 . The charging device of claim 6 , wherein each sample of current is obtained by measuring a current flowing in the resonant circuit, and each of sample of voltage is obtained by measuring a voltage across the one or more power transmitting coils.

8 . The charging device of claim 6 , wherein the one or more ADCs comprise:

a first ADC configured to capture a first sample of current at a first sampling point in a first sampling cycle; and

a second ADC configured to capture a first sample of voltage at the first sampling point in the first sampling cycle.

9 . A charging device comprising:

a resonant circuit comprising one or more power transmitting coils in a charging surface of the charging device;

a driver circuit configured to provide a charging current to the resonant circuit; and

a controller configured to:

determine an average transmitted power using samples of current and voltage captured from the resonant circuit; and

determine that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the charging; and

a clock generating circuit configured to:

divide a root clock frequency by a first integer to obtain a sampling clock frequency that determines frequency of a sampling cycle in which the samples of current and voltage captured from the resonant circuit; and

divide the root clock frequency by a second integer to obtain a charging clock frequency that controls frequency of the charging current, wherein the first integer and the second integer have a largest common divisor of 1.

10 . The charging device of claim 6 , wherein the parasitic losses are attributable to metallic or magnetically permeable components of the charging device.

11 . A non-transitory processor-readable storage medium having instructions stored thereon which, when executed by at least one processor in a charging device, cause the processor to:

cause a charging current to be provided to a resonant circuit that includes one or more power transmitting coils in a charging surface of a wireless charging device;

determine an average transmitted power using samples of current and voltage captured from the resonant circuit;

determine that a foreign object is located on or near the charging surface when the average transmitted power exceeds a measurement of received power provided by a receiving device and parasitic losses associated with the wireless charging device; and

capture the samples of current and voltage in a first sampling cycle and a second sampling cycle, each sampling cycle having a period that spans a plurality of periods of a cycle of the charging current,

wherein each sampling cycle includes a plurality of sampling points occurring at mutually different phases of the cycle of the charging current, and

wherein a first sample of current is captured at the first sampling point and a first sample of voltage is captured at a corresponding first sampling point in the second sampling cycle.

12 . The non-transitory processor-readable storage medium of claim 11 , wherein the instructions cause the processor to:

capture the samples of current and voltage in a single sampling cycle that has a period spanning a plurality of periods of a cycle of the charging current,

wherein each sampling cycle includes a plurality of sampling points occurring at mutually different phases of the cycle of the charging current, and

wherein samples of current and voltage are captured simultaneously at each sampling point in the plurality of sampling points in a single sampling cycle.

13 . The non-transitory processor-readable storage medium of claim 11 , wherein the instructions cause the processor to:

divide a root clock frequency by a first integer to obtain a sampling clock frequency that determines frequency of a sampling cycle in which the samples of current and voltage captured from the resonant circuit; and

divide the root clock frequency by a second integer to obtain a charging clock frequency that controls frequency of the charging current, wherein the first integer and the second integer have a largest common divisor of 1.

Assignments (2)
EMPLOYMENT AGREEMENT Recorded Nov 2, 2023
From: GOODCHILD, ERIC
To: AIRA, INC.
Reel/Frame 065432/0042 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2022
From: TOKALDANI, MOHAMMAD ALI SAKET
To: AIRA, INC.
Reel/Frame 060837/0636 →
Continuity (2)
Provisional Application 63233716 · Aug 16, 2021
Related Publication 20230053186A1 · Feb 16, 2023
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