IP Library › Granted Patent US 12,689,245
Granted Patent B2
US 12,689,245 · App. 19/043,156 · Granted Jul 21, 2026

Software based thermal mitigation for wireless power and data transfer systems

Inventors: Jason Green (Evanston, IL); Mark D. Melone (Frankfort, IL); Jason Luzinski (Chicago, IL); Michael Katz (Glen Ellyn, IL)
Assignee: NuCurrent, Inc.
H02J50/80H02J7/927H02J7/975H02J50/10
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Quick Facts
Patent No.
US 12,689,245
App. No.
19/043,156
Filed
Jan 31, 2025
Granted
Jul 21, 2026
Kind
B2
Art Unit
2836
USPC
307/104
Abstract

A method for operating a wireless power transfer system includes determining a driving signal for transfer of the AC wireless signals, the driving signals based on an operating frequency for the AC wireless signals, a power requirement for the wireless power signals, data contained in the wireless data signals, and one or more thermal mitigation features. Each of the one or more thermal mitigation features are configured to reduce temperature of at least one surface or volume of the wireless transmission system or the wireless receiver system. The method further includes providing the driving signal to an amplifier of the wireless power transmission system and driving a transmitter antenna of the wireless power transmission system, by the amplifier, based on the driving signal.

Claims (61)

1 . A wireless power transmitter comprising:

a transmitter antenna configured to (i) couple with wireless power receivers and (ii) transfer power wirelessly to the wireless power receivers;

an amplifier configured to drive the transmitter antenna based on a driving signal;

at least one processor;

at least one non-tangible machine-readable medium; and

executable code stored on the at least one non-tangible machine-readable medium that, when executed by the at least one processor, cause the wireless power transmitter to:

detect that a given wireless power receiver that is couplable with the wireless power transmitter;

if the given wireless power receiver is couplable with the wireless power transmitter, receive a message from the given wireless power receiver;

if the message comprises a request for wireless power transfer from the wireless transmitter, configure driving signals for wireless power transfer to the given wireless power receiver;

based on the driving signals, utilize the amplifier to drive the transmitter antenna and thereby generate wireless power signals that transfer power to the wireless power receiver;

while generating the wireless power signals, determine a temperature related to the wireless power transmitter;

if the temperature meets or exceeds a threshold temperature, reconfigure the driving signals such that the driving signals are configured to produce a plurality of pulses and a plurality of power-signal-off periods; and

based on the reconfigured driving signals, utilize the amplifier to drive the transmitter antenna and thereby generate reconfigured wireless power signals that comprise the plurality of pulses and the plurality of power-signal-off periods.

2 . The wireless power transmitter of claim 1 , wherein each of the plurality of pulses and the plurality of power-signal-off periods are configured in accordance with a pulsed power protocol.

3 . The wireless power transmitter of claim 1 , wherein each pulse of the plurality of pulses has a pulse-on time and each signal-off period of the plurality of power-signal-off periods has a signal-off time, and

wherein the pulse-on time and the signal-off time are in a range of about 30 seconds(s) to about 90 s.

4 . The wireless power transmitter of claim 1 , wherein the plurality of power signal-off periods cause the temperature to not meet or exceed the threshold temperature.

5 . The wireless power transmitter of claim 1 , wherein the threshold temperature is in a range of about 25 degrees Celsius (“C”) to about 40 degrees C.

6 . The wireless power transmitter of claim 1 , further comprising a temperature sensor, and

wherein the executable code that, when executed by the at least one processor, cause the wireless power transmitter to determine a temperature related to the wireless power transmitter comprise executable code that, when executed by the at least one processor, cause the wireless power transmitter to:

using a sensor signal generated via the temperature sensor, determine a temperature related to the wireless power transmitter.

7 . The wireless power transmitter of claim 1 , wherein the executable code that, when executed by the at least one processor, cause the wireless power transmitter to reconfigure the driving signals based on a pulsed power protocol comprise executable code that, when executed by the at least one processor, cause the wireless power transmitter to:

determine a length of a first pulse of the plurality of pulses; and

if the length of the first pulse meets or exceeds a pulse-length threshold, insert, into the driving signals, a first power-signal-off period of the plurality of power-signal-off periods.

8 . The wireless power transmitter of claim 7 , wherein the executable code that, when executed by the at least one processor, cause the wireless power transmitter to reconfigure the driving signals based on a pulsed power protocol comprise executable code that, when executed by the at least one processor, cause the wireless power transmitter to:

insert, into the driving signals after the first power-signal-off period, a second pulse of the plurality of pulses.

9 . A non-transitory machine-readable medium having stored thereon executable code that, when executed by at least one processor, cause a wireless power transmitter to:

detect a wireless power receiver that is couplable with the wireless power transmitter;

if the wireless power receiver is couplable with the wireless power transmitter, receive a message from the wireless power receiver;

if the message comprises a request for wireless power transfer from the wireless transmitter, configure driving signals for wireless power transfer to the wireless power receiver;

based on the driving signals, utilize an amplifier to drive a transmitter antenna and thereby generate wireless power signals that transfer power to the wireless power receiver;

while generating the wireless power signals, determine a temperature related to the wireless power transmitter;

if the temperature meets or exceeds a threshold temperature, reconfigure the driving signals such that the driving signals are configured to produce a plurality of pulses and a plurality of power-signal-off periods; and

based on the reconfigured driving signals, utilize the amplifier to drive the transmitter antenna and thereby generate reconfigured wireless power signals that comprise the plurality of pulses and the plurality of power-signal-off periods.

10 . The non-transitory machine-readable medium of claim 9 , wherein the plurality of power signal-off periods cause the temperature to not meet or exceed the threshold temperature.

11 . The non-transitory machine-readable medium of claim 9 , wherein the executable code that, when executed by the at least one processor, cause the wireless power transmitter to reconfigure the driving signals based on a pulsed power protocol comprise executable code that, when executed by the at least one processor, cause the wireless power transmitter to:

determine a length of a first pulse of the plurality of pulses; and

if the length of the first pulse meets or exceeds a pulse-length threshold, insert, into the driving signals, a first power-signal-off period of the plurality of power-signal-off periods.

12 . The non-transitory machine-readable medium of claim 11 , wherein the executable code that, when executed by the at least one processor, cause the wireless power transmitter to reconfigure the driving signals based on a pulsed power protocol comprise executable code that, when executed by the at least one processor, cause the wireless power transmitter to:

insert, into the driving signals after the first power-signal-off period, a second pulse of the plurality of pulses.

13 . A method for operating a wireless power transmitter, the wireless power transmitter comprising (i) a transmitter antenna and (ii) an amplifier, the method comprising:

detecting a wireless power receiver that is couplable with the wireless power transmitter;

if the wireless power receiver is couplable with the wireless power transmitter, receiving a message from the wireless power receiver;

if the message comprises a request for wireless power transfer from the wireless transmitter, configuring driving signals for wireless power transfer to the wireless power receiver;

based on the driving signals, utilizing the amplifier to drive the transmitter antenna and thereby generate wireless power signals that transfer power to the wireless power receiver;

while generating the wireless power signals, determining a temperature related to the wireless power transmitter;

if the temperature meets or exceeds a threshold temperature, reconfiguring the driving signals such that the driving signals are configured to produce a plurality of pulses and a plurality of power-signal-off periods; and

based on the reconfigured driving signals, utilizing the amplifier to drive the transmitter antenna and thereby generate reconfigured wireless power signals that comprise the plurality of pulses and the plurality of power-signal-off periods.

14 . The method of claim 13 , wherein each of the plurality of pulses and the plurality of power-signal-off periods are configured in accordance with a pulsed power protocol.

15 . The method of claim 13 , wherein each pulse of the plurality of pulses has a pulse-on time and each signal-off period of the plurality of power-signal-off periods has a signal-off time, and

wherein the pulse-on time and the signal-off time are in a range of about 30 seconds(s) to about 90 s.

16 . The method of claim 13 , wherein the plurality of power signal-off periods cause the temperature to not meet or exceed the threshold temperature.

17 . The method of claim 13 , wherein the threshold temperature is in a range of about 25 degrees Celsius (“C”) to about 40 degrees C.

18 . The method of claim 13 , wherein the wireless power transmitter further comprises a temperature sensor, and

wherein determining a temperature related to the wireless power transmitter comprises:

using a sensor signal generated via the temperature sensor, determining a temperature related to the wireless power transmitter.

19 . The method of claim 13 , wherein reconfiguring the driving signals based on a pulsed power protocol comprises:

determining a length of a first pulse of the plurality of pulses; and

if the length of the first pulse meets or exceeds a pulse-length threshold, inserting, into the driving signals, a first power-signal-off period of the plurality of power-signal-off periods.

20 . The method of claim 19 , wherein reconfiguring the driving signals based on a pulsed power protocol comprises:

inserting, into the driving signals after the first power-signal-off period, a second pulse of the plurality of pulses.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2025
From: GREEN, JASON; MELONE, MARK D.; LUZINSKI, JASON; KATZ, MICHAEL
To: NUCURRENT, INC.
Reel/Frame 071419/0508 →
Continuity (3)
Continuation 18437984 · Feb 9, 2024
Continuation 17944081 · Sep 13, 2022
Related Publication 20250239895A1 · Jul 24, 2025
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