IP Library › Granted Patent US 12,633,782
Granted Patent B2
US 12,633,782 · App. 19/310,831 · Granted May 19, 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.
H02J50/80H02J7/00711H02J7/007192H02J50/10
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Quick Facts
Patent No.
US 12,633,782
App. No.
19/310,831
Granted
May 19, 2026
Kind
B2
Abstract

A charging apparatus for a wearable device includes a transmitter-side antenna and a transmitter-side control system. The transmitter-side control system is configured to (i) during a first period of time that is prior to the wearable device entering an increased-temperature state, drive the transmitter-side antenna to emit an alternating electromagnetic field for delivering wireless power to the wearable device and (ii) during a second period of time when the wearable device is in the increased-temperature state, toggle between power-on and power-off sub-periods for driving the transmitter-side antenna. During each power-on sub-period, the transmitter-side antenna is driven to emit the alternating electromagnetic field for delivering wireless power to the wearable device. During each power-off sub-period, the transmitter-side antenna is not driven to emit the alternating electromagnetic field for delivering wireless power to the wearable device.

Claims (72)

1 . A charging apparatus for a wearable device that includes a battery, the charging apparatus comprising:

a transmitter-side antenna; and

a transmitter-side control system that is configured to perform a set of functions comprising:

during a first period of time that is prior to the wearable device entering an increased-temperature state, driving the transmitter-side antenna to emit an alternating electromagnetic field for delivering wireless power to the wearable device; and

during a second period of time when the wearable device is in the increased-temperature state, toggling between power-on and power-off sub-periods for driving the transmitter-side antenna, wherein (i) during each power-on sub-period, the transmitter-side antenna is driven to emit the alternating electromagnetic field for delivering wireless power to the wearable device and (ii) during each power-off sub-period, the transmitter-side antenna is not driven to emit the alternating electromagnetic field for delivering wireless power to the wearable device.

2 . The charging apparatus of claim 1 , wherein the increased-temperature state of the wearable device comprises a state in which a surface temperature of the wearable device exceeds a temperature threshold.

3 . The charging apparatus of claim 2 , wherein the temperature threshold comprises a temperature value in a range of about 45 degrees Celsius to about 60 degrees Celsius.

4 . The charging apparatus of claim 1 , wherein, during each of at least a subset of the power-off sub-periods, a surface temperature of the wearable device decreases from a higher temperature level at a beginning of the power-off sub-period to a lower temperature level at an end of the power-off sub-period.

5 . The charging apparatus of claim 1 , wherein the set of functions further comprises:

receiving, via the transmitter-side antenna from the wearable device, a series of instructions for altering wireless power behavior of the charging apparatus that are sent by the wearable device based on temperature measurements captured by the wearable device, and

wherein the transmitter-side control system is configured to toggle between the power-on and power-off sub-periods for driving the transmitter-side antenna based on the received series of instructions.

6 . The charging apparatus of claim 1 , wherein the power-on sub-periods have a first substantially-consistent duration with one another, the power-off sub-periods have a second substantially-consistent duration with one another, and the first substantially-consistent duration is substantially similar to the second substantially-consistent duration.

7 . The charging apparatus of claim 1 , wherein the set of functions further comprises:

after the wearable device has exited the increased-temperature state, driving the transmitter-side antenna to emit the alternating electromagnetic field for delivering wireless power to the wearable device without toggling between power-on and power-off sub-periods.

8 . The charging apparatus of claim 1 , wherein:

during the first period of time, driving the transmitter-side antenna to emit the alternating electromagnetic field for delivering wireless power to the wearable device comprises outputting, continuously during an entire duration of the first period of time, an alternating current (AC) drive signal that drives the transmitter-side antenna to emit the alternating electromagnetic field for delivering wireless power to the wearable device; and

during the second period of time, toggling between the power-on and power-off sub-periods for driving the transmitter-side antenna comprises toggling between (i) outputting, continuously during an entire duration of each power-on sub-period, the AC drive signal that drives the transmitter-side antenna to emit the alternating electromagnetic field for delivering wireless power to the wearable device, and (ii) disabling, during at least a portion of each power-off sub-period, the AC drive signal that drives the transmitter-side antenna to emit the alternating electromagnetic field for delivering wireless power to the wearable device.

9 . The charging apparatus of claim 1 , wherein the set of functions further comprises:

during at least a subset of the power-off sub-periods, driving the transmitter-side antenna to wirelessly communicate with the wearable device by outputting, during each of the subset of the power-off sub-periods, at least one communication-only alternating current (AC) drive signal that drives the transmitter-side antenna to emit a communication-only alternating electromagnetic field for delivering wireless communication but not wireless power to the wearable device.

10 . The charging apparatus of claim 1 , wherein the set of functions further comprises:

during at least a subset of the power-on sub-periods, driving the transmitter-side antenna to wirelessly communicate with the wearable device.

11 . The charging apparatus of claim 10 , wherein the wireless communication with the wearable device comprises in-band data signals from the charging apparatus to the wearable device, and wherein each of at least a subset of the in-band data signals (i) is formatted in accordance with a wireless power and data transfer protocol and (ii) carries respective embedded data originating from the charging apparatus that is formatted in accordance with a data communication protocol different from the wireless power and data transfer protocol.

12 . The charging apparatus of claim 1 , wherein the wireless power is delivered in accordance with a Near Field Communication (NFC) Wireless Charging protocol.

13 . The charging apparatus of claim 1 , wherein the transmitter-side control system comprises:

at least one processor;

at least one non-transitory computer readable medium; and

executable code stored on the at least one non-transitory computer readable medium that, when executed by the at least one processor, causes the transmitter-side control system to perform the set of functions.

14 . A wearable device comprising:

a battery;

a receiver-side antenna; and

a receiver-side control system that is configured to perform a set of functions comprising:

during a first period of time that is prior to the wearable device entering an increased-temperature state, receiving wireless power from a charging apparatus via an alternating electromagnetic field that is emitted by the charging apparatus; and

during a second period of time when the wearable device is in the increased-temperature state, receiving wireless power from the charging apparatus in accordance with toggling power-on and power-off sub-periods, wherein (i) during each power-on sub-period, the alternating electromagnetic field is emitted by the charging apparatus and detected by the wearable device via the receiver-side antenna and (ii) during each power-off sub-period, the alternating electromagnetic field is not emitted by the charging apparatus and not detected by the wearable device via the receiver-side antenna.

15 . The wearable device of claim 14 , wherein the increased-temperature state of the wearable device comprises a state in which a surface temperature of the wearable device exceeds a temperature threshold.

16 . The wearable device of claim 14 , wherein, during each of at least a subset of the power-off sub-periods, a surface temperature of the wearable device decreases from a higher temperature level at a beginning of the power-off sub-period to a lower temperature level at an end of the power-off sub-period.

17 . The wearable device of claim 14 , wherein the set of functions further comprises:

transmitting, to the charging apparatus, a series of instructions for altering wireless power behavior of the charging apparatus that are based on temperature measurements captured by the wearable device, and

wherein the toggling power-on and power-off sub-periods is based on the transmitted series of instructions.

18 . The wearable device of claim 14 , wherein the power-on sub-periods have a first substantially-consistent duration with one another, the power-off sub-periods have a second substantially-consistent duration with one another, and the first substantially-consistent duration is substantially similar to the second substantially-consistent duration.

19 . The wearable device of claim 14 , wherein the set of functions further comprises:

after the wearable device has exited the increased-temperature state, receiving wireless power from the charging apparatus via the alternating electromagnetic field for delivering wireless power to the wearable device that is emitted by the charging apparatus without toggling between power-on and power-off sub-periods.

20 . The wearable device of claim 14 , wherein the set of functions further comprises:

during at least a subset of the power-off sub-periods, wirelessly communicating with the charging apparatus by detecting, during each of the subset of the power-off sub-periods, at least one communication-only alternating electromagnetic field for delivering wireless communication but not wireless power to the wearable device that is emitted by the charging apparatus.

21 . The wearable device of claim 14 , wherein the set of functions further comprises:

during at least a subset of the power-on sub-periods, wirelessly communicating with the charging apparatus by detecting, during each of the subset of the power-on sub-periods, at least one respective change to the alternating electromagnetic field being emitted by the charging apparatus that is representative of a respective wireless communication.

22 . The wearable device of claim 21 , wherein the respective wireless communication comprises in-band data signals, and wherein each of at least a subset of the in-band data signals (i) is formatted in accordance with a wireless power and data transfer protocol and (ii) carries respective embedded data originating from the charging apparatus that is formatted in accordance with a data communication protocol different from the wireless power and data transfer protocol.

23 . The wearable device of claim 14 , wherein the wireless power is delivered in accordance with a Near Field Communication (NFC) Wireless Charging protocol.

24 . A wireless transfer system comprising:

a wearable device that includes a battery; and

a charging apparatus for the wearable device,

wherein the charging apparatus is configured to:

during a first period of time that is prior to the wearable device entering an increased-temperature state, emit an alternating electromagnetic field for delivering wireless power to the wearable device; and

during a second period of time when the wearable device is in the increased-temperature state, toggle between power-on and power-off sub-periods for delivering wireless power to the wearable device, wherein (i) during each power-on sub-period, the charging apparatus emits the alternating electromagnetic field for delivering wireless power to the wearable device and (ii) during each power-off sub-period, the charging apparatus does not emit the alternating electromagnetic field for delivering wireless power to the wearable device; and

wherein the wearable device is configured to:

during the first period of time, receive wireless power from the charging apparatus via the alternating electromagnetic field that is emitted by the charging apparatus; and

during the second period of time, receive wireless power from the charging apparatus in accordance with the toggling power-on and power-off sub-periods.

25 . The wireless transfer system of claim 24 , wherein, during each of at least a subset of the power-off sub-periods, a surface temperature of the wearable device decreases from a higher temperature level at a beginning of the power-off sub-period to a lower temperature level at an end of the power-off sub-period.

26 . The wireless transfer system of claim 24 ,

wherein the wearable device is further configured to transmit, to the charging apparatus, a series of instructions for altering wireless power behavior of the charging apparatus that are based on temperature measurements captured by the wearable device;

wherein the charging apparatus is further configured to receive, from the wearable device, the series of instructions for altering the wireless power behavior of the charging apparatus; and

wherein the toggling power-on and power-off sub-periods for delivering wireless power to the wearable device are based on the received series of instructions.

27 . The wireless transfer system of claim 24 ,

wherein the charging apparatus is further configured to wirelessly communicate with the wearable device during at least a subset of the power-off sub-periods; and

wherein the wearable device is further configured to wirelessly communicate with the charging apparatus during at least the subset of the power-off sub-periods.

28 . A method carried out by a charging apparatus for a wearable device that includes a battery, the method comprising:

during a first period of time that is prior to the wearable device entering an increased-temperature state, emitting an alternating electromagnetic field for delivering wireless power to the wearable device; and

during a second period of time when the wearable device is in the increased-temperature state, toggling between power-on and power-off sub-periods for delivering wireless power to the wearable device, wherein (i) during each power-on sub-period, the charging apparatus emits the alternating electromagnetic field for delivering wireless power to the wearable device and (ii) during each power-off sub-period, the charging apparatus does not emit the alternating electromagnetic field for delivering wireless power to the wearable device.

29 . The method of claim 28 , further comprising:

receiving, from the wearable device, a series of instructions for altering wireless power behavior of the charging apparatus that are based on temperature measurements captured by the wearable device; and

wherein the toggling between the power-on and power-off sub-periods is based on the series of instructions.

30 . The method of claim 28 , further comprising:

during at least a subset of the power-off sub-periods, wirelessly communicating with the wearable device by emitting, during each of the subset of the power-off sub-periods, at least one communication-only alternating electromagnetic field for delivering wireless communication but not wireless power to the wearable device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 24, 2025
From: GREEN, JASON; MELONE, MARK D.; LUZINSKI, JASON; KATZ, MICHAEL
To: NUCURRENT, INC.
Reel/Frame 072367/0314 →
Continuity (4)
Continuation 19043156 · Jan 31, 2025
Continuation 18437984 · Feb 9, 2024
Continuation 17944081 · Sep 13, 2022
Related Publication 20250379476A1 · Dec 11, 2025
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