IP Library › Granted Patent US 12,562,605
Granted Patent B2
US 12,562,605 · App. 18/487,473 · Granted Feb 24, 2026

Low cost communications demodulation for wireless power receiver system

Inventors: Alberto Peralta (Chicago, IL); Michael Katz (Glen Ellyn, IL); Md. Nazmul Alam (Glendale Heights, IL)
Assignee: NuCurrent, Inc.
H02J50/80H02J50/12H04B5/79H04L27/06H04B5/26
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Quick Facts
Patent No.
US 12,562,605
App. No.
18/487,473
Granted
Feb 24, 2026
Kind
B2
Abstract

A wireless receiver system includes a receiver antenna, a sensor, a demodulation circuit, and a receiver controller. The sensor is configured to detect electrical information associated with AC wireless signals, the electrical information including, at least, a voltage of the AC wireless signals. The demodulation circuit is configured to receive the electrical information from the at least one sensor, detect a change in the electrical information, determine if the change in the electrical information meets or exceeds one of a rise threshold or a fall threshold, if the change exceeds one of the rise threshold or the fall threshold, generate an alert, and output a plurality of data alerts. The receiver controller is configured to receive the plurality of data alerts from the demodulation circuit, and decode the plurality of data alerts into the wireless data signals.

Claims (27)

1 . A wireless power receiver system that is configured to receive wireless power from a wireless power transmission system comprising a transmitter antenna, the wireless power receiver system comprising:

a receiver antenna configured to (i) couple with the transmitter antenna via an alternating electromagnetic field that is (a) generated by the wireless power transmission system and (b) for delivering the wireless power to the wireless power receiver system, (ii) based on the alternating electromagnetic field, generate an AC signal, and (iii) output the AC signal;

at least one sensor configured to monitor the AC signal to detect modifications to a voltage of the AC signal, the detected modifications to the voltage of the AC signal caused by the wireless power transmission system modifying the alternating electromagnetic field;

a demodulation circuit configured to (i) receive one or more indications of the voltage of the AC signal from the at least one sensor, (ii) monitor the one or more indications of the voltage of the AC signal to detect change in the voltage of the AC signal, wherein the change in the voltage of the AC signal is caused by the wireless power transmission system modifying the alternating electromagnetic field, (iii) determine if the change in the voltage of the AC signal meets or exceeds at least one threshold, (iv) generate an alert if the change in the voltage of the AC signal meets or exceeds the at least one threshold, and (v) output the alert;

a receiver controller configured to (i) receive a plurality of alerts that includes the alert from the demodulation circuit and (ii) decode the plurality of alerts to decode a data signal represented by the wireless power transmission system modifying the alternating electromagnetic field; and

a rectifier configured to (i) receive the AC signal as output by the receiver antenna and (ii) convert the AC signal to a direct current (DC) power signal.

2 . The wireless power receiver system of claim 1 , wherein the at least one a sensor is integrated within the receiver controller.

3 . The wireless power receiver system of claim 1 , wherein the at least one sensor comprises a current sensor.

4 . The wireless power receiver system of claim 1 , wherein the wireless power further comprises a carrier for wireless data signals.

5 . The wireless power receiver system of claim 4 , wherein the wireless data signals are encoded as amplitude shift keying (ASK) data signals.

6 . The wireless power receiver system of claim 4 , wherein the wireless data signals are encoded as pulse width encoded data signals.

7 . The wireless power receiver system of claim 1 , wherein the at least one threshold comprises a rise threshold or a fall threshold.

8 . The wireless power receiver system of claim 7 , wherein the rise threshold is associated with a high threshold voltage of the AC signal and the fall threshold is associated with a low threshold voltage of the AC signal.

9 . The wireless power receiver system of claim 1 ,

wherein determining if a change in the voltage of the AC signal meets or exceeds the at least one threshold comprises (i) determining if the change in the voltage of the AC signal meets or exceeds a rise threshold, and (ii) determining if the change in the voltage of the AC signal meets or exceeds a fall threshold; and

wherein generating an alert if the change in the voltage of the AC signal meets or exceeds the at least one threshold comprises generating an alert if the change in the voltage of the AC signal meets or exceeds the rise threshold or the fall threshold.

10 . The wireless power receiver system of claim 1 , wherein the rectifier is further configured to deliver the DC power signal to power a load associated with a host device.

11 . The wireless power receiver system of claim 10 , wherein the host device is a computer peripheral.

12 . The wireless power receiver system of claim 1 , wherein the demodulation circuit comprises a slope detector circuit that is configured to detect the change in the voltage of the AC signal.

13 . The wireless power receiver system of claim 12 , wherein the slope detector circuit comprises a high pass filter.

14 . The wireless power receiver system of claim 13 , wherein a cutoff frequency for the high pass filter is greater than or equal to about 1 kHz.

15 . The wireless power receiver system of claim 12 , wherein the slope detector circuit comprises an operational amplifier.

16 . The wireless power receiver system of claim 1 , wherein the demodulation circuit comprises a comparator circuit that is configured to at least determine if the change in the voltage of the AC signal meets or exceeds the threshold.

17 . The wireless power receiver system of claim 16 , wherein the demodulation circuit comprises a set/reset (SR) latch in operative communication with the comparator circuit.

18 . The wireless power receiver system of claim 1 , wherein the demodulation circuit is an analog circuit.

19 . The wireless power receiver system of claim 1 , wherein the demodulation circuit is implemented as an integrated circuit.

20 . The wireless power receiver system of claim 1 , wherein the demodulation circuit is an analog circuit independent of the receiver controller.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 16, 2024
From: PERALTA, ALBERTO; KATZ, MICHAEL; ALAM, MD. NAZMUL
To: NUCURRENT, INC.
Reel/Frame 067119/0504 →
Continuity (3)
Continuation 17717702 · Apr 11, 2022
Continuation 16938630 · Jul 24, 2020
Related Publication 20240223024A1 · Jul 4, 2024
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