IP Library › Granted Patent US 12,592,590
Granted Patent B2
US 12,592,590 · App. 18/502,741 · Granted Mar 31, 2026

Automatic gain control for communications demodulation in wireless power transmitters

Inventors: Vikas Kasireddy (Chicago, IL); Alberto Peralta (Chicago, IL); Michael Katz (Glen Ellyn, IL); Md. Nazmul Alam (Glendale Heights, IL)
Assignee: NuCurrent, Inc.
H02J50/80H02J50/12H04B5/26H04B5/79H02J50/60
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Quick Facts
Patent No.
US 12,592,590
App. No.
18/502,741
Granted
Mar 31, 2026
Kind
B2
Abstract

A demodulation circuit includes a slope detector circuit and a comparator circuit. The slope detector circuit is configured detect a change in the voltage and determine if the voltage rate of change meets or exceeds one of a rise threshold or a fall threshold. The comparator circuit is configured to set an upper limit and lower limit for rate of change, compare the voltage rate of change to the limits, determine that the voltage rate of change meets or exceeds the limits, if the voltage rate of change meets or exceeds the rising and falling rate of change limits, (v) set a lower limit for a falling rate of change, (vi) receive the voltage rate of change and determine that the voltage rate of change meets or exceeds the fall or rise threshold, if the voltage rate of change meets or exceeds the falling or rising rate of change.

Claims (30)

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

a transmission antenna configured to (i) receive an AC signal, (ii) generate an alternating electromagnetic field for delivering the wireless power to the wireless power receiver system, and (iii) couple with the receiver antenna via the alternating electromagnetic field;

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 receiver system modifying the alternating electromagnetic field;

a demodulation circuit configured to:

receive, as input from the at least one sensor, detected modifications to the voltage of the AC signal;

based on the detected modifications to the voltage of the AC signal, detect a change in a voltage of a wireless power signal that is indicative of incoming data in-band of the AC signal;

based on detecting the change in the voltage of the wireless power signal that is indicative of incoming data in-band of the AC signal, set a threshold for change in voltage by providing instructions to a first digital potentiometer, the threshold for change in voltage indicative of a data alert;

determine if the change in the voltage meets or exceeds the threshold for change in voltage;

generate an alert if the change in the change in voltage meets or exceeds the threshold for change in voltage; and

output a plurality of data alerts, the plurality of data alerts indicative of the incoming data in-band of the AC signal that is related to operations of the wireless power receiver system that is coupled with the wireless power transmission system

a transmitter controller configured to (i) receive the plurality of data alerts that includes and (ii) decode the plurality of alerts to decode a data signal represented by the wireless power receiver system modifying the alternating electromagnetic field.

2 . The wireless power transmission system of claim 1 , wherein the sensor comprises a current sensor.

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

4 . The wireless power transmission system of claim 3 , wherein the slope detector circuit comprises a high pass filter.

5 . The wireless power transmission system of claim 4 , wherein a cutoff frequency for the high pass filter is greater than or equal to about 1 kilohertz (kHz).

6 . The wireless power transmission system of claim 3 , wherein the slope detector circuit comprises an operational amplifier.

7 . The wireless power transmission 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 meets or exceeds the threshold for change in voltage.

8 . The wireless power transmission system of claim 7 , wherein the demodulation circuit comprises a set/reset (SR) latch in operative communication with the comparator circuit.

9 . The wireless power transmission system of claim 1 , wherein the demodulation circuit is implemented as a discrete circuit independent of the transmitter controller.

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

11 . The wireless power transmission system of claim 1 , wherein the transmitter controller is external to the demodulation circuit.

12 . The wireless power transmission system of claim 1 , wherein the demodulation circuit is further configured to receive limit information for setting the threshold for change in voltage.

13 . The wireless power transmission system of claim 12 , wherein the first digital potentiometer has a first variable resistance (R U1 ), wherein R U1 is changeable to set the threshold for change in voltage.

14 . The wireless power transmission system of claim 13 , wherein R U1 is based on the voltage of the AC signal, and wherein the limit information includes a value to set R U1 .

15 . The wireless power transmission system of claim 1 , wherein the transmission antenna is configured to operate at an operating frequency of about 6.78 megahertz (MHz).

16 . The wireless power transmission system of claim 1 , wherein the transmission antenna is configured generate the alternating electromagnetic field for delivering the wireless power to the wireless power receiver system that utilizes the wireless power to power a load associated with a host device.

17 . The wireless power transmission system of claim 16 , wherein the host device is a computer peripheral.

18 . The wireless power transmission system of claim 16 , wherein the host device is a medical device.

19 . The wireless power transmission system of claim 18 , wherein the medical device is an implantable medical device, and

wherein the wireless power transmission system is configured to deliver the wireless power to the wireless power receiver system when the wireless power receiver system is within a human body.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 7, 2024
From: KASIREDDY, VIKAS; PERALTA, ALBERTO; KATZ, MICHAEL; ALAM, MD. NAZMUL
To: NUCURRENT, INC.
Reel/Frame 068818/0337 →
Continuity (2)
Continuation 17164538 · Feb 1, 2021
Related Publication 20240291327A1 · Aug 29, 2024
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