IP Library Granted Patent US 12,415,428
Granted Patent B2
US 12,415,428 · App. 18/674,473 · Granted Sep 16, 2025

Device authentication for wireless charging

Inventor: Benjamin Waters (Kirkland, WA)
Assignee: WiBotic Inc.
B60L53/12B60L53/60B64U50/19B64U50/38H02J50/10B60L2200/10B64U10/14G01S19/13H02J7/00034H02J7/00045H02J50/80
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Quick Facts
Patent No.
US 12,415,428
App. No.
18/674,473
Granted
Sep 16, 2025
Kind
B2
Abstract

An authentication between a wireless charger and a device configured to receive wireless energy from the wireless charger includes establishing a wireless data channel between the wireless charger and the device. An authentication challenge signal is driven onto a transmit charging coil of the wireless charger and a receive charging coil of the device is configured to receive the authentication challenge signal. The device sends an authentication response signal to the wireless charger based at least in part on the authentication challenge signal.

Claims (36)

1. A wireless charger comprising:

a charger communication interface to wirelessly couple with an unmanned autonomous vehicle via a first communication channel, and to broadcast charging data to the unmanned autonomous vehicle via the first communication channel;

a transmit charging coil to transmit wireless energy via a second communication channel to the unmanned autonomous vehicle;

a processing logic configured to:

drive an authentication challenge signal to the transmit charging coil, the authentication challenge signal to be wirelessly transmitted to a receive charging coil of the unmanned autonomous vehicle via the second communication channel;

receive an authentication response signal from the unmanned autonomous vehicle via the second communication channel;

in response to receiving the authentication response signal, identify one or both of current and voltage values included in the authentication response signal;

determine whether the identified one or both of the current and voltage values are within a pre-defined range; and

in response to determining that the identified one or both of the current and voltage values are within the pre-defined range, initiating wireless power transfer to the receive charging coil.

2. The wireless charger of claim 1 , wherein a frequency range of the first communication channel includes a center frequency of 400 MHZ, 915 MHz, or 2.4 GHz.

3. The wireless charger of claim 1 , wherein the second communication channel includes a frequency range of 13.56 MHz+/−7 kHz, 6.78 MHz+/−15 kHz, or 80-250 kHz.

4. The wireless charger of claim 1 , wherein the authentication challenge signal is encoded with authentication data, wherein the authentication data is decoded with the identified one or both of the current and voltage values within the pre-defined range.

5. The wireless charger of claim 1 , wherein the identified one or both of the current and voltage values are measured voltage and current supplied to a battery of the unmanned autonomous vehicle from the receive charging coil.

6. The wireless charger of claim 1 , further comprising a driver configured to generate a reference frequency signal, wherein the processing logic is further configured to modulate the authentication challenge signal, prior to driving the authentication challenge signal to the transmit charging coil, at a duty cycle defined by the reference frequency signal.

7. The wireless charger of claim 1 , wherein the authentication challenge signal comprises a digital symbol.

8. The wireless charger of claim 1 , wherein the wireless charger is configured to charge a quadcopter, and wherein the unmanned autonomous vehicle is a quadcopter.

9. The wireless charger of claim 1 , wherein the charging data comprise location data of the wireless charger, the location data broadcasted to the unmanned autonomous vehicle to provide a location of the wireless charger to be utilized for navigating the unmanned autonomous vehicle to the wireless charger.

10. The wireless charger of claim 1 , wherein the processing logic of the wireless charger is further configured to transmit an initial wireless energy comprising the authentication challenge signal, and wherein the initial wireless energy is to be received at the receive charging coil and supplied to a battery of the unmanned autonomous vehicle.

11. A wireless charger comprising:

a charger communication interface to wirelessly couple with a fleet of unmanned autonomous vehicles via a first communication channel, the charger communication interface broadcasting charging data to the fleet of unmanned autonomous vehicles via the first communication channel;

a transmit charging coil to transmit wireless energy via a second wireless communication channel to an unmanned autonomous vehicle among the fleet that received the broadcasted charging data; and

a processing logic configured to:

drive an authentication challenge signal to the transmit charging coil, the authentication challenge signal to be wirelessly transmitted to a receive charging coil of the unmanned autonomous vehicle via the second communication channel;

receive an authentication response signal from the unmanned autonomous vehicle via the first communication channel, the received authentication response signal encoded with binary codes;

in response to receiving the authentication response signal, identify one or both of current and voltage values by decoding the binary codes;

determine whether the identified one or both of the current and voltage values are within a pre-defined range; and

in response to determining that the identified one or both of the current and voltage values are within the pre-defined range, initiating wireless power transfer to the receive charging coil via the second communication channel.

12. The wireless charger of claim 11 , wherein a frequency range of the first communication channel includes a center frequency of 400 MHz, 915 MHz, or 2.4 GHz.

13. The wireless charger of claim 11 , wherein the second communication channel includes a frequency range of 13.56 MHz+/−7 kHz, 6.78 MHz+/−15 kHz, or 80-250 kHz.

14. The wireless charger of claim 11 , wherein the broadcasted charging data comprise location data of the wireless charger, wherein the charging data is utilized as a destination information of the unmanned autonomous vehicle.

15. The wireless charger of claim 11 , wherein the identified one or both of the current and voltage values are measured voltage and current supplied to charge a battery of the unmanned autonomous vehicle via the receive charging coil.

16. The wireless charger of claim 11 , further comprising a driver configured to generate a reference frequency signal, wherein the processing logic is further configured to modulate the authentication challenge signal, prior to driving the authentication challenge signal to the transmit charging coil, at a reference frequency and a duty cycle defined by the reference frequency signal.

17. The wireless charger of claim 11 , wherein the authentication challenge signal comprises a digital symbol.

18. The wireless charger of claim 11 , wherein the wireless charger is configured to charge a quadcopter, and wherein the unmanned autonomous vehicle is a quadcopter.

19. The wireless charger of claim 11 , wherein the processing logic of the wireless charger is further configured to transmit an initial wireless energy comprising the authentication challenge signal, and wherein the initial wireless energy is to be received at the receive charging coil and supplied to a battery of the unmanned autonomous vehicle.

20. The wireless charger of claim 11 , wherein the charging data comprises a location of the charger, identification information of the charger, and current status of the charger.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 17, 2025
From: WATERS, BENJAMIN
To: WIBOTIC INC.
Reel/Frame 071440/0543 →
Continuity (3)
Continuation 18335738 · Jun 15, 2023
Continuation 15844124 · Dec 15, 2017
Related Publication 20240408983A1 · Dec 12, 2024
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