IP Library › Granted Patent US 11,937,082
Granted Patent B1
US 11,937,082 · App. 17/110,221 · Granted Mar 19, 2024

Secure electric vehicle charger and system incorporating thereof

Inventor: Nikhil Srinath Bharadwaj (Brooklyn, NY)
Assignee: EVE Energy Ventures Inc.
H04W12/068B60L53/665G05B15/02H04L9/3263H04L9/3271H04W12/03
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Quick Facts
Patent No.
US 11,937,082
App. No.
17/110,221
Filed
Dec 2, 2020
Granted
Mar 19, 2024
Kind
B1
Art Unit
2497
USPC
726/9
Abstract

A secure electric vehicle (EV) charger and system incorporating thereof is provided. One embodiment includes an EV charger. The EV charger includes a processor, a low power short range point-to-point communication system, and a memory containing an authentication software application. The processor is configured by the authentication software application to receive an authentication request from a mobile device via the low power short range point-to-point communication system, send encrypted EV charger access credentials to the mobile device, receive a digital token from the mobile device, verify the digital token, and initiate a charging session based upon a command contained within the digital token. The digital token may be encrypted using a public key and may be self-authenticating without use of an internet connection thus enabling secure charging without the presence of an internet connection.

Claims (57)

1. An electric vehicle (EV) charger, comprising:

a power management unit;

a processor;

a low power short range wireless point-to-point communication system; and

a memory containing an authentication software application;

wherein the processor is configured by the authentication software application to:

receive a tap to start session from a mobile device via the low power short range wireless point-to-point communication system, wherein receiving the tap to start session includes authenticating a first communication session with the mobile device;

send, from the tap to start session, encrypted EV charger access credentials to the mobile device;

receive, from the tap to start session, a digital token from the mobile device;

end the first communication session with the mobile device after receiving the digital token from the mobile device;

verify the digital token;

after the tap to start session has ended, initiate a charging session based upon a command contained within the digital token;

end the charging session;

store, in the memory, charging session data for the charging session;

receive a tap to end session from the mobile device via the low power short range wireless point-to-point communication system, wherein the tap to start session is separate from the tap to end session, wherein receiving the tap to end session comprises authenticating a second communication session with the mobile device, and wherein the second communication session is different from the first communication session; and

through the tap to end session, transfer the charging session data to the mobile device, wherein the charging session data is forwarded to a server when an internet connection is available on the mobile device.

2. The EV charger of claim 1 , wherein the memory further contains a digital certificate comprising cryptographic information.

3. The EV charger of claim 2 , wherein the authentication request from the mobile device contains an encrypted challenge.

4. The EV charger of claim 3 , wherein the encrypted EV charger access credentials comprise charger ID, time of day, and session time.

5. The EV charger of claim 2 , wherein verifying the digital token is performed by decrypting the digital token using cryptographic information contained within the digital certificate.

6. The EV charger of claim 1 , wherein the processor is further configured by the authentication software application to collect charging session data.

7. The EV charger of claim 6 , wherein the processor is further configured by the authentication software application to send the charging session data to the mobile device via the low power short range wireless point-to-point communication system.

8. The EV charger of claim 6 , wherein the charging session data comprises duration of the charging session, energy used during the charging session, and a plug-in status.

9. The EV charger of claim 8 , wherein the charging session data further comprises a status of the EV charger, diagnostics data, temperature data and humidity data.

10. The EV charger of claim 1 , wherein the digital token is bound to a specific time period.

11. The EV charger of claim 1 , wherein the low power short range wireless point-to-point communication system is a near field communication (NFC) system or Bluetooth Low Energy (BLE) system.

12. The EV charger of claim 11 , wherein the processor is further configured by the authentication software application to receive a communication from the mobile device via the low power short range wireless point-to-point communication system.

13. The EV charger of claim 12 , wherein the communication comprises an encrypted message to end the charging session.

14. The EV charger of claim 13 , wherein the processor is further configured by the authentication software application to decrypt the second communication message and to end the charging session.

15. The EV charger of claim 14 , wherein:

the EV charger further comprises a locking mechanism, and

the processor is further configured by the authentication software application to release the locking mechanism upon ending the charging session.

16. A system for electric vehicle (EV) charging, the system comprising:

an EV charger, wherein the EV charger comprises:

a power management unit;

a processor;

a low power short range wireless point-to-point communication system; and

a memory containing an authentication software application;

wherein the processor is configured by the authentication software application to:

receive a tap to start session from a mobile device via the low power short range wireless point-to-point communication system, wherein receiving the tap to start session includes authenticating a first communication session with the mobile device;

send, from the tap to start session, encrypted EV charger access credentials to the mobile device;

receive, from the tap to start session, a digital token from the mobile device;

end the first communication session with the mobile device after receiving the digital token from the mobile device;

verify the digital token;

after the tap to start session has ended, initiate a charging session based upon a command contained within the digital token;

end the charging session;

store, in the memory, charging session data for the charging session;

receive a tap to end session from the mobile device via the low power short range wireless point-to-point communication system, wherein the tap to start session is separate from the tap to begin session, wherein receiving the tap to end session comprises authenticating a second communication session with the mobile device, and wherein the second communication session is different from the first communication session; and

through the tap to end session, transfer the charging session data to the mobile device, wherein the charging session data is forwarded to a server when an internet connection is available on the mobile device,

wherein the mobile device comprises a mobile device processor and a mobile device memory containing a mobile device authentication software application;

wherein the mobile device processor is configured by the mobile device authentication software application to:

send the authentication request to the EV charger via the low power short range wireless point-to-point communication system;

receive the encrypted EV charger access credentials from the EV charger; and

send the digital token to the EV charger.

17. The system of claim 16 , wherein the charging session data comprises duration of the charging session, energy used during the charging session; plug-in status, status of the EV charger, diagnostics data, temperature and humidity.

18. The system of claim 17 , wherein the mobile device processor is further configured by the mobile device authentication software application to communicate with the server when a network connection with the server is present.

19. The system of claim 18 , wherein the mobile device processor is further configured by the mobile device authentication software application to send the charging session data to the server.

Assignments (4)
SECURITY INTEREST Recorded Apr 20, 2026
From: EVE ENERGY VENTURES INC.
To: WESTERN ALLIANCE BANK
Reel/Frame 074412/0685 →
SECURITY INTEREST Recorded Mar 22, 2024
From: EVE ENERGY VENTURES INC.; XAAS FUNDING I LLC
To: WESTERN ALLIANCE BANK
Reel/Frame 066872/0001 →
SECURITY INTEREST Recorded Dec 15, 2022
From: EVE ENERGY VENTURES, INC.
To: WESTERN ALLIANCE BANK
Reel/Frame 062099/0569 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2021
From: BHARADWAJ, NIKHIL SRINATH
To: EVE ENERGY VENTURES INC.
Reel/Frame 057371/0276 →
Continuity (1)
Provisional Application 62943085 · Dec 3, 2019
Cited By (4)
US 12,356,184 US 12,389,225 US 12,427,884 US 12,451,703