IP Library › Granted Patent US 12,489,372
Granted Patent B2
US 12,489,372 · App. 17/975,423 · Granted Dec 2, 2025

Energy system for an electric vehicle

Inventor: Mario Wildgruber (Rohrbach, DE)
Assignee: Audi AG
H02M3/33573B60L50/60B60R16/03H02M3/01
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Quick Facts
Patent No.
US 12,489,372
App. No.
17/975,423
Granted
Dec 2, 2025
Kind
B2
Abstract

Described herein is a system for the electrical power supply of a vehicle and a method for the electrical power supply of a vehicle.

Claims (28)

1 . A system for electrical power supply of an electric vehicle that includes at least one first onboard network and at least one second onboard network, wherein a voltage of the at least one first onboard network is greater than a voltage of the at least one second onboard network, and a battery connected to the at least one first onboard network, wherein the battery includes a first sub-branch and a second sub-branch that are switched in series, the system comprising:

a first direct current/direct current (DC/DC) converter that includes a first transformer,

wherein an input of the first DC/DC converter is connected to the first sub-branch, and

wherein an output of the first DC/DC converter is connected to the at least one second onboard network; and

a second DC/DC converter that includes a second transformer,

wherein an input of the second DC/DC converter is connected to the second sub-branch,

wherein the output of the second DC/DC converter is connected to the at least one second onboard network,

wherein the first DC/DC converter and the second DC/DC converter have a redundant design,

wherein a first power pathway between the first sub-branch and the at least one second onboard network is independent of a second power pathway between the second sub-branch and the at least one second onboard network,

wherein the first power pathway and the second power pathway are electrically in parallel such that a fault in one of the first sub-branch or the second sub-branch does not result in a fault in electrical power supply to the at least one second onboard network,

wherein the first DC/DC converter includes a first active full bridge on a secondary side of the first transformer,

wherein a center tap of the secondary side of the first transformer is used on the secondary side of the first transformer,

wherein the second DC/DC converter includes a second active full bridge on a secondary side of the second transformer, and

wherein a center tap of the secondary side of the second transformer is used on the secondary side of the second transformer.

2 . The system according to claim 1 , wherein the first DC/DC converter includes a first full bridge on a primary side of the first transformer, and wherein the second DC/DC converter includes a second full bridge on a primary side of the second transformer.

3 . The system according to claim 1 , wherein the first DC/DC converter uses a first central tap of the first transformer on a secondary side of the first transformer, and wherein the second DC/DC converter uses a second central tap of the second transformer on a secondary side of the second transformer.

4 . The system according to claim 1 , wherein the first DC/DC converter, in operation, provides a first voltage level at an output of the first DC/DC converter, and wherein the second DC/DC converter, in operation, provides a second voltage level at an output of the second DC/DC converter.

5 . A method for electrical power supply of an electric vehicle that includes at least one first onboard network and at least one second onboard network, and a battery that includes a first sub-branch and a second sub-branch that are switched in series, a first power pathway between the first sub-branch and the at least one second onboard network being independent of a second power pathway between the second sub-branch and the at least one second onboard network, and the first power pathway and the second power pathway being electrically in parallel such that a fault in one of the first sub-branch or the second sub-branch does not result in a fault in electrical power supply to the at least one second onboard network, the method comprising:

connecting the at least one first onboard network to the battery;

connecting the at least one second onboard network to an output of a first direct current/direct current (DC/DC) converter;

connecting an input of the first DC/DC converter to the first sub-branch;

connecting the at least one second onboard network to an input of a second DC/DC converter; and

connecting an input of the second DC/DC converter to the second sub-branch,

wherein the first DC/DC converter and the second DC/DC converter have a redundant design,

wherein the first DC/DC converter includes a first active full bridge on a secondary side of a first transformer,

wherein a center tap of the secondary side of the first transformer is used on the secondary side of the first transformer,

wherein the second DC/DC converter includes a second active full bridge on a secondary side of a second transformer, and

wherein a center tap of the secondary side of the second transformer is used on the secondary side of the second transformer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 6, 2023
From: WILDGRUBER, MARIO
To: AUDI AG
Reel/Frame 064170/0909 →
Priority Claims (1)
DE 102021128139.3 · Oct 28, 2021 · national
Continuity (1)
Related Publication 20230134237A1 · May 4, 2023
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