IP Library Granted Patent US 12,606,035
Granted Patent B2
US 12,606,035 · App. 18/076,052 · Granted Apr 21, 2026

Devices, systems, and methods for wireless vehicle charging

Inventors: Andrew P. Foote (Knoxville, TN); Daniel Costinett (Knoxville, TN)
Assignees: VOLKSWAGEN AKTIENGESELLSCHAFT; UNIVERSITY OF TENNESSEE RESEARCH FOUNDATION
B60L53/122H02J50/10
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Quick Facts
Patent No.
US 12,606,035
App. No.
18/076,052
Granted
Apr 21, 2026
Kind
B2
Abstract

Devices, systems, and methods related to wireless charging for transportation vehicles include a wireless charge assembly including a capacitor bank assembly, shielding body, and a coil assembly. The coil assembly can include a coil body having a plurality of shielding turns positioned which can be arranged to reduce stray field from inductive charging of the transportation vehicle.

Claims (25)

1 . A vehicle capable of wireless charging comprising:

a transportation vehicle chassis having a lower section; and

a charge assembly mounted with the lower section and configured to receive wireless charge from a ground charge assembly, the charge assembly comprising a shielding body, a capacitor bank assembly arranged on one side of the shielding body, and a charge coil assembly arranged on an opposite side of the shielding body, the charge coil assembly comprising a coil body including a number of coils each having coil turns arranged in a charging plane, wherein the coil body includes a plurality of shielding turns positioned along the charging plane adjacent the number of coil turns, wherein the shielding turns are arranged on opposing ends of the coil body within the charging plane,

wherein ends of the number of coils penetrate through the shielding body at the same location to reduce additional flux and/or stray field, wherein the location of penetration through the shielding body corresponds with a center of one of the coils.

2 . The transportation vehicle of claim 1 , wherein each shielding turn is arranged to circulate current in a shielding direction defined opposite to a charging direction in which current circulates via corresponding adjacent coil turns.

3 . The transportation vehicle of claim 2 , wherein one shielding turn is arranged to circulate current in its shielding direction defined as either one of clockwise or counterclockwise, and the corresponding adjacent coil turns are arranged to circulate current in their charging direction defined as the other of clockwise and counterclockwise.

4 . The transportation vehicle of claim 3 , wherein another shielding turn is arranged to circulate current in its shielding direction defined as the other of clockwise or counterclockwise, and the other corresponding adjacent coil turns are arranged to circulate current in its charging direction defined as the one of clockwise and counterclockwise.

5 . The transportation vehicle of claim 1 , wherein the charge coil assembly is formed as a continuous length of conductor.

6 . The transportation vehicle of claim 1 , wherein the number of coils includes at least two coils arranged side by side, and the continuous length of conductor crosses the coils turns of each of the at least two coils on the adjacent sides.

7 . The transportation vehicle of claim 1 , wherein the charging plane is parallel with the ground.

8 . The transportation vehicle of claim 1 , wherein the charge coil assembly is configured to reduce stray field in a bipolar single-phase arrangement for inductive wireless charging.

9 . The vehicle of claim 1 , wherein the location of the penetration corresponds with the center of the one of the coils as a radial center.

10 . A vehicle wireless charge assembly comprising:

a shielding body;

a charge coil assembly arranged on one side of the shielding body; and

a charge coil assembly arranged on an opposite side of the shielding body, the charge coil assembly comprising a coil body including a number of coils each having coil turns arranged in a charging plane, wherein the coil body includes a plurality of shielding turns positioned along the charging plane adjacent the number of coil turns, wherein the shielding turns are arranged on opposing ends of the coil body within the charging plane,

wherein ends of the number of coils penetrate through the shielding body at the same location to reduce additional flux and/or stray field, wherein the location of penetration through the shielding body corresponds with a center of one of the coils.

11 . The assembly of claim 10 , wherein each shielding turn is arranged to circulate current in a shielding direction defined opposite to a charging direction in which current circulates via corresponding adjacent coil turns.

12 . The assembly of claim 11 , wherein one shielding turn is arranged to circulate current in its shielding direction defined as either one of clockwise or counterclockwise, and the corresponding adjacent coil turns are arranged to circulate current in their charging direction defined as the other of clockwise and counterclockwise.

13 . The assembly of claim 12 , wherein another shielding turn is arranged to circulate current in its shielding direction defined as the other of clockwise or counterclockwise, and the other corresponding adjacent coil turns are arranged to circulate current in its charging direction defined as the one of clockwise and counterclockwise.

14 . The assembly of claim 11 , wherein each shielding turn is formed of a continuous length of conductor integral with the corresponding adjacent coil turns.

15 . The assembly of claim 10 , wherein the number of coils includes at least two coils arranged side by side, and the continuous length of conductor crosses the coils turns of each of the at least two coils on the adjacent sides.

16 . The assembly of claim 10 , wherein the charge coil assembly is configured to reduce stray field in a bipolar single-phase arrangement for transportation vehicle wireless charging.

17 . The assembly of claim 10 , wherein the charge coil assembly is formed as a continuous length of conductor.

18 . The assembly of claim 10 , wherein the location of the penetration corresponds with the center of the one of the coils as a radial center.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2023
From: COSTINETT, DANIEL
To: UNIVERSITY OF TENNESSEE RESEARCH FOUNDATION
Reel/Frame 063265/0870 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2023
From: FOOTE, ANDREW P.
To: VOLKSWAGEN GROUP OF AMERICA, INC.
Reel/Frame 063265/0873 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2023
From: VOLKSWAGEN GROUP OF AMERICA, INC.
To: VOLKSWAGEN AKTIENGESELLSCHAFT
Reel/Frame 063265/0904 →
Continuity (1)
Related Publication 20240181901A1 · Jun 6, 2024
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