IP Library Granted Patent US 10,665,914
Granted Patent B2
US 10,665,914 · App. 15/906,913 · Granted May 26, 2020

Battery system housing with integrated cooling pipe

Inventors: Francesco Mastrandrea (Milan, IT); Peter Tutzer (Milan, IT)
Assignee: Thunder Power New Energy Vehicle Development Company Limited
H01M10/656B60L58/26H01M2/1077H01M2/206H01M10/613H01M10/625H01M10/6557H01M10/643H01M2220/20
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Quick Facts
Patent No.
US 10,665,914
App. No.
15/906,913
Granted
May 26, 2020
Kind
B2
Abstract

A battery pack for an electric vehicle is disclosed. The battery pack includes an upper tray, a first busbar attached to the upper tray, a lower tray, and a second busbar attached to the lower tray. The battery pack also includes a plurality of battery cells arranged in the upper and lower trays, and a cooling duct contacting the lower and upper trays.

Claims (38)

1. A battery pack for an electric vehicle, the battery pack comprising:

an upper tray, comprising a plurality of upper topological features;

a first busbar attached to the upper tray;

a lower tray, comprising a plurality of lower topological features;

a second busbar attached to the lower tray;

a plurality of battery cells each comprising first and second opposing ends, wherein the first ends are arranged in and contact the upper topological features of the upper tray, and wherein the second ends are arranged in and contact the lower topological features of the lower tray; and

a cooling duct comprising a mechanically supportive structure defining a fluid channel, wherein the mechanically supportive structure extends between the lower tray and the upper tray substantially perpendicular to each of the lower tray and the upper tray, and wherein the mechanically supportive structure contacts and mechanically supports both the lower tray and the upper tray.

2. The battery pack of claim 1 , wherein the cooling duct is configured to transfer a force between the upper and lower trays.

3. The battery pack of claim 2 , wherein while the cooling duct transfers the force between the upper and lower trays, the battery cells transfer substantially no force between the upper and lower trays.

4. The battery pack of claim 1 , wherein the cooling duct is integrated with the lower tray.

5. The battery pack of claim 1 , wherein the cooling duct is integrated with the upper tray.

6. The battery pack of claim 1 , wherein the cooling duct is not integrated with either of the upper and lower trays.

7. The battery pack of claim 1 , wherein the fluid channel is configured to conduct a cooling fluid.

8. A method of manufacturing a battery pack for an electric vehicle, the method comprising:

attaching a first busbar to an upper tray, the upper tray comprising a plurality of upper topological features;

attaching first sides of a plurality of battery cells to the upper topological features of the upper tray;

attaching a second busbar to a lower tray, the lower tray comprising a plurality of lower topological features;

attaching second sides of the battery cells to the lower topological features of the lower tray; and

positioning a cooling duct between the lower tray and the upper tray, the cooling duct comprising a mechanically supportive structure defining a fluid channel, wherein the mechanically supportive structure extends between the lower tray and the upper tray substantially perpendicular to each of the lower tray and the upper tray, and wherein the mechanically supportive structure contacts and mechanically supports both the lower tray and the upper tray.

9. The method of claim 8 , wherein the cooling duct is configured to transfer a force between the upper and lower trays.

10. The method of claim 9 , wherein while the cooling duct transfers the force between the upper and lower trays, the battery cells transfer substantially no force between the upper and lower trays.

11. The method of claim 8 , wherein the cooling duct is integrated with the lower tray, and positioning the cooling duct comprises connecting the cooling duct to the upper tray.

12. The method of claim 8 , wherein the cooling duct is integrated with the upper tray, and positioning the cooling duct comprises connecting the cooling duct to the lower tray.

13. The method of claim 8 , wherein the cooling duct is separate from the upper and lower trays, and positioning the cooling duct comprises connecting the cooling duct to the upper tray and to the lower tray.

14. The method of claim 8 , wherein the fluid channel is configured to conduct a cooling fluid.

15. An electric vehicle powered by a battery pack, the battery pack comprising:

an upper tray, comprising a plurality of upper topological features;

a first busbar attached to the upper tray;

a lower tray, comprising a plurality of lower topological features;

a second busbar attached to the lower tray;

a plurality of battery cells each comprising first and second opposing ends, wherein the first ends are arranged in and contact the upper topological features of the upper tray, and wherein the second ends are arranged in and contact the lower topological features of the lower tray; and

a cooling duct comprising a mechanically supportive structure defining a fluid channel, wherein the mechanically supportive structure extends between the lower tray and the upper tray substantially perpendicular to each of the lower tray and the upper tray, and wherein the mechanically supportive structure contacts and mechanically supports both the lower tray and the upper tray.

16. The electric vehicle of claim 15 , wherein the cooling duct is configured to transfer a force between the upper and lower trays.

17. The electric vehicle of claim 16 , wherein while the cooling duct transfers the force between the upper and lower trays, the battery cells transfer substantially no force between the upper and lower trays.

18. The electric vehicle of claim 15 , wherein the cooling duct is integrated with the lower tray.

19. The electric vehicle of claim 15 , wherein the cooling duct is integrated with the upper tray.

20. The electric vehicle of claim 15 , wherein the cooling duct is separate from the upper and lower trays.

21. The electric vehicle of claim 15 , wherein the fluid channel is configured to conduct a cooling fluid.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2018
From: MASTRANDREA, FRANCESCO; TUTZER, PETER
To: THUNDER POWER NEW ENERGY VEHICLE DEVELOPMENT COMPANY LIMITED
Reel/Frame 045055/0222 →
Continuity (3)
Continuation 15468542 · Mar 24, 2017
Provisional Application 62384298 · Sep 7, 2016
Related Publication 20180191040A1 · Jul 5, 2018