IP Library Granted Patent US 10,079,413
Granted Patent B2
US 10,079,413 · App. 14/164,106 · Granted Sep 18, 2018

Li-ion pouch cell and a cell module

Inventors: Keith D. Kepler (Belmont, CA); Robbert Vermeulen (Pleasant Hill, CA); Phillip Hailey (Oakland, CA); Andrew Larson (Livermore, CA)
Assignee: Farasis Energy, Inc.
H01M10/658H01M10/613H01M10/647H01M10/654H01M10/052H01M10/058H01M10/655Y02E60/122Y02P70/54
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Quick Facts
Patent No.
US 10,079,413
App. No.
14/164,106
Granted
Sep 18, 2018
Kind
B2
Abstract

The present invention provides a Li-ion pouch cell wherein the Li-ion pouch cells comprise a sealed enclosure, electrode stack and thermally conductive elements, wherein the electrode stack and the thermally conductive elements are in the sealed enclosure, the thermally conductive elements include extensions which extend beyond the electrode stack, the sealed enclosure has thermal conductivity, the thermally conductive elements provide a thermally conductive pathway connecting the electrode stack and the sealed enclosure by way of the extension. The present invention also provides a cell module comprising the Li-ion pouch cells. The Li-ion pouch cell and the cell module according to the present application could minimize differences in cell temperature, monitor internal cell temperature, cool the cell rapidly, increase cell and module safety, allowing for minimal impact on cell energy density, performance or life and difficulty of manufacturing.

Claims (23)

1. A Li-ion pouch cell comprising:

a pouch;

a seal area surrounding the pouch, wherein the seal area seals the pouch;

an electrode stack;

thermally conductive elements and

extensions to the thermally conductive elements that extend beyond the electrode stack, wherein the electrode stack, the thermally conductive elements and the extensions to the thermally conductive elements are entirely contained within the pouch without breaching the seal area, wherein the pouch has thermal conductivity, wherein the thermally conductive extensions contact the pouch in a thermally conductive manner to provide a thermally conductive pathway connecting the electrode stack and the pouch, wherein at least one of the thermally conductive elements comprises an electrode portion extending beyond the electrode stack.

2. The cell of claim 1 , wherein

the thermally conductive elements and the extensions comprise a same material.

3. The cell of claim 1 in which the thermally conductive element extensions enable the formation of a thermally conductive path between the electrode stack and an external thermally controlled element through the pouch, wherein the external thermally controlled element compresses the thermally conductive element extensions contacting the pouch by compressing an outside of the pouch overlapping where the pouch contacts the thermally conductive element extensions at an inside of the pouch.

4. The cell of claim 1 in which each of the thermally conductive elements comprises a bare metal foil component.

5. The cell of claim 1 in which the extensions extend beyond the electrode stack by 1 to 20 millimeters.

6. The cell of claim 1 in which the material of the thermally conductive elements comprises aluminum (Al), copper (Cu) or Al and Cu.

7. A cell module comprising:

a plurality of Li-ion pouch cells, wherein each of the Li-ion pouch cells comprises:

a pouch,

a seal area surrounding the pouch, wherein the seal area seals the pouch;

an electrode stack;

thermally conductive elements that include

extensions that extend beyond the electrode stack, wherein the electrode stack and the thermally conductive elements including the extensions are entirely contained within the pouch without breaching the seal area, wherein the pouch has thermal conductivity, wherein the thermally conductive extensions contact the pouch in a thermally conductive manner to provide a thermally conductive pathway connecting the electrode stack and the pouch; and a cell frame incorporating a thermally controlled element that compresses the thermally conductive extensions contacting the pouch by compressing the pouch where the pouch contacts the thermally conductive element extensions to form a thermally conductive path between the electrode stack and the thermally controlled element external to the cell, wherein at least one of the thermally conductive elements comprises an electrode extending beyond the electrode stack.

8. The cell module of claim 7 , wherein the thermally conductive elements and the extensions comprise a same material.

9. The cell module of claim 7 , wherein each of the thermally conductive elements comprises a bare metal foil component.

10. The cell module of claim 7 , wherein the extensions extend beyond the electrode stack by 1 to 20 millimeters.

11. The cell module of claim 7 , wherein the material of the thermally conductive elements comprises aluminum (Al), copper (Cu), or Al and Cu.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 26, 2019
From: FARASIS ENERGY, INC.
To: FARASIS ENERGY USA, INC.
Reel/Frame 050164/0622 →
CONFIRMATORY LICENSE Recorded Aug 31, 2017
From: FARASIS ENERGY, INC.
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 043461/0283 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2014
From: KEPLER, KEITH D.; VERMEULEN, ROBBERT; HAILEY, PHILLIP; LARSON, ANDREW
To: FARASIS ENERGY, INC.
Reel/Frame 034159/0859 →
Continuity (3)
Provisional Application 61756410 · Jan 24, 2013
Provisional Application 61806039 · Mar 28, 2013
Related Publication 20140205882A1 · Jul 24, 2014
Cited By (1)
US 12,388,127