Battery module for mitigating gas accumulation and methods thereof
US-9281548-B2 · Mar 8, 2016 · US
US9601732B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9601732-B2 |
| Application number | US-201514940187-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 13, 2015 |
| Priority date | Mar 14, 2013 |
| Publication date | Mar 21, 2017 |
| Grant date | Mar 21, 2017 |
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A battery module is provided. The battery module includes a plurality of battery cell assemblies configured to electrically communicate with each other. Each battery cell assembly has an electrode stack enclosed by a case. The electrode stack is positioned in the case to form one or more peripheral spaces between the electrode stack and the case. Support members are positioned adjacent to each of the battery cell assemblies to contact a desired portion of the electrode stack. The support members are configured to focus a compressive force on a desired portion of the electrode stack. The compressive force urges gases formed during operation of the electrode stack into the peripheral spaces within the case.
Opening claim text (preview).
What is claimed is: 1. A battery module comprising: a plurality of battery cell assemblies configured to electrically communicate with each other, each battery cell assembly having an electrode stack enclosed by a case, wherein the electrode stack is positioned in the case to form at least one peripheral space between the electrode stack and the case; and a support member positioned adjacent to the plurality of battery cell assemblies, the support member configured to focus a compressive force on a desired portion of the electrode stack; wherein the compressive force produces a pressure gradient within the case that urges gases formed during operation of the electrode stack into the at least one peripheral space within the case. 2. The battery module according to claim 1 , wherein a cooling module is positioned between the battery cell assemblies. 3. The battery module according to claim 1 , wherein the compressive force applied by the support member is in addition to a compressive force used to assemble the battery module. 4. The battery module according to claim 3 , wherein the additional compressive force is in the range of from about 25 psi to about 50 psi. 5. The battery module according to claim 1 , wherein the support member has the shape of a pyramid. 6. The battery module according to claim 1 , wherein the support member includes an insert. 7. The battery module according to claim 6 , wherein the insert is formed of a material having a different density than the material forming the support member. 8. A battery module comprising: a plurality of battery cell assemblies configured to electrically communicate with each other, each battery cell assembly having an electrode stack enclosed by a case, wherein the electrode stack is positioned in the case to form at least one peripheral space between the electrode stack and the case; and support members positioned adjacent to the battery cell assemblies to contact a desired portion of the electrode stack, the support members configured to focus a compressive force on a desired portion of the electrode stack; wherein the compressive force produces a pressure gradient within the case, and wherein the lateral pressure gradient urges gases formed during operation of the electrode stack into the at least one peripheral space within the case. 9. The battery module according to claim 8 , wherein a cooling module is positioned between the battery cell assemblies. 10. The battery module according to claim 8 , wherein the compressive force applied by the support members is in addition to a compressive force used to assemble the battery module. 11. The battery module according to claim 10 , wherein the additional compressive force is in the range of from about 25 psi to about 50 psi. 12. The battery module according to claim 8 , wherein the support member has the shape of a pyramid. 13. The battery module according to claim 8 , wherein the support member includes an insert. 14. The battery module according to claim 13 , wherein the insert is formed of a material having a different density than the material forming the support member. 15. A method of forming a battery module comprising the steps of: providing a plurality of battery cell assemblies configured to electrically communicate with each other, each battery cell assembly having an electrode stack enclosed by a case, wherein the electrode stack is positioned in the case to form at least one peripheral space between the electrode stack and the case; and positioning at least one support member adjacent to the battery cell assemblies to contact a desired portion of the electrode stack, the at least one support member configured to focus a compressive force on a desired portion of the electrode stack, and wherein the compressive force produces a pressure gradient within the case that urges gases formed during operation of the electrode stack into the at least one peripheral space within the case. 16. The method according to claim 15 , wherein a cooling module is positioned between the battery cell assemblies. 17. The method according to claim 15 , wherein the compressive force applied by the support members is in addition to a compressive force used to assemble the battery module. 18. The method according to claim 17 , wherein the additional compressive force is in the range of from about 25 psi to about 50 psi. 19. The method according to claim 15 , wherein the support member has the shape of a pyramid. 20. The method according to claim 15 , wherein the support member includes an insert.
Removing gases inside the secondary cell, e.g. by absorption (vent plugs or other mechanical arrangements for facilitating escape of gases H01M50/30) · CPC title
adapted for pouch cells · CPC title
Energy storage using batteries · CPC title
Compression means for stacks of electrodes and separators · CPC title
Batteries in motive systems, e.g. vehicle, ship, plane · CPC title
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