APPARATUS AND METHOD FOR AN INTEGRATED CELL SEPARATOR
An integrated cell separator adapted for use with one or more battery cells. The separator includes a thermal isolation/flame-resistant layer and a compliant layer. The compliant layer is adjacent to the thermal/isolation/flame resistant layer. The thermal isolation/flame-resistant layer and the compliant layer are adhered to each other, the compliant layer is adapted to contact the one or more battery cells, and the separator is adapted to provide thermal runaway isolation of the one or more battery cells. A method for separating one or more battery cells.
1 . An integrated cell separator adapted for use with one or more battery cells, said integrated cell separator comprising:
(a) a thermal isolation/flame-resistant layer;
(b) a compliant layer, said compliant layer being adjacent to said thermal/isolation/flame resistant layer;
wherein the thermal isolation/flame-resistant layer and the compliant layer are adhered to each other to produce the integrated cell separator; and wherein the compliant layer is adapted to contact the one or more battery cells; and wherein the separator is adapted to provide thermal runaway isolation of the one or more battery cells.
2 . The integrated cell separator of claim 1 wherein the separator is laminated.
3 . The integrated cell separator of claim 1 wherein the separator has a finished thickness of less than approximately 2 mm.
4 . The integrated cell separator of claim 1 wherein the thermal isolation/flame-resistant layer comprises aramid.
5 . The integrated cell separator of claim 1 wherein the thermal isolation/flame-resistant layer is electrically-insulating.
6 . The integrated cell separator of claim 1 wherein the compliant layer comprises silicon.
7 . The integrated cell separator of claim 1 wherein the compliant layer is electrically-insulating.
8 . The integrated cell separator of claim 1 wherein the compliant layer is thermally-conductive.
9 . The integrated cell separator of claim 1 wherein the one or more battery cells are lithium-ion cells.
10 . The integrated cell separator of claim 1 wherein the separator produces uniform electrode pressure.
11 . The integrated cell separator of claim 1 wherein the separator provides improved thermal distribution.
12 . The integrated cell separator of claim 1 wherein the separator provides improved removal of heat from the one or more battery cells to the surrounding environment.
13 . The integrated cell separator of claim 1 wherein the separator permits gases to flow through the separator.
14 . The integrated cell separator of claim 1 wherein the separator provides thermal runaway isolation at a cell level.
15 . The integrated cell separator of claim 1 wherein the separator provides thermal runaway isolation at a module level.
16 . The integrated cell separator of claim 1 wherein the separator provides pressure dissipation.
17 . The integrated cell separator of claim 1 wherein the separator prevents liquid from passing through the separator.
18 . The integrated cell separator of claim 1 wherein the separator is adapted for use with one or more pouch cell/cell-to-pack arrangements.
19 . The integrated cell separator of claim 1 wherein the separator electrically isolates the one or more battery cells from an enclosure.
20 . A method for separating one or more battery cells, said method comprising:
(a) providing an integrated cell separator, said integrated cell separator comprising:
(i) a thermal isolation/flame-resistant layer;
(ii) a compliant layer, said compliant layer being adjacent to said thermal/isolation/flame resistant layer;
wherein the thermal isolation/flame-resistant layer and the compliant layer are adhered to each other to produce the integrated cell separator; and wherein the compliant layer is adapted to contact the one or more battery cells; and wherein the separator is adapted to provide thermal runaway isolation of the one or more battery cells; and
(b) separating the one or more battery cells using the integrated cell separator.