Counter-Flow Heat Exchanger for Battery Thermal Management Applications
US-2016204486-A1 · Jul 14, 2016 · US
US2018358669A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2018358669-A1 |
| Application number | US-201715616517-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jun 7, 2017 |
| Priority date | Jun 7, 2017 |
| Publication date | Dec 13, 2018 |
| Grant date | — |
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A rechargeable battery assembly includes battery cells, a plurality of heat spreaders, a first heat exchanger and a second heat exchanger. Each heat spreader includes a plate portion, a first end portion and a second end portion. The battery cells are disposed in a stacked arrangement, with the heat spreaders interleaved between adjacent ones of the battery cells. Fluidic channels includes a first port that is in fluidic communication with the first manifold and a second port that is in fluidic communication with the second manifold. The fluidic channels are disposed between the first and second fluidic manifolds. The stacked arrangement is interposed between the first heat exchanger and the second heat exchanger. The first end portions of the heat spreaders are in thermal contact with the first heat exchanger and the second end portions of the heat spreaders are in thermal contact with the second heat exchanger.
Opening claim text (preview).
What is claimed is: 1 . A battery assembly, comprising: a plurality of battery cells, a plurality of heat spreaders, a first heat exchanger and a second heat exchanger; wherein each heat spreader includes a plate portion, a first end portion and a second end portion; wherein the plurality of battery cells are disposed in a stacked arrangement; wherein the heat spreaders are interleaved between adjacent ones of the battery cells; wherein each of the first and second heat exchangers includes a first planar sheet assembled onto a second planar sheet, wherein a plurality of fluidic channels are disposed between the first and second planar sheets, and wherein a first fluidic manifold is disposed on a first edge and a second fluidic manifold is disposed on a second opposed edge of each of the first and second heat exchangers; wherein each of the fluidic channels includes a first port that is in fluidic communication with the first manifold and a second port that is in fluidic communication with the second manifold; wherein each of the fluidic channels is disposed to provide fluidic communication between the first and second fluidic manifolds; wherein the stacked arrangement of the plurality of battery cells and interleaved heat spreaders is interposed between the first heat exchanger and the second heat exchanger; and wherein each of the first end portions of the heat spreaders is in thermal contact with the first heat exchanger and wherein each of the second end portions of the heat spreaders is in thermal contact with the second heat exchanger. 2 . The battery assembly of claim 1 , wherein each of the battery cells is configured as a rectangular prism and includes a first/upper edge, a second/lower edge, opposed face portions and electrical terminal ends. 3 . The battery assembly of claim 1 , wherein the heat spreaders are interleaved between adjacent ones of the battery cells such that the plate portion of each of the heat spreaders is in thermal communication with the adjacent ones of the battery cells. 4 . The battery assembly of claim 3 , wherein the thermal communication includes conductive heat transfer, radiant heat transfer and convective heat transfer. 5 . The battery assembly of claim 3 , wherein the heat spreaders are fabricated from one of aluminum, stainless steel, or high-strength steel. 6 . The battery assembly of claim 1 , wherein the first portions of the heat spreaders are bonded to the first heat exchanger via a thermally-conductive material, wherein the second portions of the heat spreaders are bonded to the second heat exchanger via the thermally-conductive material. 7 . The battery assembly of claim 1 , wherein the first end portion of the heat spreader is in thermal communication with the first heat exchanger and the second end portion is in thermal communication with the second heat exchanger, and wherein each of the heat spreaders is in thermal contact with the respective inner portion of the first planar sheet and the respective inner portion of the second planar sheet via the thermally-conductive material. 8 . The battery assembly of claim 1 , wherein the first and second planar sheets of the first and second heat exchangers are fabricated from one of aluminum, stainless steel, or high-strength steel. 9 . The battery assembly of claim 1 , wherein each of the battery cells comprises a rechargeable lithium-ion battery cell. 10 . The battery assembly of claim 1 , wherein the first manifold is arranged in parallel with the second fluidic manifold for each of the first and second heat exchange plates. 11 . The battery assembly of claim 1 , wherein the first fluidic manifold, the plurality of fluidic channels and the second fluidic manifold form a single-pass fluidic flow circuit in each of the first and second heat exchange plates. 12 . The battery assembly of claim 1 , wherein each of the first and second heat exchangers is arranged in a single-pass fluidic flow circuit that includes the first fluidic manifold, the plurality of fluidic channels and the second fluidic manifold. 13 . The battery assembly of claim 1 , wherein each of the fluidic channels has a rectangular, trapezoidal, semi-circular or elliptical cross-sectional shape. 14 . A battery assembly, comprising: a plurality of battery cells, a plurality of heat spreaders, a first heat exchanger and a second heat exchanger; wherein each heat spreader includes a plate portion, a first end portion and a second end portion; wherein the plurality of battery cells are disposed in a stacked arrangement; wherein the heat spreaders are interleaved between adjacent ones of the battery cells; wherein each of the first and second heat exchangers includes a first planar sheet assembled onto a second planar sheet, wherein a plurality of fluidic channels are disposed between the first and second planar sheets, and wherein a first fluidic manifold is disposed on a first edge and a second fluidic manifold is disposed on a second opposed edge of each of the first and second heat exchangers; wherein each of the fluidic channels includes a first port that is in fluidic communication with the first manifold and a second port that is in fluidic communication with the second manifold; wherein each of the fluidic channels is disposed to provide fluidic communication between the first and second fluidic manifolds; and wherein the plurality of battery cells and interleaved heat spreaders are interposed between the first heat exchanger and the second heat exchanger. 15 . The battery assembly of claim 14 , wherein each of the battery cells is configured as a rectangular prism and includes a first/upper edge, a second/lower edge, opposed face portions and electrical terminal end. 16 . The battery assembly of claim 14 , wherein the heat spreaders are interleaved between adjacent ones of the battery cells such that the plate portion of each of the heat spreaders is in thermal communication with the adjacent ones of the battery cells. 17 . The battery assembly of claim 16 , wherein the thermal communication includes conductive heat transfer, radiant heat transfer and convective heat transfer. 18 . The battery assembly of claim 14 , wherein the first portions of the heat spreaders are bonded to the first heat exchanger via a thermally-conductive material, wherein the second portions of the heat spreaders are bonded to the second heat exchanger via the thermally-conductive material. 19 . The battery assembly of claim 14 , wherein the first end portion of the heat spreader is in thermal communication with the first heat exchanger and the second end portion is in thermal communication with the second heat exchanger, and wherein each of the heat spreaders is in thermal contact with the respective inner portion of the first planar sheet and the respective inner portion of the second planar sheet via the thermally-conductive material. 20 . The battery assembly of claim 14 , wherein each of the battery cells comprises a rechargeable lithium-ion battery cell.
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