Elastic bellows and battery cell assemblies including same
09929441 ยท 2018-03-27
Assignee
Inventors
Cpc classification
B32B2307/50
PERFORMING OPERATIONS; TRANSPORTING
B32B15/06
PERFORMING OPERATIONS; TRANSPORTING
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B25/14
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B32B25/042
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M10/4207
ELECTRICITY
B32B3/266
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/248
PERFORMING OPERATIONS; TRANSPORTING
B32B15/20
PERFORMING OPERATIONS; TRANSPORTING
H01M10/0481
ELECTRICITY
H01M50/289
ELECTRICITY
B32B7/05
PERFORMING OPERATIONS; TRANSPORTING
H01M2220/20
ELECTRICITY
B32B3/02
PERFORMING OPERATIONS; TRANSPORTING
B32B3/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A battery pack includes a battery housing and electrochemical cells disposed in the battery housing in a stacked configuration. Elastic members are disposed between adjacent cells of a cell stack. Each elastic member is a bladder that is formed of a pair of contoured plate portions stacked in a mirrored arrangement, whereby the plate portions cooperate to form a bellows-type compression spring. The elastic members provide a predetermined compression force to each cell while accommodating cell growth during use. The elastic members may include surface features such as strategically shaped and/or located protrusions that are configured to permit compliance and can be tuned to address the requirements of a specific application and permit application of varying stiffness characteristics across a surface of a cell.
Claims
1. A battery stack comprising a first cell, a second cell positioned adjacent the first cell in a stacked arrangement with the first cell, the first and second cells each including a cell housing, a positive electrode, and a negative electrode, the positive electrode and the negative electrode sealed within the cell housing along with an electrolyte, and an elastic member disposed between the first cell and the second cell, the elastic member comprising a first plate defining a first plane and including first offset regions that are non-coplanar with the first plane, a second plate defining a second plane and including second offset regions that are non-coplanar with the second plane, wherein the second plate is arranged in a stacked configuration with the first plate so that the first offset regions and the second offset regions are disposed between the first plane and the second plane, and the first offset regions directly contact the second offset regions.
2. The battery stack of claim 1, wherein the first offset regions include a first peripheral flange that is offset from and parallel to the first plane, and a first protrusion that protrudes from the first plane, and the second offset regions include a second peripheral flange that is offset from and parallel to the second plane, and a second protrusion that protrudes from the second plane.
3. The battery stack of claim 2, wherein the first peripheral flange directly contacts the second peripheral flange and the first protrusion directly contacts the second protrusion.
4. The battery stack of claim 2, wherein the first protrusion is a single protrusion that is centered within a periphery of the first plate.
5. The battery stack of claim 2, wherein the first protrusion comprises multiple protrusions that are uniformly distributed across an area bounded by a peripheral edge of the first plate.
6. The battery stack of claim 2, wherein the first protrusion comprises multiple protrusions that are concentrated in a central region of an area bounded by a peripheral edge of the first plate.
7. The battery stack of claim 1, wherein the elastic member is configured to apply a compression force to a surface of the cell housing of each of the first cell and the second cell.
8. The battery stack of claim 7, wherein the elastic member is configured such that the applied compression force greater in a central region of the surface than in a peripheral region of the surface.
9. A battery module comprising a cell support element; a first cell supported on the cell support element, a second cell supported on the cell support element, the second cell positioned adjacent the first cell in a stacked arrangement with the first cell, the first and second cells each including a cell housing, a positive electrode, and a negative electrode, the positive electrode and the negative electrode sealed within the cell housing along with an electrolyte, and an elastic member disposed between the first cell and the second cell, the elastic member comprising a first plate defining a first plane and including first offset regions that are non-coplanar with the first plane, a second plate defining a second plane and including second offset regions that are non-coplanar with the second plane, wherein the second plate is arranged in a stacked configuration with the first plate so that the first offset regions and the second offset regions are disposed between the first plane and the second plane, and the first offset regions directly contact the second offset regions.
10. The battery module of claim 9, wherein the first offset regions include a first peripheral flange that is offset from and parallel to the first plane, and a first protrusion that protrudes from the first plane, and the second offset regions include a second peripheral flange that is offset from and parallel to the second plane, and a second protrusion that protrudes from the second plane.
11. The battery module of claim 10, wherein the first protrusion is a single protrusion that is centered within a periphery of the first plate.
12. The battery module of claim 10, wherein the first protrusion comprises multiple protrusions that are uniformly distributed across an area bounded by a peripheral edge of the first plate.
13. The battery module of claim 10, wherein the first protrusion comprises multiple protrusions that are concentrated in a central region of an area bounded by a peripheral edge of the first plate.
14. A battery pack comprising a battery pack housing; a first cell disposed in the housing, a second cell disposed in the housing, the second cell positioned adjacent the first cell in a stacked arrangement, the first and second cells each including a cell housing, a positive electrode, and a negative electrode, the positive electrode and the negative electrode sealed within the cell housing along with an electrolyte, and an elastic member disposed between the first cell and the second cell, the elastic member comprising, a first plate defining a first plane and including first offset regions that are non-coplanar with the first plane, a second plate defining a second plane and including second offset regions that are non-coplanar with the second plane, wherein the second plate is arranged in a stacked configuration with the first plate so that the first offset regions and the second offset regions are disposed between the first plane and the second plane, and the first offset regions directly contact the second offset regions.
15. The battery pack of claim 14, wherein the first offset regions include a first peripheral flange that is offset from and parallel to the first plane, and a first protrusion that protrudes from the first plane, and the second offset regions include a second peripheral flange that is offset from and parallel to the second plane, and a second protrusion that protrudes from the second plane.
16. The battery pack of claim 15, wherein the first protrusion is a single protrusion that is centered within a periphery of the first plate.
17. The battery pack of claim 15, wherein the first protrusion comprises multiple protrusions that are concentrated in a central region of an area bounded by a peripheral edge of the first plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(24) Referring to
(25) The cells 20 are prismatic lithium-ion cells. Each cell 20 includes a cell housing 19. An electrode assembly (not shown) is sealed within the cell housing 19 along with an electrolyte to form a power generation and storage unit. The electrode assembly may be a jelly roll electrode assembly that includes a positive electrode, a negative electrode and an intermediate separator provided in a stacked and rolled arrangement.
(26) Each cell housing 19 includes a first side 21 and a second side 22 opposed to the first side 21. The first and second sides 21, 22 correspond to the broad sides of the rectangular cell housing 19. The cell housing 19 also includes four relatively narrow end surfaces 23, 24, 25, 26 that extend between the first side 21 and the second side 22. In the illustrated embodiment, a first end surface 23 and a third end surface 25 are on opposed sides of the cell 20 and are longer than a second end surface 24 and a fourth end surface 26. The second and fourth end surfaces 24, 26 extend perpendicular to the first and third end surfaces 23, 25. Each cell 20 includes terminals 27, 28 that protrude from the first end surface 23. Each cell 20 also includes a vent 29 that opens through the first end surface 23.
(27) Referring to
(28) Referring to
(29) Referring to
(30) A first interior space 135 is defined between the first sheet 131, the second sheet 132, the first sealed line 134 and the second sealed line 136. In addition, a second interior space 137 is defined between the first sheet 131, the second sheet 132 and within the second sealed line 136. In the embodiment illustrated in
(31) In the illustrated embodiment, the fluid filled bladders 138 each have the same shape and size, and are uniformly distributed within the area defined by the first sealed line 134. However, the fluid filled bladders 138 are not limited to this configuration. In some embodiments, the fluid filled bladders 138 are shaped, sized, and/or distributed to provide non-uniform spring characteristics over the area defined by the first sealed line 134. For example, since the prismatic cell 20 tends to experience greater distortion in a central region of the cell first and second sides 21, 22 relative to a periphery of the cell first and second sides 21, 22, the elastic member 130 may be configured to provide a greater concentration of fluid filled bladders 138 in a central region of the elastic member 130 than in a peripheral region. Alternatively, or additionally, the elastic member 130 may be configured to provide fluid filled bladders 130 that are more stiff in a central region than those in a peripheral region, for example by tuning the shape and/or size of the fluid filled bladders 130 according to location.
(32) In some embodiments, the first sealed line 134 is omitted, and the first interior space 135 is defined between the first sheet 131, the second sheet 132, a peripheral edge of the elastic member 130 and the second sealed line 136. In such embodiments, the first interior space 135 is open along the peripheral edge, and is at atmospheric pressure.
(33) Referring to
(34) A first interior space 235 is defined between the first sheet 231, the second sheet 232, the first sealed line 234 and the second sealed line 236. In addition, a second interior space 237 is defined between the first sheet 231, the second sheet 232 and within the second sealed line 236. One of the first interior space 235 and the second interior space 237 is at least partially inflated, and the other of the first interior space 235 and the second interior space 237 is less inflated than the one of the first interior space 235 and the second interior space 237. In the embodiment illustrated in
(35) In the illustrated embodiment, the restrained regions 239 each have the same shape and size, and are uniformly distributed within the area defined by the first sealed line 234. However, the restrained regions 239 are not limited to this configuration. In some embodiments, the restrained regions 239 are shaped, sized, and or distributed to provide non-uniform spring characteristics over the area defined by the first sealed line 234. For example, the elastic member 230 may be configured to provide a greater concentration of the restrained regions 239 in a central region of the elastic member 230 than in a peripheral region. Alternatively, or additionally, the elastic member 230 may be configured to be more stiff in a central region than those in a peripheral region, for example by tuning the shape and/or size of the restrained regions 239 according to location.
(36) The first and second sheets 31, 32, 131, 132, 231, 232 are formed of a resilient, elastic material. For example, the material used to form the first and second sheets may selected from the group including, but not limited to, rubber (natural rubber based material), elastomer (synthetic rubber material), and polymer (plastic).
(37) Referring to
(38) The first plate portion 331 is rectangular in size and shape to conform to the size and shape of the cell first and second sides 21, 22. The first plate portion 331 defines a plane 335 and includes offset regions 337, 339 that are non-coplanar with the plane 335. In particular, the first plate portion 331 includes a peripheral flange 337 that is offset from and parallel to the plane 335. The flange 337 surrounds a peripheral edge 336 of the first plate portion 331. In addition, the first plate portion 331 includes a protrusion 339 that protrudes from the plane 335 a distance corresponding to the offset of the flange 337, and in the same direction as the offset of the flange 337. The protrusion 339 is a single protrusion that is centered within the area defined by the peripheral edge 336 of the first plate portion 331.
(39) The second plate portion 332 is layered with the first plate portion 331 in a stacked configuration. In addition, the second plate portion 332 is arranged in a mirrored orientation relative to the first plate portion 331 so that the first plate portion flange 337(1) contacts the second plate portion flange 337(2), the first plate portion protrusion 339(1) contacts the second plate portion protrusion 339(2), and the first plate portion plane 335(1) is spaced apart from the second plate portion plane 335(2). This configuration forms a bellows that allows for compliance when the elastic member 330 is disposed between adjacent cells 20. In addition, the central protrusions 339(1), 339(2) provide some stiffness to the bellows arrangement, which can be adjusted by adjusting the shape and/or size of the protrusions 339(1), 339(2).
(40) Although the embodiment illustrated in
(41) In some embodiments, the first plate portion 331 is formed separately from, and is not joined to, the second plate portion 332. As a result, the first plate portion 331 is movable relative to the second plate portion 332.
(42) In other embodiments, the first plate portion 331 is formed separately from, and is subsequently joined to, the second plate portion 332. For example, the first plate portion 331 may be connected to the second plate portion 332 along all contacting surfaces (e.g., along the flange 337 and protrusion 339), or alternatively, at strategic portions of the contacting surfaces for example in a spot welding process. As a result, the contacting surfaces of first plate portion 331 are fixed relative to those of the second plate portion 332.
(43) In still other embodiments, the first plate portion 331 is formed along with the second plate portion 332 from a single piece of material, for example in a stamping operation. In this embodiment, the first plate portion 331 shares a portion of a peripheral edge 336 with the second plate portion 332. The shared edge portion serves as a fold line 340, and in use the elastic member 330 is folded along the fold line 340 so that the first plate portion 331 overlies the second plate portion 332 (see
(44) Referring to
(45) The elastic member 430 generally resides within a plane 435. The first protruding regions 433 protrude out of the plane 435 in a first direction (e.g., in a direction normal to the first side 431), and the second protruding regions 434 protrude out of the plane 435 in a direction opposed to the first direction. The first protruding regions 433 and the second protruding regions 434 are spaced apart from each other, and the portions of the elastic member 430 intermediate the protruding regions 433, 434 reside in the plane 435, and are referred to as intermediate regions 436.
(46) In some embodiments, the first protruding regions 433 are arranged in a grid pattern defined by rows and columns, and each second protruding region 434 is disposed along the rows and columns so as to alternate with adjacent first protruding regions. This configuration is shown schematically in
(47) Referring to
(48) In the embodiments illustrated in
(49) As an alternative to, or in addition to, adjusting the spring stiffness of the elastic member 430 by varying the distribution of the protruding regions 433, 434, it is possible to adjust the spring stiffness of the elastic member 430 by varying the shape of the protruding regions 433, 434. In the illustrated embodiments, the protruding regions 433, 434 are generally rectangular with sidewalls 437 that are generally perpendicular to the plane 435. The spring rate of the elastic member 430 can be decreased, for example, by providing protruding regions 433, 434 having sidewalls 437 that are less perpendicular to the plane 435. In other embodiments, the protruding regions 433, 434 have a cylindrical, conical or other shape. In addition, and/or alternatively, by providing an elastic member in which the geometry of the protrusions 433, 434 varies across the area surrounded by the elastic member periphery, the spring rate of the elastic member can be made to vary across the area surrounded by the elastic member periphery.
(50) Referring to
(51) The elastic member 530 generally resides within a plane 535. The protruding regions 533 are annular and arranged concentrically, and protrude out of the plane 535 in a direction normal to the second side 532. In some embodiments, the annular, concentric protruding regions 533 are arranged in a uniformly distributed pattern within the area surrounded by the elastic member periphery, for example by providing equal spacing between adjacent protruding regions 533a, 533b (
(52) Referring to
(53) The elastic member 630 generally resides within a plane 635. The first protruding regions 633 protrude out of the plane 635 in a first direction (e.g., in a direction normal to the first side 631), and the second protruding regions 634 protrude out of the plane 635 in a direction opposed to the first direction. The first protruding regions 633 and the second protruding regions 634 are spaced apart from each other, and the portions 636 of the elastic member 630 intermediate the protruding regions 633, 634 reside in the plane 635.
(54) Unlike the wavy contoured sheets illustrated in
(55) In some embodiments, the elastic member 630 may be slightly pleated in an accordion manner. The first protruding regions 633 and the second protruding regions 634 are arranged on alternating fold lines 639 of the pleat, and the perforations 638 are slits that extend transversely across the fold lines 639 of the pleat. In these embodiments, the first and second protrusions 633, 634 have a profile corresponding to a triangular prism (
(56) In some embodiments, the elastic member 630 may be corrugated (e.g., may have alternating ridges 641 and grooves 640). The first protruding regions 633 and the second protruding regions 634 are arranged on alternating grooves 640, and the perforations 638 are slits that extend transversely across the grooves 640. In the corrugated embodiment, the first and second protrusions 633, 634 have a profile corresponding to a trapezoid (
(57) The plates, including the first plate portion 331, the second plate portion 332, and those used to form elastic members 430, 530, 630 are formed of a material that is sufficiently elastic to serve as a compression spring and sufficiently rigid and plastic to permit shaping in a press. For example, the material used to form the first plate portion may selected from the group including, but not limited to, metal (steel, aluminum, copper, etc.), polymer (plastic), and elastomer (synthetic rubber material).
(58) Although the cell 20 is described herein as having a prismatic shape, the cell 20 is not limited to this shape. For example, the cell may have a circular, elliptical, pouch or other shape.
(59) Although the cell 20 is described herein as being a lithium-ion cell, the cell 20 is not limited to this type. For example, the cell 20 may be an alkaline cell, aluminum-ion cell, nickel metal hydride cell or other type of cell.
(60) The elastic members 30 are not limited to use between adjacent cells 20a, 20b, and may be adapted to provide support and compliance between adjacent modules 15 and/or subunits 14, and may also be adapted to permit support and compliance between a cell 20, a module 15 or a subunit 14 and the battery pack housing 12.
(61) Selective illustrative embodiments of the elastic member are described above in some detail. It should be understood that only structures considered necessary for clarifying the elastic member have been described herein. Other conventional structures, and those of ancillary and auxiliary components of the battery system, are assumed to be known and understood by those skilled in the art. Moreover, while working examples of the elastic member been described above, the elastic member is not limited to the working examples described above, but various design alterations may be carried out without departing from the device as set forth in the claims.