BATTERY MODULE AND BATTERY PACK
20230216123 · 2023-07-06
Inventors
Cpc classification
H01M50/258
ELECTRICITY
H01M50/249
ELECTRICITY
H01M10/6556
ELECTRICITY
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
H01M50/507
ELECTRICITY
H01M50/213
ELECTRICITY
H01M2220/20
ELECTRICITY
International classification
H01M50/213
ELECTRICITY
H01M50/258
ELECTRICITY
H01M50/507
ELECTRICITY
Abstract
A battery module comprising a plurality of battery cells having two opposite ends, a first busbar assembly comprising at least a first busbar coupled with a first busbar frame, and a second busbar assembly comprising at least a second busbar coupled with a second busbar frame configured to electrically couple the battery cells, and a main frame having side walls forming a housing and a middle wall inside the housing dividing an inner space of the housing in a vertical direction to a first and a second section, wherein the middle wall comprises a plurality of holes for receiving the battery cells such that one end of battery cell is in the first section and another end is in the second section, and wherein the middle wall further comprises a plurality fastening members for fastening the first busbar assembly to the main frame in the first section and the second busbar assembly to the main frame in the second section such that the battery cells are arranged between the first and the second busbar assemblies which couple the battery cells to the battery module.
Claims
1. A battery module comprising: a plurality of battery cells having two opposite ends; a first busbar assembly comprising at least a first busbar coupled with a first busbar frame, and a second busbar assembly comprising at least a second busbar coupled with a second busbar frame configured to electrically couple the battery cells; and a main frame having side walls forming a housing and a middle wall inside the housing dividing an inner space of the housing in a vertical direction to a first and a second section, wherein the middle wall comprises a plurality of holes for receiving the battery cells such that one end of each battery cell is in the first section and another end is in the second section, and wherein the middle wall is substantially in the middle of the battery cells in the vertical direction supporting the battery cells substantially from the middle, and wherein the middle wall further comprises a plurality fastening members for fastening the first busbar assembly to the main frame in the first section and the second busbar assembly to the main frame in the second section such that the battery cells are arranged between the first and the second busbar assemblies which couple the battery cells to the battery module.
2. The battery module of claim 1, wherein the main frame comprises a first conduit in vicinity of a first end of the frame for leading a heat transfer substance into the battery module, and a second conduit in vicinity of a second end of the frame for leading the heat transfer substance out of the battery module.
3. The battery module of claim 2, wherein the first conduit comprises one or more inlets for leading the heat transfer substance into the first and/or the second section of the frame, and the second conduit comprises one or more outlets for leading the heat transfer substance out of the first and/or second section of the frame.
4. The battery module of claims 2, wherein the first and/or the second busbar frame comprises at least one groove in vicinity of the ends of the battery cells configured to enable access of the heat transfer substance to the ends of the battery cells.
5. The battery module of claim 4, wherein the groove forms a channel network in the busbar frame to enable access of the heat transfer substance to a plurality of the ends of the battery cells.
6. The battery module of claim 1, wherein the first busbar frame is arranged between the first busbar and the battery cells, and the second busbar frame is arranged between the second busbar and the battery cells.
7. The battery module of claim 1, wherein there is a gap between the first busbar assembly and the middle wall in the first section, and between the second busbar assembly and the middle wall in the second section of the frame.
8. The battery module of claim 1, wherein there is a gap between the adjacent battery cells arranged between the first and the second busbar assemblies.
9. The battery module of claim 1, wherein at least part of the fastening members of the middle wall comprises at least one guiding wall configured to guide a flow of the heat transfer substance inside the battery module.
10. The battery module of claim 1, wherein a first edge of the side walls of the main frame comprises a first locking element and a second edge of the side walls of the main frame comprises a second locking element, wherein the second locking element is configured to receive the first locking element.
11. The battery module of claim 1, wherein the middle wall is substantially in the middle of the housing in a vertical direction.
12. The battery module of claim 1, wherein the side walls comprise one or more fastening members for coupling a plurality of the battery modules together.
13. A battery pack comprising a plurality of a battery modules of claim 1.
14. The battery pack of claim 13, wherein a plurality of the battery modules is stacked one on the other wherein a top and a bottom module comprises a cover.
15. The battery pack of claim 13, wherein the cover of the top or the bottom module comprises an inlet connector and an outlet connector for leading a heat transfer substance into and/or out of a first and/or a second conduit of a main frame of the battery module.
Description
LIST OF DRAWINGS
[0006] Example embodiments of the present invention are described below, by way of example only, with reference to the accompanying drawings, in which
[0007]
[0008]
[0009]
[0010]
DESCRIPTION OF EMBODIMENTS
[0011] The following embodiments are only examples. Although the specification may refer to “an” embodiment in several locations, this does not necessarily mean that each such reference is to the same embodiment(s), or that the feature only applies to a single embodiment. Single features of different embodiments may also be combined to provide other embodiments. Furthermore, words “comprising” and “including” should be understood as not limiting the described embodiments to consist of only those features that have been mentioned and such embodiments may contain also features/structures that have not been specifically mentioned. All combinations of the embodiments are considered possible if their combination does not lead to structural or logical contradiction.
[0012] A plurality of battery cells may be used to form a battery module, and a plurality of the battery modules may be used to form a battery pack with a desired capacity. A structure of battery modules having a plurality of battery cells is often complex. The complexity may cause challenges in a manufacturing of the battery modules. In addition, the cells need an efficient heat transfer system that may cause more issues to the structure. The solution according to the invention provides the battery module and the battery pack having a simple structure with the efficient heat transfer.
[0013] According to an aspect, there is provided a battery module comprising a plurality of battery cells having two opposite ends, a first busbar assembly comprising at least a first busbar coupled with a first busbar frame, and a second busbar assembly comprising at least a second busbar coupled with a second busbar frame configured to couple the battery cells electrically to form desired battery configuration, and a main frame having side walls forming a housing and a middle wall inside the housing dividing an inner space of the housing in a vertical direction to a first and a second sections, wherein the middle wall comprises a plurality of holes for receiving the battery cells such that one end of battery cell is in the first section and another end in the second section, and wherein the middle wall further comprises a plurality fastening members for fastening the first busbar assembly to the middle wall in the first section and the second busbar assembly to the middle wall in the second section such that the battery cells are arranged between the first and the second busbar assemblies which couple the battery cells to the battery module.
[0014] The term “vertical direction” refers to a height H of the module, the term “width direction” refers to a width W of the module and the term “longitudinal direction” refers to a length L of the module. These directions are illustrated by arrows in
[0015] Referring to
[0016] Still referring to
[0017] Referring now to
[0018] In an embodiment, the main frame 110 further comprises the middle wall 114 inside the housing dividing an inner space of the housing in the vertical direction H to the first and the second sections 116A-B. The first section 116A may be an upper portion of the inner space which is above the middle wall 114, and the second section 116B may be a lower portion of the inner space which is below the middle wall as illustrated in
[0019] Referring now to
[0020] Referring now to
[0021] In an embodiment, the busbar assemblies may be coupled only with the middle wall via fastening members, not with the other parts of the frame like side walls, for example. Then all the fastening members may be placed in the middle wall. In another embodiment, a part of the fastening members of the middle wall may be in connection with the side walls. In other words, some of the fastening members may be in the middle wall and further in connection with the side walls.
[0022] Conventionally the battery modules comprise one or more separate support parts for holding the cells in the desired arrangement, and to couple the cells into the frame. This may make the known battery module structures complex.
[0023] In the invention, the middle wall that acts as a support part, is integrated with the frame. Hence, the battery module assembly comprises only the main frame that forms the side walls around the battery cells, and further provides the middle wall having the holes for supporting and holding the battery cells in the module with the busbar assemblies. This is very beneficial especially from a manufacturing point of view since the main frame having the middle wall can be made of the one part by an injection moulding, for example. In addition, when the middle wall is integrated in the frame, the assembling of the battery module is simpler and easier since there is less parts in the assembly.
[0024] In an embodiment, the fastening members in the middle wall comprise a protrusion like a screw boss (screw tower). The protrusion may comprise a hole configured to receive a screw used for fastening the busbar assemblies in the middle wall (main frame).
[0025] Referring now to
[0026] In an embodiment, the first conduit 122A comprises one or more inlets 124A for leading the heat transfer substance into the first and/or the second section of the frame 116A-B, and the second conduit 122B comprises one or more outlets 124B for leading the heat transfer substance out of the first and/or second section of the frame 116A-B.
[0027] In an embodiment, the battery cells in the module may be divided in three groups in the longitudinal direction, and hence the holes in the middle wall may have the same grouping. Referring now to
[0028] In an embodiment, the first conduit 122A comprises three inlets 124A in the first and the second section configured to lead the heat transfer substance to each of the groups G1-G3. In other words, the inlets are placed in the conduit such that there is the inlet for each group of the cells on both sections of the main frame. Respectively the second conduit 122A comprises three outlets 124B in the first and the second section for leading the heat transfer substance out of each group G1-G3. Hence, the outlets are also placed in the conduit such that there is the outlet for each group of the cells on both sections of the frame. It is still good to understand that the heat transfer substance may also move between the groups.
[0029] In an embodiment, the holes (and the cells) may also be divided differently than presented above (three groups). There may be more or less than three groups, depending on the capacity of the module. Then also the amount of the inlets and outlets in the conduits may be adjusted to be accordant with the amount the of the groups in both sections of the frame.
[0030] Referring now to
[0031] The busbar frame 108A-B may comprise cavities 128 configured to receive the end of the battery cells. The cavity may block, at least partly, the flow of the heat transfer substance to the end of the cell. Still, it is important from the cooling point of view that the heat transfer substance is in contact with the ends of the cells since the ends generate the most heat. The groove opens the structure of the busbar frame such that the heat transfer substance can be in connection with the end of the battery cell placed in the cavity. The groove(s) 126 may create a channel network 142 extending thought the busbar frame 108A-B such that the heat transfer substance can flow through the cavities 128 and be in contact with the ends of the cells 102. The channel network may connect all the cavities.
[0032] As described above, the holes (and the battery cells) may be divided into the three groups G1-G3 in the middle wall 114, for example. The busbar frame 108A-B may comprise the above mentioned channel network 142A-C, created by the groove(s) 126, for each of these groups G1-G3 as illustrated in
[0033] The channel network of each group may comprise a plurality of openings in the first end of the first and second busbar frame enabling progress of the heat transfer substance into the channel network (grooves) and a plurality of the opening in the second end enabling progress of the heat transfer substance out of the channel network. In
[0034] In an embodiment, illustrated for example in
[0035] Referring to
[0036] In an embodiment, there is a gap between the adjacent battery cells 102 arranged between the first and the second busbar assemblies 104A-B. The gap between the adjacent cells enables access of the heat transfer substance to all battery cells and also enables better flow of the substance.
[0037] In an embodiment, at least part of the fastening members of the middle wall comprises at least one guiding wall configured to guide a flow of the heat transfer substance inside the battery module. This is not illustrated in Figures. As described, the fastening member may be the screw boss, and one or more adjacent screw bosses may be coupled together with the guiding wall. Referring now to
[0038] Referring to
[0039] In an embodiment, the first and/or second locking element comprises a sealing element, like a gasket, for sealing the interface between the two or more modules stacked one on the other. The sealing may be configured to keep the heat transfer substance inside the module(s), for example.
[0040] In an embodiment, the middle wall is substantially in the middle of the housing (side walls) in the vertical direction. Referring to
[0041] In an embodiment, the side walls 112A-D comprise one or more fastening members 132 for coupling a plurality of the battery modules 100 together. The fastening members are illustrated in
[0042] Referring to
[0043] Still referring to
[0044] In an embodiment, the cover 136A-B comprises an inlet connector 138A and an outlet connector 138B for leading the heat transfer substance into and/or out of the first and the second conduit 122A-B of the frame 110 of the battery module 100. In
[0045] The battery module according to the invention provides the structure that alleviates many issues of the known solutions. The main frame of the module comprises the integrated middle wall that removes needs for separate support elements for the battery cells, hence the battery module assembly has less parts and its structure is simpler. In addition, the structure enables the efficient way to transfer heat from/to the battery cells.
[0046] It will be obvious to a person skilled in the art that, as technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the example embodiments described above but may vary within the scope of the claims.