Cell stack and battery module
The cell stack design with shifted battery cells and elastic bodies in a parallelogram shape addresses dimensional changes in all-solid-state batteries, enhancing integration and energy density by managing expansion and contraction effectively.
Patent Information
- Application Number
- JP2021162013
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-30
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2041-09-30
AI Technical Summary
Conventional technologies fail to effectively suppress dimensional changes in the stacking direction of battery cells, particularly all-solid-state batteries, which experience significant expansion and contraction, making it difficult to integrate them into devices like vehicles.
A cell stack design where battery cells are stacked in one direction and shifted in a perpendicular direction, with an elastic body between them that allows displacement in two directions upon expansion, guided by a parallelogram-shaped structure, using elastomers like urethane-based materials to absorb expansion and contraction.
This design reduces dimensional changes in the stacking direction, facilitating easier integration into devices and improving energy density by efficiently managing cell expansion and contraction.
Smart Images

Figure 0007680927000001 
Figure 0007680927000002 
Figure 0007680927000003
Abstract
Description
[Technical field]
[0001] The present invention relates to a cell stack and a battery module including the cell stack. [Background technology]
[0002] In recent years, efforts to realize a low-carbon or carbon-free society have been gaining momentum as a concrete measure against global climate change. There is a strong demand for reducing CO2 emissions even in moving objects equipped with a drive source such as vehicles, and the electrification of drive sources is rapidly progressing. For example, development of vehicles such as electric vehicles or hybrid electric vehicles that are equipped with an electric motor as a drive source of the vehicle and a battery as a secondary battery capable of supplying power to the electric motor is underway. Such batteries generally include a cell stack composed of a plurality of battery cells stacked on top of each other.
[0003] Incidentally, battery cells expand and contract depending on the usage conditions (e.g., charging state). In particular, when so-called all-solid-state batteries are used as battery cells, the expansion and contraction is more significant. In view of this, the following Patent Document 1 discloses a technology in which a case housing a stack of all-solid-state battery cells is provided with two contact parts that respectively contact both ends of the stack in the stacking direction and two spring structures that connect the two contact parts, so that when the stack expands, the spring structures are pushed open and the major axis of the case extends to the thickness of the expanded stack, thereby preventing excessively high pressure from being applied to the stack. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2020-155356 A Summary of the Invention [Problem to be solved by the invention]
[0005] When considering installing the cell stack in any device such as a vehicle, it is desirable to suppress dimensional change of the cell stack in the stacking direction of the battery cells even if the battery cells expand, but there is room for improvement in this regard in conventional technology.
[0006] The present invention provides a technique capable of suppressing dimensional changes in a cell stack in the stacking direction of the battery cells even if the battery cells expand. [Means for solving the problem]
[0007] The first invention is, A cell stack formed by stacking a plurality of battery cells, the plurality of battery cells are stacked in a first direction and are shifted to one side in a second direction perpendicular to the first direction; an elastic body is disposed between adjacent battery cells of the plurality of battery cells; the elastic body is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. It is a cell stack.
[0008] The second invention is, The cell stack described above; A battery module comprising: a case that houses the cell stack; the case has the parallelogram shape when viewed from the third direction, and is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. A battery module. Effect of the Invention
[0009] According to the present invention, even if the battery cells expand, dimensional changes in the cell stack in the stacking direction of the battery cells can be suppressed. [Brief description of the drawings]
[0010] [Figure 1] FIG. 2 is a view of the cell stack 10 as seen from the Z direction. [Diagram 2] 1 is a view of the cell stack 10 as viewed from the Y direction. [Diagram 3] 1 is an enlarged view of an elastic body 12 of a cell stack 10 as viewed from the Z direction. [Figure 4] 3 is a diagram showing an example of displacement of a battery cell 11 due to expansion and contraction of the battery cell 11 in the cell stack 10. FIG. [Diagram 5] 1 is a view of a battery module 100 including a cell stack 10 as viewed from the Z direction. [Figure 6] 1 is a view of a battery module 100 including a cell stack 10 as viewed from the Y direction. [Figure 7] 10A to 10C are diagrams showing modified examples of the battery module 100 associated with expansion and contraction of the battery cells 11. [Figure 8] 10A and 10B are diagrams showing other modified examples of the battery module 100 associated with expansion and contraction of the battery cells 11. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] Hereinafter, an embodiment of a cell stack and a battery module including the cell stack of the present invention will be described in detail with reference to the drawings. Note that the drawings should be viewed in the direction indicated by the reference symbols.
[0012] [Cell stack] 1 and 2, the cell stack 10 of this embodiment includes a plurality of battery cells 11 arranged so as not to contact each other, and an elastic body 12 arranged between adjacent battery cells 11 of the plurality of battery cells 11. Here, the elastic body 12 is provided in a fixed state relative to the battery cell 11, for example by being adhered to the battery cell 11.
[0013] The battery cell 11 is configured using, for example, an all-solid-state battery. Although not shown, the all-solid-state battery has a positive electrode for the all-solid-state battery, a negative electrode for the all-solid-state battery, and a solid electrolyte disposed between the positive electrode for the all-solid-state battery and the negative electrode for the all-solid-state battery. In the all-solid-state battery, charging and discharging are performed by the exchange of lithium ions between the positive electrode for the all-solid-state battery and the negative electrode for the all-solid-state battery via the solid electrolyte. The solid electrolyte is not particularly limited as long as it has lithium ion conductivity and insulation properties, and materials generally used in all-solid-state lithium ion batteries can be used. For example, examples of the solid electrolyte include inorganic solid electrolytes such as sulfide solid electrolyte materials, oxide solid electrolyte materials, and lithium-containing salts, polymer-based solid electrolytes such as polyethylene oxide, and gel-based solid electrolytes containing lithium-containing salts and lithium-ion conductive ionic liquids. The form of the solid electrolyte material is not particularly limited, but examples include particulate forms.
[0014] In the cell stack 10, the multiple battery cells 11 are stacked in a first direction and are shifted to one side in a second direction perpendicular to the first direction. That is, the first direction is the stacking direction of the battery cells 11 in the cell stack 10. Hereinafter, the first direction is also referred to as the "X direction", one side in the X direction is also referred to as the "X1 direction", and the other side in the X direction is also referred to as the "X2 direction". In addition, the second direction perpendicular to the first direction (i.e., the X direction) is also referred to as the "Y direction", one side in the Y direction is also referred to as the "Y1 direction", and the other side in the X direction is also referred to as the "Y2 direction". In addition, the third direction perpendicular to the first direction (i.e., the X direction) and the second direction (i.e., the Y direction) is also referred to as the "Z direction".
[0015] The elastic body 12 is a cushioning material having a parallelogram shape, as viewed from the Z direction, consisting of a pair of base sides 12a extending in the Y direction and a pair of oblique sides 12b extending in the Y1 direction as they approach the X1 direction. The elastic body 12 is made of an elastic material, such as a resin or rubber. Examples of the resin include silicone-based, fluorine-based, urethane-based, amide-based, olefin-based, styrene-based, ester-based, and vinyl chloride-based elastomers. The urethane-based, amide-based, olefin-based, and ester-based materials are hard and can easily secure a load surface pressure, while the amide-based, styrene-based, urethane-based, ester-based, and vinyl chloride-based materials have a high restitution coefficient. The urethane-based elastomer is most preferable because it is less expensive than rubber and other elastomers, can easily secure a load surface pressure, and has a high restitution coefficient. By using an elastomer for the elastic body 12, the expansion or contraction of the battery cell 11 can be appropriately absorbed. Furthermore, by appropriately selecting the elastomer material taking into consideration the restoring force of the elastic body 12 and the environmental temperature of the environment in which the elastic body 12 is used, it is possible to apply appropriate pressure to the expanded battery cell 11 and to construct the elastic body 12 inexpensively and easily.
[0016] Specifically, as shown in Fig. 3, the elastic body 12 is formed by stacking a plurality of elastic blocks 13 in the Y direction, each of which has a parallelogram shape consisting of a pair of base sides 13a extending in the Y direction and a pair of oblique sides 13b extending in the Y1 direction as it approaches the X1 direction. This makes it possible to easily form the elastic body 12 having the parallelogram shape described above. For the elastic blocks 13, the elastomer described above can be used, for example. This makes it possible to easily form the elastic blocks 13 at low cost, thereby reducing the manufacturing cost of the cell stack 10.
[0017] In the cell stack 10 configured as described above, as shown in FIG. 4, when the battery cell 11 expands, the battery cell 11 is displaced in the X direction and also in the Y2 direction (see the arrows indicated by the reference numeral 400 in FIG. 4).
[0018] To explain in more detail, for example, restraining members (not shown) (for example, end plates or side walls of a case that houses the cell stack 10) are provided on both sides of the cell stack 10 in the X direction, and the cell stack 10 receives a reaction force from the restraining members when it tries to grow in the X direction. For this reason, when the battery cells 11 expand, the elastic bodies 12 arranged between the battery cells 11 are crushed accordingly. This makes it possible to prevent excessively high pressure from being applied to the battery cells 11 even if the battery cells 11 expand. In addition, the restoring force of the elastic bodies 12 makes it possible to apply an appropriate pressure to the battery cells 11 to restrain them.
[0019] As a result of the elastic body 12 being crushed in this manner, the battery cell 11 is displaced in the X direction as well as in the Y2 direction. That is, the elastic body 12 deforms in accordance with the expansion of the battery cell 11, and thereby functions as a displacement direction guiding section that guides the battery cell 11 to be displaced in the Y2 direction.
[0020] 4, the cell stack 10 is configured such that when the battery cells 11 are at their maximum expansion, the deviation in the Y direction between the battery cells 11 is substantially zero, and the battery cells 11 are aligned straight in the X direction. In other words, the cell stack 10 is configured such that when the battery cells 11 are at their non-maximum expansion, the battery cells 11 are misaligned in the Y direction.
[0021] As described above, in the cell stack 10, the battery cells 11 are displaced in both the X and Y2 directions due to deformation of the elastic body 12 caused by the expansion of the battery cells 11. This makes it possible to reduce the displacement of the battery cells 11 in the X direction compared to a case in which the expanded battery cells 11 are prevented from displacing in the Y2 direction. Therefore, even if the battery cells 11 expand in accordance with the usage conditions (e.g., the charging state), it is possible to suppress dimensional changes in the cell stack 10 in the stacking direction of the battery cells 11 (i.e., the X direction). Furthermore, suppressing dimensional changes in the cell stack 10 in the stacking direction of the battery cells 11 makes it easy to mount the cell stack 10 in any device, such as a vehicle.
[0022] Furthermore, with the cell stack 10, even if the battery cells 11 expand and contract, the displacement can be efficiently absorbed by the deformation of the elastic body 12, so that the volume (dead space) occupied by items other than the battery cells 11 in the cell stack 10 can be reduced, and it is also possible to improve the energy density of the cell stack 10.
[0023] [Battery module] Next, a description will be given of an example of a battery module including the above-described cell stack 10. In the following, the same reference numerals will be used to designate the same parts as those described above, and the description thereof will be omitted or simplified as appropriate.
[0024] 5 and 6, the battery module 100 includes a cell stack 10 and a case 110 that houses the cell stack 10. When viewed from the Z direction, the case 110 has a parallelogram shape consisting of a pair of base sides 110a extending in the Y direction and a pair of oblique sides 110b extending in the Y2 direction toward the X1 direction. This allows the shape of the case 110 and the shape of the cell stack 10 to match when viewed from the Z direction, as shown in FIG. 5, and makes it possible to reduce dead space that occurs when the cell stack 10 is housed in the case 110.
[0025] Moreover, the case 110 is configured using, for example, a laminate film in which a resin layer and a metal layer are laminated, and deforms in accordance with the displacement of the battery cells 11 of the housed cell stack 10. In other words, the case 110 does not hinder the displacement of the battery cells 11 of the housed cell stack 10.
[0026] 7, even in a battery module 100 in which the cell stack 10 is housed in a case 110, when the battery cell 11 expands, the battery cell 11 displaces in the X direction as well as in the Y2 direction. This makes it possible to reduce the displacement of the battery cell 11 in the X direction compared to a case in which the expanded battery cell 11 is prevented from displacing in the Y2 direction. Therefore, even if the battery cell 11 expands depending on the usage status (e.g., the charging state), it is possible to suppress the dimensional change of the battery module 100 in the stacking direction of the battery cell 11 (i.e., the X direction). Furthermore, suppressing the dimensional change of the battery module 100 in the stacking direction of the battery cell 11 makes it easy to mount the battery module 100 in any device such as a vehicle.
[0027] 8, for example, by arranging a plurality of battery modules 100 in the Y direction and controlling the usage status of each battery module 100 to be uniform, each battery module 100 (each cell stack 10) can be deformed in the same way, making it possible to provide a plurality of battery modules 100 by making effective use of a limited space. This makes it possible to improve the energy density of a battery pack or the like configured by arranging a plurality of battery modules 100 in the Y direction.
[0028] Although one embodiment of the present invention has been described above with reference to the accompanying drawings, it goes without saying that the present invention is not limited to such an embodiment. It is clear that a person skilled in the art can come up with various modified or revised examples within the scope of the claims, and it is understood that these also naturally belong to the technical scope of the present invention. In addition, the components in the above embodiment may be arbitrarily combined within the scope of the invention.
[0029] For example, in the above embodiment, the elastic body 12 is configured by stacking a plurality of elastic blocks 13 in the Y direction, but the present invention is not limited to this. For example, the elastic body 12 may be configured by a single cushioning material having a parallelogram shape, or the elastic body 12 may be configured by a plate material or the like formed in a substantially Z-shape having a pair of bases extending in the Y direction as viewed from the Z direction and a side connecting the pair of bases and extending in the Y1 direction as it approaches the X1 direction.
[0030] In the above embodiment, the battery cell 11 is configured using an all-solid-state battery, but the present invention is not limited to this. The battery cell 11 may be configured using any type of secondary battery that expands and contracts depending on the usage situation, such as a lithium ion battery.
[0031] This specification describes at least the following items. In parentheses, components corresponding to the above-described embodiment are shown as examples, but the present invention is not limited to these.
[0032] (1) A cell stack (cell stack 10) formed by stacking a plurality of battery cells (battery cells 11), the plurality of battery cells are stacked in a first direction (X direction) and are shifted to one side in a second direction (Y direction) perpendicular to the first direction; An elastic body (elastic body 12) is disposed between adjacent battery cells of the plurality of battery cells, the elastic body is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. Cell stack.
[0033] According to (1), because the battery cells can be displaced in the second direction due to deformation of the elastic body caused by the expansion of the battery cells, the displacement of the battery cells in the first direction can be reduced compared to a case in which the expanded battery cells are not displaced in the second direction. This makes it possible to suppress dimensional changes in the cell stack in the stacking direction of the battery cells even if the battery cells expand.
[0034] (2) The cell stack according to (1), When viewed from a third direction perpendicular to the first direction and the second direction, the elastic body has a parallelogram shape including a pair of base sides (base sides 12a) extending in the second direction and a pair of oblique sides (oblique sides 12b) extending toward the one side in the second direction as they approach the first direction. Cell stack.
[0035] According to (2), the battery cell can be displaced in the second direction by the deformation of the elastic body caused by the expansion of the battery cell.
[0036] (3) The cell stack according to (2), The elastic body is configured by stacking a plurality of elastic blocks (elastic blocks 13) having the parallelogram shape in the second direction. Cell stack.
[0037] According to (3), the elastic body having a parallelogram shape can be easily formed.
[0038] (4) The cell stack according to (2), The elastic body is made of a cushioning material. Cell stack.
[0039] According to (4), the elastic body can be formed inexpensively and easily, and the manufacturing cost of the cell stack can be reduced.
[0040] (5) The cell stack according to (4), The cushioning material is an elastomer. Cell stack.
[0041] According to (5), the expansion or contraction of the battery cell can be appropriately absorbed.
[0042] (6) The cell stack according to (5), The elastomer is any one of silicone-based, fluorine-based, urethane-based, amide-based, olefin-based, styrene-based, ester-based, and vinyl chloride-based elastomers. Cell stack.
[0043] According to (6), the expansion or contraction of the battery cell can be absorbed more appropriately.
[0044] (7) A cell stack according to any one of (2) to (6), A battery module (battery module 100) comprising a case (case 110) that houses the cell stack, the case has the parallelogram shape when viewed from the third direction, and is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. Battery module.
[0045] According to (7), even if the battery cells expand, dimensional changes in the battery module in the stacking direction of the battery cells can be suppressed. [Explanation of symbols]
[0046] 10 Cell stack 11 Battery Cell 12 Elastic body 12a Bottom 12b hypotenuse 13 Elastic block 100 Battery Module 110 cases
Claims
1. A cell stack formed by stacking a plurality of battery cells, the plurality of battery cells are stacked in a first direction and are shifted to one side in a second direction perpendicular to the first direction; an elastic body is disposed between adjacent battery cells of the plurality of battery cells; the elastic body is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. Cell stack.
2. The cell stack of claim 1 , When viewed from a third direction perpendicular to the first direction and the second direction, the elastic body has a parallelogram shape including a pair of base sides extending in the second direction and a pair of oblique sides extending toward the one side in the second direction as they approach the first direction. Cell stack.
3. The cell stack according to claim 2, The elastic body is configured by stacking a plurality of elastic blocks having the parallelogram shape in the second direction. Cell stack.
4. The cell stack according to claim 2, The elastic body is made of a cushioning material. Cell stack.
5. The cell stack according to claim 4, The cushioning material is an elastomer. Cell stack.
6. The cell stack according to claim 5 , The elastomer is any one of silicone-based, fluorine-based, urethane-based, amide-based, olefin-based, styrene-based, ester-based, and vinyl chloride-based elastomers. Cell stack.
7. The cell stack according to any one of claims 2 to 6, A battery module comprising: a case that houses the cell stack; the case has the parallelogram shape when viewed from the third direction, and is configured such that, when the battery cell expands, the battery cell is displaced in the first direction and displaced to the other side in the second direction. Battery module.
Citation Information
Patent Citations
Battery pack and vehicle mounted with same
JP2005302698A
Battery array, structure and method
JP2013518394A
Battery pack
JP2014002907A
Battery module
JP2020061210A
Case, manufacturing method of the same, laminate insertion method, and battery stack
JP2020155356A