Cover assembly
A cover assembly with a dual-material sealing element addresses material compatibility issues in immersion-cooled battery cells, offering cost-effective and reliable sealing and electrical conductivity.
Patent Information
- Application Number
- PCT/EP2025/050020
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-03
- Filing Date
- 2025-01-02
- Publication Date
- 2025-10-09
AI Technical Summary
Existing cover assemblies for battery cells face challenges in material compatibility between the electrolyte inside and external liquid cooling medium during immersion cooling, requiring improved sealing elements that are both cost-effective and suitable for immersion cooling.
A cover assembly with a sealing element composed of two different materials, where one part is resistant to the electrolyte and the other to the immersion liquid, separated by a dividing line, ensuring effective sealing and electrical conductivity.
The solution provides a cost-effective cover assembly suitable for immersion cooling with enhanced material resistance to both electrolyte and immersion liquid, preventing corrosion and ensuring secure electrical connections.
Smart Images

Figure EP2025050020_09102025_PF_FP_ABST
Abstract
Description
[0001] Cover assembly
[0002] Description
[0003] The present invention relates to a cover assembly for an immersion-cooled battery cell and to a battery cell having such a cover assembly.
[0004] Battery cells, such as prismatic cells, are used in rechargeable lithium-ion batteries, sodium-ion batteries, or supercapacitors, for example. The battery cell comprises a housing, which is usually made of aluminum, and a cover assembly that is attached to the housing and closes the housing. The cover assembly therefore has the task of closing and sealing the battery housing in order to protect the environment from the cell chemistry. The cover assembly should also prevent interfering substances such as oxygen or water from outside from entering the cell interior. Furthermore, the cover assembly should enable the connection of electrodes inside the battery cell and electrical contact outside the battery cell. For efficient cooling, it is advantageous if the battery cell is cooled by means of immersion cooling, in which the battery cell is completely placed in a liquid cooling medium.However, this places high demands on the sealing elements that seal a terminal (pole) in the base plate. In particular, problems arise regarding material compatibility between the electrolyte located inside the battery cell and the external liquid cooling medium.
[0005] The object of the present invention is to provide an improved cover assembly that is simple and cost-effective to manufacture and is suitable for immersion cooling with a liquid cooling medium. Furthermore, the object of the present invention is to provide a battery cell with such a cover assembly.
[0006] This object is achieved by a cover assembly having the features of claim 1 and a battery cell having the features of claim 11.
[0007] The subclaims show preferred developments of the invention.
[0008] The cover assembly according to the invention with the features of claim 1 has the advantage that the cover assembly is suitable for immersion cooling, wherein a sealing element which fastens a terminal to the base plate and, in the assembled state, seals an inner side of the battery cell from an outer side, is suitable for different liquids inside, in particular electrolytes, and outside, in particular immersion liquids. In other words, the sealing element has sufficient material resistance to both an electrolyte and an immersion liquid on an outer side of the battery cell over the service life of the battery cell. This is achieved according to the invention in that the cover assembly has a metallic base plate and a first terminal which is arranged in a through-opening of the base plate.The sealing element is designed to fasten and seal the first terminal to the base plate. The sealing element is thus arranged in the through-opening and designed to seal a first connection region between the terminal and the sealing element and a second connection region between the base plate and the sealing element and to provide a connection between the first terminal and the base plate. The sealing element is a one-piece component with a first sub-region made of a first component and a second sub-region made of a second component. The two components are made of two different materials. The first sub-region is only exposed to the inside of the cover assembly and the second sub-region is only exposed to the outside of the cover assembly. The first sub-region therefore only comes into contact with the electrolyte on the inside of the cover assembly.The second sub-area comes into contact exclusively with an immersion fluid, e.g., a thermal oil or the like, on the outside of the cover assembly. This allows a cover assembly suitable for immersion cooling to be provided in a simple and cost-effective manner.
[0009] Preferably, a dividing line is arranged between the first and second partial regions of the sealing element such that the dividing line lies in the through-opening of the base plate. The through-opening is preferably cylindrical, so that the dividing line abuts a cylindrical wall region of the through-opening.
[0010] Particularly preferably, the first component of the first subregion is selected such that the first component is resistant to an electrolyte of the battery cell. The second component is preferably selected such that the second component is resistant to a heat transfer fluid.
[0011] Further preferably, the first component is made from a first elastomer and the second component is made from a second elastomer that is different from the first elastomer. The first component is preferably EPDM (ethylene propylene diene rubber) and the second component is preferably NBR (acrylonitrile butadiene rubber). Further preferably, a single adhesion-promoting coating is arranged on the base plate on a surface facing the sealing element. The adhesion-promoting coating improves the tightness between the sealing element and the base plate. A single adhesion-promoting coating is sufficient, providing both improved adhesion of the first component of the first sub-region and improved adhesion of the second component of the second sub-region.The adhesion-promoting coating is preferably provided completely in the through-opening and on an outer side and an inner side of the base plate.
[0012] Further preferably, the first terminal is designed as a cathode, and the first component and / or the second component exhibits electrical conductivity. This can prevent corrosion at the first terminal.
[0013] Further preferably, the first component and the second component are attached to the metallic base plate and the first terminal by means of a single injection molding process. The two different components can be molded in one tool by two consecutive injection molding processes. Alternatively, two injection molds can be used.
[0014] Further preferably, a single adhesion-promoting coating is also arranged on the first terminal on a surface facing the sealing element. The adhesion-promoting coating is preferably the same coating as on the base plate. The two coatings are preferably applied in a single operation.
[0015] More preferably, the cover assembly comprises a first and a second terminal. The sealing element at the first terminal is made of an electrically conductive material. The sealing element at the second terminal, which forms the anode, is made of an electrically non-conductive material.
[0016] The first and / or second terminal is preferably rectangular and, in particular, has a peripheral edge. The peripheral edge is preferably directed toward the inside of the battery cell.
[0017] The first terminal, which serves as the cathode, is preferably made of aluminum. The second terminal, which serves as the anode, is preferably made of an aluminum-copper composite. The base plate is more preferably made of aluminum.
[0018] More preferably, the sealing element comprises an outer region, a central region arranged in the through-opening, and an inner region. The outer region and the inner region are formed substantially parallel to the base plate and extend such that the outer region and the inner region enclose at least a portion of the base plate. The inner region is thus made from the first component, and the outer region is made from the second component.
[0019] Furthermore, the present invention relates to a battery cell comprising a cover assembly according to the invention.
[0020] Preferred embodiments of the invention are described in detail below with reference to the accompanying drawings. In the drawing:
[0021] Fig. 1 is a schematic sectional view of a cover assembly according to a first embodiment of the invention,
[0022] Fig. 2 is a schematic, enlarged partial sectional view of a first terminal of the cover assembly of Fig. 1,
[0023] Fig. 3 is an enlarged partial sectional view of the second terminal of the cover assembly of Fig. 1,
[0024] Fig. 4 is a schematic representation of a battery cell with a cover assembly according to the invention from Fig. 1, and
[0025] Fig. 5 is a schematic representation of a battery cell with a cover assembly according to a second embodiment of the invention.
[0026] A cover assembly 1 according to a first preferred embodiment of the invention will be described in detail below with reference to Figs. 1 to 4.
[0027] The cover assembly 1 comprises, as shown in Fig. 1, a metallic base plate 2. Two through openings 20 are formed in the metallic base plate 2.
[0028] The cover assembly 1 further comprises a first terminal (cathode) 3 and a second terminal (anode) 4. One terminal each is arranged in one of the through openings 20 in the base plate 2.
[0029] The first terminal 3, which forms the cathode, is made entirely of aluminum.
[0030] The second terminal 4, which forms the anode, is made of a first part 4a made of aluminum and a second part 4b made of copper.
[0031] The first and second terminals have the same geometric structure and are rectangular in shape (see Fig. 4).
[0032] The cover assembly 1 further comprises a first sealing element 5, which fixes the first terminal 3 to the base plate 2. The first sealing element 5 is made of an electrically conductive material. The first sealing element 5 comprises an outer region 50, a central region 51, and an inner region 52. The outer region 50 is directed toward the outside of the cover assembly. The inner region 52 is arranged on an inner side of the cover assembly 1.
[0033] As can be seen from Fig. 1 and 2, the sealing element is designed in a C-shaped section by two legs which are formed by the outer region 50 and the inner region 52, and the central region 51 connecting the outer region 50 and the inner region 52.
[0034] The first terminal 3, as further shown in Fig. 1, has a main area and a peripheral edge area 30, which is arranged on the inside of the cover assembly 1 and runs completely around the main area of the first terminal 3. The corners of the first terminal, which is square, are rounded. This ensures a secure connection between the sealing element 5 and the first terminal 3.
[0035] The first sealing element 5 can be molded onto the first terminal 3 and the base plate 2 by an injection molding process, which can be inserted, for example, as inserts into an injection mold. Similarly, a second sealing element 5' is molded onto the second terminal 4 and the base plate 2 at the second terminal 4.
[0036] The sealing elements 5, 5' on the first terminal 3 and the second terminal 4 are each geometrically identical. The sealing elements 5, 5' are arranged in the through-openings 20 and are configured to seal a first connection area 6 between the terminal and the sealing element and a second connection area 7 between the base plate and the sealing element, providing a connection between the terminals and the base plate as well as a secure fixation.
[0037] The sealing element 5 on the first terminal 3 is electrically conductive and comprises a first partial region 5a and a second partial region 5b. The sealing element 5 is a one-piece component. The first partial region 5a is made from a first component, and the second partial region 5b is made from a second component, with the two components being made of different materials. The first partial region 5a is directed exclusively toward the inside of the cover assembly and is exposed to the inside, while the second partial region 5b is directed exclusively toward the outside of the cover assembly and is exposed to the outside.
[0038] In other words, the first partial region 5a only comes into contact with an electrolyte 14 on an inner side of the cover assembly, and the second partial region 5b only comes into contact with an immersion cooling fluid 15 on an outer side of the cover assembly. A dividing line 13 between the first partial region 5a and the second partial region 5b is arranged in the region of the through-opening 20. The dividing line 13 is preferably parallel to the base plate 2. Particularly preferably, the dividing line 13 is arranged in the center of the through-opening 20 in the through-opening direction.
[0039] Since the first sealing element 5 is made of an electrically conductive material, corrosion protection can be achieved for the first terminal 3, which is designed as a cathode. It is sufficient if the first partial region 5a or the second partial region 5b is electrically conductive. An electrical connection is thus provided from the first terminal 3 to the base plate 2 via the electrically conductive first sealing element 5.
[0040] The provision of the dividing line 13 in the through-opening 20 ensures that the first partial region 5a comes into contact exclusively with the electrolyte and the second partial region 5b comes into contact exclusively with the immersion cooling fluid 15. The material of the first partial region 5a is selected such that it is resistant to the electrolyte 14. The material of the second partial region 5b is selected such that it is resistant to the immersion cooling fluid 15.
[0041] Elastomers are preferably provided as the material for the first and second partial areas 5a, 5b. The material for the first partial area 5a is preferably EPDM, and the material for the second partial area 5b is preferably NBR.
[0042] For particularly secure sealing at the first connection area 6 and the second connection area 7, additional adhesion-promoting coatings can be provided. More specifically, a first adhesion-promoting coating 11 is provided on the first terminal 3 in the areas that lie in the through-opening 20 when assembled. Furthermore, a second adhesion-promoting coating 12 is provided on the base plate 2 in the area of the through-opening 20.
[0043] As can be seen particularly from Fig. 2, the first and second adhesion-promoting coatings 11, 12 additionally cover all areas that could come into contact with the first and second partial areas of the sealing element 5. In other words, there is no direct contact between the first terminal 3 and the sealing element 5; rather, the first adhesion-promoting coating 11 is provided in all areas. Similarly, the second adhesion-promoting coating 12 is provided between the sealing element 5 and the base plate 2. Preferably, the two adhesion-promoting coatings are selected from the same coating material.
[0044] As can be seen from Figures 1 and 3, the second terminal 4 and the
[0045] The through-opening 20 and the base plate 2 in this area are geometrically designed in the same way as the first terminal 3. Here, too, the dividing line 13 is arranged between a first partial area 5'a and a second partial area 5'b in the through-opening 20. The first adhesion-promoting coating 11 and the second adhesion-promoting coating 12 are provided in the same way.
[0046] At the second terminal 4, the first sub-region 5'a and the second sub-region 5'b of the second sealing element 5' do not have to be made of an electrically conductive material, but are made of an electrically non-conductive material. The first sub-region 5'a is resistant to the electrolyte 14, and the second sub-region 5'b is resistant to the immersion cooling fluid 15.
[0047] The cover assembly can be manufactured through multiple injection molding processes, preferably in a single injection mold. The base plate 2, the first terminal 3, and the second terminal 4 are provided as inserts. Since four different materials are used for the four sub-regions of the first and second sealing elements 5, 5', four individual injection molding processes are necessary in the shared injection mold. If only one of the two sub-regions 5'a, 5'b of the first sealing element 5 is electrically conductive, the other of the two sub-regions can be selected from the same material as the anode on the second terminal 4. As a result, only three injection molding processes are necessary, since one of the sub-regions on the first and second terminals 3, 4 can be molded in one injection molding process.
[0048] The C-shaped design of the sealing elements 5, 5' results in a relatively long first connection area 6, which provides media tightness between the sealing element 5 and the first terminal 3. A relatively long second connection area 7 also results between the sealing element 5, 5' and the base plate 2.
[0049] In addition to sealing the terminals 3, 4 and the base plate 2, the sealing elements 5, 5' also serve as a fixing device for fixing the terminals 3, 4 in the through-openings 20 of the base plate 2. In particular, by designing the first and second terminals 3, 4 with the circumferential edge region 30, 40 and steps 22 on the base plate 2, which lie at least partially over the circumferential edge regions 30, 40, a positive, secure fixing of the terminals 3, 4 can be realized.
[0050] A filling opening 8 and a bursting area 9 are also provided in the base plate 2.
[0051] Furthermore, an insulation plate 10 is provided on the inside of the base plate 2, which can be clipped to the base plate 2 before the injection process of the sealing elements 5, 5'. The insulation plate 10 has a circumferential edge 10a in the area of the through-openings 20, which ensures correct positioning during the injection process of the injected sealing elements 5, 5'.
[0052] As can be further seen from Fig. 1, the two sealing elements 5, 5' are designed such that the inner region 52 partially encompasses the edge region 30, 40 of the two terminals 3, 4. This achieves an even better fixation of the terminals 3, 4 to the base plate 2.
[0053] Fig. 4 shows an assembled battery cell 100 in which the cover assembly 1 is fixed to a prismatic battery housing 101. The battery housing 101 is preferably made of the same material as the metallic base plate 2, in particular aluminum. This allows a simple connection between the cover assembly 1 and the battery housing 101, for example, by welding.
[0054] Thus, a cover assembly 1 for battery cells with immersion cooling can be provided, wherein the sealing elements 5, 5' consist of two-component materials, each of which can be optimized for resistance to the electrolyte 14 and the immersion cooling fluid 15. This achieves improved material resistance to the electrolyte and the immersion cooling fluid. The sealing elements 5, 5' are preferably injection-molded in one mold, preferably in multiple molds.
[0055] Adhesion-promoting coatings 11, 12 on the components to which the sealing elements 5, 5' are applied improve the tightness of the connecting areas 6, 7. This is further enhanced by the arrangement of the dividing lines 13 in the area of the through openings 20.
[0056] Fig. 5 shows an alternative embodiment of a battery cell 100, in which two cell covers 1a and 1b are provided, each arranged on opposite narrow sides of the battery cell 100 and covering the battery housing 101. The first terminal 3 is arranged on the first cell cover 1a, and the second terminal 4 is arranged on the second cell cover 1b. The second cell cover 1b additionally has the filling opening 8. The bursting area 9 is provided in the battery housing 101 on the long narrow side (see Fig. 5). The sealing elements in Fig. 5 are designed in the same way as in the first exemplary embodiment.
Claims
Claims 1. A cover assembly (1) of a battery cell with immersion cooling, the cover assembly (1) having an inner side and an outer side, comprising: a metallic base plate (2), a first terminal (3) arranged in a through-opening (20) of the base plate (2), a sealing element (5) which fastens and seals the first terminal (3) to the base plate (2), the sealing element (5) being arranged in the through-opening (20) and being configured to seal a first connecting region (6) between the first terminal (3) and the sealing element (5) and a second connecting region (7) between the base plate (2) and the sealing element (5) and to provide a connection between the first terminal (3) and the base plate (2), the sealing element (5) being a one-piece component with a first partial region (5a) made of a first material and a second partial region (5b) made of a second material,wherein the first material is different from the second material, and wherein the first partial region (5a) is exposed exclusively to the inside of the cover assembly and the second partial region (5b) is exposed exclusively to the outside of the cover assembly., 2. Cover assembly (1) according to claim 1, wherein a dividing line (13) lies between the first partial region (5a) and the second partial region (5b) in the through opening (20).
3. Cover assembly (1) according to one of the preceding claims, wherein the first material of the first partial region (5a) is resistant to an electrolyte (14) and the second material of the second partial region (5b) is resistant to a heat transfer fluid (15).
4. Cover assembly (1) according to one of the preceding claims, wherein the first partial region (5a) is made of a first elastomer and the second partial region (5b) is made of a second elastomer which is different from the first elastomer.
5. Lid assembly (1) according to claim 4, wherein the first elastomer is EPDM and the second elastomer is NBR.
6. Cover assembly (1) according to one of the preceding claims, wherein a first adhesion-promoting coating (11), in particular a continuous one, is arranged on the first terminal (3) on a surface directed towards the sealing element (5) and / or wherein a second adhesion-promoting coating, in particular a continuous one, is arranged on the base plate (2). adhesion-promoting coating (12) is arranged on a surface directed towards the sealing element (5).
7. The cover assembly (1) according to claim 6, wherein the first and / or second adhesion-promoting coating (11, 12) completely covers the through-opening (20).
8. The cover assembly (1) according to one of the preceding claims, wherein the first terminal (3) is designed as a cathode and the first partial region (5a) and / or the second partial region (5b) are designed to be electrically conductive.
9. Cover assembly (1) according to one of the preceding claims, which comprises a first terminal (3) and a second terminal (4), wherein a second sealing element (5') made of an electrically non-conductive material is arranged on the second terminal (4).
10. Cover assembly (1) according to claim 9, wherein the first terminal (3) and the second terminal (4) are each rectangular and in particular have a peripheral edge region (30, 40).
11. Battery cell comprising a cover assembly (1) according to one of the preceding Claims.
Citation Information
Patent Citations
Lid assembly of a battery cell housing, method for its manufacture and use of such an assembly
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Battery cell and traction battery for a motor vehicle
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