Thermal management device for an electric battery

A thermal management device with compressible compartments and superior insulation materials addresses the inefficiencies of existing foams by managing thermal expansion and limiting heat propagation, improving safety and insulation in electric batteries.

FR3164061A1Pending Publication Date: 2026-01-02HUTCHINSON SA
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Patent Information

Application Number
FR2024007150
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-01
Publication Date
2026-01-02

AI Technical Summary

Technical Problem

Existing thermal management solutions for electric batteries, such as polyurethane or silicone-based foams, fail to effectively limit the propagation of heat during thermal runaway due to insufficient thermal insulation and require excessive thickness, compromising safety and efficiency.

Method used

A thermal management device with compressible compartments filled with superior insulation materials, such as aerogel-based compounds, is introduced to manage thermal expansion and limit heat propagation, featuring compartments with insulation covering up to 70% of the surface and walls covering 30%, eliminating thermal bridges.

Benefits of technology

The device effectively manages thermal expansion and limits heat propagation during thermal runaway, enhancing safety and insulation performance by using materials with low thermal conductivity and compressibility, adapting to battery cell expansion.

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Abstract

This disclosure relates to a thermal management device (200) for an electric battery, the thermal management device comprising a structure (202) made of a compressible material having one or more housings (204) arranged in at least one surface of said structure, and wherein each housing is filled with insulation (205), said insulation having thermal insulation superior to the thermal insulation of the material of said structure. Abstract figure: Figure 2
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Description

Title of the invention: Thermal management device for an electric battery. Technical field

[0001] This disclosure relates to the technical field of electric batteries, and more specifically to the thermal management of said batteries. This disclosure falls within the domain of thermal management elements, particularly for batteries of an electric or hybrid vehicle.

[0002] In this respect, the invention relates to a thermal management device for an electric battery. The invention also relates to an electric battery comprising such a thermal management device. Previous technique

[0003] In a multi-cell electric battery, that is, a battery comprising several independent battery cells grouped in a module, these cells are generally arranged in contact with each other along their lateral faces. During the charging / discharging of the battery cells, heat is produced by the battery cells. In the event of thermal runaway in one cell, it is crucial to limit the propagation of heat from one cell to another.

[0004] Under normal use, battery cells expand by several percent in volume. To allow for safe expansion of the battery cells, intercalation elements are placed between them. These intercalation elements are sufficiently compressible during charge / discharge cycles to allow the expansion of the battery cells without damaging the battery or the intercalation elements. It is known to install polyurethane or silicone-based foams between the battery cells, which allow the battery cells to expand under normal use. However, these foams are not suitable for limiting the propagation of thermal runaway because they are not sufficiently thermally insulating and require too great a thickness to effectively limit the impacts of thermal runaway. Summary

[0005] This disclosure improves the situation.

[0006] A thermal management device for an electric battery is proposed, the thermal management device comprising a structure made of a compressible material having one or more compartments arranged in at least one surface of said structure, and wherein each compartment is filled with insulation, said insulation exhibiting thermal insulation superior to the thermal insulation of the material of said structure.

[0007] Thus, the thermal management device can deform to allow the expansion of the elements of the electric battery and makes it possible to limit the propagation of heat in the event of thermal runaway thanks to the presence of the insulation in the housings.

[0008] According to another aspect, an electric battery is proposed comprising at least two adjacent battery cells and at least one device as above mentioned, said device being interposed between two adjacent battery cells, and / or said battery comprising at least two adjacent battery modules and at least one device as above mentioned, said device being interposed between two adjacent battery modules.

[0009] The features described in the following paragraphs may optionally be implemented independently of each other or in combination with each other:

[0010] The housing units can be delimited by walls which serve as reinforcement and mechanical support elements, for example in the shape of a honeycomb.

[0011] The material of the structure can be an elastomer, in particular foamed silicone. The material of the structure can be chosen to ensure high compressibility of the structure, for example, capable of compressing between 5% and 30% of the thickness of the structure.

[0012] The insulation may be a porous material, for example, with a porosity greater than 70%. The insulation may have thermal conductivity properties lower than that of air, less than 30 mW / m / K at ambient temperature. The insulation may be, for example, a compound based on aerogel or fumed or precipitated silica. The insulation may comprise at least 50% aerogel. The insulation may advantageously be filled, at least locally, with an opacifying material to improve its thermal insulation properties at higher temperatures.

[0013] The insulation can be a super-insulator such as a compound based on aerogel, fibers, powder, foam or other, in solid, viscous, paste or liquid form.

[0014] Thus, the insulation can cover approximately 70% of the upper surface, while the walls delimiting the perimeter of the dwellings cover approximately 30% of the upper surface. This distribution of insulation eliminates thermal bridges between the two faces of the thermal management system. It also improves the thermal insulation performance of the thermal management system compared to prior art intercalation elements, which exhibit numerous thermal bridges.

[0015] In each housing, the insulation can be placed and compacted inside the housing. The housings can be filled completely or partially by The insulation. The insulation is compressed in the dwellings, which helps to keep it in place, especially when it is in powder form.

[0016] The housings may be openings or spaces formed within the structure. The housings may open onto one or both faces of the structure. Each housing may include a back wall having a thickness of between 1% and 10% of the total thickness of the structure.

[0017] At least one of the housings may have a depth between 90% and 99% of the thickness of the structure.

[0018] In particular, at least one of the housings can pass through the entire thickness of said structure.

[0019] At least one of the dwellings may have a square, rectangular, polygonal, round, triangular or oval shape.

[0020] The structural and / or insulating material may be flame-retardant or may include a layer of flame-retardant material. The insulating and / or structural material may comply with UL94-V0.

[0021] The structure may include at least one stud forming an outgrowth extending from said surface of the structure in the direction of the thickness of the structure and away from said surface of the structure. The stud may be made of the same material as the structure. The stud may have different shapes.

[0022] At least one of the blocks can be arranged between two successive dwellings.

[0023] The device may include a means for sealing the housings. For example, the sealing means may be a film covering a surface of the structure. In particular, the sealing means may be a polymer and may include an adhesive for bonding to the surface of the structure comprising the housings.

[0024] The device may include a solid rim surrounding the surface of the structure comprising the housings. The rim may have a width between 0.1 and 50 mm. The housings may be hexagonal in shape and have the same dimensions.

[0025] The device may comprise several superimposed structures. The device may comprise at least one layer of thermal insulation such as ceramic fibers, felt, or glass wool.

[0026] The structure may comprise at least two groups of housings with different dimensions. Thus, the housings may contain different volumes of insulation. Such an arrangement makes it possible to vary the thermal conductivity and / or compressibility of the structure locally, thereby adapting it to the thermal distribution of the battery cells. Brief description of the drawings

[0027] Other features, details and advantages will become apparent from reading the detailed description below, and from analyzing the accompanying drawings, in which: Fig. 1

[0028] [Fig-1] shows a structure of a thermal management device according to a mode of realization. Fig. 2

[0029] [Fig.2] shows an exploded view of a thermal management device according to a mode of realization. Fig. 3

[0030] [Fig.3] shows a cross-section of the thermal management device of [Fig.2]. Fig. 4

[0031] [Fig.4] shows an enlarged area of ​​the thermal management device of [Fig.2]. Fig. 5

[0032] [Fig. 5] shows an exploded view of the thermal management device according to a mode of realization. Fig. 6

[0033] [Fig.6] shows a structure of a thermal management device according to a mode of realization. Fig. 7

[0034] [Fig.7] shows an enlarged area of ​​the thermal management device comprising the structure of the [Fig.6]. Fig. 8

[0035] [Fig.8] shows a structure of a thermal management device according to a mode of realization. Fig. 9

[0036] [Fig.9] shows a perspective view of a thermal management device according to a method of implementation. Fig. 10

[0037] [Fig. 10] shows a side view of the thermal management device of [Fig.9]. Fig. 11

[0038] [Fig. 11] shows a perspective view of a thermal management device according to one embodiment. Fig. 12

[0039] [Fig.12] shows a side view of the thermal management device of [Fig.11]. Fig. 13

[0040] [Fig. 13] shows an exploded view of part of an electric battery including the thermal management device of the [Fig.2]. Fig. 14

[0041] [Fig. 14] shows cross-sectional views of different embodiments of a structure for a thermal management device.

[0042] Description of the implementation methods

[0043] Reference is now made to [Fig. 1]. Structure 100 is configured to be part of a thermal management device that can be placed between two adjacent battery cells or two battery modules. Structure 100 is square but can be rectangular, oval, circular, or other shapes depending on the application. The dimensions of Structure 100 are adapted to the size of the battery cells or battery modules, particularly with regard to the surface area to be thermally insulated. The thickness of Structure 100 is between 0.5 mm and 10 mm.

[0044] In particular, the structure 100 is made of elastomer but can be made of any material or combination of materials having compression properties, in particular compressible along the thickness direction of the structure, i.e., perpendicular to the plane in which the structure extends. More particularly, the structure 100 can be made of foamed silicone.

[0045] The structure 100 has a rim 102 defining the periphery of the structure and having a thickness el corresponding to the thickness of the structure 100. The rim 102 has a width between 0.1 and 50 mm. Of course, the rim 102 may be absent from the structure 100 according to another embodiment, leaving only the surface 106, the structure 100 thus having a thickness e.

[0046] The structure 100 has, on its upper surface, shown in [Fig. 1], a recess bordered by a rim 102 of thickness e. Several housings 104 are provided on the surface 106 of the recess. The housings 104 form openings or spaces within the structure 100. The housings 104 are hexagonal in shape and all have the same dimensions. Furthermore, the housings 104 are regularly distributed across the surface 106 of the recess in a honeycomb pattern.

[0047] The dwellings 104 do not open onto the surface opposite the surface 106, so the structure includes a back wall for each dwelling. Such a back wall may have a thickness of between 1% and 10% of the total thickness of the structure 100. Between the dwellings 104, the structure 100 has walls 108 delimiting each dwelling 104.

[0048] In each housing, insulation can be placed and compacted inside housing 104. Housings 104 can be filled completely or partially by the insulation. In particular, the insulation has superior insulation properties compared to structure 100.

[0049] Figure 2 represents an embodiment of a thermal management device 200 comprising a structure 202. The structure 202 includes housings 204 and is similar to the structure 100 of Figure 1. The difference is that the structure 202 lacks the rim 102.

[0050] In addition, an insulating material 205 is compacted in each housing 204. The insulating material 205 can be a super-insulating material such as a compound based on aerogel, fibers, powder, foam, or other materials, in solid, viscous, paste, or liquid form. Thus, the insulating material 205 covers approximately 70% of the upper surface, while the walls 207 delimiting the perimeter of the housings cover approximately 30% of the upper surface. This distribution of the insulation makes it possible to eliminate thermal bridges between the two faces of the thermal management device. This improves the thermal insulation performance of the thermal management device compared to prior art intercalation elements that exhibit many thermal bridges.

[0051] Furthermore, the insulation is compressed within the housings, which helps to keep it contained, particularly when it is in powder form. Specifically, the housings 204 are filled with insulation 205 to the top surface of the structure 202 in which the housings are formed. Of course, the housings can be partially filled with insulation. For example, the filling rate of a housing can be between 50% and 100% of its volume.

[0052] In addition, the thermal management device 200 includes a silicone base 206 on which the structure 202 is arranged at its lower surface opposite the upper surface. The silicone base 206 improves the retention of the thermal management device 200.

[0053] Alternatively, the housings 204 can open onto the lower surface.

[0054] In Figures 3 and 4, the thermal management device 200 is shown without the silicone base 206. To prevent any dispersion of the insulation, the structure 202, comprising the insulation 205, is covered with a film 210 and a film 208 on its upper and lower surfaces, respectively. The films 208 and 210 can be separate or bonded together. For example, the films 208 and 210 can be adhesive and can stick to the upper and lower surfaces of the structure 202. The films 208 and 210 can be made of polymer and, in particular, made of a fire-resistant material.

[0055] Figure [Fig. 5] represents a thermal management device 300 according to another embodiment.

[0056] Structure 302 comprises the same elements as structure 202. The difference is that structure 302 comprises a first group of dwellings 304_1, a second group of dwellings 304_2, and a third group of dwellings 304_3. The dwellings 304_l, 304_2 and 304_3 have the same honeycomb shape but with different dimensions. Thus, dwellings 304_l, 304_2 and 304_3 contain different volumes of insulation 305. The thermal management device 300 includes a film 310 covering the upper surface of the structure 302 onto which dwellings 304_l, 304_2 and 304_3 open.

[0057] Such an arrangement allows the thermal conductivity and / or compressibility to be varied locally, which makes it possible to adapt to the thermal distribution of the battery cells.

[0058] With reference to Figures 6 and 7, the thermal management device 400 comprises a structure 402 including triangular housings 404 distributed regularly on an upper face of the structure 402. Each housing 404 is delimited by walls 407 forming reinforcing ribs of the structure 402. Insulation, similar to insulation 205 or 305, is placed in the housings 404. The housings have a back wall but can extend through the entire thickness of the structure 402.

[0059] Furthermore, the structure also includes several pads 406 extending from the upper surface along the thickness direction of the structure 402. The pads 406 project outwards from the structure 402. Thus, when the structure 402 is subjected to compressive stress, the pads 406 are the first to experience this stress and absorb part of it by deforming. The pads 406 thus provide an additional layer of compression.

[0060] Each block 406 is surrounded by dwellings 404, in particular by six dwellings arranged circumferentially around said block 406. Of course, the dwellings 404 may have other shapes and the blocks may be arranged between two or more of these dwellings 404 in a suitable pattern.

[0061] In particular, the studs 406 are cylindrical but may have other shapes, for example a cubic shape.

[0062] The studs 406 are advantageously made of a deformable material, particularly one that deforms according to the thickness of the structure 402, for example, an elastomer. The structure 402 may be made of elastomer or another material.

[0063] The thermal management device 400 also includes a film 410 covering the upper surface of the structure 402 and a film 408 covering a lower surface of the structure opposite the upper surface. The thermal management device 400 may further include thermal insulation such as ceramic fibers, felt, or glass wool. For example, the thermal insulation may be arranged around the studs 406 between the structure 402 and the film 410.

[0064] A thermal management device 500 according to another embodiment is shown in [Fig. 8]. The thermal management device 500 comprises a structure 502 compressible, made for example of elastomer. The structure 502 includes through-holes 504 extending through the entire thickness of the square-shaped structure 502 and bordered by walls 507. The through-holes 504 are configured to receive insulation, for example similar to insulation 205. The structure 502 includes at the top of each through-hole 504 a reinforcement 506 having a thickness greater than that of the walls 507. The reinforcements 506 have a cross-section, for example, hexagonal in the plane of the structure 502. The reinforcements 506 also have the same thickness as those of the walls 507. The thermal management device 500 may include one or more films surrounding the structure 502.

[0065] With reference to Figures 9 and 10, the thermal management device 600 comprises a compressible structure 602 comprising several closed housings 604 encapsulating insulation inside the structure 602. The housings 604 are arranged on either side of the structure 602.

[0066] Each housing unit has a hexagonal shape comprising an upper wall 604_l and a lower wall 604_2. The insulation is placed between the upper wall 604_l and the lower wall 604_2. The upper wall 604_l and the lower wall 604_2 extend beyond the plane of the upper surface and the plane of the lower surface of the structure 602 on either side.

[0067] The upper wall 604_l and the lower wall 604_2 can be made in one piece with the structure 602 or can be separated from the structure 602.

[0068] With reference to Figures 11 and 12, the thermal management device 600' comprises the same elements as the thermal management device 600. The difference is that the housings 604 are arranged alternately on either side of the structure 602, rather than opposite each other. The housings 604 arranged on the upper face of the structure 602 are encapsulated by the upper wall 604_1 and the lower surface of the structure 602. The housings 604 arranged on the lower face of the structure 602 are encapsulated by the lower wall 604_2 and the upper surface of the structure 602. As shown in [Fig. 12], the lower wall 604_2 is arranged between two upper walls 604_1 according to a side view of the structure 602.

[0069] Although the housings in the preceding figures are represented with a honeycomb shape, the thermal management device may include housings of square, rectangular, polygonal, round, triangular or oval shape.

[0070] The thermal management device according to the preceding figures exhibits a low conductivity of less than 30mW / mK with a reduced density.

[0071] Figure 13 shows a battery 1 comprising at least two battery cells 10 and 20 arranged side by side. In order to limit thermal runaway in the battery while allowing the expansion of the battery cells 10 and 20, a thermal management device 200 is interposed between the battery cells. The device thermal management 200 can be replaced by the thermal management device 300, 400, 500, 600 or 600'.

[0072] The battery 1 may include, in addition to the thermal management device, other thermally insulating elements such as silica felts or mineral wool, for example made of silicate fibers ("Alkaline earth silicate" in English, abbreviated as AES), aluminum or other films.

[0073] Figure 14a shows a cross-section of a structure 102a similar to structure 100. The difference is that structure 102a includes spaces 104a extending through its thickness. The spaces 104a are bordered by walls 107a. Thus, the spaces 104a, which include insulation 105 similar to insulation 205, open onto the lower and upper surfaces of structure 102a. The spaces 104a may be honeycomb, square, rectangular, or any other suitable shape.

[0074] Figure 14b shows a cross-section of a structure 102b similar to structure 102a. The difference is that structure 102b comprises a flexible plate from which walls 107_l extend from the upper surface of the plate to form housings 104b_l, and walls 107_2 extend from the upper surface of the plate to form housings 104b_2. Housings 104b_l and 104b_2 comprise insulation 105 similar to insulation 205 and open onto the lower and upper surfaces of structure 102a.

[0075] Figure 14c shows a cross-section of a structure 102c similar to structure 102a. In addition, the lower surface of structure 102c is covered by a closing means 108c for the housings 104a, such as a film 108c applied to the surface. The closing means 108c may be a base of structure 102c, like structure 100.

[0076] Figure 14d shows a cross-section of a structure 102d similar to structure 102a. In addition, the lower surface of structure 102d is covered by a closing means 108d for the housings 104a, such as a film applied to the surface or a base of structure 102d. Similarly, the upper surface of structure 102d is covered by a closing means 101d for the housings 104a, such as a film applied to the surface or a base of structure 102d. The closing means 108d and 101d can be integral parts of structure 102c, as in structure 602.

Claims

Demands

1. Thermal management device (200,300,400,500,600,600') for electric battery (1), the thermal management device comprising a structure (102,202,302,402,502,602) made of a compressible material comprising one or more housings (104,204,304,404,504,604) arranged in at least one surface of said structure, and in which each housing is filled with an insulator (205), said insulator having a thermal insulation greater than the thermal insulation of the material of said structure.

2. Device (200,300,400,500,600,600') according to the preceding claim, wherein the material of the structure is an elastomer.

3. Device (200,300,400,500,600,600') according to any one of the preceding claims, wherein the insulator (205) is a porous material whose thermal conductivity properties are less than that of air, less than 30mW / m / K at room temperature, for example a compound based on aerogel or fumed silica or precipitated silica.

4. Device (200,300,400,600,600') according to any one of the preceding claims, wherein at least one of the housings (104,304,404,604) has a depth between 90% and 99% of the thickness of the structure (102,302,402,602).

5. Device (500) according to any one of claims 1 to 3, wherein at least one of the housings (504) passes through the entire thickness of said structure (502).

6. Device (200,300,400,500,600,600') according to any one of the preceding claims, wherein at least one of the housings (104,304,404,504,604) has a square, rectangular, polygonal, round, triangular or oval shape.

7. Device (200,300,400,500,600,600') according to any one of the preceding claims, wherein the material of said structure (102,302,402,502,602) and / or the insulation (205) is flame retardant or comprises a layer of a flame retardant material.

8. Device (400) according to any one of the preceding claims, wherein the structure (402) comprises at least one stud (406) forming an outgrowth extending from said surface of the structure (402) in the direction of the thickness of the structure and away from said surface of the structure.

9. Device (400) according to claim 8, wherein at least one of the studs (406) is arranged between two successive housings (404).

10. Device (200,300) according to one of the preceding claims, comprising a means for sealing (208,308,210,310) the housings (304,404).

11. Device according to any one of the preceding claims, comprising a solid rim (102) surrounding the surface of the structure (100) comprising the housings (104).

12. Electric battery (1) comprising at least two adjacent battery cells (10,20) and at least one device (200,300,400,500,600,600') according to any one of the preceding claims, said device being interposed between two adjacent battery cells, and / or said battery comprising at least two adjacent battery modules and at least one device according to any one of the preceding claims, said device being interposed between two adjacent battery modules.

Citation Information

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