Fire spread prevention sheet, method for manufacturing same, and battery

The laminate structure of a fire prevention sheet with a metal film between rubber sheets addresses heat reflection and elastic deformation issues, effectively preventing fire spread and managing temperature in battery cells.

JP2026013477APending Publication Date: 2026-01-29SHIN ETSU POLYMER CO LTD
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Patent Information

Application Number
JP2024113822
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2026-01-29

AI Technical Summary

Technical Problem

Existing fire prevention sheets fail to effectively reflect heat from overheated battery cells while allowing for elastic deformation to absorb expansion, leading to potential fire spread and inadequate heat management.

Method used

A fire prevention sheet with a laminate structure comprising a metal film sandwiched between rubber sheets, where the metal film is deposited with metal particles, and optionally includes heat insulating layers, allowing for heat reflection and elastic deformation to absorb cell expansion.

Benefits of technology

The sheet effectively reflects heat and elastically deforms to absorb expansion, preventing fire spread and maintaining temperature control in battery cells.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a fire spread prevention sheet capable of achieving elastic deformation for efficiently absorbing expansion of a heat source while achieving reflection of heat from the heat source, and a battery including the same.SOLUTION: The present invention relates to a fire spread prevention sheet capable of preventing fire spread between heat sources by being interposed between the heat sources, the fire spread prevention sheet having a laminated structure including a plurality of layers, the fire spread prevention sheet including, in an interior in a thickness direction of the fire spread prevention sheet, a metal film-equipped rubber sheet 17 including a metal film 13 on at least one surface in the thickness direction of a first rubber sheet 11, the metal film 13 being a film in a state in which metal particles 15 are deposited, a method for manufacturing the fire spread prevention sheet, and a battery.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present invention relates to a fire prevention sheet, a method for manufacturing the same, and a battery. [Background technology]

[0002] Automobile power sources are shifting from engines that use fossil fuels such as gasoline and diesel to motors that use electricity from batteries. Lithium-ion batteries, a type of battery, generally have multiple battery cells (also simply called "cells") arranged inside a housing.

[0003] Battery cells can generate heat during charging and discharging. If a battery cell overheats abnormally, the heat is transferred to adjacent battery cells, resulting in overheating of the entire battery and an increased risk of fire. To prevent this, it is preferable to interpose a material that reduces heat conduction between battery cells between the battery cells. Various methods have been studied to prevent the transfer of heat from an abnormally high temperature battery cell to surrounding battery cells. For example, a method of providing a fire-prevention sheet, such as a fire-resistant material or a heat-insulating layer, between multiple battery cells is known (see Patent Document 1).

[0004] On the other hand, when a battery cell overheats, the battery cell container expands. To absorb such expansion, it is preferable to interpose a material that is highly elastically deformable between the battery cells. Prior to the present invention, the inventor of the present application developed a fire spread prevention sheet including a rubber sheet made of a rubber-like elastic material, heat insulating sheets laminated on both sides of the rubber sheet to reduce heat transfer between multiple adjacent heat sources, and adhesive layers interposed between the rubber sheet and the heat insulating sheet to bond the heat insulating sheet to both sides of the rubber sheet (see, for example, Patent Document 2). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 2018-206604 [Patent Document 2] Japanese Patent Publication No. 2023-062546 Summary of the Invention [Problem to be solved by the invention]

[0006] Based on the findings of the above-mentioned conventionally known fire prevention sheets, the inventors have further developed the sheet and have come up with the following improvements. One is to make it easier to reflect heat emitted from heat sources such as battery cells. The other is to enable the fire prevention sheet to achieve elastic deformation sufficient to more reliably absorb the expansion of the heat source.

[0007] When a laminated sheet with high thermal conductivity metal plates, such as aluminum, placed on both sides of the rubber sheet in the thickness direction is sandwiched between heat sources, the heat from the overheated heat source is quickly transferred to the metal plates. This results in the metal plates themselves becoming hot, which is undesirable. Furthermore, using ordinary metal plates inhibits the elastic deformation of the rubber sheets that make up the laminated sheet. As a result, when the heat source expands, the rubber is unable to elastically deform in response to the expansion.

[0008] Based on the above findings, the present invention aims to provide a fire prevention sheet that can reflect heat from a heat source while also achieving elastic deformation that efficiently absorbs the expansion of the heat source, and a battery equipped with the same. [Means for solving the problem]

[0009] (1) A fire spread prevention sheet according to one embodiment for achieving the above object is a fire spread prevention sheet that can be interposed between heat sources to prevent the spread of fire between the heat sources, It has a laminate structure with multiple layers, a metal film-covered rubber sheet provided on at least one surface of the first rubber sheet in the thickness direction thereof, the metal film being provided inside the fire spread prevention sheet in the thickness direction; The metal film is a film in a state where metal particles are deposited. (2) In the fire spread prevention sheet according to another embodiment, the first rubber sheet may preferably be a sponge-like porous sheet. (3) In the fire spread prevention sheet according to another embodiment, the first rubber sheet may preferably be made of silicone rubber. (4) In another embodiment of the fire spread prevention sheet, preferably, the plurality of layers further includes a second rubber sheet, and the second rubber sheet may be arranged opposite the surface of the metal film-coated rubber sheet that includes the metal film. (5) In the fire spread prevention sheet according to another embodiment, preferably, at least one of the first rubber sheet and the second rubber sheet may be a sponge-like porous sheet. (6) In the fire spread prevention sheet according to another embodiment, at least one of the first rubber sheet and the second rubber sheet may preferably be made of silicone rubber. (7) In another embodiment of the fire prevention sheet, the metal film may preferably be a thin film primarily made of aluminum, copper, silver, or gold, or a thin film of an alloy containing at least one of the elements aluminum, copper, silver, or gold. (8) The fire spread prevention sheet according to another embodiment may preferably include a heat insulating sheet containing metal oxide on the metal film side of the metal film-attached rubber sheet. (9) The fire spread prevention sheet according to another embodiment may preferably include a second rubber sheet on the heat insulating sheet opposite to the metal film. (10) In another embodiment of the fire spread prevention sheet, a heat insulating sheet containing metal oxide may be provided on at least one outer side in the thickness direction of the fire spread prevention sheet. (11) A method for manufacturing a fire spread prevention sheet according to one embodiment for achieving the above object is a method for manufacturing a fire spread prevention sheet that can be interposed between heat sources to prevent the spread of fire between the heat sources, The fire spread prevention sheet has a laminate structure having a plurality of layers, The manufacturing method includes: a metal film forming step of forming a metal film in a state where metal particles are deposited on at least one surface in a thickness direction of a first rubber sheet, which is one of the plurality of layers, to manufacture a rubber sheet with a metal film; a lamination step of laminating the first rubber sheet with one or two other layers; Includes: (12) In the method for producing a fire spread prevention sheet according to another embodiment, preferably, the one or two additional layers may include a second rubber sheet. (13) In the method for producing a fire spread prevention sheet according to another embodiment, preferably, one or two of the other layers may include a heat insulating sheet containing a metal oxide. (14) In the method for producing a fire spread prevention sheet according to another embodiment, the metal film forming step may be preferably carried out by vapor deposition or sputtering of the metal. (15) In another embodiment of the method for manufacturing a fire spread prevention sheet, preferably, prior to the metal film forming step, a primer treatment step may be performed on one thickness-wise surface of the first rubber sheet to facilitate the formation of the metal film. (16) In order to achieve the above object, a battery according to one embodiment comprises: A battery having a plurality of battery cells arranged in a row, Any one of the fire spread prevention sheets described above is interposed between the battery cells serving as heat sources. (17) In order to achieve the above object, one embodiment of the fire spread prevention sheet is a sheet that can be placed between heat sources to prevent the spread of fire between the heat sources, and has a laminate structure in which a metal film is sandwiched between a first rubber sheet and a second rubber sheet, and the metal film is a film in which metal particles are deposited. (18) In the fire spread prevention sheet according to another embodiment, preferably, at least one of the first rubber sheet and the second rubber sheet may be a sponge-like porous sheet. (19) In the fire spread prevention sheet according to another embodiment, at least one of the first rubber sheet and the second rubber sheet may preferably be made of silicone rubber. (20) In another embodiment of the fire spread prevention sheet, the metal film may preferably be one or more films of aluminum, copper, tin, or an alloy containing at least one of these elements. (21) In order to achieve the above-mentioned object, one embodiment of a method for manufacturing a fire spread prevention sheet is a method for manufacturing any of the above-mentioned fire spread prevention sheets, and includes a metal film forming process for forming a metal film on one thickness-wise surface of a first rubber sheet, and a lamination process for laminating a second rubber sheet on the surface of the metal film of the first rubber sheet. (22) In another embodiment of the method for manufacturing a fire spread prevention sheet, preferably, prior to the metal film forming step, a primer treatment step may be performed on one thickness-wise surface of the first rubber sheet to facilitate the formation of the metal film. (23) In the method for producing a fire spread prevention sheet according to another embodiment, the metal film forming step may be preferably carried out by a process of vapor deposition or sputtering of the metal. (24) In order to achieve the above object, one embodiment of a battery is a battery having a plurality of battery cells arranged in a row, and any of the above-mentioned fire prevention sheets is interposed between the battery cells. [Effects of the Invention]

[0010] According to the present invention, it is possible to provide a fire prevention sheet that can reflect heat from a heat source while also achieving elastic deformation that efficiently absorbs the expansion of the heat source, and a battery equipped with the same. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 shows an enlarged view of the main part of a battery according to a first embodiment of the present invention and a part A thereof. [Figure 2]FIG. 2 shows a perspective view of the fire spread prevention sheet according to the first embodiment of the present invention. [Figure 3] FIG. 3 shows the main manufacturing steps of the fire prevention sheet of FIG. [Figure 4] FIG. 4 shows the first stage of the manufacturing process of the fire prevention sheet of FIG. [Figure 5] FIG. 5 shows the stage following the situation in FIG. [Figure 6] FIG. 6 shows the stage following the situation in FIG. [Figure 7] FIG. 7 shows an evaluation method (7A) for the fire spread prevention performance of an example of the fire spread prevention sheet according to the first embodiment and the evaluation results (7B). [Figure 8] FIG. 8 shows an exploded perspective view of the fire spread prevention sheet according to the second embodiment. [Figure 9] FIG. 9 shows the main manufacturing steps of the fire prevention sheet of FIG. [Figure 10] FIG. 10 shows an exploded perspective view of a fire spread prevention sheet according to the third embodiment. [Figure 11] FIG. 11 shows the main manufacturing steps of the fire prevention sheet of FIG. [Figure 11A] FIG. 11A shows an exploded perspective view of a fire spread prevention sheet according to a fourth embodiment. [Figure 11B] FIG. 11B shows an exploded perspective view of a fire spread prevention sheet having a different structure from that shown in FIG. 11A. [Figure 11C] FIG. 11C shows an exploded cross-sectional view of a fire spread prevention sheet including a metal film-attached rubber sheet in which metal films are formed on both sides of a first rubber sheet in the thickness direction, and a cross-sectional view after assembly. [Figure 12] FIG. 12 is a schematic diagram showing the layer structure of the foamed silicone rubber sheets of Examples 1 and 2 and Comparative Examples 1 and 2. [Figure 13] FIG. 13 shows a photograph of a thermal resistance measuring device used to examine the thermal resistance and thermal conductivity of the three types of samples of Examples 1 and 2 and Comparative Example 1. [Figure 14]FIG. 14 shows a photograph of each of the samples A, B, and C sandwiched between an upper rod (reference material) and a lower rod (reference material). [Figure 15] Figure 15 shows a schematic diagram of the sample sandwiched between the upper and lower rods. (15A) shows the heat flow from the heat source to the upper rod, sample, lower rod, and heat sink (cooling section), the state in which the sample is compressed between the upper and lower rods, and the locations where four thermocouples are fixed. (15B) shows the existence of the thermal resistance of the sample itself (Rth,Bulk), the thermal resistance between the sample and the upper rod (Rth,contact Ref-sample), and the thermal resistance between the sample and the lower rod (Rth,contact Ref-sample), as well as the equation for measuring thermal conductivity. [Figure 16] FIG. 16 shows the changes in thermal resistance (16A) and thermal conductivity (16B) when increasing pressure is applied to Sample A of Example 1, Sample B of Example 2, and Sample C of Comparative Example 1. [Figure 17] FIG. 17 shows a graph of the relationship between thickness and stress when sample A of Example 1, sample C of Comparative Example 1, and sample D of Comparative Example 2 are compressed in the thickness direction. [Figure 18] FIG. 18 shows an optical microscope photograph (observation magnification: 500 times) of the aluminum thin film of sheet a constituting sample A. [Figure 19] FIG. 19 shows scanning electron micrographs of the aluminum thin film of sheet a (observation magnifications: 1000x, 3000x, and 10000x). DETAILED DESCRIPTION OF THE INVENTION

[0012] Next, embodiments of the present invention will be described with reference to the drawings. Note that the embodiments described below do not limit the invention according to the claims, and not all of the elements and combinations thereof described in the embodiments are necessarily essential to the solution of the present invention.

[0013] First Embodiment First, a fire spread prevention sheet, a method for manufacturing a fire spread prevention sheet, and a battery according to a first embodiment of the present invention will be described.

[0014] FIG. 1 shows an enlarged view of the main part of a battery according to a first embodiment of the present invention and a part A thereof.

[0015] The battery 1 according to this embodiment is, for example, a battery for an electric vehicle, and is preferably a lithium-ion battery. The battery 1 has a large number of battery cells (also simply referred to as "cells") 5 arranged side by side, with a fire-prevention sheet 10 sandwiched between the battery cells 5. The fire-prevention sheet 10 is a sheet designed to minimize the spread of fire to adjacent battery cells 5 even if some of the battery cells 5 overheat and, in the worst case scenario, catch fire. The fire-prevention sheet 10 is also elastically deformable in its thickness direction. The battery cells 5 are compressed in their arranging direction and set inside the battery 1. At this time, the fire-prevention sheet 10 is compressed and deformed by the battery cells 5. On the other hand, when the battery cells 5 are released from compression, the fire-prevention sheet 10 returns to its original thickness. Furthermore, when the battery cells 5, which are an example of a heat source, thermally expand, the fire-prevention sheet 10 is elastically deformable in response to the deformation of the battery cells 5 associated with the expansion.

[0016] FIG. 2 shows a perspective view of the fire spread prevention sheet according to the first embodiment of the present invention.

[0017] The fire spread prevention sheet 10 according to this embodiment is a sheet that can be placed between battery cells 5, which are an example of a heat source, to prevent the spread of fire between the battery cells 5, and has a laminate structure with multiple layers. Most fire spread prevention sheets 10 are provided inside the battery 1 so that both sides in the thickness direction of the fire spread prevention sheet 10 contact the battery cells 5. However, at least one of the multiple fire spread prevention sheets 10 may be provided inside the battery 1 so that one side in the thickness direction of the fire spread prevention sheet 10 contacts the battery cells 5 and the other side contacts the housing (not shown) of the battery 1.

[0018] The fire spread prevention sheet 10 in this embodiment has a laminate structure in which a metal film 13 is sandwiched between a first rubber sheet 11 and a second rubber sheet 12. The second rubber sheet 12 is one of multiple layers constituting the laminate structure. The second rubber sheet 12 is disposed opposite the surface of the metal film-coated rubber sheet 17 (first rubber sheet 11 + metal film 13) described below, which has the metal film 13. The metal film 13 is a thin film formed on the first rubber sheet 11, more specifically, a film in which metal particles are deposited. In this application, metal particles (=metal particles) are broadly interpreted to include metal atoms.

[0019] The thicknesses of the first rubber sheet 11 and the second rubber sheet 12 may be relatively larger or may be the same, but are preferably the same. As a result, the metal film 13 is positioned exactly in the center of the thickness of the fire spread prevention sheet 10. There are no particular restrictions on the range of the thickness of the first rubber sheet 11 and the second rubber sheet 12, but it is preferably 0.5 mm or more and 10 mm or less, and more preferably 1 mm or more and 7 mm or less. The metal film 13 has a form in which one or more layers of metal particles are deposited.

[0020] The first rubber sheet 11 and the second rubber sheet 12 are preferably made of a thermosetting elastomer such as silicone rubber, urethane rubber, isoprene rubber, ethylene propylene rubber, natural rubber, ethylene propylene diene rubber, nitrile rubber (NBR), or styrene butadiene rubber (SBR); a thermoplastic elastomer such as a urethane-based, ester-based, styrene-based, olefin-based, butadiene-based, or fluorine-based elastomer, or a composite thereof. The first rubber sheet 11 and the second rubber sheet 12 are preferably made of a silicone rubber sheet having excellent heat resistance. The first rubber sheet 11 and the second rubber sheet 12 may contain a filler such as silica or graphite. The first rubber sheet 11 and the second rubber sheet 12 are preferably made of a porous sheet (also called a sponge-like porous sheet) having high elasticity. In this embodiment, the first rubber sheet 11 and the second rubber sheet 12 are preferably made of a porous sheet made of silicone rubber (also called a foamed silicone rubber sheet). If the first rubber sheet 11 and the second rubber sheet 12 have small pores containing air inside, the heat insulating properties of the sheets can be further improved.

[0021] The first rubber sheet 11 and the second rubber sheet 12 do not have to be made of the same type of rubber. For example, only one of the first rubber sheet 11 or the second rubber sheet 12 may be made of silicone rubber, and the other may be made of non-silicone rubber. Also, only one of the first rubber sheet 11 or the second rubber sheet 12 may be a spongy porous sheet, and the other may be a non-spongy sheet.

[0022] The metal film 13 is not particularly limited by its type of metal. However, it is preferably a thin film primarily composed of aluminum, copper, tin, silver, or gold, or a thin film of an alloy containing at least one of aluminum, copper, tin, silver, or gold. The metal film 13 may be a film of a single metal component, or a laminated film of two metal components. The metal film 13 may be, for example, an aluminum film, a copper film, a tin film, a silver film, a gold film, an aluminum alloy film, a copper alloy film, a tin alloy film, or a silver alloy film, or a laminated film of two or more of the above films. The metal film 13 is a thin film formed by metal particles (preferably crystal grains) formed in an island or scale shape, and is different from a metal film or metal sheet formed by rolling or other methods. As can be seen from the exemplary thicknesses described above, the metal film 13 is very thin. This reduces the risk that the metal film 13 will hinder the elastic deformation of the fire spread prevention sheet 10 in the thickness direction. The thickness of the metal film 13 is preferably 50 nm to 700 nm, more preferably 60 nm to 600 nm, even more preferably 100 nm to 500 nm, and particularly preferably 100 nm to 300 nm. Furthermore, the metal film 13 is present inside the fire spread prevention sheet 10 in the thickness direction, but not on the outer surface of the fire spread prevention sheet 10 in the thickness direction. The metal film 13 is a film formed on the surface of the sheet from within the holes of a sponge-like sheet (porous sheet), and is not a film adhered only to the sheet surface. The metal portions in the holes of the metal film 13 are extremely fine needle-like portions that enhance the adhesive strength between the film and the sheet. In other words, the metal film 13 has a shape like a pinholder, with a portion inserted into the hole of the sheet. Therefore, as the porous sheet continues to expand, the metal film 13 follows the deformation of the porous sheet and is less likely to peel off.

[0023] Fig. 3 shows the main manufacturing steps of the fire spread prevention sheet of Fig. 2. Figs. 4 to 6 show, in perspective views, the manufacturing steps of the fire spread prevention sheet of Fig. 2. Fig. 5 shows an enlarged view of a portion B1 of the metal film 13, and also shows an enlarged view of B2 within B1.

[0024] The manufacturing method of the fire spread prevention sheet 10 according to this embodiment preferably includes a primer treatment (S100), a metal film forming step (S200), and a first lamination step (S300) as a lamination step, as shown in Fig. 3. The primer treatment is an optional step and is not an essential step.

[0025] (1) Primer treatment (S100) This step is a step that facilitates the formation of the metal film 13 on one surface of the first rubber sheet 11 in the thickness direction prior to the metal film forming step (S200). The primer treatment can be selected from various methods depending on the material of the first rubber sheet 11. For example, when the first rubber sheet 11 is made of silicone rubber, the primer treatment can be performed by applying a silane coupling agent. Examples of the silane coupling agent include epoxy-functional alkoxysilanes such as γ-glycidoxypropyltrimethoxysilane, γ-glycidoxypropylmethyldiethoxysilane, and β-(3,4-epoxycyclohexyl)ethyltrimethoxysilane; mercapto-functional alkoxysilanes such as γ-mercaptopropyltrimethoxysilane; amine-functional alkoxysilanes such as γ-aminopropyltrimethoxysilane and N-2-(aminoethyl)-3-aminopropyltrimethoxysilane; and methacryl-functional alkoxysilanes such as 3-methacryloxypropyltrimethoxysilane.

[0026] (2) Metal film formation process (S200) As shown in FIG. 5 , this step is a step of manufacturing a metal-film-coated rubber sheet 17 by forming a metal film 13, in which metal particles 15 are deposited, on at least one surface in the thickness direction of a first rubber sheet 11, which is one of the multiple layers constituting the fire spread prevention sheet 10. When the primer treatment step (S100) is performed, the metal film 13 is formed on the primer-treated surface of the first rubber sheet 11. The metal film formation step (S200) is preferably performed by metal vapor deposition or sputtering. Vapor deposition is a method of heating and evaporating metal in a vacuum chamber to form the metal film 13 on one surface of the first rubber sheet 11. Examples of methods for vapor deposition of metal include resistance heating, electron beam irradiation, laser heating, and high-frequency induction. Sputtering is a method of using a metal as a target in a vacuum chamber and colliding an inert gas such as argon with the target as ions, causing metal atoms to fly out of the target and forming the metal film 13 on the first rubber sheet 11. As the metal film forming step (S200), sputtering is preferred as it allows for relatively high density film formation. The preferred vacuum level in the vacuum chamber before sputtering is 8×10 ―4 The pressure is equal to or less than 100 Pa. Examples of the type of sputtering include magnetron sputtering, RF sputtering, reactive sputtering, DC sputtering, and two-pole sputtering.

[0027] As shown in the enlarged view of a portion B1 in FIG. 5 and the enlarged view of a portion B2 therein, the metal film 13 is a film on which metal particles 15 are deposited. When the first rubber sheet 11 is a sponge-like porous sheet, the metal film 13 is formed on the outermost surface of the first rubber sheet 11. The first rubber sheet 11 also has holes 14 on the outermost surface that are recessed inward. The metal particles 15 are deposited so as to penetrate into the holes 14 or to block the holes 14. Therefore, the metal film 13 is formed on the first rubber sheet 11 in a form that extends from the outermost surface of the first rubber sheet 11 into the holes 14.

[0028] (3) First lamination step (S300) This step is a step of laminating the first rubber sheet 11 and one or two other layers. The first lamination step in this embodiment is a lamination step of laminating a second rubber sheet 12, which is an example of another layer, on the surface of the metal film 13 of the first rubber sheet 11, as shown in FIG. 6. Prior to this step, the surface of the second rubber sheet 12 that comes into contact with the metal film 13 may be subjected to a treatment similar to the primer treatment step (S100). Furthermore, in the first lamination step (S300), heating or a combination of heating and pressure may be performed. Furthermore, lamination may be performed using a heat-resistant adhesive.

[0029] Next, a preliminary experiment will be described.

[0030] 7A and 7B show an evaluation method (7A) and evaluation results (7B) for the fire spread prevention performance of an example of the fire spread prevention sheet according to the first embodiment. The horizontal axis of the graph in (7B) represents elapsed time (sec), and the vertical axis represents temperature (°C).

[0031] As shown in (7A), the fire spread prevention performance was measured by sandwiching Sample X between a heating element (800°C) 20 and a temperature measurement plate 21, and applying pressure between the heating element 20 and the temperature measurement plate 21 when the heating element reached 800°C. The pressure applied was 0.1 MPa. Temperature measurements were taken at the temperature measurement plate 21. Three types of Sample X were used. The first sample was a 4.2 mm thick foamed silicone rubber sheet (specific gravity: 0.36) used as a comparative material (Sample A). The second sample was a sheet used as an example of this embodiment (Sample B). This sheet was formed by sandwiching a laminated film of a 1 μm thick copper thin film and a 0.3 μm thick tin-based alloy (Sn-Ag-P alloy) thin film between two 2.1 mm thick foamed silicone rubber sheets (specific gravity: 0.36). The copper thin film was formed by vapor deposition on one side of the 2.1 mm thick foamed silicone rubber sheet. The above-mentioned thin film of tin alloy was formed on the surface of the thin copper film by vapor deposition. Vacuum deposition was performed using a batch type vapor deposition device (model number: LP1300BSD) manufactured by ULVAC, with the degree of vacuum in the chamber set to 1×10 ―4 ~1×10 ―6The deposition was carried out within a pressure range of 100 Pa. The deposition was carried out by heating the metal to be used for deposition using a resistance heating method. The third sample was a sheet used as a comparative material (Sample C), and consisted of two 2.1 mm thick foamed silicone rubber sheets (specific gravity: 0.36) with a 10 μm thick aluminum foil sandwiched between them. The foamed silicone rubber sheet is also called a silicone sponge.

[0032] As shown in (7B), Sample A, Sample B, and Sample C all showed a temperature rise over time. All samples maintained a temperature below 400°C, demonstrating a significant temperature rise suppression effect compared to the temperature of the heating element (800°C). Sample B also demonstrated a greater temperature rise suppression effect than Sample A. Furthermore, Sample C demonstrated a greater temperature rise suppression effect than Sample B. However, in the case of a structure in which aluminum foil is sandwiched between foamed silicone rubber sheets, as in Sample C, it was found that compression was difficult even when a load was concentrated in the center of the laminated sheet. This is thought to be because the aluminum foil is resistant to stretching, and thus the foil suppressed deformation of the foamed silicone rubber sheet. This phenomenon was not observed in the structure of Sample B. Based on these results, Sample B, which has a relatively large heat-shielding effect and minimizes suppression of silicone rubber deformation, was determined to be the superior structure overall.

[0033] Second Embodiment Next, a fire spread prevention sheet, a method for manufacturing a fire spread prevention sheet, and a battery according to a second embodiment of the present invention will be described. In the second embodiment, descriptions of parts common to the first embodiment will be omitted as appropriate.

[0034] FIG. 8 shows an exploded perspective view of the fire spread prevention sheet according to the second embodiment.

[0035] The fire spread prevention sheet 10a according to the second embodiment has a structure in which a laminate of a metal-film-coated rubber sheet 17 and a second rubber sheet 12 is sandwiched between heat insulating sheets 31 and 32 on the outer surfaces of the fire spread prevention sheet 10 according to the first embodiment. The heat insulating sheets 31 and 32 are metal oxide-containing sheets that are located on both sides of the thickness of the laminate and function to enhance the heat insulating properties of the fire spread prevention sheet 10a. The heat insulating sheets 31 and 32 are preferably sheets primarily containing talc, diatomaceous earth, silica, aerogel (e.g., silica aerogel), mullite, cordierite, steatite, forsterite, titania, or zirconia, and more preferably sheets primarily containing talc, diatomaceous earth, silica, or aerogel. Talc is generally a ceramic primarily composed of hydrated magnesium silicate and contains small amounts of impurities such as iron oxide. The type and amount of impurities vary depending on the source of the talc ore, but the talc contained in the heat insulating sheets 31 and 32 is not particularly limited in these respects.

[0036] The term "mainly" used herein means that the mass ratio of the metal oxides, such as talc, diatomaceous earth, silica, aerogel, mullite, cordierite, steatite, forsterite, titania, or zirconia, to the total mass of the insulating sheets 31, 32 exceeds 50% by mass. The metal oxide content of the insulating sheets 31, 32 is preferably 51% by mass or more, more preferably 70% by mass or more, and even more preferably 90% by mass or more. In addition to the metal oxides, the insulating sheets 31, 32 may also contain relatively heat-resistant materials such as silicone rubber, aramid fiber, and polyphenylene sulfide. The insulating sheets 31, 32 may also be composed almost entirely or entirely of the metal oxides. There are no particular restrictions on the manufacturing method of the insulating sheets 31, 32, but examples include a manufacturing method that includes a papermaking process similar to that used in paper manufacturing, a method in which the insulating sheet material is placed in a mold and molded, and a method in which a molten material containing the material is formed into a sheet using a 3D printer.

[0037] FIG. 9 shows the main manufacturing steps of the fire prevention sheet of FIG.

[0038] The method for manufacturing a fire spread prevention sheet according to this embodiment preferably includes a metal film forming step (S200), a first lamination step (S300) which is the first of two lamination steps, and a second lamination step (S400) which is the second of the two lamination steps, as shown in Fig. 9. As with the method for manufacturing a fire spread prevention sheet according to the first embodiment, the method for manufacturing a fire spread prevention sheet according to the second embodiment may optionally include a primer treatment (S100).

[0039] The metal film forming step (S200) and the first laminating step (S300) are the same as those in the first embodiment, and therefore a duplicated description will be omitted.

[0040] Second lamination step (S400) This step is one of the lamination steps for laminating the first rubber sheet 11 with one or two other layers, and is a step in which a laminate in which the second rubber sheet 12 is laminated on the surface of the metal film 13 of the metal film-coated rubber sheet 17 is sandwiched between the heat insulating sheets 31 and 32 on both sides in the thickness direction and laminated. The heat insulating sheets 31 and 32 and the rubber sheets 11 and 12 may be fixed by any method, and can be fixed using an adhesive, for example.

[0041] Note that instead of laminating the heat insulating sheets 31, 32 after the completion of the above-described laminate, the heat insulating sheets 31, 32 may be attached to the rubber sheets 11, 12 before laminating the first rubber sheet 11 and the second rubber sheet 12 together or before forming the metal film 13. Therefore, in the flow of Figure 9, the second laminating step (S400) can also be performed immediately before the metal film forming step (S200) or immediately before the first laminating step (S300). Therefore, the second laminating step can be divided into a step of laminating the heat insulating sheet 31 onto the first rubber sheet 11 and a step of laminating the heat insulating sheet 32 ​​onto the second rubber sheet 12.

[0042] The battery according to the second embodiment has the same configuration as the battery 1 according to the first embodiment, so a description of the battery according to the second embodiment will be omitted.

[0043] Third Embodiment Next, a fire spread prevention sheet, a method for manufacturing a fire spread prevention sheet, and a battery according to a third embodiment of the present invention will be described. In the third embodiment, descriptions of parts common to the first and second embodiments will be omitted as appropriate.

[0044] FIG. 10 shows an exploded perspective view of a fire spread prevention sheet according to the third embodiment.

[0045] The fire spread prevention sheet 10b according to the third embodiment has a structure in which the second rubber sheet 12 is removed from the fire spread prevention sheet 10a according to the second embodiment. That is, the fire spread prevention sheet 10b has a structure in which a first rubber sheet 11 having a metal film 13 formed on one side thereof is sandwiched between heat insulating sheets 31 and 32 on both sides in the thickness direction. Therefore, one side of the metal film 13 is in contact with the first rubber sheet 11, while the other side of the metal film 13 is in contact with the heat insulating sheet 32. An adhesive layer may be interposed between the metal film 13 and the heat insulating sheet 32. The configuration and manufacturing method of the heat insulating sheets 31 and 32 are the same as those described in the second embodiment.

[0046] FIG. 11 shows the main manufacturing steps of the fire prevention sheet of FIG.

[0047] The method for manufacturing a fire spread prevention sheet according to this embodiment preferably includes a metal film forming step (S200) and a second lamination step (S400), as shown in Fig. 11. As with the method for manufacturing a fire spread prevention sheet according to the first embodiment, the method for manufacturing a fire spread prevention sheet according to the third embodiment may optionally include a primer treatment (S100).

[0048] The metal film forming step (S200) is the same as in the first embodiment, and therefore a duplicated description will be omitted.

[0049] Second lamination step (S400) This step is a type of lamination step, in which heat insulating sheets 31 and 32 are attached to both sides in the thickness direction of the metal film-coated rubber sheet 17, which has the metal film 13 formed on one side of the first rubber sheet 11. The heat insulating sheets 31 and 32 and the metal film-coated rubber sheet 17 may be fixed by any method, for example, by using an adhesive. Note that part of the second lamination step (S400) may be performed before the metal film formation step (S200). In this case, the heat insulating sheet 31 is attached to one side of the first rubber sheet 11, and then the metal film 13 is formed on the side of the first rubber sheet 11 opposite the heat insulating sheet 31, and the heat insulating sheet 32 ​​is attached to the metal film 13 side.

[0050] The battery according to the third embodiment has the same configuration as the battery 1 according to the first embodiment. Therefore, a description of the battery according to the third embodiment will be omitted.

[0051] <Fourth embodiment> Next, a fire spread prevention sheet, a method for manufacturing a fire spread prevention sheet, and a battery according to a fourth embodiment of the present invention will be described. In the fourth embodiment, descriptions of parts common to the first, second, or third embodiment will be omitted as appropriate.

[0052] Fig. 11A shows an exploded perspective view of a fire spread prevention sheet according to a fourth embodiment, and Fig. 11B shows an exploded perspective view of a fire spread prevention sheet having a different structure from that shown in Fig. 11A.

[0053] The fire spread prevention sheet 10c according to the fourth embodiment includes a metal oxide-containing heat insulating sheet 32 ​​on the metal film 13 side of the metal film-coated rubber sheet 17. The fire spread prevention sheet 10d according to a modification of the fourth embodiment includes a second rubber sheet 12 on the heat insulating sheet 32 ​​opposite the metal film 13.

[0054] That is, the fire spread prevention sheet 10c has a structure in which the heat insulating sheet 31 is removed from the fire spread prevention sheet 10b according to the third embodiment. An adhesive layer may be interposed between the metal film 13 and the heat insulating sheet 32. The configuration and manufacturing method of the heat insulating sheet 32 ​​are the same as those described in the second embodiment.

[0055] The fire spread prevention sheet 10d has a structure in which the heat insulating sheet 32 ​​of the fire spread prevention sheet 10c according to the fourth embodiment is further provided with a second rubber sheet 12. That is, the fire spread prevention sheet 10d has a structure in which a metal film-covered rubber sheet 17, a heat insulating sheet 32 ​​placed on the metal film 13 side, and a second rubber sheet 12 are laminated in this order. An adhesive layer may be interposed between the heat insulating sheet 32 ​​and the second rubber sheet 12.

[0056] The method for manufacturing the fire spread prevention sheet 10c according to the fourth embodiment preferably includes a metal film forming step (S200) and a second lamination step (S400), similar to the previously shown Fig. 11. The metal film forming step (S200) is the same as in the first embodiment, so a duplicated description will be omitted.

[0057] The second lamination step (S400) is slightly different from the third embodiment, and is a step of attaching a heat insulating sheet 32 ​​to the metal film 13 side of the metal film-coated rubber sheet 17 in a state in which the metal film 13 is formed on one side of the first rubber sheet 11. There is no heat insulating sheet 31. The heat insulating sheet 32 ​​and the metal film-coated rubber sheet 17 may be fixed by any method, for example, they can be fixed using an adhesive.

[0058] The method for manufacturing the fire spread prevention sheet 10d according to a modified example of the fourth embodiment is a method in which the first lamination step (S300) and the second lamination step (S400) are reversed in order in the steps shown in Figure 9 above, and the second lamination step (S400) is the same as the second lamination step (S400) in the fourth embodiment, i.e., only the insulating sheet 32 ​​is attached.

[0059] The battery according to the fourth embodiment has the same configuration as the battery 1 according to the first embodiment, so a description of the battery according to the fourth embodiment will be omitted.

[0060] Although the preferred embodiments of the present invention have been described above, the present invention is not limited to the above-described embodiments and can be modified in various ways.

[0061] In the above-described embodiment, both the first rubber sheet 11 and the second rubber sheet 12 are sponge-like porous sheets, but only one of the rubber sheets 11, 12 may be a sponge-like porous sheet, or both of the rubber sheets 11, 12 may be non-sponge-like rubber sheets.

[0062] In the above-described embodiment, the metal film 13 is formed over the entire area of ​​one side of the first rubber sheet 11. However, the metal film 13 may be formed in one or more parts of a portion of the one side.

[0063] The metal film 13 may be formed on both sides of the first rubber sheet 11 in the thickness direction.

[0064] FIG. 11C shows an exploded cross-sectional view of a fire spread prevention sheet including a metal film-attached rubber sheet in which metal films are formed on both sides of a first rubber sheet in the thickness direction, and a cross-sectional view after assembly.

[0065] 11C includes a metal film-coated rubber sheet 17 having metal films 13 formed on both thickness-wise surfaces of the first rubber sheet 11, and heat insulating sheets 31 and 32 sandwiching the metal film-coated rubber sheet 17 from both thickness-wise surfaces. The fire spread prevention sheet 10e includes the metal film 13 on both thickness-wise surfaces of the first rubber sheet 11 in the fire spread prevention sheet 10b according to the third embodiment, while the metal film 13 is provided on only one thickness-wise surface of the first rubber sheet 11.

[0066] The fire spread prevention sheets 10, 10a, 10b, 10c, 10d, and 10e may be disposed not only between the battery cells 5 but also between the battery cells 5 and the housing that stores the battery cells 5. Furthermore, the fire spread prevention sheets 10, 10a, 10b, 10c, 10d, and 10e may be disposed not only on the battery 1 but also between circuit boards, between electronic components, or between a circuit board and an electronic component in an electronic device.

[0067] The fire spread prevention sheet 10 is a sheet that can be interposed between heat sources to prevent the spread of fire between the heat sources. It has a laminate structure in which a metal film 13 is sandwiched between a first rubber sheet 11 and a second rubber sheet 12, and the metal film 13 is a film in which metal particles 15 are deposited. At least one of the first rubber sheet 11 and the second rubber sheet 12 is preferably a sponge-like porous sheet. At least one of the first rubber sheet 11 and the second rubber sheet 12 is preferably made of silicone rubber. The metal film 13 may be formed on at least one surface in the thickness direction of the second rubber sheet 12. The metal film 13 of the first rubber sheet 11 and the metal film 13 of the second rubber sheet 12 may be arranged opposite each other. An adhesive layer and heat insulating sheets 31 and 32 may be disposed between the metal films 13.

[0068] The method for manufacturing the fire spread prevention sheet can include a metal film forming step of forming a metal film 13 on one surface of the first rubber sheet 11 in the thickness direction, and a lamination step of laminating a second rubber sheet 12 on the surface of the metal film 13 of the first rubber sheet 11. Prior to the metal film forming step, a primer treatment step may be performed on one surface of the first rubber sheet 11 in the thickness direction to facilitate the formation of the metal film 13. The metal film forming step may also be performed by a metal vapor deposition or sputtering film formation process.

[0069] The battery 1 includes a plurality of battery cells 5 arranged side by side, and any one of the fire spread prevention sheets 1 described above is interposed at least between the battery cells 5.

[0070] The metal film 13 may be formed on at least one surface of the second rubber sheet 12 in the thickness direction, and may also be formed on the surface of the first rubber sheet 11 facing the metal film 13. The second rubber sheet 12 is preferably a sponge-like porous sheet. The metal film 13 is preferably formed so as to penetrate into the surfaces of the porous sheet other than the pores and into the interior of the pores.

[0071] The components or steps of the above embodiments may be combined in any combination except where they are incombinable. In particular, the claims may be combined in any combination. [Example]

[0072] Next, examples of the present invention will be described, but the present invention is not limited to the contents of the following examples.

[0073] 1. Manufacture of fire prevention sheets FIG. 12 shows a schematic diagram of the layer structure of the foamed silicone rubber sheets of Examples 1 and 2 and Comparative Examples 1 and 2.

[0074] Example 1 (1) Manufacturing of foamed silicone rubber sheets The foamed silicone rubber sheets serving as the first and second rubber sheets were produced under the following conditions. First, 100 parts by mass of a curable silicone rubber composition (product number KE-9710U, manufactured by Shin-Etsu Chemical Co., Ltd.), 0.3 parts by mass of an organic peroxide crosslinking agent (product number C-1A, manufactured by Shin-Etsu Chemical Co., Ltd.), 2.0 parts by mass of an organic peroxide crosslinking agent (product number C-3, manufactured by Shin-Etsu Chemical Co., Ltd.), and 2.0 parts by mass of an addition reaction type crosslinking agent (product number C-25A, manufactured by Shin-Etsu Chemical Co., Ltd.) were prepared. 1.0 part by mass of a foaming agent and 1.0 part by mass of a colorant were added thereto, and the mixture was kneaded using a mixing roll. Here, 1 part by mass corresponds to 1 g. This also applies to the following examples. The kneaded mixture was dispensed into a sheet using a mixing roll, and a polyethylene terephthalate (PET) film was attached to one side of the sheet-like molded product. Next, the dispensed sheet-like molded product was peeled off the mixing roll, and the same PET film was attached to the other side. This sheet-like molded product was placed in a thermostatic chamber heated to 195°C and subjected to primary vulcanization for 5 minutes. The sheet-like molded product was then removed from the thermostatic chamber, the PET films attached to both sides were peeled off, and secondary vulcanization was performed at 200°C for 4 hours to produce a foamed silicone rubber sheet approximately 2.1 mm thick. The sheet was then cut into rectangular sheets measuring 100 mm wide and 300 mm long in plan view. (2) Formation of aluminum film Next, a thin aluminum film was formed on one side of one foamed silicone rubber sheet. The thin film was formed under the following conditions. The thin aluminum film was formed by sputtering. The foamed silicone rubber (referred to as the substrate) was set in the vacuum chamber of a carousel-type batch sputtering device (method: DC magnetron sputtering). Pure Al was used as the sputtering target. The degree of vacuum in the vacuum chamber was approximately 5 x 10 ―4 After adjusting the temperature to Pa, the substrate temperature was 25°C, the sputtering power was 9 kW, the Ar flow rate was 650 sccm, and the deposition pressure was 3 × 10 ―1 Sputtering was carried out under conditions of 20 Pa. After 10 minutes of sputtering, an aluminum film with a thickness of approximately 100 nm was formed on one side of the substrate. The film thickness was measured using a Bruker stylus step gauge (model: DXT-E). (3) Manufacturing of laminates Two foamed silicone rubber sheets, one with a thin aluminum film and the other with a foamed silicone rubber sheet, were attached with an adhesive (Cemedine Co., Ltd., product number: SuperX) with the thin aluminum film facing inward. Next, a heat insulating sheet (Awa Paper Co., Ltd., product number: I-80F, thickness: 0.8-1.0 mm) containing talc, silica, and aerogel was attached to both outer surfaces of the laminate using the adhesive. This resulted in a fire prevention sheet consisting of heat insulating sheet / foamed silicone rubber sheet / thin aluminum film / foamed silicone rubber sheet / heat insulating sheet. The total thickness of the fire prevention sheet was approximately 6.8 mm. The sample manufactured under the conditions of Example 1 was designated "A."

[0075] Example 2 The foamed silicone rubber sheet was manufactured and the aluminum film was formed in the same manner as in Example 1. The laminate was manufactured differently from Example 1, except that a heat insulating sheet (manufactured by Awa Paper Co., Ltd., product number I-80F, thickness 0.8-1.0 mm) was bonded to both sides of the foamed silicone rubber sheet with a thin aluminum film using an adhesive (manufactured by Cemedine Co., Ltd., product number SuperX). As a result, a fire prevention sheet consisting of heat insulating sheet / foamed silicone rubber sheet / thin aluminum film / heat insulating sheet was completed. The total thickness of the fire prevention sheet was approximately 4.5 mm. The sample manufactured under the conditions of Example 2 is designated "B".

[0076] (Comparative Example 1) A foamed silicone rubber sheet was produced using the same formulation as in Example 1, except that the thickness was increased from 2.1 mm to 4.2 mm. The cut size was the same as in Example 1. The laminate was produced differently from Example 1, with a heat insulating sheet (manufactured by Awa Paper Co., Ltd., product number I-80F, thickness 0.8-1.0 mm) adhered to both sides of the foamed silicone rubber sheet using an adhesive (manufactured by Cemedine Co., Ltd., product number SuperX). This resulted in a fire spread prevention sheet consisting of heat insulating sheet / foamed silicone rubber sheet / heat insulating sheet. The total thickness of the fire spread prevention sheet was approximately 6.6 mm. The fire spread prevention sheet of Comparative Example 1 has a layer structure in which the thin aluminum film is removed from the layer structure of the fire spread prevention sheet of Example 1. The sample produced under the conditions of Comparative Example 1 is designated "C."

[0077] (Comparative Example 2) The foamed silicone rubber sheet was produced under the same conditions as in Example 1. A laminate was produced by sandwiching aluminum foil (manufactured by Toyo Aluminum K.K., thickness: approximately 11 μm) between two foamed silicone rubber sheets via the adhesive used in Example 1. Next, the heat insulating sheet used in Example 1 was adhered to both outer surfaces of the laminate using the adhesive. As a result, a fire spread prevention sheet of heat insulating sheet / foamed silicone rubber sheet / aluminum foil / foamed silicone rubber sheet / heat insulating sheet was completed. The total thickness of the fire spread prevention sheet was approximately 6.8 mm. The sample produced under the conditions of Comparative Example 2 is designated "D".

[0078] 2. Evaluation of the characteristics of fire prevention sheets (1) Experiment 1 (Evaluation of thermal resistance and thermal conductivity) Figure 13 shows a photograph of a thermal resistance measuring device used to examine the thermal resistance and thermal conductivity of three types of samples from Examples 1 and 2 and Comparative Example 1. Figure 14 shows a photograph of each of Samples A, B, and C sandwiched between an upper rod (also called the reference material) and a lower rod (also called the reference material). Figure 15 shows a schematic diagram of the sample sandwiched between the upper and lower rods. (15A) shows the heat flow from the heat source to the upper rod, sample, lower rod, and heat sink (cooling section), the state in which the sample is compressed between the upper and lower rods, and the locations where four thermocouples are fixed. (15B) shows the thermal resistance (Rth,Bulk ), the thermal resistance between the sample and the upper rod (R th,contact Ref-sample ), the thermal resistance between the sample and the lower rod (R th,contact Ref-sample ) and the formula for measuring thermal conductivity are shown.

[0079] The thermal resistance measurement device (TIM tester manufactured by ZFW) in Figure 13 is equipped with a system that supplies heat from the upper rod to heat the sample, a unit that can compress the sample using hydraulic pressure, and a device that optically measures the thickness of the sample (indicated by dx or Gap). The area of ​​the end faces of the upper and lower rods is 706.86 mm 2 The thermal resistance measuring device in Figure 13 is a device that measures thermal resistance and thermal conductivity based on "ASTM D5470-17," a standard for evaluating thermal resistance and thermal conductivity. th,Bulk ), the thermal resistance between the sample and the upper rod (R th,contact Ref-sample ), the thermal resistance between the sample and the lower rod (R th,contact Ref-sample ) total three thermal resistances are R th,app As shown in FIG. 15 (15B), the thermal resistance measuring device of FIG. 13 measures the sum of the three thermal resistances, R th,app dx / Area R th,app By calculating the thermal conductivity (λ eff or λ app ) can be obtained.

[0080] Tables 1, 2, and 3 show output data when sample A of Example 1, sample B of Example 2, and sample C of Comparative Example 1 were measured using the thermal resistance measuring device of Fig. 13. In the tables, Gap represents the thickness when the sample was compressed, Force represents the load when the sample was compressed, and R th,app is the thermal resistance (as mentioned above), λ app is the thermal conductivity, R th,app A is R th,app is multiplied by the area of ​​Area, Pressure is the pressure caused by the load applied to the sample, and T sample is the sample temperature, and Q bottom and denote the heat flow through the sample, respectively.

[0081] FIG. 16 shows the changes in thermal resistance (16A) and thermal conductivity (16B) when increasing pressure is applied to Sample A of Example 1, Sample B of Example 2, and Sample C of Comparative Example 1.

[0082] [Table 1]

[0083] [Table 2]

[0084] [Table 3]

[0085] As shown in Tables 1 to 3 and Figure 16, a common trend for all samples was observed: as the pressure applied to the sample increased, the thickness decreased, the thermal resistance decreased, and the thermal conductivity increased. However, it was found that Samples A and B (Examples 1 and 2) showed a significantly smaller decrease in thermal resistance and a smaller increase in thermal conductivity than Sample C (Comparative Example 1). This result indicates that when a thin aluminum film is formed inside the fire-spread-arresting sheet, the thermal resistance can be maintained high, and as a result, the thermal conductivity can be maintained low, even when the pressure is increased, compared to a sheet without the thin aluminum film. Therefore, it is believed that the thin aluminum film can prevent heat transfer from one side of the fire-spread-arresting sheet to the other.

[0086] (2) Experiment 2 (Evaluation of stress and strain) FIG. 17 shows a graph of the relationship between thickness and stress when Sample A of Example 1, Sample C of Comparative Example 1, and Sample D of Comparative Example 2 are compressed in the thickness direction. The horizontal axis of the graph is thickness (mm), and the vertical axis is stress (MPa). "Stress Strain" in the graph means stress strain. For this evaluation, the same device as used in Experiment 1 (see FIG. 13) was used.

[0087] As shown in Figure 17, all samples showed a tendency for stress to increase as the sample thickness decreased. However, Samples A and C were found to maintain lower stress when compressed in the thickness direction compared to Sample D. Sample C has a structure in which a foamed silicone rubber sheet is sandwiched between insulating sheets. Sample A has the same structure as Sample C, but with an aluminum thin film sandwiched inside the foamed silicone rubber sheet. Sample D has aluminum foil instead of the aluminum thin film of Sample C. These results indicate that even when a thin aluminum film is included within the fire prevention sheet, it has low stress-strain characteristics equivalent to those of a fire prevention sheet without such a thin film. On the other hand, when aluminum foil is included within the fire prevention sheet, stress-strain increases. These results indicate that aluminum foil inhibits the low stress-strain characteristics of the foamed silicone rubber sheet, but the aluminum thin film does not inhibit the low stress-strain characteristics of the foamed silicone rubber sheet.

[0088] 3. Evaluation of thin aluminum films and aluminum foils in fire prevention sheets (1) Evaluation of electrical conductivity To investigate the cause of the results in Experiment 2, we investigated the electrical conductivity of two foamed silicone rubber sheets (sheet a) that make up Sample A, which have a thin aluminum film formed on one side, and two foamed silicone rubber sheets (sheet d) that make up Sample D, which have aluminum foil attached to one side. We investigated the electrical conductivity of Sheet d using a Mitsubishi Chemical Corporation four-terminal resistance meter (model: MCP-T600). As a result, Sheet d showed extremely high electrical conductivity (electrical resistance value: 0.0024 Ω / □). Meanwhile, we investigated the electrical conductivity of Sheet a using a Mitsubishi Chemical Analytech Hiresta (model: MCP-HT450). As a result, we found that Sheet a conducted almost no electricity (electrical resistance value: Over Load, meaning that the electrical resistance value was infinite).

[0089] (2) Observation of microstructure Figure 18 shows an optical microscope photograph (observation magnification: 500x) of the thin aluminum film of sheet a constituting sample A. Figure 19 shows scanning electron microscope photographs (observation magnifications: 1000x, 3000x, and 10000x) of the thin aluminum film of sheet a.

[0090] Observation of the thin film using an optical microscope and a scanning electron microscope revealed that the thin film contained numerous fine cracks and was composed of tiny scales rather than a single film. In other words, aluminum foil is in the form of a single sheet, while the thin aluminum film is composed of multiple small pieces. This difference in morphology is thought to be related to the phenomenon where aluminum foil inhibits the low-stress strain characteristics of the foamed silicone rubber sheet, while the thin aluminum film does not. This difference in morphology is also thought to be related to the phenomenon where aluminum foil exhibits excellent electrical conductivity, while the thin aluminum film barely conducts electricity. [Industrial Applicability]

[0091] The present invention can be used, for example, in automobile batteries. [Explanation of symbols]

[0092] 1···Battery, 5···Battery cell (an example of a heat source), 10, 10a, 10b, 10c, 10d, 10e···Fire prevention sheet, 11···First rubber sheet (e.g., a sponge-like perforated sheet), 12···Second rubber sheet (e.g., a sponge-like perforated sheet), 13···Metal film, 14···Holes, 15···Metal particles, 17···Rubber sheet with metal film, 31, 32···Insulating sheets.

Claims

1. A fire prevention sheet that can be placed between heat sources to prevent the spread of fire between the heat sources, It has a laminate structure with multiple layers, a metal film-covered rubber sheet provided on at least one surface of the first rubber sheet in the thickness direction thereof inside the fire spread prevention sheet in the thickness direction; A fire prevention sheet characterized in that the metal film is a film in which metal particles are deposited.

2. 2. The fire spread prevention sheet according to claim 1, wherein the first rubber sheet is a sponge-like porous sheet.

3. 2. The fire spread prevention sheet according to claim 1, wherein the first rubber sheet is made of silicone rubber.

4. The plurality of layers further includes a second rubber sheet, The fire spread prevention sheet according to claim 1 , wherein the second rubber sheet is disposed opposite to the surface of the metal film-coated rubber sheet that is provided with the metal film.

5. 5. The fire spread prevention sheet according to claim 4, wherein at least one of the first rubber sheet and the second rubber sheet is a sponge-like porous sheet.

6. 5. The fire spread prevention sheet according to claim 4, wherein at least one of the first rubber sheet and the second rubber sheet is made of silicone rubber.

7. The fire spread prevention sheet according to claim 1, characterized in that the metal film is a thin film primarily made of aluminum, copper, tin, silver or gold, or a thin film of an alloy containing at least one of the elements aluminum, copper, tin, silver or gold.

8. 2. The fire spread prevention sheet according to claim 1, further comprising a heat insulating sheet containing metal oxide on the metal film side of the metal film-attached rubber sheet.

9. The fire spread prevention sheet according to claim 8, characterized in that the heat insulating sheet is provided with a second rubber sheet on the opposite side to the metal film.

10. The fire spread prevention sheet according to claim 1, further comprising a metal oxide-containing heat insulating sheet on at least one outer side in the thickness direction of the fire spread prevention sheet.

11. A method for manufacturing a fire prevention sheet that can be placed between heat sources to prevent the spread of fire between the heat sources, comprising: The fire spread prevention sheet has a laminate structure having a plurality of layers, a metal film forming step of forming a metal film in a state where metal particles are deposited on at least one surface in a thickness direction of a first rubber sheet, which is one of the plurality of layers, to manufacture a rubber sheet with a metal film; a lamination step of laminating the first rubber sheet with one or two other layers; A method for producing a fire spread prevention sheet comprising:

12. The method for manufacturing a fire spread prevention sheet according to claim 11, wherein the one or two other layers include a second rubber sheet.

13. The method for manufacturing a fire prevention sheet according to claim 11, wherein one or two of the other layers comprises a heat insulating sheet containing a metal oxide.

14. The method for manufacturing a fire spread prevention sheet according to any one of claims 11 to 13, wherein the metal film forming step is carried out by vapor deposition or sputtering of the metal.

15. A method for manufacturing a fire spread prevention sheet described in any one of claims 11 to 13, characterized in that prior to the metal film formation process, a primer treatment process is performed on one thickness-wise surface of the first rubber sheet to facilitate the formation of the metal film.

16. A battery having a plurality of battery cells arranged in a row, A battery comprising the fire spread prevention sheet according to any one of claims 1 to 10 interposed between the battery cells serving as heat sources.

Citation Information

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