Foam sheets and adhesive tapes

A foam sheet with tailored properties addresses the issue of wrinkling by maintaining flexibility and strength, ensuring high quality and preventing defects in adhesive tapes.

JP7804692B2Active Publication Date: 2026-01-22SEKISUI CHEMICAL CO LTD
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Patent Information

Application Number
JP2023560835
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-03-18
Filing Date
2023-03-20
Publication Date
2026-01-22
Estimated Expiration
2043-03-20

AI Technical Summary

Technical Problem

Foam sheets used in adhesive tapes for electronic devices are prone to wrinkling when rolled due to increased thickness, affecting product quality.

Method used

A foam sheet with specific properties including a permanent deformation of 15% or more, 25% compressive strength of 600 kPa or less, interlaminar strength of 0.6 MPa or more, closed cell ratio of 80% or more, gel fraction of 30 to 80%, and average cell diameter of 40 to 400 μm, which reduces wrinkling when rolled.

Benefits of technology

The foam sheet remains resistant to wrinkling when rolled, ensuring high quality and preventing defects such as lifting, while maintaining flexibility and strength for use in adhesive tapes.

✦ Generated by Eureka AI based on patent content.

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Abstract

This foam sheet has a permanent deformation of at least 15% occurring as a result of one minute of compression at a stress of 1.2 MPa per 100 mm2. This adhesive tape comprises the foam sheet and an adhesive material provided to at least one surface of the multi-layer foam sheet. With the present invention, it is possible to provide a foam sheet that is not susceptible to wrinkling even when rolled, and an adhesive tape that uses said foam sheet.
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Description

[Technical Field]

[0001] The present invention relates to a foam sheet and an adhesive tape including the foam sheet. [Background technology]

[0002] In portable electronic devices such as notebook personal computers, mobile phones, smartphones, and tablets, cushioning material is often placed on the back side of the display device to prevent damage or malfunction. High flexibility is required for the cushioning material, and foam sheets have traditionally been widely used. A foam sheet may be used inside an electronic device as an adhesive tape by applying an adhesive to at least one surface thereof. Conventionally, a crosslinked polyolefin resin foam sheet obtained by foaming and crosslinking an expandable polyolefin resin sheet containing a thermal decomposition type foaming agent has been known as a foam sheet used in such applications (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-187232 Summary of the Invention [Problem to be solved by the invention]

[0004] By rolling the foam sheet, the adhesive can be continuously applied to the foam sheet, making the production of adhesive tape very efficient. This facilitates mass production of adhesive tape. However, after the foam sheet is wound into a roll, wrinkles may occur in the foam sheet. If wrinkles occur in the foam sheet, the quality of the foam sheet as a product is impaired.

[0005] Therefore, an object of the present invention is to provide a foam sheet that is resistant to wrinkles even when rolled up, and a pressure-sensitive adhesive tape using the foam sheet. [Means for solving the problem]

[0006] The present inventors have conducted extensive research into wrinkles in rolled foam sheets and have found that wrinkles occur in rolled foam sheets because the thickness of the foam sheet increases after it is wound up compared to when it is wound up. They have also found that a foam sheet that generates a large permanent strain when compressed can solve the above-mentioned problem, and have completed the present invention as described below. That is, the present invention provides the following [1] to

[10] .

[0007] [1] 100mm 2 A foam sheet having a permanent deformation of 15% or more when compressed for 1 minute at a stress of 1.2 MPa per minute. [2] The foam sheet according to [1] above, which has a 25% compressive strength of 600 kPa or less. [3] The foam sheet according to [1] or [2] above, having an interlaminar strength of 0.6 MPa or more. [4] The foam sheet according to any one of the above [1] to [3], which has a closed cell rate of 80% or more. [5] The foam sheet according to any one of the above [1] to [4], which has a gel fraction of 30 to 80%. [6] The foam sheet according to any one of the above [1] to [5], wherein the larger of the MD flatness and TD flatness of the cells is 3 or more. [7] Density: 0.05 to 0.3 g / cm 3 The foam sheet according to any one of the above [1] to [6], wherein [8] The foam sheet according to any one of the above [1] to [7], which has a thickness of 0.03 to 2 mm. [9] The foam sheet according to any one of the above [1] to [8], which has an average cell diameter of 40 to 400 μm.

[10] An adhesive tape comprising the foam sheet according to any one of the above [1] to [9] and an adhesive material provided on at least one surface of the foam sheet. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide a foam sheet that is resistant to wrinkles even when rolled up, and a pressure-sensitive adhesive tape using the foam sheet. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 2 is a schematic diagram showing an interlaminar strength measuring device. DETAILED DESCRIPTION OF THE INVENTION

[0010] The present invention will be described in detail below using embodiments. [Foam sheet] (permanent deformation) The foam sheet of the present invention is 100 mm 2 The permanent set of the foam sheet of the present invention is 15% or more when compressed for 1 minute under a stress of 1.2 MPa per minute. If the permanent set is less than 15%, the foam sheet may become thicker after being wound into a roll than when wound, which may cause wrinkles in the foam sheet. From this perspective, the permanent set of the foam sheet of the present invention is preferably 17% or more, more preferably 20% or more. The upper limit of the range of the permanent set of the foam sheet of the present invention is not particularly limited, but is preferably 50% and more preferably 40% from the viewpoint of sealability. The permanent set of the foam sheet can be measured by the method described in the Examples below. The permanent set of the foam sheet can be controlled by adjusting the type and proportion of resins constituting the foam sheet, the average cell diameter, the cell oblateness, the thickness of the foam sheet, the density of the foam sheet, the gel fraction of the foam sheet, etc.

[0011] (25% compressive strength) The 25% compression strength of the foam sheet of the present invention is preferably 600 kPa or less. When the foam sheet has a 25% compression strength of 600 kPa or less, the foam sheet has excellent conformability when wound into a roll, and defects such as lifting can be suppressed. From this perspective, the 25% compression strength of the foam sheet is more preferably 300 kPa or less, even more preferably 200 kPa or less, and even more preferably 100 kPa or less. The lower limit of the range of the 25% compression strength of the foam sheet of the present invention is not particularly limited, but is typically 5 kPa. The 25% compression strength of the foam sheet can be measured by the method described in the Examples below. The 25% compression strength of the foam sheet can be controlled by adjusting the type and proportion of resins constituting the foam sheet, the average cell diameter, the cell oblateness, the thickness of the foam sheet, the density of the foam sheet, the gel fraction of the foam sheet, etc.

[0012] (Interlaminar strength) The interlaminar strength of the foam sheet of the present invention is preferably 0.6 MPa or more. When the foam sheet has an interlaminar strength of 0.6 MPa or more, when the foam sheet is used in an adhesive tape, the strength of the adhesive tape can be increased, and as a result, destruction of the adhesive tape due to external impact can be suppressed. From this perspective, the interlaminar strength of the foam sheet is more preferably 1.0 MPa or more, and even more preferably 1.2 MPa or more. The upper limit of the range of the interlaminar strength of the foam sheet of the present invention is not particularly limited, but is typically 10 MPa. The interlaminar strength of the foam sheet can be measured by the method described in the Examples below. The interlaminar strength of the foam sheet can be controlled by adjusting the type and proportion of resins constituting the foam sheet, the average cell diameter, the cell oblateness, the thickness of the foam sheet, the density of the foam sheet, the gel fraction of the foam sheet, etc.

[0013] (closed cell ratio) The closed cell ratio of the foam sheet of the present invention is preferably 80% or more. If the closed cell ratio of the foam sheet is 80% or more, the dustproof and waterproof properties of the foam sheet can be improved when the foam sheet is used as a sealing material. From this perspective, the closed cell ratio of the foam sheet is more preferably 90% or more, and even more preferably 95% or more. The upper limit of the range of the closed cell ratio of the foam sheet of the present invention is not particularly limited, but is usually 100%. The closed cell ratio of the foam sheet can be measured by the method described in the Examples below.

[0014] (gel fraction) The gel fraction of the foam sheet of the present invention is preferably 30 to 80%. When the gel fraction of the foam sheet is 30 to 80%, the bubbles in the foam sheet can be made smaller and the interlaminar strength can be improved. From these viewpoints, the gel fraction of the multilayer foam sheet is more preferably 35 to 70%, and even more preferably 40 to 60%. The gel fraction of the foam sheet can be measured by the method described in the Examples.

[0015] (Bubble flatness) The larger of the MD and TD flattening ratios of the cells in the foam sheet of the present invention is preferably 3 or more. In this specification, "MD" refers to machine direction, which is the same direction as the extrusion direction of the sheet. "TD" refers to transverse direction, which is the direction perpendicular to MD and parallel to the surface of the sheet. When the larger of the MD and TD flattening ratios of the cells is 3 or more, the restoring force of the cells in the thickness direction is suppressed, thereby making it easier to achieve a permanent set of 15% or more in the foam sheet. From this perspective, the larger of the MD and TD flattening ratios of the cells is more preferably 5 or more, and even more preferably 7 or more. The MD and TD flattening ratios of the cells in the foam sheet can be measured by the method described in the Examples below. Furthermore, the MD and TD flattening ratios of the cells in the foam sheet can be adjusted by stretching the foam sheet in at least one of MD and TD during the production of the foam sheet. From the viewpoint of the stress relaxation rate of the foam sheet, it is more preferable that both the MD and TD flattening ratios of the cells are 3 or more.

[0016] (average bubble diameter) The average cell diameter of the foam sheet of the present invention is preferably 40 to 400 μm. As described below, the foam sheet may be used in any shape, but is preferably narrow. When the average cell diameter of the foam sheet is 40 to 400 μm, sufficient waterproofing of the foam sheet can be ensured even when the foam sheet is narrow. From this perspective, the average cell diameter of the foam sheet of the present invention is more preferably 100 to 300 μm, and even more preferably 150 to 250 μm. The average cell diameter of the foam sheet can be measured by the method described in the Examples below, and the average cell diameter here refers to the average of the average cell diameters in the MD and TD.

[0017] (density) The density of the foam sheet of the present invention is preferably 0.05 to 0.3 g / cm 3The density of the foam sheet is 0.05 to 0.3 g / cm 3 In this case, it becomes easier to make the permanent set of the foam sheet 15% or more. From this viewpoint, the density of the foam sheet of the present invention is more preferably 0.05 to 0.25 g / cm 3 and more preferably 0.10 to 0.23 g / cm 3 The density of the foam sheet can be measured by the method described in the Examples below.

[0018] (Expansion ratio) The expansion ratio of the foam sheet of the present invention is preferably 3 times or more. When the expansion ratio of the foam sheet is 3 times or more, it becomes easier to achieve a permanent set of 15% or more of the foam sheet. From this viewpoint, the density of the foam sheet of the present invention is more preferably 4 times or more, and even more preferably 5 times or more. The upper limit of the range of the expansion ratio of the foam sheet of the present invention is not particularly limited, but is usually 30 times, preferably 20 times. The expansion ratio of the foam sheet can be measured by the method described in the Examples below.

[0019] (Thickness) The foam sheet of the present invention preferably has a thickness of 0.03 to 2 mm. When the foam sheet has a thickness of 0.03 to 2 mm, it becomes easier to achieve a permanent set of 15% or more of the foam sheet. From this viewpoint, the thickness of the foam sheet of the present invention is more preferably 0.05 to 1.0 mm, and even more preferably 0.1 to 0.7 mm. The density of the foam sheet can be measured by the method described in the Examples below.

[0020] [Resin that makes up the foam sheet] The foam sheet of the present invention preferably contains a polyolefin resin. By using a polyolefin resin, the permanent deformation of the foam sheet can be reduced to 15%. End This makes it easier to

[0021] (Polyolefin resin) Polyolefin resin is a thermoplastic resin, specific examples of which include polyethylene resin, polypropylene resin, polybutene resin, ethylene-vinyl acetate copolymer, etc. Among these, polyethylene resin and ethylene-vinyl acetate copolymer are preferred, and a resin mixture of polyethylene resin and ethylene-vinyl acetate copolymer is more preferred. By using polyethylene resin and ethylene-vinyl acetate copolymer, the flatness of the cells is not easily increased, and the permanent deformation of the foam sheet can be reduced to 15%. End Furthermore, flexibility of the foam sheet can be more easily ensured. Examples of polyethylene resins include polyethylene resins polymerized with a polymerization catalyst such as a Ziegler-Natta catalyst, a metallocene catalyst, or a chromium oxide compound, and polyethylene resins polymerized with a metallocene catalyst are preferably used.

[0022] (Metallocene catalyst) Examples of metallocene catalysts include compounds such as bis(cyclopentadienyl) metal complexes, which have a structure in which a transition metal is sandwiched between π-electron unsaturated compounds. More specifically, examples include compounds in which one or more cyclopentadienyl rings or analogs thereof exist as ligands on a tetravalent transition metal such as titanium, zirconium, nickel, palladium, hafnium, or platinum. Such metallocene catalysts have uniform properties of active sites, and each active site has the same activity. Polymers synthesized using metallocene catalysts have high uniformity in molecular weight, molecular weight distribution, composition, composition distribution, etc., so when a sheet containing a polymer synthesized using a metallocene catalyst is crosslinked, the crosslinking proceeds uniformly. A uniformly crosslinked sheet is foamed uniformly, making it easier to stabilize its physical properties. In addition, since it can be stretched uniformly, the thickness of the foam can be made uniform.

[0023] Examples of the ligand include a cyclopentadienyl ring and an indenyl ring. These cyclic compounds may be substituted with a hydrocarbon group, a substituted hydrocarbon group, or a hydrocarbon-substituted metalloid group. Examples of hydrocarbon groups include a methyl group, an ethyl group, various propyl groups, various butyl groups, various amyl groups, various hexyl groups, 2-ethylhexyl groups, various heptyl groups, various octyl groups, various nonyl groups, various decyl groups, various cetyl groups, and a phenyl group. Note that "various" refers to various isomers including n-, sec-, tert-, and iso-. Alternatively, a cyclic compound may be polymerized as an oligomer and used as the ligand. Furthermore, in addition to the π-electron unsaturated compounds, monovalent anionic ligands such as chlorine and bromine, or divalent anionic chelate ligands, hydrocarbons, alkoxides, arylamides, aryloxides, amides, phosphides, arylphosphides, etc. may also be used.

[0024] Examples of metallocene catalysts containing a tetravalent transition metal or a ligand include cyclopentadienyltitanium tris(dimethylamide), methylcyclopentadienyltitanium tris(dimethylamide), bis(cyclopentadienyl)titanium dichloride, and dimethylsilyltetramethylcyclopentadienyl-t-butylamide zirconium dichloride. Metallocene catalysts, when combined with a specific cocatalyst (promoter), function as a catalyst during the polymerization of various olefins. Specific examples of the cocatalyst include methylaluminoxane (MAO) and boron-based compounds. The ratio of the cocatalyst to the metallocene catalyst is preferably 100,000 to 1,000,000 moles, and more preferably 50 to 5,000 moles.

[0025] Moreover, the polyethylene resin is preferably a linear low-density polyethylene. The linear low-density polyethylene is more preferably a linear low-density polyethylene obtained by copolymerizing ethylene (for example, 75% by mass or more, preferably 90% by mass or more, based on the total amount of monomers) with a small amount of an α-olefin as needed. Specific examples of the α-olefin include propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, and 1-octene. Of these, α-olefins having 4 to 10 carbon atoms are preferred. The density of the polyethylene resin, for example, the linear low-density polyethylene described above, is 0.870 to 0.925 g / cm from the viewpoint of flexibility. 3 is preferable, and 0.890 to 0.925 g / cm 3 More preferably, 0.910 to 0.925 g / cm 3 As the polyethylene resin, a plurality of polyethylene resins may be used, and a polyethylene resin having a density outside the above range may be added.

[0026] The ethylene-vinyl acetate copolymer used as the polyolefin resin is, for example, an ethylene-vinyl acetate copolymer containing preferably 6 to 40 mass %, more preferably 10 to 35 mass %, and even more preferably 12 to 33 mass % of vinyl acetate. The ethylene-vinyl acetate copolymer used in the present invention may contain, in addition to ethylene and vinyl acetate, vinyl alcohol produced by hydrolyzing part of the vinyl acetate.

[0027] Examples of polypropylene resins include homopolypropylene and propylene-α-olefin copolymers containing 50% by mass or more of propylene. These may be used alone or in combination of two or more. Specific examples of α-olefins constituting the propylene-α-olefin copolymers include ethylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, and 1-octene. Of these, α-olefins having 6 to 12 carbon atoms are preferred. Examples of polybutene resins include homopolymers of butene-1 and copolymers with ethylene or propylene.

[0028] [Mass ratio of polyethylene resin to ethylene-vinyl acetate copolymer] When a resin mixture of polyethylene resin and ethylene-vinyl acetate copolymer is used as the polyolefin resin, the mass ratio of polyethylene resin to ethylene-vinyl acetate copolymer is preferably 90:10 to 40:60. Within this range, a foam sheet that exhibits the effects of the present invention can be easily produced. From the viewpoint of obtaining a foam sheet with even greater effects, the mass ratio of polyethylene resin to ethylene-vinyl acetate copolymer is more preferably in the range of 85:15 to 45:55, and even more preferably in the range of 80:20 to 50:50.

[0029] The foam sheet of the present invention may contain a resin other than the polyolefin resin as long as the effect of the present invention is not impaired. End From this viewpoint, the proportion of polyolefin resin in the resin component of the foam sheet of the present invention is preferably high. Specifically, the proportion of polyolefin resin in the resin component of the foam sheet of the present invention is preferably 80 to 100 mass%, more preferably 90 to 100 mass%, even more preferably 95 to 100 mass%, and still more preferably 99 to 100 mass%.

[0030] [Additives] The foam sheet of the present invention is preferably obtained by foaming a foamable composition containing the above-mentioned resin and a foaming agent, preferably a thermally decomposable foaming agent. The thermal decomposition type blowing agent may be an organic blowing agent or an inorganic blowing agent. Examples of the organic blowing agent include azo compounds such as azodicarbonamide, azodicarboxylic acid metal salts (e.g., barium azodicarboxylate), and azobisisobutyronitrile, nitroso compounds such as N,N'-dinitrosopentamethylenetetramine, hydrazine derivatives such as hydrazodicarbonamide, 4,4'-oxybis(benzenesulfonylhydrazide), and toluenesulfonylhydrazide, and semicarbazide compounds such as toluenesulfonylsemicarbazide. Examples of inorganic foaming agents include ammonium carbonate, sodium carbonate, ammonium hydrogen carbonate, sodium hydrogen carbonate, ammonium nitrite, sodium borohydride, and anhydrous monosodium citrate. Among these, from the viewpoint of obtaining fine bubbles, and from the viewpoints of economy and safety, azo compounds are preferred, and azodicarbonamide is more preferred. The thermal decomposition type foaming agents may be used alone or in combination of two or more.

[0031] The amount of foaming agent in the foamable composition is preferably 1 to 20 parts by mass, more preferably 1.5 to 15 parts by mass, and even more preferably 3 to 10 parts by mass, per 100 parts by mass of resin. By using a foaming agent in an amount of 1 part by mass or more, the foamable sheet is foamed appropriately, making it possible to impart appropriate flexibility to the foam sheet. Furthermore, by using a foaming agent in an amount of 20 parts by mass or less, the foam sheet is prevented from foaming more than necessary, making it possible to improve the mechanical strength of the foam sheet.

[0032] The foamable composition may contain a decomposition temperature regulator. The decomposition temperature regulator is added to have a regulating function, such as lowering the decomposition temperature of the thermally decomposable foaming agent or accelerating the decomposition rate. Specific examples of the decomposition temperature regulator include zinc oxide, zinc stearate, and urea. The decomposition temperature regulator is added in an amount of, for example, 0.01 to 5 parts by mass per 100 parts by mass of the resin in order to adjust the surface condition of the foam sheet.

[0033] The foamable composition may contain an antioxidant. Examples of the antioxidant include phenol-based antioxidants such as 2,6-di-t-butyl-p-cresol, sulfur-based antioxidants, phosphorus-based antioxidants, and amine-based antioxidants. The antioxidant is blended in an amount of, for example, 0.01 to 5 parts by mass per 100 parts by mass of the resin. In addition to the above, the foamable composition may contain additives that are generally used in foams, such as heat stabilizers, colorants, flame retardants, antistatic agents, and fillers.

[0034] The foam sheet is mainly composed of polyolefin resin, and the content of the polyolefin resin is, for example, 70 mass % or more, preferably 80 mass % or more, and more preferably 90 mass % or more, based on the total mass of the foam sheet.

[0035] [Method of manufacturing foam sheet] The foam sheet of the present invention is not particularly limited, but can be produced by heating a foamable sheet made of a foamable composition containing at least a resin and a thermally decomposable foaming agent to foam the thermally decomposable foaming agent. Preferably, the foamable sheet is crosslinked and the crosslinked foamable sheet is heated to foam. More specifically, the method for producing a foam sheet preferably includes the following steps (1) to (3). Step (1): A step of forming a foamable sheet from a foamable composition containing at least a resin and a thermally decomposable foaming agent. Step (2): A step of irradiating the foamable sheet with ionizing radiation to crosslink the foamable sheet. Step (3): A step of heating the crosslinked expandable sheet to expand the thermally decomposable foaming agent, thereby obtaining a foam sheet.

[0036] In step (1), the method for forming the foamable sheet is not particularly limited, but may be, for example, by feeding the resin and additives to an extruder, melt-kneading them, and extruding the foamable composition from the extruder into a sheet. Alternatively, the foamable sheet may be formed by pressing the foamable composition. The forming temperature of the foamable sheet (i.e., the temperature during extrusion or pressing) is preferably 50 to 250°C, more preferably 80 to 180°C.

[0037] In step (2), the foamable composition is crosslinked by irradiating the foamable sheet with ionizing radiation such as electron beams, α-rays, β-rays, γ-rays, etc. The dose of the ionizing radiation may be adjusted so that the degree of crosslinking of the resulting foam sheet falls within the desired range, and is preferably 1 to 12 Mrad, more preferably 1.5 to 10 Mrad.

[0038] In step (3), the heating temperature when the foamable composition is heated to foam the thermally decomposable foaming agent may be equal to or higher than the foaming temperature of the thermally decomposable foaming agent, but is preferably 200 to 300° C., more preferably 220 to 280° C. In step (3), the foamable composition is foamed to form bubbles, resulting in a foam.

[0039] In the present production method, the foam sheet may be thinned by rolling or stretching, and the cell flatness may be adjusted by rolling or stretching.

[0040] However, the present production method is not limited to the above, and a foam sheet may be obtained by a method other than the above. For example, instead of irradiating with ionizing radiation, crosslinking may be performed by a method in which an organic peroxide is blended in advance with the foamable composition, and the foamable sheet is heated to decompose the organic peroxide. If crosslinking is not required, step (2) may be omitted, and in that case, in step (3), the uncrosslinked expandable sheet may be heated to expand it.

[0041] [Adhesive tape] The pressure-sensitive adhesive tape of the present invention comprises the foam sheet of the present invention and an adhesive material provided on at least one surface of the foam sheet. The adhesive tape can be adhered to another member such as a support member via the adhesive material. The pressure-sensitive adhesive tape may have the adhesive material provided on both surfaces of the foam sheet or on one surface. The adhesive material may be any material that includes at least a pressure-sensitive adhesive layer, and may be a single pressure-sensitive adhesive layer laminated on the surface of a foam sheet, or a double-sided pressure-sensitive adhesive sheet attached to the surface of a foam sheet, but is preferably a single pressure-sensitive adhesive layer. The double-sided pressure-sensitive adhesive sheet includes a substrate and pressure-sensitive adhesive layers provided on both sides of the substrate. The double-sided pressure-sensitive adhesive sheet is used to adhere one pressure-sensitive adhesive layer to a foam sheet and the other pressure-sensitive adhesive layer to another member.

[0042] The adhesive constituting the adhesive layer is not particularly limited, and for example, an acrylic adhesive, a urethane adhesive, a rubber adhesive, a silicone adhesive, etc. Furthermore, a release sheet such as release paper may be further attached onto the adhesive material. The thickness of the pressure-sensitive adhesive layer is preferably 5 to 200 μm, more preferably 7 to 150 μm, and even more preferably 10 to 100 μm.

[0043] [Foam sheet roll] The foam sheet of the present invention can be formed into a roll. Forming it into a roll makes it easy to store and convenient to transport. When used, it can be unwound from the roll. As described above, the permanent set of the foam sheet of the present invention is 15% or more, so that when the foam sheet is wound into a roll, problems such as wrinkles can be suppressed. Furthermore, by setting the compression strength to a certain value or less as described above, defects such as lifting can be suppressed when the foam sheet is wound into a roll.

[0044] [Uses of foam sheets] The use of the foam sheet is not particularly limited, but it is preferably used in electronic devices. Examples of electronic devices include mobile phones such as smartphones, game devices, electronic organizers, tablet devices, and notebook personal computers. The foam sheet can be used as a cushioning material inside the electronic device, and is preferably used as a cushioning material for display devices. It may also be used as a sealing material to fill gaps between components inside the electronic device.

[0045] The foam sheet may be used in any shape, for example, a narrow width, specifically a narrow rectangular shape, a frame shape such as a square frame, an L-shape, a U-shape, etc. The width of these is, for example, 5 mm or less, preferably 3 mm or less, more preferably 1 mm or less, and for example, 0.1 mm or more.

[0046] The foam sheet used as a cushioning material for a display device may be placed, for example, on the back side of a display panel installed in various electronic devices to cushion impacts acting on the display panel. In this case, the foam sheet may be placed on a support member placed on the back side of the display panel. The support member may be, for example, a part of the housing of the various electronic devices. The foam sheet used in electronic devices may be provided with an adhesive as described above, and may be attached to a display panel, a support member, etc. In particular, the foam sheet of the second aspect of the present invention has excellent low-speed impact resistance in addition to high-speed impact resistance, and therefore can be suitably used for attaching to and fixing to heavy devices such as wall-mounted televisions. [Example]

[0047] The present invention will be explained in more detail by way of examples, but the present invention is not limited to these examples in any way.

[0048] [Measurement method] The methods for measuring and evaluating each physical property are as follows. <Thickness> The measurement was carried out using a dial gauge.

[0049] <Density, expansion ratio> The specific volume (unit: cc / g) of the foam sheet was measured before and after foaming, and the expansion ratio was calculated by dividing the specific volume after foaming by the specific volume before foaming. The density was also calculated from the measured specific volume.

[0050] <Average bubble diameter and bubble flatness> The foam sheet was cut in the thickness direction (ZD) along both the MD and TD, and a 200x magnified photograph was taken using a digital microscope (Keyence Corporation, product name "VHX-900"). In the enlarged photograph, the MD, TD, and ZD diameters of all bubbles present in a 2 mm-long cut surface in each of the MD and TD were measured, and this procedure was repeated five times. The average values ​​of the bubble diameters in the MD, TD, and ZD of all bubbles were taken as the average bubble diameters in the MD, TD, and ZD. The average of the average bubble diameters in the MD and TD was taken as the average bubble diameter. The MD oblateness of the bubbles was calculated by dividing the average MD diameter by the ZD average bubble diameter. The TD oblateness of the bubbles was calculated by dividing the TD average bubble diameter by the ZD average bubble diameter.

[0051] <25% compressive strength> Measurement was performed at a temperature of 23°C using a measurement method in accordance with JIS K6767.

[0052] <Interlaminar strength> Figure 1 shows a schematic diagram of a test device used to evaluate interlaminar strength. A 25 mm square area of ​​a foam sheet 11 was coated with a primer ("PPX Primer" manufactured by Cemedine Co., Ltd.), and then a 5 mm diameter drop of adhesive 12 ("PPX" manufactured by Cemedine Co., Ltd.) was placed in the center of the applied area. A 25 mm square aluminum jig 13 was then placed on the area where the adhesive had been applied, and the foam sheet and jig 13 were pressed together. The foam sheet was then cut to fit the dimensions of the jig 13. Primer was applied to the side of the cut foam sheet that was not attached to the jig 13, and a 5 mm diameter drop of adhesive 12 was placed in the center of the applied area. A 10 mm square aluminum jig 14 was then placed on the area where the adhesive had been applied, and the foam sheet and jig 14 were pressed together. Any excess adhesive around the periphery of the jig 14 was wiped off, and then a cut 15 was made in the foam sheet along the dimensions of the jig 14. This was left to stand at room temperature for 30 minutes to cure the adhesive, and a sample for measuring interlaminar strength was prepared. Next, a 1 kN load cell was installed in a testing machine (A&D Co., Ltd.'s "Tensilon Universal Material Testing Machine") equipped with a thermostatic chamber to allow testing within the chamber. The sample for measuring interlaminar strength was then attached to the testing machine so that the foam sheet surface was perpendicular to the tensile direction. The temperature of the thermostatic chamber was set to 23°C, and the sample for measuring interlaminar strength was left to cool to 23°C. One side of the jig was then pulled vertically upward at a speed of 100 mm / min, peeling only a 1 cm square area of ​​the foam sheet. The maximum load at this point was measured and used as the first measurement result. The same procedure was repeated three times, and the average value was used as the interlaminar strength.

[0053] <Closed bubble rate> A flat square test piece with a side length of 5 cm was cut out from the foam sheet. The thickness of the test piece was measured to calculate the apparent volume V1 of the test piece, and the mass W1 of the test piece was also measured. Next, the volume V2 occupied by the air bubbles was calculated using the following formula. The density of the test piece was defined as ρ (g / cm 3 ) Volume occupied by the bubble V2=V1-W1 / ρ Next, the test piece was submerged in distilled water at 23°C to a depth of 100 mm from the water surface, and a pressure of 15 kPa was applied to the test piece for 3 minutes. After that, the test piece was taken out of the water, and the water adhering to the surface of the test piece was removed. The mass W2 of the test piece was measured, and the closed cell ratio F1 was calculated according to the following formula. Closed cell rate F1 (%) = 100-100 x (W2-W1) / V2

[0054] <Gel fraction> A test piece of about 100 mg was taken from the foam sheet, and the mass A (mg) of the test piece was precisely weighed. Next, this test piece was immersed in 30 cm of xylene at 120°C. 3 After immersion for 24 hours, the insoluble matter on the mesh was filtered through a 200-mesh wire netting, vacuum-dried, and the mass B (mg) of the insoluble matter was precisely weighed. The gel fraction (mass%) was calculated from the obtained value using the following formula: Gel fraction (mass%) = 100 × (B / A)

[0055] <Permanent distortion> The foam sheet was cut into a 10 mm x 10 mm planar square and laminated to a thickness of approximately 4 mm to prepare a test specimen, and the thickness (C) of the test specimen was measured. Using a tensile tester (Shimadzu Corporation, Autograph AGS-X), the test specimen was compressed to a stress of 1.2 MPa at a rate of 5 mm / min and held in that state for 1 minute. The compression was then released, and the thickness (D) of the test specimen after compression was measured. The permanent set was calculated using the following formula. The permanent set measurement was performed in an environment of 23°C and 50% RH. Permanent set rate (%) = (1-D / C) x 100

[0056] <Evaluation of wrinkles on foam sheets> A 300 m foam sheet was wound up under a tension of 20 N to prepare a foam sheet roll. The foam sheet roll was stored in an environment at a temperature of 23°C for one week. The foam sheet roll was then opened to check for the presence or absence of wrinkles longer than 5 cm, and the occurrence of wrinkles in the foam sheet was evaluated according to the following evaluation criteria. (Evaluation criteria) ○: No wrinkles longer than 5 cm were present. ×: There were wrinkles with a length of more than 5 cm.

[0057] The materials used in the examples and comparative examples are as follows. Polyolefin resin (a): Novatec EVA LV440 (manufactured by Japan Polyethylene Co., Ltd., ethylene-vinyl acetate copolymer, vinyl acetate content 15% by mass) Polyolefin resin (b): Kernel (registered trademark) KF283 (Japan Polyethylene Co., Ltd., ethylene / α-olefin copolymer (LLDPE) polymerized with a metallocene catalyst) Thermal decomposition type blowing agent: Azodicarbonamide Decomposition temperature regulator: Zinc oxide, manufactured by Sakai Chemical Industry Co., Ltd., product name "OW-212F" Phenolic antioxidant: 2,6-di-t-butyl-p-cresol

[0058] [How to make foam sheets] The foam sheets of Examples 1 to 11 and Comparative Examples 1 and 2 were produced as follows. Example 1 20 parts by mass of polyolefin resin (a), 80 parts by mass of polyolefin resin (b), 3.5 parts by mass of a thermally decomposable foaming agent, 1 part by mass of a decomposition temperature regulator, and 0.5 parts by mass of a phenolic antioxidant were prepared as raw materials. These materials were melt-kneaded and then pressed to obtain a foamable resin sheet with a thickness of 0.5 mm. Both sides of the obtained foamable resin sheet were irradiated with an electron beam of 7 Mrad at an acceleration voltage of 500 keV to crosslink the foamable resin sheet. Next, the crosslinked foamable resin sheet was expanded by heating to 250°C while stretching in MD and TD to the aspect ratio listed in Table 1, and the expanded resin sheet had a density of 0.22 g / cm. 3 A foam sheet having a thickness of 0.20 mm was obtained.

[0059] <Example 2> A foam sheet was obtained in the same manner as in Example 1, except that the sheet was stretched in MD and TD so as to have the aspect ratio shown in Table 1.

[0060] Example 3 A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 3 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, the electron beam irradiation dose was changed from 7 Mrad to 6 Mrad, and the sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0061] Example 4 A foam sheet was obtained in the same manner as in Example 1, except that the amount of the thermally decomposable foaming agent was changed from 3.5 parts by mass to 3 parts by mass and the acceleration voltage was changed from 500 keV to 1000 keV.

[0062] <Example 5> A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 3 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, the electron beam irradiation dose was changed from 7 Mrad to 6 Mrad, and the sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0063] Example 6 A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 4.5 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, and the sheet was stretched in MD and TD to obtain the flatness shown in Table 1.

[0064] Example 7 A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 4.5 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, the electron beam irradiation dose was changed from 7 Mrad to 6 Mrad, and the sheet was stretched in MD and TD to have the flattening ratio shown in Table 1.

[0065] Example 8 A foam sheet was obtained in the same manner as in Example 1, except that the amount of the thermally decomposable foaming agent was changed from 3.5 parts by mass to 8 parts by mass and the sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0066] Example 9 The amount of polyolefin resin (a) was changed from 20 parts by mass to 30 parts by mass, the amount of polyolefin resin (b) was changed from 80 parts by mass to 70 parts by mass, and the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 8 parts by mass. The acceleration voltage was changed from 500 keV to 1000 keV, and the foamable resin sheet was stretched in MD and TD to have the aspect ratio shown in Table 1. Otherwise, a foam sheet was obtained in the same manner as in Example 1.

[0067] Example 10 A foam sheet was obtained in the same manner as in Example 1, except that the amount of polyolefin resin (a) was changed from 20 parts by mass to 40 parts by mass, the amount of polyolefin resin (b) was changed from 80 parts by mass to 60 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, and the foam sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0068] Example 11 A foam sheet was obtained in the same manner as in Example 1, except that the amount of polyolefin resin (a) was changed from 20 parts by mass to 50 parts by mass, the amount of polyolefin resin (b) was changed from 80 parts by mass to 50 parts by mass, the acceleration voltage was changed from 500 keV to 1000 keV, and the foam sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0069] <Comparative Example 1> A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 4 parts by mass, the electron beam irradiation dose was changed from 7 Mrad to 6 Mrad, and the sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0070] <Comparative Example 2> A foam sheet was obtained in the same manner as in Example 1, except that the amount of thermally decomposable foaming agent was changed from 3.5 parts by mass to 7 parts by mass, the electron beam irradiation dose was changed from 7 Mrad to 6 Mrad, and the sheet was stretched in MD and TD to have the aspect ratio shown in Table 1.

[0071] Table 1 shows the evaluation results of Examples 1 to 11 and Comparative Examples 1 and 2. [Table 1]

[0072] From the evaluation results of the foam sheets of Examples 1 to 11 and Comparative Examples 1 and 2, it was found that when the permanent set of the foam sheet is 15% or more, the occurrence of wrinkles in the foam sheet after it is wound up is suppressed. [Explanation of symbols]

[0073] 1 screen 2 foam tapes 3. Housing 11 Foam sheet 12 Adhesive 13 Jig 14 Jig 15 Cut

Claims

1. 100mm 2 The permanent deformation caused by compression for 1 minute at a stress of 1.2 MPa per unit weight is 15% or more, and the density is 0.05 to 0.3 g / cm 3 wherein the larger of the MD flattening ratio and the TD flattening ratio of the bubbles is 3 or more, the MD flattening ratio of the bubbles is a value calculated by dividing the average cell diameter of the bubbles in the MD by the average cell diameter in the ZD, and the TD flattening ratio of the bubbles is a value calculated by dividing the average cell diameter of the bubbles in the TD by the average cell diameter in the ZD, and the foam sheet contains a polyolefin resin.

2. 2. The foam sheet according to claim 1, having a 25% compressive strength of 600 kPa or less.

3. 3. The foam sheet according to claim 1, having an interlaminar strength of 0.6 MPa or more.

4. 3. The foam sheet according to claim 1, wherein the closed cell content is 80% or more.

5. 3. The foam sheet according to claim 1, having a thickness of 0.03 to 2 mm.

6. 3. The foam sheet according to claim 1, wherein the gel fraction is 30 to 80%.

7. 3. The foam sheet according to claim 1, wherein the average cell diameter is 40 to 400 μm.

8. An adhesive tape comprising the foam sheet according to claim 1 or 2 and an adhesive material provided on at least one surface of the foam sheet.

Citation Information

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