Thermoplastic elastomer composition and its use

A thermoplastic elastomer composition with propylene polymer, ethylene-α-olefin copolymer, and hydrogenated block copolymer addresses the need for low hardness and flexibility with enhanced scratch resistance, suitable for automotive and artificial leather applications.

JP7738646B2Active Publication Date: 2025-09-12MITSUI CHEMICALS INC
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Patent Information

Application Number
JP2023510545
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-01-27
Publication Date
2025-09-12
Estimated Expiration
2042-01-27

AI Technical Summary

Technical Problem

Existing thermoplastic elastomer compositions do not provide sufficient scratch resistance at low hardness levels required for improved tactile feel in recent applications.

Method used

A thermoplastic elastomer composition comprising propylene polymer, ethylene-α-olefin copolymer, softener, and a hydrogenated block copolymer with conjugated diene and vinyl aromatic monomer units, optimized for low hardness and flexibility with enhanced scratch resistance.

Benefits of technology

The composition achieves low hardness, flexibility, and excellent scratch resistance, suitable for various applications including automobile parts and artificial leather, with improved mechanical properties and moldability.

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Abstract

A purpose of the present invention is to provide a thermoplastic elastomer composition which has low hardness, is flexible, and has excellent scratch resistance. The present invention relates to a thermoplastic elastomer composition characterized by comprising the following (A) to (D). (A): 100 parts by mass of a propylene-based polymer, (B): 50-300 parts by mass of an ethylene / α-olefin copolymer including units of ethylene and a C3-C20 α-olefin, (C): 50-280 parts by mass of a softener, and (D): 90-400 parts by mass of a product of hydrogenation of a block copolymer comprising at least one block consisting mainly of units of a conjugated diene monomer and at least one block consisting mainly of units of a vinylaromatic monomer.
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Description

[Technical Field]

[0001] The present invention relates to a thermoplastic elastomer composition and its use. [Background technology]

[0002] Olefin-based thermoplastic elastomers are sometimes used for interior skin materials such as automobile instrument panels and door trims, as lightweight materials are required. Vacuum forming and injection molding are commonly used to form interior skin sheets made of olefin-based thermoplastic elastomers into the shapes of instrument panels, door trims, etc.

[0003] As an olefin-based thermoplastic elastomer for injection molding, for example, WO 2010 / 067564 (Patent Document 1) proposes a composition containing a polypropylene-based resin, an olefin-based copolymer rubber, a hydrogenated block copolymer having vinyl aromatic monomer units, and a softener in specified proportions, and WO 2011 / 155571 (Patent Document 2) proposes a thermoplastic elastomer composition containing a polypropylene-based resin, a softener, and a polyorganosiloxane in specified proportions. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2010 / 067564 Brochure [Patent Document 2] International Publication No. 2011 / 155571 Brochure Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, there has been a demand for materials that are lower in hardness and more flexible than conventional thermoplastic elastomer compositions in order to improve tactile feel while maintaining excellent scratch resistance. However, although the thermoplastic elastomer compositions described in Patent Documents 1 and 2 are designed to have excellent scratch resistance at a hardness that was previously acceptable, they do not provide sufficient scratch resistance in the low hardness range that is required in recent years, and further improvements are desired. An object of the present invention is to provide a thermoplastic elastomer composition which has low hardness, flexibility and excellent scratch resistance. [Means for solving the problem]

[0006] The present invention relates to a thermoplastic elastomer composition comprising the following (A) to (D): (A) propylene polymer: 100 parts by mass, (B) an ethylene-α-olefin copolymer containing ethylene and an α-olefin unit having 3 to 20 carbon atoms: in the range of 50 to 300 parts by mass, (C) softener: in the range of 50 to 280 parts by mass, (D) A hydrogenated product of a block copolymer having at least one block mainly composed of conjugated diene monomer units and at least one block mainly composed of vinyl aromatic monomer units: in the range of 90 to 400 parts by mass. [Effects of the Invention]

[0007] The thermoplastic elastomer composition of the present invention has low hardness, flexibility, and excellent scratch resistance, and is suitable for use as a molded article in a variety of well-known applications, such as automobile parts, civil engineering and building materials, electrical and electronic parts, sanitary products, films and sheets, foams, and artificial leather, and is particularly suitable for use in automobile parts such as automobile interior parts and skin materials such as artificial leather. DETAILED DESCRIPTION OF THE INVENTION

[0008] In this specification, a numerical range expressed using "to" means a range that includes the numerical values ​​before and after "to" as the lower and upper limits.

[0009] <Propylene polymer (A)> The propylene polymer (A) (hereinafter, sometimes referred to as "component (A)"), which is one of the components of the thermoplastic elastomer composition of the present invention, refers to a polymer in which the content of constituent units derived from propylene among the constituent units constituting the polymer is 50 mol % or more, and the content of constituent units derived from propylene in component (A) is preferably 90 mol % or more.

[0010] The component (A) according to the present invention may be one type or two or more types. The component (A) according to the present invention may be a propylene homopolymer or a copolymer of propylene and a comonomer other than propylene.

[0011] The structure of component (A) according to the present invention is not particularly limited, and for example, the propylene-derived structural unit portion may be an isotactic structure, a syndiotactic structure, or an atactic structure, but an isotactic structure is preferred. Furthermore, in the case of the copolymer, it may be any of a random type (also called random PP), a block type (also called block PP: bPP), and a graft type.

[0012] The comonomer may be any other monomer copolymerizable with propylene, and is preferably an α-olefin having 2 or 4 to 10 carbon atoms. Specific examples include ethylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, and 1-decene. Of these, ethylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-heptene, and 1-octene are preferred. One or more types of comonomers may be used.

[0013] The content of the structural unit derived from the comonomer in the copolymer is preferably 10 mol % or less from the viewpoint of flexibility and the like. Component (A) according to the present invention may be synthesized by a conventionally known method, or a commercially available product such as polypropylene from SunAllomer Co., Ltd., Prime Polypro from Prime Polymer Co., Ltd., Novatec from Nippon Polypropylene Co., Ltd., or SCG PP from SCG Plastics may be used.

[0014] Component (A) according to the present invention may be a crystalline polymer or a non-crystalline polymer, where crystalline means that a melting point (Tm) is observed in differential scanning calorimetry (DSC).

[0015] When the component (A) according to the present invention is a crystalline polymer, its melting point (measured according to the method of JIS K 7121) is preferably 100°C or higher, more preferably 120°C or higher, and preferably 180°C or lower, more preferably 170°C or lower, from the viewpoint of heat resistance, etc.

[0016] The MFR (measured in accordance with ASTM D 1238-65T, 230°C, 2.16 kg load) of the component (A) according to the present invention is preferably 0.1 to 100 g / 10 min, more preferably 0.1 to 50 g / 10 min. When the MFR of component (A) according to the present invention is within the above range, a composition excellent in heat resistance, mechanical strength, flowability and moldability can be easily obtained.

[0017] <Ethylene-α-olefin copolymer (B)> The ethylene-α-olefin copolymer (B), which is one of the components of the thermoplastic elastomer composition of the present invention, is an ethylene-α-olefin copolymer containing units derived from ethylene and units derived from an α-olefin having 3 to 20 carbon atoms.

[0018] The ethylene-α-olefin copolymer (B) according to the present invention (hereinafter sometimes referred to as "component (B)") can be obtained by copolymerizing at least ethylene and an α-olefin having 3 to 20 carbon atoms. Examples of the α-olefin having 3 to 20 carbon atoms include propylene, 1-butene, 1-pentene, 1-hexene, 4-methyl-1-pentene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, and 1-dodecene. Among these, from the viewpoint of imparting flexibility, α-olefins having 3 to 12 carbon atoms are preferred, with propylene, 1-butene, and 1-octene being more preferred, and 1-octene being even more preferred.

[0019] Component (B) according to the present invention typically contains 70 to 99 mol %, preferably 80 to 97 mol %, of units derived from ethylene, and 1 to 30 mol %, preferably 3 to 20 mol %, of units derived from an α-olefin having 3 to 20 carbon atoms (where the total of the units derived from ethylene and the units derived from an α-olefin having 3 to 20 carbon atoms is taken as 100 mol %). Having the content of units derived from ethylene within the above ranges is preferred for obtaining a thermoplastic elastomer composition having excellent mechanical strength.

[0020] Component (B) according to the present invention can be copolymerized with a monomer having an unsaturated bond, if necessary. Examples of preferred monomers having an unsaturated bond include conjugated diolefins such as butadiene and isoprene, non-conjugated diolefins such as 1,4-hexadiene, cyclic diene compounds such as dicyclopentadiene and norbornene derivatives, and acetylenes. Among these, ethylidene norbornene (ENB) and dicyclopentadiene (DCP) are more preferred from the viewpoint of flexibility.

[0021] The component (B) according to the present invention usually has an MFR (ASTM D1238 load 2.16 kg, temperature 190° C.) in the range of 0.1 to 20 g / 10 min, preferably 0.3 to 10 g / 10 min.

[0022] By setting the MFR within the above range, it is possible to obtain a thermoplastic elastomer composition having an even better balance between flowability and mechanical strength. The component (B) according to the present invention usually has a density of 0.8 to 0.9 g / cm 3 is in the range.

[0023] Component (B) according to the present invention can be produced using known polymerization catalysts, such as Ziegler-Natta catalysts, vanadium catalysts, and metallocene catalysts. The polymerization method is not particularly limited, and can be carried out by liquid-phase polymerization methods such as solution polymerization, suspension polymerization, and bulk polymerization, gas-phase polymerization, or other known polymerization methods. These copolymers are also commercially available and are not limited as long as they achieve the effects of the present invention. Examples of commercially available copolymers include Engage 8842 (ethylene-1-octene copolymer) manufactured by Dow Chemical Company, Vistalon® manufactured by ExxonMobil Corporation, Esprene® manufactured by Sumitomo Chemical Co., Ltd., and Mitsui EPT®, Tafmer P®, and Tafmer A® manufactured by Mitsui Chemicals, Inc.

[0024] <Softener (C)> The softener (C) (hereinafter, sometimes referred to as "component (C)"), one of the components of the thermoplastic elastomer composition of the present invention, is not particularly limited, but plasticizers commonly used in rubbers can be used. From the viewpoint of compatibility with the propylene polymer (A) and the ethylene-α-olefin copolymer (B), process oils composed of paraffinic, naphthenic, aromatic, or other hydrocarbons are preferred. Among these components (C), process oils mainly composed of paraffinic hydrocarbons are preferred from the viewpoint of weather resistance and colorability, and process oils mainly composed of naphthenic hydrocarbons are preferred from the viewpoint of compatibility. From the viewpoint of thermal and light stability, the content of aromatic hydrocarbons in the process oil is preferably 10% or less, more preferably 5% or less, and even more preferably 1% or less, in terms of the carbon number ratio specified in ASTM D2140-97.

[0025] <Hydrogenated Block Copolymer (D)> The hydrogenated block copolymer (D), which is one of the components of the thermoplastic elastomer composition of the present invention (hereinafter, sometimes referred to as "component (D)" or "hydrogenated product (D)"), is a hydrogenated block copolymer having at least one block mainly composed of conjugated diene monomer units and at least one block mainly composed of vinyl aromatic monomer units.

[0026] Component (D) according to the present invention is obtained by hydrogenating (hereinafter, sometimes referred to as "hydrogenation") at least a portion of the monomer units derived from a conjugated diene monomer. Here, "vinyl aromatic monomer unit" refers to a structural unit of a polymer resulting from polymerization of a vinyl aromatic compound monomer, and has a molecular structure in which two carbon atoms of a substituted ethylene group derived from a substituted vinyl group serve as bonding sites. Also, "conjugated diene monomer unit" refers to a structural unit of a polymer resulting from polymerization of a conjugated diene monomer, and has a molecular structure in which two carbon atoms of an olefin derived from the conjugated diene monomer serve as bonding sites.

[0027] In the component (D) according to the present invention, the term "mainly composed of" means that the copolymer block contains 50% by mass or more, preferably 60% by mass or more, and more preferably 80% by mass or more of monomer units derived from a conjugated diene monomer (or a vinyl aromatic monomer). For example, a block mainly composed of conjugated diene monomer units means that the block contains 50% by mass or more, preferably 60% by mass or more, and more preferably 80% by mass or more of monomer units derived from a conjugated diene monomer.

[0028] The vinyl aromatic monomer in component (D) according to the present invention is not particularly limited, and examples thereof include vinyl aromatic compounds such as styrene, α-methylstyrene, p-methylstyrene, divinylbenzene, 1,1-diphenylethylene, N,N-dimethyl-p-aminoethylstyrene, and N,N-diethyl-p-aminoethylstyrene. These may be used alone or in combination of two or more. Among these, styrene is preferred from the viewpoint of economy.

[0029] The conjugated diene monomer in component (D) according to the present invention is a diolefin having one pair of conjugated double bonds, such as 1,3-butadiene (butadiene), 2-methyl-1,3-butadiene (isoprene), 2,3-dimethyl-1,3-butadiene, 1,3-pentadiene, 2-methyl-1,3-pentadiene, and 1,3-hexadiene. Among these, butadiene and isoprene are preferred from the viewpoint of economic efficiency. These may be used alone or in combination of two or more.

[0030] The arrangement of each block in component (D) according to the present invention is not particularly limited, and any suitable arrangement can be adopted. For example, when a polymer block consisting of vinyl aromatic monomer units is represented by S and a polymer block consisting of units in which at least a portion of conjugated diene monomer units is hydrogenated is represented by B, the hydrogenated product of this block copolymer can be represented by SB, S(BS). n1 (where n1 represents an integer of 1 to 3), S(BSB) n2 (where n2 represents an integer of 1 to 2), or a linear block copolymer represented by (SB) n3 Examples of suitable copolymers include copolymers represented by X (where n3 represents an integer of 3 to 6, and X represents a residue of a coupling agent such as silicon tetrachloride, tin tetrachloride, or a polyepoxy compound). Among these, preferred are linear block copolymers of SB type 2 (diblock), SBS type 3 (triblock), and SBSB type 4 (tetrablock).

[0031] Here, polymer block B may be a polymer block consisting of only conjugated diene monomer units, or a polymer block containing conjugated diene monomer units as a main component and also containing vinyl aromatic monomer units (i.e., conjugated diene monomer units and vinyl aromatic monomer units are copolymerized), and in either polymer block, at least a portion of the conjugated diene monomer units are hydrogenated.

[0032] The content of vinyl aromatic monomer units in component (D) according to the present invention is 30 to 80% by mass, preferably 40 to 80% by mass, and more preferably 50 to 70% by mass, from the viewpoint of heat resistance and dispersibility. By making the content of vinyl aromatic monomer units 30% by mass or more, mechanical properties can be further improved, and by making it 80% by mass or less, low-temperature properties can be further improved.

[0033] The content of vinyl aromatic monomer units in component (D) according to the present invention can be measured by nuclear magnetic resonance spectroscopy (NMR). From the viewpoint of mechanical strength, the content of the vinyl aromatic monomer unit block in component (D) according to the present invention is preferably 10% by mass or more, more preferably 10 to 40% by mass. Here, the content of the vinyl aromatic compound polymer block in component (D) is defined by the following formula using the mass of the vinyl aromatic compound polymer block (excluding vinyl aromatic compound polymers having an average degree of polymerization of about 30 or less) obtained by a method of oxidatively decomposing a pre-hydrogenated copolymer with tert-butyl hydroperoxide using osmium tetroxide as a catalyst (the method described in I.M. Kolthoff, et al., J. Polym. Sci. 1, 429 (1946), hereinafter also referred to as the "osmium tetroxide decomposition method"): Content of vinyl aromatic compound polymer block (mass%)=(mass of vinyl aromatic compound polymer block in copolymer before hydrogenation / mass of copolymer before hydrogenation)×100

[0034] When component (D) according to the present invention contains a plurality of polymer blocks, the molecular weights, compositions, and other structures of the polymer blocks may be the same or different. For example, component (D) may contain a hydrogenated copolymer block containing conjugated diene monomer units and vinyl aromatic monomer units, and a hydrogenated copolymer block mainly composed of conjugated diene monomer units. The boundaries and ends of the blocks do not necessarily need to be clearly distinguished. The distribution of the vinyl aromatic monomer units in each polymer block is not particularly limited, and may be uniform, tapered, stepped, convex, or concave. Furthermore, crystalline portions may be present in the polymer blocks.

[0035] The distribution of vinyl units in the conjugated diene monomer units in each polymer block in component (D) according to the present invention is not particularly limited, and for example, the distribution may be biased. Methods for controlling the distribution of vinyl units include adding a vinylating agent during polymerization and changing the polymerization temperature. Furthermore, the distribution of the hydrogenation rates of the conjugated diene monomer units may be biased. The hydrogenation rate distribution can be controlled by changing the distribution of vinyl units, or by copolymerizing isoprene and butadiene and then hydrogenating them using a hydrogenation catalyst described below, thereby utilizing the difference in the hydrogenation rates between the isoprene units and the butadiene units.

[0036] From the viewpoints of heat resistance, aging resistance, and weather resistance, component (D) according to the present invention has preferably 75 mol % or more, more preferably 85 mol % or more, and even more preferably 97 mol % or more of the unsaturated bonds contained in the conjugated diene monomer units before hydrogenation hydrogenated.

[0037] The hydrogenation catalyst used is not particularly limited and may be any of the conventionally known catalysts. (1) Supported heterogeneous hydrogenation catalysts in which metals such as Ni, Pt, Pd, and Ru are supported on carbon, silica, alumina, diatomaceous earth, etc. (2) A so-called Ziegler-type hydrogenation catalyst using a transition metal salt such as an organic acid salt or an acetylacetonate salt of Ni, Co, Fe, Cr, or the like and a reducing agent such as organoaluminum, (3) Homogeneous hydrogenation catalysts such as organometallic compounds of Ti, Ru, Rh, Zr, etc., so-called organometallic complexes, can be used.

[0038] Specific examples of the hydrogenation catalyst that can be used include the hydrogenation catalysts described in JP-B Nos. 42-008704, 43-006636, 63-004841, 01-037970, 01-053851, and 02-009041. Among these, preferred hydrogenation catalysts include reducing organometallic compounds such as titanocene compounds.

[0039] As the titanocene compound, for example, compounds described in JP-A-08-109219 can be used, and specific examples include compounds having at least one ligand having a (substituted) cyclopentadienyl skeleton, an indenyl skeleton, or a fluorenyl skeleton, such as biscyclopentadienyltitanium dichloride and monopentamethylcyclopentadienyltitanium trichloride.

[0040] Examples of the reducing organometallic compound include organic alkali metal compounds such as organolithium compounds, organomagnesium compounds, organoaluminum compounds, organoboron compounds, and organozinc compounds.

[0041] The method for polymerizing the block copolymer before hydrogenation in component (D) according to the present invention is not particularly limited, and known methods can be used, such as those described in JP-B Nos. 36-019286, 43-017979, 46-032415, 49-036957, 48-002423, 48-004106, 56-028925, JP-A Nos. 59-166518, and 60-186577.

[0042] Component (D) may contain a polar group, if necessary. Examples of the polar group include a hydroxyl group, a carboxyl group, a carbonyl group, a thiocarbonyl group, an acid halide group, an acid anhydride group, a thiocarboxylic acid group, an aldehyde group, a thioaldehyde group, a carboxylic acid ester group, an amide group, a sulfonic acid group, a sulfonate group, a phosphoric acid group, a phosphoric acid ester group, an amino group, an imino group, a nitrile group, a pyridyl group, a quinoline group, an epoxy group, a thioepoxy group, a sulfide group, an isocyanate group, an isothiocyanate group, a silicon halide group, an alkoxy silicon group, a tin halide group, a boronic acid group, a boron-containing group, a boronate salt group, an alkoxy tin group, and a phenyl tin group.

[0043] The vinyl bond content in the conjugated diene monomer units in the block copolymer before hydrogenation in component (D) according to the present invention is preferably 5 mol% or more from the viewpoints of flexibility and scratch resistance, and is preferably 70 mol% or less from the viewpoints of productivity, elongation at break, and scratch resistance. The vinyl bond content in the conjugated diene monomer units is more preferably 10 to 50 mol%, even more preferably 10 to 30 mol%, and even more preferably 10 to 25 mol%.

[0044] The vinyl bond content herein means the proportion of 1,2-bonds and 3,4-bonds among the 1,2-bonds, 3,4-bonds and 1,4-bonds incorporated in the conjugated diene before hydrogenation. The vinyl bond content can be measured by NMR.

[0045] The weight-average molecular weight of component (D) before crosslinking is not particularly limited, but is preferably 50,000 or more from the viewpoint of scratch resistance, and preferably 400,000 or less from the viewpoint of molding flowability, and more preferably 50,000 to 300,000. The molecular weight distribution (Mw / Mn: weight-average molecular weight / number-average molecular weight) is not particularly limited, but is preferably close to 1 from the viewpoint of scratch resistance. The weight-average molecular weight and number-average molecular weight can be determined by gel permeation chromatography (GPC; Shimadzu Corporation, instrument name "LC-10") using tetrahydrofuran (1.0 mL / min) as a solvent at an oven temperature of 40°C, using TSKgel GMHXL columns (4.6 mm ID x 30 cm, two columns). The weight-average molecular weight (Mw), number-average molecular weight (Mn), and molecular weight distribution (Mw / Mn) are calculated as polystyrene-equivalent molecular weights.

[0046] From the viewpoint of abrasion resistance, the block mainly composed of conjugated diene monomer units of component (D) according to the present invention is preferably a copolymer block mainly containing conjugated diene monomer units and also containing vinyl aromatic monomer units.

[0047] The component (D) according to the present invention is not particularly limited, and the above-mentioned conjugated diene monomers and vinyl aromatic monomers can be used. Among them, from the viewpoint of the balance between mechanical strength and impact resistance, preferred combinations include a block containing butadiene units and styrene units, a block containing isoprene units and styrene units, etc.

[0048] The component (D) according to the present invention may be any component containing at least conjugated diene monomer units as a main component, and the content of each monomer is not particularly limited. In particular, from the viewpoint of the balance between mechanical strength and impact resistance, the content of vinyl aromatic monomer units in the copolymer block is preferably 10% by mass or more and less than 50% by mass, and more preferably 20% by mass or more and less than 50% by mass.

[0049] <Polyorganosiloxane (E)> The structure of polyorganosiloxane (E) (hereinafter, sometimes referred to as "component (E)"), which is one of the components that may be contained in the thermoplastic elastomer composition of the present invention, is not particularly limited, but from the viewpoints of abrasion resistance and feel, it is preferable that the polyorganosiloxane has a linear, branched, or crosslinked polymer structure.

[0050] The component (E) according to the present invention is not particularly limited, and known compounds can be used. Preferred polyorganosiloxanes are polymers containing siloxane units having a substituent such as an alkyl group, a vinyl group, or an aryl group. Among these, polyorganosiloxanes having an alkyl group are particularly preferred, and polyorganosiloxanes having a methyl group are more preferred.

[0051] Specific examples of polyorganosiloxanes having a methyl group include polydimethylsiloxane, polymethylphenylsiloxane, polymethylhydrogensiloxane, etc. Among these, polydimethylsiloxane is preferred.

[0052] The kinematic viscosity of component (E) according to the present invention is not particularly limited, but from the viewpoint of abrasion resistance and scratch resistance, the kinematic viscosity (25°C) as defined in JIS Z8803 is preferably 5,000 centistokes (cSt) or more. Furthermore, from the viewpoints of tending to improve the dispersibility of component (E) in the resulting thermoplastic elastomer composition, leading to excellent appearance and further improved quality stability during melt extrusion, the kinematic viscosity of component (E) is preferably less than 3,000,000 cSt. The kinematic viscosity of component (E) is more preferably 10,000 cSt or more but less than 3,000,000 cSt, and even more preferably 50,000 cSt or more but less than 3,000,000 cSt.

[0053] <Thermoplastic elastomer composition> The thermoplastic elastomer composition of the present invention contains the propylene polymer (A), and, relative to 100 parts by mass of the propylene polymer (A), the ethylene-α-olefin copolymer (B) is contained in an amount of 50 to 300 parts by mass, preferably 50 to 250 parts by mass, and more preferably 50 to 200 parts by mass from the viewpoints of flexibility and scratch resistance, the softener (C) is contained in an amount of 50 to 280 parts by mass, preferably 60 to 280 parts by mass, and more preferably 80 to 280 parts by mass from the viewpoints of moldability and heat resistance, and the hydrogenated product of the block copolymer (D) is contained in an amount of 90 to 400 parts by mass, preferably 95 to 350 parts by mass, and more preferably 100 to 280 parts by mass from the viewpoints of moldability and scratch resistance.

[0054] In addition to the components (B), (C), and (D), the thermoplastic elastomer composition of the present invention preferably contains 2 to 30 parts by mass, more preferably 2 to 25 parts by mass, and even more preferably 2 to 20 parts by mass of the polyorganosiloxane (E) per 100 parts by mass of the propylene polymer (A).

[0055] When the amount of polyorganosiloxane (E) is 2 parts by mass or more, the effect of improving scratch resistance is sufficiently exhibited, and when it is 30 parts by mass or less, dispersibility in the thermoplastic elastomer composition is excellent. From the viewpoints of moldability and scratch resistance, the thermoplastic elastomer composition of the present invention preferably has a mass ratio (C / B) of the ethylene-α-olefin copolymer (B) to the softener (C) of more than 0 and less than 3, more preferably 0.6 to 2.8, and even more preferably 0.7 to 2.5.

[0056] The thermoplastic elastomer composition of the present invention preferably contains the following organic peroxide (F) (hereinafter, sometimes referred to as "component (F)") as needed. Component (F) according to the present invention functions as a crosslinking initiator for components (A), (B) and (D), which are components of the thermoplastic elastomer composition of the present invention, by dynamically heat-treating the thermoplastic elastomer composition of the present invention.

[0057] <Organic peroxide (F)> Specific examples of the organic peroxide (F) according to the present invention include 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-hexylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-hexylperoxy)cyclohexane, 1,1-bis(t-butylperoxy)cyclododecane, 1,1-bis(t-butylperoxy)cyclohexane, 2,2-bis(t-butylperoxy)octane, n-butyl-4,4-bis(t-butylperoxy)butane, n-butyl-4 peroxyketals such as 4-bis(t-butylperoxy)valerate; di-t-butyl peroxide, dicumyl peroxide, t-butylcumyl peroxide, α,α'-bis(t-butylperoxy-m-isopropyl)benzene, α,α'-bis(t-butylperoxy)diisopropylbenzene, 2,5-dimethyl-2,5-bis(t-butylperoxy)hexane, 2,5-dimethyl-2,5-bis(t-butylperoxy)hexyne-3, and other dialkyl peroxides; acetyl peroxide, isobutyl Diacyl peroxides such as methyl peroxide, octanoyl peroxide, decanoyl peroxide, lauroyl peroxide, 3,5,5-trimethylhexanoyl peroxide, benzoyl peroxide, 2,4-dichlorobenzoyl peroxide, and m-trioyl peroxide; t-butyl peroxyacetate, t-butyl peroxyisobutyrate, t-butyl peroxy-2-ethylhexanoate, t-butyl peroxylaurate, t-butyl peroxybenzoate, and di-t-butyl peroxide. peroxyesters such as t-butyl peroxyisophthalate, 2,5-dimethyl-2,5-di(benzoylperoxy)hexane, t-butyl peroxymaleic acid, t-butylperoxyisopropyl carbonate, and cumyl peroxyoctate; and hydroperoxides such as t-butyl hydroperoxide, cumene hydroperoxide, diisopropylbenzene hydroperoxide, 2,5-dimethylhexane-2,5-dihydroperoxide, and 1,1,3,3-tetramethylbutyl peroxide.

[0058] Among these components (F), 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, di-t-butyl peroxide, dicumyl peroxide, 2,5-dimethyl-2,5-bis(t-butylperoxy)hexane, and 2,5-dimethyl-2,5-bis(t-butylperoxy)hexyne-3 are preferred from the viewpoints of thermal decomposition temperature, crosslinking performance, and the like.

[0059] The component (F) according to the present invention may be used alone or in combination of two or more types. When the thermoplastic elastomer composition of the present invention contains component (F), the content thereof is preferably 2 to 6 parts by mass, more preferably 2 to 4 parts by mass, per 100 parts by mass of component (A) from the viewpoint of molding flowability. When the thermoplastic elastomer composition of the present invention contains component (F), it is preferable to use the following crosslinking aid in combination.

[0060] <Crosslinking aid> The crosslinking aid according to the present invention may be any of various known crosslinking aids, specifically, monofunctional monomers and polyfunctional monomers, which can control the crosslinking reaction rate.

[0061] As the monofunctional monomer, for example, a radically polymerizable vinyl monomer is preferable, and examples thereof include an aromatic vinyl monomer, an unsaturated nitrile monomer such as acrylonitrile or methacrylonitrile, an acrylic acid ester monomer, a methacrylic acid ester monomer, an acrylic acid monomer, a methacrylic acid monomer, a maleic anhydride monomer, and an N-substituted maleimide monomer.

[0062] Specific examples of monofunctional monomers include styrene, methylstyrene, chloromethylstyrene, hydroxystyrene, tert-butoxystyrene, acetoxystyrene, chlorostyrene, acrylonitrile, methacrylonitrile, methyl acrylate, ethyl acrylate, n-butyl acrylate, isobutyl acrylate, methyl methacrylate, ethyl methacrylate, n-butyl methacrylate, isobutyl methacrylate, 2-ethylhexyl methacrylate, maleic anhydride, methylmaleic anhydride, 1,2-dimethylmaleic anhydride, ethylmaleic anhydride, phenylmaleic anhydride, N-methylmaleimide, N-ethylmaleimide, N-cyclohexylmaleimide, N-laurylmaleimide, and N-cetylmaleimide. Among these, styrene, acrylonitrile, methacrylonitrile, methyl acrylate, maleic anhydride, and N-methylmaleimide are preferred from the viewpoints of reactivity and versatility. These monofunctional monomers may be used alone or in combination of two or more.

[0063] The polyfunctional monomer is a monomer having a plurality of radically polymerizable functional groups as functional groups, and is preferably a monomer having a vinyl group. The number of functional groups in the polyfunctional monomer is preferably two or three.

[0064] Specific examples of polyfunctional monomers include divinylbenzene, triallyl isocyanurate, triallyl cyanurate, diacetone diacrylamide, polyethylene glycol diacrylate, polyethylene glycol dimethacrylate, trimethylolpropane trimethacrylate, trimethylolpropane triacrylate, ethylene glycol dimethacrylate, triethylene glycol dimethacrylate, diethylene glycol dimethacrylate, diisopropenylbenzene, p-quinone dioxime, p,p'-dibenzoylquinone dioxime, phenylmaleimide, allyl methacrylate, N,N'-m-phenylene bismaleimide, diallyl phthalate, tetraallyloxyethane, and 1,2-polybutadiene, with divinylbenzene and triallyl isocyanurate being more preferred. These polyfunctional monomers may be used alone or in combination of two or more. When the thermoplastic elastomer composition of the present invention contains a crosslinking aid, the amount thereof is 1 to 100 parts by mass, preferably 1 to 50 parts by mass, per 100 parts by mass of component (F).

[0065] <Method of manufacturing thermoplastic elastomer composition and its properties> By dynamically crosslinking the thermoplastic elastomer composition of the present invention, at least a portion of the components (A), (B), and (D) contained in the thermoplastic elastomer composition is crosslinked. When performing dynamic crosslinking, it is preferable to dynamically heat treat the composition in the presence of the component (F) or in the presence of the component (F) and the crosslinking coagent.

[0066] In the present invention, "dynamic heat treatment" means kneading in a molten state. With respect to the thermoplastic elastomer composition of the present invention, the composition before being dynamically heat-treated is also referred to as "composition 1," and the composition after being dynamically heat-treated is also referred to as "composition 2."

[0067] The dynamic heat treatment in the present invention is preferably carried out in a closed-type apparatus, and is preferably carried out in an inert gas atmosphere such as nitrogen or carbon dioxide. The heat treatment temperature is in the range of from the melting point of component (A) to 300°C, usually 150 to 270°C, preferably 170 to 250°C. The kneading time is usually 1 to 20 minutes, preferably 1 to 10 minutes. The applied shear force is usually expressed as a shear rate of 10 to 50,000 s -1 , preferably 100 to 10,000 s -1 is in the range.

[0068] The Shore A hardness (10-second value) of Composition 2 (based on the measurement method of JIS K 6253) is preferably 30 to 75, more preferably 40 to 73, and even more preferably 50 to 70.

[0069] When the Shore A hardness (10-second value) of Composition 2 is within the above range, a molded article having a good feel, design such as a high-quality appearance, and scratch resistance can be easily formed. Specifically, the Shore A hardness (10-second value) can be measured by the method described in the examples below.

[0070] The melt flow rate of composition 2 (measured in accordance with JIS K 7210 at 230°C and a load of 1.2 kg) is preferably 0.1 to 100 g / 10 min, more preferably 5 to 90 g / 10 min, and even more preferably 10 to 80 g / 10 min, in order to provide a composition with excellent moldability.

[0071] In addition to the above component (A), the thermoplastic elastomer composition of the present invention may contain inorganic fillers, plasticizers, and other additives. Examples of inorganic fillers include calcium carbonate, magnesium carbonate, silica, carbon black, glass fiber, titanium oxide, clay, mica, talc, magnesium hydroxide, and aluminum hydroxide.

[0072] Examples of the plasticizer include polyethylene glycol, phthalate esters such as dioctyl phthalate (DOP), and the like. Other additives include organic and inorganic pigments such as carbon black, titanium dioxide, and phthalocyanine black; heat stabilizers such as 2,6-di-t-butyl-4-methylphenol and n-octadecyl-3-(3,5'-di-t-butyl-4-hydroxyphenyl)propionate; antioxidants such as trisnonylphenyl phosphite and distearyl pentaerythritol diphosphite; ultraviolet absorbers such as 2-(2'-hydroxy-5'methylphenyl)benzotriazole and 2,4-dihydroxybenzophenone; bis-[2,2,6,6-tetramethyl-4-piperidinyl]sebacate, tetrakis(trimethylsilyl)propionate, and the like. Examples of suitable anti-static agents include light stabilizers such as bis(2,2,6,6-tetramethyl-4-piperidinyl)-1,2,3,4-butanetetracarboxylate; flame retardants such as ammonium polyphosphate, trioctyl phosphate, and magnesium hydroxide; silicone oils such as dimethyl silicone oil and methylphenyl silicone oil; antiblocking agents such as stearic acid amide and erucic acid amide; foaming agents such as sodium bicarbonate and N,N'-dinitrosopentamethylenetetramine; antistatic agents such as palmitic acid monoglyceride and stearic acid monoglyceride; and antibacterial agents such as silver ion-supported zeolite and silver thiosulfite complex.

[0073] <Molded body> The molded article according to the present invention is not particularly limited as long as it contains the thermoplastic elastomer composition of the present invention, and is a molded article molded using any known molding method depending on the application. Examples of molding methods include press molding, injection molding, extrusion molding, calendar molding, blow molding, vacuum molding, and compression molding. From the viewpoints of productivity and the ability to easily form complex shapes, an injection-molded article molded using an injection molding method is preferred.

[0074] The thermoplastic elastomer composition of the present invention has low hardness, flexibility, and excellent scratch resistance, and is not particularly limited in its applications. For example, it is suitable for a variety of well-known applications such as molded articles including automobile parts, civil engineering and building materials, electric and electronic parts, sanitary products, films and sheets, foams, and artificial leather, and is particularly suitable for use in automobile parts such as automobile interior parts and skin materials such as artificial leather.

[0075] <Automotive parts> Examples of automobile parts that can use the molded article according to the present invention include weather strips, ceiling materials, interior seats, bumper moldings, side moldings, air spoilers, air duct hoses, cup holders, handbrake grips, shift knob covers, seat adjustment knobs, flapper door seals, wire harness grommets, rack and pinion boots, suspension cover boots, glass guides, inner belt line seals, and roof guides. Examples of the thermoplastic elastomer composition of the present invention include trunk lid seals, molded quarter window gaskets, corner moldings, glass encapsulations, hood seals, glass run channels, secondary seals, various types of packing, bumper parts, body panels, side shields, glass run channels, instrument panel skins, door skins, ceiling skins, weatherstrip materials, hoses, steering wheels, boots, wire harness covers, and seat adjuster covers. Among these, the thermoplastic elastomer composition of the present invention is particularly preferred because it can improve the texture and feel.

[0076] <Civil engineering / building materials supplies> Examples of civil engineering and building materials for which the molded article of the present invention can be used include civil engineering and building materials such as ground improvement sheets, water supply boards, and noise prevention walls, various gaskets and sheets for civil engineering and construction, water stop materials, joint materials, and architectural window frames. Among these, the thermoplastic elastomer composition of the present invention is particularly preferred because it can improve the texture and feel.

[0077] Electrical and electronic components Examples of electric and electronic parts for which the molded article according to the present invention can be used include electric wire coating materials, connectors, caps, plugs, and other electric and electronic parts. Among these, the thermoplastic elastomer composition according to the present invention is particularly preferred because it can improve the texture and feel.

[0078] <Daily Life Goods> Examples of daily necessities in which the molded article according to the present invention can be used include sports goods such as sports shoe soles, ski boots, tennis rackets, ski bindings, and bat grips, as well as miscellaneous goods such as pen grips, toothbrush grips, hair brushes, fashion belts, various caps, and shoe inner soles. Among these, the thermoplastic elastomer composition according to the present invention is particularly preferred because it can improve the texture and feel.

[0079] <Film / Sheet> Examples of films and sheets that can be used for the molded article of the present invention include infusion bags, medical containers, automobile interior and exterior materials, beverage bottles, clothing cases, food packaging materials, food containers, retort pouch containers, pipes, transparent substrates, and sealants. Among these, the thermoplastic elastomer composition of the present invention is particularly preferred because it can improve the texture and feel.

[0080] <Artificial leather> Examples of artificial leathers that can be used for the molded article of the present invention include chair coverings, bags, school bags, sports shoes such as track and field shoes, marathon shoes, and running shoes, apparel such as jackets and coats, obi (sashes), sashes, ribbons, notebook covers, book covers, key chains, pen cases, wallets, business card holders, and commuter pass holders, and among these, the thermoplastic elastomer composition of the present invention is particularly preferred because it can improve the texture and feel of leather. [Example]

[0081] The present invention will be explained in more detail below based on examples, but the present invention is not limited to these examples in any way. The test methods for each component of the raw materials used in the examples and comparative examples are as follows.

[0082] (1) Hydrogenation rate (%) The hydrogenation rate was measured by nuclear magnetic resonance spectroscopy (NMR). A nuclear magnetic resonance spectrometer (JEOL, model JNM-LA400) was used as the measuring instrument, deuterated chloroform was used as the solvent, and tetramethylsilane (TMS) was used as the chemical shift standard. Measurements were performed under the following conditions: sample concentration 50 mg / mL, observation frequency 400 MHz, pulse delay 2.904 seconds, number of scans 64, pulse width 45°C, and measurement temperature 26°C.

[0083] (2) Content of monomer units and bond units The contents of vinyl aromatic monomer units, ethylene monomer units, butylene monomer units, and butadiene 1,4-bond units, 1,2-bond units, and 3,4-bond units were measured by NMR. A nuclear magnetic resonance spectrometer (JEOL, model name "JNM-LA400") was used as the measuring instrument, deuterated chloroform was used as the solvent, and tetramethylsilane (TMS) was used as the chemical shift standard. Measurements were performed under the following conditions: sample concentration 50 mg / mL, observation frequency 400 MHz, pulse delay 2.904 seconds, scan count 64, pulse width 45°C, and measurement temperature 26°C.

[0084] The mass fraction (mass%) of each structural unit contained in component (B) is 13 Specifically, the C-NMR of copolymer (B-1) was measured using an ECX400P nuclear magnetic resonance spectrometer (manufactured by JEOL Ltd.) under the conditions of a measurement temperature of 120°C, a measurement solvent of orthodichlorobenzene / deuterated benzene = 4 / 1 (volume ratio), and an accumulation number of 8000. 13 Calculated from the C-NMR spectrum.

[0085] (3) Styrene polymer block content (Os value) The styrene polymer block content was measured using the copolymer before hydrogenation by the method described in I.M. Kolthoff, et al., J. Polym. Sci. 1, 429 (1946) (osmium tetroxide decomposition method). A 0.1 g / 125 mL tertiary butanol solution of osmic acid was used to decompose the copolymer before hydrogenation. The styrene polymer block content was calculated using the following formula. The styrene polymer block content obtained here is referred to as the "Os value." Styrene polymer block content (Os value; mass%) = [(mass of the styrene polymer block in the copolymer before hydrogenation) / (mass of the copolymer before hydrogenation)] × 100

[0086] (4) Peak temperature of loss tangent (tanδ) The viscoelasticity was determined by measuring the viscoelasticity spectrum using a viscoelasticity measurement analyzer (ARES, manufactured by Ta Instruments) under the conditions of a strain of 0.1% and a frequency of 1 Hz.

[0087] In the examples and comparative examples, the following polymers were used. [Propylene-based polymer (A)] As the propylene polymer (A-1), a propylene homopolymer (homo PP) (trade name: SunAllomer (registered trademark) PL400A, manufactured by SunAllomer Co., Ltd.) having a melt flow rate (MFR) of 2.0 g / 10 min at 230° C. under a load of 2.16 kg was used.

[0088] [Ethylene-α-olefin copolymer (B)] Ethylene-α-olefin copolymer (B-1) was an ethylene-1-octene copolymer (Dow Chemical Company, trade name "Engage 8842"), which had an ethylene content of 55% by mass, an octene content of 45% by mass, and a MFR of 1.0 g / 10 min measured at a temperature of 190°C and a load of 2.16 kg.

[0089] [Softener (C)] As the softener (C-1), a paraffin-based oil (manufactured by Idemitsu Kosan Co., Ltd., trade name "Diana Process Oil PW-100") was used.

[0090] [Hydrogenated Block Copolymer (D)] As the hydrogenated block copolymer (D), a hydrogenated block copolymer produced by the method described below was used.

[0091] [Production of hydrogenated block copolymer (D-1)] (1) Preparation of hydrogenation catalyst The hydrogenation catalyst used in the hydrogenation reaction of the block copolymer was prepared as follows: 1 L of dried and purified cyclohexane was placed in a nitrogen-purged reaction vessel, and 100 mmol of bis(cyclopentadienyl)titanium dichloride was added. With thorough stirring, an n-hexane solution containing 200 mmol of trimethylaluminum was added, and the mixture was allowed to react at room temperature for approximately 3 days.

[0092] (2) Production of hydrogenated block copolymers Batch polymerization was carried out using a 10L agitator and a jacketed tank reactor. First, 6.4L of cyclohexane and 75g of styrene were added, and TMEDA was added in advance so that the moles of Li in n-butyllithium were 0.25 times the moles. The n-butyllithium initiator was added so that the moles of Li were 10 mmol. Polymerization was carried out at an initial temperature of 65 ° C. After polymerization was completed, a cyclohexane solution containing 470g of butadiene and 380g of styrene (monomer concentration 22% by mass) was continuously fed into the reactor at a constant rate over 60 minutes. After polymerization settling, a cyclohexane solution containing 75g of styrene (monomer concentration 22% by mass) was added over 10 minutes to obtain copolymer (D-1').

[0093] The styrene content in the obtained copolymer (D-1') was 53% by mass, the styrene polymer block content was 15% by mass, and the styrene content in the copolymer block (i.e., the copolymer block containing conjugated diene monomer units and vinyl aromatic monomer units) was 45% by mass, the butadiene content was 55% by mass, and the vinyl bond content was 23%.

[0094] The hydrogenation catalyst was added to the obtained copolymer (D-1') in an amount of 100 ppm in terms of titanium per 100 parts by mass of the polymer, and a hydrogenation reaction was carried out at a hydrogen pressure of 0.7 MPa and a temperature of 75° C. To the obtained polymer solution, 0.3 parts by mass of octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate was added as a stabilizer per 100 parts by mass of the hydrogenated block copolymer, thereby obtaining a hydrogenated block copolymer (D-1).

[0095] The weight-average molecular weight of the obtained hydrogenated block copolymer (D-1) was 160,000, and the hydrogenation rate of the butadiene double bonds contained in the hydrogenated block copolymer (D-1) was 99%. Furthermore, one of the tan δ peaks obtained by viscoelasticity measurement was present at -15°C.

[0096] [Polyorganosiloxane (E)] As the polyorganosiloxane (E-1), a masterbatch consisting of 50% by mass of dimethylsiloxane and 50% by mass of polypropylene (manufactured by DuPont-Toray Specialty Materials Co., Ltd., product name "MB50-001") was used.

[0097] [Organic peroxide (F)] As the organic peroxide (F), a mixture of the following organic peroxide and the following crosslinking aid was used. Organic peroxide: 100 parts by mass of 2,5-dimethyl-2,5-bis(t-butylperoxy)hexane (manufactured by NOF Corporation, trade name "Perhexa 25B") Crosslinking aid: 15 parts by mass of divinylbenzene (manufactured by Wako Pure Chemical Industries, Ltd.; hereinafter referred to as "DVB")

[0098] Example 1 <Production of Composition> The extruder used was a twin-screw extruder (30 mmφ, L / D=74; Kobe Steel, "KTX-30") with an oil inlet in the center of the barrel. A two-start screw with kneading sections before and after the inlet was used. The raw materials except for the softener listed in Table 1 were mixed together in the composition ratio (parts by mass) shown in Table 1 and then introduced into the twin-screw extruder (cylinder temperature 200°C) using a constant feeder. Subsequently, the softener in the amount shown in Table 1 was injected using a pump through the inlet in the center of the extruder, followed by melt extrusion to obtain a thermoplastic elastomer composition.

[0099] <Production of injection molded products> The injection molding machine used was the "M150CL-DM" manufactured by Meiki Seisakusho Co., Ltd. Molding conditions were a resin temperature of 220°C and a mold temperature of 40°C. The thermoplastic elastomer composition obtained above was injection molded using a flat mold measuring 15 cm long x 9 cm wide and having a grained finish (average arithmetic roughness Ra = 20 μm) to produce an injection-molded sample. The physical properties of the obtained thermoplastic elastomer compositions and injection-molded samples were evaluated by the following methods. The results are shown in Table 1.

[0100] (1) MFR (g / 10 min) The melt flow rate of the thermoplastic elastomer composition obtained above was measured in accordance with JIS K7120 under conditions of 230°C and a load of 1.2 kg. Samples whose MFR was too high or too low to measure were deemed unmeasurable.

[0101] (2) Shore A hardness measurement A 2 mm thick press sheet was prepared from the thermoplastic elastomer composition obtained above, and three of these press sheets were stacked to obtain a laminated sheet having a thickness of 6 mm, which was used as a measurement sample. The measurement sample obtained above was measured using a Shore A hardness tester in accordance with JIS K 6253. The value read 10 seconds after the pressure plate was brought into contact with the test piece was taken as the Shore A hardness (10-second value).

[0102] (3) Scratch resistance The injection-molded sample obtained above was scratched with a pencil-type scratch hardness tester (Erichsen, 318 / 318S No. 2) at a load of 10 N, 10 scratches each in the vertical and horizontal directions. The scratches in the central grid area were visually observed and evaluated. Evaluation was based on the following criteria. A: Almost no change in appearance due to scratches is observed. B: Slight changes in appearance due to scratches are observed. C: Changes in appearance due to scratches are observed. D: Significant change in appearance due to scratches.

[0103] (4) Flexibility (hardness and softness) Flexibility (hardness / softness) was evaluated by pressing the surface of the injection-molded sample with a finger according to the following criteria. The flexibility (hardness / softness) evaluation was carried out by three people, and all the evaluation results were unanimous. A: Good (Soft feel. The surface deformation can be clearly felt when pressed with a finger.) B: Slightly poor (slightly hard. Slight deformation of the surface can be felt when pressed with a finger.) C: Poor (Hard feeling. No deformation of the surface is felt when pressed with a finger.)

[0104] <Examples 2 to 4 and Comparative Examples 1 to 6> Samples were prepared and evaluated in the same manner as in Example 1, except that the raw materials used were changed to the formulations shown in Table 1. Table 1 shows the results. In Comparative Example 4, an injection-molded article could not be obtained because the MFR was too low, and therefore, evaluation of scratch resistance and flexibility could not be performed using the injection-molded article sample.

[0105] [Table 1]

[0106] <Evaluation results> As shown in Table 1, it can be seen that the injection molded articles obtained from the thermoplastic elastomer compositions of Examples 1 to 4 have low hardness, but are excellent in flowability, flexibility, and scratch resistance.

[0107] On the other hand, molded articles with good scratch resistance were not obtained in Comparative Examples 1, 2, 5, and 6. In Comparative Example 3, the hardness was high, and a molded article with good flexibility that satisfied the required performance could not be obtained. In Comparative Example 4, the MFR was too low, so an injection molded article could not be obtained.

Claims

1. A thermoplastic elastomer composition comprising the following (A) to (D), wherein the mass ratio (C / B) of the following (B) to the following (C) is 0.6 to 1.86: (A) Propylene-based polymer: 100 parts by mass, (B) an ethylene / α-olefin copolymer containing units derived from ethylene and units derived from an α-olefin having 3 to 20 carbon atoms, the content of the units derived from ethylene being more than 80 mol % and not more than 99 mol % (wherein the total amount of the units derived from ethylene and the units derived from the α-olefin having 3 to 20 carbon atoms is taken as 100 mol %): in the range of 122 to 200 parts by mass; (C) softener: in the range of 50 to 280 parts by mass, (D) A hydrogenated product of a block copolymer having at least one block mainly composed of conjugated diene monomer units and at least one block mainly composed of vinyl aromatic monomer units: in the range of 90 to 400 parts by mass.

2. The thermoplastic elastomer composition according to claim 1, comprising 2 to 30 parts by mass of (E) polyorganosiloxane.

3. 3. The thermoplastic elastomer composition according to claim 1, wherein the block (D) mainly composed of conjugated diene monomer units is a copolymer block mainly composed of conjugated diene monomer units and also containing vinyl aromatic monomer units.

4. The thermoplastic elastomer composition according to any one of claims 1 to 3, which has been dynamically heat-treated.

5. The thermoplastic elastomer composition according to claim 4, wherein the composition has a melt flow rate (230°C, 1.2 kg load) of 0.1 to 30 g / 10 min.

6. The thermoplastic elastomer composition according to claim 4 or 5, wherein the composition has a Shore A hardness (10-second value) (based on the measurement method of JIS K 6253) of 30 to 66.

7. The thermoplastic elastomer composition according to any one of claims 1 to 6, wherein at least a portion of (B) is crosslinked.

8. An injection-molded article comprising the thermoplastic elastomer composition according to any one of claims 1 to 7.

9. An automobile interior part comprising the injection molded article according to claim 8.

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