Rubber composition for tires, tread rubber and tires
The rubber composition for tires, incorporating specific rubber types and additives, addresses the challenge of balancing wet grip and fuel efficiency by improving tire performance in both areas through enhanced reinforcing properties and mobility control.
Patent Information
- Application Number
- JP2023524019
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-05-28
- Filing Date
- 2022-03-08
- Publication Date
- 2026-01-20
- Estimated Expiration
- 2042-03-08
AI Technical Summary
Existing tire technologies struggle to achieve a high level of compatibility between wet grip performance and low fuel consumption performance.
A rubber composition for tires comprising isoprene skeleton rubber, modified styrene-butadiene rubber with a bound styrene content of 15% by mass or less, hydrogenated resin with a softening point higher than 100°C and a weight average molecular weight of 1200 to 1600 g/mol, silica, and carbon black, with a silica content of 50% to 100% by mass, to enhance both wet grip and fuel efficiency.
The rubber composition achieves both high wet grip performance and low fuel consumption performance in tires by improving the reinforcing properties and controlling the mobility of the rubber components, thereby enhancing the tire's hysteresis loss.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a rubber composition for a tire, a tread rubber, and a tire. [Background technology]
[0002] Conventionally, from the viewpoint of improving vehicle safety, various studies have been conducted to improve the grip performance of tires on dry and wet road surfaces. For example, Patent Document 1 below discloses that the grip performance of tires on both dry and wet road surfaces is improved by applying a rubber composition to tire tread rubber, the rubber composition being obtained by blending a rubber component containing 70% by mass or more of natural rubber with a thermoplastic resin and a filler containing silica. Meanwhile, with the recent rise in environmental awareness and the global trend toward restricting carbon dioxide emissions, there is a growing demand for improved fuel efficiency in automobiles. To meet these demands, there is also a need for improved fuel efficiency in tires (reduced rolling resistance). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2015 / 079703 Summary of the Invention [Problem to be solved by the invention]
[0004] However, after investigations by the present inventors, it was found that while the technology described in Patent Document 1 can improve the grip performance of tires on wet road surfaces (hereinafter abbreviated as "wet grip performance"), there is room for further improvement in terms of achieving a high level of compatibility with low fuel consumption performance.
[0005] Therefore, an object of the present invention is to solve the above-mentioned problems of the conventional art and to provide a rubber composition for a tire that can achieve both high wet grip performance and low fuel consumption performance of the tire, and a tread rubber made of such a rubber composition. Another object of the present invention is to provide a tire that achieves both high wet grip performance and low fuel consumption performance. [Means for solving the problem]
[0006] The gist and configuration of the present invention to solve the above problems is as follows.
[0007] The rubber composition for a tire of the present invention comprises: a rubber component including an isoprene skeleton rubber and a modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less; a hydrogenated resin having a softening point higher than 100°C and a weight average molecular weight (g / mol) in terms of polystyrene of more than 1200 and not more than 1600; Silica and carbon black, The silica content in the total amount of the silica and the carbon black is 50% by mass or more and less than 100% by mass.
[0008] The tread rubber of the present invention is characterized by comprising the above rubber composition for tires.
[0009] A tire according to the present invention is characterized by comprising the above-mentioned tread rubber. [Effects of the Invention]
[0010] According to the present invention, it is possible to provide a rubber composition for a tire that can achieve both high wet grip performance and low fuel consumption performance of the tire, and a tread rubber made from such a rubber composition. Furthermore, according to the present invention, it is possible to provide a tire that achieves both high wet grip performance and low fuel consumption performance. DETAILED DESCRIPTION OF THE INVENTION
[0011] The rubber composition for a tire, the tread rubber, and the tire of the present invention will be described in detail below by way of example based on embodiments thereof.
[0012] <Rubber composition for tires> The rubber composition for a tire of the present invention includes a rubber component, a hydrogenated resin, silica, and carbon black. The rubber component of the rubber composition for a tire of the present invention includes an isoprene-skeleton rubber and a modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less, the hydrogenated resin having a softening point higher than 100°C and a weight-average molecular weight (g / mol) in terms of polystyrene of more than 1200 and 1600 or less, and the proportion of silica in the total amount of the silica and the carbon black is 50% by mass or more but less than 100% by mass.
[0013] In the rubber composition for tires of the present invention, the isoprene skeleton rubber contained in the rubber component and the modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less contribute to improving the wet grip performance and fuel economy of a tire to which the rubber composition is applied. In particular, when the bound styrene content of the modified styrene-butadiene rubber is 15% by mass or less, the fuel economy of a tire to which the rubber composition is applied can be further improved. Furthermore, hydrogenated resins with a softening point higher than 100°C and a polystyrene-equivalent weight-average molecular weight (g / mol) of more than 1200 and not more than 1600 are highly compatible with rubber components containing isoprene-skeleton rubber and modified styrene-butadiene rubber with a bound styrene content of 15% by mass or less, thereby controlling the mobility of the rubber component and improving hysteresis loss (tan δ) in the low-temperature range, thereby improving the wet grip performance of tires using the rubber composition. Silica and carbon black also contribute to improving the reinforcing properties of the rubber composition. Furthermore, when the proportion of silica in the total amount of silica and carbon black is 50 mass% or more, the wet grip performance and fuel economy of a tire using the rubber composition can be improved. Therefore, when the rubber composition for a tire of the present invention is applied to a tire, it is possible to achieve a high level of both wet grip performance and fuel economy of the tire.
[0014] (rubber component) The rubber composition for a tire of the present invention contains a rubber component, which contains an isoprene-skeleton rubber and a modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less, and may further contain other rubber components.
[0015] -Isoprene-based rubber- The isoprene skeleton rubber is a rubber having an isoprene unit as the main skeleton, and specific examples thereof include natural rubber (NR) and synthetic isoprene rubber (IR). The inclusion of an isoprene skeleton rubber in the rubber component can increase the breaking strength of the rubber composition, thereby reducing the rolling resistance of a tire using the rubber composition and improving fuel economy.
[0016] The content of the isoprene skeleton rubber is preferably 1 to 80 parts by mass, and more preferably 1 to 40 parts by mass, per 100 parts by mass of the rubber component. When the content of the isoprene skeleton rubber is 1 to 80 parts by mass per 100 parts by mass of the rubber component, the fuel economy performance and wet grip performance of a tire using the rubber composition can be further improved. Furthermore, when the content of the isoprene skeleton rubber is 1 to 40 parts by mass per 100 parts by mass of the rubber component, the fuel economy performance and wet grip performance of a tire using the rubber composition can be further improved. Furthermore, from the viewpoint of further increasing the compounding effect of the isoprene skeleton rubber, the content of the isoprene skeleton rubber is more preferably 10 parts by mass or more per 100 parts by mass of the rubber component.
[0017] -Modified styrene-butadiene rubber- The modified styrene-butadiene rubber (modified SBR) is a modified rubber obtained by modifying styrene-butadiene rubber (SBR), and has a bound styrene content of 15% by mass or less. The bound styrene content of the modified styrene-butadiene rubber refers to the proportion of styrene units contained in the modified styrene-butadiene rubber. When the bound styrene content of the modified styrene-butadiene rubber is 15% by mass or less, the fuel economy performance of a tire to which the rubber composition is applied can be further improved. From the viewpoint of the fuel economy performance of the tire, the bound styrene content of the modified styrene-butadiene rubber is more preferably 14% by mass or less, more preferably 13% by mass or less, and even more preferably 12% by mass or less. Furthermore, from the viewpoint of the wet grip performance of a tire to which the rubber composition is applied, the bound styrene content of the modified styrene-butadiene rubber is preferably 5% by mass or more, more preferably 7% by mass or more, and even more preferably 8% by mass or more. The amount of bound styrene in the modified styrene-butadiene rubber can be adjusted by the amount of monomers used in the polymerization of the modified styrene-butadiene rubber, the degree of polymerization, and the like.
[0018] The content of the modified styrene-butadiene rubber is preferably 20 to 99 parts by mass, and more preferably 60 to 99 parts by mass, per 100 parts by mass of the rubber component. When the content of the modified styrene-butadiene rubber is 60 to 99 parts by mass, per 100 parts by mass of the rubber component, the fuel economy and wet grip performance of a tire to which the rubber composition for tires is applied can be further improved.
[0019] The modified styrene-butadiene rubber is preferably modified with a modifier having a nitrogen-containing functional group and an alkoxy group. When the modified styrene-butadiene rubber is modified with a modifier having a nitrogen-containing functional group and an alkoxy group, the balance between wet grip performance and fuel economy of a tire to which the rubber composition is applied is further improved, and in particular, fuel economy can be further improved. The modifying agent having a nitrogen atom-containing functional group and an alkoxy group is a general term for modifying agents having at least one nitrogen atom-containing functional group and at least one alkoxy group. The functional group containing a nitrogen atom is preferably selected from the following: The functional group is a monovalent hydrocarbon group having 1 to 30 carbon atoms and containing a straight-chain, branched, alicyclic, or aromatic ring, or a monovalent hydrocarbon group having 1 to 30 carbon atoms and containing a straight-chain, branched, alicyclic, or aromatic ring, which may contain at least one heteroatom selected from oxygen, sulfur, and phosphorus atoms. The functional group is selected from the group consisting of a primary amino group, a primary amino group protected with a hydrolyzable protecting group, an onium salt residue of a primary amine, an isocyanate group, a thioisocyanate group, an imine group, an imine residue, an amide group, a secondary amino group protected with a hydrolyzable protecting group, a cyclic secondary amino group, an onium salt residue of a cyclic secondary amine, an acyclic secondary amino group, an onium salt residue of an acyclic secondary amine, an isocyanuric acid triester residue, a cyclic tertiary amino group, an acyclic tertiary amino group, a nitrile group, a pyridine residue, an onium salt residue of a cyclic tertiary amine, and an onium salt residue of an acyclic tertiary amine, or a monovalent hydrocarbon group having 1 to 30 carbon atoms and containing a straight-chain, branched, alicyclic, or aromatic ring, which may contain at least one heteroatom selected from oxygen, sulfur, and phosphorus atoms.
[0020] --Modified styrene-butadiene rubber of the first preferred embodiment-- The modified styrene-butadiene rubber (modified SBR) is preferably modified with an aminoalkoxysilane compound, and from the viewpoint of having a high affinity for fillers, it is more preferable that the terminals are modified with an aminoalkoxysilane compound. When the terminals of the styrene-butadiene rubber are modified with an aminoalkoxysilane compound, the interaction between the modified styrene-butadiene rubber and the filler (especially silica) becomes particularly strong.
[0021] The modified site of the modified styrene-butadiene rubber may be the molecular terminal as described above, or may be the main chain. Styrene-butadiene rubber having modified molecular terminals can be produced by reacting various modifiers with the terminals of a styrene-butadiene copolymer having active terminals, for example, according to the methods described in WO 2003 / 046020 and JP 2007-217562 A. In a preferred embodiment, the styrene-butadiene rubber having modified molecular terminals can be produced in accordance with the methods described in WO 2003 / 046020 and JP 2007-217562 A by reacting an aminoalkoxysilane compound with the terminal of a styrene-butadiene copolymer having active terminals with a cis-1,4 bond content of 75% or more, and then reacting the resulting copolymer with a carboxylic acid partial ester of a polyhydric alcohol for stabilization.
[0022] The carboxylic acid partial ester of a polyhydric alcohol refers to an ester of a polyhydric alcohol and a carboxylic acid, which has one or more hydroxyl groups. Specifically, an ester of a sugar or modified sugar having 4 or more carbon atoms and a fatty acid is preferably used. More preferred examples of this ester include (1) a fatty acid partial ester of a polyhydric alcohol, particularly a partial ester (which may be a monoester, diester, or triester) of a saturated higher fatty acid or an unsaturated higher fatty acid having 10 to 20 carbon atoms and a polyhydric alcohol, and (2) an ester compound in which 1 to 3 partial esters of a polycarboxylic acid and a higher alcohol are bonded to a polyhydric alcohol. The polyhydric alcohol used as a raw material for the partial ester is preferably a sugar (which may or may not be hydrogenated) having 5 or 6 carbon atoms and at least three hydroxyl groups, glycol, polyhydroxy compound, etc. The raw material fatty acid is preferably a saturated or unsaturated fatty acid having 10 to 20 carbon atoms, such as stearic acid, lauric acid, or palmitic acid. Among the fatty acid partial esters of polyhydric alcohols, sorbitan fatty acid esters are preferred, and specific examples include sorbitan monolaurate, sorbitan monopalmitate, sorbitan monostearate, sorbitan tristearate, sorbitan monooleate, and sorbitan trioleate.
[0023] The aminoalkoxysilane compound is not particularly limited, but is preferably an aminoalkoxysilane compound represented by the following general formula (i): R 11 a -Si-(OR 12 ) 4-a (i)
[0024] In general formula (i), R 11 and R 12 each independently represents a monovalent aliphatic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and R 11 and R 12 At least one of the groups is substituted with an amino group, a is an integer of 0 to 2, and OR 12 If there are multiple, each OR 12 may be the same or different, and the molecule does not contain any active protons.
[0025] The aminoalkoxysilane compound is also preferably an aminoalkoxysilane compound represented by the following general formula (ii). [ka]
[0026] In the general formula (ii), n1+n2+n3+n4=4 (wherein n2 is an integer of 1 to 4, and n1, n3 and n4 are integers of 0 to 3). A 1is at least one functional group selected from a saturated cyclic tertiary amine compound residue, an unsaturated cyclic tertiary amine compound residue, a ketimine residue, a nitrile group, a (thio)isocyanate group, an isocyanuric acid trihydrocarbyl ester group, a nitrile group, a pyridine group, a (thio)ketone group, an amide group, and a primary or secondary amino group having a hydrolyzable group. When n4 is 2 or more, A 1 may be the same or different, and A 1 may be a divalent group that bonds with Si to form a cyclic structure. R 21 represents a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when n1 is 2 or more, may be the same or different. R 22 is a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, both of which may contain a nitrogen atom and / or a silicon atom. When n2 is 2 or more, R 22 may be the same or different from each other, or may be joined together to form a ring. R 23 represents a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, or a halogen atom, and when n3 is 2 or greater, may be the same or different. R 24 represents a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when n4 is 2 or more, may be the same or different. The hydrolyzable group in the hydrolyzable group-containing primary or secondary amino group is preferably a trimethylsilyl group or a tert-butyldimethylsilyl group, and particularly preferably a trimethylsilyl group.
[0027] The aminoalkoxysilane compound represented by the above general formula (ii) is preferably an aminoalkoxysilane compound represented by the following general formula (iii). [ka]
[0028] In the general formula (iii), p1+p2+p3=2 (wherein p2 is an integer of 1 or 2, and p1 and p3 are integers of 0 or 1). A 2 is NRa (Ra is a monovalent hydrocarbon group, a hydrolyzable group, or a nitrogen-containing organic group). R 25 is a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 26 is a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, or a nitrogen-containing organic group, any of which may contain a nitrogen atom and / or a silicon atom. 26 may be the same or different, or may be joined together to form a ring. R 27 is a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, or a halogen atom. R 28 is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. The hydrolyzable group is preferably a trimethylsilyl group or a tert-butyldimethylsilyl group, and particularly preferably a trimethylsilyl group.
[0029] The aminoalkoxysilane compound represented by the above general formula (ii) is also preferably an aminoalkoxysilane compound represented by the following general formula (iv) or (v). [ka]
[0030] In the general formula (iv), q1+q2=3 (wherein q1 is an integer of 0 to 2, and q2 is an integer of 1 to 3). R 31is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 32 and R 33 are each independently a hydrolyzable group, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 34 represents a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when q1 is 2, may be the same or different. R 35 represents a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when q2 is 2 or greater, may be the same or different.
[0031] [ka]
[0032] In the general formula (v), r1+r2=3 (where r1 is an integer of 1 to 3, and r2 is an integer of 0 to 2). R 36 is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 37 represents a dimethylaminomethyl group, a dimethylaminoethyl group, a diethylaminomethyl group, a diethylaminoethyl group, a methylsilyl(methyl)aminomethyl group, a methylsilyl(methyl)aminoethyl group, a methylsilyl(ethyl)aminomethyl group, a methylsilyl(ethyl)aminoethyl group, a dimethylsilylaminomethyl group, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when r1 is 2 or more, they may be the same or different. R 38represents a hydrocarbyloxy group having 1 to 20 carbon atoms, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and when r2 is 2, may be the same or different. A specific example of the aminoalkoxysilane compound represented by general formula (v) is N-(1,3-dimethylbutylidene)-3-triethoxysilyl-1-propanamine.
[0033] The aminoalkoxysilane compound represented by the above general formula (ii) is also preferably an aminoalkoxysilane compound represented by the following general formula (vi) or (vii). [ka]
[0034] In general formula (vi), R 40 is a trimethylsilyl group, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 41 is a hydrocarbyloxy group having 1 to 20 carbon atoms, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 42 is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. Here, TMS represents a trimethylsilyl group (the same applies hereinafter).
[0035] [ka]
[0036] In general formula (vii), R 43 and R 44 are each independently a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 45is a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, and each R 45 may be the same or different.
[0037] The aminoalkoxysilane compound represented by the above general formula (ii) is also preferably an aminoalkoxysilane compound represented by the following general formula (viii) or (ix). [ka]
[0038] In the general formula (viii), s1+s2 is 3 (wherein s1 is an integer of 0 to 2, and s2 is an integer of 1 to 3). R 46 is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 47 and R 48 are each independently a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. 47 or R 48 may be the same or different.
[0039] [ka]
[0040] In the general formula (ix), X is a halogen atom. R 49 is a divalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms or a divalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 50 and R 51 are each independently a hydrolyzable group, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms, or R 50 and R 51 are bonded to form a divalent organic group. R 52 and R 53 are each independently a halogen atom, a hydrocarbyloxy group, a monovalent aliphatic or alicyclic hydrocarbon group having 1 to 20 carbon atoms, or a monovalent aromatic hydrocarbon group having 6 to 18 carbon atoms. R 50 and R 51 As the hydrolyzable group, a hydrolyzable group is preferred, and as the hydrolyzable group, a trimethylsilyl group or a tert-butyldimethylsilyl group is preferred, and a trimethylsilyl group is particularly preferred.
[0041] The aminoalkoxysilane compound represented by the above general formula (ii) is also preferably an aminoalkoxysilane compound represented by the following general formula (x), (xi), (xii), or (xiii): [ka] [ka] [ka] [ka]
[0042] In the general formulae (x) to (xiii), the symbols U and V are each an integer of 0 to 2 and satisfy U+V=2. R in general formulas (x) to (xiii) 54 ~ 92 may be the same or different and are monovalent or divalent aliphatic or alicyclic hydrocarbon groups having 1 to 20 carbon atoms, or monovalent or divalent aromatic hydrocarbon groups having 6 to 18 carbon atoms. In the general formula (xiii), α and β are integers of 0 to 5.
[0043] Among the compounds satisfying general formula (x), general formula (xi), and general formula (xii), N1,N1,N7,N7-tetramethyl-4-((trimethoxysilyl)methyl)heptane-1,7-diamine, 2-((hexyl-dimethoxysilyl)methyl)-N1,N1,N3,N3-2-pentamethylpropane-1,3-diamine, N1-(3-(dimethylamino)propyl)-N3,N3-dimethyl-N1-(3-(trimethoxysilyl)propyl)propane-1,3-diamine, and 4-(3-(dimethylamino)propyl)-N1,N1,N7,N7-tetramethyl-4-((trimethoxysilyl)methyl)heptane-1,7-diamine are particularly preferred. Furthermore, among the compounds satisfying the general formula (xiii), N,N-dimethyl-2-(3-(dimethoxymethylsilyl)propoxy)ethanamine, N,N-bis(trimethylsilyl)-2-(3-(trimethoxysilyl)propoxy)ethanamine, N,N-dimethyl-2-(3-(trimethoxysilyl)propoxy)ethanamine, and N,N-dimethyl-3-(3-(trimethoxysilyl)propoxy)propan-1-amine are particularly preferred.
[0044] --Modified styrene-butadiene rubber of a second preferred embodiment-- The modified styrene-butadiene rubber (modified SBR) is also preferably modified with a coupling agent represented by the following general formula (I), which can further improve the fuel economy and wear resistance of tires using the rubber composition. [ka]
[0045] In the above general formula (I), R 1 , R 2 and R 3 each independently represents a single bond or an alkylene group having 1 to 20 carbon atoms. R 4 , R 5 , R 6 , R 7 and R 9 are each independently an alkyl group having 1 to 20 carbon atoms. R 8 and R 11 are each independently an alkylene group having 1 to 20 carbon atoms. R 10 represents an alkyl group or a trialkylsilyl group having 1 to 20 carbon atoms. m represents an integer of 1 to 3; p represents 1 or 2; R 1 ~R 11 When there are multiple , m and p, they are independent of each other. i, j, and k each independently represent an integer of 0 to 6, provided that (i+j+k) is an integer of 3 to 10. A represents a hydrocarbon group having 1 to 20 carbon atoms, or an organic group having at least one atom selected from the group consisting of oxygen atoms, nitrogen atoms, silicon atoms, sulfur atoms, and phosphorus atoms, and having no active hydrogen. In general formula (I), the hydrocarbon group represented by A includes saturated, unsaturated, aliphatic, and aromatic hydrocarbon groups. Examples of the organic group without active hydrogen include organic groups without functional groups with active hydrogen, such as a hydroxyl group (-OH), a secondary amino group (>NH), a primary amino group (-NH), and a sulfhydryl group (-SH).
[0046] The styrene-butadiene rubber modified with the coupling agent represented by the general formula (I) has a weight average molecular weight (Mw) of 20×10 4 ~300×10 4 and the molecular weight of the modified styrene-butadiene rubber is 200×10 4 ~500×10 4 It is preferable that the modified styrene-butadiene rubber contains 0.25 to 30 mass % of the modified styrene-butadiene rubber represented by the formula (I) and has a shrinkage factor (g') of less than 0.64.
[0047] Generally, a polymer having branches tends to have a smaller molecular size compared to a linear polymer having the same absolute molecular weight, and the shrinkage factor (g') is an index of the ratio of the molecular size to that of a linear polymer having the same absolute molecular weight. In other words, the larger the degree of branching of a polymer, the smaller the shrinkage factor (g') tends to be. In this embodiment, intrinsic viscosity is used as an index of molecular size, and a linear polymer has an intrinsic viscosity [η] = -3.883 M 0.771 The shrinkage factor (g') for each absolute molecular weight of the modified styrene-butadiene rubber is calculated, and the absolute molecular weight is calculated as 100 x 10 4 ~200×10 4 The average value of the shrinkage factor (g') when the above formula is used is the shrinkage factor (g') of the modified styrene-butadiene rubber. Here, "branching" refers to a branch formed by direct or indirect bonding of one polymer to another polymer. Furthermore, the "degree of branching" refers to the number of polymers directly or indirectly bonded to one branch. For example, if five styrene-butadiene copolymer chains (described below) are indirectly bonded to each other via coupling residues (described below), the degree of branching is 5. The coupling residue is a structural unit of the modified styrene-butadiene rubber bonded to the styrene-butadiene copolymer chain, and is, for example, a structural unit derived from a coupling agent, which is generated by reacting the styrene-butadiene copolymer (described below) with a coupling agent. The styrene-butadiene copolymer chain is a structural unit of the modified styrene-butadiene rubber, and is, for example, a structural unit derived from a styrene-butadiene copolymer, which is generated by reacting the styrene-butadiene copolymer (described below) with a coupling agent. The shrinkage factor (g') is preferably less than 0.64, more preferably 0.63 or less, more preferably 0.60 or less, even more preferably 0.59 or less, and even more preferably 0.57 or less. The lower limit of the shrinkage factor (g') is not particularly limited and may be below the detection limit, but is preferably 0.30 or more, more preferably 0.33 or more, even more preferably 0.35 or more, and even more preferably 0.45 or more. By using a modified styrene-butadiene rubber having a shrinkage factor (g') in this range, the processability of the rubber composition is improved. Since the shrinkage factor (g') tends to depend on the degree of branching, it is possible to control the shrinkage factor (g') using the degree of branching as an index, for example. Specifically, when a modified styrene-butadiene rubber has a branching degree of 6, its shrinkage factor (g') tends to be 0.59 or more and 0.63 or less, and when a modified styrene-butadiene rubber has a branching degree of 8, its shrinkage factor (g') tends to be 0.45 or more and 0.59 or less.
[0048] The styrene-butadiene rubber modified with the coupling agent represented by the general formula (I) preferably has branches and a degree of branching of 5 or more. Furthermore, the modified styrene-butadiene rubber has one or more coupling residues and styrene-butadiene copolymer chains bonded to the coupling residues, and more preferably, the branches include branches in which five or more styrene-butadiene copolymer chains are bonded to one coupling residue. By specifying the structure of the modified styrene-butadiene rubber so that the degree of branching is 5 or more and the branches include branches in which five or more styrene-butadiene copolymer chains are bonded to one coupling residue, the contraction factor (g') can be more reliably reduced to less than 0.64. The number of styrene-butadiene copolymer chains bonded to one coupling residue can be confirmed from the value of the contraction factor (g'). The modified styrene-butadiene rubber preferably has branches, with a degree of branching of 6 or more. The modified styrene-butadiene rubber preferably has one or more coupling residues and styrene-butadiene copolymer chains bonded to the coupling residues, and more preferably includes branches in which six or more styrene-butadiene copolymer chains are bonded to one coupling residue. By specifying the structure of the modified styrene-butadiene rubber so that the degree of branching is 6 or more and the branch includes branches in which six or more styrene-butadiene copolymer chains are bonded to one coupling residue, the shrinkage factor (g') can be set to 0.63 or less. Furthermore, the modified styrene-butadiene rubber has branches, and the degree of branching is more preferably 7 or more, and even more preferably 8 or more. The upper limit of the degree of branching is not particularly limited, but is preferably 18 or less. The modified styrene-butadiene rubber has one or more coupling residues and styrene-butadiene copolymer chains bonded to the coupling residues, and more preferably the branches include branches in which 7 or more styrene-butadiene copolymer chains are bonded to one coupling residue, and particularly preferably the branches include branches in which 8 or more styrene-butadiene copolymer chains are bonded to one coupling residue. By specifying the structure of the modified styrene-butadiene rubber so that the degree of branching is 8 or more and the branches include branches in which 8 or more styrene-butadiene copolymer chains are bonded to one coupling residue, the shrinkage factor (g') can be made 0.59 or less.
[0049] At least one end of the styrene-butadiene copolymer chain is preferably bonded to a silicon atom of the coupling residue. In this case, the ends of a plurality of styrene-butadiene copolymer chains may be bonded to a single silicon atom. Alternatively, an end of the styrene-butadiene copolymer chain and an alkoxy group or hydroxyl group having 1 to 20 carbon atoms may be bonded to a single silicon atom, and as a result, that single silicon atom may constitute an alkoxysilyl group or silanol group having 1 to 20 carbon atoms.
[0050] The modified styrene-butadiene rubber may be an oil-extended rubber obtained by adding an extender oil. The modified styrene-butadiene rubber may be either non-oil-extended or oil-extended, but from the viewpoint of abrasion resistance, the Mooney viscosity measured at 100°C is preferably 20 or more and 100 or less, more preferably 30 or more and 80 or less.
[0051] The weight average molecular weight (Mw) of the modified styrene-butadiene rubber is preferably 20×10 4 Over 300 x 10 4 or less, more preferably 50×10 4 More preferably, 64×10 4 More preferably, it is 80×10 4 The weight average molecular weight is preferably 250×10 4 or less, and more preferably 180×10 4 or less, and more preferably 150×10 4 The weight average molecular weight is 20 × 10 4 When the weight average molecular weight is 300×10 or more, the low loss property and abrasion resistance of the rubber composition can be sufficiently improved. 4 When it is equal to or less than this, the processability of the rubber composition is improved.
[0052] The modified styrene-butadiene rubber has a molecular weight of 200×10 relative to the total amount (100% by mass) of the modified styrene-butadiene rubber. 4 Over 500 x 10 4It is preferable that the modified styrene-butadiene rubber (hereinafter also referred to as "specific high molecular weight component") contains 0.25% by mass or more and 30% by mass or less of the specific high molecular weight component. When the content of the specific high molecular weight component is 0.25% by mass or more and 30% by mass or less, the low loss property and abrasion resistance of the rubber composition can be sufficiently improved. The modified styrene-butadiene rubber contains the specific high molecular weight component preferably at least 1.0% by mass, more preferably at least 1.4% by mass, even more preferably at least 1.75% by mass, still more preferably at least 2.0% by mass, particularly preferably at least 2.15% by mass, and extremely preferably at least 2.5% by mass. Furthermore, the modified styrene-butadiene rubber contains the specific high molecular weight component preferably at most 28% by mass, more preferably at most 25% by mass, even more preferably at most 20% by mass, and even more preferably at most 18% by mass. In this specification, the "molecular weight" of the rubber component refers to the molecular weight in terms of standard polystyrene obtained by GPC (gel permeation chromatography). In order to obtain a modified styrene-butadiene rubber having a content of a specific high molecular weight component within this range, it is preferable to control the reaction conditions in the polymerization step and reaction step described below. For example, in the polymerization step, the amount of an organic monolithium compound used as a polymerization initiator, described below, can be adjusted. In addition, in the polymerization step, whether the polymerization method is continuous or batchwise, it is preferable to use a method with a residence time distribution, that is, to widen the time distribution of the propagation reaction.
[0053] In the modified styrene-butadiene rubber, the molecular weight distribution (Mw / Mn), which is the ratio of the weight average molecular weight (Mw) to the number average molecular weight (Mn), is preferably 1.6 to 3.0. If the molecular weight distribution of the modified styrene-butadiene rubber is in this range, the rubber composition will have good processability.
[0054] The method for producing the modified styrene-butadiene rubber is not particularly limited, but preferably includes a polymerization step of copolymerizing butadiene and styrene using an organic monolithium compound as a polymerization initiator to obtain a styrene-butadiene copolymer, and a reaction step of reacting an active terminal of the styrene-butadiene copolymer with a pentafunctional or higher reactive compound (hereinafter also referred to as a "coupling agent").
[0055] The polymerization step is preferably a propagation polymerization by living anionic polymerization, which makes it possible to obtain a styrene-butadiene copolymer having active terminals and a modified styrene-butadiene rubber with a high degree of modification. The styrene-butadiene copolymer is obtained by copolymerizing 1,3-butadiene and styrene.
[0056] The amount of the organic monolithium compound used as a polymerization initiator is preferably determined based on the target molecular weight of the styrene-butadiene copolymer or modified styrene-butadiene rubber. The amount of monomers, such as 1,3-butadiene and styrene, used relative to the amount of polymerization initiator is related to the degree of polymerization, i.e., the number average molecular weight and / or weight average molecular weight. Therefore, to increase the molecular weight, it is recommended to adjust the amount of polymerization initiator to decrease, and to decrease the molecular weight, it is recommended to adjust the amount of polymerization initiator to increase. The organic monolithium compound is preferably an alkyllithium compound from the viewpoints of industrial availability and ease of control of the polymerization reaction. In this case, a styrene-butadiene copolymer having an alkyl group at the polymerization initiation terminal is obtained. Examples of the alkyllithium compound include n-butyllithium, sec-butyllithium, tert-butyllithium, n-hexyllithium, benzyllithium, phenyllithium, and stilbenelithium. From the viewpoints of industrial availability and ease of control of the polymerization reaction, n-butyllithium and sec-butyllithium are preferred as the alkyllithium compound. These organic monolithium compounds may be used alone or in combination of two or more.
[0057] In the polymerization step, examples of the polymerization reaction mode include batch and continuous polymerization modes. In a continuous mode, one or more connected reactors can be used. Continuous reactors, for example, tank-type or tubular reactors equipped with a stirrer, are used. In a continuous mode, preferably, monomers, an inert solvent, and a polymerization initiator are continuously fed into the reactor, a polymer solution containing a polymer is obtained in the reactor, and the polymer solution is continuously discharged. Batch reactors, for example, tank-type reactors equipped with a stirrer, are used. In a batch mode, preferably, monomers, an inert solvent, and a polymerization initiator are fed, and if necessary, monomers are added continuously or intermittently during polymerization, a polymer solution containing a polymer is obtained in the reactor, and the polymer solution is discharged after the polymerization is completed. In this embodiment, in order to obtain a styrene-butadiene copolymer having a high proportion of active ends, a continuous mode is preferred, which allows the polymer to be continuously discharged and subjected to the next reaction in a short period of time.
[0058] The polymerization step is preferably carried out in an inert solvent. Examples of the solvent include hydrocarbon solvents such as saturated hydrocarbons and aromatic hydrocarbons. Specific hydrocarbon solvents include, but are not limited to, aliphatic hydrocarbons such as butane, pentane, hexane, and heptane; alicyclic hydrocarbons such as cyclopentane, cyclohexane, methylcyclopentane, and methylcyclohexane; aromatic hydrocarbons such as benzene, toluene, and xylene; and hydrocarbons consisting of mixtures thereof. Treating impurities such as allenes and acetylenes with an organometallic compound before subjecting the mixture to the polymerization reaction tends to produce a styrene-butadiene copolymer having a high concentration of active terminals, and thus tends to produce a modified styrene-butadiene rubber with a high modification rate, which is preferable.
[0059] In the polymerization step, a polar compound may be added. By adding a polar compound, styrene can be randomly copolymerized with 1,3-butadiene, and the polar compound also tends to be usable as a vinylating agent for controlling the microstructure of the 1,3-butadiene moiety. Examples of the polar compound that can be used include ethers such as tetrahydrofuran, diethyl ether, dioxane, ethylene glycol dimethyl ether, ethylene glycol dibutyl ether, diethylene glycol dimethyl ether, diethylene glycol dibutyl ether, dimethoxybenzene, and 2,2-bis(2-oxolanyl)propane; tertiary amine compounds such as tetramethylethylenediamine, dipiperidinoethane, trimethylamine, triethylamine, pyridine, and quinuclidine; alkali metal alkoxide compounds such as potassium tert-amylate, potassium tert-butylate, sodium tert-butylate, and sodium tert-amylate; and phosphine compounds such as triphenylphosphine. These polar compounds may be used alone or in combination of two or more.
[0060] In the polymerization step, from the viewpoint of productivity, the polymerization temperature is preferably 0° C. or higher, more preferably 120° C. or lower, and particularly preferably 50° C. or higher and 100° C. or lower. By keeping the temperature within such a range, it tends to be possible to ensure a sufficient amount of the coupling agent to react with the active terminals after the completion of polymerization.
[0061] The amount of bound butadiene in the styrene-butadiene copolymer or modified styrene-butadiene rubber is preferably 85% by mass or more and less than 100% by mass. The amount of bound styrene in the styrene-butadiene copolymer or modified styrene-butadiene rubber is preferably more than 0% by mass and 15% by mass or less. When the bound butadiene amount and the bound styrene amount are within the above ranges, the low loss property and the wear resistance of the rubber composition can be further improved. The amount of bound styrene can be measured by ultraviolet absorption of the phenyl group, and the amount of bound butadiene can also be determined from this.
[0062] In the styrene-butadiene copolymer or modified styrene-butadiene rubber, the amount of vinyl bonds in the butadiene bond units is not particularly limited, but is preferably 10 mol % to 75 mol %, more preferably 20 mol % to 65 mol %. When the amount of vinyl bonds is within the above range, the low loss property and wear resistance of the rubber composition can be further improved. For modified styrene-butadiene rubber, the vinyl bond content (1,2-bond content) in the butadiene bond unit can be determined by Hampton's method [RR Hampton, Analytical Chemistry, 21, 923 (1949)].
[0063] The alkoxysilyl group of the coupling agent represented by the general formula (I) tends to react with, for example, the active terminal of a styrene-butadiene copolymer, dissociating the alkoxylithium and forming a bond between the terminal of the styrene-butadiene copolymer chain and the silicon of the coupling residue. The number of alkoxysilyl groups in the coupling residue is calculated by subtracting the number of SiO R from the total number of SiO R in one molecule of the coupling agent. Furthermore, the azasilacycle group in the coupling agent forms an >N-Li bond and a bond between the terminal of the styrene-butadiene copolymer and the silicon of the coupling residue. The >N-Li bond tends to easily become >NH and LiOH upon exposure to water or other factors during finishing. Furthermore, any remaining unreacted alkoxysilyl groups in the coupling agent tend to easily become silanols (Si-OH groups) upon exposure to water or other factors during finishing.
[0064] The reaction temperature in the reaction step is preferably the same as the polymerization temperature of the styrene-butadiene copolymer, more preferably from 0° C. to 120° C., and even more preferably from 50° C. to 100° C. The temperature change from the end of the polymerization step to the addition of the coupling agent is preferably 10° C. or less, more preferably 5° C. or less. The reaction time in the reaction step is preferably 10 seconds or more, more preferably 30 seconds or more. From the viewpoint of the coupling rate, the time from the end of the polymerization step to the start of the reaction step is preferably shorter, and more preferably within 5 minutes. The mixing in the reaction step may be performed by mechanical stirring, stirring with a static mixer, or the like. When the polymerization step is continuous, it is preferable that the reaction step is also continuous. The reactor used in the reaction step may be, for example, a tank type or a tubular type equipped with a stirrer. The coupling agent may be diluted with an inert solvent and continuously supplied to the reactor. When the polymerization step is batchwise, the coupling agent may be charged into the polymerization reactor, or may be transferred to a separate reactor and the reaction step may be carried out.
[0065] In the general formula (I), A is preferably represented by any one of the following general formulae (II) to (V): When A is represented by any one of the general formulae (II) to (V), a modified styrene-butadiene rubber having better performance can be obtained.
[0066] [ka] In the general formula (II), B 1 represents a single bond or a hydrocarbon group having 1 to 20 carbon atoms, and a represents an integer of 1 to 10. When a plurality of B 1 are each independent of each other.
[0067] [ka] In the general formula (III), B 2 represents a single bond or a hydrocarbon group having 1 to 20 carbon atoms, B3 represents an alkyl group having 1 to 20 carbon atoms, and a represents an integer of 1 to 10. When a plurality of B 2 and B 3 are each independent of each other.
[0068] [ka] In the general formula (IV), B 4 represents a single bond or a hydrocarbon group having 1 to 20 carbon atoms, and a represents an integer of 1 to 10. When a plurality of B 4 are each independent of each other.
[0069] [ka] In the general formula (V), B 5 represents a single bond or a hydrocarbon group having 1 to 20 carbon atoms, and a represents an integer of 1 to 10. When a plurality of B 5 are each independent of each other.
[0070] B in the general formulas (II) to (V) 1 , B 2 , B 4 , B 5 Regarding the above, examples of the hydrocarbon group having 1 to 20 carbon atoms include an alkylene group having 1 to 20 carbon atoms.
[0071] Preferably, in the general formula (I), A is represented by the general formula (II) or (III), and k is 0. More preferably, in the general formula (I), A is represented by the general formula (II) or (III), k represents 0, and in the general formula (II) or (III), a represents an integer of 2 to 10. More preferably, in the general formula (I), A is represented by the general formula (II), k represents 0, and in the general formula (II), a represents an integer of 2 to 10. Examples of such coupling agents include bis(3-trimethoxysilylpropyl)-[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]amine, tris(3-trimethoxysilylpropyl)amine, tris(3-triethoxysilylpropyl)amine, tris(3-trimethoxysilylpropyl)-[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]-1,3-propanediamine, tetrakis[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]-1,3-propanediamine, and tetrakis(3-trimethoxysilylpropyl). bis[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]-(3-trismethoxysilylpropyl)-methyl-1,3-propanediamine, tetrakis(3-trimethoxysilylpropyl)-1,3-propanediamine, tetrakis(3-trimethoxysilylpropyl)-1,3-bisaminomethylcyclohexane, tris(3-trimethoxysilylpropyl)-methyl-1,3-propanediamine, bis[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]-(3-trismethoxysilylpropyl)-methyl-1,3-propanediamine, and the like are particularly preferred among these.
[0072] The amount of the compound represented by general formula (I) added as the coupling agent can be adjusted so that the moles of styrene-butadiene copolymer to the moles of coupling agent react in a desired stoichiometric ratio, which tends to achieve a desired degree of branching. Specifically, the moles of the polymerization initiator are preferably 5.0 times or more, more preferably 6.0 times or more, relative to the moles of the coupling agent. In this case, in general formula (I), the number of functional groups of the coupling agent ((m-1) x i + p x j + k) is preferably an integer of 5 to 10, more preferably an integer of 6 to 10.
[0073] In order to obtain a modified styrene-butadiene rubber having the specific polymer component, the molecular weight distribution (Mw / Mn) of the styrene-butadiene copolymer is preferably 1.5 or more and 2.5 or less, more preferably 1.8 or more and 2.2 or less. In addition, it is preferable that the obtained modified styrene-butadiene rubber is one in which a single peak is detected in the molecular weight curve by GPC. When the peak molecular weight of the modified styrene-butadiene rubber measured by GPC is Mp1 and the peak molecular weight of the styrene-butadiene copolymer is Mp2, the following formula preferably holds true. (Mp1 / Mp2)<1.8×10-12×(Mp2-120×10 4 ) 2 +2 Mp2 is 20 x 10 4 Over 80 x 10 4 Below, Mp1 is 30 x 10 4 Over 150 x 10 4 The following is more preferred: Mp1 and Mp2 are determined by the method described in the Examples below.
[0074] The modification rate of the modified styrene-butadiene rubber is preferably 30% by mass or more, more preferably 50% by mass or more, and even more preferably 70% by mass or more. When the modification rate is 30% by mass or more, the low loss property and abrasion resistance of the rubber composition can be further improved.
[0075] After the reaction step, a deactivator, neutralizer, etc. may be added to the copolymer solution as needed. Examples of deactivators include, but are not limited to, water; alcohols such as methanol, ethanol, and isopropanol; and examples of neutralizers include, but are not limited to, carboxylic acids such as stearic acid, oleic acid, and versatic acid (a highly branched carboxylic acid mixture having 9 to 11 carbon atoms, with the majority being 10 carbon atoms); aqueous solutions of inorganic acids; and carbon dioxide gas. Furthermore, from the viewpoint of preventing gel formation after polymerization and improving stability during processing, it is preferable to add an antioxidant such as 2,6-di-tert-butyl-4-hydroxytoluene (BHT), n-octadecyl-3-(4'-hydroxy-3',5'-di-tert-butylphenol)propionate, or 2-methyl-4,6-bis[(octylthio)methyl]phenol to the modified styrene-butadiene rubber.
[0076] The modified styrene-butadiene rubber can be obtained from the polymer solution by any known method, including, for example, a method in which the solvent is separated by steam stripping or the like, the polymer is filtered, and then the polymer is dehydrated and dried to obtain the polymer, a method in which the polymer is concentrated in a flashing tank and then devolatilized using a vent extruder or the like, and a method in which the polymer is directly devolatilized using a drum dryer or the like.
[0077] The modified styrene-butadiene rubber obtained by reacting the coupling agent represented by the above general formula (I) with a styrene-butadiene copolymer is represented, for example, by the following general formula (VI). [ka]
[0078] In the general formula (VI), D represents a styrene-butadiene copolymer chain, and the weight average molecular weight of the styrene-butadiene copolymer chain is 10 × 10 4 ~100×10 4 The styrene-butadiene copolymer chain is a structural unit of a modified styrene-butadiene rubber, and is, for example, a structural unit derived from a styrene-butadiene copolymer, which is generated by reacting a styrene-butadiene copolymer with a coupling agent. R 12 , R 13 and R 14 each independently represents a single bond or an alkylene group having 1 to 20 carbon atoms. R 15 and R 18each independently represents an alkyl group having 1 to 20 carbon atoms. R 16 , R 19 , and R 20 each independently represents a hydrogen atom or an alkyl group having 1 to 20 carbon atoms. R 17 and R 21 each independently represents an alkylene group having 1 to 20 carbon atoms. R 22 represents a hydrogen atom or an alkyl group having 1 to 20 carbon atoms. m and x represent integers of 1 to 3, with x≦m; p represents 1 or 2; y represents an integer of 1 to 3, with y≦(p+1); and z represents an integer of 1 or 2. D and R when there are multiple of each 12 ~R 22 , m, p, x, y, and z are each independent and may be the same or different. Furthermore, i represents an integer from 0 to 6, j represents an integer from 0 to 6, k represents an integer from 0 to 6, (i+j+k) is an integer from 3 to 10, and ((x×i)+(y×j)+(z×k)) is an integer from 5 to 30. A represents a hydrocarbon group having 1 to 20 carbon atoms, or an organic group having at least one atom selected from the group consisting of oxygen, nitrogen, silicon, sulfur, and phosphorus atoms, and having no active hydrogen. The hydrocarbon group represented by A includes saturated, unsaturated, aliphatic, and aromatic hydrocarbon groups. Examples of the organic group having no active hydrogen include organic groups having no functional groups having active hydrogen, such as a hydroxyl group (-OH), a secondary amino group (>NH), a primary amino group (-NH), or a sulfhydryl group (-SH).
[0079] In the general formula (VI), A is preferably represented by any one of the general formulae (II) to (V). When A is represented by any one of the general formulae (II) to (V), the low loss property and abrasion resistance of the rubber composition can be further improved.
[0080] --Third Preferred Embodiment of Modified Styrene-Butadiene Rubber-- It is also preferable that at least one end of the modified styrene-butadiene rubber (modified SBR) is modified with a modifier containing a compound (alkoxysilane) represented by the following general formula (1). [ka]
[0081] By using, as the rubber component, a styrene-butadiene rubber modified with a modifier containing a compound represented by the general formula (1) containing an oligosiloxane, which is a filler affinity functional group, and a tertiary amino group, the dispersibility of fillers such as silica can be improved. As a result, the rubber composition of the present invention has improved filler dispersibility, which significantly improves low loss properties, reduces the rolling resistance of tires using the rubber composition, and improves fuel economy.
[0082] In the above general formula (1), R 1 ~R 8 are each independently an alkyl group having 1 to 20 carbon atoms; L 1 and L 2 are each independently an alkylene group having 1 to 20 carbon atoms; and n is an integer of 2 to 4.
[0083] Specifically, in formula (1), R 1 ~R 4 may each independently represent a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, and 1 ~R 4 When substituted, each independently may be substituted with one or more substituents selected from the group consisting of an alkyl group having 1 to 10 carbon atoms, a cycloalkyl group having 3 to 10 carbon atoms, an alkoxy group having 1 to 10 carbon atoms, a cycloalkoxy group having 4 to 10 carbon atoms, an aryl group having 6 to 12 carbon atoms, an aryloxy group having 6 to 12 carbon atoms, an alkanoyloxy group having 2 to 12 carbon atoms (Ra-COO-, where Ra is an alkyl group having 1 to 9 carbon atoms), an aralkyloxy group having 7 to 13 carbon atoms, an arylalkyl group having 7 to 13 carbon atoms, and an alkylaryl group having 7 to 13 carbon atoms. More specifically, the R 1 ~R 4 may be a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, and more specifically, 1 ~R 4 may each independently be a substituted or unsubstituted alkyl group having 1 to 6 carbon atoms.
[0084] In addition, in formula (1), R 5 ~R 8 are each independently a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, specifically a substituted or unsubstituted alkyl group having 1 to 10 carbon atoms, more specifically a substituted or unsubstituted alkyl group having 1 to 6 carbon atoms, and when substituted, they are first 1 ~R 4 It may be substituted with substituents as described above. In addition, the above R 5 ~R 8 If is not an alkyl group but a hydrolyzable substituent, NR 5 R 6 and NR 7 R 8 The bond can be hydrolyzed to NH in the presence of moisture, adversely affecting the processability of the polymer.
[0085] More specifically, in the compound represented by the formula (1), R 1 ~R 4 is a methyl group or an ethyl group, and R 5 ~R 8 can be an alkyl group having 1 to 10 carbon atoms.
[0086] The amino group in the compound represented by the formula (1), i.e., NR 5 R 6 and NR 7 R 8 is preferably a tertiary amino group. The tertiary amino group provides the compound represented by formula (1) with better processability when used as a modifying agent. In addition, the above R 5 ~R 8If a protecting group for protecting the amino group is bonded to the terminal end of the polymer or if hydrogen is bonded to the terminal end of the polymer, it may be difficult to realize the effect of the compound represented by formula (1). If hydrogen is bonded, the anion reacts with hydrogen during the modification process, losing its reactivity and making the modification reaction impossible. If a protecting group is bonded, the modification reaction will occur, but the terminal end of the polymer will be deprotected by hydrolysis during post-processing to become a primary or secondary amino group. The deprotected primary or secondary amino group may cause the compound to become viscous during subsequent blending, potentially resulting in reduced processability.
[0087] In addition, L in the compound represented by the formula (1) 1 and L 2 are each independently a substituted or unsubstituted alkylene group having 1 to 20 carbon atoms. More specifically, L 1 and L 2 may each independently be an alkylene group having 1 to 10 carbon atoms, more specifically, an alkylene group having 1 to 6 carbon atoms such as a methylene group, an ethylene group, or a propylene group.
[0088] L in the compound represented by formula (1) 1 and L 2 Regarding the above, the shorter the distance between the Si atom and the N atom in the molecule, the better the effect. However, if Si is directly bonded to N, there is a risk that the bond between Si and N will break during subsequent processing steps, and the secondary amino group generated in this case is likely to be washed away by water during post-processing. In the modified styrene-butadiene rubber produced, it is difficult for the amino group, which promotes bonding with fillers such as silica, to bond with the filler, and as a result, the effect of improving the dispersibility of the filler may be reduced. In this way, considering the improvement effect depending on the bond length between Si and N, the above L 1 and L 2 More preferably, each of L is independently an alkylene group having 1 to 3 carbon atoms, such as a methylene group, an ethylene group, or a propylene group, and more specifically, can be a propylene group. 1 and L 2 R first 1 ~R4 It may be substituted with substituents as described above.
[0089] The compound represented by the formula (1) is preferably, for example, any one of the compounds represented by the following structural formulas (1-1) to (1-5), because this allows for more excellent low loss properties to be achieved. [ka]
[0090] The compound represented by formula (1) has an alkoxysilane structure that bonds to the active terminal of the styrene-butadiene copolymer, while the Si-O-Si structure and three or more amino groups bonded to the terminals exhibit affinity for fillers such as silica. This promotes bonding between the filler and the modified styrene-butadiene rubber compared to conventional modifiers containing a single amino group per molecule. Furthermore, the degree of bonding at the active terminals of the styrene-butadiene copolymer is uniform, and when observing the change in molecular weight distribution before and after coupling, the molecular weight distribution remains constant without increasing compared to before coupling. This prevents a deterioration in the physical properties of the modified styrene-butadiene rubber itself, prevents filler aggregation within the rubber composition, and enhances filler dispersibility, thereby improving the processability of the rubber composition. These effects, particularly when the rubber composition is applied to tires, enable a balanced improvement in fuel economy and wet grip performance.
[0091] The compound represented by the formula (1) can be produced through a condensation reaction represented by the following reaction scheme. [ka]
[0092] In the above reaction scheme, R 1 ~R 8 , L 1 and L 2and n are the same as those defined in the above formula (1), and R′ and R″ are any substituents that do not affect the condensation reaction. For example, R′ and R″ are each independently R 1 ~R 4 It can be identical to any one of the following:
[0093] The reaction in the above reaction scheme proceeds in the presence of an acid, and any acid generally used in condensation reactions can be used without limitation. Those skilled in the art can select an optimal acid depending on various process variables such as the type of reactor in which the reaction is carried out, starting materials, and reaction temperature.
[0094] The styrene-butadiene rubber modified with a modifier containing the compound represented by formula (1) can have a narrow molecular weight distribution (Mw / Mn, also referred to as "polydispersity index (PDI)") of 1.1 to 3.0. If the molecular weight distribution of the modified styrene-butadiene rubber exceeds 3.0 or is less than 1.1, the tensile properties and viscoelasticity may be reduced when the modified styrene-butadiene rubber is applied to a rubber composition. Considering the remarkable effect of improving the tensile properties and viscoelasticity by controlling the molecular weight distribution of the modified styrene-butadiene rubber, the molecular weight distribution of the modified styrene-butadiene rubber is preferably in the range of 1.3 to 2.0. By using the modifier, the modified styrene-butadiene rubber has a molecular weight distribution similar to that of the styrene-butadiene copolymer before modification.
[0095] The molecular weight distribution of the modified styrene-butadiene rubber can be calculated from the ratio (Mw / Mn) of the weight average molecular weight (Mw) to the number average molecular weight (Mn). The number average molecular weight (Mn) is the common average of the molecular weights of individual polymers calculated by measuring the molecular weights of n polymer molecules, summing the molecular weights, and dividing by n. The weight average molecular weight (Mw) represents the molecular weight distribution of the polymer composition. The average of the total molecular weight can be expressed in grams per mole (g / mol). The weight average molecular weight and number average molecular weight are each a polystyrene-equivalent molecular weight analyzed by gel permeation chromatography (GPC).
[0096] The modified styrene-butadiene rubber satisfies the above-mentioned molecular weight distribution conditions and may have a number average molecular weight (Mn) of 50,000 g / mol to 2,000,000 g / mol, more specifically, 200,000 g / mol to 800,000 g / mol, and a weight average molecular weight (Mw) of 100,000 g / mol to 4,000,000 g / mol, more specifically, 300,000 g / mol to 1,500,000 g / mol. If the weight-average molecular weight (Mw) of the modified styrene-butadiene rubber is less than 100,000 g / mol or the number-average molecular weight (Mn) is less than 50,000 g / mol, the tensile properties may be reduced when the modified styrene-butadiene rubber is applied to a rubber composition. If the weight-average molecular weight (Mw) is greater than 4,000,000 g / mol or the number-average molecular weight (Mn) is greater than 2,000,000 g / mol, the processability of the modified styrene-butadiene rubber may be reduced, resulting in a deterioration in the workability of the rubber composition, making kneading difficult, and making it difficult to sufficiently improve the physical properties of the rubber composition. More specifically, when the modified styrene-butadiene rubber satisfies the conditions for weight average molecular weight (Mw) and number average molecular weight (Mn) as well as the molecular weight distribution, when the modified styrene-butadiene rubber is applied to a rubber composition, it can improve the viscoelasticity and processability of the rubber composition in a well-balanced manner.
[0097] The modified styrene-butadiene rubber preferably has a vinyl bond content in the butadiene moiety of 5% or more, more preferably 10% or more, and preferably 60% or less. By adjusting the vinyl bond content in the butadiene moiety to fall within the above range, the glass transition temperature can be adjusted to an appropriate range.
[0098] The modified styrene-butadiene rubber may have a Mooney viscosity (MV) at 100° C. of 40 to 140, specifically 60 to 100. When the modified styrene-butadiene rubber has a Mooney viscosity in the above range, it can exhibit better processability. The Mooney viscosity can be measured using a Mooney viscometer, such as Monsanto's MV2000E, at 100°C, a rotor speed of 2±0.02 rpm, and a large rotor. The sample used here is left at room temperature (23±3°C) for 30 minutes or more, and then 27±3 g of the sample is taken and filled into the die cavity, and the platen is operated to measure the viscosity.
[0099] As described above, the modified styrene-butadiene rubber is preferably modified at one end with a modifier containing a compound represented by the above general formula (1), and is preferably further modified at the other end with a modifier containing a compound represented by the following general formula (2). By modifying both ends of the modified styrene-butadiene rubber, the dispersibility of the filler in the rubber composition is further improved, and a tire using the rubber composition can achieve both low fuel consumption performance and wet grip performance at a higher level. [ka]
[0100] In the above general formula (2), R 9 ~R 11 are each independently hydrogen; an alkyl group having 1 to 30 carbon atoms; an alkenyl group having 2 to 30 carbon atoms; an alkynyl group having 2 to 30 carbon atoms; a heteroalkyl group having 1 to 30 carbon atoms, a heteroalkenyl group having 2 to 30 carbon atoms; a heteroalkynyl group having 2 to 30 carbon atoms; a cycloalkyl group having 5 to 30 carbon atoms; an aryl group having 6 to 30 carbon atoms; or a heterocyclic group having 3 to 30 carbon atoms. Also, in formula (2), R 12 represents a single bond; an alkylene group having 1 to 20 carbon atoms which is substituted or unsubstituted; a cycloalkylene group having 5 to 20 carbon atoms which is substituted or unsubstituted; or an arylene group having 5 to 20 carbon atoms which is substituted or unsubstituted, wherein the substituent is an alkyl group having 1 to 10 carbon atoms, a cycloalkyl group having 5 to 10 carbon atoms, or an aryl group having 6 to 20 carbon atoms. Also, in formula (2), R 13is an alkyl group having 1 to 30 carbon atoms; an alkenyl group having 2 to 30 carbon atoms; an alkynyl group having 2 to 30 carbon atoms; a heteroalkyl group having 1 to 30 carbon atoms; a heteroalkenyl group having 2 to 30 carbon atoms; a heteroalkynyl group having 2 to 30 carbon atoms; a cycloalkyl group having 5 to 30 carbon atoms; an aryl group having 6 to 30 carbon atoms; a heterocyclic group having 3 to 30 carbon atoms; or a functional group represented by the following general formula (2a) or general formula (2b), wherein m is an integer of 1 to 5, and R 13 At least one of the functional groups is represented by the following general formula (2a) or (2b), and when m is an integer of 2 to 5, a plurality of R 13 may be the same as or different from each other.
[0101] [ka]
[0102] In the above general formula (2a), R 14 represents a substituted or unsubstituted alkylene group having 1 to 20 carbon atoms; a substituted or unsubstituted cycloalkylene group having 5 to 20 carbon atoms; or a substituted or unsubstituted arylene group having 6 to 20 carbon atoms, wherein the substituent is an alkyl group having 1 to 10 carbon atoms, a cycloalkyl group having 5 to 10 carbon atoms, or an aryl group having 6 to 20 carbon atoms. Also, in formula (2a), R 15 and R 16 are each independently an alkylene group having 1 to 20 carbon atoms which is substituted or unsubstituted with an alkyl group having 1 to 10 carbon atoms, a cycloalkyl group having 5 to 10 carbon atoms, or an aryl group having 6 to 20 carbon atoms. Also, in formula (2a), R 17 is hydrogen; an alkyl group having 1 to 30 carbon atoms; an alkenyl group having 2 to 30 carbon atoms; an alkynyl group having 2 to 30 carbon atoms; a heteroalkyl group having 1 to 30 carbon atoms; a heteroalkenyl group having 2 to 30 carbon atoms; a heteroalkynyl group having 2 to 30 carbon atoms; a cycloalkyl group having 5 to 30 carbon atoms; an aryl group having 6 to 30 carbon atoms; or a heterocyclic group having 3 to 30 carbon atoms; and X is an N, O, or S atom, provided that when X is O or S, R 17 does not exist.
[0103] [ka]
[0104] In the above general formula (2b), R 18 represents a substituted or unsubstituted alkylene group having 1 to 20 carbon atoms; a substituted or unsubstituted cycloalkylene group having 5 to 20 carbon atoms; or a substituted or unsubstituted arylene group having 6 to 20 carbon atoms, wherein the substituent is an alkyl group having 1 to 10 carbon atoms, a cycloalkyl group having 5 to 10 carbon atoms, or an aryl group having 6 to 20 carbon atoms. Also, in formula (2b), R 19 and R 20 are each independently an alkyl group having 1 to 30 carbon atoms; an alkenyl group having 2 to 30 carbon atoms; an alkynyl group having 2 to 30 carbon atoms; a heteroalkyl group having 1 to 30 carbon atoms; a heteroalkenyl group having 2 to 30 carbon atoms; a heteroalkynyl group having 2 to 30 carbon atoms; a cycloalkyl group having 5 to 30 carbon atoms; an aryl group having 6 to 30 carbon atoms; or a heterocyclic group having 3 to 30 carbon atoms.
[0105] In addition, in the compound represented by the general formula (2), R 9 ~R 11 are each independently hydrogen; an alkyl group having 1 to 10 carbon atoms; an alkenyl group having 2 to 10 carbon atoms; or an alkynyl group having 2 to 10 carbon atoms; and R 12 is a single bond; or an unsubstituted alkylene group having 1 to 10 carbon atoms, and R 13 is an alkyl group having 1 to 10 carbon atoms; an alkenyl group having 2 to 10 carbon atoms; an alkynyl group having 2 to 10 carbon atoms; or a functional group represented by the above general formula (2a) or (2b), and in the above general formula (2a), R 14 is an unsubstituted alkylene group having 1 to 10 carbon atoms, and R 15 and R 16 are each independently an unsubstituted alkylene group having 1 to 10 carbon atoms, and R 17is an alkyl group having 1 to 10 carbon atoms; a cycloalkyl group having 5 to 20 carbon atoms; an aryl group having 6 to 20 carbon atoms; or a heterocyclic group having 3 to 20 carbon atoms, and in the above general formula (2b), R 18 is an unsubstituted alkylene group having 1 to 10 carbon atoms, and R 19 and R 20 may each independently be an alkyl group having 1 to 10 carbon atoms; a cycloalkyl group having 5 to 20 carbon atoms; an aryl group having 6 to 20 carbon atoms; or a heterocyclic group having 3 to 20 carbon atoms.
[0106] More specifically, the compound represented by the above general formula (2) can be a compound represented by the following structural formulas (2-1) to (2-3). [ka]
[0107] When the styrene-butadiene copolymer is modified with a modifying agent containing the compound represented by the general formula (2), the modifying agent containing the compound represented by the formula (2) is used as a modification initiator. Specifically, for example, by polymerizing a butadiene monomer and a styrene monomer in a hydrocarbon solvent in the presence of a modifying agent containing a compound represented by formula (2), a modifying group derived from the compound represented by formula (2) can be imparted to the styrene-butadiene copolymer.
[0108] The modified styrene-butadiene rubber may be used alone or in combination of two or more kinds.
[0109] The modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less may contain an oil extender component (extender oil), and the content of the oil extender component is preferably 25 parts by mass or less, more preferably 20 parts by mass or less, more preferably 15 parts by mass or less, more preferably 10 parts by mass or less, and even more preferably 5 parts by mass or less, per 100 parts by mass of the rubber component, and may not be contained (i.e., it may be 0 parts by mass).
[0110] -Other rubber- The rubber component may further contain other rubbers, and the content of the other rubbers is preferably 35 parts by mass or less per 100 parts by mass of the rubber component. Examples of such other rubbers include unmodified styrene-butadiene rubber (SBR), modified styrene-butadiene rubber with a bound styrene content of more than 15% by mass, butadiene rubber (BR), chloroprene rubber (CR), butyl rubber (IIR), halogenated butyl rubber, ethylene-propylene rubber (EPR, EPDM), fluororubber, silicone rubber, and urethane rubber. The butadiene rubber (BR) may be modified, and the modifier for the butadiene rubber may be the same as the modifier (coupling agent) suitable for modifying the modified styrene-butadiene rubber described above.
[0111] (hydrogenated resin) The rubber composition for a tire of the present invention contains a hydrogenated resin having a softening point higher than 100°C and a weight average molecular weight (g / mol) in terms of polystyrene of more than 1200 and not more than 1600. By applying a rubber composition containing such a hydrogenated resin to a tire, it is possible to achieve a high level of both wet grip performance and fuel economy of the tire.
[0112] If the softening point of the hydrogenated resin is 100° C. or lower, it is not possible to achieve a high level of both wet grip performance and fuel economy of the tire. From the viewpoint of wet grip performance and fuel economy of the tire, the softening point of the hydrogenated resin is more preferably 112° C. or higher, and even more preferably 115° C. or higher. Furthermore, from the viewpoint of processability, the softening point of the hydrogenated resin is preferably 160°C or lower, more preferably 150°C or lower, more preferably 145°C or lower, still more preferably 141°C or lower, and even more preferably 130°C or lower.
[0113] When the weight average molecular weight (Mw) of the hydrogenated resin in terms of polystyrene exceeds 1200 g / mol, the hydrogenated resin is less likely to precipitate from the tire and the effects of the hydrogenated resin can be fully exerted, and when it is 1600 g / mol or less, the hydrogenated resin is more likely to be compatible with the rubber component. From the viewpoint of suppressing precipitation of the hydrogenated resin from the tire and suppressing deterioration of the tire appearance, the weight average molecular weight of the hydrogenated resin in terms of polystyrene is preferably 1250 g / mol or more. Furthermore, from the viewpoint of increasing the compatibility of the hydrogenated resin with the rubber component and further enhancing the effects of the hydrogenated resin, the weight average molecular weight of the hydrogenated resin in terms of polystyrene is preferably 1450 g / mol or less, and more preferably 1400 g / mol or less.
[0114] The ratio (Ts / Mw) of the softening point (Ts) (unit: °C) of the hydrogenated resin to its polystyrene-equivalent weight average molecular weight (Mw) (unit: g / mol) is preferably 0.05 or more, more preferably 0.08 or more, and even more preferably 0.085 or more. The ratio (Ts / Mw) is preferably 0.19 or less, more preferably 0.13 or less, and even more preferably 0.1 or less. The softening point, polystyrene-equivalent weight average molecular weight, and number average molecular weight of the hydrogenated resin can be determined by the methods described in the examples below.
[0115] The content of the hydrogenated resin is preferably 1 part by mass or more and 50 parts by mass or less per 100 parts by mass of the rubber component. When the content of the hydrogenated resin in the rubber composition is 1 part by mass or more per 100 parts by mass of the rubber component, the effects of the hydrogenated resin are fully exhibited, and when the content is 50 parts by mass or less, the hydrogenated resin is less likely to precipitate from the tire, allowing the effects of the hydrogenated resin to be fully exhibited. From the viewpoint of further enhancing the effects of the hydrogenated resin, the content of the hydrogenated resin in the rubber composition is preferably 5 parts by mass or more, more preferably 7 parts by mass or more, and even more preferably 9 parts by mass or more per 100 parts by mass of the rubber component. Furthermore, from the viewpoint of suppressing precipitation of the hydrogenated resin from the tire and suppressing deterioration of the tire appearance, the content of the hydrogenated resin in the rubber composition is preferably 45 parts by mass or less, and even more preferably 40 parts by mass or less per 100 parts by mass of the rubber component.
[0116] The hydrogenated resin means a resin obtained by reducing and hydrogenating a resin. Examples of resins that can be used as raw materials for hydrogenated resins include C5 resins, C5-C9 resins, C9 resins, terpene resins, terpene-aromatic compound resins, and dicyclopentadiene resins. These resins may be used alone or in combination of two or more.
[0117] Examples of the C5 resin include aliphatic petroleum resins obtained by (co)polymerizing C5 fractions obtained by thermal cracking of naphtha in the petrochemical industry. The C5 fraction typically contains olefinic hydrocarbons such as 1-pentene, 2-pentene, 2-methyl-1-butene, 2-methyl-2-butene, and 3-methyl-1-butene, and diolefinic hydrocarbons such as 2-methyl-1,3-butadiene, 1,2-pentadiene, 1,3-pentadiene, and 3-methyl-1,2-butadiene. Commercially available C5 resins can be used.
[0118] The C5-C9 resin refers to a C5-C9 synthetic petroleum resin, and examples of the C5-C9 resin include petroleum-derived C5-C 11 Examples of such solid polymers include those obtained by polymerizing the fraction using a Friedel-Crafts catalyst such as AlCl3 or BF3, and more specifically, copolymers containing styrene, vinyltoluene, α-methylstyrene, indene, etc. as the main component. As the C5-C9 resin, a resin with a low content of C9 or higher components is preferred from the viewpoint of compatibility with the rubber component. Here, "low content of C9 or higher components" means that the content of C9 or higher components in the total amount of resin is less than 50 mass%, preferably 40 mass% or less. Commercially available C5-C9 resins can be used.
[0119] The C9 resin refers to a C9 synthetic petroleum resin, for example, a solid polymer obtained by polymerizing a C9 fraction using a Friedel-Crafts catalyst such as AlCl3 or BF3. Examples of C9 resins include copolymers containing indene, α-methylstyrene, vinyltoluene, and the like as main components.
[0120] The terpene resin is a solid resin obtained by blending turpentine, which is obtained simultaneously when rosin is obtained from pine trees, or a polymerization component separated from the turpentine, and polymerizing the blend using a Friedel-Crafts catalyst, and examples of the terpene resin include β-pinene resin and α-pinene resin. There are no particular restrictions on the terpenes used as raw materials, and monoterpene hydrocarbons such as α-pinene and limonene are preferred, with those containing α-pinene being more preferred, and α-pinene being particularly preferred.
[0121] The terpene-aromatic compound resin is a resin obtained by copolymerizing terpenes and aromatic compounds, and can be produced, for example, by reacting them in an organic solvent such as toluene in the presence of a Friedel-Crafts catalyst such as AlCl3 or BF3. The terpenes are monoterpenes (C 10 H 16 ), sesquiterpenes (C 15 H 24 ), diterpenes (C 20 H 32 ) and other compounds having a basic skeleton of a terpene classified as such. Specific examples of terpenes include α-pinene, β-pinene, carene (δ-3-carene), dipentene, limonene, myrcene, alloocimene, ocimene, α-phellandrene, α-terpinene, γ-terpinene, terpinolene, 1,8-cineole, 1,4-cineole, α-terpineol, β-terpineol, and γ-terpineol. The terpenes used as raw materials are not particularly limited, and monoterpene hydrocarbons such as α-pinene and limonene are preferred, those containing α-pinene are more preferred, and α-pinene is particularly preferred. Examples of the aromatic compound include styrene and derivatives thereof, such as styrene, alkylstyrene, alkoxystyrene, and unsaturated hydrocarbon group-containing styrene; phenolic compounds, such as phenol, alkylphenol, alkoxyphenol, and unsaturated hydrocarbon group-containing phenol; and naphthol compounds, such as naphthol, alkylnaphthol, alkoxynaphthol, and unsaturated hydrocarbon group-containing naphthol. Among these, styrene is preferred. Specific examples of the terpene-aromatic compound resin include terpene-styrene resin and terpene-phenol resin.
[0122] The dicyclopentadiene-based resin refers to a resin obtained by polymerizing dicyclopentadiene using a Friedel-Crafts catalyst such as AlCl3 or BF3.
[0123] The hydrogenated resin preferably contains a terpene-derived moiety. When the hydrogenated resin contains a terpene-derived moiety, the compatibility between the hydrogenated resin and the isoprene-skeleton rubber is improved, and the compatibility between the hydrogenated resin and the rubber component is also improved, thereby further improving the wet grip performance and fuel economy of the tire. In the terpene-derived moiety, the terpene-derived double bond can be hydrogenated.
[0124] The hydrogenated resin preferably further contains a moiety derived from styrene. When the hydrogenated resin contains a moiety derived from styrene, the compatibility between the hydrogenated resin and the modified styrene-butadiene rubber is improved, and the compatibility between the hydrogenated resin and the rubber component is also improved, thereby further improving the wet grip performance and fuel economy of the tire. In the moiety derived from styrene, the benzene ring derived from styrene may be hydrogenated to a cyclohexane ring or the like.
[0125] From the viewpoints of increasing the compatibility between the rubber component and the hydrogenated resin, further improving the wet grip performance of a tire using the rubber composition, and further reducing the rolling resistance, the hydrogenated resin is preferably at least one selected from the group consisting of hydrogenated C5 resins, hydrogenated C5-C9 resins, hydrogenated terpene resins, hydrogenated terpene-aromatic compound resins, and hydrogenated dicyclopentadiene resins (hydrogenated DCPD resins), more preferably at least one selected from the group consisting of hydrogenated terpene resins and hydrogenated terpene-aromatic compound resins, and particularly preferably a hydrogenated styrene-terpene resin.
[0126] (silica) The rubber composition for a tire of the present invention contains silica, which contributes to improving the wet grip performance and fuel economy of a tire to which the rubber composition is applied. The silica has a nitrogen adsorption specific surface area (BET method) of 100 m 2 / g or more 330m 2 The nitrogen adsorption specific surface area (BET method) of silica is preferably less than 100 m 2 When the silica has a nitrogen adsorption specific surface area (BET method) of 330 m / g or more, the tire to which the rubber composition is applied can be sufficiently reinforced, and the rolling resistance of the tire can be further reduced. 2 When the modulus of elasticity of the rubber composition is less than 1 / g, the rubber composition does not become too high, and the wet grip performance of a tire using the rubber composition is further improved. From the viewpoint of further reducing the rolling resistance and further improving the wear resistance of a tire, the nitrogen adsorption specific surface area (BET method) of silica is 130 m 2 / g or more, and 150m 2 From the viewpoint of further improving the wet grip performance of the tire, the nitrogen adsorption specific surface area (BET method) of the silica is preferably 300 m 2 / g or less, and 2 / g or less is more preferable, and 270m 2 It is more preferable that the saturation coefficient is 1 / g or less.
[0127] Examples of the silica include wet silica (hydrated silicic acid), dry silica (anhydrous silicic acid), calcium silicate, and aluminum silicate. Among these, wet silica is preferred. These silicas may be used alone or in combination of two or more.
[0128] From the viewpoints of improving the mechanical strength and further improving the wear resistance of the tire, the content of silica in the rubber composition is preferably 40 parts by mass or more, more preferably 45 parts by mass or more, more preferably 50 parts by mass or more, and even more preferably 55 parts by mass or more, per 100 parts by mass of the rubber component. Also, from the viewpoint of further improving the wet grip performance of the tire, the content of silica in the rubber composition is preferably 125 parts by mass or less, more preferably 105 parts by mass or less, more preferably 100 parts by mass or less, and even more preferably 95 parts by mass or less, per 100 parts by mass of the rubber component.
[0129] (carbon black) The rubber composition for a tire of the present invention contains carbon black, which reinforces the rubber composition and can improve the abrasion resistance of the rubber composition. The carbon black is not particularly limited, and examples thereof include GPF, FEF, HAF, ISAF, and SAF grade carbon black. These carbon blacks may be used alone or in combination of two or more.
[0130] From the viewpoint of improving the wear resistance of the rubber composition and a tire using the same, the content of carbon black in the rubber composition is preferably 1 part by mass or more, more preferably 3 parts by mass or more, and even more preferably 5 parts by mass or more, per 100 parts by mass of the rubber component. Also, from the viewpoint of workability of the rubber composition, the content of carbon black in the rubber composition is preferably 20 parts by mass or less, more preferably 15 parts by mass or less, per 100 parts by mass of the rubber component.
[0131] The proportion of silica in the total amount of the silica and the carbon black is 50% by mass or more and less than 100% by mass. When the proportion of silica is 50% by mass or more, the mechanical strength of a tire using the rubber composition is improved and the rolling resistance can be further reduced. The proportion of silica in the total amount of the silica and the carbon black is preferably 85% by mass or more and less than 100% by mass. When the proportion of silica is 85% by mass or more, the mechanical strength of a tire using the rubber composition is improved, and the rolling resistance can be further reduced.
[0132] (others) The rubber composition for a tire of the present invention may contain the above-mentioned rubber component, hydrogenated resin, silica, and carbon black, as well as various components commonly used in the rubber industry, as needed, such as fillers other than silica and carbon black, silane coupling agents, antioxidants, waxes, softeners, processing aids, stearic acid, zinc oxide (zinc oxide), vulcanization accelerators, vulcanizing agents, etc. Commercially available products can be suitably used as these compounding ingredients.
[0133] In order to improve the effect of the silica, the rubber composition for a tire of the present invention preferably contains a silane coupling agent. Examples of the silane coupling agent include bis(3-triethoxysilylpropyl)tetrasulfide, bis(3-triethoxysilylpropyl)trisulfide, bis(3-triethoxysilylpropyl)disulfide, bis(2-triethoxysilylethyl)tetrasulfide, bis(3-trimethoxysilylpropyl)tetrasulfide, bis(2-trimethoxysilylethyl)tetrasulfide, 3-mercaptopropyltrimethoxysilane, 3-mercaptopropyltriethoxysilane, 2-mercaptoethyltrimethoxysilane, 2-mercaptoethyltriethoxysilane, 3-trimethoxysilylpropyl-N,N-dimethylthiocarbamoyltetrasulfide, 3-triethoxysilylpropyl-N,N-dimethylthiocarbamoyltetrasulfide, and 3-triethoxysilylpropyl-N,N-dimethylthiocarbamoyltetrasulfide. Examples of the silane coupling agent include N-dimethylthiocarbamoyl tetrasulfide, 2-triethoxysilylethyl-N,N-dimethylthiocarbamoyl tetrasulfide, 3-trimethoxysilylpropyl benzothiazolyl tetrasulfide, 3-triethoxysilylpropyl benzothiazolyl tetrasulfide, 3-triethoxysilylpropyl methacrylate monosulfide, 3-trimethoxysilylpropyl methacrylate monosulfide, bis(3-diethoxymethylsilylpropyl)tetrasulfide, 3-mercaptopropyldimethoxymethylsilane, dimethoxymethylsilylpropyl-N,N-dimethylthiocarbamoyl tetrasulfide, and dimethoxymethylsilylpropyl benzothiazolyl tetrasulfide. The content of the silane coupling agent is preferably in the range of 2 to 20 parts by mass, more preferably in the range of 5 to 15 parts by mass, per 100 parts by mass of the silica.
[0134] Examples of the antioxidant include N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine (6C), 2,2,4-trimethyl-1,2-dihydroquinoline polymer (TMDQ), 6-ethoxy-2,2,4-trimethyl-1,2-dihydroquinoline (AW), N,N'-diphenyl-p-phenylenediamine (DPPD), etc. The content of the antioxidant is not particularly limited, and is preferably in the range of 0.1 to 5 parts by mass, more preferably 1 to 4 parts by mass, per 100 parts by mass of the rubber component.
[0135] Examples of the wax include paraffin wax, microcrystalline wax, etc. The content of the wax is not particularly limited, but is preferably in the range of 0.1 to 5 parts by mass, more preferably 1 to 4 parts by mass, per 100 parts by mass of the rubber component.
[0136] The content of the zinc oxide (zinc white) is not particularly limited, and is preferably in the range of 0.1 to 10 parts by mass, and more preferably 1 to 8 parts by mass, per 100 parts by mass of the rubber component.
[0137] Examples of the vulcanization accelerator include sulfenamide vulcanization accelerators, guanidine vulcanization accelerators, thiazole vulcanization accelerators, thiuram vulcanization accelerators, and dithiocarbamate vulcanization accelerators. These vulcanization accelerators may be used alone or in combination of two or more. The content of the vulcanization accelerator is not particularly limited, and is preferably in the range of 0.1 to 5 parts by mass, more preferably 0.2 to 4 parts by mass, per 100 parts by mass of the rubber component.
[0138] The vulcanizing agent may be sulfur, etc. The content of the vulcanizing agent is preferably in the range of 0.1 to 10 parts by mass, more preferably 1 to 4 parts by mass, in terms of sulfur content, per 100 parts by mass of the rubber component.
[0139] (Method of manufacturing rubber composition) The method for producing the rubber composition is not particularly limited, but the rubber composition can be produced, for example, by blending the above-mentioned rubber component, hydrogenated resin, silica, and carbon black with various components appropriately selected as necessary, followed by kneading, heating, extrusion, etc. The obtained rubber composition can be vulcanized to produce a vulcanized rubber.
[0140] The conditions for the kneading are not particularly limited, and various conditions such as the input volume of the kneading device, the rotation speed of the rotor, the ram pressure, the kneading temperature, the kneading time, the type of kneading device, etc. can be appropriately selected depending on the purpose. Examples of the kneading device include a Banbury mixer, an intermix, a kneader, a roll, etc. that are usually used for kneading rubber compositions.
[0141] The conditions for the heat-in are not particularly limited, and various conditions such as the heat-in temperature, heat-in time, and heat-in device can be appropriately selected depending on the purpose. Examples of the heat-in device include a heat-in roll mill typically used for heat-in of rubber compositions.
[0142] The extrusion conditions are not particularly limited, and various conditions such as extrusion time, extrusion speed, extrusion device, and extrusion temperature can be appropriately selected depending on the purpose. Examples of the extrusion device include an extruder typically used for extruding rubber compositions. The extrusion temperature can be appropriately determined.
[0143] The vulcanization apparatus, method, conditions, etc. are not particularly limited and can be appropriately selected depending on the purpose. Examples of vulcanization apparatus include a molding vulcanizer using a mold used for vulcanizing rubber compositions. The vulcanization temperature is, for example, about 100 to 190°C.
[0144] <Tread rubber> The tread rubber of the present invention is characterized by comprising the above-mentioned rubber composition for a tire. Since the tread rubber of the present invention comprises the above-mentioned rubber composition for a tire, by applying the tread rubber of the present invention to a tire, it is possible to achieve a high level of both wet grip performance and fuel economy of the tire. The tread rubber of the present invention may be applied to new tires or retread tires.
[0145] <Tires> A tire according to the present invention is characterized by comprising the above-mentioned tread rubber, and the tire according to the present invention achieves both high wet grip performance and low fuel consumption performance.
[0146] Depending on the type of tire to be applied, the tire of the present invention may be obtained by molding an unvulcanized rubber composition and then vulcanizing it, or by molding a semi-vulcanized rubber that has been subjected to a pre-vulcanization step or the like and then further vulcanizing it. The tire of the present invention is preferably a pneumatic tire, and the gas to be filled into the pneumatic tire may be normal air or air with an adjusted oxygen partial pressure, or an inert gas such as nitrogen, argon, or helium. [Example]
[0147] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to the following examples in any way.
[0148] <Analysis method for rubber components> The amount of bound styrene in the modified styrene-butadiene rubber was measured by the following method.
[0149] (1) Bound styrene content The synthesized modified styrene-butadiene rubber was used as a sample. 100 mg of the sample was diluted to 100 mL with chloroform and dissolved to prepare a measurement sample. The amount of bound styrene (mass%) relative to 100 mass% of the sample was measured based on the amount of absorption of ultraviolet light by the phenyl group of styrene (near 254 nm). A Shimadzu UV-2450 spectrophotometer was used as the measurement device.
[0150] <Analysis method for hydrogenated resin> The softening point, weight average molecular weight and number average molecular weight of the hydrogenated resin were measured by the following methods.
[0151] (2) Softening point The softening point (Ts) of the hydrogenated resin was measured in accordance with JIS-K2207-1996 (ring and ball method).
[0152] (3) Weight-average molecular weight and number-average molecular weight The average molecular weight of the hydrogenated resin was measured by gel permeation chromatography (GPC) under the following conditions, and the weight average molecular weight and number average molecular weight in terms of polystyrene were calculated. Column temperature: 40℃ ·Injection volume: 50μL Carrier and flow rate: Tetrahydrofuran 0.6 mL / min Sample preparation: Dissolve approximately 2.5 mg of resin component in 10 mL of tetrahydrofuran.
[0153] <Preparation of Rubber Composition> The rubber compositions of the Examples and Comparative Examples were prepared by blending and kneading the components according to the formulations shown in Table 1. The kneading was carried out in two stages: a first kneading stage and a second kneading stage. The types of resins used are shown in Tables 2 and 3.
[0154] [Table 1]
[0155] *1 NR: Natural rubber, TSR#20 *2 Modified SBR: Modified styrene-butadiene rubber synthesized using the following method, bound styrene content = 10% by mass *3 Carbon black: Tokai Carbon Co., Ltd., product name "Seat 7HM" *4 Silica: Tosoh Silica Corporation, product name "Nipsil AQ" *5 Resin: The types of resin used are shown in Tables 2 and 3. *6 Anti-aging agent: Ouchi Shinko Chemical Industry Co., Ltd., product name "Nocrac 6C" *7 Oil: Super Oil Y22, manufactured by ENEOS Corporation *8 Wax: Product name "Ozoace 0701" manufactured by Nippon Seiro Co., Ltd. *9 Silane coupling agent: Evonik Degussa, product name "Si75" *10 Vulcanization accelerator A: Sansera CM-G, manufactured by Sanshin Chemical Industry Co., Ltd. *11 Vulcanization accelerator B: Sansera DM-TG, manufactured by Sanshin Chemical Industry Co., Ltd.
[0156] <Synthesis method of modified SBR(*2)> A cyclohexane solution of 1,3-butadiene and a cyclohexane solution of styrene were added to a dried, nitrogen-purged 800 mL pressure-resistant glass vessel so that the total weight of the mixture was 67.5 g of 1,3-butadiene and 7.5 g of styrene. 0.6 mmol of 2,2-ditetrahydrofurylpropane and 0.8 mmol of n-butyllithium were then added, and polymerization was carried out at 50 °C for 1.5 hours. At this point, the polymerization reaction system reached a polymerization conversion rate of nearly 100%, and 0.72 mmol of N,N-bis(trimethylsilyl)-3-[diethoxy(methyl)silyl]propylamine was added as a modifier, and the modification reaction was carried out at 50 °C for 30 minutes. The reaction was then terminated by adding 2 mL of a 5% by weight solution of 2,6-di-t-butyl-p-cresol (BHT) in isopropanol. The mixture was then dried in the usual manner to obtain modified SBR. The microstructure of the resulting modified SBR was measured, and the amount of bound styrene was found to be 10% by mass.
[0157] <Production and evaluation of vulcanized rubber> The rubber compositions obtained in the Examples and Comparative Examples were vulcanized at 145°C for 33 minutes to obtain vulcanized rubber test pieces. The vulcanized rubber test pieces were evaluated for wet grip performance and fuel economy using the following methods. The results are shown in Tables 2 and 3.
[0158] (4) Wet grip performance The loss tangent (tanδ) of the test specimen was measured at a temperature of 0°C using a spectrometer manufactured by Ueshima Seisakusho Co., Ltd. The evaluation results are expressed as an index in Table 2, with the tanδ of Comparative Example 1 set to 100, and in Table 3, with the tanδ of Comparative Example 2 set to 100. A larger index value indicates a larger tanδ and better wet grip performance.
[0159] (5) Low fuel consumption The loss tangent (tanδ) of the test specimen was measured using a viscoelasticity measuring device under conditions of a temperature of 30°C, a strain of 10%, and a frequency of 10 Hz. In Table 2, the evaluation results are expressed as an index, with the reciprocal of tanδ of Comparative Example 1 set to 100, and in Table 3, the reciprocal of tanδ of Comparative Example 2 set to 100. A larger index value indicates a smaller tanδ and better fuel economy.
[0160] [Table 2]
[0161] [Table 3]
[0162] *12 Hydrogenated C9 resin: Arakawa Chemical Industries, Ltd., product name "Alcon M135", softening point (Ts) = 135°C, weight average molecular weight (Mw) = 1613g / mol, number average molecular weight (Mn) = 972g / mol, alicyclic saturated hydrocarbon resin *13 Hydrogenated styrene-terpene resin: Yasuhara Chemical Co., Ltd., product name "Clearon M125", softening point (Ts) = 125°C, weight average molecular weight (Mw) = 1363g / mol, number average molecular weight (Mn) = 863g / mol *14 Hydrogenated terpene resin: Yasuhara Chemical Co., Ltd., product name "Clearon P125", softening point (Ts) = 125°C, weight average molecular weight (Mw) = 1307g / mol, number average molecular weight (Mn) = 622g / mol
[0163] It can be seen from Tables 2 and 3 that the rubber compositions of the examples according to the present invention have a high level of balance between wet grip performance and fuel economy.
Claims
1. a rubber component including an isoprene skeleton rubber and a modified styrene-butadiene rubber having a bound styrene content of 15% by mass or less; a hydrogenated resin having a softening point higher than 100°C and a weight average molecular weight (g / mol) in terms of polystyrene of more than 1200 and not more than 1600; Silica and carbon black, the content of the isoprene skeleton rubber is 70 to 80 parts by mass based on 100 parts by mass of the rubber component, the content of the modified styrene-butadiene rubber is 20 to 30 parts by mass based on 100 parts by mass of the rubber component, A rubber composition for tires, characterized in that the proportion of silica in the total amount of the silica and the carbon black is 50 mass % or more but less than 100 mass %.
2. The rubber composition for a tire according to claim 1 , wherein the hydrogenated resin contains a moiety derived from a terpene.
3. The rubber composition for a tire according to claim 2 , wherein the hydrogenated resin further contains a moiety derived from styrene.
4. The rubber composition for a tire according to any one of claims 1 to 3, wherein the proportion of silica in the total amount of the silica and the carbon black is 85% by mass or more and less than 100% by mass.
5. A tread rubber comprising the rubber composition for tires according to any one of claims 1 to 4.
6. A tire comprising a tread rubber according to claim 5.
Citation Information
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