Rubber composition and tire

A rubber composition with ionically bonded rubbers and specific modulus/tangent ratios addresses the challenge of maintaining consistent grip on varying road conditions, achieving balanced dry and wet performance by adjusting properties in response to wet and dry surfaces.

JP7756582B2Active Publication Date: 2025-10-20SUMITOMO RUBBER INDUSTRIES LTD
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Patent Information

Application Number
JP2022034508
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-07
Publication Date
2025-10-20
Estimated Expiration
2042-03-07

AI Technical Summary

Technical Problem

Conventional rubber compositions for tires face challenges in maintaining consistent grip performance on both dry and wet road surfaces due to changes in road conditions, with wet performance improvements often compromising dry performance and vice versa.

Method used

A rubber composition that satisfies specific formulas for complex modulus (E*), loss tangent (tan δ), and tensile modulus ratios to ensure reversible changes in response to wet and dry conditions, utilizing ionically bonded rubbers with methacrylic acid and metal compounds to achieve balanced grip performance.

Benefits of technology

The composition maintains high levels of both dry and wet grip performance by selectively adjusting elastic modulus and loss tangent in response to changing road conditions, reducing performance fluctuations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a rubber composition and a tire capable of suppressing performance change when a road surface changes, for example from a dry road surface to a wet road surface or from a wet road surface to a dry road surface.SOLUTION: The present invention relates to a rubber composition, wherein E*(MPa) when a road surface is wet with water, E*(MPa) when the road surface is dry, tanδ when the road surface is wet with water, tanδ when the road surface is dry, a 40% modulus (MPa) before a tensile test at 70°C and a 40% modulus (MPa) after the tensile test at 70°C, satisfy formulas (1) to (3): (1) E* when the road surface is wet with water / E* when the road surface is dry≤0.90; (2) tanδ when the road surface is wet with water / tanδ when the road surface is dry>1.00; and (3) the 40% modulus after the tensile test at 70°C / the 40% modulus before the tensile test at 70°C≥0.45. (In the formulas, E* and tanδ are the complex modulus and the loss tangent after 30 minutes from the start of measurement, when measured under the following conditions: temperature of 30°C, initial strain of 10%, dynamic strain of 1%, frequency of 10 Hz, elongation mode, and measurement time of 30 minutes. The 40% modulus after the tensile test at 70°C is the tensile strength at 40% elongation as measured again in accordance with JIS K6251:2010 under an atmosphere of 70°C, and releases stress after stretch up to 50% under an atmosphere of 70°C. The 40% modulus before the tensile test at 70°C is the tensile strength at 40% elongation as measured in accordance with JIS K6251:2010 prior to performing the tensile test at 70°C)SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to a rubber composition and a tire using the same. [Background technology]

[0002] The addition of silica to tires has been proposed as a way to improve wet tire performance, but improving wet performance (performance on wet roads) tends to reduce dry performance (performance on dry roads), and there has been a desire to achieve both. (See, for example, Patent Document 1) . [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-285524 Summary of the Invention [Problem to be solved by the invention]

[0004] The present disclosure aims to solve the above-mentioned problems and provide a rubber composition and a tire that can suppress changes in performance when the road surface changes, such as from a dry road surface to a wet road surface or from a wet road surface to a dry road surface. [Means for solving the problem]

[0005] Technological improvements to silica-based tread rubber have resulted in significant advances in tire wet grip performance, but performance changes when the road surface changes from dry to wet, or from wet to dry, remain a technical challenge. Specifically, conventional rubber compositions tend to harden when cooled by water on the road surface on wet roads, reducing the contact area with the road surface, resulting in poorer wet grip performance compared to dry grip performance. One method for improving wet grip performance is to add a softener to make the rubber flexible, but this has the drawback of worsening dry grip performance when the rubber is softened.

[0006] To overcome this drawback, the applicant proposed a tread rubber that uses an ionically bonded rubber made of methacrylic acid and a metal compound, etc., in the tread, which changes its physical properties in response to water, decreasing its elastic modulus and increasing its tan δ, which are advantageous for wet performance. This allows for both high levels of dry and wet performance to be achieved. However, the above method is still not sufficient to achieve compatibility, and a new problem was discovered: when repeatedly driving on dry and wet roads, the grip performance on dry roads deteriorates depending on the driving history.

[0007] In response to these new challenges, the present disclosure has been completed based on the discovery that by using a rubber composition that satisfies formula (3) in addition to formulas (1) and (2) described below, it is possible to suppress changes in performance when the road surface changes, such as from a dry road surface to a wet road surface, or from a wet road surface to a dry road surface.

[0008] The present disclosure relates to a rubber composition whose E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before a tensile test at 70°C, and 40% modulus (MPa) after a tensile test at 70°C satisfy the following formulas (1) to (3): (1) E* when wet / E* when dry ≦ 0.90 (2) Tan δ when wet / tan δ when dry > 1.00 (3) 40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C ≥ 0.45 (In the formula, E* and tanδ are the complex modulus and loss tangent measured 30 minutes after the start of measurement under the following conditions: temperature 30°C, initial strain 10%, dynamic strain 1%, frequency 10 Hz, extension mode, and measurement time 30 minutes.) The 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 in an atmosphere at 70°C after elongation to 50% in an atmosphere at 70°C and then the stress is released. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. [Effects of the Invention]

[0009] According to the present disclosure, the rubber composition satisfies the above formulas (1) to (3), and therefore performance changes can be suppressed when the road surface changes, such as from a dry road surface to a wet road surface, or from a wet road surface to a dry road surface. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a cross-sectional view taken along a meridian line showing a portion of a pneumatic tire according to an embodiment of the present disclosure. [Figure 2] 1 is a cross-sectional view of a tire tread portion cut along a plane including the tire axis. DETAILED DESCRIPTION OF THE INVENTION

[0011] <Rubber composition> The present disclosure provides a rubber composition that satisfies the above formulas (1) to (3), which can suppress performance changes when the road surface changes, such as from dry to wet or from wet to dry, and can maintain good wet and dry performance even when the road surface changes during driving.

[0012] The mechanism by which this effect is obtained is not clear, but is presumed to be as follows. In order to suppress the deterioration of grip performance when the road surface changes from dry to wet, it is thought that the elastic modulus must be selectively reduced by water, and tan δ must be increased. To achieve this, it is important to satisfy the following two conditions: (1) "E* when wet / E* when dry ≤ 0.90" and (2) "tan δ when wet / tan δ when dry > 1.10." To achieve this, it is believed that at least one diene rubber in which some or all of the crosslinks are ionic is useful. When ionic bonds are included in the crosslinks of a polymer component, the reversibility of the non-covalent ionic bond allows the modulus of elasticity to decrease only when wet, and the relaxation increases tan δ. Furthermore, because ionic bonds are the strongest of all non-covalent bonds, they maintain their strength when dry. On the other hand, a rubber composition that can be softened by water and improve heat buildup as described above has a property in the rubber that allows bonds, such as ionic bonds, to be reversibly broken by water. When such a property is present, the entire rubber composition tends to soften due to heat and deformation when running on a road surface, so when the road surface changes from wet to dry, the rubber composition is affected by its history and remains in a softened state, making it difficult to obtain sufficient grip performance when running on a dry road surface. Therefore, by further satisfying formula (3) "40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C ≥ 0.45" and increasing the modulus after the rubber has been subjected to a deformation history, it is thought that it will be possible to reduce changes in performance due to driving history and obtain good grip performance even when repeatedly switching from wet to dry road surfaces. It is believed that the above mechanism can suppress performance changes when the road surface changes, such as from dry to wet or from wet to dry.

[0013] In this way, the rubber composition is configured so that E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before tensile test at 70°C, and 40% modulus (MPa) after tensile test at 70°C satisfy formula (1) "E* when wet / E* when dry ≦ 0.90", formula (2) "tan δ when wet / tan δ when dry > 1.00", and formula (3) "40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C ≧ 0.45", thereby solving the problem (objective) of suppressing changes in performance when road surfaces change, such as from dry to wet or from wet to dry. In other words, the parameters of formula (1) "E* when wet / E* when dry≦0.90", formula (2) "tan δ when wet / tan δ when dry>1.00", and formula (3) "40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C≧0.45" do not define the problem (purpose). The problem of this application is to suppress changes in performance when the road surface changes, such as from dry to wet, or from wet to dry, and the tire is configured to satisfy these parameters as a means to achieve this.

[0014] In this specification, the complex modulus (E*), loss tangent (tanδ), 40% modulus (MPa) before tensile testing at 70°C, and 40% modulus (MPa) after tensile testing at 70°C refer to the E*, tanδ, and 40% modulus of the rubber composition after vulcanization. E* and tanδ are values ​​obtained by conducting a viscoelasticity test on the rubber composition after vulcanization. The 40% modulus is the modulus value at 40% strain obtained for the rubber composition after vulcanization in accordance with JIS K6251:2010.

[0015] The rubber composition satisfies the formulas (1) and (2), and for example, the complex modulus (E*) and loss tangent (tanδ) change reversibly with water. In this specification, "the complex modulus (E*) and loss tangent (tanδ) change reversibly with water" means that the E* and tanδ of the rubber composition (after vulcanization) reversibly increase or decrease with the presence of water. Note that, for example, when changing from dry to wet to dry, it is sufficient that E* and tanδ change reversibly. The E* and tanδ do not need to be the same in the previous drying state and the subsequent drying state, or they may be the same in the previous drying state and the subsequent drying state.

[0016] In this specification, E* and tanδ in a dry state refer to the E* and tanδ of a rubber composition in a dry state, and specifically refer to the E* and tanδ of a rubber composition dried by the method described in the examples. In this specification, E* and tanδ when wet with water refer to the E* and tanδ of a rubber composition in a state wet with water, and specifically refer to the E* and tanδ of a rubber composition wet with water by the method described in the examples.

[0017] In this specification, E* and tanδ of a rubber composition are E* and tanδ measured 30 minutes after the start of measurement under the conditions of a temperature of 30°C, an initial strain of 10%, a dynamic strain of 1%, a frequency of 10 Hz, an extension mode, and a measurement time of 30 minutes.

[0018] In this specification, the 40% modulus after a tensile test at 70°C refers to the modulus (tensile stress) at 40% elongation measured by stretching a rubber composition (test piece) to 50% of the elongation of the rubber composition in a 70°C atmosphere, releasing (removing) the stress, and then measuring the stress-released rubber composition again in a 70°C atmosphere in accordance with JIS K6251:2010. The 40% modulus before a tensile test at 70°C refers to the modulus (tensile stress) at 40% elongation measured by stretching a rubber composition (test piece) to 50% of the elongation of the rubber composition in a 70°C atmosphere in accordance with JIS K6251:2010 before conducting the tensile test at 70°C. Specifically, the 40% modulus before a tensile test at 70°C refers to the modulus (tensile stress) at 40% elongation before and after conducting a tensile test at 70°C by the method described in the Examples.

[0019] In this specification, the 40% modulus of a rubber composition is the stress (MPa) at 40% elongation measured by conducting a tensile test on a No. 7 dumbbell test piece at 200 mm / min in accordance with JIS K6251:2010 "Vulcanized rubber and thermoplastic rubber - Determination of tensile properties," and the 40% modulus after a tensile test at 70°C is the value measured at a temperature of 70°C, and the 40% modulus before a tensile test at 70°C is the value measured at a temperature of 70°C.

[0020] The rubber composition satisfies the following formula (1). (1) E* when wet / E* when dry ≦ 0.90 (In the formula, E* is the complex modulus (MPa) 30 minutes after the start of measurement, measured under the conditions of a temperature of 30°C, an initial strain of 10%, a dynamic strain of 1%, a frequency of 10 Hz, an extension mode, and a measurement time of 30 minutes.) The ratio E* when wet / E* when dry is preferably 0.88 or less, more preferably 0.86 or less, even more preferably 0.85 or less, and particularly preferably 0.84 or less. There are no particular restrictions on the lower limit of E* when wet / E* when dry, but it is preferably 0.10 or more, more preferably 0.30 or more, even more preferably 0.50 or more, and particularly preferably 0.60 or more. Within the above range, the effects can be suitably obtained.

[0021] The rubber composition has an E* value in a dry state of preferably 2.5 MPa or more, more preferably 5.0 MPa or more, even more preferably 7.0 MPa or more, particularly preferably 8.0 MPa or more, and most preferably 9.0 MPa or more. There is no particular upper limit to the E* value in a dry state, but it is preferably 20.0 MPa or less, more preferably 15.0 MPa or less, even more preferably 13.0 MPa or less, and particularly preferably 12.0 MPa or less. Within the above range, the effects can be suitably obtained.

[0022] The rubber composition has an E* value when wet with water of preferably 2.2 MPa or more, more preferably 4.5 MPa or more, even more preferably 6.0 MPa or more, particularly preferably 7.0 MPa or more, and most preferably 8.0 MPa or more. There is no particular upper limit to E* value when dry, but it is preferably 18.0 MPa or less, more preferably 13.0 MPa or less, even more preferably 11.0 MPa or less, and particularly preferably 10.0 MPa or less. Within the above range, the effects can be suitably obtained.

[0023] The rubber composition satisfies the following formula (2). (2) Tan δ when wet / tan δ when dry > 1.00 (In the formula, tanδ is the loss tangent 30 minutes after the start of measurement, measured under the conditions of a temperature of 30°C, an initial strain of 10%, a dynamic strain of 1%, a frequency of 10 Hz, an extension mode, and a measurement time of 30 minutes.) The ratio of wet tan δ to dry tan δ is preferably 1.13 or more, more preferably 1.14 or more, even more preferably 1.15 or more, and particularly preferably 1.16 or more. There are no particular limitations on the upper limit of wet tan δ to dry tan δ, but it is preferably 1.80 or less, more preferably 1.70 or less, even more preferably 1.65 or less, and particularly preferably 1.60 or less. Within the above range, the effects can be suitably obtained.

[0024] The rubber composition has a dry tan δ of preferably 0.15 or more, more preferably 0.21 or more, even more preferably 0.23 or more, and particularly preferably 0.26 or more. There is no particular upper limit to the dry tan δ, but it is preferably 0.40 or less, more preferably 0.38 or less, even more preferably 0.36 or less, and particularly preferably 0.34 or less. Within the above range, the effects can be suitably obtained.

[0025] The rubber composition has a tan δ when wet with water of preferably 0.16 or more, more preferably 0.21 or more, even more preferably 0.28 or more, and particularly preferably 0.30 or more. There is no particular upper limit to the tan δ when wet with water, but it is preferably 0.41 or less, more preferably 0.39 or less, even more preferably 0.37 or less, and particularly preferably 0.35 or less. Within the above range, the effects can be suitably obtained.

[0026] The reversible E* change and tanδ change of the rubber composition due to water, which are represented by the formulas (1) and (2), can be calculated by, for example, combining a modified rubber having in its molecule at least one selected from the group consisting of carboxylic acids, sulfonic acids, and salts thereof, which will be described later, with a modified rubber having in its molecule at least one selected from the group consisting of lithium carbonate, sodium carbonate, potassium carbonate, rubidium carbonate, cesium carbonate, beryllium carbonate, magnesium carbonate, calcium carbonate, strontium carbonate, barium carbonate, lithium acetate, sodium acetate, potassium acetate, rubidium acetate, cesium acetate, beryllium acetate, magnesium acetate, This can be achieved by incorporating at least one alkali metal salt or alkaline earth metal salt selected from the group consisting of calcium acetate, strontium acetate, barium acetate, lithium phenoxide, sodium phenoxide, potassium phenoxide, rubidium phenoxide, cesium phenoxide, beryllium diphenoxide, magnesium diphenoxide, calcium diphenoxide, strontium diphenoxide, and barium diphenoxide, thereby introducing an ionic bond that is reversibly changed by water into the rubber composition. Specifically, for example, by combining a modified rubber having at least one selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof, such as carboxylic acid-modified SBR, with an alkali metal salt or alkaline earth metal salt, such as lithium acetate, the rubber composition can achieve the reversible changes in E* and tan δ due to water, as represented by the formulas (1) and (2). This is thought to be because, by combining the modified rubber and the alkali metal salt or alkaline earth metal salt, an ionic bond is formed between the anion derived from the carboxylic acid, sulfonic acid, or salt thereof and the cation derived from the alkali metal salt or alkaline earth metal salt. The ionic bond is cleaved by the addition of water, and recombined by drying the water, resulting in a decrease in E* and / or an increase in tan δ when wet, and an increase in E* and / or a decrease in tan δ when dry.

[0027] The dry E* can be adjusted by the type and amount of chemicals (especially rubber components, fillers, softeners such as oils) compounded into the rubber composition. For example, the dry E* tends to increase by reducing the amount of softener or increasing the amount of filler.

[0028] The dry tan δ can be adjusted by the type and amount of chemicals (particularly rubber components, fillers, softeners, resins, sulfur, vulcanization accelerators, and silane coupling agents) compounded into the rubber composition. For example, the dry tan δ tends to increase when a softener (e.g., resin) that is poorly compatible with the rubber component is used, when an unmodified rubber is used, when the amount of filler is increased, when oil as a plasticizer is increased, when sulfur is reduced, when vulcanization accelerators are reduced, or when silane coupling agents are reduced.

[0029] Furthermore, the dry E* and tanδ can be adjusted by, for example, the acidic functional group content of the modified rubber or the content of the alkali metal salt or alkaline earth metal salt (in other words, the metal content derived from the alkali metal salt or alkaline earth metal salt). Specifically, increasing the acidic functional group content of the modified rubber or the content of the alkali metal salt or alkaline earth metal salt tends to increase the dry E* and tanδ.

[0030] Regarding E* and tan δ when wet, for example, by forming a rubber composition in which the modified rubber and the alkali metal salt or alkaline earth metal salt are partially or entirely crosslinked by ionic bonds, the E* when wet can be lowered and / or the tan δ can be increased compared to the dry state, making it possible to adjust the E* and tan δ when wet and when dry. Specifically, by using the modified rubber in combination with the alkali metal salt or alkaline earth metal salt, a rubber composition crosslinked by ionic bonds can be formed, which can lower the E* and / or increase the tan δ when wet compared to the dry state. Furthermore, the E* and tan δ when wet can be adjusted by the type and amount of chemicals blended into the rubber composition. For example, by using the same method as the above-mentioned method for adjusting the E* when dry and the tan δ when dry, similar trends can be obtained for the E* and tan δ when wet.

[0031] Specifically, by adjusting the dry E* and tanδ to within the desired ranges, and then using a modified rubber having at least one selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule in combination with the alkali metal salt or alkaline earth metal salt, the rubber composition can achieve reversible changes in E* and tanδ due to water, as represented by the formulas (1) and (2).

[0032] The rubber composition satisfies the following formula (3). (3) 40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C ≥ 0.45 (The 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after stretching to 50% in a 70°C atmosphere and then releasing the stress. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. The 40% modulus after a tensile test at 70°C / 40% modulus before a tensile test at 70°C is preferably 0.50 or more, more preferably 0.53 or more, even more preferably 0.56 or more, and particularly preferably 0.58 or more. There are no particular limitations on the upper limit of the 40% modulus after a tensile test at 70°C / 40% modulus before a tensile test at 70°C, but it is preferably 0.85 or less, more preferably 0.80 or less, even more preferably 0.75 or less, and particularly preferably 0.70 or less. Within the above ranges, the effects can be suitably obtained.

[0033] The rubber composition has a 40% modulus before a tensile test at 70°C of preferably 0.70 MPa or more, more preferably 0.80 MPa or more, even more preferably 0.90 MPa or more, and particularly preferably 1.00 MPa or more. The upper limit is preferably 2.00 MPa or less, more preferably 1.80 MPa or less, and even more preferably 1.60 MPa or less. Within the above range, the effects can be suitably obtained.

[0034] The rubber composition has a 40% modulus after a tensile test at 70°C of preferably 0.40 MPa or more, more preferably 0.50 MPa or more, even more preferably 0.60 MPa or more, and particularly preferably 0.70 MPa or more. The upper limit is preferably 1.40 MPa or less, more preferably 1.20 MPa or less, and even more preferably 1.00 MPa or less. Within the above range, the effects can be suitably obtained.

[0035] The relationship represented by the formula (3) of the rubber composition can be realized by forming a network in the rubber, for example, by increasing the amount of sulfur, increasing the amount of a coupling agent (such as a silane coupling agent), using a mercapto-based silane coupling agent, or increasing the proportion of carbon black in the filler component.

[0036] The 40% modulus before the tensile test at 70°C can be adjusted by the type and amount of chemicals (particularly rubber components, fillers, softeners such as oil, coupling agents, etc.) compounded into the rubber composition. For example, the 40% modulus before the tensile test at 70°C tends to increase by increasing the amount of sulfur, increasing the amount of coupling agent, using a mercapto-silane coupling agent, increasing the amount of filler, or decreasing the amount of plasticizer.

[0037] The 40% modulus after a tensile test at 70°C can be adjusted by the type and amount of chemicals blended into the rubber composition. For example, by using a method similar to that for adjusting the 40% modulus before the tensile test at 70°C described above, a similar tendency can be obtained for the 40% modulus after a tensile test at 70°C.

[0038] When the rubber composition is applied to a tire tread, the rubber composition (sample) used to measure E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before tensile test at 70°C, and 40% modulus (MPa) after tensile test at 70°C is taken from the tread portion of the tire.

[0039] (rubber component) The rubber composition contains, as a rubber component, carboxylic acid (carboxylic acid group (-COOH)), sulfonic acid (sulfonic acid group (-SO3H)), and salts thereof (carboxylic acid ion (-COO - ) and / or sulfonate ions (-SO3 -) and a salt formed from a counter cation thereof) in the molecule. The salt is not particularly limited, and examples thereof include monovalent metal salts such as alkali metal salts (sodium salt, potassium salt, etc.) and divalent metal salts such as alkaline earth metal salts (calcium salt, strontium salt, etc.). Among these, from the viewpoint of obtaining a better effect, a carboxylic acid group is preferred, a (meth)acrylic acid group and a maleic acid group are more preferred, and a methacrylic acid group and a maleic acid group are particularly preferred. Specifically, a suitable example is emulsion-polymerized styrene-butadiene rubber having methacrylic acid in the molecule.

[0040] The modified rubber has at least one ionic functional group selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule, and the content of the ionic functional group in 100% by mass of the rubber (100% by mass of rubber having ionic functional groups in the molecule) is preferably 0.5% by mass or more, more preferably 0.8% by mass or more, and even more preferably 1.0% by mass or more. There is no particular upper limit, but it is preferably 40% by mass or less, more preferably 35% by mass or less. The content of the ionic functional group can be measured by performing NMR measurement and calculating the content (mass %) based on the peak corresponding to the ionic functional group.

[0041] In the rubber composition, the content of the modified rubber in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 20% by mass or more, even more preferably 40% by mass or more, and particularly preferably 50% by mass or more. There is no particular upper limit, but it is preferably 90% by mass or less, more preferably 85% by mass or less, even more preferably 80% by mass or less, and particularly preferably 75% by mass or less. Within the above range, the effects can be suitably obtained.

[0042] From the viewpoint of obtaining the desired effect, the rubber constituting the skeleton of the modified rubber preferably has as its constituent unit at least one monomer selected from the group consisting of styrene, butadiene, and isoprene. Specific examples of such rubbers include isoprene-based rubber, butadiene rubber (BR), styrene-butadiene rubber (SBR), and styrene-isoprene-butadiene rubber (SIBR). The rubber component constituting the skeleton of these modified rubbers may be a single component or a combination of two or more components. Among these, from the viewpoint of obtaining the desired effect, one component of SBR, BR, or isoprene-based rubber is preferred, and one of SBR and BR is more preferred. Furthermore, the modified SBR and modified BR may be used in combination.

[0043] The SBR is not particularly limited, and examples thereof include emulsion-polymerized styrene-butadiene rubber (E-SBR), solution-polymerized styrene-butadiene rubber (S-SBR), etc. These may be used alone or in combination of two or more.

[0044] The styrene content of SBR is preferably 5% by mass or more, more preferably 10% by mass or more, and even more preferably 15% by mass or more. The styrene content is preferably 60% by mass or less, more preferably 40% by mass or less, and even more preferably 30% by mass or less. Within the above range, the effect tends to be more favorable. In this specification, the styrene content of SBR is 1 It is calculated by H-NMR measurement.

[0045] The vinyl content of the SBR is preferably 5% by mass or more, more preferably 10% by mass or more, and even more preferably 15% by mass or more. The vinyl content is preferably 75% by mass or less, and more preferably 70% by mass or less. Within the above range, the effect tends to be more favorable. The vinyl content (amount of 1,2-bonded butadiene units) can be measured by infrared absorption spectroscopy.

[0046] As the SBR, for example, SBR manufactured and sold by Sumitomo Chemical Co., Ltd., JSR Corporation, Asahi Kasei Corporation, Nippon Zeon Co., Ltd., etc. can be used.

[0047] When the rubber composition contains, as the modified rubber, a modified SBR having at least one ionic functional group selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule, the content of the modified SBR in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 20% by mass or more, even more preferably 40% by mass or more, and particularly preferably 50% by mass or more. There is no particular upper limit, but it is preferably 90% by mass or less, more preferably 85% by mass or less, even more preferably 80% by mass or less, and particularly preferably 75% by mass or less. Within the above range, the effects can be preferably obtained.

[0048] The BR is not particularly limited, and examples thereof include high-cis BR with a high cis content, BR containing syndiotactic polybutadiene crystals, and BR synthesized using a rare earth catalyst (rare earth BR). These may be used alone or in combination of two or more. Among these, high-cis BR with a cis content of 90% by mass or more is preferred because it improves wear resistance.

[0049] When the rubber composition contains, as the modified rubber, a modified BR having at least one ionic functional group selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule, the content of the modified BR in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 20% by mass or more, even more preferably 40% by mass or more, and particularly preferably 50% by mass or more. There is no particular upper limit, but it is preferably 90% by mass or less, more preferably 85% by mass or less, even more preferably 80% by mass or less, and particularly preferably 75% by mass or less. Within the above range, the effects can be suitably obtained.

[0050] Examples of isoprene-based rubbers include natural rubber (NR), isoprene rubber (IR), modified NR, modified NR, and modified IR. NRs such as SIR20, RSS#3, and TSR20 are commonly used in the rubber industry. IRs are not particularly limited, and examples of IRs such as IR2200 are commonly used in the rubber industry. Modified NRs include deproteinized natural rubber (DPNR) and highly purified natural rubber (UPNR). Modified NRs include epoxidized natural rubber (ENR), hydrogenated natural rubber (HNR), and grafted natural rubber. Modified IRs include epoxidized isoprene rubber, hydrogenated isoprene rubber, and grafted isoprene rubber. These may be used alone or in combination of two or more.

[0051] When the rubber composition contains a modified isoprene-based rubber having at least one ionic functional group selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule as the modified rubber, the content of the modified isoprene-based rubber in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 10% by mass or more, even more preferably 15% by mass or more, and particularly preferably 20% by mass or more. There is no particular upper limit, but it is preferably 80% by mass or less, more preferably 50% by mass or less, even more preferably 40% by mass or less, and particularly preferably 35% by mass or less. Within the above range, the effects can be preferably obtained.

[0052] The rubber composition may contain a rubber component other than the modified rubber. The other rubber component preferably contains, for example, at least one selected from the group consisting of SBR, BR, and isoprene-based rubber. The SBR, BR, and isoprene-based rubber may be a modified rubber other than the modified rubber or an unmodified rubber. However, unmodified SBR, unmodified BR, and unmodified isoprene-based rubber are preferred, and unmodified SBR and unmodified BR are more preferred.

[0053] When the rubber composition contains a rubber component other than the modified rubber, the content of the other rubber component in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 10% by mass or more, even more preferably 15% by mass or more, and particularly preferably 20% by mass or more. There is no particular upper limit, but it is preferably 80% by mass or less, more preferably 50% by mass or less, even more preferably 40% by mass or less, and particularly preferably 35% by mass or less. Within the above ranges, the effects can be preferably obtained. Note that when an unmodified isoprene-based rubber or unmodified BR is used as the other rubber component, the content of the unmodified isoprene-based rubber and the content of the unmodified BR are preferably in the same ranges.

[0054] Examples of the other rubber component include rubbers that can be used as the skeleton of the modified rubber (isoprene-based rubber, BR, SBR, SIBR, etc.). The other rubber component can be either an unmodified rubber or a modified rubber other than the modified rubber. These may be used alone or in combination of two or more.

[0055] The modified rubber as the other rubber component (modified rubber other than the modified rubbers described above) may be modified to introduce a functional group, which will be described later and which interacts with a filler such as silica.

[0056] Examples of the functional group include a silicon-containing group (-SiR3 (R may be the same or different and is hydrogen, a hydroxyl group, a hydrocarbon group, an alkoxy group, or the like), an amino group, an amido group, an isocyanate group, an imino group, an imidazole group, a urea group, an ether group, a carbonyl group, an oxycarbonyl group, a mercapto group, a sulfide group, a disulfide group, a sulfonyl group, a sulfinyl group, a thiocarbonyl group, an ammonium group, an imido group, a hydrazo group, an azo group, a diazo group, a carboxyl group, a nitrile group, a pyridyl group, an alkoxy group, a hydroxyl group, an oxy group, an epoxy group, or the like. These functional groups may have a substituent. Of these, a silicon-containing group is preferred, and -SiR3 (R may be the same or different and is hydrogen, a hydroxyl group, a hydrocarbon group (preferably a hydrocarbon group having 1 to 6 carbon atoms (more preferably an alkyl group having 1 to 6 carbon atoms)), or an alkoxy group (preferably an alkoxy group having 1 to 6 carbon atoms)), and at least one R is a hydroxyl group) is more preferred.

[0057] Specific examples of compounds (modifiers) that introduce the above-mentioned functional groups include 2-dimethylaminoethyltrimethoxysilane, 3-dimethylaminopropyltrimethoxysilane, 2-dimethylaminoethyltriethoxysilane, 3-dimethylaminopropyltriethoxysilane, 2-diethylaminoethyltrimethoxysilane, 3-diethylaminopropyltrimethoxysilane, 2-diethylaminoethyltriethoxysilane, and 3-diethylaminopropyltriethoxysilane.

[0058] When the rubber composition contains SBR, the amount of SBR (total amount of the modified SBR, modified SBR other than the modified SBR, and unmodified SBR) in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 30% by mass or more, even more preferably 50% by mass or more, and particularly preferably 70% by mass or more. There is no particular upper limit, but it is preferably 90% by mass or less, more preferably 85% by mass or less, and even more preferably 80% by mass or less. Within the above range, the effects can be suitably obtained.

[0059] When the rubber composition contains BR, the BR content (total amount of the modified BR, modified BRs other than the modified BR, and unmodified BR) in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 30% by mass or more, even more preferably 50% by mass or more, and particularly preferably 70% by mass or more. There is no particular upper limit, but it is preferably 90% by mass or less, more preferably 85% by mass or less, and even more preferably 80% by mass or less. Within the above range, the effects can be suitably obtained.

[0060] When the rubber composition contains an isoprene-based rubber, the content of the isoprene-based rubber (the total amount of the modified isoprene-based rubber, modified isoprene-based rubbers other than the modified isoprene-based rubber, and unmodified isoprene-based rubber) in 100% by mass of the rubber component is preferably 5% by mass or more, more preferably 8% by mass or more, and even more preferably 10% by mass or more. There is no particular upper limit, but it is preferably 50% by mass or less, more preferably 30% by mass or less, and even more preferably 20% by mass or less. Within the above range, the effects can be suitably obtained.

[0061] When the rubber composition contains SBR and BR, the total content of SBR and BR (total amount of the modified SBR, modified SBR other than the modified SBR, unmodified SBR, the modified BR, modified BR other than the modified BR, and unmodified BR) in 100% by mass of the rubber component is preferably 50% by mass or more, more preferably 75% by mass or more, even more preferably 85% by mass or more, and particularly preferably 90% by mass or more. When it is within the above range, better effects tend to be obtained.

[0062] (alkali metal salts or alkaline earth metal salts) The rubber composition preferably contains at least one alkali metal salt or alkaline earth metal salt selected from the group consisting of lithium carbonate, sodium carbonate, potassium carbonate, rubidium carbonate, cesium carbonate, beryllium carbonate, magnesium carbonate, calcium carbonate, strontium carbonate, barium carbonate, lithium acetate, sodium acetate, potassium acetate, rubidium acetate, cesium acetate, beryllium acetate, magnesium acetate, calcium acetate, strontium acetate, barium acetate, lithium phenoxide, sodium phenoxide, potassium phenoxide, rubidium phenoxide, cesium phenoxide, beryllium diphenoxide, magnesium diphenoxide, calcium diphenoxide, strontium diphenoxide, and barium diphenoxide. These alkali metal salts or alkaline earth metal salts may be used alone or in combination of two or more.

[0063] Among these, from the viewpoint of obtaining the effect more suitably, it is more preferable to contain at least one selected from the group consisting of potassium acetate, calcium acetate, sodium acetate, and magnesium acetate, it is even more preferable to contain at least one selected from the group consisting of potassium acetate, calcium acetate, and sodium acetate, and it is particularly preferable to contain potassium acetate and / or calcium acetate.

[0064] The reason why the above-mentioned effects are more pronounced when these alkali metal salts or alkaline earth metal salts are used is not entirely clear, but is presumed to be due to the following mechanism. When a modified rubber containing a carboxylic acid or the like in its molecule is combined with a specific alkali metal salt or alkaline earth metal salt, an ionic bond is formed between the carboxylic acid or the like and the metal of the alkali metal salt or alkaline earth metal salt. This ionic bond is cleaved by water and reversibly forms a bond upon drying, resulting in reversible changes in E* and tan δ caused by water. In particular, the specific alkali metal salt or alkaline earth metal salt is believed to have high reinforcing properties and responsiveness to the above-mentioned reversible changes. Furthermore, because the specific alkali metal salt or alkaline earth metal salt is easily dissociated by water, it is believed that the reversible changes in E* and tan δ caused by water can be further increased. Therefore, it is believed that rubber compositions using the specific alkali metal salt or alkaline earth metal salt can achieve both better wet grip performance and better dry grip performance.

[0065] In the rubber composition, the content of the alkali metal salt or alkaline earth metal salt (total amount of the alkali metal salt or alkaline earth metal salt) is preferably 0.5 parts by mass or more, more preferably 1.0 part by mass or more, even more preferably 2.0 parts by mass or more, still more preferably 2.2 parts by mass or more, particularly preferably 5.0 parts by mass or more, per 100 parts by mass of the rubber component, and is preferably 20.0 parts by mass or less, more preferably 17.0 parts by mass or less, even more preferably 12.0 parts by mass or less, particularly preferably 10.0 parts by mass or less. Within the above ranges, the effects tend to be more favorably obtained.

[0066] The apparent specific gravity of the alkali metal salt or alkaline earth metal salt is preferably less than 0.4 g / ml, more preferably 0.3 g / ml or less, even more preferably 0.25 g / ml or less, and is preferably 0.05 g / ml or more, more preferably 0.15 g / ml or more. Within the above ranges, better effects tend to be obtained. The apparent specific gravity of the alkali metal salt or alkaline earth metal salt is a value obtained by measuring 30 ml of the apparent volume into a 50 ml measuring cylinder and calculating from the mass.

[0067] The d50 of the alkali metal salt or alkaline earth metal salt is preferably less than 10 μm, more preferably 4.5 μm or less, even more preferably 1.5 μm or less, particularly preferably less than 0.75 μm, and is preferably 0.05 μm or more, more preferably 0.45 μm or more. Within the above ranges, better effects tend to be obtained. The d50 of the alkali metal salt or alkaline earth metal salt is the particle size at 50% of the integrated value in a mass-based particle size distribution curve obtained by a laser diffraction scattering method.

[0068] The nitrogen adsorption specific surface area (N2SA) of the alkali metal salt or alkaline earth metal salt is preferably 100 m 2 / g or more, more preferably 115m 2 / g or more, and preferably 250m 2 / g or less, more preferably 225m 2 / g or less, more preferably 200m 2 Within the above range, there is a tendency for the effect to be better obtained. The N2SA of the alkali metal salt or alkaline earth metal salt is a value measured by the BET method in accordance with JIS Z8830:2013.

[0069] Commercially available products of the alkali metal salts or alkaline earth metal salts include those from Kyowa Chemical Industry Co., Ltd., Fujifilm Wako Pure Chemical Industries Co., Ltd., Kishida Chemical Co., Ltd., Kyowa Chemical Industry Co., Ltd., Tateho Chemical Industry Co., Ltd., JHE Co., Ltd., Nippon Chemical Industry Co., Ltd., Ako Kasei Co., Ltd., etc.

[0070] (filler) The rubber composition preferably contains a filler. Examples of fillers that can be used include inorganic fillers such as silica, carbon black, calcium carbonate, talc, alumina, clay, aluminum hydroxide, aluminum oxide, and mica; and poorly dispersible fillers, all of which are well known in the rubber field. Among these, silica and carbon black are preferred.

[0071] The silica is not particularly limited, and examples thereof include dry process silica (anhydrous silica) and wet process silica (hydrated silica). Among these, wet process silica is preferred because it contains a large number of silanol groups. In addition to anhydrous silica and hydrated silica, silica produced from biomass materials such as rice husks can also be used. These may be used alone or in combination of two or more.

[0072] The average primary particle size of silica is preferably 25 nm or less, more preferably 18 nm or less, even more preferably 17 nm or less, and particularly preferably 15 nm or less. The lower limit of the average primary particle size is not particularly limited, but is preferably 3 nm or more, more preferably 5 nm or more, and even more preferably 7 nm or more. Within the above range, the effect tends to be more favorably obtained. The average primary particle size of silica can be determined by observing with a transmission or scanning electron microscope, measuring 400 or more primary particles of silica observed within the field of view, and averaging the measurements.

[0073] The mechanism by which this effect is obtained is not clear, but is presumed to be as follows. By setting the average primary particle size of silica to a predetermined value or less, particularly 18 nm or less, the reinforcing effect is increased, and it is thought that, for example, even when driving on a dry road after driving on a wet road, the decrease in block rigidity is suppressed, and good grip performance can be obtained without impairing grip. Therefore, it is presumed that performance changes when the road surface changes, such as from a dry road to a wet road or from a wet road to a dry road, can be suppressed.

[0074] As the silica, for example, products from Degussa, Rhodia, Tosoh Silica Co., Ltd., Solvay Japan Co., Ltd., Tokuyama Corporation, etc. can be used.

[0075] In the rubber composition, the content of silica is preferably 20 parts by mass or more, more preferably 40 parts by mass or more, even more preferably 55 parts by mass or more, and particularly preferably 65 parts by mass or more, per 100 parts by mass of the rubber component. The upper limit of the content is not particularly limited, but is preferably 150 parts by mass or less, more preferably 100 parts by mass or less, and even more preferably 90 parts by mass or less. Within the above range, the effects can be suitably obtained.

[0076] When the rubber composition contains silica, it is preferable that the rubber composition further contains a silane coupling agent. The silane coupling agent is not particularly limited, and examples thereof include bis(3-triethoxysilylpropyl)tetrasulfide, bis(2-triethoxysilylethyl)tetrasulfide, bis(4-triethoxysilylbutyl)tetrasulfide, bis(3-trimethoxysilylpropyl)tetrasulfide, bis(2-trimethoxysilylethyl)tetrasulfide, bis(2-triethoxysilylethyl)trisulfide, bis(4-trimethoxysilylbutyl)trisulfide, bis(3-triethoxysilylpropyl)disulfide, bis(2-triethoxysilylethyl)disulfide, bis(4-triethoxysilylbutyl)disulfide, bis(3-trimethoxysilylpropyl)disulfide, bis(2-trimethoxysilylethyl)disulfide, bis(4-trimethoxysilylbutyl)disulfide, 3-trimethoxysilylpropyl-N Examples of such compounds include sulfide-based compounds such as N-dimethylthiocarbamoyl tetrasulfide, 2-triethoxysilylethyl-N,N-dimethylthiocarbamoyl tetrasulfide, and 3-triethoxysilylpropyl methacrylate monosulfide; mercapto-based compounds such as 3-mercaptopropyltrimethoxysilane and 2-mercaptoethyltriethoxysilane; vinyl-based compounds such as vinyltriethoxysilane and vinyltrimethoxysilane; amino-based compounds such as 3-aminopropyltriethoxysilane and 3-aminopropyltrimethoxysilane; glycidoxy-based compounds such as γ-glycidoxypropyltriethoxysilane and γ-glycidoxypropyltrimethoxysilane; nitro-based compounds such as 3-nitropropyltrimethoxysilane and 3-nitropropyltriethoxysilane; and chloro-based compounds such as 3-chloropropyltrimethoxysilane and 3-chloropropyltriethoxysilane. Commercially available products that can be used include, for example, products from Degussa, Momentive, Shin-Etsu Silicones Co., Ltd., Tokyo Chemical Industry Co., Ltd., Azumax Co., Ltd., and Dow Corning Toray Co., Ltd. These may be used alone or in combination of two or more.

[0077] Among these, mercapto-based silane coupling agents are preferred from the viewpoint of obtaining the desired effect. As the mercapto-based silane coupling agent, in addition to a compound having a mercapto group, a compound having a structure in which the mercapto group is protected by a protecting group (for example, a compound represented by the following formula (S1)) can also be suitably used.

[0078] Particularly suitable mercapto-based silane coupling agents include silane coupling agents represented by the following formula (S1) and silane coupling agents containing a bonding unit A represented by the following formula (I) and a bonding unit B represented by the following formula (II). [ka] (In the formula, R 1001 -Cl, -Br, -OR 1006 , -O(O=)CR 1006 , -ON=CR 1006 R 1007 , -NR 1006 R 1007 and-(OSiR 1006 R 1007 ) h (OSiR 1006 R 1007 R 1008 a monovalent group (R 1006 , R 1007 and R 1008 may be the same or different, and each represents a hydrogen atom or a monovalent hydrocarbon group having 1 to 18 carbon atoms, and h has an average value of 1 to 4; 1002 is R 1001 , a hydrogen atom or a monovalent hydrocarbon group having 1 to 18 carbon atoms, R 1003 is -[O(R 1009 O) j ]-group(R 1009 is an alkylene group having 1 to 18 carbon atoms, and j is an integer of 1 to 4. 1004 is a divalent hydrocarbon group having 1 to 18 carbon atoms, R 1005 represents a monovalent hydrocarbon group having 1 to 18 carbon atoms, and x, y, and z are numbers that satisfy the relationships: x+y+2z=3, 0≦x≦3, 0≦y≦2, 0≦z≦1. [ka] [ka] (wherein v is an integer of 0 or more, and w is an integer of 1 or more. R 11 R represents hydrogen, halogen, a branched or unbranched alkyl group having 1 to 30 carbon atoms, a branched or unbranched alkenyl group having 2 to 30 carbon atoms, a branched or unbranched alkynyl group having 2 to 30 carbon atoms, or an alkyl group in which the terminal hydrogen atom has been substituted with a hydroxyl group or a carboxyl group. 12 represents a branched or unbranched alkylene group having 1 to 30 carbon atoms, a branched or unbranched alkenylene group having 2 to 30 carbon atoms, or a branched or unbranched alkynylene group having 2 to 30 carbon atoms. 11 and R 12 may form a ring structure with

[0079] In formula (S1), R 1005 , R 1006 , R 1007 and R 1008 are each independently a group selected from the group consisting of a linear, cyclic or branched alkyl group, an alkenyl group, an aryl group and an aralkyl group having 1 to 18 carbon atoms. 1002 When R is a monovalent hydrocarbon group having 1 to 18 carbon atoms, it is preferably a group selected from the group consisting of a linear, cyclic, or branched alkyl group, an alkenyl group, an aryl group, and an aralkyl group. 1009 R is preferably a linear, cyclic or branched alkylene group, and is particularly preferably a linear one. 1004 Examples of R include alkylene groups having 1 to 18 carbon atoms, alkenylene groups having 2 to 18 carbon atoms, cycloalkylene groups having 5 to 18 carbon atoms, cycloalkylalkylene groups having 6 to 18 carbon atoms, arylene groups having 6 to 18 carbon atoms, and aralkylene groups having 7 to 18 carbon atoms. The alkylene groups and alkenylene groups may be either linear or branched, and the cycloalkylene groups, cycloalkylalkylene groups, arylene groups, and aralkylene groups may have a functional group such as a lower alkyl group on the ring. 1004As the alkylene group, an alkylene group having 1 to 6 carbon atoms is preferred, and a linear alkylene group such as a methylene group, ethylene group, trimethylene group, tetramethylene group, pentamethylene group, or hexamethylene group is particularly preferred.

[0080] R in formula (S1) 1002 , R 1005 , R 1006 , R 1007 and R 1008 Specific examples of the alkyl group include a methyl group, an ethyl group, an n-propyl group, an isopropyl group, an n-butyl group, an isobutyl group, a sec-butyl group, a tert-butyl group, a pentyl group, a hexyl group, an octyl group, a decyl group, a dodecyl group, a cyclopentyl group, a cyclohexyl group, a vinyl group, a propenyl group, an allyl group, a hexenyl group, an octenyl group, a cyclopentenyl group, a cyclohexenyl group, a phenyl group, a tolyl group, a xylyl group, a naphthyl group, a benzyl group, a phenethyl group, and a naphthylmethyl group. R in formula (S1) 1009 Examples of the linear alkylene group include a methylene group, an ethylene group, an n-propylene group, an n-butylene group, and a hexylene group, and examples of the branched alkylene group include an isopropylene group, an isobutylene group, and a 2-methylpropylene group.

[0081] Specific examples of the silane coupling agent represented by formula (S1) include 3-hexanoylthiopropyltriethoxysilane, 3-octanoylthiopropyltriethoxysilane, 3-decanoylthiopropyltriethoxysilane, 3-lauroylthiopropyltriethoxysilane, 2-hexanoylthioethyltriethoxysilane, 2-octanoylthioethyltriethoxysilane, 2-decanoylthioethyltriethoxysilane, 2-lauroylthioethyltriethoxysilane, 3-hexanoylthiopropyltrimethoxysilane, 3-octanoylthiopropyltrimethoxysilane, 3-decanoylthiopropyltrimethoxysilane, 3-lauroylthiopropyltrimethoxysilane, 2-hexanoylthioethyltrimethoxysilane, 2-octanoylthioethyltrimethoxysilane, 2-decanoylthioethyltrimethoxysilane, and 2-lauroylthioethyltrimethoxysilane. These may be used alone or in combination of two or more. Among these, 3-octanoylthiopropyltriethoxysilane is particularly preferred.

[0082] In the silane coupling agent containing the bond unit A represented by formula (I) and the bond unit B represented by formula (II), the content of the bond unit A is preferably 30 mol% or more, more preferably 50 mol% or more, and preferably 99 mol% or less, more preferably 90 mol% or less. The content of the bond unit B is preferably 1 mol% or more, more preferably 5 mol% or more, even more preferably 10 mol% or more, and preferably 70 mol% or less, more preferably 65 mol% or less, even more preferably 55 mol% or less. The total content of the bond units A and B is preferably 95 mol% or more, more preferably 98 mol% or more, particularly preferably 100 mol%. The content of the bonding units A and B includes the case where the bonding units A and B are located at the terminals of the silane coupling agent. When the bonding units A and B are located at the terminals of the silane coupling agent, the form of the bonding units A and B is not particularly limited, as long as they form units corresponding to the formulas (I) and (II) representing the bonding units A and B.

[0083] R in formulas (I) and (II)11 With respect to the above, examples of halogen include chlorine, bromine, and fluorine. Examples of branched or unbranched alkyl groups having 1 to 30 carbon atoms include methyl and ethyl groups. Examples of branched or unbranched alkenyl groups having 2 to 30 carbon atoms include vinyl and 1-propenyl groups. Examples of branched or unbranched alkynyl groups having 2 to 30 carbon atoms include ethynyl and propynyl groups.

[0084] R in formulas (I) and (II) 12 Regarding the above, examples of branched or unbranched alkylene groups having 1 to 30 carbon atoms include an ethylene group, a propylene group, etc. Examples of branched or unbranched alkenylene groups having 2 to 30 carbon atoms include a vinylene group, a 1-propenylene group, etc. Examples of branched or unbranched alkynylene groups having 2 to 30 carbon atoms include an ethynylene group, a propynylene group, etc.

[0085] In a silane coupling agent containing a bonding unit A represented by formula (I) and a bonding unit B represented by formula (II), the total number of repetitions (v+w) of the bonding unit A (v) and the bonding unit B (w) is preferably in the range of 3 to 300.

[0086] In the rubber composition, the content of the silane coupling agent is preferably 3.0 parts by mass or more, more preferably 6.0 parts by mass or more, even more preferably 8.0 parts by mass or more, and particularly preferably 9.0 parts by mass or more, per 100 parts by mass of silica. The content is also preferably 25.0 parts by mass or less, more preferably 20.0 parts by mass or less, even more preferably 17.0 parts by mass or less, and particularly preferably 15.0 parts by mass or less. Within the above ranges, the effects can be suitably obtained.

[0087] Usable carbon blacks include N134, N110, N220, N234, N219, N339, N330, N326, N351, N550, and N762. In addition to carbon black obtained by burning mineral oil, carbon black obtained by burning biomass-derived materials such as lignin may also be used. These may be used alone or in combination of two or more. Commercially available products include those from Asahi Carbon Co., Ltd., Cabot Japan Co., Ltd., Tokai Carbon Co., Ltd., Mitsubishi Chemical Corporation, Lion Corporation, Shin-Nichika Carbon Co., Ltd., and Columbia Carbon Co., Ltd.

[0088] The nitrogen adsorption specific surface area (N2SA) of carbon black is 50m 2 / g or more is preferable, and 80m 2 / g or more is more preferable, and 100m 2 / g or more is more preferable. 2 / g or less is preferable, and 150m 2 / g or less is more preferable, and 130m 2 Within the above range, the effect tends to be better. The nitrogen adsorption specific surface area of ​​carbon black can be determined according to JIS K6217-2:2001.

[0089] In the rubber composition, the carbon black content is preferably 5 parts by mass or more, more preferably 7 parts by mass or more, and even more preferably 10 parts by mass or more, per 100 parts by mass of the rubber component. The upper limit is preferably 30 parts by mass or less, more preferably 20 parts by mass or less, and even more preferably 15 parts by mass or less. Within the above range, better effects tend to be obtained.

[0090] (plasticizer) The rubber composition preferably contains a plasticizer, which is a material that imparts plasticity to the rubber component, and examples of the plasticizer include a liquid plasticizer (a plasticizer that is in a liquid state at room temperature (25°C)) and a resin (a resin that is in a solid state at room temperature (25°C)). Among these, the above resins are preferred from the viewpoint of obtaining better effects.

[0091] The mechanism by which this effect is obtained is not clear, but is presumed to be as follows. The inclusion of a plasticizer component can improve the rubber surface's ability to conform to the road surface, which is thought to enable improved grip performance on both wet and dry roads. Furthermore, by incorporating the resin, the adhesiveness of the resin component increases friction with the road surface. Therefore, for example, even when driving on a dry road after driving on a wet road, the adhesiveness of the rubber surface prevents a decrease in grip, resulting in good grip performance. Therefore, it is thought that changes in performance can be suppressed when the road surface changes, such as from dry to wet, or from wet to dry.

[0092] In the rubber composition, the content of the plasticizer (total amount of plasticizer) is preferably 5 parts by mass or more, more preferably 10 parts by mass or more, even more preferably 15 parts by mass or more, and particularly preferably 20 parts by mass or more, per 100 parts by mass of the rubber component. The upper limit is preferably 80 parts by mass or less, more preferably 60 parts by mass or less, even more preferably 40 parts by mass or less, and particularly preferably 30 parts by mass or less. Within the above range, better effects tend to be obtained.

[0093] Liquid plasticizers (plasticizers that are liquid at room temperature (25°C)) that can be used in the rubber composition are not particularly limited, and examples include oils, liquid polymers (liquid resins, liquid diene-based polymers, liquid farnesene-based polymers, etc.), etc. These may be used alone or in combination of two or more.

[0094] In the rubber composition, the content of the liquid plasticizer is preferably 3 parts by mass or more, more preferably 5 parts by mass or more, even more preferably 8 parts by mass or more, and particularly preferably 10 parts by mass or more, per 100 parts by mass of the rubber component. The upper limit is preferably 50 parts by mass or less, more preferably 30 parts by mass or less, and even more preferably 20 parts by mass or less. Within the above range, the effect tends to be more favorably obtained. Note that the content of the liquid plasticizer also includes the amount of oil contained in the oil-extended rubber. A similar range is also preferred for the content of the oil.

[0095] Examples of oils include process oils, vegetable oils, and mixtures thereof. Examples of process oils that can be used include paraffin-based process oils, aromatic process oils, and naphthenic process oils. Examples of vegetable oils that can be used include castor oil, cottonseed oil, linseed oil, rapeseed oil, soybean oil, palm oil, coconut oil, peanut oil, rosin, pine oil, pine tar, tall oil, corn oil, rice bran oil, safflower oil, sesame oil, olive oil, sunflower oil, palm kernel oil, camellia oil, jojoba oil, macadamia nut oil, and tung oil. Commercially available products include those from Idemitsu Kosan Co., Ltd., Sankyo Yuka Kogyo Co., Ltd., Japan Energy Corporation, Oriso Co., Ltd., H&R Corporation, Toyokuni Oil Mills Co., Ltd., Showa Shell Sekiyu K.K., Fuji Kosan Co., Ltd., and Nisshin Oillio Group, Ltd. Among these, process oils (paraffin-based process oils, aromatic process oils, naphthenic process oils, etc.) and vegetable oils are preferred. From the viewpoint of life cycle assessment, these process oils and vegetable oils may include oils that have been used as lubricating oils in rubber mixers, engines, etc., and waste cooking oils.

[0096] Examples of liquid resins include terpene resins (including terpene phenol resins and aromatic modified terpene resins), rosin resins, styrene resins, C5 resins, C9 resins, C5 / C9 resins, dicyclopentadiene (DCPD) resins, coumarone-indene resins (including coumarone and indene simple resins), phenol resins, olefin resins, polyurethane resins, acrylic resins, etc. Hydrogenated products of these resins can also be used.

[0097] Examples of liquid diene polymers include liquid styrene butadiene copolymers (liquid SBR), liquid butadiene polymers (liquid BR), liquid isoprene polymers (liquid IR), liquid styrene isoprene copolymers (liquid SIR), liquid styrene butadiene styrene block copolymers (liquid SBS block polymers), and liquid styrene isoprene styrene block copolymers (liquid SIS block polymers), which are liquid at 25°C. The terminals or main chains of these polymers may be modified with polar groups. Hydrogenated versions of these polymers can also be used.

[0098] The reversible changes in E* and tanδ of the rubber composition due to water, as represented by the formulas (1) and (2), can also be achieved by using a modified liquid diene polymer having at least one selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule in combination with the alkali metal salt or alkaline earth metal salt, instead of using the modified rubber in combination with the alkali metal salt or alkaline earth metal salt. The combined use of the modified liquid diene polymer and the alkali metal salt or alkaline earth metal salt achieves the same effect through the same mechanism as the combined use of the modified rubber and the alkali metal salt or alkaline earth metal salt. The modification of the modified liquid diene polymer is similar to the modification of the modified rubber.

[0099] The modified liquid diene polymer has at least one ionic functional group selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule, and the number of functional groups per molecule is preferably 1 to 100, more preferably 2 to 50, and even more preferably 5 to 25. The number of functional groups per molecule can be calculated based on peaks corresponding to the functional groups by infrared absorption spectroscopy.

[0100] The number average molecular weight of the modified liquid diene polymer is preferably from 1,000 to 50,000, more preferably from 1,500 to 40,000, and even more preferably from 2,000 to 35,000. The number average molecular weight can be measured by gel permeation chromatography (GPC) using a calibration curve based on standard polystyrene.

[0101] When the modified liquid diene polymer is used, the modified rubber may not be used as the rubber component, but a rubber component other than the modified rubber may be used, and the modified liquid diene polymer may be used in combination with the alkali metal salt or alkaline earth metal salt. Alternatively, the modified rubber may be used as the rubber component, and the modified liquid diene polymer may be used in combination with the alkali metal salt or alkaline earth metal salt.

[0102] From the viewpoint of obtaining the desired effect, the modified liquid diene polymer is preferably a modified liquid IR having at least one selected from the group consisting of carboxylic acid, sulfonic acid, and salts thereof in the molecule, and more preferably a liquid IR having methacrylic acid or maleic acid in the molecule.

[0103] When the rubber composition contains the modified liquid diene polymer, the content of the modified liquid diene polymer is preferably 5 parts by mass or more, more preferably 10 parts by mass or more, even more preferably 15 parts by mass or more, and particularly preferably 20 parts by mass or more, per 100 parts by mass of the rubber component. The content is preferably 50 parts by mass or less, more preferably 40 parts by mass or less, even more preferably 35 parts by mass or less, and particularly preferably 30 parts by mass or less. Within the above range, the effects can be suitably obtained.

[0104] Examples of liquid farnesene polymers include liquid farnesene polymers and liquid farnesene-butadiene copolymers that are liquid at 25°C. These may be modified at the ends or main chains with polar groups. Hydrogenated versions of these polymers may also be used.

[0105] Examples of the resins (resins in a solid state at room temperature (25°C)) that can be used in the rubber composition include aromatic vinyl polymers, coumarone-indene resins, coumarone resins, indene resins, phenolic resins, rosin resins, petroleum resins, terpene resins, and acrylic resins that are solid at room temperature (25°C). The resins may also be hydrogenated. These may be used alone or in combination of two or more. Of these, aromatic vinyl polymers, petroleum resins, and terpene resins are preferred.

[0106] In the rubber composition, the content of the resin is preferably 5 parts by mass or more, more preferably 8 parts by mass or more, and even more preferably 10 parts by mass or more, per 100 parts by mass of the rubber component. The upper limit is preferably 50 parts by mass or less, more preferably 30 parts by mass or less, and even more preferably 20 parts by mass or less. Within the above range, the effect tends to be more favorably obtained.

[0107] The softening point of the resin is preferably 50° C. or higher, more preferably 55° C. or higher, and even more preferably 60° C. or higher. The upper limit is preferably 160° C. or lower, more preferably 150° C. or lower, and even more preferably 145° C. or lower. Within the above range, better effects tend to be obtained. The softening point of the resin is the temperature at which the ball drops when the softening point specified in JIS K6220-1:2001 is measured using a ring and ball softening point tester. The softening point of the resin is usually about 50° C.±5° C., which is the glass transition temperature of the resin component.

[0108] The aromatic vinyl polymer is a polymer containing an aromatic vinyl monomer as a constituent unit. For example, it can be a resin obtained by polymerizing α-methylstyrene and / or styrene, and specifically, it can be a homopolymer of styrene (styrene resin), a homopolymer of α-methylstyrene (α-methylstyrene resin), a copolymer of α-methylstyrene and styrene, or a copolymer of styrene and another monomer.

[0109] The coumarone-indene resin is a resin containing coumarone and indene as main monomer components constituting the resin skeleton (main chain). Other monomer components contained in the skeleton besides coumarone and indene include styrene, α-methylstyrene, methylindene, and vinyltoluene.

[0110] The coumarone resin is a resin containing coumarone as a main monomer component that constitutes the skeleton (main chain) of the resin.

[0111] The indene resin is a resin containing indene as a main monomer component that constitutes the skeleton (main chain) of the resin.

[0112] The phenolic resin may be a known polymer obtained by reacting phenol with an aldehyde such as formaldehyde, acetaldehyde, or furfural in the presence of an acid or alkali catalyst. Among these, those obtained by reacting with an acid catalyst (such as novolac phenolic resin) are preferred.

[0113] Examples of the rosin resin include rosin-based resins such as natural rosin, polymerized rosin, modified rosin, ester compounds thereof, and hydrogenated products thereof.

[0114] Examples of the petroleum resin include C5 resin, C9 resin, C5 / C9 resin, dicyclopentadiene (DCPD) resin, and hydrogenated versions of these resins. Of these, DCPD resin and hydrogenated DCPD resin are preferred.

[0115] The terpene resin is a polymer containing terpene as a structural unit. Examples include polyterpene resins obtained by polymerizing terpene compounds and aromatic-modified terpene resins obtained by polymerizing terpene compounds and aromatic compounds. Examples of aromatic-modified terpene resins that can be used include terpene phenol resins made from terpene compounds and phenolic compounds, terpene styrene resins made from terpene compounds and styrene compounds, and terpene phenol styrene resins made from terpene compounds, phenolic compounds, and styrene compounds. Examples of terpene compounds include α-pinene and β-pinene, phenolic compounds include phenol and bisphenol A, and aromatic compounds include styrene compounds (styrene, α-methylstyrene, etc.).

[0116] The acrylic resin is a polymer containing an acrylic monomer as a constituent unit. For example, a styrene-acrylic resin having a carboxyl group and obtained by copolymerizing an aromatic vinyl monomer component with an acrylic monomer component can be used. Among them, a solvent-free carboxyl-containing styrene-acrylic resin can be preferably used.

[0117] Examples of plasticizers that can be used include products from Maruzen Petrochemical Co., Ltd., Sumitomo Bakelite Co., Ltd., Yasuhara Chemical Co., Ltd., Tosoh Corporation, Rutgers Chemicals, BASF, Arizona Chemical Company, Nitto Chemical Co., Ltd., Nippon Shokubai Co., Ltd., ENEOS Corporation, Arakawa Chemical Industries, Ltd., and Taoka Chemical Co., Ltd.

[0118] (vulcanizing agent) The rubber composition preferably contains a vulcanizing agent from the viewpoint of forming an appropriate amount of crosslinked chains in polymer chains to generate a network and thereby achieving the above-mentioned effects favorably.

[0119] The vulcanizing agent is not particularly limited, and examples thereof include sulfur. Examples of sulfur include powdered sulfur, precipitated sulfur, colloidal sulfur, insoluble sulfur, highly dispersible sulfur, soluble sulfur, etc., which are commonly used in the rubber industry. Commercially available products include those from Tsurumi Chemical Industry Co., Ltd., Karuizawa Sulfur Co., Ltd., Shikoku Chemical Industry Co., Ltd., Flexis Corporation, Nippon Kanzuri Kogyo Co., Ltd., Hosoi Chemical Industry Co., Ltd., etc. These may be used alone or in combination of two or more.

[0120] In the rubber composition, the content of the vulcanizing agent (preferably the content of sulfur) is preferably 1.0 part by mass or more, more preferably 1.5 parts by mass or more, even more preferably 1.8 parts by mass or more, and particularly preferably 2.0 parts by mass or more, per 100 parts by mass of the rubber component, and is preferably 8.0 parts by mass or less, more preferably 6.0 parts by mass or less, even more preferably 5.0 parts by mass or less, and particularly preferably 4.0 parts by mass or less.

[0121] (Vulcanization accelerator) The rubber composition preferably contains a vulcanization accelerator from the viewpoint of effectively generating a network in the rubber and effectively achieving the above-mentioned effects.

[0122] In the rubber composition, the content of the vulcanization accelerator is preferably 1.0 part by mass or more, more preferably 3.0 parts by mass or more, even more preferably 3.5 parts by mass or more, and particularly preferably 3.9 parts by mass or more, per 100 parts by mass of the rubber component, and is preferably 12.0 parts by mass or less, more preferably 10.0 parts by mass or less, even more preferably 9.0 parts by mass or less, and particularly preferably 7.0 parts by mass or less.

[0123] The type of vulcanization accelerator is not particularly limited, and commonly used ones can be used. Examples of the vulcanization accelerator include thiazole-based vulcanization accelerators such as 2-mercaptobenzothiazole, di-2-benzothiazolyl disulfide, and N-cyclohexyl-2-benzothiazyl sulfenamide; thiuram-based vulcanization accelerators such as tetramethylthiuram disulfide (TMTD), tetrabenzylthiuram disulfide (TBzTD), and tetrakis(2-ethylhexyl)thiuram disulfide (TOT-N); sulfenamide-based vulcanization accelerators such as N-cyclohexyl-2-benzothiazole sulfenamide, Nt-butyl-2-benzothiazolyl sulfenamide, N-oxyethylene-2-benzothiazole sulfenamide, and N,N'-diisopropyl-2-benzothiazole sulfenamide; and guanidine-based vulcanization accelerators such as diphenylguanidine, di-orthotolylguanidine, and orthotolylbiguanidine. These may be used alone or in combination of two or more. Among these, sulfenamide vulcanization accelerators and guanidine vulcanization accelerators are preferred.

[0124] Among the vulcanization accelerators, sulfenamide vulcanization accelerators and guanidine vulcanization accelerators are preferred. The content of the sulfenamide vulcanization accelerator is preferably 0.8 parts by mass or more, more preferably 1.3 parts by mass or more, and even more preferably 1.6 parts by mass or more, per 100 parts by mass of the rubber component, and is preferably 5.0 parts by mass or less, more preferably 4.0 parts by mass or less, and even more preferably 3.0 parts by mass or less. The content of the guanidine vulcanization accelerator is preferably 1.5 parts by mass or more, more preferably 2.0 parts by mass or more, and even more preferably 2.3 parts by mass or more, and is preferably 6.0 parts by mass or less, more preferably 5.0 parts by mass or less, and even more preferably 4.0 parts by mass or less, per 100 parts by mass of the rubber component.

[0125] (Other ingredients) The rubber composition preferably contains an antioxidant from the viewpoint of crack resistance, ozone resistance, and the like.

[0126] The antioxidant is not particularly limited, but examples thereof include naphthylamine-based antioxidants such as phenyl-α-naphthylamine; diphenylamine-based antioxidants such as octylated diphenylamine and 4,4'-bis(α,α'-dimethylbenzyl)diphenylamine; N-isopropyl-N'-phenyl-p-phenylenediamine, N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine, N,N'-di-2-naphthyl-p-phenylenediamine, and the like. Examples of suitable antioxidants include p-phenylenediamine antioxidants such as amines; quinoline antioxidants such as polymers of 2,2,4-trimethyl-1,2-dihydroquinoline; monophenol antioxidants such as 2,6-di-t-butyl-4-methylphenol and styrenated phenol; and bis-, tris-, and polyphenol antioxidants such as tetrakis-[methylene-3-(3',5'-di-t-butyl-4'-hydroxyphenyl)propionate]methane. Among these, p-phenylenediamine antioxidants and quinoline antioxidants are preferred, with polymers of N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine and 2,2,4-trimethyl-1,2-dihydroquinoline being more preferred. Commercially available products include those from Seiko Chemical Co., Ltd., Sumitomo Chemical Co., Ltd., Ouchi Shinko Chemical Industry Co., Ltd., and Flexis.

[0127] In the rubber composition, the content of the antioxidant is preferably 0.2 parts by mass or more, more preferably 0.5 parts by mass or more, per 100 parts by mass of the rubber component, and is preferably 7.0 parts by mass or less, more preferably 4.0 parts by mass or less.

[0128] The rubber composition may contain stearic acid. The content of stearic acid in the rubber composition is preferably 0.5 to 10 parts by mass or more, and more preferably 0.5 to 5 parts by mass, per 100 parts by mass of the rubber component.

[0129] As the stearic acid, conventionally known products can be used, for example, products available from NOF Corporation, Kao Corporation, Fujifilm Wako Pure Chemical Industries, Ltd., Chiba Fatty Acid Co., Ltd., etc.

[0130] The rubber composition may contain zinc oxide. The content of zinc oxide in the rubber composition is preferably 0.5 to 10 parts by mass, more preferably 1 to 5 parts by mass, per 100 parts by mass of the rubber component.

[0131] As the zinc oxide, conventionally known products can be used, for example, products from Mitsui Mining & Smelting Co., Ltd., Toho Zinc Co., Ltd., Hakusui Tech Co., Ltd., Seido Chemical Industry Co., Ltd., Sakai Chemical Industry Co., Ltd., etc. can be used.

[0132] The rubber composition may contain wax, and the content of the wax in the rubber composition is preferably 0.5 to 10 parts by mass, and more preferably 1 to 5 parts by mass, per 100 parts by mass of the rubber component.

[0133] The wax is not particularly limited, and examples thereof include petroleum waxes, natural waxes, etc. Synthetic waxes obtained by refining or chemically treating multiple waxes can also be used. These waxes may be used alone or in combination of two or more types.

[0134] Examples of petroleum-based waxes include paraffin wax and microcrystalline wax. Natural waxes are not particularly limited as long as they are derived from non-petroleum resources, and include, for example, plant-based waxes such as candelilla wax, carnauba wax, Japan wax, rice wax, and jojoba wax; animal-based waxes such as beeswax, lanolin, and spermaceti; mineral-based waxes such as ozokerite, ceresin, and petrolactam; and refined products thereof. Commercially available products include those from Ouchi Shinko Chemical Industry Co., Ltd., Nippon Seiro Co., Ltd., and Seiko Chemical Co., Ltd.

[0135] In addition to the above components, the rubber composition may contain additives such as a mold release agent and a pigment, which are commonly used in accordance with the field of application.

[0136] The rubber composition can be produced, for example, by kneading the above-mentioned components using a rubber kneading device such as an open roll or a Banbury mixer, followed by vulcanization.

[0137] As for kneading conditions, in the base kneading step in which additives other than the vulcanizing agent and vulcanization accelerator are kneaded, the kneading temperature is usually 100 to 180°C, preferably 120 to 170°C. In the finish kneading step in which the vulcanizing agent and vulcanization accelerator are kneaded, the kneading temperature is usually 120°C or lower, preferably 85 to 110°C. Furthermore, the composition kneaded with the vulcanizing agent and vulcanization accelerator is usually subjected to a vulcanization treatment such as press vulcanization. The vulcanization temperature is usually 140 to 190°C, preferably 150 to 185°C. The vulcanization time is usually 5 to 15 minutes.

[0138] The rubber composition is suitable for use as a tire component. The tire component is not particularly limited, and examples thereof include any tire component such as a cap tread, a sidewall, a base tread, a bead apex, a clinch apex, an inner liner, an undertread, a breaker topping, a bright topping, etc. Among these, the present invention is preferably applied to a cap tread.

[0139] <Tires> The tire of the present disclosure uses the rubber composition as a tire component, and in particular, a tire using the rubber composition as a tread is desirable.

[0140] Tires applicable to the present disclosure include pneumatic tires and non-pneumatic tires, with pneumatic tires being preferred. They can be particularly well-suited for use as summer tires, winter tires (studless tires, snow tires, studded tires, etc.), and all-season tires. The tires can be used as passenger car tires, large passenger car tires, large SUV tires, heavy-duty tires for trucks, buses, etc., light truck tires, motorcycle tires, and racing tires (high-performance tires). Among these, passenger car tires are preferred.

[0141] A tire is manufactured using the rubber composition by a conventional method. For example, a rubber composition containing various materials is extruded in an unvulcanized state to match the shape of a tread, and molded together with other tire components in a tire building machine by a conventional method to form an unvulcanized tire, which is then heated and pressurized in a vulcanizer to manufacture a tire.

[0142] In the tire of the present disclosure, the thickness G (mm) of the tread at the equatorial plane of the tire radial cross section is preferably 15.0 mm or less, more preferably 10.0 mm or less, even more preferably 9.0 mm or less, and particularly preferably 8.0 mm or less. The lower limit is preferably 5.0 mm or more, more preferably 5.5 mm or more, even more preferably 6.0 mm or more, and particularly preferably 6.5 mm or more. Within the above range, better effects tend to be obtained. In this disclosure, the thickness G of the tread on the equatorial plane in the radial cross section of the tire is the distance from the tread surface on the equatorial plane to the interface of the reinforcing layer containing other fiber materials, such as the belt reinforcing layer, belt layer, carcass layer, etc., on the tire outermost surface side in the cross section cut along a plane including the tire rotation axis. In the case where grooves are present on the tire equatorial plane, the thickness G is the straight-line distance from the intersection of the equatorial plane with a line connecting the ends of the grooves on the outermost surface side in the tire radial direction.

[0143] The mechanism by which this effect is obtained is not clear, but is presumed to be as follows. By setting the thickness G to a predetermined value or less, particularly 9.0 mm or less, it is believed that only the elastic modulus of the rubber near the surface decreases in wet conditions, and by keeping the thickness at 9.0 mm or less, it is possible to maintain the rigidity of the entire tread portion. This is thought to make it easier to generate reaction force without impairing grip. Therefore, it is presumed that it is possible to suppress changes in performance when the road surface changes, such as from dry to wet or from wet to dry.

[0144] The thickness Gc of the tread rubber layer on the tire equatorial plane is preferably 12.0 mm or less, more preferably 10.0 mm or less, even more preferably 9.0 mm or less, and particularly preferably 8.0 mm or less. The lower limit is preferably 2.0 mm or more, more preferably 3.0 mm or more, and even more preferably 4.0 mm or more. The Gc can be measured in the same manner as the thickness G of the tread on the equatorial plane of the radial cross section of the tire, and can be obtained by measuring the distance from the outermost surface of the tread to the interface of the innermost surface of the rubber layer formed from the rubber composition on the inner side of the tire.

[0145] In the tire of the present disclosure, the groove depth D of the circumferential grooves formed in the tread is preferably 13.0 mm or less, more preferably 10.0 mm or less, even more preferably 8.0 mm or less, particularly preferably 7.0 mm or less, and is preferably 3.0 mm or more, more preferably 4.0 mm or more, and even more preferably 5.0 mm or more. When it is within the above range, the effect tends to be more favorable.

[0146] In this specification, the groove depth D of the circumferential groove is measured along the normal to the surface extending from the surface forming the contact patch on the outermost surface of the tread, and means the distance from the surface extending from the surface forming the contact patch to the deepest groove bottom, and refers to the maximum distance among the groove depths of the circumferential grooves provided.

[0147] In the tire of the present disclosure, the negative rate S (%) of the tread is preferably 40% or less. S is preferably 35% or less, more preferably 30% or less. The negative rate is preferably 10% or more, more preferably 15% or more, and even more preferably 20% or more. Within the above range, better effects tend to be obtained.

[0148] The negative ratio (negative ratio within the contact area of ​​the tread) is the ratio of the total groove area within the contact area to the total area of ​​the contact area, and is measured using the following method. In this specification, if the tire is a pneumatic tire, the negative rate is calculated from the contact shape under normal load conditions with a normal rim and normal internal pressure. In the case of a non-pneumatic tire, the negative rate can be measured in the same way without requiring normal internal pressure. "Genuine rim" means a rim that is specified for each tire by the standard system that includes the standard on which the tire is based. For example, it means a standard rim in the case of JATMA, a "Design Rim" in the case of TRA, or a "Measuring Rim" in the case of ETRTO. "Normal internal pressure" refers to the air pressure specified for each tire by the above standards. For JATMA, it refers to the maximum air pressure, for TRA, it refers to the maximum value listed in the table "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES", and for ETRTO, it refers to "INFLATION PRESSURE". "Normal load" refers to the load specified for each tire by the standard, and means the maximum load capacity in the case of JATMA, the maximum value listed in the table "TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES" in the case of TRA, and "LOAD CAPACITY" in the case of ETRTO. The contact shape is obtained by assembling the tire on a standard rim, applying the standard internal pressure, and leaving it to stand at 25°C for 24 hours. Then, ink is applied to the surface of the tire tread, and the tire is pressed against cardboard under a standard load (camber angle 0°) and transferred to the paper. The tire is rotated 72° in the circumferential direction and the pattern is transferred at five locations. In other words, the contact shape is obtained five times. The area of ​​the figure obtained by smoothly connecting the contours of the five contact shapes is the total area, and the total area transferred is the contact area. The results for these five locations are averaged, and the negative rate (%) is calculated as [1 - {average area of ​​the five contact shapes (black parts) transferred to the cardboard / average area of ​​the total area of ​​the five transferred cardboard (the shape obtained by the contours)}] x 100 (%). Here, the average value of the length or area is the simple average of the five values.

[0149] From the viewpoint of obtaining better effects, it is desirable that the 40% modulus (MPa) of the rubber composition (rubber composition after vulcanization) constituting the tread before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the thickness G (mm) of the tread on the equatorial plane of the tire radial cross section satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / G] x 100 ≥ 5.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. The lower limit is preferably 5.3 or more, more preferably 6.0 or more, even more preferably 6.5 or more, and particularly preferably 6.8 or more. The upper limit is preferably 8.5 or less, more preferably 8.0 or less, even more preferably 7.5 or less, and particularly preferably 7.3 or less. By keeping the modulus within the above range, it is possible to ensure the rigidity of the tread portion and make it easier to generate reaction force while suppressing a decrease in modulus, so that the effect tends to be more favorable.

[0150] In order to obtain better effects, it is desirable that the 40% modulus (MPa) of the rubber composition (rubber composition after vulcanization) constituting the tread before the tensile test at 70°C, the 40% modulus (MPa) after the tensile test at 70°C, and the groove depth D (mm) of the circumferential grooves formed in the tread satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / D] x 100 ≥ 8.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. The lower limit is preferably 8.5 or more, more preferably 8.6 or more. The upper limit is not particularly limited, but is preferably 15.0 or less, more preferably 12.0 or less, and even more preferably 10.0 or less. Within the above range, better effects tend to be obtained.

[0151] In order to obtain better effects of the tire of the present disclosure, it is desirable that the 40% modulus (MPa) of the rubber composition (rubber composition after vulcanization) constituting the tread before the tensile test at 70°C, the 40% modulus (MPa) after the tensile test at 70°C, and the negative rate S (%) of the tread satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / S] x 100 ≥ 2.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. The lower limit is preferably 2.1 or more. The upper limit is not particularly limited, but is preferably 10.0 or less, more preferably 7.0 or less, and even more preferably 6.0 or less. Within the above range, better effects tend to be obtained.

[0152] 1 is a cross-sectional view taken along a meridian line, showing a portion of a pneumatic tire 1 according to an embodiment of the present disclosure. Note that the tire according to the present disclosure is not limited to the following configuration.

[0153] In Fig. 1, the up-down direction is the tire radial direction (hereinafter also simply referred to as the radial direction), the left-right direction is the tire axial direction (hereinafter also simply referred to as the axial direction), and the direction perpendicular to the paper surface is the tire circumferential direction (hereinafter also simply referred to as the circumferential direction). This tire 1 has a shape that is approximately symmetrical with respect to a center line CL in Fig. 1. This center line CL is also called a tread center line and represents the equatorial plane EQ of the tire 1.

[0154] The tire 1 includes a tread 2, a sidewall 3, a bead 4, a carcass 5, and a belt 6. The tire 1 is a tubeless type.

[0155] The tread portion 2 has a tread surface 7. In a cross section of the tire 1 cut in the meridian direction, the tread surface 7 has a shape that is convex radially outward. This tread surface 7 comes into contact with the road surface. The tread surface 7 has a plurality of grooves 8 that extend circumferentially. These grooves 8 form a tread pattern. The outer portions of the tread 2 in the axial direction (tire width direction) of the tire are called shoulder portions 15. The sidewalls 3 extend substantially radially inward from the ends of the tread 2. These sidewalls 3 are made of cross-linked rubber or the like.

[0156] As shown in FIG. 1, the bead 4 is located approximately radially inward of the sidewall 3. The bead 4 includes a core 10 and an apex 11 extending radially outward from the core 10. The core 10 has a ring shape along the circumferential direction of the tire. The core 10 is formed by winding an inelastic wire. Typically, a steel wire is used for the core 10. The apex 11 tapers radially outward. The apex 11 is made of a high-hardness crosslinked rubber or the like.

[0157] In this embodiment, the carcass 5 is made up of a carcass ply 12. The carcass ply 12 is laid between the beads 4 on both sides and runs along the inside of the tread 2 and the sidewall 3. The carcass ply 12 is folded around the core 10 from the inside to the outside in the tire axial direction. Although not shown, the carcass ply 12 is made up of a large number of cords arranged in parallel and a topping rubber. The absolute value of the angle that each cord makes with respect to the equatorial plane EQ (CL) is usually 70° to 90°. In other words, the carcass 5 has a radial structure.

[0158] In this embodiment, the belt 6 is located radially outside the carcass 5. The belt 6 is laminated on the carcass 5. The belt 6 reinforces the carcass 5. The belt 6 may be composed of an inner layer belt 13 and an outer layer belt 14. In this embodiment, the widths of the two belts 13 and 14 are different.

[0159] Although not shown, each of the inner layer belt 13 and the outer layer belt 14 typically consists of a large number of parallel cords and a topping rubber. Each cord is preferably inclined with respect to the equatorial plane EQ. The inclination direction of the cords of the inner layer belt 13 is preferably opposite to the inclination direction of the cords of the outer layer belt.

[0160] Although not shown, a band may be laminated on the radially outer side of the belt 6. The width of this band is larger than that of the belt 6. This band may be made of a cord and a topping rubber. The cord is wound spirally. The belt is restrained by this cord, thereby suppressing lifting of the belt 6. The cord is preferably made of organic fiber. Examples of preferred organic fibers include nylon fiber, polyester fiber, rayon fiber, polyethylene naphthalate fiber, and aramid fiber.

[0161] Although not shown, an edge band may be disposed radially outward of the belt 6 and near the widthwise end (edge ​​portion) of the belt 6. This edge band may be formed of cords and a topping rubber, similar to the above-mentioned band. One example of the edge band is one layered on the upper surface of the step 20 portion of the wide inner layer belt 13. The cords of this edge band may be inclined in the same direction as the cords of the narrow outer layer belt 14 and biased relative to the cords of the wide inner layer belt 13.

[0162] Although not shown, a cushion rubber layer may be laminated on the carcass 5 near the width direction end of the belt 6. The cushion layer may be made of a soft crosslinked rubber. The cushion layer absorbs stress at the end of the belt.

[0163] Fig. 2 shows a cross section of the tread 2 of the tire 1 taken along a plane including the tire axis. In Figs. 1 and 2, the crown center 17, which is the position of the equator EQ, corresponds to the "equatorial plane of the tread 2 in the tire radial cross section."

[0164] In tire 1, the E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before tensile test at 70°C, and 40% modulus (MPa) after tensile test at 70°C of the tread rubber composition (rubber composition after vulcanization) that constitutes tread 2 satisfy the above formulas (1) to (3).

[0165] In tire 1, the thickness G of the tread 2 on the equatorial plane in the radial cross section of the tire is the distance from the tread surface 7 on the equatorial plane (since tire 1 has grooves on the equatorial plane of the tire, this is a straight line connecting the ends of the grooves 8 on the radially outermost side of the tire) to the interface of the outer layer belt 14 on the outermost side of the tire in the cross section cut on a plane including the tire axis.

[0166] The tread 2 of the tire 1 is provided with circumferential grooves 8, and the groove depth D of the circumferential grooves 8 is the normal distance from the plane extending from the surface forming the contact patch of the tread surface 7 to the bottom of the deepest groove, and refers to the depth of the deepest groove formed among the multiple circumferential grooves 8.

[0167] In the tire 1, it is desirable that the E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before tensile test at 70°C, 40% modulus (MPa) after tensile test at 70°C, thickness G (mm) of the tread on the equatorial plane of the tire radial cross section, groove depth D (mm) of the circumferential grooves formed in the tread, and negative rate S (%) of the tread of the tread rubber composition constituting the tread 2 (rubber composition after vulcanization) satisfy the above-mentioned formulas. [Example]

[0168] The present disclosure will be specifically described based on examples, but the present disclosure is not limited to these examples.

[0169] The various chemicals used in the examples and comparative examples will be collectively described below. Carboxylic acid-modified SBR: synthesized according to Production Example 1 below (carboxylic acid group content: 5% by mass, styrene content: 23% by mass, butadiene content: 72% by mass) Carboxylic acid-modified BR: synthesized according to Production Example 2 below (carboxylic acid group content: 5% by mass, butadiene content: 95% by mass) NR:TSR20 SBR: Nipol 1502 (E-SBR) manufactured by ZEON Corporation BR: JSR BR730 (high cis polybutadiene, cis content: 96% by mass) Carbon black: Diablack I (N220, N2SA: 114m) manufactured by Mitsubishi Chemical Corporation 2 / g, DBP: 114ml / 100g) Silica 1: Ultrasil VN3 manufactured by Evonik Degussa (average primary particle size: 17 nm) Silica 2: Ultrasil 9100GR (average primary particle size: 15 nm) manufactured by Evonik Degussa Stearic acid: NOF Corporation's "Tsubaki" stearic acid Potassium acetate: Potassium acetate manufactured by Fujifilm Wako Pure Chemical Industries, Ltd. Calcium acetate: Calcium acetate manufactured by Fujifilm Wako Pure Chemical Industries, Ltd. Zinc oxide: Zinc oxide No. 1 manufactured by Mitsui Mining & Smelting Co., Ltd. Oil: H&R VIVATEC 400 / 500 (TDAE oil) Silane coupling agent 1: Si69 (bis(3-triethoxysilylpropyl)tetrasulfide) manufactured by EVONIK-DEGUSSA Silane coupling agent 2: NXT-Z45 manufactured by Momentive (a copolymer of bonding units A and B (bonding units A: 55 mol %, bonding units B: 45 mol %)) Resin: SYLVARES SA85 (copolymer of α-methylstyrene and styrene, Tg: 43°C, softening point: 85°C) manufactured by Arizona Chemical Antiaging agent: Antigen 6C (antiaging agent, N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine) manufactured by Sumitomo Chemical Co., Ltd. Sulfur: Powdered sulfur manufactured by Tsurumi Chemical Industry Co., Ltd. Vulcanization accelerator DPG: Noccela D (1,3-diphenylguanidine) manufactured by Ouchi Shinko Chemical Industry Co., Ltd. Vulcanization accelerator NS: Noccela NS (N-tert-butyl-2-benzothiazylsulfenamide) manufactured by Ouchi Shinko Chemical Industry Co., Ltd.

[0170] <Production Example 1: Synthesis of Carboxylic Acid-Modified SBR> (Latex Preparation) A pressure-resistant reactor equipped with a stirrer was charged with 2000 g of distilled water, 45 g of emulsifier (1), 1.5 g of emulsifier (2), 8 g of electrolyte, 250 g of styrene, 50 g of methacrylic acid, 700 g of butadiene, and 2 g of molecular weight modifier. The reactor temperature was adjusted to 5°C, and an aqueous solution containing 1 g of radical initiator and 1.5 g of SFS, and an aqueous solution containing 0.7 g of EDTA and 0.5 g of catalyst were added to the reactor to initiate polymerization. Five hours after the start of polymerization, 2 g of polymerization terminator was added to terminate the reaction, yielding a latex. (Rubber Preparation) Unreacted monomers were removed from the obtained latex by steam distillation. Then, the latex was added to alcohol and coagulated while adjusting the pH to 3 to 5 with saturated sodium chloride aqueous solution or formic acid to obtain a crumb-like polymer. The polymer was dried in a vacuum dryer at 40°C to obtain a solid rubber (emulsion polymerized rubber).

[0171] <Production Example 2: Synthesis of Carboxylic Acid-Modified BR> (Latex Preparation) A pressure reactor equipped with a stirrer was charged with 2000 g of distilled water, 45 g of emulsifier (1), 1.5 g of emulsifier (2), 8 g of electrolyte, 50 g of methacrylic acid, 950 g of butadiene, and 2 g of molecular weight modifier. The reactor temperature was adjusted to 5°C, and an aqueous solution containing 1 g of radical initiator and 1.5 g of SFS, and an aqueous solution containing 0.7 g of EDTA and 0.5 g of catalyst were added to the reactor to initiate polymerization. Five hours after the start of polymerization, 2 g of polymerization terminator was added to terminate the reaction, yielding a latex. (Rubber Preparation) Unreacted monomers were removed from the obtained latex by steam distillation. Then, the latex was added to alcohol and coagulated while adjusting the pH to 3 to 5 with saturated sodium chloride aqueous solution or formic acid to obtain a crumb-like polymer. The polymer was dried in a vacuum dryer at 40°C to obtain a solid rubber (emulsion polymerized rubber).

[0172] The materials used in Production Examples 1 and 2 are as follows: Emulsifier (1): Rosin acid soap manufactured by Harima Chemical Co., Ltd. Emulsifier (2): Fatty acid soap manufactured by Fujifilm Wako Pure Chemical Industries, Ltd. Electrolyte: Sodium phosphate manufactured by FUJIFILM Wako Pure Chemical Corporation Styrene: Styrene manufactured by FUJIFILM Wako Pure Chemical Corporation Methacrylic acid: Methacrylic acid manufactured by FUJIFILM Wako Pure Chemical Corporation Butadiene: 1,3-Butadiene manufactured by Takachiho Chemical Industry Co., Ltd. Molecular weight regulator: tert-Dodecyl mercaptan manufactured by FUJIFILM Wako Pure Chemical Corporation Radical initiator: Paramethane hydroperoxide manufactured by NOF Corporation SFS: Sodium formaldehyde sulfoxylate manufactured by FUJIFILM Wako Pure Chemical Corporation EDTA: Sodium ethylenediaminetetraacetate manufactured by FUJIFILM Wako Pure Chemical Corporation Catalyst: Ferric sulfate manufactured by FUJIFILM Wako Pure Chemical Corporation Polymerization terminator: N,N'-Dimethyldithiocarbamate manufactured by FUJIFILM Wako Pure Chemical Corporation Alcohol: Methanol and ethanol manufactured by Kanto Chemical Co., Inc. Formic acid: Formic acid manufactured by Kanto Chemical Co., Inc. Sodium chloride: Sodium chloride manufactured by FUJIFILM Wako Pure Chemical Corporation

[0173] <NMR measurement> 1 The content of carboxylic acid groups in the modified rubber was calculated using 1H-NMR.

[0174] (Examples and Comparative Examples) According to the formulation shown in each table, using a 16L Banbury mixer manufactured by Kobe Steel, Ltd., chemicals other than sulfur and vulcanization accelerators were kneaded at 160 °C for 4 minutes to obtain a kneaded product. Next, sulfur and vulcanization accelerators were added to the obtained kneaded product, and it was kneaded at 80 °C for 4 minutes using an open roll to obtain an unvulcanized rubber composition. The obtained unvulcanized rubber composition was formed into the shape of a tread and laminated together with other tire members on a tire molding machine to form an unvulcanized tire, and then vulcanized at 170 °C for 12 minutes to manufacture test tires (size: 195 / 65R15, specifications: each table).

[0175] The test tires thus obtained were subjected to the following physical property measurements and evaluations. The results are shown in the tables. The reference comparative examples were as follows: Dry grip performance: Table 1 shows the dry grip performance index for Comparative Example 1-1, and Table 2 shows the dry grip performance index for Comparative Example 2-1. Wet grip performance: Table 1 shows the wet grip performance index for Comparative Example 1-1, and Table 2 shows the wet grip performance index for Comparative Example 2-1. Dry grip performance after driving on wet roads: Table 1 shows the dry grip performance index for Comparative Example 1-1, and Table 2 shows the dry grip performance index for Comparative Example 2-1

[0176] <Viscoelasticity test> A viscoelasticity measurement sample measuring 40 mm in length, 3 mm in width, and 0.5 mm in thickness was taken from inside the rubber layer of the tread of each test tire, with the long side facing the tire circumferential direction. The tan δ and E* of the tread rubber were measured using an RSA series made by TA Instruments under the following conditions: temperature 30°C, initial strain 10%, dynamic strain 1%, frequency 10 Hz, extension mode, and measurement time 30 minutes, and the measured value was obtained 30 minutes after the start of measurement. The thickness direction of the sample was the radial direction of the tire.

[0177] <E* and tanδ when dry> The viscoelasticity measurement sample (length 40 mm × width 3 mm × thickness 0.5 mm) was dried at room temperature and normal pressure until it reached a constant weight. The complex modulus E* and loss tangent tanδ of the resulting dried vulcanized rubber composition (rubber piece) were measured using the viscoelasticity test method described above, and these were defined as E* and tanδ in the dry state.

[0178] <E* and tanδ when wet> The viscoelasticity was measured in water using the RSA immersion measurement jig according to the viscoelasticity test method described above, and the E* and tan δ when wet with water were determined. The water temperature was set at 30°C.

[0179] <40% modulus before tensile test at 70℃> Test specimens were cut from the rubber layer of the tread of each test tire, with the long side aligned in the circumferential direction of the tire. In accordance with JIS K6251:2010 "Vulcanized rubber and thermoplastic rubber - Determination of tensile properties," tensile tests were conducted on each test specimen (No. 7 dumbbell-shaped test specimen) at 70°C and 200 mm / min, and the stress (MPa) at 40% elongation was measured.

[0180] <40% modulus after tensile test at 70℃> The sample for which the stress at 40% elongation was measured was placed in an atmosphere of 70°C and stretched to 50% elongation, after which the stress was released. The stress-released test piece was subjected to a tensile test at 70°C and 200 mm / min, and the stress (MPa) at 40% elongation was measured.

[0181] <Dry grip performance> Each test tire was fitted to all wheels of a vehicle (domestic FF 2000cc) and the dry grip performance was assessed on a test course on dry roads by 20 drivers, who checked each specification and then conducted a sensory evaluation on a 5-point scale. The total score was calculated as a rating, and the standard comparative example was assigned a score of 100, which was then converted into an index. The higher the index, the better the dry grip performance.

[0182] <Wet grip performance> After the dry grip performance evaluation, 20 drivers performed a sensory evaluation of the wet grip performance when driving on a test course with a wet road surface, using a maximum of 5 points. The total score of the evaluations was calculated as a score, and the standard comparative example was assigned a score of 100, which was then converted into an index. The higher the index, the better the wet grip performance.

[0183] <Dry grip performance after driving on wet roads> After the evaluation of wet grip performance, 20 drivers again performed a sensory evaluation of dry grip performance on a test course on a dry road surface, using a maximum of 5 points. The total score of the evaluations was calculated as a score, and the standard comparative example (standard comparative example for the dry grip performance) was set to 100, and this was expressed as an index. The higher the index, the better the dry grip performance after driving on a wet road surface.

[0184] <Overall performance> The sum of the three indices obtained from the dry grip performance evaluation, the wet grip performance evaluation, and the dry grip performance evaluation after driving on a wet road surface was used to evaluate the ability to suppress performance changes when the road surface changes, such as from dry to wet, or from wet to dry. The higher the value, the better the ability to suppress performance changes.

[0185] [Table 1]

[0186] [Table 2]

[0187] The tires of the examples that satisfied the above formulas (1) to (3) exhibited good dry grip performance, wet grip performance after driving on a dry road, and dry grip performance after driving on a wet road, even when the road surface changed from dry to wet or from wet to dry, and had excellent overall performance (expressed as the sum of three indices of dry grip performance, wet grip performance, and dry grip performance after driving on a wet road). Therefore, it became clear that the change in performance when the road surface changed, such as from dry to wet or from wet to dry, could be sufficiently suppressed.

[0188] The present disclosure (1) is a rubber composition whose E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before a tensile test at 70°C, and 40% modulus (MPa) after a tensile test at 70°C satisfy the following formulas (1) to (3): (1) E* when wet / E* when dry ≦ 0.90 (2) Tan δ when wet / tan δ when dry > 1.00 (3) 40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C ≥ 0.45 (In the formula, E* and tanδ are the complex modulus and loss tangent measured 30 minutes after the start of measurement under the following conditions: temperature 30°C, initial strain 10%, dynamic strain 1%, frequency 10 Hz, extension mode, and measurement time 30 minutes.) The 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 in an atmosphere at 70°C after elongation to 50% in an atmosphere at 70°C and then the stress is released. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

[0189] The present disclosure (2) is the rubber composition according to the present disclosure (1), which contains silica having an average primary particle size of 18 nm or less.

[0190] The present disclosure (3) is a rubber composition according to the present disclosure (1) or (2) containing a resin.

[0191] The present disclosure (4) is the rubber composition according to any one of the present disclosures (1) to (3), in which the content of sulfur per 100 parts by mass of the rubber component is 2.0 parts by mass or more.

[0192] The present disclosure (5) is a rubber composition according to any one of the present disclosures (1) to (4), which contains a mercapto-based silane coupling agent.

[0193] The present disclosure (6) is a tire using the rubber composition according to any one of the present disclosures (1) to (5) in the tread.

[0194] The present disclosure (7) is the tire according to the present disclosure (6), wherein the thickness G of the tread on the equatorial plane of the tire radial cross section is 9.0 mm or less.

[0195] The present disclosure (8) is a tire according to the present disclosure (6) or (7), in which the 40% modulus (MPa) of the rubber composition before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the thickness G (mm) of the tread on the equatorial plane of the tire radial cross section satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / G] x 100 ≥ 5.3 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

[0196] The present disclosure (9) is a tire according to any one of the present disclosures (6) to (8), in which the 40% modulus (MPa) of the rubber composition before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the groove depth D (mm) of the circumferential grooves formed in the tread satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / D] x 100 ≥ 8.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

[0197] The present disclosure (10) is a tire according to any one of the present disclosures (5) to (9), in which the 40% modulus (MPa) of the rubber composition before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the tread negative rate S (%) satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / S] x 100 ≥ 2.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the specimen to 50% in a 70°C atmosphere and then releasing the stress.) The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. [Explanation of symbols]

[0198] 1 tire 2 Tread 3 Sidewall 4 beads 5. Carcass 6 Belt 7 Tread surface 8 grooves 10 cores 11 Apex 12 Carcass ply 13 Inner belt 14 outer belt 15 Shoulder section 17 Crown center (tread centerline CL, tire 1 equatorial plane EQ) 20 steps D Circumferential groove depth G Thickness of the tread at the equatorial plane in the radial cross section of the tire

Claims

1. A rubber composition in which E* (MPa) when wet, E* (MPa) when dry, tan δ when wet, tan δ when dry, 40% modulus (MPa) before a tensile test at 70°C, and 40% modulus (MPa) after a tensile test at 70°C satisfy the following formulas (1) to (3): (1) E* when wet / E* when dry ≦ 0.90 (2) tan δ when wet with water / tan δ when dry > 1.00 (3) 40% modulus after tensile test at 70°C ≥ 0.64 / 40% modulus before tensile test at 70°C ≥ 0.45 (In the formula, E* and tanδ are the complex modulus and loss tangent measured 30 minutes after the start of measurement under the conditions of a temperature of 30°C, an initial strain of 10%, a dynamic strain of 1%, a frequency of 10 Hz, an extension mode, and a measurement time of 30 minutes.) The 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 in an atmosphere at 70°C after elongation to 50% in an atmosphere at 70°C and then releasing the stress. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C. The rubber composition includes a modified rubber having at least one selected from the group consisting of a carboxylic acid, a sulfonic acid, and a salt thereof in the molecule, the modified rubber is at least one selected from the group consisting of modified styrene-butadiene rubber and modified butadiene rubber, the rubber composition has an ionic bond introduced by the modified rubber, The rubber composition is a rubber composition after vulcanization.

2. The rubber composition according to claim 1, which contains silica having an average primary particle size of 18 nm or less.

3. The rubber composition according to claim 1 or 2, which contains a resin.

4. 4. The rubber composition according to claim 1, wherein the amount of sulfur per 100 parts by mass of the rubber component is 2.0 parts by mass or more.

5. The rubber composition according to any one of claims 1 to 4, further comprising a mercapto-based silane coupling agent.

6. A tire using the rubber composition according to any one of claims 1 to 5 in the tread.

7. 7. The tire according to claim 6, wherein the thickness G of the tread on the equatorial plane in a cross section in the radial direction of the tire is 9.0 mm or less.

8. 8. The tire according to claim 6 or 7, wherein the 40% modulus (MPa) of the rubber composition before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the thickness G (mm) of the tread on the equatorial plane of a cross section in the tire radial direction satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / G] x 100 ≥ 5.3 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the sample to 50% in an atmosphere at 70°C and then releasing the stress. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

9. The tire according to any one of claims 6 to 8, wherein the 40% modulus (MPa) of the rubber composition before a tensile test at 70 ° C., the 40% modulus (MPa) after a tensile test at 70 ° C., and the groove depth D (mm) of a circumferential groove formed in the tread satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / D] x 100 ≥ 8.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the sample to 50% in an atmosphere at 70°C and then releasing the stress. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

10. The tire according to any one of claims 6 to 9, wherein the 40% modulus (MPa) of the rubber composition before a tensile test at 70°C, the 40% modulus (MPa) after a tensile test at 70°C, and the negative rate S (%) of the tread satisfy the following formulas: [(40% modulus after tensile test at 70°C / 40% modulus before tensile test at 70°C) / S] x 100 ≥ 2.0 (In the formula, the 40% modulus after a tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 after elongating the sample to 50% in an atmosphere at 70°C and then releasing the stress. The 40% modulus before the tensile test at 70°C is the tensile stress at 40% elongation measured in accordance with JIS K6251:2010 before the tensile test at 70°C.

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