Bale molded product of rubber composition, method for manufacturing bale molded product, rubber composition for crosslinking, and tire tread

A rubber composition with controlled aluminum and metal content, combined with a hydrogenated polymer, enhances resistance to cold flow and thermal degradation, improving adhesion and moldability in tire tread production.

JP7764141B2Active Publication Date: 2025-11-05ASAHI KASEI KOGYO KABUSHIKI KAISHA
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Patent Information

Application Number
JP2021080754
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-26
Filing Date
2021-05-12
Publication Date
2025-11-05
Estimated Expiration
2041-05-12

AI Technical Summary

Technical Problem

Existing rubber compositions for tire treads suffer from cold flow, thermal degradation, molding die contamination, and adherence issues during production.

Method used

A rubber composition with specified aluminum and metal content, along with a hydrogenated rubbery polymer, is formulated to minimize cold flow and thermal degradation, ensuring better adhesion and moldability.

Benefits of technology

The composition results in a bale molded product resistant to cold flow and thermal degradation, with improved adhesion and moldability, addressing the issues faced by conventional rubber compositions.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a molded bale of a rubber composition that is difficult to cold flow and difficult to be thermally deteriorated.SOLUTION: The present invention provides a molded bale of a rubber composition containing: a rubber-like polymer (A) having an iodine value of 10 to 250, 3 mass% or more of an ethylene structure, and less than 10 mass% of a vinyl aromatic monomer block; and aluminum (B), in which a content of the aluminum (B) is 2 ppm or more and 200 ppm or less.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a bale molded product of a rubber composition, a method for producing a bale molded product, a rubber composition for crosslinking, and a tread for a tire. [Background technology]

[0002] In recent years, in the field of rubber materials for tire treads, sheets, films, and asphalt modification, rubber compositions containing rubbery polymers having an ethylene structure and into which crosslinkable unsaturated groups have been introduced have been proposed for the purpose of increasing mechanical strength and compression set (see, for example, Patent Documents 1 to 3). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2019 / 151126 [Patent Document 2] International Publication No. 2019 / 151127 [Patent Document 3] International Publication No. 2019 / 078083 Summary of the Invention [Problem to be solved by the invention]

[0004] However, the above-mentioned conventionally proposed rubber compositions containing a rubber-like polymer having an ethylene structure and having a crosslinkable unsaturated group introduced therein have problems such as the fact that molded articles of the rubber composition tend to undergo cold flow and change in shape, the rubber composition is subject to thermal degradation during production, the molding die is easily contaminated, the rubber composition is easily peeled off from the bale molded article, and it is difficult for a packaging sheet to adhere to the bale molded article.

[0005] Therefore, an object of the present invention is to provide a bale molded product of a rubber composition that is resistant to cold flow and thermal degradation. [Means for solving the problem]

[0006] The present inventors have conducted extensive research and investigation to solve the problems of the prior art described above, and as a result have discovered that by specifying the aluminum content within a predetermined range in a bale molded product made of a rubber composition containing a rubbery polymer of a specific structure, the bale molded product is less likely to cold flow and less likely to undergo thermal degradation during production, which has led to the completion of the present invention. That is, the present invention is as follows.

[0007] [1] The iodine value is 10 to 250, the ethylene structure is 3% by mass or more, and the vinyl aromatic a rubbery polymer (A) having a monomer block content of less than 10% by weight; Aluminum (B) and a metal (C) from Group 3 and / or 4 of the periodic table; Contains The aluminum (B) content is 40 ppm or less and 200 ppm or less. The content of metals (C) in Groups 3 and / or 4 of the periodic table is 61 ppm or less, The rubber-like polymer (A) is a hydrogenated product of a conjugated diene polymer and contains a vinyl aromatic Contains 5% by mass or more of aromatic monomer units, and the modification rate measured by column adsorption GPC method is 40% by mass or more. % or more, A method for producing a bale molded product of a rubber composition, comprising: The aforementioned Conjugated diene polymer in a solution; adding aluminum (B) and a metal (C) of Group 3 and / or Group 4 of the periodic table to the solution containing the conjugated diene-based polymer; Thereafter, the conjugated diene polymer hydrogenate to obtain the rubber composition containing the rubbery polymer (A). The process and molding the rubber composition; A method for producing a bale molded body, comprising: 〔2〕 The rubber polymer (A) contains a nitrogen atom. 〔1〕 A method for producing the bale molded body described in claim 1. 〔3〕 The rubber composition further contains 30% by mass or less of a rubber softener (D). or [2] A method for producing the bale molded body described in claim 1. 〔4〕 The rubber composition contains water in an amount of 0.05% by mass or more and 1.5% by mass or less. 〔3〕 10. A method for producing a bale molded body according to any one of claims 1 to 9. 〔5〕 The rubber composition contains lithium in an amount of 2 ppm or more and 60 ppm or less. 〔4〕 10. A method for producing a bale molded body according to any one of claims 1 to 9. 〔6〕 90 mass % or more of the aluminum (B) is aluminum oxide and / or hydroxide [1] to [3], wherein the compound is aluminum chloride. 〔5〕 10. A method for producing a bale molded body according to any one of claims 1 to 9. 〔7〕 The solvent is removed from the solution containing the rubbery polymer (A) by steam stripping. [1] to [3] 〔6〕 10. A method for producing a bale molded body according to any one of claims 1 to 9. [Effects of the Invention]

[0008] According to the present invention, a bale molded article of a rubber composition that is resistant to cold flow and thermal degradation can be obtained. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, an embodiment of the present invention (hereinafter referred to as "the present embodiment") will be described in detail. It should be noted that the following embodiments are merely examples for explaining the present invention, and the present invention is not limited to the following embodiments. The present invention can be practiced by appropriately modifying it within the scope of its gist.

[0010] [Bale molded product of rubber composition] The bale molded article of the rubber composition of this embodiment is A rubbery polymer (A) having an iodine value of 10 to 250, an ethylene structure of 3% by mass or more, and a vinyl aromatic monomer block of less than 10% by mass; Aluminum (B) and Contains The bale molded product of the rubber composition has an aluminum (B) content of 2 ppm≦200 ppm. By having the above-mentioned constitution, it is possible to obtain a bale molded article of a rubber composition that is resistant to cold flow and thermal deterioration during production, storage and processing.

[0011] (Rubber polymer (A)) The rubber-like polymer (A) contained in the rubber composition constituting the bale molded product of this embodiment (hereinafter referred to as the rubber composition of this embodiment) is a rubber-like polymer having an iodine value of 10 to 250, an ethylene structure content of 3% by mass or more, and a vinyl aromatic monomer block content of <10% by mass.

[0012] <Iodine value> The rubbery polymer (A) constituting the rubber composition of this embodiment has an iodine value of 10-250. From the viewpoint of ease of crosslinking, the iodine value is 10 or more, preferably 15 or more, more preferably 30 or more, even more preferably 50 or more, and even more preferably 70 or more. On the other hand, from the viewpoint of the weather resistance of the rubbery polymer (A), it is 250 or less, preferably 200 or less, more preferably 150 or less, even more preferably 110 or less, and even more preferably 80 or less. The iodine value can be measured in accordance with the method described in "JIS K 0070:1992". The iodine value is a value that expresses the amount of halogen that reacts with 100 g of the target substance, converted into grams of iodine, so the unit of the iodine value is "g / 100 g". Since the conjugated diene monomer unit has a double bond, in the production method of the rubbery polymer (A) described below, for example, when a conjugated diene monomer and a vinyl aromatic monomer are copolymerized, the rubbery polymer (A) will have a lower iodine value as the content of the conjugated diene monomer unit is lower, and further, when the conjugated diene monomer is hydrogenated, the iodine value will be lower as the hydrogenation rate is higher. The iodine value of the rubbery polymer (A) can be controlled within the above-mentioned range by adjusting the polymerization conditions such as the amount of the conjugated diene monomer having an unsaturated bond added, the polymerization time, and the polymerization temperature, and the amount of hydrogen added in the hydrogenation step, the hydrogenation time, and other conditions.

[0013] <Ethylene structure content> The rubbery polymer (A) constituting the rubber composition of this embodiment has an ethylene structure content of 3% by mass or more. When the ethylene structure is 3% by mass or more, the mechanical strength is excellent, and the ethylene structure is preferably 5% by mass or more, more preferably 30% by mass or more, and even more preferably 40% by mass or more. The ethylene structure is preferably 90% by mass or less, more preferably 80% by mass or less, and even more preferably 70% by mass or less. When the ethylene structure is 90% by mass or less, the rubber composition of the present embodiment has excellent moldability into a sheet-like or block-like molded article and excellent rubber elasticity. The ethylene structure in the rubbery polymer (A) includes various forms, such as an ethylene structure obtained by copolymerizing an ethylene monomer, an ethylene structure obtained by polymerizing a conjugated diene monomer and then hydrogenating it, etc. For example, when a 1,4-butadiene unit is hydrogenated, two ethylene structures are obtained, and when a 1,4-isoprene unit is hydrogenated, one propylene structure and one ethylene structure are obtained. The content of the ethylene structure in the rubbery polymer (A) can be measured by the method described in the Examples below, and can be controlled to fall within the above-mentioned range by adjusting the amount of ethylene added, the amount of conjugated diene monomer added, the hydrogenation rate, etc.

[0014] <Vinyl aromatic monomer block content> The rubbery polymer (A) has a vinyl aromatic monomer block content of less than 10% by mass (vinyl aromatic monomer block <10% by mass). The vinyl aromatic monomer block refers to a block in which eight or more vinyl aromatic monomer units are chained. When the vinyl aromatic monomer block content is less than 10% by mass, the rubber composition of this embodiment tends to have excellent moldability into bale molded articles and excellent cuttability during weighing of the bale molded articles. The vinyl aromatic monomer block content is preferably 7% by mass or less, more preferably 5% by mass or less, and even more preferably 3% by mass or less. From the viewpoint of flexibility of the rubber-like polymer or rubber composition, it is preferable that the vinyl aromatic monomer block has few or no blocks in which 30 or more vinyl aromatic monomer units are chained. Specifically, when the polymer constituting the rubbery polymer (A) is a butadiene-styrene copolymer, the content of the vinyl aromatic monomer block can be measured by decomposing the polymer by the Kolthoff method (I.M. Kolthoff, et al., J. Polym. Sci. 1, 429 (1946)) and analyzing the amount of polystyrene insoluble in methanol. Alternatively, it can be measured by a known method, such as measuring the chain of styrene units using NMR, as described in International Publication No. 2014-133097. The vinyl aromatic monomer block content of the rubbery polymer (A) can be controlled within the above range by adjusting the method of adding the vinyl aromatic monomer, the addition of a polymerization aid, the polymerization temperature, etc.

[0015] <Monomer units that allow the rubber polymer (A) to contain an unsaturated group> The rubbery polymer (A) preferably contains 2 mass% or more of conjugated diene monomer units or monomer units having an unsaturated group such as myrcene, etc. From the viewpoints of economy and productivity, it is more preferable that the rubbery polymer (A) contains conjugated diene monomer units. The conjugated diene monomer units and myrcene contained as components of the rubbery polymer (A) have double bonds, and therefore act as crosslinkable unsaturated groups. The content of conjugated diene monomer units and monomer units having an unsaturated group such as myrcene in the rubbery polymer (A) is closely related to the above-mentioned iodine value. If the content of conjugated diene monomer units or monomer units having an unsaturated group such as myrcene in the rubbery polymer (A) is 2% by mass or more, it is excellent in terms of ease of crosslinking. The content of conjugated diene monomer units in the rubbery polymer (A) is more preferably 3% by mass or more, and even more preferably 6% by mass or more. The content of conjugated diene monomer units and monomer units having an unsaturated group such as myrcene is preferably 50% by mass or less, more preferably 30% by mass or less, and even more preferably 20% by mass or less, which provides excellent weather resistance and resistance to deterioration over time. The content of the conjugated diene monomer units and the monomer units having an unsaturated group such as myrcene in the rubbery polymer (A) can be measured by the method described in the Examples below, and can be controlled to fall within the above-mentioned numerical range by adjusting the amount of the conjugated diene monomer units and the monomers having an unsaturated group such as myrcene added or the hydrogenation rate of the conjugated diene monomer, which will be described later.

[0016] (Aluminum (B)) The rubber composition of the present embodiment contains aluminum (B), and the content thereof in the rubber composition is 2 ppm≦aluminum (B)≦200 ppm. The aluminum content (B) in the rubber composition of the present embodiment is 2 ppm or more, preferably 4 ppm or more, more preferably 6 ppm or more, and even more preferably 10 ppm or more, from the viewpoint of the cold flow properties of a bale molded product of the rubber composition. On the other hand, from the viewpoint of the heat degradation resistance of the rubber composition of the present embodiment, the content is 200 ppm or less, preferably 80 ppm or less, more preferably 40 ppm or less, and even more preferably 25 ppm or less. The reason why the inclusion of aluminum (B) can suppress cold flow is thought to be that the aluminum-containing compound is dispersed in the form of fine particles, and in the process of becoming finely divided, it becomes entangled with the molecules of the rubber-like polymer (A), thereby acting as a physical crosslinking point in the rubber composition and suppressing cold flow. The aluminum content of the rubber composition of the present embodiment can be measured by the method described in the Examples below, and can be controlled to fall within the above-mentioned numerical range by adjusting the type and amount of polymerization catalyst or hydrogenation catalyst, deashing, or conditions for the solvent removal step described below.

[0017] (Preferred Structure of Rubber Polymer (A)) <Hydrogenated polymer> The rubbery polymer (A) is preferably a hydrogenated polymer in which a part or most of the double bonds in a conjugated diene-based polymer obtained by polymerizing or copolymerizing at least a conjugated diene monomer are hydrogenated (hydrogenated), and more preferably a hydrogenated product of a copolymer in which at least ethylene and a conjugated diene monomer are copolymerized. The unsaturated group in the rubbery polymer (A) preferably contains a conjugated diene monomer unit. That is, in the production process of the rubbery polymer (A), when at least a conjugated diene monomer is polymerized or copolymerized and then a part or most of the double bonds in the polymer are hydrogenated (hydrogenated), it is preferable that the conjugated diene monomer units remaining unhydrogenated are contained among the conjugated diene monomer units so as to achieve a predetermined iodine value. Furthermore, when at least ethylene and a conjugated diene monomer are copolymerized, it is preferable that the conjugated diene monomer units are copolymerized so as to contain in the polymer so as to achieve a predetermined iodine value. The hydrogenation rate and the inter- and intra-molecular distribution of monomers such as ethylene, conjugated diene monomers, and vinyl aromatic monomers in the rubbery polymer (A) are not particularly limited, and may be uniform, non-uniform, or distributed. The rubbery polymer (A) contained in the bale molded product of the rubber composition of this embodiment is preferably a hydrogenated random copolymer from the viewpoints of the handleability of the bale molded product and the tensile properties, heat resistance, and weather resistance when crosslinked. Specifically, when a hydrogenated random copolymer is used as a bale molded product, it is superior to a block copolymer in terms of bale crushability.

[0018] <Vinyl aromatic monomer unit content> The rubbery polymer (A) preferably has a vinyl aromatic monomer unit content of 5% by mass or more, more preferably 10% by mass or more, even more preferably 15% by mass or more, and even more preferably 20% by mass or more, from the viewpoints of deformation resistance of the bale molded article during transportation, and breaking strength and wet skid resistance when used in a tire tread. On the other hand, from the viewpoints of ease of cutting the bale molded body during weighing, difficulty of agglomeration of the rubbery polymer during the solvent removal step, ease of adjusting the metal content in the rubber composition, and fuel economy and abrasion resistance when used in a tire tread, the content of vinyl aromatic monomer units in the rubbery polymer (A) is preferably 45% by mass or less, more preferably 30% by mass or less, and even more preferably 25% by mass or less. In addition, when a high modulus is required, such as in run-flat tire components, the content is preferably 30% by mass or more. The content of the vinyl aromatic monomer units in the rubbery polymer (A) can be measured by the method described in the Examples below, and can be controlled within the above-mentioned range by adjusting the amount of the vinyl aromatic monomer added in the polymerization step.

[0019] (Aluminum (B) in rubber composition) The aluminum (B) in the rubber composition of the present embodiment is preferably a catalyst residue from the production of the rubbery polymer (A). When the rubbery polymer (A) is a rubbery polymer obtained by polymerizing a conjugated diene monomer and then hydrogenating it, the aluminum (B) is preferably a residue of a hydrogenation catalyst component used in the production. When the rubbery polymer (A) is a rubbery polymer obtained by copolymerizing ethylene and a conjugated diene monomer, the aluminum (B) is preferably a residue of a polymerization catalyst component used in the production. Furthermore, from the viewpoints of resistance to coloration and ease of drying in the production process, the aluminum (B) in the rubber composition of the present embodiment is preferably 80 mass % or more in the form of aluminum oxide and / or aluminum hydroxide, more preferably 85 mass % or more, and even more preferably 90 mass % or more.

[0020] As the hydrogenation catalyst component used in producing the rubbery polymer (A), from the viewpoint of easily controlling the amount of metal in the rubber composition to a desired value, for example, JP-A-1-275605, JP-A-2-172537, JP-A-4-96904, JP-A-08-33846, JP-A-08-41081, WO 2014-046016, WO 2014-046017, WO 2014-065283, WO 2017-090714, and WO 2017-090714 are preferably used.

[0021] The Ti compound includes titanocene of the following formula (1).

[0022] [ka]

[0023] (In the formula (1), R1 and R2 represent a group selected from the group consisting of a C1 to C12 hydrocarbon group, an aryloxy group, an alkoxyl group, a halogen group, and a carbonyl group, and R1 and R2 may be the same or different.)

[0024] From the viewpoint of a high hydrogenation rate, the Ti compound is not limited to the following, but preferred examples include bis(η5-cyclopentadienyl)titanium di(p-tolyl), bis(η5-cyclopentadienyl)titanium di(phenyl), bis(η5-cyclopentadienyl)titanium di(3,4-xylyl), bis(η5-cyclopentadienyl)titanium(furfuryloxy)chloride, and bis(η5-cyclopentadienyl)titanium dichloride. From the viewpoint of economy, bis(η5-cyclopentadienyl)titanium dichloride is more preferred.

[0025] The aluminum compound is not limited to the following, but preferred examples include trimethylaluminum, triethylaluminum, triisobutylaluminum, tripentylaluminum, trihexylaluminum, triphenylaluminum, diethylaluminum chloride, dimethylaluminum chloride, ethylaluminum dichloride, methylaluminum sesquichloride, ethylaluminum sesquichloride, diethylaluminum hydride, diisobutylaluminum hydride, triphenylaluminum, tri(2-ethylhexyl)aluminum, (2-ethylhexyl)aluminum dichloride, methylaluminoxane, diisobutylaluminum hydride, and ethylaluminoxane. Furthermore, from the viewpoint of increasing the activity of the hydrogenation catalyst and controlling the aluminum content, it is preferable to use trimethylaluminum and / or triethylaluminum as the aluminum compound. By selecting trimethylaluminum and / or triethylaluminum as the aluminum compound, the efficiency as a cocatalyst for the hydrogenation reaction is high, and further, the titanium / aluminum content ratio in the polymerization solution can be advantageously easily controlled.

[0026] As the polymerization catalyst component used in producing the rubbery polymer (A), from the viewpoint of easily controlling the amount of metal in the rubber composition of the present embodiment to a desired value, for example, WO 2019 / 078083, WO 2019 / 111496, WO 2019 / 142501, WO 2019 / 171679, WO 2019 / 216100 A mixture of a compound having a lanthanoid element and an aluminum compound is preferred. Among the lanthanoid elements, rare earth element compounds, such as gadolinium compounds, are preferred. The gadolinium compound is preferably a rare earth element compound represented by the following formula (2), in which M in formula (2) is gadolinium.

[0027] [ka]

[0028] In the rare earth element compound represented by the formula (2), M is at least one element selected from the group consisting of lanthanoid elements, scandium, and yttrium, and NQ 1 , NQ 2 and NQ 3 are amino groups and may be the same or different, However, the formula (2) is a compound having an MN bond.

[0029] The rare earth element compound represented by the formula (2) is composed of a compound having three MN bonds. By having three MN bonds, each bond is chemically equivalent, making the structure stable. In the formula (2), the amide group represented by NQ is, but is not limited to, an aliphatic amide group such as a dimethylamide group, a diethylamide group, or a diisopropylamide group; an aryl amide group such as a phenylamide group, a 2,6-di-tert-butylphenylamide group, a 2,6-diisopropylphenylamide group, a 2,6-dineopentylphenylamide group, a 2-tert-butyl-6-isopropylphenylamide group, a 2-tert-butyl-6-neopentylphenylamide group, a 2-isopropyl-6-neopentylphenylamide group, or a 2,4,6-tert-butylphenylamide group; or a bistrialkylsilylamide group such as a bistrimethylsilylamide group. As the rare earth element compound represented by the formula (2), tris[bis(trimethylsilyl)amido]gadolinium (Gd[N(Si(CH3)3)2]3) is preferred from the viewpoint of a high polymerization rate.

[0030] The aluminum compound constituting the polymerization catalyst component may be the same as the aluminum compound in the hydrogenation catalyst described above.

[0031] The aluminum compound such as the catalyst component described above added during the production of the rubbery polymer (A) is preferably 300 ppm or less, more preferably 200 ppm or less, even more preferably 100 ppm or less, and even more preferably 80 ppm or less, in terms of the heat deterioration resistance of the rubber composition of this embodiment, the oxidative deterioration resistance of the bale molded article, and economic efficiency, in terms of aluminum metal equivalent. Regarding the amount of catalyst component added during the production of the rubbery polymer (A), the higher the reaction temperature, the faster the reaction rate, but if the reaction temperature is increased, the amount added must be increased to take into account the deactivation of the catalyst component, and the amount of metal in the rubber composition increases. Therefore, in order to reduce the amount of metal in the rubber composition of this embodiment, the reaction temperature is preferably 100°C or less, and more preferably 90°C or less, from the viewpoint of reducing the amount of catalyst component added.

[0032] (Metals, nitrogen atoms, etc. in rubber compositions) The rubber composition of the present embodiment preferably contains, as a metal other than aluminum, a metal (C) of Group 3 and / or Group 4 of the periodic table in an amount of 120 ppm or less. From the viewpoint of the contamination resistance of the molding die when molding the rubber composition of this embodiment, the content is preferably 3 ppm or more, more preferably 10 ppm or more, and even more preferably 15 ppm or more. The reason why the presence of a metal (C) from Group 3 and / or 4 of the periodic table can suppress contamination of the molding die is thought to be that the presence of metal particles on the contact surface with the die reduces adhesion of the polymer to the die, similar to the effect of baby powder. On the other hand, from the viewpoint of the difficulty of peeling the rubber composition from the bale molded body and the adhesion of the packaging sheet to the bale molded body, the content is preferably 120 ppm or less, more preferably 100 ppm or less, even more preferably 50 ppm or less, and even more preferably 30 ppm or less. By setting a preferred upper limit for the content of the metal (C) of Group 3 and / or Group 4 of the periodic table, it is possible to prevent the rubber composition from becoming brittle due to the presence of too many metal particles, and to obtain the effect of suppressing peeling of the rubber composition.

[0033] The metal (C) of Group 3 and / or Group 4 of the periodic table contained in the rubber composition is preferably a residue of a hydrogenation catalyst or a polymerization catalyst used in producing the rubbery polymer (A). The metal (C) of Group 3 and / or Group 4 of the periodic table is the total amount of the metal of Group 3 and the metal of Group 4 of the periodic table, or the total amount of the metal of Group 3 or the metal of Group 4 of the periodic table. Metals in Group 3 of the periodic table include scandium (Sc), yttrium (Y), the lanthanides (La-Lu), and the actinides (Ac-Lr). Furthermore, examples of metals in Group 4 of the periodic table include titanium, zirconium, hafnium, and rutherfordium. These metals are preferably used as components of hydrogenation catalysts and polymerization catalysts. Furthermore, lanthanides from Group 3 of the periodic table are more preferable, and gadolinium is even more preferable. Titanium is more preferable as a metal from Group 4 of the periodic table.

[0034] From the viewpoints of the production cost of the rubbery polymer (A), fuel economy and flexibility when used in a tire, and the degree of freedom in the structure that can be produced, it is preferable that the rubbery polymer (A) be obtained by polymerizing a conjugated diene monomer and then hydrogenating the polymer. That is, the polymerization step contains a metal based on the polymerization catalyst, and the hydrogenation step contains a metal based on the hydrogenation catalyst.

[0035] The rubber composition of the present embodiment may contain lithium as a metal other than aluminum. The lithium content in the rubber composition of this embodiment is preferably 60 ppm or less, more preferably 50 ppm or more, even more preferably 40 ppm or less, and even more preferably 30 ppm or less, from the viewpoint of color change resistance of the rubber composition. On the other hand, from the viewpoint of tensile elongation when crosslinked, it is preferably 2 ppm or more, more preferably 5 ppm or more, and even more preferably 10 ppm or more. After the hydrogenation step, adjusting the conditions for the steps of removing the solvent from the solution and drying affects the content of aluminum (B) and the content of lithium. Therefore, it is a preferred embodiment to set the conditions for the steps of removing the solvent and / or drying so that the content of lithium falls within a preferred range, and by adjusting the conditions for the steps of removing the solvent and / or drying, the content of lithium can be controlled to fall within the above-mentioned numerical range.

[0036] The content of the metal (C) of Group 3 and / or Group 4 of the periodic table and lithium can be controlled by adjusting the amount of the lithium-containing polymerization initiator, hydrogenation catalyst or polymerization catalyst added, the conditions in the step of removing the solvent from the polymerization solvent, which will be described later, and the like.

[0037] Setting the reaction temperature high increases the reaction rate, which is preferable from the viewpoint of increasing production efficiency. However, because the polymerization initiator, polymerization catalyst, and hydrogenation catalyst are all easily deactivated at high temperatures, setting the reaction temperature high tends to require increasing the amount of polymerization initiator, polymerization catalyst, and / or hydrogenation catalyst to be added, taking into account the amount of deactivation. In view of this, in order to reduce the amount of lithium contained in the rubber composition of this embodiment, it is preferable to set the reaction temperature low, reduce the amount of deactivation, and adjust the amount to be added. Specifically, the reaction temperature is preferably 100°C or lower, and more preferably 90°C or lower.

[0038] The content of aluminum (B) and the content of metal (C) of Group 3 and / or Group 4 of the periodic table in the rubber composition of this embodiment refers to the amount of each element. Aluminum (B) and metals (C) of Group 3 and / or Group 4 of the periodic table, which are residues of hydrogenation catalysts and polymerization catalysts, may be finely dispersed in the rubber composition and may form metal compounds or complexes that are difficult to identify, which may affect the physical properties of the rubber composition. Regarding the particle size of the metal, metal compound, and composite in the rubber composition of this embodiment, from the viewpoint of a balance of properties such as preventing contamination of the molding die, preventing peeling of the rubber composition from the bale molded body, and improving the smoothness when the rubber composition for crosslinking is made into a sheet, it is preferable that 60 vol% or more of the total volume of the particles (100 vol%) be 0.1 to 100 μm, and more preferably 80 vol% or more be in the above numerical range. The particle size of the metal, metal compound, and composite in the rubber composition can be measured by dissolving the rubber composition containing the metal, metal compound, or composite in an inert solvent and analyzing the resulting polymer solution with a laser diffraction particle size distribution analyzer.

[0039] The rubbery polymer (A) preferably contains a tin atom or a nitrogen atom, more preferably a nitrogen atom, from the viewpoint of the peel resistance of the rubber composition from the bale molded product of the rubber composition and the fuel economy when made into a tire.

[0040] From the viewpoint of dispersibility of silica when producing a tire using silica, the rubbery polymer (A) preferably has a modification rate of 40% by mass or more, more preferably 60% by mass or more, and even more preferably 70% by mass or more, as measured by a column adsorption GPC method. In this specification, the "modification ratio" represents the mass ratio of the polymer having a nitrogen atom-containing functional group to the total amount of the rubbery polymer (A). The position at which the nitrogen atom is introduced into the rubbery polymer (A) may be any of the polymerization initiation terminal of the rubbery polymer (A), in the molecular chain (including the graft product), or at the polymerization terminal.

[0041] When the rubbery polymer (A) is a hydrogenated product of a conjugated diene polymer, from the viewpoints of polymerization productivity, a high modification rate, and wear resistance and fuel economy when made into a tire, it is preferable to use a coupling agent containing a tin atom or a nitrogen atom to introduce a tin atom or a nitrogen atom into the rubbery polymer (A), and it is more preferable to use a coupling agent containing a nitrogen atom to introduce nitrogen.

[0042] As the nitrogen atom-containing coupling agent, from the viewpoints of polymerization productivity and a high modification rate, an isocyanate compound, an isothiocyanate compound, an isocyanuric acid derivative, a nitrogen group-containing carbonyl compound, a nitrogen group-containing vinyl compound, a nitrogen group-containing epoxy compound, a nitrogen group-containing alkoxysilane compound, and the like are preferred. As these nitrogen atom-containing coupling agents, nitrogen group-containing alkoxysilane compounds are more preferred from the viewpoints of polymerization productivity of the rubbery polymer (A), high modification rate, and tensile strength when made into a tire.

[0043] Examples of the nitrogen group-containing alkoxysilane compound include, but are not limited to, 2,2-dimethoxy-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane, 2,2-diethoxy-1-(3-triethoxysilylpropyl)-1-aza-2-silacyclopentane, 2,2-dimethoxy-1-(4-trimethoxysilylbutyl)-1-aza-2-silacyclohexane, 2,2-dimethoxy-1-(5-trimethoxysilylpentyl) -1-Aza-2-silacycloheptane, 2,2-dimethoxy-1-(3-dimethoxymethylsilylpropyl)-1-aza-2-silacyclopentane, 2,2-diethoxy-1-(3-diethoxyethylsilylpropyl)-1-aza-2-silacyclopentane, 2-methoxy,2-methyl-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane, 2-ethoxy,2-ethyl-1-(3-triethoxysilylpropyl)-1-aza-2-silacyclopentane Clopentane, 2-methoxy, 2-methyl-1-(3-dimethoxymethylsilylpropyl)-1-aza-2-silacyclopentane, and 2-ethoxy, 2-ethyl-1-(3-diethoxyethylsilylpropyl)-1-aza-2-silacyclopentane, tris(3-trimethoxysilylpropyl)amine, tris(3-methyldimethoxysilylpropyl)amine, tris(3-triethoxysilylpropyl)amine, tris(3-methyldiethoxysilylpropyl)amine Amines, tris(trimethoxysilylmethyl)amine, tris(2-trimethoxysilylethyl)amine, and tris(4-trimethoxysilylbutyl)amine, tetrakis[3-(2,2-dimethoxy-1-aza-2-silacyclopentane)propyl]-1,3-propanediamine, tetrakis(3-trimethoxysilylpropyl)-1,3-propanediamine, tetrakis(3-trimethoxysilylpropyl)-1,3-bisaminomethylcyclohexane, and N 1 -(3-(bis(3-(trimethoxysilyl)propyl)amino)propyl)-N 1 -methyl-N 3 -(3-(methyl(3-(trimethoxysilyl)propyl)amino)propyl)-N 3-(3-(trimethoxysilyl)propyl)-1,3-propanediamine.

[0044] When the rubber-like polymer (A) is produced by copolymerizing ethylene and a conjugated diene monomer, the rubber composition of this embodiment has the advantage that the amount of metal contained can be easily controlled to a desired value. Furthermore, from the viewpoint of fuel economy, abrasion resistance, and flexibility when the rubber composition of this embodiment is used in a tire, it is preferable that the rubber polymer (A) contains at least one of a tin atom, a nitrogen atom, and a silicon atom. From the viewpoint of the productivity of the rubbery polymer (A), it is preferable to carry out a method of introducing at least one of a tin atom, a nitrogen atom, and a silicon atom using a coupling agent containing a tin atom, a nitrogen atom, or a silicon atom when the conversion rate of the polymerization reaction reaches 100%. Examples of coupling agents containing a tin atom, a nitrogen atom, or a tin atom include, but are not limited to, tin-containing compounds such as bis(1-octadecylmaleate)dioctyltin, isocyanate compounds such as 4,4-diphenylmethane diisocyanate, and alkoxysilane compounds such as glycidylpropyltrimethoxysilane.

[0045] (Physical Properties of Rubber Polymer (A) and Rubber Composition) <Glass transition temperature> The glass transition temperature of the rubbery polymer (A) is preferably −90° C. or higher, more preferably −80° C. or higher, and even more preferably −75° C. or higher, from the viewpoint of tensile strength when made into a tire. On the other hand, from the viewpoint of the cut resistance of the sheet during tire production and the flexibility of the tire when made into a tire, the temperature is preferably -15°C or lower, more preferably -30°C or lower, and even more preferably -40°C or lower. The glass transition temperature is determined in accordance with ISO 22768:2006 by recording a DSC curve while increasing the temperature within a predetermined temperature range, and the peak top (inflection point) of the DSC differential curve is taken as the glass transition temperature.

[0046] <Weight average molecular weight> The weight average molecular weight of the rubbery polymer (A) is preferably 150,000 or more, more preferably 200,000 or more, from the viewpoints of the shape stability of the bale molded product of the rubber composition of this embodiment and the tensile strength and abrasion resistance of the crosslinked product using the rubber composition. On the other hand, from the viewpoint of processability when the rubber composition is made into a rubber composition for crosslinking, the molecular weight is preferably 1,000,000 or less, more preferably 600,000 or less, and even more preferably 500,000 or less. The molecular weight distribution (=weight average molecular weight / number average molecular weight) of the rubbery polymer (A) is preferably 2.0 or less, more preferably 1.8 or less, and even more preferably 1.6 or less, from the viewpoint of fuel economy when the rubber composition of this embodiment is used in a tire. On the other hand, from the viewpoint of processability when the rubber composition of the present embodiment is made into a rubber composition for crosslinking, the modulus is preferably 1.05 or more, more preferably 1.2 or more, and even more preferably 1.4 or more. The weight average molecular weight and molecular weight distribution can be calculated from the polystyrene-equivalent molecular weight measured by GPC (gel permeation chromatography), and can be measured by the method described in the Examples below.

[0047] <Mooney viscosity> The Mooney viscosity of the rubbery polymer (A) and the rubber composition of this embodiment is an index containing information such as the molecular weight, molecular weight distribution, degree of branching, and content of softener of the rubbery polymer (A). The Mooney viscosity of the rubber composition of the present embodiment measured at 100°C is preferably 40 or more, more preferably 50 or more, and even more preferably 55 or more, from the viewpoints of abrasion resistance, handling stability, and breaking strength when the rubber composition for crosslinking is used in a tire. On the other hand, from the viewpoints of the productivity of the rubbery polymer (A) and the rubber composition of this embodiment, and the processability when made into a resin composition blended with a filler or the like, it is preferably 170 or less, more preferably 150 or less, even more preferably 130 or less, and even more preferably 110 or less. The Mooney viscosity can be measured by the method specified in ISO289.

[0048] (Rubber softener (D)) The rubber composition of this embodiment may contain a rubber softener (D) as needed. The content of the rubber softener (D) in the rubber composition of this embodiment is preferably 30% by mass or less. In the rubber composition of this embodiment, the content of the rubber softener (D) is preferably 1 to 30 mass % in order to improve the productivity of the rubber polymer (A) and the processability when an inorganic filler or the like is compounded during tire production. When the molecular weight of the rubbery polymer (A) is high, for example, when the weight average molecular weight exceeds 1,000,000, the content of the rubber softener (D) is preferably 15 to 30 mass%. On the other hand, when a filler is compounded to prepare a rubber composition, the content of the rubber softener (D) is preferably 1 to 15 mass% from the viewpoint of widening the degree of freedom in the amount of filler compounded. This provides the effect of improving processability during compound preparation. The content of the rubber softener (D) in the rubber composition of this embodiment is more preferably 20% by mass or less, even more preferably 10% by mass or less, and even more preferably 5% by mass or less, from the viewpoint of suppressing deterioration over time when made into a tire.

[0049] The rubber softener (D) is not particularly limited, but examples thereof include extender oil, liquid rubber, and resin. As the rubber softener, extender oils are preferred from the viewpoints of processability, productivity and economy. The method for adding a rubber softener to the rubber composition of the present embodiment is not limited to the following method, but a preferred method is to add a rubber softener (D) to a polymer solution, mix, and remove the solvent from the resulting polymer solution containing the rubber softener.

[0050] Preferred extender oils include, but are not limited to, aromatic oils, naphthenic oils, paraffin oils, and the like. Among these, from the viewpoints of environmental safety, oil bleeding prevention, and wet grip properties, aroma substitute oils having a polycyclic aromatic (PCA) content of 3 mass% or less according to the IP346 method are preferred. Examples of aroma substitute oils include TDAE (Treated Distillate Aromatic Extracts), MES (Mild Extraction Solvate), and RAE (Residual Aromatic Extracts), as shown in Kautschuk Gummi Kunststoffe 52(12)799(1999).

[0051] [Method for manufacturing bale molded body] The method for producing a bale molded body of this embodiment includes a step of polymerizing a rubbery polymer (A) in a solution, a step of adding aluminum (B) to the solution containing the rubbery polymer (A) to obtain a rubber composition, and a step of molding the rubber composition. As described above, aluminum (B) can be contained in the rubber composition by using a catalyst in the polymerization step or a catalyst in the hydrogenation step.

[0052] As a method of polymerizing or copolymerizing a conjugated diene monomer and then hydrogenating it, as described in WO 96 / 05250, JP 2000-053706, WO 2003 / 085010, WO 2019 / 151126, WO 2019 / 151127, WO 2002 / 002663, and WO 2015 / 006179, a method is preferred in which a conjugated diene monomer is polymerized by anionic polymerization under various additives and conditions, and then copolymerized with other monomers as needed, and then hydrogenated.

[0053] Examples of conjugated diene monomers used in the polymerization step include 1,3-butadiene, isoprene, 2,3-dimethyl-1,3-butadiene, 1,3-pentadiene, 3-methyl-1,3-pentadiene, 1,3-hexadiene, and 1,3-heptadiene. Among these, from the viewpoint of industrial availability, 1,3-butadiene and isoprene are preferred, and 1,3-butadiene is more preferred. These may be used alone or in combination of two or more.

[0054] As the polymerization monomer, a conjugated diene monomer or a monomer other than ethylene can be used as needed. The other monomer is not particularly limited, but from the viewpoint of mechanical strength when made into a tire, a vinyl aromatic monomer is preferred. Examples of vinyl aromatic monomers include, but are not limited to, styrene, p-methylstyrene, α-methylstyrene, vinylethylbenzene, vinylxylene, vinylnaphthalene, diphenylethylene, vinylbenzyldimethylamine, (4-vinylbenzyl)dimethylaminoethyl ether, N,N-dimethylaminoethylstyrene, N,N-dimethylaminomethylstyrene, and tertiary amino group-containing diphenylethylenes (e.g., 1-(4-N,N-dimethylaminophenyl)-1-phenylethylene). Among these, styrene is preferred from the viewpoint of industrial availability. These may be used alone or in combination of two or more. As the polymerization monomer, in addition to the conjugated diene monomer and vinyl aromatic monomer, other monomers can be used as needed. Examples of other monomers include, but are not limited to, unsaturated carboxylic acid esters, unsaturated carboxylic acids, α,β-unsaturated nitrile compounds, α-olefins (butylene, propylene, pentene, hexene, etc.), ethylene, myrcene, ethylidene norbornene, isopropylidene norbornene, cyclopentadiene, and divinylbenzene.

[0055] When the rubbery polymer (A) is a copolymer of ethylene and a conjugated diene monomer, preferred methods for copolymerizing ethylene and a conjugated diene monomer include those described in, for example, WO 2019 / 078083, WO 2019 / 171679, and WO 2019 / 142501. A preferred method involves copolymerizing ethylene, a conjugated diene monomer, and, if necessary, other monomers by coordination polymerization under various additives and conditions. As the conjugated diene monomer, the above-mentioned conjugated diene monomers can be used. The other monomer is not particularly limited, but from the viewpoint of the balance of breaking strength, fuel economy, wet skid resistance, and abrasion resistance when used in a tire, it is preferable to contain a vinyl aromatic monomer or a non-conjugated polyene compound monomer. As the vinyl aromatic monomer, the above-mentioned vinyl aromatic monomers can be used. As the polymerization monomer, in addition to the conjugated diene monomer, ethylene, and vinyl aromatic monomer, other monomers may be used as required. As the other monomer, the other monomers described above can be used.

[0056] When an aluminum compound is added as a polymerization catalyst or hydrogenation catalyst during the production of the rubbery polymer (A), the amount of the aluminum compound in terms of metal is adjusted so that the aluminum content in the finally obtained rubbery polymer (A) is 2 ppm or more and 200 ppm or less. From the viewpoint of improving the polymerizability of the rubbery polymer (A) and facilitating adjustment of the content in a post-polymerization step, the amount of the aluminum compound (metal equivalent) added during production of the rubbery polymer (A) is preferably 5 ppm or more and less than 300 ppm, more preferably 20 ppm or more and less than 250 ppm, even more preferably 35 ppm or more and less than 220 ppm, and even more preferably 45 ppm or more and less than 200 ppm. Furthermore, when a metal compound of Group 3 and / or Group 4 of the periodic table is added as a polymerization catalyst or hydrogenation catalyst during the production of the rubbery polymer (A), the amount of such metal added (metal equivalent amount) is preferably adjusted so that the content of Group 3 and / or Group 4 metal (C) of the periodic table in the finally obtained rubbery polymer (A) is 120 ppm or less, which is a preferred range, and more preferably 3 ppm or more and 120 ppm or less. From the viewpoints of improving the polymerizability of the rubbery polymer (A) and facilitating adjustment of the content in steps after polymerization, the amount of Group 3 and / or Group 4 metal compound added during production of the rubbery polymer (A) (metal equivalent amount) is preferably 6 ppm or more and 200 ppm or less, more preferably 15 ppm or more and 140 ppm or less, and even more preferably 20 ppm or more and 120 ppm or less.

[0057] In the production process of the rubbery polymer (A), when hydrogenation is carried out after polymerization or copolymerization of a conjugated diene monomer, the vinyl bond content of the conjugated diene monomer units of the conjugated diene-based polymer before hydrogenation is preferably 10 mol % or more, and more preferably 20 mol % or more, from the viewpoints of productivity of the rubbery polymer (A) and high wet skid resistance when made into a tire. Furthermore, from the viewpoint of mechanical strength when used in a tire, the content is preferably 75 mol % or less, more preferably 60 mol % or less, even more preferably 45 mol % or less, and even more preferably 30 mol % or less. The vinyl bond content can be measured by the method described in the examples below. The polymerization step and the hydrogenation step may each be carried out in a batch or continuous manner.

[0058] After the polymerization step of the rubbery polymer (A) or after the hydrogenation step, it is preferable to add a deactivator, neutralizer, etc. to the polymerization solution in order to adjust the metal content in the rubber composition of this embodiment to a desired range. The quenching agent is not limited to the following, but examples thereof include water; and alcohols such as methanol, ethanol, and isopropanol. Examples of neutralizing agents include, but are not limited to, carboxylic acids such as stearic acid, oleic acid, and versatic acid (a highly branched carboxylic acid mixture having 9 to 11 carbon atoms, mainly 10 carbon atoms); aqueous solutions of inorganic acids; and carbon dioxide gas. After the polymerization step of the rubbery polymer (A), it is preferable to add a rubber stabilizer from the viewpoint of preventing gel formation and improving processing stability. The rubber stabilizer is not limited to the following, but preferred examples include antioxidants such as 2,6-di-tert-butyl-4-hydroxytoluene (hereinafter also referred to as "BHT"), n-octadecyl-3-(4'-hydroxy-3',5'-di-tert-butylphenol) propionate, and 2-methyl-4,6-bis[(octylthio)methyl]phenol.

[0059] Various additives may be further added to the rubber composition of the present embodiment as needed. As additives, fillers or resin components serving as tackifiers, which will be described later, can be added as master batches in a process prior to molding the rubber composition into a bale. In this case, the amount of additive added is preferably 15% by mass or less of the rubber composition. In the rubber composition of this embodiment, from the viewpoints of preventing contamination of the molding die, preventing peeling of the rubber composition from the bale molded body, and facilitating adhesion of the packaging sheet to the bale molded body, the content of the rubber polymer (A), aluminum (B), Group 3 and / or Group 4 metal (C), and rubber softener (D) is preferably 85% by mass or more, more preferably 95% by mass or more, and even more preferably 97% by mass or more.

[0060] In the process for producing the rubber composition, after the step of polymerizing the rubbery polymer (A) in a solution, the solvent is removed from the polymer solution. Examples of methods for removing the solvent from the polymer solution include flushing, steam stripping, methods using a drying conveyor after dehydration, a devolatilizing extruder, a drum dryer, and a devolatilizing kneader. The method using steam stripping is preferred from the viewpoint of small thermal history and easy adjustment of the metal content in the rubber composition to a desired amount. In particular, the method using steam stripping is preferred for the rubber polymer (A) that has been subjected to a coupling reaction using a coupling agent containing a nitrogen atom, since it is difficult to adjust the metal content. Examples of steam stripping and treatment methods before and after it include those described in JP-A-10-168101, JP-A-10-204136, WO 2013-146530, and JP-A-2019-131810.

[0061] In the manufacturing method of the bale molded body of this embodiment, in the manufacturing process of the rubber composition constituting the bale molded body, it is preferable to carry out a desolvation process in which the solvent is removed from the polymer solution by steam stripping, and a screening process in which the stripping water is separated from the polymer slurry and water-containing crumbs are extracted, as a step prior to the extrusion drying process. Furthermore, a flushing step may be performed prior to steam stripping to increase the concentration of the solution. As a preliminary step to the extrusion drying step, a desolvation step is carried out in which the solvent is removed from the polymer solution by steam stripping, thereby obtaining a solvent-free slurry in which porous granular crumbs containing moisture are dispersed in hot water. By carrying out a screening step in which the stripping water is separated from the polymer slurry and the wet crumbs are taken out, porous granular crumbs containing water can be obtained. If necessary, it is preferable to carry out a squeezing and dehydrating step in which water is removed using a roll, a screw compression squeezer, etc. By using these dehydrating steps, it is possible to obtain hydrous crumbs with a lower moisture content prior to the extrusion drying step.

[0062] A preferred method for achieving the aluminum (B) content requirement of 2 ppm to 200 ppm in the rubber composition constituting the bale molded article of this embodiment by steam stripping, while also precisely adjusting the amounts of lanthanoid element and titanium to obtain a rubber composition containing the desired amount of metal residue, is to adjust the conditions for contacting the solution of the rubbery polymer (A) after polymerization with hot water or steam as follows: Specific examples include adjusting the pressure at which the solution of the rubbery polymer (A) is introduced, adjusting the pressure, temperature, and amount of steam, adding a dispersant such as a phosphate ester or a salt thereof, e.g., polyoxyalkylene alkyl ether phosphate, or a surfactant such as a nonylphenoxy polyethylene glycol phosphate ester or a salt thereof, to the steam, and adjusting the shape and rotation speed of the rotor used to mix the solution of the rubbery polymer (A) after polymerization with hot water or steam.

[0063] In the method for producing the rubber composition of this embodiment, from the viewpoint of economy and metal removability, it is preferable to add an alcohol compound as a deactivating agent to the solution of the rubbery polymer (A), and it is more preferable to add in advance to the rubbery polymer (A) the above-mentioned dispersants and surfactants that can be added during steam stripping.

[0064] Methods for reducing the aluminum (B) content in the rubber composition of this embodiment include adding an alcohol compound as a deactivator to the polymer solution after polymerization in an amount of 0.5 times or more, preferably 1.0 times or more, by mole relative to the number of moles of the rubber-like polymer (A); setting the volume ratio of steam to the rubber-like polymer (A) solution in the steam stripping step to 0.1 or more, preferably 0.2 or more; lowering the treatment rate; and adding a surfactant to the polymer solution in an amount of 100 ppm or more, preferably 200 ppm, relative to the polymer.

[0065] The linear velocity of the rotor in the steam stripping step is preferably 5 m / s or more and 20 m / s or less, more preferably 10 m / s or more and 20 m / s or less. In the process for producing the rubber composition of this embodiment, when 300 ppm or more of aluminum, in terms of metal, is added to the rubbery polymer (A), it is preferable to add 200 ppm or more of a surfactant relative to the rubbery polymer (A) to the rubbery polymer (A) solution, and it is preferable that the rotating blades in the steam stripping step have a linear rotation speed of 15 m / s or more and 20 m / s or less. In the process for producing the rubber composition of this embodiment, when aluminum is added to the rubber polymer (A) in an amount of 200 ppm or more and less than 300 ppm in terms of metal, it is preferable that the rotating blades in the steam stripping step have a linear rotation speed of 10 m / s or more and 20 m / s or less. In the process for producing the rubber composition of this embodiment, when aluminum is added to the rubbery polymer (A) in an amount of less than 200 ppm in terms of metal, it is preferable that the rotating blade in the steam stripping step has a linear rotation speed of 5 m / s or more and 20 m / s or less, and it is preferable that a surfactant is added to the rubbery polymer (A) solution in an amount of less than 100 ppm relative to the rubbery polymer (A).

[0066] After the steam stripping step, it is preferable to carry out steps of extrusion drying and hot air drying, as described in, for example, WO 2013-146530. These allow a porous, granular crumb to be obtained. The particle size of the crumbs is preferably 0.1 mm or more, and more preferably 0.5 mm or more, from the viewpoint of obtaining resistance to detachment of the rubber composition from the bale molded body and resistance to scattering during drying. On the other hand, from the viewpoint of drying the remaining solvent and water in the crumb and the expansion resistance of the bale molded body after molding of the rubber composition, the thickness is preferably 30 mm or less, and more preferably 20 mm or less. The particle size of the crumbs can be adjusted either during the process of removing the solvent and drying, or by processing the produced crumbs. When adjusting the particle size of the crumbs during the process of removing the solvent and drying the crumbs, for example, methods such as adjusting the molecular weight, composition, or structure of the rubbery polymer (A), adjusting the amount of rubber softener (D) added to the solution of the rubbery polymer (A), adjusting the hole diameter of the die of the extrusion dryer, and adjusting the conditions when the solution of the rubbery polymer (A) is poured into hot water to remove the solvent can be mentioned. When the produced crumbs are processed and adjusted, for example, the crumbs may be sieved or crushed or pulverized in a mixer or granulator.

[0067] The specific surface area of ​​the rubbery polymer (A) obtained in the polymerization step or the crumb of the rubber composition of the present embodiment is preferably 0.7 to 3.2 m from the viewpoint of handleability. 2 / g, more preferably 1.0 to 3.0m 2 / g. The specific surface area of ​​the crumb is 0.7m 2 When the specific surface area of ​​the crumb is 3.2 m / g or more, the area where one crumb adheres to the surrounding crumbs increases during molding, making it difficult for the crumb to peel off from the molded body. 2 If the crumb density is 1 / g or less, the crumb particles are compressed more densely during molding, and the voids between the crumbs are reduced, thereby suppressing the expansion of the bale molded body. The method for adjusting the specific surface area of ​​the crumbs to fall within the above range is not particularly limited, but for example, a method of sieving the crumbs and adjusting the composition of each sieved crumb can be mentioned.

[0068] The residual solvent content in the rubber composition of this embodiment is preferably low from the viewpoint of reducing odor and VOCs. It is preferably 5000 ppm or less, more preferably 3000 ppm or less, and even more preferably 1500 ppm or less. From the viewpoint of economy, it is preferably 50 ppm or more, more preferably 150 ppm or more, and even more preferably 300 ppm or more.

[0069] (Water content in rubber composition) The water content in the rubber composition of the present embodiment is preferably 0.05% by mass or more and 1.5% by mass or less. The water content in the rubber composition is preferably 0.05% by mass or more, more preferably 0.1% by mass or more, and even more preferably 0.2% by mass or more, from the viewpoint of suppressing gel formation during drying after solvent removal. On the other hand, from the viewpoint of suppressing condensation and discoloration resistance of the rubber composition, the content is preferably 1.5% by mass or less, more preferably 1.0% by mass or less, and even more preferably 0.8% by mass or less. The water content in the rubber composition can be controlled within the above-mentioned range by adjusting the particle size of the crumbs, the shape of the crumbs, and the conditions of the drying process.

[0070] The bale molded article of this embodiment is a molded article of the rubber composition of this embodiment described above, and is a block-shaped molded article from the viewpoint of handling. The bale molded body of this embodiment is 1,000 cm 3 It is more preferable that the above-mentioned block-shaped molded article is used, and it is even more preferable that the bale is a rectangular parallelepiped bale weighing 17.5 kg to 35 kg.

[0071] The method for producing a bale molded article of this embodiment includes a step of molding the rubber composition obtained as described above. Methods for molding rubber compositions include, for example, a method of compressing crumbs of the rubber composition, and a method of preparing sheets of the rubber composition and compressing the sheets one on top of the other. 2 / g~3.2m 2 In view of moldability, it is preferable to further carry out a step of sieving the crumbs before molding. Since the crumbs adhere to each other during compression molding, the specific surface area of ​​the bale molded product is lower than that of the crumbs. The adhesion of the crumbs during compression molding can be controlled by adjusting the molecular weight, composition, and structure of the rubber polymer (A), the rubber softener composition, and the temperature and pressure during compression. For example, if you want to increase the adhesion of the crumbs and decrease the specific surface area of ​​the bale molded product, it is preferable to select a method of decreasing the molecular weight of the rubber polymer (A), a method of increasing the amount of the rubber softener, or a method of increasing the temperature and pressure during compression.

[0072] The specific surface area of ​​the bale molded article of this embodiment is preferably 0.005 to 0.05 m from the viewpoint of film packaging properties. 2 / g, more preferably 0.01 to 0.04 m 2 / g. The specific surface area of ​​the bale compact is 0.005m 2 / g or more, the expansion of the bale is suppressed, and the specific surface area of ​​the bale compact is 0.05m 2 / g or less is preferable because it reduces the separation of crumbs from the bale molded body. The specific surface area of ​​the bale molded body can be determined by the BET method. Generally, the specific surface area of ​​a large-sized bale molded article may vary depending on the position, so it is preferable to measure the rubber composition by sampling it from near the center of the bale molded article.

[0073] It is preferable that the crumbs of the rubber composition are sieved according to particle size before being molded into a bale molded article, and then mixed in an appropriate ratio. If the specific surface area of ​​the bale molded body formed using the crumbs after solvent removal exceeds the upper limit of the above range, it is preferable to increase the composition of large particle size crumbs and decrease the composition of small particle size crumbs among the sieved crumbs, and if the specific surface area of ​​the bale molded body is less than the lower limit of the above range, it is preferable to decrease the composition of large particle size crumbs and increase the composition of small particle size crumbs among the sieved crumbs.

[0074] The molding compression pressure for the bale molded body of this embodiment is preferably 3 to 30 MPa, more preferably 10 to 20 MPa. When the molding compression pressure is 30 MPa or less, the molding and compression device can be designed compactly, and installation efficiency is good. When the molding compression pressure is 3 MPa or more, moldability is good. When moldability is good, the surface of the bale molded body is smooth, there is no peeling of the rubber-like polymer (A) after the molding process, and expansion after molding tends to be suppressed.

[0075] The temperature of the rubber composition during bale molding is preferably 30 to 120°C, and more preferably 50 to 100°C from the viewpoint of reducing residual solvent and suppressing thermal degradation. If the temperature of the rubber composition during bale molding is 30°C or higher, moldability is good, while if the temperature is 120°C or lower, gel formation due to thermal degradation of the rubber composition is suppressed, which is preferable. The higher the temperature and pressure during bale molding, the smaller the specific surface area of ​​the bale molded body. The pressure retention time during bale formation is preferably 3 to 30 seconds, more preferably 5 to 20 seconds. If the pressure retention time during compression is 30 seconds or less, production efficiency is good, and if it is 5 seconds or more, moldability is good.

[0076] The bale molded bodies of this embodiment are preferably wrapped in a resin film (wrapping sheet) to prevent the bale molded bodies from sticking together. Examples of the resin type of the film include polyethylene, ethylene copolymer resin, polystyrene, high impact polystyrene, and PET. From the viewpoint of ease of handling during transportation of the bale molded body and preventing condensation from forming in the gap between the packaging sheet and the bale molded body, it is preferable that the packaging sheet has good adhesion. The bale molded article of this embodiment can be used, for example, for storage in a container for transportation. If the expansion rate of the bale molded article one day after molding is less than 5%, it will be easy to store in the container, which is preferable.

[0077] [Rubber composition for crosslinking] From the viewpoint of high mechanical strength, etc., it is preferable that a crosslinking agent be added to the rubber composition constituting the bale molded article of this embodiment to form a crosslinkable rubber composition, which is then crosslinked to form a crosslinked product and used for various purposes. The rubber composition for crosslinking of this embodiment contains at least the rubber composition of this embodiment described above and a crosslinking agent, and may further contain other rubber components, fillers, and the like, as necessary. The other rubbers are not particularly limited and can be appropriately selected depending on the purpose. Examples include styrene-butadiene rubber (emulsion polymerization tire or solution polymerization type), natural rubber, polyisoprene, butadiene rubber, acrylonitrile-butadiene rubber (NBR), chloroprene rubber, ethylene-propylene rubber (EPM), ethylene-propylene-non-conjugated diene rubber (EPDM), butyl rubber, polysulfide rubber, silicone rubber, fluororubber, and urethane rubber. These may be used alone or in combination of two or more.

[0078] In the rubber composition for crosslinking of this embodiment, the content of the rubber polymer (A) relative to the total amount of rubber components, which is the sum of the rubber polymer (A) and other rubber components, is preferably 20% by mass or more, more preferably 40% by mass or more, even more preferably 60% by mass or more, and even more preferably 80% by mass or more, from the viewpoint of exerting the effects of the present invention.

[0079] Furthermore, a filler may be added to the rubber composition for crosslinking of the present embodiment, if necessary, for the purpose of improving reinforcement properties, etc. The content of the filler in the rubber composition for crosslinking of this embodiment can be appropriately selected depending on the purpose, but is preferably 10 to 100 parts by mass, more preferably 20 to 80 parts by mass, when the total amount of rubber components, which is the sum of the rubber-like polymer (A) and other rubber components, is 100 parts by mass. When the filler content is 10 parts by mass or more, the effect of improving reinforcing properties due to the addition of the filler can be obtained, and when the filler content is 100 parts by mass or less, a significant decrease in fuel efficiency when made into a tire can be avoided, while preventing breakage of the molded sheet during processing and ensuring good cohesion of the compound.

[0080] The filler to be compounded in the cross-linking rubber composition of the present embodiment is not limited to the following, but examples thereof include carbon black, silica, aluminum hydroxide, clay, alumina, talc, mica, kaolin, glass balloons, glass beads, calcium carbonate, magnesium carbonate, magnesium hydroxide, magnesium oxide, titanium oxide, potassium titanate, and barium sulfate. Among these, carbon black is preferably used. These may be used alone or in combination of two or more. The carbon black can be appropriately selected depending on the purpose, and examples thereof include FEF, GPF, SRF, HAF, N339, IISAF, ISAF, SAF, etc. These may be used alone or in combination of two or more. The nitrogen adsorption specific surface area (N2SA, measured in accordance with JIS K6217-2:2001) of the carbon black can be appropriately selected depending on the purpose. When the rubber composition for crosslinking of the present embodiment is used as a composition for a fuel-saving tire tread, precipitated silica is preferably used as the filler.

[0081] The rubber composition for crosslinking of the present embodiment may contain a silane coupling agent from the viewpoint of improving the dispersibility of the filler and improving the tensile strength of the crosslinked product. The silane coupling agent has the function of strengthening the interaction between the rubber component and the inorganic filler, and from this viewpoint, it is preferable that the silane coupling agent has a group having affinity or bonding properties for both the rubber component and the inorganic filler, and has a sulfur-bonding moiety and an alkoxysilyl group or silanol group moiety in one molecule. Such compounds include, but are not limited to, bis-[3-(triethoxysilyl)-propyl]-tetrasulfide, bis-[3-(triethoxysilyl)-propyl]-disulfide, bis-[2-(triethoxysilyl)-ethyl]-tetrasulfide, S-[3-(triethoxysilyl)-propyl]octanethioate and condensates of S-[3-(triethoxysilyl)-propyl]octanethioate with [(triethoxysilyl)-propyl]thiol, silanes bearing at least one thiol (—SH) functional group (referred to as mercaptosilanes) and / or at least one masked thiol group. The content of the silane coupling agent in the rubber composition for crosslinking of this embodiment is preferably 0.1 parts by mass or more and 30 parts by mass or less, more preferably 0.5 parts by mass or more and 20 parts by mass or less, and even more preferably 1.0 parts by mass or more and 15 parts by mass or less, relative to 100 parts by mass of the filler. When the content of the silane coupling agent is within the above range, the effect of adding the silane coupling agent tends to be more pronounced.

[0082] The rubber composition for crosslinking according to the present embodiment contains a crosslinking agent, which may be appropriately selected depending on the purpose, and examples thereof include sulfur-based crosslinking agents, organic peroxide-based crosslinking agents, inorganic crosslinking agents, polyamine crosslinking agents, resin crosslinking agents, sulfur compound-based crosslinking agents, and oxime-nitrosamine-based crosslinking agents. These may be used alone or in combination of two or more. Among these, sulfur-based crosslinking agents (vulcanizing agents) are more preferred for rubber compositions for tires, and sulfur is even more preferred.

[0083] The content of the crosslinking agent in the rubber composition for crosslinking of this embodiment is 0.1 parts by mass or more and 20 parts by mass or less per 100 parts by mass of the rubber component. From the viewpoint of high tensile strength and a high crosslinking rate, the content of the crosslinking agent is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, and even more preferably 1.5 parts by mass or more per 100 parts by mass of the rubber component. On the other hand, from the viewpoint of suppressing uneven crosslinking and obtaining high tensile strength, the content is preferably 20 parts by mass or less, more preferably 5 parts by mass or less, and even more preferably 3 parts by mass or less. The rubber component includes the above-mentioned rubbery polymer (A) and other rubber components.

[0084] The rubber composition for cross-linking of the present embodiment may contain a vulcanization accelerator in addition to the vulcanizing agent. Examples of the vulcanization accelerator include guanidine-based, aldehyde-amine-based, aldehyde-ammonia-based, thiazole-based, sulfenamide-based, thiourea-based, thiuram-based, dithiocarbamate-based, and xanthate-based compounds.

[0085] The rubber composition for crosslinking of the present embodiment may contain various additives other than the above-mentioned components, such as other softeners, fillers, heat stabilizers, antistatic agents, weather stabilizers, antioxidants, colorants, and lubricants. As other softeners, known softeners can be used. Other fillers include, for example, calcium carbonate, magnesium carbonate, aluminum sulfate, and barium sulfate. Known materials can be used as the heat stabilizer, antistatic agent, weather stabilizer, antioxidant, colorant, and lubricant.

[0086] (Method of kneading rubber composition for crosslinking) The crosslinkable rubber composition of this embodiment can be produced by mixing the rubbery polymer (A) and the crosslinking agent, and, if necessary, various additives such as silica-based inorganic fillers, carbon black and other fillers, silane coupling agents, and rubber softeners. The mixing method is not limited to the following, but examples thereof include a melt-kneading method using a general mixer such as an open roll, a Banbury mixer, a kneader, a single-screw extruder, a twin-screw extruder, or a multi-screw extruder, and a method in which the components are dissolved and mixed and then the solvent is removed by heating. Among these, the melt kneading method using a roll, a Banbury mixer, a kneader, or an extruder is preferred from the viewpoint of productivity and good kneading properties. As a mixing method, either a method in which the rubber component, filler, silane coupling agent, and additives are kneaded at once or a method in which they are mixed in several batches can be applied.

[0087] [Uses of bale molded body and rubber composition] The rubber composition constituting the bale molded article of this embodiment can be used for applications such as tire components, interior and exterior parts of automobiles, vibration-proof rubber, belts, footwear, foams, and materials for various industrial products. Among these, it is preferably used for tire parts. As tire components, the rubber composition can be used in various tire parts such as treads, carcasses, sidewalls, beads, etc., for example, fuel-efficient tires, all-season tires, high-performance tires, snow tires, studless tires, etc. In particular, the rubber composition of the present embodiment, when vulcanized, is excellent in abrasion resistance, fuel economy, wet skid resistance, snow performance, and a balance thereof, and therefore is suitably used as tire components for tire treads of fuel-efficient tires, high-performance tires, and snow tires. A conventional method can be used to manufacture a tire. For example, components typically used in tire manufacturing, such as a carcass layer, a belt layer, and a tread layer, each layer consisting of at least one selected from the group consisting of an unvulcanized rubber composition for crosslinking and a tire cord, are laminated on a tire building drum, and the drum is removed to form a green tire. The green tire is then heated and vulcanized in a conventional manner to manufacture a desired tire (e.g., a pneumatic tire). [Example]

[0088] Hereinafter, the present embodiment will be described in more detail with reference to specific examples and comparative examples, but the present embodiment is not limited to the following examples and comparative examples. Various physical properties in the examples and comparative examples were measured by the methods shown below.

[0089] [Physical Properties of Rubber Polymer (A) and Rubber Polymer (A) Before Hydrogenation] (Weight average molecular weight (Mw) of rubbery polymer (A) before hydrogenation) The chromatogram was measured using a GPC measuring device equipped with three connected columns packed with polystyrene gel, and the weight average molecular weight (Mw) of the rubbery polymer before hydrogenation was determined based on a calibration curve using standard polystyrene. The eluent used was THF containing 5 mmol / L triethylamine. The columns used were a guard column manufactured by Tosoh Corporation under the trade name "TSKguardcolumn SuperH-H" and columns manufactured by Tosoh Corporation under the trade names "TSKgel SuperH5000," "TSKgel SuperH6000," and "TSKgel SuperH7000." An RI detector (trade name "HLC8020" manufactured by Tosoh Corporation) was used under the conditions of an oven temperature of 40°C and a THF flow rate of 0.6 mL / min. 10 mg of the sample to be measured was dissolved in 20 mL of THF to prepare a measurement solution, and 20 μL of the measurement solution was injected into the GPC measurement device for measurement.

[0090] (Polymer Mooney Viscosity of Rubber Polymer (A) Before Hydrogenation) The rubber-like polymer before hydrogenation was used as a sample, and the Mooney viscosity was measured in accordance with ISO 289 using a Mooney viscometer (trade name "VR1132" manufactured by Ueshima Seisakusho Co., Ltd.) with an L-shaped rotor. The measurement temperature was 100°C. First, the sample was preheated at the test temperature for 1 minute, and then the rotor was rotated at 2 rpm. After 4 minutes, the torque was measured to determine the Mooney viscosity (ML (1+4) ) was decided.

[0091] (Modification rate of rubber polymer (A)) The modification rate of the rubbery polymer (A) was measured by the column adsorption GPC method as follows: The measurement was carried out by utilizing the property of the rubbery polymer modified with a nitrogen atom-containing functional group to be adsorbed onto a column. A sample solution containing a rubber-like polymer and a low-molecular-weight internal standard polystyrene was measured using a polystyrene-based column, and the amount of adsorption onto the silica-based column was measured from the difference between the chromatogram measured using the polystyrene-based column and the chromatogram measured using the silica-based column, and the modification rate was calculated. Specifically, it is as follows: Preparation of sample solution: 10 mg of the rubber polymer and 5 mg of standard polystyrene were dissolved in 20 mL of THF (tetrahydrofuran) to prepare a sample solution. GPC measurement conditions using a polystyrene column: THF containing 5 mmol / L triethylamine was used as the eluent, and 20 μL of the sample solution was injected into the instrument for measurement. The guard column used was a Tosoh Corporation "TSKguardcolumn SuperH-H" (trade name), and columns were Tosoh Corporation "TSKgel SuperH5000," "TSKgel SuperH6000," and "TSKgel SuperH7000" (trade names). The column oven temperature was 40°C, and the THF flow rate was 0.6 mL / min. A chromatogram was obtained using an RI detector (Tosoh Corporation HLC8020). GPC measurement conditions using a silica column: A Tosoh HLC-8320GPC column was used, and 50 μL of the sample solution was injected into the column using THF as the eluent. Chromatograms were obtained using an RI detector at a column oven temperature of 40°C and a THF flow rate of 0.5 mL / min. Zorbax PSM-1000S, PSM-300S, and PSM-60S columns were used, with a DIOL 4.6 x 12.5 mm 5 micron guard column connected to the column. How to calculate the denaturation rate: The total peak area of ​​the chromatogram using the polystyrene column was set to 100, the peak area of ​​the sample was set to P1, the peak area of ​​the standard polystyrene was set to P2, and the total peak area of ​​the chromatogram using the silica column was set to 100, the peak area of ​​the sample was set to P3, and the peak area of ​​the standard polystyrene was set to P4. The modification rate (%) was calculated using the following formula. Denaturation rate (%) = [1-(P2 x P3) / (P1 x P4)] x 100 (However, P1+P2=P3+P4=100)

[0092] (Bound styrene content of rubber polymer (A) before hydrogenation) As a sample, 100 mg of rubber-like polymer before hydrogenation was dissolved in chloroform to make up 100 mL, and the measurement sample was prepared. The amount of bound styrene (mass%) relative to 100 mass% of the rubber-like polymer before hydrogenation was measured based on the amount of absorption of ultraviolet light by the phenyl group of styrene (near 254 nm). Measurement equipment: A spectrophotometer "UV-2450" manufactured by Shimadzu Corporation was used.

[0093] (Microstructure of butadiene portion of rubbery polymer (A) before hydrogenation (1,2-vinyl bond content)) As a sample, 50 mg of the rubber-like polymer before hydrogenation was dissolved in 10 mL of carbon disulfide to prepare a measurement sample. Using a solution cell, infrared spectra were recorded from 600 to 1000 cm -1 The absorbance at a predetermined wave number was measured in the range of 1,2-vinyl bond content (mol%) was calculated according to the Hampton method (method described in R.R. Hampton, Analytical Chemistry 21, 923 (1949)). Measurement equipment: A Fourier transform infrared spectrophotometer "FT-IR230" manufactured by JASCO Corporation was used.

[0094] (Amount of styrene block in rubber polymer (A)) A chain consisting of eight or more styrene structural units was defined as a styrene block, and the amount of styrene block was calculated as follows. 400MHz measured using deuterated chloroform as a solvent 1 From the 1 H-NMR spectrum, the integral ratio of each chemical shift range of the following (a) was determined, and the amount of styrene block contained in the rubbery polymer was calculated. (a) Aromatic vinyl compounds with 8 or more chains: 6.00≦S<6.68

[0095] (Iodine value of rubber polymer (A)) The iodine value of the rubbery polymer (A) was calculated according to the method described in "JIS K 0070:1992".

[0096] (Amount of bound styrene (after hydrogenation), amount of ethylene structure, amount of conjugated diene monomer unit of rubber polymer (A)) Using a rubbery polymer as a sample, 1 The amount of bound styrene (after hydrogenation), the amount of ethylene structure, and the amount of conjugated diene monomer units were measured by H-NMR. 1 The conditions for H-NMR measurement are as follows: <Measurement conditions> Measuring equipment: JNM-LA400 (JEOL) Solvent: deuterated chloroform Measurement sample: Rubber-like polymer Sample concentration: 50mg / mL Observation frequency: 400MHz Chemical shift standard: TMS (tetramethylsilane) Pulse delay: 2.904 seconds Number of scans: 64 Pulse width: 45° Measurement temperature: 26℃

[0097] [Properties of Rubber Composition] (Metal content of rubber composition (Al content, Ti content)) The rubber compositions obtained in the examples and comparative examples described below were used as samples, and the aluminum content (Al content, unit: ppm) and titanium content (Ti content, unit: ppm) in the rubber compositions were measured through elemental analysis using an inductively coupled plasma (ICP, Inductive Coupled Plasma, manufactured by Shimadzu Corporation, device name: ICPS-7510).

[0098] (Water content of rubber composition) 50 g of the rubber composition was placed in a hot air dryer heated to 150° C. and dried for 3 hours, and the difference in mass of the rubber composition before and after drying was measured to determine the moisture content of the rubber composition.

[0099] [Evaluation of bale molded product of rubber composition] (Method for removing solvent from rubber composition solution) <Solvent removal condition 1> Assuming steam stripping, 20 L of 90°C hot water was placed in a 50 L container and a homogenizer (Homomixer MARK II (PRIMIX Corporation, product name, 0.2 kW)) was used. The rubber polymer solution was added dropwise at a rate of 200 g per minute for 30 minutes while stirring at 1000 rpm using a stirring rod, and the solvent was removed by continuing stirring for 30 minutes after the end of the addition. The rubber composition crumbs formed in the warm water were dried to obtain rubber composition crumbs.

[0100] <Solvent removal condition 2> Assuming steam stripping, 20 L of 90°C hot water was placed in a 50 L container and a homogenizer (Homomixer MARK II (PRIMIX Corporation, product name, 0.2 kW)) was used. The rubber polymer solution was added dropwise at a rate of 200 g per minute for 30 minutes while stirring at a rotation speed of 6000 rpm using a stirring rod, and the solvent was removed by continuing stirring for 30 minutes after the end of the addition. The rubber composition crumbs formed in the warm water were obtained by drying.

[0101] <Solvent removal condition 3> Assuming steam stripping, 20 L of 90°C hot water was placed in a 50 L container and a homogenizer (Homomixer MARK II (PRIMIX Corporation, product name, 0.2 kW)) was used. The rubber polymer solution was added dropwise at a rate of 200 g per minute for 30 minutes while stirring at a rotation speed of 12,000 rpm using a stirring rod, and the solvent was removed by continuing stirring for 30 minutes after the end of the addition. The rubber composition crumbs formed in the warm water were obtained by drying.

[0102] (Method for molding a bale molded product of a rubber composition) The crumbs prepared by the above method were heated to 60°C and then filled into a rectangular container having dimensions of 210 mm long, 105 mm short, and 200 mm deep, and compressed with a cylinder at a pressure of 3.5 MPa for 10 seconds to obtain a bale molded product of the rubber composition.

[0103] (Evaluation: Cold flow property of molded product of rubber composition) Using the bale molded under the above conditions, a load of 5 kg was applied at an ambient temperature of 25°C and humidity of 50% and left for 72 hours. The thickness change rate (%) was calculated from the thickness (H60) using the following formula. Thickness change rate (%) = (H0-H60) x 100 / H0 H0 indicates the thickness of the bale immediately after molding. The smaller the thickness change rate (index), the smaller the cold flow of the rubber bale during storage and the better its handling properties. If the index was less than 10, it was marked as ◎; if it was 10 or more but less than 20, it was marked as ○; if it was 20 or more but less than 40, it was marked as △; and if it was 40 or more, it was marked as ×. In practice, it must be less than 40, and preferably less than 20.

[0104] (Evaluation: Contamination resistance of molding mold) When 10 bale moldings were performed under the above conditions, the number of times that a total of 5 g or more of metal or crumbs adhered to the rectangular container was evaluated. If the number of times that metal or crumbs were found to be attached totaling 5g or more was 0, it was marked as ◎; if it was 1-2 times, it was marked as ○; if it was 3-4 times, it was marked as △; if it was 5 times or more, it was marked as ×. In practice, the number of times must be four or less, and preferably two or less.

[0105] (Evaluation: Heat degradation resistance) The thermal degradation resistance was evaluated by measuring the change in oxidation onset temperature before and after applying a thermal load. The body temperature of a Labo Plastomill 30C150 (Toyo Seiki Seisakusho) was set to 50°C, 50 g of the rubber composition was added, and the mixture was kneaded at 120 rpm for 5 minutes followed by a 5-minute break, for a total of 3 cycles of kneading. The oxidation onset temperatures of the rubber compositions before and after kneading were measured using a thermogravimetric differential thermal analyzer (STA 7200RV, HITACHI). When the temperature was raised from 30°C to 500°C at a rate of 10°C / min in an atmospheric air, the temperature at which an endothermic peak was confirmed was defined as the oxidation onset temperature, and the difference in the oxidation onset temperature of the rubber composition before and after the thermal load was applied was defined as ΔT and used as an index of heat degradation resistance. The smaller the ΔT, the better the resistance to heat deterioration and the more suppressed the deterioration of physical properties due to heat, which is preferable. If ΔT was 0° C. or more and less than 5° C., it was rated as ◎, if it was 5° C. or more and less than 8° C., it was rated as ○, if it was 8° C. or more and less than 12° C., it was rated as △, and if it was 12° C. or more, it was rated as ×. In practice, it needs to be less than 12° C., and it is preferable that it is less than 8° C.

[0106] (Evaluation: Peel resistance of rubber composition from molded article) Using the bale molded under the above conditions, a bale drop test was carried out to determine the amount of crumbs that had fallen off from the bale molded under the above conditions. Specifically, the bale was dropped vertically from a height of 100 cm onto a concrete floor, and the amount of crumbs that peeled off from the bale was measured. The smaller the amount of crumbs that peel off, the smaller the amount of crumbs that peel off from the bale molded body after the molding step in the actual bale molded body manufacturing process, so this is preferable. If this amount was less than 0.05% by mass of the total bale molded body, it was marked with an ⊚; if it was 0.05% by mass or more but less than 0.1% by mass, it was marked with an ◯; if it was 0.01% by mass or more but less than 0.2% by mass, it was marked with a △; and if it was 0.2% by mass or more, it was marked with an ×. In practice, it must be less than 0.2% by mass, and preferably less than 0.1% by mass.

[0107] (Evaluation: Adhesion of packaging sheet to molded product) A polyethylene film was adhered to an iron plate, and the bale molded body was placed on the polyethylene film. After leaving it for 72 hours at an ambient temperature of 25°C and humidity of 50% with a load of 5 kg applied, the adhesion between the polyethylene film and the bale molded body was evaluated. Specifically, the bale molded body was left standing on the iron plate, and the iron plate was gradually tilted until the angle between the iron plate and the ground was finally 90 degrees, and the plate was left standing in that state. If the bale did not fall for 10 seconds or more when the angle between the ground and the iron plate was 90 degrees, it was marked as ◎; if the bale fell for 1 second or more but less than 10 seconds when the angle between the ground and the iron plate was 90 degrees, it was marked as 〇; if the bale fell when the angle between the ground and the iron plate was 75 degrees or more but less than 90 degrees, or if it fell in less than 1 second after the angle became 90 degrees, it was marked as △; if the bale fell when the angle between the ground and the iron plate was 0 degrees or more but less than 75 degrees, it was marked as ×. In practice, it is necessary that the angle between the ground and the steel plate be 75 degrees or more so that the bale does not fall.

[0108] [Preparation of hydrogenation catalyst, rubbery polymer (A), and rubber composition] (Preparation of hydrogenation catalyst) In the examples and comparative examples described later, the hydrogenation catalysts used in preparing rubbery polymers were prepared by the following method. <Production Example 1> One liter of dried and purified cyclohexane was placed in a nitrogen-purged reaction vessel, and 100 mmol of bis(η5-cyclopentadienyl)titanium dichloride was added. With thorough stirring, an n-hexane solution containing 200 mmol of trimethylaluminum was added, and the mixture was allowed to react at room temperature for approximately 3 days to obtain a hydrogenation catalyst (TC-1).

[0109] <Production Example 2> One liter of dried and purified cyclohexane was placed in a nitrogen-purged reaction vessel, and 100 mmol of bis(η5-cyclopentadienyl)titanium dichloride was added. With thorough stirring, an n-hexane solution containing 300 mmol of trimethylaluminum was added, and the mixture was allowed to react at room temperature for approximately 3 days to obtain a hydrogenation catalyst (TC-2).

[0110] <Production Example 3> Two liters of dried and purified cyclohexane was placed in a nitrogen-purged reaction vessel, and 40 mmol of bis(η5-cyclopentadienyl)titanium di-(p-tolyl) and 150 g of 1,2-polybutadiene (1,2-vinyl bond content: approximately 85%) with a molecular weight of approximately 1,000 were dissolved therein. A cyclohexane solution containing 60 mmol of n-butyllithium was then added to the reaction vessel and reacted at room temperature for 5 minutes. Immediately afterwards, 40 mmol of n-butanol was added and stirred to obtain a hydrogenation catalyst (TC-3). The obtained catalysts (TC-1) to (TC-3) were stored at room temperature.

[0111] (Polymerization of rubbery polymer (A)) <(Polymerization Example 1) Rubber-like polymer (S) before hydrogenation> A 40 L internal volume, temperature-controllable autoclave equipped with a stirrer and a jacket was used as a reactor, and 2,160 g of 1,3-butadiene, 300 g of styrene, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 4.9 mmol of 2,2-bis(2-oxolanyl)propane as polar substances, which had been previously removed from impurities, were placed in the reactor, and the internal temperature of the reactor was maintained at 42°C. As a polymerization initiator, 33.2 mmol of n-butyllithium was fed into the reactor. After the polymerization reaction started, the temperature inside the reactor began to rise due to heat generated by the polymerization, and after the monomer conversion in the reactor reached 98%, 540 g of 1,3-butadiene was added and reacted. The final temperature inside the reactor reached 76°C. Two minutes after this reaction temperature peak, 4.1 mmol of 2,2-dimethoxy-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane (compound 1) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 15.0 mmol of methanol was added to this polymer solution as a reaction terminator, yielding a rubbery polymer solution (SS) before hydrogenation. A portion of the rubbery polymer solution (SS) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (S) before hydrogenation. The analysis results are shown in Table 1.

[0112] <(Polymerization Example 2) Rubber-like polymer (T) before hydrogenation> A 40 L internal volume, temperature-controllable autoclave equipped with a stirrer and a jacket was used as a reactor, and 2,100 g of 1,3-butadiene, 780 g of styrene, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 18.3 mmol of 2,2-bis(2-oxolanyl)propane as polar substances, which had been previously removed from impurities, were placed in the reactor, and the internal temperature of the reactor was maintained at 42°C. As a polymerization initiator, 26.2 mmol of n-butyllithium was fed into the reactor. After the polymerization reaction started, the temperature inside the reactor began to rise due to heat generated by the polymerization, and after the monomer conversion in the reactor reached 98%, 120 g of 1,3-butadiene was added and reacted. The final temperature inside the reactor reached 78°C. Two minutes after this reaction temperature peak, 3.3 mmol of N,N'-(1,4-phenylene)bis(4-(triethoxysilyl)butan-1-imine) (compound 2) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 12.6 mmol of methanol was added to this polymer solution as a reaction terminator, and a rubbery polymer solution (TS) before hydrogenation was obtained. A portion of the rubbery polymer solution (TS) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (T) before hydrogenation. The analysis results are shown in Table 1.

[0113] <(Polymerization Example 3) Rubber-like polymer (U) before hydrogenation> A 40 L internal volume, temperature-controllable autoclave equipped with a stirrer and a jacket was used as a reactor, and 450 g of styrene, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 13.1 mmol of 2,2-bis(2-oxolanyl)propane as polar substances, from which impurities had been removed in advance, were placed in the reactor, and the internal temperature of the reactor was maintained at 45°C. As a polymerization initiator, 26.2 mmol of n-butyllithium was fed into the reactor. After the polymerization reaction started, the temperature inside the reactor began to rise due to heat generated by the polymerization. After the monomer conversion in the reactor reached 98%, 2,220 g of 1,3-butadiene was added, and one minute after the addition was completed, 120 g of styrene was added and the reaction was carried out. The final temperature inside the reactor reached 78°C. Two minutes after this reaction temperature peak, 3.3 mmol of 2,2-dimethoxy-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane (compound 1) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 12.6 mmol of methanol was added to this polymer solution as a reaction terminator, yielding a rubbery polymer solution (US) before hydrogenation. A portion of the rubbery polymer solution (US) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (U) before hydrogenation. The analysis results are shown in Table 1.

[0114] <(Polymerization Example 4) Rubber-like polymer (V) before hydrogenation> A temperature-controllable autoclave having an internal volume of 40 L, equipped with a stirrer and a jacket, was used as a reactor. 3,000 g of 1,3-butadiene, from which impurities had been removed in advance, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 4.7 mmol of 2,2-bis(2-oxolanyl)propane as polar substances were placed in the reactor, and the internal temperature of the reactor was maintained at 41°C. As a polymerization initiator, 36.1 mmol of n-butyllithium was fed to the reactor. After the polymerization reaction began, the temperature inside the reactor began to rise due to heat generated by the polymerization, and ultimately reached 80°C. Two minutes after this reaction temperature peak, 4.5 mmol of 2,2-dimethoxy-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane (compound 1) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 17.3 mmol of methanol was added to this polymer solution as a reaction terminator, and a rubbery polymer solution (VS) before hydrogenation was obtained. A portion of the rubbery polymer solution (VS) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (V) before hydrogenation. The analysis results are shown in Table 1.

[0115] <(Polymerization Example 5) Rubber-like polymer (W) before hydrogenation> A 40 L internal volume, temperature-controllable autoclave equipped with a stirrer and a jacket was used as a reactor, and 2,100 g of 1,3-butadiene, 780 g of styrene, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 15.1 mmol of 2,2-bis(2-oxolanyl)propane as polar substances, which had been previously removed from impurities, were placed in the reactor, and the internal temperature of the reactor was maintained at 44°C. As a polymerization initiator, 20.1 mmol of n-butyllithium was fed to the reactor. After the polymerization reaction started, the temperature inside the reactor began to rise due to heat generated by the polymerization, and after the monomer conversion in the reactor reached 98%, 120 g of 1,3-butadiene was added and reacted. The final temperature inside the reactor reached 79°C. Two minutes after this reaction temperature peak, 1.26 mmol of N,N,N',N'-tetrakis(3-trimethoxysilylpropyl)-1,3-propanediamine (compound 3) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 10.1 mmol of methanol was added to this polymer solution as a reaction terminator, and a rubbery polymer solution (WS) before hydrogenation was obtained. A portion of the rubbery polymer solution (WS) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (W) before hydrogenation. The analysis results are shown in Table 1.

[0116] <(Polymerization Example 6) Rubber-like polymer (X) before hydrogenation> A 40 L internal volume, temperature-controllable autoclave equipped with a stirrer and a jacket was used as a reactor, and 2,160 g of 1,3-butadiene, 300 g of styrene, 21,000 g of cyclohexane, and 30 mmol of tetrahydrofuran (THF) and 4.9 mmol of 2,2-bis(2-oxolanyl)propane as polar substances, which had been previously removed from impurities, were placed in the reactor, and the internal temperature of the reactor was maintained at 42°C. As a polymerization initiator, 33.2 mmol of n-butyllithium was fed into the reactor. After the polymerization reaction started, the temperature inside the reactor began to rise due to heat generated by the polymerization, and after the monomer conversion in the reactor reached 98%, 540 g of 1,3-butadiene was added and reacted. The final temperature inside the reactor reached 76°C. Two minutes after this reaction temperature peak, 4.1 mmol of silicon tetrachloride (compound 4) was added to the reactor, and the coupling reaction was carried out for 20 minutes. 15.0 mmol of methanol was added to this polymer solution as a reaction terminator, yielding a rubbery polymer solution (XS) before hydrogenation. A portion of the rubbery polymer solution (XS) before hydrogenation was withdrawn and the solvent was removed in a dryer to obtain a rubbery polymer (X) before hydrogenation. The analysis results are shown in Table 1.

[0117] (Preparation of Rubber Composition) <(Example 1) Rubber Composition (SH-1)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-1). The iodine value of the resulting rubbery polymer was 85. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (SH-1). Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0118] <(Example 2) Rubber Composition (SH-2)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 80 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-2). The iodine value of the resulting rubbery polymer was 38. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (SH-2). Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0119] <(Example 3) Rubber Composition (SH-3)> The hydrogenation catalyst (TC-2) prepared in (Production Example 2) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 80 ppm based on titanium (240 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-3). The iodine value of the resulting rubbery polymer was 85. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (SH-3). Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0120] <( Reference example 4) Rubber composition (SH-4) The rubber polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) was added with the above-mentioned (Production Example 1). The prepared hydrogenation catalyst (TC-1) was used in an amount of: 70 ppm titanium (140 ppm aluminum) added, hydrogen pressure 0.8 MPa The hydrogenation reaction was carried out at an average temperature of 85°C for 50 minutes to obtain a rubber-like polymer (S-4). The iodine value of the rubbery polymer obtained was 85. The resulting rubbery polymer solution was added with 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate as an antioxidant and 4,6-bis(4,6-dihydroxyphenyl)propionate. After adding 3.0 g of bis(octylthiomethyl)-o-cresol, 60 g of the rubber composition solution was 00g of the product was subjected to the solvent removal process using the method described above under <Desolvation Condition 2>, and then dried in a dryer. Thus, a rubber composition (SH-4) was obtained. Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0121] <( Reference example 5) Rubber composition (SH-5) The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubber-like polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 100 parts by mass of the rubber-like polymer before hydrogenation. Titanium is added at 55 ppm (aluminum at 110 ppm), and the above (manufacturing The hydrogenation catalyst (TC-3) prepared in Example 3 was added to 100 parts by mass of the rubber-like polymer before hydrogenation. 55 ppm titanium was added per unit, and hydrogenation was carried out at a hydrogen pressure of 0.8 MPa and an average temperature of 95°C. The reaction was carried out for 40 minutes to obtain a rubber-like polymer (S-5). The value was 85. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (SH-5). Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0122] <(Example 6) Rubber Composition (SH-6)> The hydrogenation catalyst (TC-2) prepared in (Production Example 2) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (210 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-6). The iodine value of the resulting rubbery polymer was 85. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above in <Solvent Removal Condition 3>, followed by drying in a dryer to obtain a rubber composition (SH-6). Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0123] <( Reference example 7) Rubber composition (SH-7) The rubber polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) was added with the above-mentioned (Production Example 1). The prepared hydrogenation catalyst (TC-1) was used in an amount of: Titanium is added at 20 ppm (aluminum at 40 ppm), and the above (Manufacturing Example) The hydrogenation catalyst (TC-3) prepared in 3) was added to 100 parts by mass of the rubber-like polymer before hydrogenation. 20 ppm titanium was added, and hydrogen was added at a hydrogen pressure of 0.8 MPa and an average temperature of 75°C. The reaction was carried out for 120 minutes to obtain a rubbery polymer (S-7). The value was 85. The resulting rubbery polymer solution was treated with n-octadecyl-3-(3,5-di- 12.6 g of t-butyl-4-hydroxyphenyl)-propionate and 4,6-bis(4-hydroxyphenyl)propionate After adding 3.0 g of bis(octylthiomethyl)-o-cresol, 60 g of the rubber composition solution was 00g of the product was subjected to the solvent removal process using the method described above under <Desolvation Condition 2>, and then dried in a dryer. Thus, a rubber composition (SH-7) was obtained. Table 2 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0124] <(Example 8) Rubber Composition (TH-1)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (TS) before hydrogenation obtained in (Polymerization Example 2) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 60 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (T-1). The iodine value of the resulting rubbery polymer was 70. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (TH-1). Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0125] <(Example 9) Rubber Composition (SH-8)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 80 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-8). The iodine value of the resulting rubbery polymer was 38. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and at the same time, 150 g of SRAE oil (JOMO Process NC140, manufactured by JX Nippon Oil & Energy Corporation) was added and mixed. After that, the solvent was removed from 6,000 g of the rubber composition solution by the method described above in <Solvent Removal Condition 1>, and the rubber composition was dried in a dryer to obtain a rubber composition (SH-8). Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0126] <(Example 10) Rubber Composition (SH-9)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 40 ppm based on titanium (80 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 100 minutes at a hydrogen pressure of 0.95 MPa and an average temperature of 78°C to obtain a rubbery polymer (S-9). The iodine value of the resulting rubbery polymer was 85. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (SH-9). Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0127] <(Example 11) Rubber Composition (SH-10)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-10). The iodine value of the resulting rubbery polymer was 85. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and 6 g of stearic acid was added at the same time. After that, the solvent was removed from 6,000 g of the rubber composition solution by the method described above in <Solvent Removal Condition 1>, and the solution was dried in a dryer to obtain a rubber composition (SH-10). Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0128] <(Example 12) Rubber Composition (SH-11)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-11). The iodine value of the resulting rubbery polymer was 85. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1> and dried in a dryer. The rubber composition (SH-11) was obtained by removing the rubber composition in half the time required in Example 1. Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0129] <(Example 13) Rubber Composition (TH-2)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (TS) before hydrogenation obtained in (Polymerization Example 2) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 40 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (T-2). The iodine value of the resulting rubbery polymer was 129. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (TH-2). Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0130] <( Reference example 14) Rubber composition (WH-1) The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubber-like polymer solution (WS) before hydrogenation obtained in (Polymerization Example 5) in an amount of, per 100 parts by mass of the rubber-like polymer before hydrogenation, Titanium is added at 70 ppm (aluminum at 140 ppm), and the above (manufacturing The hydrogenation catalyst (TC-3) prepared in Example 3 was added to 100 parts by mass of the rubber-like polymer before hydrogenation. 90 ppm titanium was added per unit, and hydrogenation was carried out at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C. The reaction was carried out for 30 minutes to obtain a rubber-like polymer (W-1). The value was 70. To the resulting rubber polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and the rubber composition solution was then added. 00g of the product was subjected to the solvent removal process using the method described above under <Desolvation Condition 1>, and then dried in a dryer. Thus, a rubber composition (WH-1) was obtained. Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0131] <( Reference example 15) Rubber composition (XH-1) The rubber-like polymer solution (XS) before hydrogenation obtained in (Polymerization Example 6) was subjected to the above (Production Example 1). per 100 parts by mass of the rubber-like polymer before hydrogenation. , 70 ppm titanium (140 ppm aluminum) added, hydrogen pressure 0.8M The hydrogenation reaction was carried out at Pa and an average temperature of 85°C for 50 minutes to obtain a rubbery polymer (X-1). The resulting rubbery polymer had an iodine value of 85. The resulting rubbery polymer solution was treated with n-octadecyl-3-(3,5-dihydroxybenzoate) as an antioxidant. 12.6 g of 4,6-t-butyl-4-hydroxyphenyl)propionate After adding 3.0 g of bis(octylthiomethyl)-o-cresol, rubber composition solution 6 000g of the product was subjected to the solvent removal process using the method described above under <Desolvation Condition 1>, and then dried in a dryer. Thus, a rubber composition (XH-1) was obtained. Table 3 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0132] <(Comparative Example 1) Rubber Composition (SH-12)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 150 ppm based on titanium (300 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 40 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 90°C to obtain a rubbery polymer (S-12). The iodine value of the resulting rubbery polymer was 85. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the method described above in <Solvent Removal Condition 1> to remove the solvent, and the solution was dried in a dryer to obtain a rubber composition (SH-12). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0133] <(Comparative Example 2) Rubber Composition (SH-13)> The hydrogenation catalyst (TC-3) prepared in (Production Example 3) was added to the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1) in an amount of 70 ppm (based on titanium) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 50 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (S-13). The iodine value of the resulting rubbery polymer was 85. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the method described above in <Solvent Removal Condition 1> to remove the solvent, and the solution was dried in a dryer to obtain a rubber composition (SH-13). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0134] <(Comparative Example 3) Rubber Composition (SH-14)> To the rubbery polymer solution (SS) before hydrogenation obtained in (Polymerization Example 1), the hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added in an amount of 5 ppm titanium (10 ppm aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and the hydrogenation catalyst (TC-3) prepared in (Production Example 3) was further added in an amount of 90 ppm titanium per 100 parts by mass of the rubbery polymer. The hydrogenation reaction was carried out for 40 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 80°C to obtain a rubbery polymer (S-14). The iodine value of the resulting rubbery polymer was 85. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the method described above in <Solvent Removal Condition 2> to remove the solvent, and the solution was dried in a dryer to obtain a rubber composition (SH-14). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0135] <(Comparative Example 4) Rubber Composition (TH-3)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (TS) before hydrogenation obtained in (Polymerization Example 2) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 90 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (T-3). The iodine value of the resulting rubbery polymer was 14. To the obtained rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (TH-3). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0136] <(Comparative Example 5) Rubber Composition (UH-1)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (US) before hydrogenation obtained in (Polymerization Example 3) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 60 minutes at a hydrogen pressure of 0.8 MPa and an average temperature of 85°C to obtain a rubbery polymer (U-1). The iodine value of the resulting rubbery polymer was 70. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)-propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain a rubber composition (UH-1). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0137] <(Comparative Example 6) Rubber Composition (VH-1)> The hydrogenation catalyst (TC-1) prepared in (Production Example 1) was added to the rubbery polymer solution (VS) before hydrogenation obtained in (Polymerization Example 4) in an amount of 70 ppm based on titanium (140 ppm based on aluminum) per 100 parts by mass of the rubbery polymer before hydrogenation, and a hydrogenation reaction was carried out for 120 minutes at a hydrogen pressure of 0.9 MPa and an average temperature of 85°C to obtain a rubbery polymer (V-1). The iodine value of the resulting rubbery polymer was 9. To the resulting rubbery polymer solution, 12.6 g of n-octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate and 3.0 g of 4,6-bis(octylthiomethyl)-o-cresol were added as antioxidants, and then 6,000 g of the rubber composition solution was subjected to the solvent removal method described above under <Solvent Removal Condition 1>, followed by drying in a dryer to obtain rubber composition (VH-1). Table 4 shows the analysis results and evaluation of the rubber composition and the evaluation of the bale molded article.

[0138] [Table 1]

[0139] In Table 1, the modifying agent compounds 1 to 4 are shown below. Compound 1: 2,2-Dimethoxy-1-(3-trimethoxysilylpropyl)-1-aza-2-silacyclopentane Compound 2: N,N'-(1,4-phenylene)bis(4-(triethoxysilyl)butan-1-imine) Compound 3: N,N,N',N'-tetrakis(3-trimethoxysilylpropyl)-1,3-propanediamine Compound 4: Silicon tetrachloride

[0140] [Table 2]

[0141] [Table 3]

[0142] [Table 4]

[0143] [Examples 16 to 18] [Comparative Examples 7 to 10] [Preparation of rubber composition for crosslinking and evaluation of physical properties] Using the rubber compositions (SH-1 to SH-3, SH-12, TH-3, UH-1, VH-1) of (Examples 1 to 3), (Comparative Example 1), and (Comparative Examples 4 to 6) shown in Tables 2 to 4 as raw rubber components, crosslinkable rubber compositions containing each raw rubber were obtained according to the formulation shown below.

[0144] (rubber component) Rubber composition (samples: SH-1 to SH-3, SH-12, TH-3, UH-1, VH-1) : 80 parts by weight (parts by weight excluding rubber softener) High-cis polybutadiene (Ube Industries, Ltd. product name "UBEPOL BR150") :20 parts by mass

[0145] (Combination conditions) The amount of each compounding ingredient added is shown as parts by mass per 100 parts by mass of the rubber component not including the rubber softener. Silica 1 (trade name "Ultrasil 7000GR" manufactured by Evonik Degussa, nitrogen adsorption specific surface area 170 m2 / g): 50.0 parts by mass Silica 2 (Rhodia's Zeosil Premium 200MP, nitrogen adsorption specific surface area 220 m / g): 25.0 parts by mass Carbon black (product name "Seat KH (N339)" manufactured by Tokai Carbon Co., Ltd.): 5.0 parts by mass Silane coupling agent (product name "Si75" manufactured by Evonik Degussa, bis(triethoxysilylpropyl) disulfide): 6.0 parts by mass SRAE oil (product name "Process NC140" manufactured by JX Nippon Oil & Energy Corporation): 25.0 parts by mass ·Zinc white: 2.5 parts by mass Stearic acid: 1.0 parts by weight Antioxidant (N-(1,3-dimethylbutyl)-N'-phenyl-p-phenylenediamine): 2.0 parts by mass ·Sulfur: 2.2 parts by mass Vulcanization accelerator 1 (N-cyclohexyl-2-benzothiazylsulfinamide): 1.7 parts by mass Vulcanization accelerator 2 (diphenyl guanidine): 2.0 parts by mass ·Total: 222.4 parts by mass

[0146] (Kneading method) The above materials were kneaded by the following method to obtain a rubber composition. In the first stage of mixing, raw rubber (samples SH-1 to SH-3, SH-12, TH-3, UH-1, and VH-1), fillers (silica 1, silica 2, and carbon black), silane coupling agent, SRAE oil, zinc oxide, and stearic acid were mixed in an internal mixer (capacity: 0.3 L) equipped with a temperature control device at a filling rate of 65% and a rotor rotation speed of 30 to 50 rpm. At this time, the temperature of the internal mixer was controlled so that the discharge temperature was 155 to 160°C, and each rubber composition (compound) was obtained. Next, in the second stage of mixing, the mixture obtained above was cooled to room temperature, and then an antioxidant was added and mixed again to improve the dispersion of the silica. In this case, the discharge temperature of the mixture was also adjusted to 155 to 160°C by controlling the temperature of the mixer. After cooling, the mixture was kneaded in the third stage using an open roll set at 70°C, adding sulfur and vulcanization accelerators 1 and 2. The mixture was then molded and vulcanized in a vulcanization press at 160°C for 20 minutes. The rubber compositions after vulcanization were evaluated, specifically, by the following methods. The results are shown in Table 5.

[0147] (Evaluation 1, 2) Wet skid resistance, fuel economy (viscoelasticity parameters) Viscoelastic parameters were measured in torsion mode using a viscoelastic testing machine "ARES" manufactured by Rheometrics Scientific. Tan δ measured at 0°C, a frequency of 10 Hz, and a strain of 1% was used as an index of wet skid resistance. A higher index indicates better wet skid resistance. Tan δ measured at 50°C, a frequency of 10 Hz, and a strain of 3% was used as an index of fuel economy. The smaller the index, the better the fuel economy. In Table 5 below, the physical properties of the compound of Comparative Example 7 are used as the standard, and symbols are given when each property changes within the following ranges. △: Less than 5% worsening to less than 5% improvement, 〇: 5% or more improvement to less than 15% improvement, ◎: 15% or more improvement to less than 20% improvement, ×: 5% or more worsening

[0148] (Evaluation 3) Breakdown characteristics The breaking strength and breaking elongation were measured in accordance with the tensile test method of JIS K 6251. The product of the measured values ​​of the breaking strength and the breaking elongation was taken as the fracture property. In Table 5 below, the symbols are given when the properties of each compound vary within the ranges below, with the properties of the compound of Comparative Example 7 as the standard. △: Less than 5% worsening to less than 5% improvement, 〇: 5% or more improvement to less than 15% improvement, ◎: 15% or more improvement to less than 20% improvement, ×: 5% or more worsening

[0149] [Table 5]

[0150] As shown in Tables 2 to 4, it was confirmed that the bale molded products of the rubber compositions of Examples 1 to 15 had an excellent balance of cold flow properties, mold contamination resistance, heat deterioration resistance, peel resistance of the rubber composition from the molded product, and adhesion of the packaging sheet to the molded product, compared to the comparative examples. The bale molded body is resistant to cold flow, which means it is less likely to deform over time, improving the handleability of the bale molded body. Furthermore, the resistance to thermal degradation means there is no heat-related deterioration during production or from production to use, and there is also little deterioration during the preparation (kneading) of the crosslinking rubber composition, etc., resulting in good physical properties after processing. The resistance to mold contamination also means there is less contamination due to materials adhering to the mold during bale molding, resulting in excellent production stability. The resistance to peeling of the rubber composition from the bale molded body also means that less rubber composition peels off after bale molding, resulting in excellent bale moldability and excellent production stability. Furthermore, the ease with which the packaging sheet adheres to the bale molded body means there is a small gap between the packaging sheet and the bale, which reduces condensation and improves handleability during transportation. Furthermore, as shown in Table 5, it was confirmed that the cross-linkable rubber compositions of Examples 16 to 18 had a balance of physical properties equal to or better than that of the cross-linkable rubber composition of Comparative Example 7, while the cross-linkable rubber compositions of Comparative Examples 8 to 10 had a poorer balance of physical properties. [Industrial Applicability]

[0151] The rubber composition constituting the bale molded article of the present invention is suitable as a constituent material of a crosslinking composition, and specifically has industrial applicability in the fields of tire components, interior and exterior parts of automobiles, vibration-proof rubber, belts, footwear, foams, various industrial goods, etc.

Claims

1. The iodine value is 10 to 250, the ethylene structure is 3% by mass or more, and the vinyl aromatic a rubbery polymer (A) having a monomer block content of less than 10% by weight; Aluminum (B), a metal (C) from Group 3 and / or Group 4 of the periodic table; Contains 40 ppm≦aluminum (B) content≦200 ppm; The content of metals (C) of Group 3 and / or 4 of the periodic table is 61 ppm or less, The rubber-like polymer (A) is a hydrogenated product of a conjugated diene polymer and contains a vinyl aromatic The modified polyester resin has an aromatic monomer unit content of 5% by mass or more and a modification rate of 40% by mass or more as measured by a column adsorption GPC method. % or more, A method for producing a bale molded product of a rubber composition, comprising: polymerizing the conjugated diene polymer in a solution; adding aluminum (B) and a metal (C) of Group 3 and / or Group 4 of the periodic table to the solution containing the conjugated diene-based polymer; thereafter, hydrogenating the conjugated diene-based polymer to obtain the rubber composition containing the rubbery polymer (A); molding the rubber composition; A method for producing a bale molded body, comprising:

2. The rubber-like polymer (A) contains a nitrogen atom. A method for producing the bale molded article according to claim 1.

3. The rubber composition further contains 30% by mass or less of a rubber softener (D). A method for producing the bale molded article according to claim 1 or 2.

4. The rubber composition contains water in an amount of 0.05% by mass or more and 1.5% by mass or less. A method for producing the bale molded article according to any one of claims 1 to 3.

5. The rubber composition contains lithium in an amount of 2 ppm or more and 60 ppm or less. A method for producing the bale molded body according to any one of claims 1 to 4.

6. 90 mass % or more of the aluminum (B) content is aluminum oxide and / or hydroxide aluminum chloride, A method for producing the bale molded body according to any one of claims 1 to 5.

7. The solvent is removed from the solution containing the rubbery polymer (A) by steam stripping. The method comprises the steps of: A method for producing the bale molded body according to any one of claims 1 to 6.

Citation Information

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