Rubber composition and tire
A sulfur vulcanizable rubber composition with partially saturated elastomer and hydrogenated plasticizer addresses the balance of hysteresis, tear, and wet performance in tire tread rubber, enhancing rolling resistance and abrasion resistance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-11
- Publication Date
- 2026-03-11
AI Technical Summary
Existing tire tread rubber compositions face challenges in balancing hysteresis, tear, and wet performance, often compromising on rolling resistance and wear characteristics.
A sulfur vulcanizable rubber composition comprising 10-100 phr of partially saturated elastomer with up to 15% double bonds, 0-90 phr of diene-based elastomer, 40-200 phr of filler, and 5-70 phr of hydrogenated plasticizer, primarily hydrogenated hydrocarbon resins, to enhance rolling resistance, hysteresis, and wet performance.
The composition achieves improved rolling resistance, hysteresis, and wet performance while maintaining high abrasion and tear strength, offering a balanced property profile.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a rubber composition, in particular for a tire or one of its rubber components, and is further directed to a tire or rubber component of a tire comprising such a rubber composition. [Background technology]
[0002] In view of the constant demand for improved tire performance, new material combinations are constantly being evaluated and tested by tire manufacturers. In particular, in many tire tread rubber compositions, it is difficult to break the hysteresis / tear trade-off. While it may be possible in some approaches to obtain good tensile and / or tear properties and maintain a high level of rolling resistance index, it is often difficult to simultaneously obtain acceptable wet performance. Therefore, there is a need to provide new rubber compositions for tires that provide good wet, tear, and rolling resistance properties. Preferably, wear should also be kept at an appropriate level. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] U.S. Patent Application Publication No. 2018201065 [Patent Document 2] U.S. Patent Application Publication No. 2018251576 [Patent Document 3] U.S. Patent Application Publication No. 20190062539 [Patent Document 4] U.S. Patent No. 5,698,643 [Patent Document 5] U.S. Patent No. 5,451,646 [Patent Document 6] U.S. Patent No. 6,242,534 [Patent Document 7] U.S. Patent No. 6,207,757 [Patent Document 8] U.S. Patent No. 6,133,364 [Patent Document 9] U.S. Patent No. 6,372,857 [Patent Document 10] U.S. Patent No. 5,395,891 [Patent Document 11] U.S. Patent No. 6,127,488 [Patent Document 12] U.S. Patent No. 5,672,639 [Patent Document 13] U.S. Patent No. 6,608,125 [Patent Document 14] U.S. Patent Application Publication No. 2003 / 0130535 [Non-patent literature]
[0004] [Non-Patent Document 1] Standard Methods for Analysis & Testing of Petroleum and Related Products and British Standard 2000 Parts, 2003, 62nd edition [Non-patent document 2] Journal of the American Chemical Society, Vol. 60, p. 304 (1930) [Non-patent document 3] The Vanderbilt Rubber Handbook (1978), pp. 344-346 Summary of the Invention [Problem to be solved by the invention]
[0005] A first object of the present invention is to provide a rubber composition having desirable rolling resistance and / or hysteresis characteristics. Another object of the present invention can be to provide a rubber composition having good tensile properties and / or advanced durability and abrasion resistance.
[0006] Another object of the present invention can be to provide a rubber composition with desirable wet performance indicators. A further object of the present invention is to provide a rubber composition that satisfies all of the hysteresis characteristics, tensile characteristics, and wet performance.
[0007] The present invention is defined by claim 1. Further preferred embodiments are defined in the accompanying dependent claims and in the following summary of the invention. [Means for solving the problem]
[0008] Thus, in a first aspect, the present invention is directed to a sulfur vulcanizable rubber composition comprising 10 phr to 100 phr (preferably 50 phr to 100 phr) of at least one partially saturated (or, in other words, unsaturated) elastomer comprising a plurality of repeat units, wherein up to 15% of all repeat units of the elastomer contain double bonds, 0 phr to 90 phr (preferably 0 phr to 50 phr) of at least one diene-based elastomer, 40 phr to 200 phr of at least one filler, and 5 phr to 70 phr of at least one hydrogenated plasticizer.
[0009] The inventors have discovered that the combination of a partially saturated elastomer and a hydrogenated plasticizer can provide good rolling resistance and hysteresis characteristics on the one hand, and good wet performance on the other. It also provides high levels of abrasion and tear strength.
[0010] In one embodiment, the hydrogenated plasticizer is selected from one or more of hydrogenated liquid plasticizers and hydrogenated hydrocarbon resins. In particular, the hydrogenated liquid plasticizer can comprise hydrogenated oils and / or hydrogenated liquid polymers, preferably hydrogenated liquid diene-based polymers. Such hydrogenated liquids and diene-based polymers preferably have a weight average molecular weight M of less than 50,000 g / mol. W where M Wis determined by gel permeation chromatography (GPC) according to ASTM 5296-11 or equivalent using polystyrene calibration standards. Liquid diene-based polymers can include liquid styrene-butadiene rubber, butadiene rubber, isoprene rubber, styrene-isoprene rubber, isoprene-butadiene rubber, and styrene-isoprene-butadiene rubber, or combinations thereof. The M of other polymers or elastomers can be determined by gel permeation chromatography (GPC) according to ASTM 5296-11 or equivalent using polystyrene calibration standards. W is determined using polystyrene calibration standards by GPC according to ASTM 5296-11 or equivalent. Liquid, unless otherwise indicated herein, shall mean that the material is in a liquid state at 23°C.
[0011] In embodiments, the hydrogenated hydrocarbon resin is selected from a fully or partially hydrogenated C9 resin, a fully or partially hydrogenated C5 resin, a fully or partially hydrogenated alpha-methylstyrene resin, a fully or partially hydrogenated terpene resin, a fully or partially hydrogenated rosin resin, or a mixture thereof. The resin may also be modified with one or more aliphatic or aromatic groups.
[0012] In another embodiment, the hydrogenated hydrocarbon resin is selected from the group consisting of fully or partially hydrogenated (especially aliphatic) C5 resins, fully or partially hydrogenated cyclopentadiene resins, fully or partially hydrogenated dicyclopentadiene resins, and combinations thereof. The resin may also be modified with one or more aliphatic or aromatic groups. However, the majority of the monomer residues of the resin are preferably fully or partially hydrogenated cyclopentadiene, fully or partially hydrogenated dicyclopentadiene, and combinations thereof.
[0013] In another embodiment, the hydrogenated hydrocarbon resin is a fully or partially hydrogenated cyclopentadiene resin, a fully or partially hydrogenated dicyclopentadiene resin, or a combination thereof.
[0014] In another embodiment, the glass transition temperature of the resin is in the range of 30° C. to 80° C., preferably 40° C. to 80° C., or even more preferably 40° C. to 70° C. The glass transition temperature of the resin herein is determined as the peak midpoint by differential scanning calorimetry (DSC) at a temperature ramp rate of 10° C. per minute according to ASTM D6604 or equivalent.
[0015] In another embodiment, the resin has a softening point, which may also be referred to as the ring and ball softening point, as determined according to ASTM E28 or equivalent, of at least 95° C. Preferably, the softening point is at most 140° C., or more preferably at most 120° C., or even more preferably at most 110° C.
[0016] In yet another embodiment, the resin has a polydispersity index in the range of 1 to 5, preferably 1 to 2, or even more preferably 1.5 to 1.8. In yet another embodiment, the resin has a weight average molecular weight M in the range of 150 g / mol to 1500 g / mol, preferably 400 g / mol to 1000 g / mol, or more preferably 500 g / mol to 900 g / mol, or even more preferably 600 g / mol to less than 700 g / mol. W M W is determined by gel permeation chromatography (GPC) according to ASTM 5296-11 or equivalent using polystyrene calibration standards.
[0017] In another embodiment, at most 15%, preferably at most 10%, or even more preferably at most 8% of all repeating units have double bonds. Alternatively, or in addition, at least 2%, preferably at least 4%, of the repeating units have double bonds. In particular, it may be less desirable for an elastomer to be completely free of double bonds or completely hydrogenated. In particular, some double bonds (typically derived from double bonds in monomer units) remain in suitable positions for crosslinking purposes. When calculating double bonds in this application, bonds in aromatic structures or aromatic groups, such as styrene repeating units, are not counted as double bonds. However, styrene units are still counted as repeating units for determining the total number of repeating units in a polymer or elastomer.
[0018] In another embodiment, the rubber composition comprises 90 to 100 phr of at least one partially saturated elastomer and 0 to 10 phr of a diene-based elastomer. Alternatively, the rubber composition comprises 95 to 100 phr of at least one partially saturated elastomer and 0 to 5 phr of a diene-based elastomer.
[0019] In yet another embodiment, the filler comprises between 40 phr and 190 phr of silica, and / or primarily silica. In yet another embodiment, the filler comprises 105 phr to 190 phr of silica.
[0020] In yet another embodiment, the filler comprises 40 phr to 90 phr of silica. In yet another embodiment, the filler comprises 70 phr to 120 phr of silica. In yet another embodiment, the hydrogenated hydrocarbon resin does not contain any double bonds. Such highly hydrogenated hydrocarbon resins have even better compatibility with the rubber substrates according to the present invention.
[0021] In embodiments, the hydrogenated hydrocarbon resin comprises multiple, preferably different, monomer residues, wherein a majority of the monomer residues are aliphatic residues, and the aliphatic residues do not contain double bonds. In embodiments, the remaining monomer residues may be aromatic or may contain aromatic groups. In particular, such groups may be present when the resin is modified with aromatic groups. Preferably, the aliphatic monomers may include C5 monomers, cyclopentadiene monomers, and dicyclopentadiene monomers. Hydrogenation can cause the monomer residues of such aliphatic monomers to not contain double bonds. The aromatic monomers may include, for example, C9 monomers.
[0022] In yet another embodiment, the partially saturated elastomer comprises repeating units formed (or consisting of) residues of monomers selected from ethylene, propylene, butylene, butadiene, isoprene, and styrene. These monomers are preferably used to produce or obtain the partially saturated elastomer. One or more of the residues may be hydrogenated. In other words, the double bonds of one or more of the residues may be hydrogenated.
[0023] In another embodiment, the partially saturated elastomer is a hydrogenated styrene-butadiene rubber, preferably a hydrogenated solution-polymerized styrene-butadiene rubber (SSBR). Hydrogenated SSBR and its preparation are known per se to those skilled in the art and are described, for example, in U.S. Patent Application Publication Nos. 2018201065, 2018251576, and 20190062539.
[0024] In yet another embodiment, the rubber composition further comprises 3 phr to 20 phr (preferably 5 phr to 15 phr) of polyoctenamer. The addition of polyoctenamer further improves tensile properties and improves co-cure compatibility with other diene-based elastomer compounds. Furthermore, the presence of polyoctenamer, in combination with partially saturated elastomers such as hydrogenated SSBR, improves rolling resistance index.
[0025] In another preferred embodiment, the polyoctenamer has a glass transition temperature in the range of −50° C. to −80° C., as determined below under ASTM D3418; a weight average molecular weight M in the range of 80,000 g / mol to 100,000 g / mol, as determined by gel permeation chromatography (GPC) according to ASTM 5296-11 or equivalent using polystyrene calibration standards. W and a melting point in the range of 45°C to 55°C, as measured on the second heat by DSC according to ASTM D3418 or equivalent.
[0026] In yet another preferred embodiment, the polyoctenamer has between 65% and 85% trans double bonds of all double bonds in the polyoctenamer. In yet another embodiment, the rubber composition may comprise 80 to 100 phr of a partially saturated elastomer, 0 to 20 phr of polybutadiene, and optionally 5 to 45 phr of a hydrogenated hydrocarbon resin. In particular, the partially saturated elastomer may be a hydrogenated styrene-butadiene rubber as described herein.
[0027] In yet another embodiment, the polybutadiene is a (high) cis-polybutadiene rubber having a glass transition temperature in the range of -90°C to -115°C and / or having a cis microstructure content of at least 95%. Preferably, the rubber composition comprises 80 phr to 95 phr of partially saturated polymer and 5 phr to 20 phr of polybutadiene.
[0028] In yet another embodiment, the partially saturated elastomer has a glass transition temperature in the range of -20°C to -60°C, preferably in the range of -20°C to -45°C, or even more preferably in the range of -25°C to -40°C.
[0029] In yet another embodiment, the partially saturated elastomer has a weight average molecular weight M, determined as above, in the range of 200,000 g / mol to 500,000 g / mol. W It has. In yet another embodiment, the partially saturated elastomer is i) less than 5% non-hydrogenated vinyl groups, based on the total number of vinyl groups in the hydrogenated styrene-butadiene rubber; ii) less than 20%, preferably less than 10%, or preferably less than 5% of the non-hydrogenated double bonds in the cis-1,4 and trans-1,4 butadiene repeat units, based on the total number of cis-1,4 and trans-1,4 butadiene repeat units; iii) from 80%, preferably from 85% or from 90% to 99% hydrogenated double bonds; iv) a bound styrene content ranging from 5% to 40% by weight, preferably from 20% to 35% by weight, and a butadiene content ranging from 50% to 95% by weight or from 50% to 80% by weight; v) a glass transition temperature in the range of -20°C to -60°C; and vi) Weight average molecular weight M in the range of 200,000 g / mol to 500,000 g / mol W styrene-butadiene rubber having one or more of the following, for example, partially saturated solution polymerized styrene-butadiene rubber.
[0030] In another preferred embodiment, the hydrogenated styrene-butadiene rubber has 90% to 98% hydrogenated double bonds. In other words, unhydrogenated double bonds still remain. As known to those skilled in the art, the number of double bonds can be determined by NMR. This also applies to partially saturated elastomers that are not styrene-butadiene rubber.
[0031] In yet another embodiment, the styrene-butadiene rubber will have a bound styrene content in the range of 10% to 40% and a bound butadiene content in the range of 60% to 90% by weight as determined by NMR. The styrene-butadiene rubber will typically have a bound styrene content in the range of 20% to 35% and a bound butadiene content in the range of 65% to 80%.
[0032] In yet another embodiment, the rubber composition comprises 0 phr to 30 phr of oil, or 0 phr to 25 phr of oil, or 5 phr to 30 phr of oil, or preferably 10 phr to 25 phr of oil.
[0033] In yet another embodiment, the oil has a glass transition temperature in the range of −45° C. to −85° C. The glass transition temperature of the oil is determined as the peak-midpoint value by differential scanning calorimetry (DSC) at a temperature ramp rate of 10° C. per minute according to ASTM E1356 or equivalent.
[0034] In yet another embodiment, the oil is selected from one or more of paraffinic oil, aromatic oil, and naphthenic oil. In yet another embodiment, the rubber composition has a resin to oil ratio in the range of 4:1 to 1:2, preferably in the range of 3:1 to 1:1.5, or even more preferably in the range of 2:1 to 1:1.5.
[0035] In yet another embodiment, the rubber composition further comprises at least 0.2 phr of a vulcanizing agent, preferably comprising elemental sulfur. For example, the composition may comprise 0.4 phr to 15 phr of a vulcanizing agent, which may include, but is not limited to, elemental sulfur or a sulfur-containing silane.
[0036] In another embodiment, the rubber composition comprises 0.3 phr to 3 phr of at least one vulcanization accelerator selected from dithiocarbamate accelerators and / or thiuram accelerators. Such accelerators are known to be fast-acting accelerators and are believed to be particularly beneficial herein in view of utilizing the limited amount of double bonds in the elastomer and / or hydrogenated resin.
[0037] In yet another embodiment, the vulcanization accelerator is tetrabenzyl thiuram disulfide, which has been found to be a preferred choice for combination with elastomers and resins of this type.
[0038] In embodiments, the rubber composition may contain at least one and / or one additional diene-based rubber. Representative synthetic polymers may be the homopolymerization products of butadiene and its homologs and derivatives, such as methylbutadiene, dimethylbutadiene, and pentadiene, as well as copolymers with other unsaturated monomers, such as those formed from butadiene or its homologs or derivatives. Among the latter may be acetylenes, such as vinyl acetylene; olefins, such as isobutylene, which copolymerizes with isoprene to form butyl rubber; vinyl compounds, such as acrylic acid, acrylonitrile (which polymerizes with butadiene to form NBR), methacrylic acid, and styrene (which polymerizes with butadiene to form SBR); and vinyl esters and various unsaturated aldehydes, ketones, and ethers, such as acrolein, methyl isopropenyl ketone, and vinyl ethyl ether. Specific examples of synthetic rubbers include neoprene (polychloroprene), polybutadiene (including cis 1,4-polybutadiene), polyisoprene (including cis 1,4-polyisoprene), butyl rubber, halobutyl rubber, such as chlorobutyl or bromobutyl rubber, styrene / isoprene / butadiene rubber, copolymers of 1,3-butadiene or isoprene with monomers such as styrene, acrylonitrile, and methyl methacrylate, and ethylene / propylene terpolymers, also known as ethylene / propylene / diene monomer (EPDM), and especially ethylene / propylene / dicyclopentadiene terpolymers. Additional examples of rubbers that may be used include alkoxysilyl-end-functionalized solution-polymerized polymers (SBR, PBR, IBR, and SIBR), silicon-coupled, and tin-coupled star-branched polymers. Preferred rubbers or elastomers may generally be natural rubber, synthetic polyisoprene, polybutadiene, and SBR, including SSBR.
[0039] In another embodiment, the composition comprises at least two diene-based rubbers. For example, a combination of two or more rubbers is preferred, such as cis 1,4-polyisoprene rubber (natural or synthetic, but natural is preferred), 3,4-polyisoprene rubber, styrene / isoprene / butadiene rubber, emulsion and solution polymerization-derived styrene / butadiene rubber, cis 1,4-polybutadiene rubber, and emulsion polymerization-prepared butadiene / acrylonitrile copolymer. In some embodiments, the partially saturated elastomer may be a diene-based polymer.
[0040] In another embodiment, emulsion polymerization-derived styrene / butadiene (ESBR) having a styrene content of 20 to 35 percent bound styrene may be used, or for some applications, ESBR having a moderate to relatively high bound styrene content, i.e., 30 to 45 percent bound styrene. Emulsion polymerization-prepared ESBR can mean that styrene and 1,3-butadiene are copolymerized as an aqueous emulsion. Such is well known to those skilled in the art. The bound styrene content may vary, for example, from 5 to 50 percent. In one embodiment, the ESBR may also contain acrylonitrile to form a terpolymer rubber as the ESBR, for example, in an amount of 2 to 30 weight percent bound acrylonitrile in the terpolymer. Emulsion polymerization-prepared styrene / butadiene / acrylonitrile copolymer rubber containing 2 to 40 weight percent bound acrylonitrile in the copolymer may also be contemplated as a diene-based rubber.
[0041] In another embodiment, solution polymerization-prepared SBR (SSBR) may be used. Such SSBR may have a bound styrene content ranging, for example, from 5 to 50 percent, preferably from 9 to 36 percent. SSBR can be conveniently prepared, for example, by anionic polymerization in an inert organic solvent. In particular, SSBR can be synthesized by copolymerization of styrene and 1,3-butadiene monomers in a hydrocarbon solvent using an organolithium compound as an initiator.
[0042] In one embodiment, synthetic or natural isoprene rubber may be used. Synthetic cis 1,4-polyisoprene and cis 1,4-polyisoprene natural rubber are well known to those skilled in the rubber art. In particular, the cis 1,4-content is at least 90%, and optionally at least 95%.
[0043] In one embodiment, cis 1,4-polybutadiene rubber (BR or PBD) is used. Suitable butadiene rubbers can be prepared, for example, by organic solution polymerization of 1,3-butadiene. BR can be conveniently characterized, for example, by having a cis 1,4-content of at least 90 percent ("high cis" content) and a glass transition temperature, Tg, in the range of -95°C to -110°C. Suitable polybutadiene rubbers are commercially available from The Goodyear Tire & Rubber Company, such as Budene® 1207, Budene® 1208, Budene® 1223, or Budene® 1280. These high cis-1,4-polybutadiene rubbers can be synthesized using a nickel catalyst system containing a mixture of (1) an organonickel compound, (2) an organoaluminum compound, and (3) a fluorine-containing compound, as described, for example, in U.S. Pat. Nos. 5,698,643 and 5,451,646.
[0044] The glass transition temperature, or Tg, of an elastomer or elastomeric composition, as referred to herein, refers to the glass transition temperature of the respective elastomer or elastomeric composition in its uncured state, or possibly in the case of elastomeric compositions, in the cured state. Tg is determined by differential scanning calorimetry (DSC) according to ASTM D3418 as the peak midpoint at a temperature ramp rate of 10°C per minute.
[0045] As used herein and in accordance with conventional practice, the term "phr" refers to "parts by weight of a material per 100 parts by weight of rubber or elastomer." Generally, using this convention, a rubber composition is composed of 100 parts by weight of rubber / elastomer. A claimed composition may contain rubbers / elastomers other than those explicitly recited in the claim, so long as the phr value of the claimed rubber / elastomer matches the claimed phr range and the amount of all rubbers / elastomers in the composition totals 100 parts rubber. By way of example, the composition may further include 1 phr to 10 phr, and optionally 1 phr to 5 phr, of one or more additional diene-based rubbers, such as SBR, SSBR, ESBR, PBD / BR, NR, and / or synthetic polyisoprene. In another example, the composition may include less than 5 phr, preferably less than 3 phr, of additional diene-based rubber, or may be essentially free of such additional diene-based rubbers. The terms "compound" and "composition" may be used interchangeably herein unless otherwise indicated.
[0046] In embodiments, the rubber composition may also contain oil, particularly process oil. The process oil may be included in the rubber composition as an extender oil typically used to extend elastomers. The process oil may also be included in the rubber composition by direct addition of the oil during rubber compounding. The process oil used may include both the extender oil present in the elastomer and the process oil added during compounding. Suitable process oils may include various oils known in the art, including aromatic, paraffinic, naphthenic, and vegetable oils, as well as low PCA oils such as MES, TDAE, SRAE, and heavy naphthenic oils. Suitable low PCA oils may include those having a polycyclic aromatic content of less than 3 weight percent as determined by the IP346 method. The IP346 method procedure can be found in Standard Methods for Analysis & Testing of Petroleum and Related Products and British Standard 2000 Parts, 2003, 62nd Edition, published by the Institute of Petroleum, United Kingdom.
[0047] In an embodiment, the rubber composition may contain silica. Commonly used siliceous pigments that may be used in rubber compounds include, for example, conventional pyrogenic and precipitated siliceous pigments (silica). In one embodiment, precipitated silica is used. The conventional siliceous pigment may be, for example, precipitated silica, such as that obtained by acidifying a soluble silicate, e.g., sodium silicate. Such conventional silicas may be characterized by having a BET surface area, as measured, for example, using nitrogen gas. In one embodiment, the BET surface area may be in the range of 40 to 600 square meters per gram. In another embodiment, the BET surface area may be in the range of 80 to 300 square meters per gram. The BET method for measuring surface area is described in Journal of the American Chemical Society, Vol. 60, p. 304 (1930). Conventional silicas may also be characterized by having a dibutyl phthalate (DBP) absorption value in the range of 100 to 400, alternatively 150 to 300. Conventional silicas can be expected to have an average ultimate particle size in the range of 0.01 to 0.05 microns, as determined, for example, by electron microscopy, although silica particles may be smaller or possibly larger in size. Various commercially available silicas may be used, such as, but not limited to, those available from PPG Industries under the Hi-Sil trademark, such as those with the designations 210, 315G, EZ160G, etc.; those available from Solvay, such as those with the designations Z1165MP and Premium200MP, and those available from Evonik AG, such as those with the designations VN2 and Ultrasil 6000GR, 9100GR, etc.
[0048] In an embodiment, the rubber composition may also contain carbon black as a filler material. A preferred amount in this application is in the range of 1 phr to 60 phr, preferably 1 phr to 10 phr, or 1 phr to 5 phr. Representative examples of such carbon black include grades N110, N121, N134, N220, N231, N234, N242, N293, N299, N315, N326, N330, N332, N339, N343, N347, N351, N358, N375, N539, N550, N582, N630, N642, N650, N683, N754, N762, N765, N774, N787, N907, N908, N990, and N991. These carbon blacks have iodine absorption ranging from 9 g / kg to 145 g / kg, and iodine absorption of 34 cm 3 / 100g~150cm 3 / 100g range of DBP numbers.
[0049] In another embodiment, other fillers may be used in the rubber composition, including, but not limited to, particulate fillers including ultra-high molecular weight polyethylene (UHMWPE), crosslinked particulate polymer gels, including but not limited to those disclosed in U.S. Patent Nos. 6,242,534; 6,207,757; 6,133,364; 6,372,857; 5,395,891; or 6,127,488, and plasticized starch composite fillers, including but not limited to those disclosed in U.S. Patent No. 5,672,639. Other such fillers may be used in amounts ranging from 1 phr to 10 phr.
[0050] In one embodiment, the rubber composition may include conventional sulfur-containing organosilicon compounds or silanes. Examples of suitable sulfur-containing organosilicon compounds include those represented by the formula:
[0051] [ka]
[0052] wherein Z is
[0053] [ka]
[0054] wherein R 1 is an alkyl group of 1 to 4 carbon atoms, cyclohexyl, or phenyl; R 2 is an alkoxy of 1 to 8 carbon atoms or a cycloalkoxy of 5 to 8 carbon atoms; Alk is a divalent hydrocarbon of 1 to 18 carbon atoms, and n is an integer from 2 to 8. In one embodiment, the sulfur-containing organosilicon compound is a 3,3'-bis(trimethoxy or triethoxysilylpropyl) polysulfide. In one embodiment, the sulfur-containing organosilicon compound is a 3,3'-bis(triethoxysilylpropyl) disulfide and / or a 3,3'-bis(triethoxysilylpropyl) tetrasulfide. Thus, for Formula I, Z is
[0055] [ka]
[0056] wherein R 2is an alkoxy of 2 to 4 carbon atoms, alternatively 2 carbon atoms; Alk is a divalent hydrocarbon of 2 to 4 carbon atoms, alternatively 3 carbon atoms; and n is an integer of 2 to 5, alternatively 2 or 4. In another embodiment, suitable sulfur-containing organosilicon compounds include those disclosed in U.S. Pat. No. 6,608,125. In one embodiment, the sulfur-containing organosilicon compound includes 3-(octanoylthio)-1-propyltriethoxysilane, CH3(CH2)6C(=O)-S-CH2CH2CH2Si(OCH2CH3)3, commercially available from Momentive Performance Materials as NXT™. In another embodiment, suitable sulfur-containing organosilicon compounds include those disclosed in U.S. Patent Application Publication No. 2003 / 0130535. In one embodiment, the sulfur-containing organosilicon compound is Si-363 from Degussa. The amount of sulfur-containing organosilicon compound in a rubber composition may vary depending on the level of other additives used. Generally speaking, the amount of compound may range from 0.5 phr to 20 phr. In one embodiment, the amount will range from 1 phr to 10 phr.
[0057] Those skilled in the art will readily appreciate that the rubber composition can be compounded by methods commonly known in the rubber compounding art, such as blending the various components of sulfur-vulcanizable rubber with various commonly used additives, such as sulfur donors, curing aids, e.g., activators and retarders, and processing additives such as oils, resins including tackifiers and plasticizers, fillers, pigments, fatty acids, zinc oxide, waxes, antioxidants and antiozonants, and peptizers. As known to those skilled in the art, the additives listed above are selected and generally used in conventional amounts depending on the intended use of the sulfur-vulcanizable and sulfur-vulcanized materials (rubbers). Representative examples of sulfur donors include elemental sulfur (free sulfur), amine disulfides, polymeric polysulfides, and sulfur olefin adducts. In one embodiment, the sulfur-vulcanizing agent is elemental sulfur. The sulfur-vulcanizing agent may be used in an amount ranging from 0.5 phr to 8 phr, alternatively from 1.5 phr to 6 phr. Typical amounts of tackifying resins, if used, include, for example, 0.5 phr to 10 phr, usually 1 phr to 5 phr. Typical amounts of processing aids, if used, include, for example, 1 phr to 50 phr (which may include, inter alia, oils). Typical amounts of antioxidants, if used, may include, for example, 1 phr to 5 phr. Typical antioxidants may be, for example, diphenyl-p-phenylenediamine and others, such as those disclosed in The Vanderbilt Rubber Handbook (1978), pp. 344-346. Typical amounts of antiozonants, if used, may include, for example, 1 phr to 5 phr. Typical amounts of fatty acids, which may include stearic acid, if used, may include, for example, 0.5 phr to 3 phr. Typical amounts of waxes, if used, may include, for example, 1 phr to 5 phr. Microcrystalline waxes are often used. Typical amounts of peptizers, if used, may include, for example, 0.1 phr to 1 phr. Typical peptizing agents may be, for example, pentachlorothiophenol and dibenzamidodiphenyl disulfide.
[0058] Accelerators are preferred, but not required, for controlling the time and / or temperature required for vulcanization and improving the properties of the vulcanizate. In one embodiment, a single accelerator system, i.e., a primary accelerator, may be used. The primary accelerator(s) may be used in a total amount ranging from 0.5 phr to 4 phr, alternatively from 0.8 phr to 1.5 phr. In another embodiment, a combination of primary and secondary accelerators may be used, with the secondary accelerator being used in a lower amount, such as from 0.05 phr to 3 phr, to activate and improve the properties of the vulcanizate. These accelerator combinations can be expected to produce a synergistic effect on the final properties, which are somewhat better than those produced by either accelerator used alone. In addition, delayed-acting accelerators may also be used, which are not affected by normal processing temperatures but produce a satisfactory cure at ordinary vulcanization temperatures. Vulcanization retarders may also be used. Suitable types of accelerators that may be used in the present invention include, for example, amines, disulfides, guanidines, thioureas, thiazoles, thiurams, sulfenamides, dithiocarbamates, and xanthates. In one embodiment, the primary accelerator is a sulfenamide. If a second accelerator is used, the secondary accelerator may be, for example, a guanidine, dithiocarbamate, or thiuram compound. Suitable guanidines include diphenylguanidine, etc. Suitable thiurams include tetramethylthiuram disulfide, tetraethylthiuram disulfide, and tetrabenzylthiuram disulfide.
[0059] Mixing of the rubber composition can be accomplished by methods known to those skilled in the rubber mixing art. For example, the raw materials may typically be mixed in at least two stages: at least one non-productive stage followed by a productive mix stage. The final curative, including the sulfur vulcanizing agent, may typically be mixed in the final stage, conventionally referred to as the "productive" mix stage, where mixing is typically conducted at a temperature or final temperature lower than the mixing temperature(s) of the preceding non-productive mix stage(s). The terms "non-productive" and "productive" mix stages are well known to those skilled in the rubber mixing art. In embodiments, the rubber composition may be subjected to a thermomechanical mixing step. The thermomechanical mixing step generally involves mechanical operation in a mixer or extruder for a period of time appropriate to produce a rubber temperature, e.g., in the range of 140°C to 190°C. The suitable duration of the thermomechanical operation varies as a function of operating conditions and the amount and nature of the components. For example, the thermomechanical operation may be from 1 to 20 minutes.
[0060] The rubber composition can be incorporated into various rubber components of a tire (i.e., tire components). For example, the rubber component can be a tread (including a tread cap and a tread base), a sidewall, an apex, a chafer, a sidewall insert, a wire coat, or an innerliner. However, tread rubber applications are the preferred applications of the present invention.
[0061] In a second aspect of the present invention, there is provided a tire, in particular a tire comprising a rubber composition according to the first aspect of the present invention and / or one of its embodiments. The tire may be an uncured tire or a cured tire, i.e. a vulcanized tire.
[0062] In a preferred embodiment, the tire includes a tread cap comprising the rubber composition. In one embodiment, the tire is intended to contact the road during operation and has a radially outer tread cap layer comprising the rubber composition.
[0063] In another embodiment, the tire has a radially outer tread cap layer and a radially inner tread cap layer, where the radially inner tread cap layer comprises the rubber composition.
[0064] The tire of the present invention may be, for example, a pneumatic or non-pneumatic tire, a race tire, a passenger tire, an aircraft tire, a farm tire, an earthmoving tire, an off-the-road (OTR) tire, a truck tire, or a motorcycle tire. The tire may also be a radial or bias tire.
[0065] Vulcanization of the pneumatic tires of the present invention may be carried out at conventional temperatures, for example, within the range of 100°C to 200°C. In one embodiment, vulcanization is carried out at a temperature within the range of 110°C to 180°C. Any of the usual vulcanization methods may be used, such as heating in a press or mold, heating with superheated steam or hot air, etc. Such tires can be built, shaped, molded, and cured by a variety of methods known and readily apparent to those skilled in the art.
[0066] Many features of the aspects and embodiments described herein can be combined with each other. DETAILED DESCRIPTION OF THE INVENTION
[0067] Table 1 below shows different rubber compositions containing partially saturated elastomers in the form of hydrogenated solution-polymerized styrene-butadiene rubber. Examples 1-3 are comparative examples, while inventive Examples 1 and 2 are non-limiting embodiments of the present invention. Example 1 is essentially resin-free, while the remaining examples contain 15 phr of resin. Because Example 1 is resin-free, the other examples contain different oils to adjust the glass transition temperature of the compound to essentially that of Example 1, improving comparability of rubber compound properties. The types and amounts of wax, stearic acid, silica, carbon black, silane, accelerators, processing aids, curatives, and antidegradants are the same or similar in the different examples.
[0068] Examples 2 and 3 contain a non-hydrogenated aliphatic C5 resin. In contrast, Inventive Examples 1 and 2 contain a hydrogenated dicyclopentadiene (DCPD) resin as a hydrogenated plasticizer. Examples 1 and 2 and Inventive Example 1 further contain 5 phr of polyoctenamer.
[0069] [Table 1]
[0070] Physical property measurements were performed on Examples 1-3 and Inventive Examples 1 and 2. The corresponding results are summarized in Table 2 below. The use of the hydrogenated hydrocarbon resins of Inventive Examples 1 and 2 significantly improved the rolling resistance index, tangent delta at 30°C. In particular, a comparison of Example 3 with Inventive Example 2 shows an improvement of around 5%. Similarly, a comparison of the polyoctenamer-containing versions, i.e., Example 2 with Inventive Example 1, shows an even greater improvement (around 10%). While the tangent delta value of Example 1 is even lower than that of Inventive Example 2, it can be seen that Example 1 (without resin) is significantly worse with respect to the wet traction index, given by rebound resilience measurements at 0°C, approximately 50% worse than the value according to Inventive Example 2. The abrasion values for Example 3 and Inventive Example 2 are at similar levels. The same is true for the two polyoctenamer-using versions, Example 2 and Inventive Example 1, where their abrasion is significantly lower than that of Example 3 and Inventive Example 2. Tear strength is at a favorable level for all samples in Table 2, which, according to the inventors' non-binding theory, is due to the partially saturated elastomer, included herein as hydrogenated SSBR. Furthermore, it is observed that Inventive Examples 1 and 2 provide higher stiffness compared to the compositions of Examples 2 and 3. While Example 1 has higher stiffness, its rebound at 0°C is less favorable than that of all other Examples, indicating poorer wet performance as already noted above. Therefore, the property balance in Examples 2 and 3 is better than that of Example 1. Furthermore, the property balance in Inventive Examples 1 and 2 is better than that of Examples 1-3.
[0071] [Table 2] [Mode of the invention] [1] 10 phr to 100 phr of at least one partially saturated elastomer containing repeating units, wherein at most 15% of all repeating units of said elastomer contain double bonds; At least one diene-based elastomer 0 phr to 90 phr; At least one filler 40 phr~200 phr; A sulfur vulcanizable rubber composition comprising 5 phr to 70 phr of at least one hydrogenated plasticizer. [2] 1. The rubber composition of claim 1, wherein the hydrogenated plasticizer is selected from one or more of a hydrogenated liquid plasticizer and a hydrogenated hydrocarbon resin. [3] 3. The rubber composition according to 1 or 2, wherein the hydrogenated plasticizer is a hydrogenated hydrocarbon resin selected from the group consisting of fully or partially hydrogenated C5 resins, fully or partially hydrogenated cyclopentadiene resins, fully or partially hydrogenated dicyclopentadiene resins, and combinations thereof. [4] The hydrogenated hydrocarbon resin Glass transition temperature in the range of 40℃-80℃; A softening point of at least 95°C; a polydispersity index in the range of 1 to 2; and Weight average molecular weight (M) in the range of 150g / mol to 1500g / mol W ) 4. The rubber composition according to any one of claims 1 to 3, having one or more of: [5] 2. The rubber composition according to claim 1, wherein the hydrogenated plasticizer is a hydrogenated liquid diene-based polymer. [6] At most 8% of all repeat units have double bonds; and / or 6. The rubber composition of any one of 1 to 5, wherein at least 4% of the repeating units have a double bond. [7] 7. The rubber composition according to any one of 1 to 6, wherein the filler contains 40 phr to 190 phr of silica. [8] 8. The rubber composition according to any one of claims 1 to 7, wherein the hydrogenated plasticizer comprises a plurality of monomer residues, a majority of the monomer residues being aliphatic residues, and the aliphatic residues may not contain a double bond. [9] 9. A rubber composition according to any one of claims 1 to 8, wherein the partially saturated elastomer comprises repeat units formed by residues of monomers selected from ethylene, propylene, butadiene, isoprene and styrene, or the partially saturated elastomer is a hydrogenated elastomer, preferably hydrogenated styrene-butadiene rubber.
[10] Further containing 3 phr to 20 phr of polyoctenamer, Optionally, the polyoctenamer comprises: Glass transition temperature in the range of -50℃~-80℃; Weight average molecular weight M in the range of 80,000 to 100,000 g / mol, determined by GPC W ; a melting point in the range of 45°C to 55°C, as measured by DSC on the second heat; and Between 65% and 85% trans double bonds 10. The rubber composition according to any one of claims 1 to 9, having one or more of:
[11] 80 phr to 100 phr, preferably 80 phr to 95 phr, of said partially saturated elastomer, and / or 0 phr to 20 phr, preferably 5 phr to 20 phr, of polybutadiene, said polybutadiene optionally having a glass transition temperature in the range of -90°C to -115°C; 11. The rubber composition according to any one of 1 to 10, comprising:
[12] the partially saturated elastomer is a glass transition temperature in the range of -20°C to -60°C; and Weight average molecular weight M in the range of 200,000 g / mol to 500,000 g / mol W 12. The rubber composition according to any one of claims 1 to 11, having one or more of:
[13] the partially saturated elastomer is i) less than 5% non-hydrogenated vinyl groups, based on the total number of vinyl groups in the hydrogenated styrene-butadiene rubber; ii) less than 20% of the non-hydrogenated double bonds in the cis-1,4 and trans-1,4 butadiene repeat units, based on the total number of cis-1,4 and trans-1,4 butadiene repeat units; iii) 80% to 99% hydrogenated double bonds; iv) a bound styrene content ranging from 5% to 40% by weight and a butadiene content ranging from 50% to 95% by weight; and v) Weight average molecular weight M in the range of 200,000 g / mol to 500,000 g / mol W 13. The rubber composition of any one of 1 to 12, which is a solution polymerized styrene-butadiene rubber having one or more of:
[14] The rubber composition Oil 0phr~25phr; Resin to oil ratio in the range of 4:1 to 1:2; 0.3 phr to 3 phr of a vulcanization accelerator selected from one or more of dithiocarbamate accelerators and thiuram accelerators 14. The rubber composition of any one of 1 to 13, comprising one or more of:
[15] 15. A tire comprising the rubber composition of any one of 1 to 14.
Claims
1. 10 phr to 100 phr of at least one partially saturated elastomer comprising repeating units, wherein at most 15% of all repeating units of said elastomer contain double bonds; 0 phr to 90 phr of at least one diene-based elastomer; 40 phr to 200 phr of at least one filler; 5 phr to 70 phr of at least one hydrogenated plasticizer Including, the hydrogenated plasticizer is a hydrogenated hydrocarbon resin selected from the group consisting of fully or partially hydrogenated C5 resins, fully or partially hydrogenated cyclopentadiene resins, fully or partially hydrogenated dicyclopentadiene resins, and combinations thereof; Sulfur vulcanizable rubber composition.
2. The hydrogenated hydrocarbon resin a glass transition temperature in the range of 40°C to 80°C; a softening point of at least 95°C; a polydispersity index in the range of 1 to 2; and Weight average molecular weight (M) in the range of 150 g / mol to 1500 g / mol W ) The rubber composition of claim 1 having one or more of:
3. At most 8% of all repeat units have double bonds; and / or The rubber composition according to claim 1 or 2, wherein at least 4% of the repeating units have a double bond.
4. The rubber composition according to any one of claims 1 to 3, wherein the filler comprises 40 phr to 190 phr of silica.
5. 5. The rubber composition according to claim 1, wherein the hydrogenated plasticizer comprises a plurality of monomer residues, a majority of the monomer residues being aliphatic residues, and the aliphatic residues may not contain a double bond.
6. 6. A rubber composition according to any one of claims 1 to 5, wherein the partially saturated elastomer comprises repeating units formed by residues of monomers selected from ethylene, propylene, butadiene, isoprene and styrene, or the partially saturated elastomer is a hydrogenated elastomer, preferably hydrogenated styrene-butadiene rubber.
7. further comprising 3 phr to 20 phr of polyoctenamer; Optionally, the polyoctenamer comprises: a glass transition temperature in the range of −50° C. to −80° C.; Weight average molecular weight M in the range of 80,000 to 100,000 g / mol, as determined by GPC W ; a melting point in the range of 45°C to 55°C, as measured by DSC on the second heat; and Between 65% and 85% trans double bonds The rubber composition according to claim 1 , wherein the rubber composition has one or more of the following:
8. 80 phr to 100 phr, preferably 80 phr to 95 phr, of said partially saturated elastomer, and / or 0 phr to 20 phr, preferably 5 phr to 20 phr, of polybutadiene, said polybutadiene optionally having a glass transition temperature in the range of -90°C to -115°C; The rubber composition according to claim 1 , comprising:
9. the partially saturated elastomer is a glass transition temperature in the range of −20° C. to −60° C.; and Weight average molecular weight M in the range of 200,000 g / mol to 500,000 g / mol W The rubber composition of claim 1 , wherein the rubber composition has one or more of the following:
10. the partially saturated elastomer is i) less than 5% non-hydrogenated vinyl groups, based on the total number of vinyl groups in the hydrogenated styrene-butadiene rubber; ii) less than 20% of the non-hydrogenated double bonds in the cis-1,4 and trans-1,4 butadiene repeat units, based on the total number of cis-1,4 and trans-1,4 butadiene repeat units; iii) 80% to 99% hydrogenated double bonds; iv) a bound styrene content ranging from 5% to 40% by weight and a butadiene content ranging from 50% to 95% by weight; and v) a weight average molecular weight M in the range of 200,000 g / mol to 500,000 g / mol W The rubber composition according to any one of claims 1 to 9, which is a solution polymerized styrene-butadiene rubber having one or more of:
11. The rubber composition Oil 0 phr to 25 phr; a resin to oil ratio in the range of 4:1 to 1:2; 0.3 phr to 3 phr of a vulcanization accelerator selected from one or more of a dithiocarbamate accelerator and a thiuram accelerator The rubber composition of claim 1 , comprising one or more of:
12. A tire comprising the rubber composition of any one of claims 1 to 11.
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