Water-based adhesive for tennis balls
A water-based adhesive for tennis balls, using a blend of liquid and solid rubber latex with a thiuram accelerator, addresses the issues of tackiness and tearability, enhancing seam durability and reducing environmental impact.
Patent Information
- Application Number
- JP2021033950
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-03-03
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2041-03-03
AI Technical Summary
Existing water-based adhesives for tennis balls lack sufficient tackiness, tearability, and migration resistance, complicating the manufacturing process and requiring additional steps like depolymerization, which is not as effective as solvent-based adhesives.
A water-based adhesive composed of a mixture of liquid and solid rubber latex, with a specific ratio of liquid rubber exceeding 20% to less than 90% by mass, combined with a thiuram vulcanization accelerator, provides improved tackiness, tearability, and migration resistance without the need for depolymerization.
The adhesive achieves excellent durability and seam formation with high tackiness, tearability, and migration resistance, reducing environmental impact and manufacturing complexity.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a water-based adhesive for tennis balls. More specifically, the present invention relates to a water-based adhesive for use in the manufacture of tennis balls. [Background technology]
[0002] A tennis ball has a core. This core is a hollow sphere. The core is formed by bonding two hemispherical half cores together. An adhesive is used to bond the two half cores together. The outer surface of this core is covered with two dumbbell-shaped pieces of felt (also called melton). An adhesive is also used to bond the melton to the outer surface of the core. A seam is formed in the gap between the two pieces of melton.
[0003] Seam glue is used to form the seam. Seam glue is usually made of a rubber composition. JP 2004-148022 A (Patent Document 1) discloses a solvent-based seam glue in which a rubber composition containing a base rubber such as natural rubber, titanium oxide, sulfur, etc. is dissolved in an organic solvent such as naphtha.
[0004] The seam glue is applied to the sides of the melton before it is attached to the core. For example, multiple pieces of melton are stacked and then immersed in seam glue to adhere the seam glue to the sides of the stacked melton. After the applied seam glue has dried, each piece of melton is peeled off one by one to obtain a melton with seam glue applied to its sides. Two of these meltons are attached to the outer surface of the core with an adhesive, and then cross-linked to form a seam in the gap between the meltons.
[0005] In this manufacturing method, the seam glue made of the unvulcanized rubber composition after drying is required to have tackiness that allows multiple pieces of melton to adhere to each other, and tearability that allows the adhered melton to be peeled off one by one in the next process of bonding the melton to the core. In addition, migration resistance is also required so that the seam glue does not adhere to other components after drying.
[0006] In recent years, water-based adhesives have been in demand instead of solvent-based adhesives in order to reduce the impact on the environment and the burden on workers. In JP 2020-059838 A (Patent Document 2), a water-based adhesive for tennis balls containing rubber latex and a sulfenamide-based vulcanization accelerator is used to bond half cores together. In JP 57-179265 A (Patent Document 3), a melton seam adhesive is disclosed that uses depolymerized natural rubber latex and / or synthetic rubber latex as a base component. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] JP 2004-148022 A [Patent Document 2] JP 2020-059838 A [Patent Document 3] Japanese Patent Application Publication No. 57-179265 Summary of the Invention [Problem to be solved by the invention]
[0008] The solvent-based seam glue disclosed in Patent Document 1 uses a rubber composition obtained by adding various chemicals to solid rubber such as natural rubber and kneading the mixture. During kneading, the solid rubber is peptized. This peptization reduces the molecular weight of the rubber component, and thus provides tackiness, tearability, and migration resistance suitable for forming a seam portion. In contrast, the water-based adhesive disclosed in Patent Document 2 can be manufactured by adding a slurry of a vulcanization accelerator or the like to natural rubber latex. This water-based adhesive is not kneaded during manufacturing and does not reduce the molecular weight, so it does not provide tackiness and tearability equivalent to that of a solvent-based seam glue. The melton seam adhesive disclosed in Patent Document 3 requires a depolymerization process of the rubber latex, which complicates the manufacturing process. In addition, there is still room for improvement in the tackiness, tearability, and migration resistance of adhesives using depolymerized rubber latex.
[0009] An object of the present invention is to provide a water-based adhesive for tennis balls which is excellent in tackiness, tearability and migration resistance and which can efficiently form seams. [Means for solving the problem]
[0010] The aqueous adhesive for tennis balls according to the present invention contains rubber latex. The rubber latex is a mixture of liquid rubber latex and solid rubber latex. The ratio of the liquid rubber to the total rubber components contained in the rubber latex is more than 20% by mass and less than 90% by mass, calculated as the solid content.
[0011] Preferably, the Mooney viscosity (ML 1+4 (100°C)) is 6.0 or less. Preferably, the Mooney viscosity (ML 1+4 (100° C.)) is not more than 10. Preferably, the number average molecular weight of the liquid rubber is 10,000 or more and 60,000 or less.
[0012] Preferably, the water-based adhesive further comprises a thiuram vulcanization accelerator. Preferably, the liquid rubber is isoprene rubber. Preferably, the solid rubber is isoprene rubber.
[0013] The tennis ball according to the present invention has a seam portion formed from any of the water-based adhesives described above. Effect of the Invention
[0014] The water-based adhesive for tennis balls according to the present invention has tackiness, tearability, and migration resistance suitable for forming seams, and tennis balls equipped with seams formed with this water-based adhesive have excellent durability. [Brief description of the drawings]
[0015] [Figure 1]FIG. 1 is a partially cutaway cross-sectional view of a tennis ball obtained using an adhesive according to one embodiment of the present invention. [Diagram 2] 2(a) and 2(b) are cross-sectional views showing a process for forming the core of the tennis ball of FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] Hereinafter, the present invention will be described in detail based on preferred embodiments with reference to the drawings as appropriate.
[0017] The water-based adhesive for tennis balls according to one embodiment of the present invention contains rubber latex. The rubber latex is a mixture of liquid rubber latex and solid rubber latex. In this specification, rubber latex means an emulsion in which a rubber component is dispersed in the form of fine particles in a dispersion medium such as water or an aqueous solution. Liquid rubber means a rubber that has flowability at room temperature and atmospheric pressure, and liquid rubber latex means an emulsion in which liquid rubber is dispersed in the form of fine particles in a dispersion medium. Solid rubber means a rubber that does not flow at room temperature and atmospheric pressure, and solid rubber latex means an emulsion in which solid rubber is dispersed in the form of fine particles in a dispersion medium.
[0018] In the rubber latex contained in this aqueous adhesive for tennis balls, fine particles of liquid rubber and fine particles of solid rubber are dispersed in a dispersion medium such as water or an aqueous solution, etc. The ratio of the liquid rubber to the total rubber components contained in this rubber latex is more than 20% by mass and less than 90% by mass, calculated as the solid content.
[0019] A water-based adhesive in which the ratio of liquid rubber to the total rubber components exceeds 20% by mass in terms of solid content has excellent tack and tear properties in the dried, unvulcanized state. This water-based adhesive can easily adhere multiple meltons, and can peel off the adhered meltons without deformation. Furthermore, a water-based adhesive in which this ratio is less than 90% by mass has excellent migration resistance in the dried, unvulcanized state. This water-based adhesive does not adhere to other components even in the dried, unvulcanized state, and therefore has good workability. Furthermore, this water-based adhesive does not substantially contain organic solvents. This water-based adhesive reduces the burden on the environment and the burden on workers who use it.
[0020] From the viewpoint of obtaining good tackiness and tearability, the ratio of the liquid rubber to the total rubber component is preferably 25% by mass or more, and more preferably 30% by mass or more. From the viewpoint of excellent migration resistance, this ratio is preferably 85% by mass or less, and more preferably 80% by mass or less.
[0021] The type of liquid rubber latex and solid rubber latex is not particularly limited as long as the appropriate tackiness, tearability and migration resistance are obtained. Examples of the rubber component in the liquid rubber latex and solid rubber latex include styrene-butadiene rubber, acrylonitrile-butadiene rubber, chloroprene rubber, butadiene rubber, isoprene rubber, butyl rubber, ethylene-propylene rubber, and modified products thereof. Examples of modified products include functional group modified rubbers such as carboxyl groups, amine groups, and hydroxyl groups. Isoprene rubber or natural rubber is preferred because it is not necessary to add sulfur (vulcanizing agent), which causes coloring after vulcanization. Crosslinking due to proteins, phospholipids, etc. in the natural rubber latex may unintentionally increase green strength. From the viewpoint of manufacturing stability, the more preferred rubber component is isoprene rubber.
[0022] From the viewpoint of tackiness and tearability, the Mooney viscosity (ML 1+4(100°C)) is preferably 6.0 or less, more preferably 5.0 or less, and particularly preferably 4.0 or less. From the viewpoint of migration resistance, the Mooney viscosity of the rubber component is preferably 2.0 or more. The molecular weight and molecular weight distribution of the rubber component affect the Mooney viscosity. In this aqueous adhesive, the liquid rubber is blended with the solid rubber at a specified ratio, so that the average molecular weight of the resulting rubber component is reduced and the molecular weight distribution is broadened. As a result, the Mooney viscosity of the rubber component is properly adjusted, and the effects of the present invention become more pronounced.
[0023] Mooney viscosity (ML) of rubber component in rubber latex 1+4 The elastic modulus (100°C) is measured in accordance with the provisions of "JIS K6300" after drying the rubber latex, which is a mixture of liquid rubber latex and solid rubber latex in a specified ratio, to remove the moisture. The measurement conditions are as follows: Rotor: L rotor Preheat time: 1 minute Rotor rotation time: 4 minutes Temperature: 100℃
[0024] As long as the effects of the present invention can be obtained, the number average molecular weight of the liquid rubber contained in the liquid rubber latex is not particularly limited and can be appropriately selected depending on the type of the liquid rubber. From the viewpoint of easily obtaining good tackiness, tearability and migration resistance, the number average molecular weight of the liquid rubber is preferably 60,000 or less, more preferably 40,000 or less. In addition, the number average molecular weight of the liquid rubber is preferably 10,000 or more, more preferably 20,000 or more.
[0025] As long as the effects of the present invention can be obtained, the number average molecular weight of the solid rubber contained in the solid rubber latex is not particularly limited and can be appropriately selected depending on the type of the solid rubber. From the viewpoint of easily obtaining good tackiness, tearability, and migration resistance, the number average molecular weight of the solid rubber is preferably 3,000,000 or less, more preferably 2,000,000 or less. In addition, the number average molecular weight of the solid rubber is preferably 500,000 or more, more preferably 1,000,000 or more.
[0026] The solid content concentration of the rubber latex is preferably 80% by mass or less, more preferably 70% by mass or less, from the viewpoint of mixability with various additives described later. From the viewpoint of adhesive strength, the solid content concentration of the rubber latex is preferably 20% by mass or more, more preferably 30% by mass or more. The solid content concentration of the rubber latex is determined in accordance with the method described in JIS K6387-2 "Rubber latex-Part 2: Determination of total solid content".
[0027] Preferably, this aqueous adhesive for tennis balls contains a vulcanization accelerator together with the rubber latex. As long as the effects of the present invention are not impaired, the type of vulcanization accelerator is not particularly limited, and an appropriate selection may be made from aldehyde-ammonia-based vulcanization accelerators, aldehyde-amine-based vulcanization accelerators, thiazole-based vulcanization accelerators, sulfenamide-based vulcanization accelerators, thiuram-based vulcanization accelerators, dithiocarbamate-based vulcanization accelerators, guanidine-based vulcanization accelerators, thiourea-based vulcanization accelerators, xanthogenate-based vulcanization accelerators, and the like. One or more vulcanization accelerators may be used in combination. A thiuram-based vulcanization accelerator is preferably used because it allows sulfur-free vulcanization without using sulfur (a vulcanizing agent) that causes coloring after vulcanization.
[0028] When a thiuram vulcanization accelerator is used in combination with other vulcanization accelerators, the proportion of the thiuram vulcanization accelerator in the total vulcanization accelerators is preferably 50 mass% or more, more preferably 55 mass% or more, and particularly preferably 60 mass% or more.
[0029] From the viewpoint of the strength of the seam portion after vulcanization, the amount of the vulcanization accelerator contained in the aqueous adhesive is preferably 1.5 parts by mass or more, more preferably 2.5 parts by mass or more, calculated as solid content, per 100 parts by mass of the rubber component. From the viewpoint of the fluidity during vulcanization, the amount of the vulcanization accelerator contained in the aqueous adhesive is preferably 3.5 parts by mass or less, more preferably 3.0 parts by mass or less, calculated as solid content.
[0030] The aqueous adhesive may contain a vulcanizing agent as necessary. Suitable vulcanizing agents include, for example, sulfur such as powdered sulfur, insoluble sulfur, precipitated sulfur, and colloidal sulfur; and sulfur compounds such as morpholine disulfide and alkylphenol disulfide. Since the sulfur blended as a vulcanizing agent may cause discoloration of the resulting seam, an aqueous adhesive that does not substantially contain sulfur is preferred. In this specification, sulfur means sulfur as a simple substance such as powdered sulfur.
[0031] As long as the effects of the present invention are obtained, the aqueous adhesive may contain an inorganic filler. One or more inorganic fillers selected from the group consisting of silica, carbon black, calcium carbonate, calcium hydroxide, magnesium hydroxide, talc, mica, diatomaceous earth, titanium oxide, zinc oxide, bismuth oxide, barium sulfate, magnesium carbonate, and alumina are preferred. From the viewpoint of the strength of the seam portion to be formed, the amount of the inorganic filler in the aqueous adhesive is preferably 5 parts by mass or more, more preferably 15 parts by mass or more, calculated as solid content, relative to 100 parts by mass of the total rubber components. From the viewpoint of fluidity during vulcanization, the amount of the inorganic filler is preferably 40 parts by mass or less, more preferably 30 parts by mass or less, calculated as solid content.
[0032] As long as the effects of the present invention are not impaired, the aqueous adhesive may further contain various additives such as a vulcanization accelerator, a thickener, a tackifier, an antiaging agent, an antioxidant, a light stabilizer, a softener, a processing aid, and a colorant.
[0033] As long as the effects of the present invention are obtained, the concentration of the total solid content contained in the aqueous adhesive is not particularly limited. From the viewpoint of the strength of the resulting seam part, the solid content concentration is preferably 5.0 mass% or more, more preferably 10 mass% or more. From the viewpoint of the fluidity during vulcanization, the solid content concentration is preferably 80 mass% or less, more preferably 70 mass% or less.
[0034] From the viewpoint of obtaining good tackiness, tearability and migration resistance, the Mooney viscosity (ML 1+4(100°C)) is preferably 10 or less, more preferably 8 or less, and particularly preferably 6 or less. From the viewpoint of migration resistance, the Mooney viscosity of the water-based adhesive is preferably 2 or more. The Mooney viscosity (ML 1+4 (100°C)) is measured in accordance with the provisions of "JIS K6300" after the water-based adhesive is dried to remove the moisture. The measurement conditions are as follows: Rotor: L rotor Preheat time: 1 minute Rotor rotation time: 4 minutes Temperature: 100℃
[0035] From the viewpoint of adhesion to the immersed melton, the viscosity of the water-based adhesive is preferably 10 Pa·s or more, more preferably 15 Pa·s or more. From the viewpoint of fluidity, the viscosity of the water-based adhesive is preferably 25 Pa·s or less, more preferably 20 Pa·s or less. The viscosity of this water-based adhesive is measured at a temperature of 23±1°C using a Brookfield type rotational viscometer (rotor: No. 3) in accordance with the description of JIS Z8803 "Method of measuring viscosity of liquids". The rotation speed is 10 rpm when the viscosity is 20 Pa·s or less, and 5 rpm when the viscosity exceeds 20 Pa·s.
[0036] The method for producing this aqueous adhesive for tennis balls is not particularly limited, but for example, the adhesive is produced by blending liquid rubber latex and solid rubber latex so that the ratio of the liquid rubber to the total rubber components is more than 20% by mass and less than 90% by mass, and then sequentially adding and mixing additives such as a vulcanization accelerator and inorganic filler. The additives such as the vulcanization accelerator may be mixed with the rubber latex as they are, or may be mixed as a slurry of each additive.
[0037] The slurry of each additive is obtained by adding and mixing each additive into a dispersion medium containing a dispersant. The type of dispersant contained in the dispersion medium is not particularly limited, and is appropriately selected from anionic, nonionic, and cationic surfactants according to the type of additive and the concentration of the slurry. Examples of anionic surfactants include alkylsulfonates having 8 to 20 carbon atoms, alkylaryl sulfates, sodium naphthalenesulfonate-formaldehyde condensates, and alkali metal salts of rosin acid. Examples of nonionic surfactants include aromatic polyglycol ethers, polyvinyl alcohols, polyoxyethylene alkyl ethers, and polyoxyethylene monostearate. Examples of cationic surfactants include dilauryl dimethyl ammonium chloride, hexadecyl trimethyl ammonium chloride, octadecyl trimethyl ammonium chloride, and dodecyl trimethyl ammonium chloride. Anionic or nonionic surfactants are preferred. Two or more surfactants may be used in combination.
[0038] From the viewpoint of the stability of the slurry, the concentration of the dispersant in the dispersion medium is preferably 0.5% by mass or more, more preferably 1.0% by mass or more. From the viewpoint of the adhesive strength of the obtained adhesive, the concentration of the dispersant in the dispersion medium is preferably 20% by mass or less, more preferably 15% by mass or less.
[0039] The dispersion medium can also be used to adjust the solid content concentration of the liquid rubber latex and the solid rubber latex. After blending the liquid rubber latex and the solid rubber latex, the dispersion medium may be added to adjust the solid content concentration. After blending the liquid rubber latex and the solid rubber latex, each additive may be added and mixed, and then the dispersion medium may be used to adjust the solid content concentration.
[0040] This aqueous adhesive for tennis balls can be suitably used, for example, in the manufacture of hard tennis balls. Fig. 1 shows a tennis ball 2 obtained using the aqueous adhesive according to one embodiment of the present invention. This tennis ball 2 has a hollow core 4, two felt sections 6 covering this core 4, and a seam section 8 located in the gap between the two felt sections 6. The thickness of the core 4 is usually about 3 mm to 4 mm. The inside of the core 4 is filled with compressed gas. Two felt sections 6 are attached to the surface of the core 4 with an adhesive.
[0041] FIG. 2 is a cross-sectional view for explaining a process for forming the core 4 of the tennis ball 2 of FIG. 1. As shown in FIG. 2(a), in the process for forming the core 4, first, two half cores 20 are prepared. Each half core 20 is in the shape of a hemispherical shell and has an annular edge portion 21. Next, the water-based adhesive for rubber according to the present invention is applied to the edge portion 21 of each half core 20, and tablets of sodium chloride and sodium nitrite and water are poured into one half core 20. Thereafter, as shown in FIG. 2(b), the two half cores 20 are bonded together at their edge portions 21. The sphere consisting of the two half cores 20 is put into a predetermined mold and heated and pressurized to form the hollow core 4.
[0042] The core 4 is formed by crosslinking a rubber composition containing a base rubber, a vulcanizing agent, a vulcanization accelerator, a filler, and the like. Suitable base rubbers include natural rubber, polybutadiene, polyisoprene, styrene-butadiene copolymers, acrylonitrile-butadiene copolymers, polychloroprene, ethylene-propylene copolymers, ethylene-propylene-diene copolymers, isobutylene-isoprene copolymers, and acrylic rubber. More preferred base rubbers are natural rubber and polybutadiene. Two or more types of base rubbers may be used in combination. The rubber composition of the core 4 may further contain additives such as vulcanization aids, antiaging agents, antioxidants, light stabilizers, softeners, processing aids, and colorants.
[0043] As long as the object of the present invention is achieved, the method for producing the rubber composition is not particularly limited. For example, the rubber composition may be produced by heating and pressurizing a kneaded mixture obtained by adding a base rubber and appropriately selected additives to a known kneading machine such as a Banbury mixer, a kneader, or a roll and kneading the mixture. The kneading conditions and vulcanization conditions are selected depending on the compounding of the rubber composition. The kneading temperature is preferably 50°C or higher and 180°C or lower. The vulcanization temperature is preferably 140°C or higher and 180°C or lower. The vulcanization time is preferably 2 minutes or higher and 60 minutes or lower.
[0044] Next, the woven felt is cut into a dumbbell shape to prepare a large number of felt portions 6 (melton). After stacking the large number of felt portions 6, they are immersed in the above-mentioned water-based adhesive, so that the water-based adhesive adheres to the sides (cut surfaces) of the large number of felt portions 6. The felt portions 6 are then dried, so that the sides of the large number of felt portions 6 are bonded with the unvulcanized rubber composition. Of the large number of bonded felt portions 6, two felt portions 6 are peeled off and attached to the outer surface of the core 4, and pressurized and heated. The rubber composition attached to the sides of the felt portions 6 is vulcanized by pressurization and heating, so that a tennis ball 2 is obtained in which seam portions 8 are formed in the gaps between the felt portions 6.
[0045] This aqueous adhesive for tennis balls has good tackiness, tearability, and migration resistance, so that a felt portion 6 having an appropriate amount of unvulcanized rubber composition attached to its side surface can be efficiently obtained. In addition, this aqueous adhesive has appropriate fluidity during vulcanization, so that a seam portion 8 can be formed without any gaps between two felt portions 6. Tennis ball 2 having this seam portion 8 has high durability. Using this aqueous adhesive, a high-quality tennis ball 2 can be efficiently manufactured. EXAMPLES
[0046] The effects of the present invention will be clarified by the following examples, but the present invention should not be construed as being limited based on the description of these examples.
[0047] [Example 1] (Adjustment of dispersion medium) A dispersion medium was obtained by mixing 100 parts by mass of purified water, 1.6 parts by mass of TAMOL NN 9104 (BASF's naphthalenesulfonic acid formalin condensate, sodium salt), 0.6 parts by mass of Emulvin W (LANXESS's aromatic polyglycol ether), and 0.4 parts by mass of ammonia water (Wako Pure Chemical Industries, concentration 28% by mass).
[0048] (Adjustment of thickener) A thickener was obtained by adding 50 parts by mass of A-7075 (acrylic polymer emulsion manufactured by Toagosei) and 9.0 parts by mass of aqueous ammonia (manufactured by Wako Pure Chemical Industries, concentration 28% by mass) to 100 parts by mass of purified water.
[0049] (Adjustment of rubber latex) The dispersion medium was added to Kuraray's "Kuraray LIR-700" (trade name), and the mixture was diluted 1.4 times to obtain a liquid rubber latex with a solid content concentration of 60% by mass. The obtained liquid rubber latex was mixed with a solid rubber latex (Cariflex Pte. Ltd.'s "Cariflex IR0401 SU" (solid content concentration 63% by mass) to obtain rubber latex E1 with a ratio of liquid rubber L-IR to solid rubber S-IR of 30:70 in terms of solid content. A portion of the rubber latex E1 was sampled and dried at 60°C for 24 hours, and then the Mooney viscosity (ML 1+4 (100℃) was measured. The measurement results were 1+4 (100): Rubber component" is shown in Table 1 below.
[0050] (Adjustment of additive slurry) The above-mentioned dispersion medium was added to each of titanium oxide (manufactured by Behn Meyer under the trade name "Disoertint TB60"), zinc oxide (manufactured by Behn Meyer under the trade name "Disoertint ZnO60"), silica (manufactured by Nippon Shokubai under the trade name "Seahoster KE W50"), antioxidant (manufactured by Chukyo Yushi under the trade name "K-840"), and vulcanization accelerator DPTT (manufactured by Ouchi Shinko Chemical under the trade name "Noccela TRA"), and the mixture was stirred in a ball mill for 24 hours to prepare each slurry with a solid concentration of 60 mass%.
[0051] (Adjustment of water-based adhesive) The obtained rubber latex E1 was stirred at 150 rpm using a three-one motor, and the titanium oxide slurry, zinc oxide slurry, silica slurry, antioxidant slurry, and vulcanization accelerator slurry were added in this order, and then the above-mentioned thickener was added to adjust the viscosity to 15 to 20 Pa·s, thereby obtaining the aqueous adhesive of Example 1. The solid composition of the aqueous adhesive of Example 1 was 7.22 parts by mass of titanium oxide, 5 parts by mass of zinc oxide, 8 parts by mass of silica, 0.51 parts by mass of antioxidant, and 2.54 parts by mass of vulcanization accelerator, relative to 100 parts by mass of the total rubber components. A portion of the obtained aqueous adhesive was sampled and dried at 60°C for 24 hours, and then the Mooney viscosity (ML 1+4 (100℃) was measured. The measurement results were 1+4 (100°C): Water-based adhesive" is shown in Table 1 below.
[0052] [Examples 2-4 and Comparative Examples 1-9] The water-based adhesives of Examples 2-4 and Comparative Examples 1-9 were obtained in the same manner as in Example 1, except that the types and compounding ratios of the rubber components were as shown in Table 1-3 below. For Examples 2-4 and Comparative Examples 1-8, the Mooney viscosity (ML 1+4 (100°C)) of the water-based adhesive was measured for Examples 2-4 and Comparative Examples 1-5 in the same manner as in Example 1. 1+4(100°C)) was measured. For Comparative Examples 6-8, the Mooney viscosity of the water-based adhesive was expected to be outside the preferred range based on the measurement results of the rubber latex, so no measurement was performed. The Mooney viscosity of Comparative Example 9 was not measured. The results obtained are shown in Table 1-3 below. In Table 1-3, "ND" means "below the detection limit." "*" means "impossible to measure under the same conditions."
[0053] [Reference example] As a reference example, a conventional organic solvent-based adhesive was prepared. Specifically, 100 parts by mass of natural rubber (trade name "SMR CV60" of Astlett Rubber Co., Ltd.), 5 parts by mass of zinc oxide (trade name "Ginrei R" manufactured by Toho Zinc Co., Ltd.), 7.22 parts by mass of titanium oxide (trade name "KR-380" manufactured by Titanium Kogyo Co., Ltd.), 8 parts by mass of silica (trade name "Ultrasil VN3GR" manufactured by Evonik Co., Ltd.), 0.51 parts by mass of an antioxidant (trade name "Wingstay" manufactured by ELIOKEM Co., Ltd.), and 2.54 parts by mass of a vulcanization accelerator DPTT (trade name "Noccela TRA" manufactured by Ouchi Shinko Chemical Co., Ltd.) were kneaded with a pressure kneader to obtain a rubber composition. The rubber composition was dissolved in 60 parts by mass of naphtha to obtain an organic solvent-based adhesive of the reference example. The Mooney viscosity (ML 1+4 (100°C)) was 60. The Mooney viscosity of the adhesive in the reference example was not measured because naphtha remains when the organic solvent-based adhesive is used and it cannot be simply compared with the water-based adhesive used in a dry state.
[0054] [Evaluation of tearability, tackiness and migration resistance] Woven felt was punched into a dumbbell shape to obtain a large number of meltons. Several dozen sheets of this melton were stacked, sandwiched between two end plates, and immersed in the water-based adhesive for 20 seconds. After immersion, the water-based adhesive attached to the side of the stacked meltons was dried for 48 hours. After drying, the tearability, tackiness, and migration resistance of the fixed meltons were evaluated based on the following criteria. The tearability, tackiness, and migration resistance of the organic solvent-based adhesive of the reference example were also evaluated in the same manner. The evaluation results obtained for the water-based adhesives of Examples 1-4 and Comparative Examples 1-9 and the organic solvent-based adhesive of the reference example are shown in Table 1-3 below. <Tearability>: The peelability of the adhered meltons and the deformation during peeling were observed. A: The melton does not stretch when peeled off. B: The melton stretches during peeling. C: Cannot be peeled off. <Tackiness>: The adhesion between meltons and the change over time were observed. A: After drying, multiple meltons adhere to the surface and do not peel off even after aging. B: Several pieces of melton adhere to the surface after drying, but peel off over time. C: The melton peels off immediately after drying. <Migration resistance>: The adhesion was observed when the dried seam glue was brought into contact with other meltons. A: Does not adhere. B: Adheres but can be peeled off. C: Cannot be removed once attached.
[0055] [Table 1]
[0056] [Table 2]
[0057] [Table 3]
[0058] Details of the compounds shown in Tables 1-3 are as follows: S-IR: Rubber component of solid rubber latex (product name "Cariflex IR0401 SU" manufactured by Cariflex PTE. Ltd.), isoprene rubber L-IR: Rubber component of liquid rubber latex (Kuraray's liquid rubber latex, product name "Kuraray LIR-700"), isoprene rubber NR: Rubber component of solid rubber latex (Nomura Trading Co.'s solid rubber latex, "HYTEX-HA"), natural rubber VP: Rubber component of solid rubber latex (solid rubber latex manufactured by Nippon A&L Co., Ltd., product name "Pyratex"), 2-vinylpyridine modified styrene-butadiene rubber SBR: Rubber component of solid rubber latex (solid rubber latex manufactured by Asahi Kasei Corporation, product name "SB Latex A-7141"), carboxy-modified styrene-butadiene rubber Natural rubber: Astlett Rubber's product name "SMR CV60" Depolymerized natural rubber: The rubber component of solid rubber latex (depolymerized natural rubber latex manufactured by Resitex, product name "DPL-51")
[0059] From Table 1, it can be seen that the rubber component of the water-based adhesive of the Example has a Mooney viscosity that is significantly smaller than that of the rubber component of the organic solvent-based adhesive of the Reference Example. As a result, the water-based adhesive of the Example obtained tear resistance, tackiness, and migration resistance equivalent to those of the Reference Example. Furthermore, as shown in Tables 1-3, the water-based adhesive of the Example was rated higher than the water-based adhesive of the Comparative Example. From these evaluation results, the superiority of the present invention is clear. [Industrial Applicability]
[0060] The water-based adhesive described above can be applied to the manufacture of various hollow balls. [Explanation of symbols]
[0061] 2. Tennis ball 4. Core 6 Felt section 8. Seam part 20. Half core 21 Edge section
Claims
1. Contains rubber latex the rubber latex is a mixture of liquid rubber latex and solid rubber latex, a ratio of a liquid rubber, which is a rubber component of the liquid rubber latex, to a total rubber component contained in the rubber latex is more than 20 mass % and less than 90 mass % in terms of solid content, The water-based adhesive for tennis balls, wherein the rubber component contained in the rubber latex has a Mooney viscosity (ML 1+4 (100° C.)) of 6.0 or less.
2. The Mooney viscosity (ML) of the water-based adhesive 1+4 2. The water-based adhesive of claim 1, wherein the viscosity at 100° C. is 10 or less.
3. 3. The aqueous adhesive according to claim 1, wherein the number average molecular weight of the liquid rubber which is the rubber component of the liquid rubber latex is 10,000 or more and 60,000 or less.
4. 4. The water-based adhesive according to claim 1, further comprising a thiuram vulcanization accelerator.
5. 5. The aqueous adhesive according to claim 1, wherein the liquid rubber which is the rubber component of the liquid rubber latex is isoprene rubber.
6. 6. The aqueous adhesive according to claim 1, wherein the solid rubber which is the rubber component of the solid rubber latex is isoprene rubber.
7. An aqueous adhesive described in any one of claims 1 to 6, wherein the number average molecular weight of the solid rubber, which is the rubber component of the solid rubber latex, is 500,000 or more and 3,000,000 or less.
8. A tennis ball having a seam portion, the seam portion being formed from the water-based adhesive for tennis balls according to any one of claims 1 to 7.
Citation Information
Patent Citations
Adhesive for tennis ball melt seaming
JP1982179265A
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