Rubber composition for covering steel wire

A rubber composition with specific filler and metal compound blends addresses adhesion and durability issues by suppressing metal diffusion, ensuring long-term performance in steel wire coatings.

JP2025117610APending Publication Date: 2025-08-13THE YOKOHAMA RUBBER CO LTD
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Patent Information

Application Number
JP2024012426
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-31
Publication Date
2025-08-13

AI Technical Summary

Technical Problem

Existing rubber compositions for coating steel wires in tires fail to maintain good adhesion and durability over an extended period, particularly due to the formation of depleted layers caused by excessive diffusion of metals from the metal plating compounds.

Method used

A rubber composition comprising diene rubber blended with specific amounts of filler, zinc oxide, and a metal compound with an ionization tendency equal to or greater than the metal in the metal plating compound, suppressing excessive metal diffusion and minimizing depleted layers.

Benefits of technology

The composition achieves long-term adhesion and durability by preventing metal depletion, enhancing adhesion and maintaining performance under moist heat degradation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a rubber composition for covering a steel wire that exhibits favorable adhesion to the steel wire along with long-term maintenance of durability in consideration of the extended service period of tires.SOLUTION: The problem is solved by a rubber composition for covering a steel wire coated with a metal-plated compound, the rubber composition comprising, with respect to 100 pts.mass of a diene rubber comprising natural rubber and / or synthetic isoprene rubber: 40 to 80 pts.mass of a filler; 1 to 20 pts.mass of zinc oxide; and 0.2 to 12 pts.mass of a compound comprising a metal having an ionization tendency equal to or greater than that of a metal contained in the metal-plated compound and an oxygen atom (excluding the zinc oxide and organic metal salts).SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a rubber composition for coating steel wires, and more particularly to a rubber composition for coating steel wires that has good adhesion to steel wires and can maintain durability over a long period of time. [Background technology]

[0002] A pneumatic tire is primarily composed of a pair of bead sections and sidewall sections, and a tread section that connects to both sidewall sections. A carcass layer is provided on the inside of the tire, and both ends of the carcass layer are folded back to enclose the bead cores from the inside to the outside of the tire. The tread portion is composed of a cap tread and an undertread, and a belt layer is disposed between the undertread and the carcass layer. Since this belt layer is subjected to strong impacts and large loads, steel wires coated with metal plating compounds are used as reinforcing materials. The rubber covering these steel wires must have good adhesion to the steel wires, and for this purpose, there is a method of blending organic metal salts into the rubber (see, for example, Patent Documents 1 to 3 below).

[0003] On the other hand, as the period of use of tires becomes longer, rubber compositions for coating steel wires are required to maintain durability over a long period of time in addition to good adhesion to steel wires. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 6977243 [Patent Document 2] Patent No. 7328508 [Patent Document 3] Patent No. 7339506 Summary of the Invention [Problem to be solved by the invention]

[0005] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide a rubber composition for coating steel wires which has good adhesion to steel wires and can maintain durability over a long period of time. [Means for solving the problem]

[0006] As a result of extensive research, the inventors have discovered that the above-mentioned problems can be solved by a rubber composition in which a diene rubber is blended with specific amounts of filler and zinc oxide, and a specific amount of a metal compound having a specific ionization tendency, and have thus completed the present invention.

[0007] That is, the present invention provides a rubber composition for covering a steel wire coated with a metal plating compound, characterized in that the rubber composition contains, per 100 parts by mass of diene rubber including natural rubber and / or synthetic isoprene rubber, 40 to 80 parts by mass of a filler consisting of carbon black and / or silica, 1 to 20 parts by mass of zinc oxide, and 0.2 to 12 parts by mass of a compound containing an oxygen atom and a metal having an ionization tendency equal to or greater than that of the metal contained in the metal plating compound (excluding the zinc oxide and organometallic salt). [Effects of the Invention]

[0008] According to the present invention, a rubber composition for coating a steel wire can be provided which has good adhesion to the steel wire and can maintain durability for a long period of time, by blending specific amounts of filler and zinc oxide with a diene rubber and also blending specific amounts of a metal compound having a specific ionization tendency.

[0009] As described above, the rubber composition for coating steel wire of the present invention contains a compound (hereinafter sometimes referred to as a specific metal compound) containing a metal having the same or greater ionization tendency as the metal contained in the metal plating compound and an oxygen atom. The metal contained in the metal plating compound coating the steel wire combines with sulfur in the rubber during vulcanization, providing adhesion between the rubber and the steel wire. However, the metal easily diffuses into the rubber, forming a depleted layer with reduced metal density. The presence of a large number of depleted layers can lead to problems, such as breakdown (peel-off between the rubber and the steel wire) initiated by the depleted layer during, for example, moist heat degradation. For example, if the metal plating compound is brass plating, copper ions and zinc ions combine with sulfur ions in the rubber during vulcanization to form copper-sulfur compounds and zinc-sulfur compounds combined with zinc oxide. These compounds enhance adhesion between the rubber and the steel wire. However, copper and zinc easily diffuse into the rubber, forming a depleted layer with reduced copper and zinc metal density on the steel wire side. This depleted layer can then initiate breakdown. In the present invention, by blending the specific metal compound, excessive diffusion of the metal contained in the metal plating compound that coats the steel wire into the rubber is suppressed, and the occurrence of the depleted layer is also minimized, thereby making it possible to maintain good adhesion and durability with the steel wire for a long period of time. DETAILED DESCRIPTION OF THE INVENTION

[0010] The present invention will now be described in further detail. (Diene rubber) The diene rubber used in the rubber composition of the present invention essentially comprises natural rubber (NR) and / or synthetic isoprene rubber (IR). The blending amount of NR and / or IR is preferably 80 parts by mass or more per 100 parts by mass of the total diene rubber. In addition to NR and IR, other diene rubbers can also be used, such as butadiene rubber (BR), styrene-butadiene copolymer rubber (SBR), and acrylonitrile-butadiene copolymer rubber (NBR). These may be used alone or in combination of two or more. There are no particular limitations on the molecular weight or microstructure, and the diene rubber may be terminally modified with amine, amide, silyl, alkoxysilyl, carboxyl, hydroxyl, or the like, or may be epoxidized. The weight average molecular weight (Mw) of the diene rubber is not particularly limited, but for reasons such as better effects of the present invention, it is preferably 100,000 to 5,000,000, more preferably 200,000 to 3,000,000, and even more preferably 300,000 to 2,000,000. In this specification, the weight average molecular weight (Mw) and number average molecular weight (Mn) are values calculated as standard polystyrene obtained by gel permeation chromatography (GPC) measurement.

[0011] (filler) The rubber composition of the present invention contains a filler made of carbon black and / or silica. From the viewpoint of improving the effect of the present invention, the nitrogen adsorption specific surface area (N2SA) of the carbon black is 30 to 100 m 2 In this specification, the nitrogen adsorption specific surface area (N2SA) of carbon black is measured in accordance with JIS K6217-7. In order to improve the effect of the present invention, the CTAB adsorption specific surface area of silica is 100 to 200 m 2 In this specification, the CTAB adsorption specific surface area of silica is a value obtained by measuring the amount of n-hexadecyltrimethylammonium bromide adsorbed onto the silica surface in accordance with JIS K6217-3:2001 "Part 3: Determination of specific surface area - CTAB adsorption method."

[0012] (Specific metal compounds) The specific metal compound used in the rubber composition of the present invention is a compound containing an oxygen atom and a metal with the same or higher ionization tendency than the metal contained in the metal plating compound. However, the specific metal compound does not include zinc oxide and excludes organic metal salts. Note that organic acid metal salts such as organic acid cobalt can be compounded into the rubber composition as needed, but in this case, the organic acid metal salts are not included in the scope of the specific metal compound. Note that "metals with the same or higher ionization tendency" can also be interpreted as "metals with the same or lower Gibbs free energy." For example, when the metal plating compound is brass plating, zinc, which has a higher ionization tendency, is used as an indicator, and the metal contained in the specific metal compound can be zinc or a metal with a higher ionization tendency than zinc. Specific examples of this form include cerium, lithium, cesium, rubidium, potassium, barium, strontium, calcium, sodium, magnesium, thorium, beryllium, aluminum, titanium, zirconium, manganese, tantalum, and zinc. Furthermore, from the viewpoint of improving the effects of the present invention, when the metal plating compound is brass plating, the specific metal compound is preferably calcium carbonate, magnesium oxide, titanium oxide, or cerium oxide.

[0013] (Rubber composition blending ratio) The rubber composition of the present invention is characterized by comprising 40 to 80 parts by mass of a filler consisting of carbon black and / or silica, 1 to 20 parts by mass of zinc oxide, and 0.2 to 12 parts by mass of a specific metal compound, blended with 100 parts by mass of diene rubber. If the amount of filler mixed is less than 40 parts by mass per 100 parts by mass of diene rubber, the hardness decreases, whereas if it exceeds 80 parts by mass, the elongation at break and the adhesiveness to the wire decrease. If the amount of the specific metal compound is less than 0.2 parts by mass per 100 parts by mass of diene rubber, the amount is too small to achieve the effects of the present invention, and conversely, if it exceeds 12 parts by mass, the breaking elongation and wire adhesion will decrease.

[0014] From the viewpoint of improving the effects of the present invention, the amount of filler is preferably 55 to 65 parts by mass, the amount of zinc oxide is preferably 5 to 15 parts by mass, and the amount of specific metal compound is preferably 2 to 5 parts by mass, relative to 100 parts by mass of diene rubber.

[0015] In terms of the amount of filler to be compounded, the amount of carbon black to be compounded is preferably 20 to 40 parts by mass, and the amount of silica to be compounded is preferably 30 to 50 parts by mass, per 100 parts by mass of diene rubber.

[0016] (Other ingredients) In addition to the above-mentioned components, the rubber composition of the present invention may contain various additives that are generally compounded in rubber compositions, such as vulcanization or crosslinking agents, vulcanization or crosslinking accelerators, silane coupling agents, various other fillers such as clay and talc, organic acid metal salts such as organic acid cobalt, various oils, antioxidants, and plasticizers, and these additives can be kneaded by a conventional method to form a composition that can be used for vulcanization or crosslinking. The amounts of these additives that can be compounded may be conventional amounts as long as they do not deviate from the object of the present invention.

[0017] The steel wire coated with the rubber composition of the present invention is coated with a metal plating compound. The metal plating compound is not particularly limited, but preferred examples include metal plating compounds selected from brass plating, copper-tin plating, copper plating, zinc plating, nickel plating, chromium plating, and copper-zinc-cobalt ternary plating.

[0018] Examples of applications of the rubber composition of the present invention include tires, belt conveyors, electric wires, hoses, vibration-isolating rubber, etc. In the case of tire applications, steel wires coated with the rubber composition of the present invention can be applied to belts embedded in undertreads, carcasses, beads (including bead cores and steel wires housed therein), etc.

[0019] The rubber composition of the present invention can be prepared, for example, by mixing the various components described above using a general-purpose mixer such as a Banbury mixer or a roll mixer, and can be used for the various applications described above by embedding steel wires in the rubber composition and vulcanizing the rubber composition in accordance with a conventional method.

[0020] In the case of tire applications, the manufacturing method is not particularly limited, and tires can be manufactured according to known techniques. The tires are preferably pneumatic tires, which can be filled with air, inert gases such as nitrogen, and other gases. [Example]

[0021] The present invention will be further explained below with reference to examples and comparative examples, but the present invention is not limited to the following examples.

[0022] Standard Example, Examples 1 to 6, Comparative Examples 1 to 3 The components excluding the vulcanization system (vulcanization accelerator, sulfur) were mixed in the formulation (parts by mass) shown in Table 1 in a 1.7-liter internal Banbury mixer for 5 minutes, then discharged from the mixer and cooled to room temperature to obtain an unvulcanized rubber composition. The unvulcanized rubber composition was then vulcanized at 170°C for 10 minutes to prepare test specimens, and hardness and elongation at break were measured. For the wire pull-out test, a wire was coated with the unvulcanized rubber composition, and the test specimens vulcanized under the vulcanization conditions were immersed in 70°C hot water for 2 weeks to undergo hot water degradation treatment.

[0023] Hardness: Measured at 20°C in accordance with JIS K 6253. The results are expressed as an index, with the value of the standard example being 100. A larger index indicates higher hardness. Breaking elongation: Breaking elongation was measured in accordance with JIS K6251. The results were expressed as an index, with the value of the standard example being 100. A larger index indicates a larger breaking elongation.

[0024] Pull-out force: In accordance with ASTM D-2, the steel wire was pulled out of the test piece after hot water aging, and the pull-out force at the time of pulling was measured. The results were expressed as an index, with the value of the standard example being 100. The larger this value, the better the adhesion to rubber after hot water aging and the better the long-term durability. Rubber adhesion amount: According to ASTM D-2229, the steel wire was pulled out from the test piece after hot water aging, and the rubber adhesion amount was measured. The results were expressed as an index, with the value of the standard example being 100. The larger this value, the better the adhesion to the rubber after hot water aging and the better the long-term durability. The results are shown in Table 1.

[0025] [Table 1]

[0026] *1:NR(RSS#3) *2: Carbon black (Seast 300 manufactured by Tokai Carbon Co., Ltd.) *3: Silica (Precipitated silica K160 manufactured by FengHai Rice Biotechnology Co., Ltd.) *4: Silane coupling agent (Si69, bis(3-triethoxysilylpropyl)tetrasulfide, manufactured by Evonik Degussa) *5: Zinc oxide (Zinc oxide type 3 manufactured by Seido Chemical Industry Co., Ltd.) *6: Heavy calcium carbonate (heavy calcium carbonate manufactured by Maruo Calcium Co., Ltd.) *7: Magnesium oxide (Kyowamag 30 manufactured by Kyowa Chemical Industry Co., Ltd.) *8: Titanium oxide (Ishihara Sangyo Kaisha, Ltd., Typeque CR-60) *9: Cerium oxide (SC (cerium oxide) manufactured by SOLVAY SPECIALCHEM JAPAN) *10: Silver oxide (Toyo Chemical Industry Co., Ltd. silver oxide) *11: Heavy calcium carbonate aqueous solution (An aqueous solution in which the heavy calcium carbonate is dissolved in water. In Comparative Example 3, in which this aqueous solution was used, a brass-plated steel wire was coated with the heavy calcium carbonate aqueous solution, and the rubber composition did not contain heavy calcium carbonate.) *12: Anti-aging agent (Flexis Santoflex 6PPD) *13: Neodecanoic acid cobalt borate (DICNATE NBC-II manufactured by DIC Corporation) *14: Sulfur (Akzo Nobel Krystex HT OT 20) *15: Vulcanization accelerator (Noccela DZ manufactured by Ouchi Shinko Chemical Industry Co., Ltd.)

[0027] The results in Table 1 show that the rubber composition of each example contains 40 to 80 parts by mass of a filler consisting of carbon black and / or silica, 1 to 20 parts by mass of zinc oxide, and 0.2 to 12 parts by mass of a specific metal compound per 100 parts by mass of diene rubber including natural rubber and / or synthetic isoprene rubber, and therefore has good adhesion to steel wire and can maintain durability over a long period of time. On the other hand, in Comparative Example 1, the compounding ratio of the specific metal compound exceeded the upper limit specified in the present invention, and therefore the breaking elongation and the amount of rubber adhesion decreased. Comparative Example 2 is an example in which no specific metal compound was used and silver oxide was blended, and therefore the breaking elongation, pull-out force and amount of rubber adhesion were reduced. Comparative Example 3 is an example in which the specific metal compound was not compounded in the rubber composition but was instead coated onto steel wires, and therefore the hardness and elongation at break were reduced.

[0028] The present disclosure includes the following inventions. Invention [1]: A rubber composition for covering a steel wire coated with a metal plating compound, The rubber composition for steel wire coating is characterized by containing, per 100 parts by mass of diene rubber including natural rubber and / or synthetic isoprene rubber, 40 to 80 parts by mass of a filler consisting of carbon black and / or silica, 1 to 20 parts by mass of zinc oxide, and 0.2 to 12 parts by mass of a compound containing an oxygen atom and a metal having an ionization tendency equal to or greater than that of the metal contained in the metal plating compound (excluding the zinc oxide and organometallic salt). Invention [2]: The rubber composition according to Invention 1, wherein the metal plating compound is a metal plating compound selected from brass plating, copper-tin plating, copper plating, zinc plating, nickel plating, chromium plating, and copper-zinc-cobalt ternary plating. Invention [3]: A tire, a belt conveyor, an electric wire, a hose, or a vibration-isolating rubber using the rubber composition for coating a steel wire according to Invention 1 or 2.

Claims

1. A rubber composition for coating a steel wire coated with a metal plating compound, comprising: The rubber composition for steel wire coating is characterized by containing, per 100 parts by mass of diene rubber including natural rubber and / or synthetic isoprene rubber, 40 to 80 parts by mass of a filler consisting of carbon black and / or silica, 1 to 20 parts by mass of zinc oxide, and 0.2 to 12 parts by mass of a compound containing an oxygen atom and a metal having an ionization tendency equal to or greater than that of the metal contained in the metal plating compound (excluding the zinc oxide and organometallic salt).

2. 2. The rubber composition for coating steel wire according to claim 1, wherein the metal plating compound is selected from brass plating, copper-tin plating, copper plating, zinc plating, nickel plating, chromium plating, and copper-zinc-cobalt ternary plating.

3. A tire, a belt conveyor, an electric wire, a hose or a vibration-isolating rubber, which uses the rubber composition for coating a steel wire according to claim 1.

Citation Information

Patent Citations

  • Rubber composition for coating tire steel cord

    JP6977243B2

  • Rubber composition for coating steel cord and pneumatic tire containing same

    JP7328508B2

  • Rubber composition for metal bonding and pneumatic tire containing same

    JP7339506B2