Silicone leather
The silicone leather composite, with a silicone/polyurethane hybrid prepolymer coating, addresses the abrasion resistance issue of silicone-based materials, enabling their use in applications requiring mechanical strength and meeting safety standards.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- DOW GLOBAL TECHNOLOGIES LLC
- Filing Date
- 2021-12-28
- Publication Date
- 2026-04-15
AI Technical Summary
Silicone-based leather composites suffer from insufficient mechanical strength and abrasion resistance, limiting their use in applications requiring good abrasion resistance, while polyurethane (PU) and polyvinyl chloride (PVC) materials often fail to meet stringent safety and physical property requirements.
A silicone leather composite material comprising a textile support layer, a silicone binder, a silicone skin layer, and a silicone topcoat layer, with a silicone/polyurethane hybrid prepolymer coating layer between the skin and topcoat, enhancing mechanical strength and abrasion resistance.
The composite material achieves improved abrasion resistance and retains the advantages of silicone leather, such as flexibility and UV resistance, making it suitable for applications previously limited to PU and PVC synthetic leathers.
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Abstract
Description
[Technical Field]
[0001] This disclosure relates to a silicone leather composite material having improved abrasion resistance. It also discloses a method for manufacturing the silicone leather composite material and its use.
[0002] A variety of synthetic alternatives have been developed to replace natural leather, primarily using polyurethane (PU) or polyvinyl chloride (PVC) materials. These are used in a wide range of applications, including furniture, decorations, handbags, suitcases, clothing, footwear, automotive interiors, and automotive seats. However, to be used as synthetic leather, they must meet increasingly stringent safety regulations, such as strict physical property requirements regarding flame retardancy and smoke concentration, as well as suitable adhesive strength, heat resistance, stain resistance, solvent resistance, and hydrolysis resistance to prevent the coating layer from peeling off during use. PU and / or PVC materials often fail to meet one or more of the aforementioned physical property requirements.
[0003] Silicone-based leather composites provide further synthetic alternatives to natural leather. Such silicone-based leather composites may have several advantages over the aforementioned PU and / or PVC-based synthetic leather materials. For example, they can generally be prepared using more environmentally friendly manufacturing methods, without using plasticizers, toxic heavy metals, or environmentally problematic solvents such as dimethylformamide (DMF), which often remain at least partially in synthetic PU and / or PVC leather products after manufacturing.
[0004] Silicone leather composites can be manufactured through several routes, but generally, they are produced using a textile support layer, two or more layers of hydrosilylated curable liquid silicone rubber compositions, and release paper. For example, a first liquid silicone rubber (LSR) composition may be coated onto the release paper and then cured to form a first layer or skin layer. A second LSR composition, usually having different properties from the first layer, is bonded to the cured first layer to form an adhesive layer, and a textile support layer is bonded to the second LSR layer before curing, after which the second LSR composition is cured to form a binder layer located between the skin layer and the textile support layer. If deemed appropriate for forming a silicone leather composite, one or more additional layers of hydrosilylated curable silicone elastomer compositions may be applied between the release paper and the textile layer. For example, a third layer may be provided as a protective topcoat on top of the skin layer. If necessary, the release paper is then removed.
[0005] Such silicone-based leather composite materials can exhibit superior performance compared to conventional PU and PVC synthetic leathers in terms of physical properties, for example, by providing better flexibility over a wide temperature range, as well as excellent UV resistance, heat resistance, and flame retardancy. The top coat is particularly important because it not only helps to provide advantageous properties such as stain resistance, but also provides a gentle feel against human skin and a superior tactile experience for the user.
[0006] However, due to the inherently weak intermolecular interactions between polysiloxane chains, silicone products have the disadvantage of insufficient mechanical strength and therefore insufficient abrasion resistance. Consequently, the use of silicone leather composites tends to be limited to application scenarios with low abrasion resistance requirements, while PU and PVC synthetic leathers are often used in applications requiring good abrasion resistance, such as automotive interiors.
[0007] Therefore, there is still a need to provide silicone leather composite materials that have improved abrasion resistance while retaining the advantages of physical properties compared to PU and PVC synthetic leathers.
[0008] A silicone leather composite material, (i) Textile support layer and (ii) A silicone binder, which is a cured product of a two-component hydrosilylated curable silicone rubber composition designed to adhere to a textile support layer (i) and a skin layer (iii), and having a Shore A hardness of 20 to 40 as measured according to ASTM D2240, (iii) A silicone skin layer which is a cured product of a two-component hydrosilylated curable silicone rubber composition containing an adhesion promoter and has a Shore A hardness of 50 or greater (≧) when measured according to ASTM D2240, (iv) A silicone topcoat layer comprising a silicone topcoat layer which is a cured product of a two-component hydrosilylated curable silicone topcoat composition containing an adhesion promoter, The silicone binder (ii) is bonded between the textile support (i) and the skin layer (iii), and the skin layer (iii) is located between the silicone binder layer (ii) and the silicone topcoat layer (iv). A silicone leather composite is provided, characterized in that a silicone / polyurethane hybrid prepolymer coating layer (v) having an elastic modulus of 10 MPa or more, determined by calculating the elastic modulus using the first straight portion of the load elongation curve according to ASTM D882, is provided in the silicone leather composite between a silicone skin layer (iii) and a silicone topcoat layer (iv).
[0009] Furthermore, a method for preparing the above-mentioned silicone leather composite material, (a) Coating the release paper with a layer of a silicone / polyurethane hybrid prepolymer-based coating composition and curing the composition to provide a silicone / polyurethane hybrid prepolymer-based coating layer (v); (b) Coating a layer of a silicone skin composition on the cured silicone / polyurethane hybrid prepolymer-based coating layer (v) and curing the composition to provide a silicone skin layer (iii); (c) Coating a layer of a silicone binder composition on the cured silicone skin layer (iii), applying a textile layer (i) on the silicone binder composition, and curing and / or laminating the composition to form a silicone binder layer (ii) between the textile support layer (i) and the skin layer (iii); (d) Removing the release paper from the cured silicone / polyurethane hybrid prepolymer-based coating layer (v); and (e) Coating a layer of a two-component hydrosilylation-curable silicone topcoat composition on the cured silicone / polyurethane hybrid prepolymer-based coating layer (v) and curing the topcoat composition to form a silicone topcoat layer (iv). A method is also provided that includes these steps.
[0010] Textile support layer (i) The textile support layer (i) can be made from any suitable textile material, such as natural fibers like cellulose fibers such as cotton, hemp, silk, and wool, and / or synthetic fibers, and / or microfibers, and can be made into a woven fabric, knitted fabric, or non-woven fabric. Examples of synthetic fibers and / or microfibers include polyester, viscose rayon, polyamide fibers such as nylon, polyurethane, acrylic, polyolefin such as polyethylene; and elastic fiber materials such as spandex, acetate, polylactic acid, glass fiber, and carbon fiber, but are not limited to these and can be used as any mixture of two or more of the above. The textile support layer (i) is designed to enhance the mechanical strength of the silicone leather composite material.
[0011] Silicone binder layer (ii) The silicone binder layer (ii) is a cured product of a suitable two - part hydrosilylation - curable silicone rubber composition designed to adhere to the textile support layer (i) and the skin layer (iii). The selected silicone binder layer (ii) has a relatively low Shore A hardness of 20 - 40 measured in accordance with ASTM D2240. The silicone binder layer (ii) can have an average dry coat thickness of any desired value, for example, a thickness of 50 μm to 1 mm, or 50 - 750 μm, or 50 - 500 μm, or 100 - 500 μm, or 100 - 300 μm. In a preferred embodiment, the silicone binder layer (ii) has a high elongation at break, for example, at least 600% elongation at break determined in accordance with ASTM D412, or at least 750% elongation at break determined in accordance with ASTM D412. It can be cured at any suitable temperature, for example, 100 - 200 °C, or 125 - 180 °C, or 130 - 170 °C, or 135 - 160 °C for a suitable time of 20 minutes or less, or 1 - 10 minutes, or 1.5 minutes - 5 minutes, or 1.5 minutes - 4 minutes.
[0012] A commercial example of a suitable hydrosilylation - curable liquid silicone rubber composition designed to function as a binder layer is Dowsil™ LCF 8400 Binder manufactured by Dow Silicones Corporation. Dowsil™ LCF 8400 Binder is provided to customers in two - part form to avoid premature curing, and the two parts of Dowsil™ LCF 8400 Binder are mixed together in a 1:1 ratio before use. SILASTIC LCF 8400 Binder is applied to the fabric and cured at a temperature of 100 - 200 °C for 1 - 10 minutes.
[0013] As described above, the silicone binder (ii) is sandwiched between the textile support layer (i) and the skin coating layer (iii) and is designed to adhere to both of them.
[0014] Silicone skin layer (iii) The silicone skin layer (iii) is a cured product of a two-component hydrosilylated curable silicone rubber composition containing an adhesion promoter, and the silicone skin layer has a Shore A hardness of 50 or greater (≧) when measured according to ASTM D2240. In a preferred embodiment, the silicone skin layer (iii) has an elongation at break of less than 500% or 200-400% as determined according to ASTM D412. The silicone skin layer (iii) is designed to form a protective synthetic leather that is typically bonded to a silicone binder (ii), otherwise typically used alone (i.e., without a topcoat) or sandwiched between the silicone binder (ii) and a suitable topcoat, but as disclosed herein, the silicone skin layer (iii) is sandwiched between the silicone binder (ii) and a silicone / polyurethane hybrid prepolymer coating layer (v). The silicone skin layer (iii) can be formed using any suitable two-component hydrosilylated curable silicone rubber composition containing an adhesion promoter, provided that the above requirements are met. The silicone skin layer (iii) has a Shore A durometer greater than or equal to 50 (≧), or greater than that of the silicone binder (ii) which is 50-90, or 60-90, when measured according to ASTM D2240.
[0015] The silicone skin layer (iii) also includes an adhesion promoter. For example, the adhesion promoter may include one or more acrylicoxysilanes, isocyanatoalkylsilanes, methacrylates, and / or alkoxysilanes having epoxy groups in the molecule.
[0016] Examples of acrylicoxysilanes include 3-acryloxpropyl-trimethoxysilane, 3-acryloxpropyl-methyldimethoxysilane, 3-acryloxpropyl-dimethylmethoxysilane, 3-acryloxpropyl-triethoxysilane, or similar acrylicoxy-substituted alkyl-containing alkoxysilanes.
[0017] An isocyanatoalkylsilane must contain at least one isocyanatoalkyl group per molecule, for example, an isocyanatopropyl group, which may be, for example, (isocyanatoalkyl)trialkoxysilane or (isocyanatopropyl)dialkoxy(alkyl)silane, in each case each alkyl group contains 1 to 6 carbon atoms or 1 to 4 carbon atoms, and each alkoxy group contains 1 to 6 carbon atoms or 2 to 4 carbon atoms. Specific examples include (3-isocyanatopropyl)trimethoxysilane, (3-isocyanatopropyl)trimethoxysilane, (3-isocyanatopropyl)dimethoxy(methyl)silane, (3-isocyanatopropyl)diethoxy(methyl)silane, (3-isocyanatopropyl)dimethoxy(ethyl)silane, and (3-isocyanatopropyl)diethoxy(ethyl)silane.
[0018] Methacrylates are alkoxysilanes containing a methacrylate group, such as methacrylateoxymethyltrimethoxysilane, 3-methacrylateoxypropyltrimethoxysilane, 3-methacrylateoxypropylmethyldimethoxysilane, and 3-methacrylateoxypropyldimethylmethoxysilane. 3-Methacryloxypropyltriethoxysilane, 3-Methacryloxypropylmethyldiethoxysilane, It may contain 3-methacrylateoxyisobutyltrimethoxysilane or a similar methacrylateoxy-substituted alkoxysilane.
[0019] An example of an alkoxysilane having an epoxy group in its molecule that can be used as an adhesion promoter may have the following formula:
[0020] [ka] In the formula, each R 5 These are alkyl groups having 1 to 6 carbon atoms, and are either identical or different, with each R being an alkyl group having 1 to 6 carbon atoms. 6These are identical or different alkoxy groups having 1 to 6 carbon atoms, with z = 0, 1, or 2, or a mixture thereof, in an amount of 1 to 6% by weight of the composition. Alternatively, each R 5 is an alkyl group having 1 to 3 carbon atoms, or 1 to 2 carbon atoms. Alternatively, each R 6 z is an alkoxy group having 1 to 3 carbon atoms or 1 to 2 carbon atoms. Preferably, z is 0 or 1, or z is 0. Specific examples include 3-glycidoxypropyltrimethoxysilane, 3-glycidoxypropyltriethoxysilane, 3-glycidoxypropylmethyldimethoxysilane, 3-glycidoxypropylmethyldiethoxysilane, 4-glycidoxybutyltrimethoxysilane, 5,6-epoxyhexyltriethoxysilane, 2-(3,4-epoxycyclohexyl)ethyltrimethoxysilane, or 2-(3,4-epoxycyclohexyl)ethyltriethoxysilane.
[0021] Alternatively, the adhesion promoter may contain the following mixtures and / or reaction products: i) One or more alkoxysilanes having an epoxy group in the molecule defined above, (ii) Organometallic condensation reaction catalysts containing organoaluminum compounds or organozirconium compounds, and (iii) A linear organopolysiloxane oligomer containing at least one alkenyl group and at least one hydroxyl group or alkoxy group per molecule.
[0022] The organometallic condensation catalyst (ii) comprising an organoaluminum compound or an organozirconium compound may be selected from organometallic catalysts comprising zirconate, organoaluminum chelate, and / or zirconium chelate.
[0023] Zirconate catalysts have the general formula Zr[OR 5 ]4[In the formula, each R 5may be the same or different and represents a monovalent, primary, secondary or tertiary aliphatic hydrocarbon group which may be straight-chain or branched and contains 1 to 20 carbon atoms, or 1 to 10 carbon atoms. The compound may include those with 5 Preferred examples of R include, but are not limited to, methyl group, ethyl group, propyl group, isopropyl group, butyl group, tertiary butyl group and branched secondary alkyl group such as 2,4-dimethyl-3-pentyl group. Each R 5 When they are the same, preferably, R 5 is an isopropyl group, a branched secondary alkyl group or a tertiary alkyl group, particularly a tertiary butyl group. Specific examples include zirconium tetrapropylate and zirconium tetrabutyrate, tetra-isopropyl zirconate, zirconium(IV) tetraacetylacetonate (sometimes called zirconium AcAc4), zirconium(IV) hexafluoroacetylacetonate, zirconium(IV) trifluoroacetylacetonate, tetrakis(ethyltrifluoroacetylacetonate) zirconium, tetrakis(2,2,6,6-tetramethyl-heptanethionate) zirconium, zirconium(IV) dibutoxybis(ethylacetonate), zirconium tributoxyacetylacetate, zirconium butoxyacetylacetonate bisethylacetoacetate, zirconium butoxyacetylacetonate bisethylacetoacetate, diisopropoxybis(2,2,6,6-tetramethyl-heptanethionate) zirconium, or similar zirconium complexes having β-diketones (including their alkyl-substituted and fluorine-substituted forms) used as ligands.
[0024] Suitable aluminum-based condensation catalysts include Al(OC3H7)3, Al(OC3H7)2(C3COCH2COC 12 H 25 ), Al(OC3H7)2(OCOCH3), and Al(OC3H7)2(OCOC 12 H 25One or more of the following may be listed, but are not limited to these.
[0025] The organometallic condensation catalyst (ii) may be present in the composition in an amount of 0.1 to 5% by weight, 0.1 to 3% by weight, or 0.1 to 2% by weight. If the adhesion promoter contains the cumulative amounts of (i), (ii), and (iii), it may be present in an amount of about 0.3 to 6% by weight, or 0.3 to 4% by weight, of the composition.
[0026] A linear organopolysiloxane oligomer (iii) containing at least one alkenyl group and at least one hydroxyl or alkoxy group per molecule may be, for example, a methyl vinylpolysiloxane in which both chain ends are dimethylhydroxysiloxy units, or a copolymer of methyl vinylsiloxane in which both chain ends are dimethylhydroxysiloxy units and dimethylsiloxane units.
[0027] Organopolysiloxane oligomer (iii) may be a mixture of organopolysiloxane molecules, some of which have silanol-terminated groups at both ends of the molecular chain, and some of which have a silanol-terminated group, such as a dimethylhydroxysiloxy-terminated unit, at only one end, with the other end being, for example, a dimethylmethoxysiloxy-terminated unit, a trimethylsiloxy-terminated unit, or a dimethylvinylsiloxy-terminated unit. Preferably, more than 50% by weight, more than 60-100% of organopolysiloxane oligomer (iii) contains molecules having silanol-terminated groups at both ends of the molecular chain.
[0028] Organopolysiloxane oligomer (iii) preferably contains at least 3% by weight, more preferably at least 5% by weight, of vinyl groups, and may contain up to 35 or 40% by weight of vinyl groups. Most preferably, organopolysiloxane oligomer (iii) contains 5 to 30% by weight of vinyl groups. Organopolysiloxane oligomer (iii) preferably has a number-average molecular weight of 100 to 10,000 g / mol when measured using gel permeation chromatography with test GB / T 21863-2008. Organopolysiloxane oligomer (iii) preferably has a viscosity of 0.1 to 300 mPa·s, or 0.1 to 200 mPa·s, or 1 to 100 mPa·s (measured using a Brookfield DV 3T Rheometer at 25°C). Organopolysiloxane oligomer (iii) may be present in the composition in an amount of 0.1 to 5% by weight, 0.1 to 3% by weight, or 0.1 to 2% by weight.
[0029] The silicone skin layer (iii) may have any preferred average dry coat thickness, for example, the binder layer may have any desired thickness, e.g., 50 μm to 1 mm, 50 to 750 μm, or 50 to 500 μm, or 50 to 350 μm, or 50 to 250 μm. It can be cured at any preferred temperature, e.g., 100 to 150°C, or 110 to 135°C, or 110 to 125°C, for a time of 30 seconds to 5 minutes, or 30 seconds to 2.5 minutes.
[0030] Except for the need to introduce the above-mentioned suitable adhesion promoters, commercial examples of suitable liquid silicone rubber compositions that can be cured to function as a skin layer (iii) are Dowsil® LCF 8300 Skin and Dowsil® LCF 8500 Skin, both manufactured by Dow Silicones Corporation, and in view that these are both hydrosilylated curable liquid silicone rubber compositions, they are provided to the user in a two-component form that is mixed together before use to avoid premature curing during storage before use.
[0031] Both Dowsil® LCF 8300 Skin and Dowsil® LCF 8500 Skin have high Shore A durometer values of 65-70, and Dowsil® LCF 8300 Skin has a relatively lower viscosity compared to Dowsil® LCF 8500 Skin. Dowsil® LCF 8500 Skin has a much higher viscosity because it is a fumed silica-reinforced version of the former with high mechanical strength. Therefore, a mixture of Dowsil® LCF 8300 Skin and Dowsil® LCF 8500 Skin may be used as a silicone skin layer (iii) as needed.
[0032] Silicone topcoat layer (iv) A silicone topcoat layer (iv) for the silicone skin composite material described herein can be prepared using any two-component hydrosilylated curable silicone topcoat composition. The two-component hydrosilylated curable silicone topcoat composition must contain an adhesion promoter, for example, one of the adhesion promoters considered suitable for the silicone skin layer (iii) described above.
[0033] Examples of suitable silicone topcoats (iv) may be cured products of compositions comprising the following: Component (iv)(a) One or more organopolysiloxane polymers having at least two unsaturated groups per molecule, wherein the unsaturated groups are selected from alkenyl groups, alkynyl groups, or mixtures thereof, and having a viscosity of 100 to 500,000 mPa·s at 25°C; Component (iv)(b) optionally hydrophobized silica-reinforced filler; Component (iv)(c) Polyorganosiloxane containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule; Component (iv)(d) Hydrosilylation catalyst; Regarding component (iv)(e) silicone skin layer (iii), the adhesion promoter as described above, or zirconium acetylacetonate in an amount of 1 to 5% by weight of the composition, 1,3,5-tris[3-(trimethoxysilyl)propyl]-1,3,5-triazine-2,4,6(1H,3H,5H)-trione and / or one or more epoxysilanes of the following formula, in an amount of 1 to 6% by weight of the composition
[0034] [ka] In the formula, R 5 R is an alkyl group having 1 to 6 carbon atoms. 6 is an alkoxy group having 1 to 6 carbon atoms, z=0, 1, or 2, in combination with epoxysilane, or a mixture thereof; and Component (iv)(f) Eco-solvent; and optionally, Ingredients (iv)(g) Cured silicone powder.
[0035] In such compositions: (iv)(a) Organopolysiloxane polymers Component (iv)(a) of the two-component hydrosilylated curable silicone topcoat composition is one or more organopolysiloxane polymers having at least two unsaturated groups per molecule, wherein the unsaturated groups are selected from alkenyl groups, alkynyl groups, or mixtures thereof, and have a viscosity of 100 to 500,000 mPa·s at 25°C.
[0036] Organopolysiloxane polymer (iv)(a) has multiple groups of formula (I), R a SiO (4-a) / 2 (I) In the formula, each R is independently selected from aliphatic hydrocarbyl groups, aromatic hydrocarbyl groups, or organyl groups (i.e., any organic substituent having one free valence at a carbon atom, regardless of the type of functional group). The group may be in a pendant position (on a D or T siloxy group) or terminal (on a M siloxy group). Saturated aliphatic hydrocarbyls are exemplified, but are not limited to, monovalent saturated hydrocarbon groups, i.e., alkyl groups typically containing 1 to 20 carbon atoms, such as methyl, ethyl, propyl, pentyl, octyl, undecyl, and octadecyl, as well as cycloalkyl groups such as cyclohexyl. Unsaturated aliphatic hydrocarbyls are exemplified by alkenyl groups having 2 to 10 carbon atoms, such as vinyl, allyl, butenyl, pentenyl, isopropenyl, 5-hexenyl, cyclohexenyl, and hexenyl, as well as alkynyl groups. Examples of aromatic hydrocarbon groups include, but are not limited to, phenyl, tolyl, xylyl, benzyl, styryl, and 2-phenylethyl. Examples of organyl groups include, but are not limited to, halogenated alkyl groups such as chloromethyl and 3-chloropropyl, nitrogen-containing groups such as amino groups, amide groups, imino groups, and imide groups, and oxygen-containing groups such as polyoxyalkylene groups, carbonyl groups, alkoxy groups, and hydroxyl groups. Further organyl groups may include sulfur-containing groups, phosphorus-containing groups, and / or boron-containing groups. The subscript "a" may be 0, 1, 2, or 3, but is typically mainly 2 or 3.
[0037] Siloxy groups can be denoted by abbreviated nomenclature, i.e., "M", "D", "T", and "Q", when R is an organic group, typically a methyl group. The M unit is a siloxy group in which a=3, i.e., R3SiO 1 / 2 This corresponds to the D unit, which is a siloxy group where a=2 in the formula, i.e., R2SiO 2 / 2 This corresponds to the T unit, which is the siloxy group where a=1 in the formula, i.e., R1SiO 3 / 2 This corresponds to the Q unit, which is a siloxy group where a=0 in the formula, i.e., SiO 4 / 2 It corresponds to this.
[0038] The molecular structure of organopolysiloxane polymers (iv)(a) is typically linear, but several branches may exist due to the presence of intramolecular T groups (as described above).
[0039] As described above, in order to achieve a useful level of physical properties in a silicone topcoat layer prepared by curing a two-component hydrosilylated curable silicone topcoat composition, the viscosity of the organopolysiloxane polymer (iv)(a) must be at least 100 mPa·s at 25°C. The upper limit of the viscosity of the organopolysiloxane polymer (iv)(a) is limited to a maximum viscosity of 500,000 mPa·s at 25°C.
[0040] The amount (by weight) of unsaturated groups present is determined using quantitative infrared analysis according to ASTM E168. Component (iv)(a) has a viscosity of 100 mPa·s to 500,000 mPa·s at 25°C, or 200 mPa·s to 150,000 mPa·s at 25°C, or 200 mPa·s to 125,000 mPa·s at 25°C, or 200 mPa·s to 100,000 mPa·s at 25°C, or 200 mPa·s to 80,000 mPa·s as measured at 25°C. Viscosity can be measured using a Brookfield® rotational viscometer equipped with spindle LV-4 (designed for viscosities in the range of 1,000 to 2,000,000 mPa·s) or, for viscosities less than 1,000 mPa·s, with a Brookfield® rotational viscometer equipped with spindle LV-1 (designed for viscosities in the range of 15 to 20,000 mPa·s) at a suitable rotational speed. The organopolysiloxane polymer (iv)(a) may be selected from, for example, polydimethylsiloxanes, alkylmethylpolysiloxanes, alkylarylpolysiloxanes, or copolymers thereof containing alkenyl and / or alkynyl groups, and may have any suitable end groups, for example, trialkyl ends, alkenyldialkyl ends, or may be terminated with any other suitable combination of end groups, provided that each organopolysiloxane polymer (iv)(a) contains at least two unsaturated groups per molecule.
[0041] Therefore, organopolysiloxane polymer (iv)(a) may, for example, be dimethylvinyl-terminated polydimethylsiloxane, dimethylvinyl-terminated dimethylmethylphenylsiloxane, trialkyl-terminated dimethylmethylvinylpolysiloxane, or dialkylvinyl-terminated dimethylmethylvinylpolysiloxane copolymer. However, considering the presence of high levels of alkenyl and / or alkynyl groups such as vinyl groups, trialkyl-terminated dimethylmethylvinylpolysiloxane or dialkylvinyl-terminated dimethylmethylvinylpolysiloxane copolymer may be preferred.
[0042] For example, an organopolysiloxane polymer (iv)(a) containing unsaturated groups selected from alkenyl and / or alkynyl groups at two terminals can be represented by general formula (II). R'R''R'''SiO-(R''R'''SiO) m -SiR'''R''R' (II)
[0043] In formula (II), each R' may typically be an alkenyl or alkynyl group containing 2 to 10 carbon atoms. Examples of alkenyl groups include, but are not limited to, vinyl, propenyl, butenyl, pentenyl, hexenyl, alkenylated cyclohexyl groups, heptenyl, octenyl, nonenyl, decenyl, or similar linear and branched alkenyl groups, as well as alkenylated aromatic ring structures. Examples of alkynyl groups include, but are not limited to, ethynyl, propynyl, butynyl, pentynyl, hexynyl, alkynylated cyclohexyl groups, heptenyl, octinyl, noninyl, desinyl, or similar linear and branched alkenyl groups, as well as alkenylated aromatic ring structures.
[0044] R'' does not contain ethylenically unsaturated groups, and each R'' may be the same or different, and is individually selected from monovalent saturated hydrocarbon groups typically containing 1 to 10 carbon atoms and monovalent aromatic hydrocarbon groups typically containing 6 to 12 carbon atoms. R'' may be unsubstituted or may be substituted with one or more groups that do not interfere with the curing of the two-component hydrosilylated curable silicone topcoat composition described herein, such as halogen atoms. R'''' is R' or R'', and m is an integer.
[0045] Component (iv)(a) of a two-component hydrosilylated curable silicone topcoat composition may contain more than one organopolysiloxane polymer (iv)(a) having a viscosity of 100 to 500,000 mPa·s at 25°C. When a mixture of organopolysiloxane polymers is used in component (iv)(a), at least one, or one, may contain an unsaturated group selected from alkenyl groups, alkynyl groups, or mixtures thereof in amounts of at least 5% by weight of the polymer per molecule, or 5 to 15% by weight of the polymer per molecule, or 6 to 15% by weight of the polymer per molecule, or 7 to 15% by weight of the polymer per molecule, which can be determined using quantitative infrared analysis according to ASTM E168.
[0046] Component (iv)(a) is typically present in amounts ranging from 3% or 10% by weight to 50% or 45% by weight of the two-component hydrosilylated curable silicone topcoat composition. For example, the organopolysiloxane polymer (iv)(a) may be present in amounts ranging from 10% to 50% by weight, or 10% to 45% by weight, of the composition.
[0047] (iv)(b) Reinforcing filler Component (iv)(b) of a two-component hydrosilylated curable silicone topcoat composition is a reinforcing filler, such as reinforcing silica. In many cases, silica and other reinforcing fillers (iv)(b) are treated with one or more known hydrophobic filler treatments to prevent a phenomenon called "creping" or "crepe hardening" during processing of the two-component hydrosilylated curable silicone topcoat composition.
[0048] Silica in a pulverized form is preferred as the reinforcing filler (iv)(b). Precipitated silica and / or fumed silica, or fumed silica, is particularly preferred due to its relatively large surface area, typically at least 50 m² / g (BET method according to ISO 9277:2010). Generally, 50 to 450 m² 2 / g (BET method according to ISO9277:2010), alternatively 50-300m 2 Use a filler with a surface area of / g (BET method according to ISO9277:2010). All types of silica are commercially available.
[0049] The amount of reinforcing filler (iv)(b) in the two-component hydrosilylated curable silicone topcoat compositions of this specification is 5 to 40% by weight, or 5 to 30 wt%. In some cases, the amount of reinforcing filler may be 7.5 to 30% by weight based on the weight of the two-component hydrosilylated curable silicone topcoat composition, or 10 to 30% by weight of the composition, or 15 to 30% by weight based on the weight of the composition.
[0050] If the reinforcing filler (iv)(b) is originally hydrophilic (e.g., untreated silica filler), it is typically treated with a treatment agent to make it hydrophobic. The surface treatment makes the filler more wettable to the organopolysiloxane polymer (iv)(a), so that these surface-modified reinforcing fillers (iv)(b) can be homogeneously incorporated into the organopolysiloxane polymer (iv)(a) without agglomerating. As a result, the mechanical properties at room temperature of the two-component hydrosilylated curable silicone topcoat composition and the cured material obtained therefrom are improved.
[0051] Surface treatment may be performed before introduction into the composition, or in situ (i.e., in the presence of at least some of the other components of the composition herein, by blending these components together at room temperature or above until the fillers are completely treated). Typically, the untreated reinforcing filler (iv)(b) is treated in situ with a treatment agent in the presence of the organopolysiloxane polymer (iv)(a), mixed, to obtain a silicone rubber base material to which other components may be added.
[0052] Typically, the reinforcing filler (ii) may be surface-treated with any low molecular weight organosilicon compound disclosed in the applicable art to prevent creping of the two-component hydrosilylated curable silicone topcoat composition during processing. Examples include organosilanes such as organosilanes, organopolysiloxanes, or hexaalkyldisilazanes, short-chain siloxane diols, or fatty acids, or fatty acid esters such as stearate esters, to make the filler hydrophobic, thereby making it easier to handle and to obtain a homogeneous mixture with the other components. Specific examples include, but are not limited to, silanol-terminated trifluoropropylmethylsiloxane, dimethylsilanol-terminated vinylmethyl (ViMe)siloxane, tetramethyldi(trifluoropropyl)disilazane, tetramethyldivinyldisilazane, silanol-terminated MePhsiloxane, liquid hydroxyl-terminated polydiorganosiloxane, hexaorganodisiloxane, and hexaorganodisilazane, each containing an average of 2 to 20 repeating diorganosiloxane groups per molecule. Small amounts of water may be added together with the silica treatment agent as a processing aid.
[0053] The filler may be introduced into a two-component hydrosilylated curable silicone topcoat composition in the form of a masterbatch or base containing the filler and an organopolysiloxane polymer. The organopolysiloxane polymer used in the masterbatch or base may have a structure similar to that of component (iv)(a), or it may be an organopolysiloxane polymer having the same viscosity range as component (iv)(a), but with an alkenyl and / or alkynyl content of <5% by weight of the polymer. If necessary, the fumed silica may be treated in situ to make it hydrophobic by introducing a suitable hydrophobic agent into the mixture during the preparation of the masterbatch.
[0054] The two-component hydrosilylated, curable silicone topcoat compositions described herein are cured using a hydrosilylation curing package comprising an organohydrogenpolysiloxane (iv)(c) having two or more or three or more silicon-bonded hydrogen atoms per molecule, and a hydrosilylation catalyst (iv)(d).
[0055] (iv)(c) Organohydrogenpolysiloxane Component (iv)(c) is a crosslinking agent in the form of a polyorganosiloxane containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule.
[0056] Typically, component (iv)(c) contains three or more -Si-H groups, which can cure the composition by causing hydrogen atoms to react with unsaturated alkenyl or alkynyl groups in component (iv)(a) to form a network structure with them. Alternatively, especially if component (iv)(a) has more than two (>) alkenyl or alkynyl groups per molecule, some or all of component (iv)(c) may have two -Si-H groups per molecule.
[0057] The molecular structure of polyorganosiloxane (iv)(c), which contains at least two or three Si-H groups per molecule, is not particularly limited and may be linear, partially branched linear, cyclic, or silicone resin-based.
[0058] The silicon-bonded organic groups used in component (iv)(c) can be exemplified by alkyl groups such as methyl, ethyl, propyl, butenyl, pentenyl, and hexyl; aryl groups such as phenyl, tolyl, and xylyl; and halogenated alkyl groups such as 3-chloropropyl and 3,3,3-trifluoropropyl, with methyl and phenyl groups being preferred.
[0059] Examples of polyorganosiloxanes (iv)(c) containing at least two or three silicon-bonded hydrogen groups per molecule include: (a) Branched and / or chain-extended dimethylhydrogen siloxy-terminated polydimethylsiloxanes, (b) Dimethylhydrogen siloxy-terminated dimethylsiloxane-methylhydrogen siloxane copolymer, (c)(CH3)2HSiO 1 / 2 Unit: (CH3)3SiO 1 / 2 Units, and SiO 4 / 2 Copolymers and / or silicone resins consisting of units (d)(CH3)2HSiO 1 / 2 Units and SiO 4 / 2 Copolymers and / or silicone resins consisting of units (e)(CH3)2HSiO 1 / 2 Unit, SiO 4 / 2 Units and (C6H5)3SiO 1 / 2 Copolymers and / or silicone resins consisting of units, and substitutes in which methyl is replaced by a phenyl group or other alkyl group, (f)(CH3)2HSiO 1 / 2 Si-H groups such as (CH3)2SiO 2 / 2 base, and SiO 4 / 2 Examples include, but are not limited to, silicone resins containing or composed of these groups.
[0060] The above silicone resins may also contain T groups and / or D groups, or T groups. Other potential crosslinking agents (iv)(c) include: (g) 1,1,3,3-tetramethyldisiloxane, (h) 1,3,5,7-tetramethylcyclotetrasiloxane, (i) Tris(hydrogen dimethylsiloxy)methylsilane, (j) Tris(hydrogen dimethylsiloxy)phenylsilane, methylhydrogen cyclopolysiloxane, (k) Trimethylsiloxy-terminated blocked methylhydrogen polysiloxane, (l) Trimethylsiloxy-terminated blocked dimethylsiloxane / methylhydrogensiloxane copolymer, (m) Dimethyl hydrogen siloxy-terminated blocked dimethylpolysiloxane, (n) Dimethylhydrogen siloxy-terminated dimethylsiloxane / methylhydrogen siloxane copolymer, (o) Trimethylsiloxy-terminated blocked methylhydrogen siloxane / diphenylsiloxane copolymer, (p) Trimethylsiloxy-terminated blocked methylhydrogen siloxane / diphenylsiloxane / -dimethylsiloxane copolymer, (q) Trimethylsiloxy-terminated blocked methylhydrogen siloxane / methylphenylsiloxane / -dimethylsiloxane copolymer, (r) Dimethylhydrogen siloxy-terminated block / dimethylsiloxane / -diphenylsiloxane copolymer, and / or (s) Dimethylhydrogen siloxy-terminated blocked methylhydrogen siloxane / dimethylsiloxane / -methylphenylsiloxane copolymer may be an example. (t) Other examples include tetrakis(dimethylsiloxy)silane, terminalized hydrides, polyphenylmethylsiloxane terminalized hydrides, polyphenyl-(dimethylhydrosiloxy)siloxane, or phenyltris(dimethylsiloxy)silane. Alternatively, component (iv)(c), which is the crosslinking agent, may be a filler, for example, silica treated with one of the above.
[0061] In one alternative form, the crosslinking agent (iv)(c) may be a silicone resin containing a mixture of Q groups, T groups, D groups, and / or M groups having a viscosity of 10 to 5000 mPa·s at 25°C, or 10 to 1000 mPa·s at 25°C, or 10 to 500 mPa·s at 25°C, such as in the alternative forms (c), (d), and / or (e) described above.
[0062] Polyorganosiloxane (iv)(c), containing at least two or three -Si-H groups per molecule, is typically added in such an amount that the molar ratio of silicon-bonded hydrogen atoms in component (iv)(c) to all unsaturated groups in the composition is 0.5:1 to 20:1, or 0.5:1 to 5:1, or 0.6:1 to 3:1. If this ratio is less than 0.5:1, a sufficiently cured composition cannot be obtained. If this ratio is greater than 20:1, the hardness of the cured composition tends to increase when heated.
[0063] The silicon-bonded hydrogen (Si-H) content of component (iv)(c) is determined using quantitative infrared analysis in accordance with ASTM E168. In the present invention, the ratio of silicon-bonded hydrogen to alkenyl (vinyl) and / or alkynyl is important when it depends on the hydrosilylation curing process. Generally, this is determined by calculating the total weight % of alkenyl groups, e.g., vinyl [V], in the composition and the total weight % of silicon-bonded hydrogen [H] in the two-component hydrosilylation curable silicone topcoat composition, where the molar ratio of silicon-bonded hydrogen to vinyl is 27 [H] / [V], with a molecular weight of hydrogen being 1 and a molecular weight of vinyl being 27.
[0064] The molecular weight of this component is not particularly limited, but the viscosity is typically 15 to 50,000 mPa·s at 25°C, measured using a Brookfield DV 3T Rheometer, or a Brookfield® rotational viscometer with spindle LV-4 (designed for viscosities in the range of 1,000 to 2,000,000 mPa·s) or a Brookfield® rotational viscometer with spindle LV-1 (designed for viscosities in the range of 15 to 20,000 mPa·s) at a rotational speed of 10 rpm for viscosities less than 1,000 mPa·s.
[0065] Component (iv)(c) of the two-component hydrosilylated curable silicone topcoat composition is a polyorganosiloxane containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule, which functions as a crosslinking agent for polymer (iv)(a) through an addition reaction between the silicon-bonded hydrogen atoms in component (iv)(c) and the alkenyl and / or alkynyl groups in component (iv)(a) under the catalytic activity of component (iv)(d), described later. Component (iv)(c) contains at least parts per million (ppm) of silicon-bonded hydrogen (Si-H), or at least 7,000 ppm, or 7,000 to 12,000 ppm, or 8,000 to 11,000 ppm, of silicon-bonded hydrogen, so that the silicon-bonded hydrogen atoms of this component react sufficiently with the alkenyl and / or alkynyl groups of component (iv)(a), typically alkenyl groups, especially vinyl groups, to form a network structure together, thereby curing the composition. The amount of silicon-bonded hydrogen present is also determined using quantitative infrared analysis according to ASTM E168.
[0066] Component (iv)(c) is typically present in the entire two-component hydrosilylated curable silicone topcoat composition in amounts of 5-30% by weight, 5-20% by weight, or 10-20% by weight of the composition, the amount present is typically determined by the molar ratio of silicon-bonded hydrogen atoms in component (iv)(c) to the total number of all unsaturated groups, such as alkenyl and alkynyl groups, often vinyl groups, as described above.
[0067] (iv)(d) Hydrosilylation catalyst The two-component hydrosilylated and curable silicone topcoat composition is cured via a hydrosilylation (addition) reaction catalyzed by a hydrosilylation (addition curing) catalyst (iv)(d), which is a metal selected from platinum group metals, i.e., platinum, ruthenium, osmium, rhodium, iridium, and palladium, or a compound of such metals. Due to the high activity levels of these catalysts in the hydrosilylation reaction, platinum and rhodium compounds are preferred.
[0068] The hydrosilylation catalyst (iv)(d) may be a platinum group metal; a support, such as activated carbon, a metal oxide such as aluminum oxide or silicon dioxide, silica gel or powdered charcoal, on which the platinum group metal is deposited; or a compound or complex of a platinum group metal. Preferably, the platinum group metal is platinum.
[0069] Examples of preferred hydrosilylation catalysts (iv)(d) include platinum-based catalysts, e.g., platinum black, platinum oxide (Adams catalyst), platinum on various solid supports, chloroplatinic acid, e.g., hexachloroplatinic acid (Pt oxidation state IV) (Speier catalyst), chloroplatinic acid in solution of alcohol, e.g., isooctanolic acid or amyl alcohol (Lamoreaux catalyst), and complexes of chloroplatinic acid with ethylenically unsaturated compounds, e.g., olefins, and organosiloxanes containing ethylenically unsaturated silicon-bonded hydrocarbon groups, e.g., tetra-vinyl-tetramethylcyclotetrasiloxane-platinum complexes (Ashby catalyst). Examples of usable soluble platinum compounds include platinum-olefin complexes of the formula (PtCl2.(olefin)2 and H(PtCl3.olefin)), in which case the use of alkenes having 2 to 8 carbon atoms, such as ethylene, propylene, butene isomers and octene isomers, or cycloalkanes having 5 to 7 carbon atoms, such as cyclopentene, cyclohexene, and cycloheptene, is preferred. Other soluble platinum catalysts include, for example, platinum-cyclopropane complexes of the formula (PtCl2C3H6)2. The reaction products are those of hexachloroplatinic acid with alcohols, ethers, and aldehydes, or mixtures thereof, or those of hexachloroplatinic acid and / or its conversion products with vinyl-containing siloxanes such as methylvinylcyclotetrasiloxane in an ethanolic solution in the presence of sodium bicarbonate. Platinum complexes with vinylsiloxanes, such as platinum catalysts having phosphorus, sulfur, and amine ligands, e.g., (Ph3P)2PtCl2, and sym-divinyltetramethyldisiloxane, can also be used.
[0070] Therefore, specific examples of suitable platinum-based catalysts for (iv)(d) include: (i) A complex of chloroplatinic acid and an organosiloxane containing an ethylenically unsaturated hydrocarbon group, as described in U.S. Patent No. 3,419,593, (ii) Chloroplatanic acid in either hexahydrate or anhydrous form, (iii) A platinum-containing catalyst obtained by a method comprising reacting chloroplatinic acid with an aliphatic unsaturated organosilicon compound such as divinyltetramethyldisiloxane, (iv) Alkene-platinum-silyl complexes described in U.S. Patent No. 6,605,734, such as (COD)Pt(SiMeCl2)2 (wherein "COD" is 1,5-cyclooctadiene), and / or (v) Karstedt's catalyst, which is a platinum divinyltetramethyldisiloxane complex, typically containing about 1% by weight of platinum in a vinylsiloxane polymer. While solvents such as organic solvents like toluene have historically been used as alternatives, the use of vinylsiloxane polymers is a far more preferred choice. These are described in U.S. Patents 3,715,334 and 3,814,730. In one preferred embodiment, component (iv)(d) may be selected from platinum coordination compounds. In one embodiment, hexachloroplatinic acid and its conversion products with vinyl-containing siloxanes, Karstedt's catalyst, and Speier catalyst are preferred.
[0071] The catalytic amount of the hydrosilylation catalyst is generally 0.01 ppm to 10,000 ppm, or 0.01 to 5,000 ppm, or 0.01 to 3,000 ppm, or 0.01 to 1,000 ppm, based on the weight of the two-component hydrosilylation-curable silicone topcoat composition, in parts by weight (ppm) of platinum group metals. In certain embodiments, the catalytic amount of the catalyst may range from 0.01 to 1,000 ppm, or 0.01 to 750 ppm, or 0.01 to 500 ppm, or 0.01 to 100 ppm, based on the weight of the two-component hydrosilylation-curable silicone topcoat composition. The range may relate only to the metal content in the catalyst or to the catalyst as a whole (including its ligands), as specified, but typically these ranges relate only to the metal content in the catalyst. The catalyst may be added as a single type or as a mixture of two or more different types. Typically, depending on the form / concentration in which the catalyst is provided in the polymer or solvent, for example, the amount of component (iv)(d) present is in the range of 0.001 to 3.0% by weight of the composition, or 0.001 to 2.5% by weight of the composition, or 0.01 to 2.0% by weight of the two-component hydrosilylated curable silicone topcoat composition.
[0072] Component (iv)(e) Adhesion promoter Component (iv)(e) is an adhesion promoter used to assist in the adhesion of the silicone topcoat (iv) to the silicone / polyurethane hybrid prepolymer coating layer (v). Component (iv)(e) may be any of the adhesion promoters described above. However, one adhesion promoter particularly preferred for use as component (iv)(e) is a combination of one or more alkoxysilanes and / or 1,3,5-tris[3-(trimethoxysilyl)propyl]-1,3,5-triazine-2,4,6(1H,3H,5H)-trione having an epoxy group in the molecule as defined above, in an amount of 1 to 6% by weight of the composition, and zirconium acetylacetonate in an amount of 1 to 5% by weight of the composition.
[0073] In one embodiment, the alkoxysilane having an epoxy group in the molecule is selected from 3-glycidoxypropyltrimethoxysilane, 3-glycidoxypropyltriethoxysilane, 3-glycidoxypropylmethyldiethoxysilane, and / or 3-glycidoxypropylmethyldimethoxysilane.
[0074] Component (iv)(f) Eco-solvent Component (iv)(f) of the two-component hydrosilylated curable silicone topcoat composition is an eco-solvent. Any suitable eco-solvent can be used, examples of which include isopentadecane, isohexadecane, isoheptadecane, isooctadecane, isononadecane, and mixtures thereof, or trimethyl-terminated polydimethylsiloxane having a viscosity of 5 mPa·s or more (≧) to 100 mPa·s or less (≦) at 25°C. It has been noted that using trimethyl-terminated polydimethylsiloxane having a viscosity of <5 mPa·s at 25°C appears to actually produce leather materials in which stretch marks become white. In one embodiment, the eco-solvent contains or consists of isohexadecane. The eco-solvent is present in the composition as a means of diluting the composition and is present in the composition in an amount of 30 to 70% by weight of the two-component hydrosilylated curable silicone topcoat composition. It may be present in either or both of part A and part B, as desired or as needed.
[0075] Component (iv)(g) Any cured silicone elastomer powder If necessary, any suitable curable silicone elastomer powder may be used in the two-component hydrosilylated curable silicone topcoat composition. In one alternative embodiment, the curable silicone elastomer powder (iv)(g) has an average particle size of 0.01 to 100 μm, or 0.01 to 50 μm, or 0.01 to 25 μm, as measured using, for example, the Dow Silicone Corporation Corporate Test Method CTM 1138, which is publicly available upon request. They may contain chemical functional groups, such as epoxy groups or (meth)acryloxy groups, or they may be coated with, for example, a silica-treated coating.
[0076] Curable silicone elastomer powders are prepared from suitable curable silicone compositions. Examples of curable silicone compositions include silicone compositions that cure by addition (hydrosilylation), silicone compositions that cure by condensation, silicone compositions that cure with organic peroxides, and silicone compositions that cure with ultraviolet light. Silicone compositions that cure by addition and condensation are preferred due to their ease of handling.
[0077] Silicone elastomer powders are generally prepared by first dispersing a curable silicone composition in water or an aqueous surfactant solution, and then applying a mixing device such as a homogenizer, colloid mill, or ultrasonic vibrator to the dispersion to create a homogeneous aqueous emulsion of the curable silicone composition. To obtain a very stable emulsion with a small average particle diameter, the aqueous curable silicone emulsion is preferably prepared using a surfactant. The curable silicone present in the aqueous emulsion is then cured to produce an aqueous dispersion of cured silicone powder. This curing can be influenced by leaving the aqueous emulsion at room temperature or by heating the aqueous emulsion. When heating an aqueous curable silicone emulsion, the preferred heating temperature should not exceed 100°C, and a particularly preferred temperature is in the range of 40°C to 95°C. Techniques for heating water-curable silicone emulsions include directly heating the emulsion or adding the emulsion to hot water. Commercial examples that can be used as component (iv)(g) include, for example, Dowsil® 23N Additive, Dowsil® 603T additive, and Dowsil® 9701 Cosmetic Powder, all manufactured by Dow Silicones Corporation.
[0078] The cured silicone rubber powder is present in the two-component hydrosilylated curable silicone topcoat composition, that is, when parts A and B are mixed together, in an amount of 2.5 to 20% by weight of the composition, or 2.5 to 15% by weight of the composition, or 2.5 to 10% by weight of the composition.
[0079] Optional additives A two-component hydrosilylated curable silicone topcoat composition may contain one or more additives. Examples of these optional additives include curing inhibitors, inorganic non-reinforcing fillers, conductive additives, pot life extenders, lubricants, flame retardants, pigments, colorants, chain extenders, heat stabilizers, compression set improving additives, anti-squeak agents, antioxidants, antistatic agents, antifouling agents, and light stabilizers, antifreeze agents, and / or biocides, as well as mixtures thereof.
[0080] Inhibitors Since a hydrosilylation curing system is used, in order to obtain a longer action time or pot life of the two-component hydrosilylation curable silicone topcoat composition, a suitable inhibitor may be optionally incorporated into the composition to delay or suppress the activity of the catalyst.
[0081] Inhibitors of platinum metal catalysts, and more generally, of platinum group metal catalysts, are well known in the art. Examples of hydrosilylation or addition reaction inhibitors include hydrazine, triazole, phosphine, mercaptan, organic nitrogen compounds, acetylene alcohol, silylated acetylene alcohols such as methyl(tris(1,1-dimethyl-2-propynyloxy))silane, maleates, fumarates, ethylenically or aromatically unsaturated amides, ethylenically unsaturated isocyanates, olefin siloxanes, unsaturated hydrocarbon monoesters and diesters, conjugated en-yines, hydroperoxides, nitriles, and diaziridines. Alkenyl-substituted siloxanes, such as those described in U.S. Patent No. 3,989,667, may also be used, of which cyclic methylvinylsiloxane is preferred.
[0082] Another category of known platinum catalyst inhibitors includes acetylene compounds, disclosed in U.S. Patent No. 3,445,420. Acetylene alcohols such as 2-methyl-3-butyne-2-ol constitute a preferred type of inhibitor that suppresses the activity of platinum-containing catalysts at 25°C. Hydrosilylated curable silicone elastomer compositions containing these inhibitors typically require heating to temperatures above 70°C to cure at a practical rate.
[0083] Examples of acetylene alcohols and their derivatives include 1-ethynyl-1-cyclohexanol (ETCH), 2-methyl-3-butyne-2-ol, 3-butyne-1-ol, 3-butyne-2-ol, propargyl alcohol, 3,5-dimethyl-1-hexyne-3-ol, 1-ethynylcyclopentanol, 1-phenyl-2-propinol, 3-methyl-1-penten-4-in-3-ol, and mixtures thereof.
[0084] In some cases, when present, a low inhibitor concentration of about 1 mole of inhibitor per mole of metal in catalyst (iv)(d) provides satisfactory storage stability and curing rate. In other cases, inhibitor concentrations of up to 500 moles of inhibitor per mole of metal in catalyst (iv)(d) are required. The optimal concentration of a given inhibitor in a given composition is easily determined by routine experimentation. When present in a composition, depending on the concentration and form in which the selected inhibitor is provided / commercially available, the inhibitor is typically present in an amount of 0.0125 to 10% by weight of a two-component hydrosilylated curable silicone topcoat composition. Mixtures of the above may also be used.
[0085] If optional additives are to be used for two or more reasons, for example, as a non-reinforcing silica filler and a flame retardant, they may function in both roles when present. When present or in the presence of the aforementioned additional components, they are present cumulatively in an amount of 0.1 to 30% by weight, or 0.1 to 20% by weight, of the two-component hydrosilylated curable silicone topcoat composition.
[0086] To prevent premature curing during storage, the two-component hydrosilylated curable silicone topcoat composition will be stored in two parts, Part A and Part B, before use. Typically, Part A contains part of the organopolysiloxane polymer (iv)(a) and reinforcing filler (iv)(b), as well as the hydrosilylation catalyst (iv)(d), while Part B contains the remaining organopolysiloxane polymer (iv)(a) and reinforcing filler (iv)(b), along with the organohydrogenpolysiloxane crosslinking agent (iv)(c), and, if present, an inhibitor, which may vary depending on the choice of inhibitor used. The two-component composition may be designed to be mixed together in any preferred ratio depending on the amounts of organopolysiloxane polymer (iv)(a) and reinforcing filler (iv)(b) of portion B, and therefore may be mixed in a weight ratio of portion A:part B of 15:1 to 1:2, but preferably in a weight ratio of 2:1 to 1:2, or 1.5:1 to 1:1.5, or 1:1 of portion A:part B.
[0087] The two-component hydrosilylated curable silicone topcoat composition is cured at a temperature of 120°C to 175°C or 130°C to 160°C for 2 to 8 minutes after mixing. The average dry coat thickness of the two-component hydrosilylated curable silicone topcoat is 5 to 20 μm.
[0088] Silicone / polyurethane hybrid prepolymer coating layer (v) The silicone leather composite materials described herein include a silicone / polyurethane hybrid prepolymer coating layer (v) having an elastic modulus of 10 MPa or more, or 20 MPa or more, or 30 MPa or more, as determined according to ASTM D882, in all cases the first straight portion of the load elongation curve is used to calculate the elastic modulus. The silicone / polyurethane hybrid prepolymer coating layer (v) is provided in the silicone leather composite material between the silicone skin layer (iii) and the silicone topcoat (iv). It has been found that the addition of such a layer results in a significant improvement in the abrasion resistance of the silicone leather composite material.
[0089] To avoid misunderstanding, it should be understood that, like polyurethane prepolymers, silicone / polyurethane hybrid prepolymers are those in which all hydroxyl-terminated groups have reacted with isocyanate groups, leaving isocyanate functional groups at the ends instead of hydroxyls.
[0090] The silicone / polyurethane hybrid prepolymer coating layer (v) is provided by curing a suitable silicone / polyurethane hybrid prepolymer coating composition. The composition is prepared in a suitable solvent, which evaporates during the heat curing process. The following consideration of the potential components of a suitable silicone / polyurethane hybrid prepolymer coating composition refers to the weight percentage of the solute component when considering the weight percentage of the composition, and the presence of the solvent is ignored if the solvent does not form part of the resulting silicone / polyurethane hybrid prepolymer coating layer (v) of the silicone leather composite material described herein. The silicone / polyurethane hybrid prepolymer coating composition can be prepared in any desired manner, provided that the resulting silicone / polyurethane hybrid prepolymer coating layer (v) satisfies the specific requirements required herein with respect to the silicone rubber composite material.
[0091] A suitable silicone / polyurethane hybrid prepolymer for silicone / polyurethane hybrid coating compositions can be prepared, for example, using two or three components. Component 1 is a carbinol-terminated polydialkylsiloxane polymer having a hydroxyl value of 40 mg KOH / g or higher, as measured according to ASTM-D4274-11.
[0092] Typically, carbinol-terminated polydialkylsiloxane polymers are carbinol-terminated polydimethylsiloxane polymers. To avoid misunderstanding, the terminal carbinol (C-OH) group is a C-OH group attached to the terminal silicon via a suitable non-hydrolyzable organic bond, such as the following: -Z 5 z’ -D d -OH In the formula, Z 5 is a divalent alkylene group containing 1 to 6 carbon atoms, or 2 to 6 carbon atoms, or 2 to 4 carbon atoms, z' is 0 or 1, and D is the average formula (-OC n’ H 2n’ One or more linear or branched polyethers comprising repeating units having ), where n' is an integer from 2 to 6 and d is an integer from 1 to 6 or from 2 to 4. Suitable commercially available carbinol-terminated polydimethylsiloxanes include, for example, DOWSIL(trademark)BY16-201 from Dow Silicones Corporation, and KF 6000 and KF-6001 from Shin-Etsu Chemical Co. Ltd. Component 2 is a polyisocyanate, for example, aromatic polyisocyanates such as polymethylene polyphenyl polyisocyanate, diphenylmethane diisocyanate, high molecular weight diphenylmethane diisocyanate, carbodiimide-modified diphenylmethane diisocyanate, xylylene diisocyanate, phenylene diisocyanate, tolylene diisocyanate, and naphthalene diisocyanate; or aliphatic or alicyclic polyisocyanates such as hexamethylene diisocyanate, lysine diisocyanate, cyclohexane diisocyanate, isophorone diisocyanate (IPDI), dicyclohexylmethane diisocyanate, and tetramethylxylylene diisocyanate, or a mixture of two or more thereof. Among aliphatic or alicyclic polyisocyanates, IPDI is preferred, for example. Also, optionally, Component 3 is a short-chain organic diol having 2 to 6 carbon atoms per molecule, such as ethylene glycol, 1,3-propanediol, and / or 1,4-butanediol. The hydroxyl content of component 3, if present, can also be measured according to ASTM-D4274-11.
[0093] In one embodiment, the ratio of NCO groups to OH groups in components 1, 2, and component 3 (if present) is at least 0.95:1, or 0.95 to 1.05, and the NCO content is Measured according to ASTM D5155, the NCO / OH ratio is calculated from the NCO content of component 2 and the cumulative hydroxyl values of components 1 and 3 (if present).
[0094] The solute components (i.e., components excluding the solvent) of the silicone / polyurethane hybrid prepolymer coating composition cured to provide a silicone / polyurethane hybrid prepolymer coating layer (v) may include, for example, the following: (v)(a) Prepolymer reaction products obtained from the reaction of components 1, 2, and optionally component 3, preferably components 1, 2, and 3; (v)(b) Any cured silicone elastomer powder, which may be selected from the same particles as those described with respect to component (iv)(g) above; (v)(c) Any silicon-free mechanical particles and / or fine particles selected from at least one of polymethyl methacrylate (PMMA), ethylene-vinyl acetate copolymer (EVA), ethylene-acrylate copolymer (EAA), ethylene-butyl acrylate copolymer (EBA), ethylene-methyl acrylate copolymer (EMA), ethylene-ethyl acrylate copolymer (EEA), or polyurethane polymer; or, (v)(c) is selected from PMMA and / or polyurethane particles and / or fine particles. To avoid misunderstanding, silicon-free mechanical particles or fine particles are silicon-free and tolerate only trace amounts of impurities; i.e., silicon-free mechanical particles are substantially free of silicon atoms and silicon-containing compounds. In one alternative form, silicon-free mechanical particles or fine particles have a number-average particle size of 0.5 to 500 μm, determined using a field emission scanning electron microscope such as the FEI Nova NanoSEM® 630 scanning electron microscope manufactured by Thermo Fisher Scientific. For example, this can be achieved by taking a field emission scanning electron microscope image of the particles, then randomly selecting 10 particles from the image and measuring the diameter of each particle in the image. The average diameter is then calculated for the selected particles. Silicon-free particles or microparticles are preferably thermally stable up to a temperature of at least 180°C. They are required to be thermally stable throughout the entire curing process, which is typically maintained at a temperature of 80°C to 180°C. "Thermally stable" means that the silicon-free particles or microparticles do not decompose thermally at temperatures below 180°C. This can be determined by placing a sample of silicon-free particles or microparticles in a suitable container and then placing the container in an oven preheated to 180°C and atmospheric pressure for 30 minutes. After placing the sample in the oven for 30 minutes, visually evaluate the sample to determine whether the particles or fine particles appear to be in their original form, in which case they are considered thermally stable up to a temperature of 180°C (pass), or whether they have been visually decomposed in any way that is visually apparent, for example, by aggregation, liquefaction, carbonization, and / or decomposition. (v)(d) is a polyorganosiloxane containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule, which can be selected from any one of the crosslinking agents defined in (iv)(c) above, and is typically present in an amount of 1% to 10% by weight of the composition used to prepare the aforementioned silicone / polyurethane hybrid prepolymer coating layer (v), but is preferably a resinous crosslinking agent; (v)(e) Any curing catalyst for curing a silicone / polyurethane hybrid prepolymer coating composition; (v)(f) Polyether polyols having at least two hydroxyl groups per molecule and having a hydroxyl value greater than 100 mgKOH / g (>) according to ASTM-D4274-11; and (v)(g) A platinum group metal catalyst, which may be the same as any of the hydrosilylation catalysts (iv)(d) above, wherein the platinum group metal is platinum, ruthenium, osmium, rhodium, iridium, and palladium, or compounds of such metals. Typically, the platinum group metal catalyst (v)(g) is a platinum or ruthenium-based catalyst, or a platinum-based catalyst as described in relation to (iv)(d), with Karstedt's catalyst being preferred.
[0095] Any suitable solvent can be used to assist in the preparation of silicone / polyurethane hybrid prepolymer coating compositions. As mentioned above, such solvents are selected to evaporate during the curing process.
[0096] In a preferred embodiment, the total amount of particles in the silicone / polyurethane hybrid prepolymer coating composition used to prepare the silicone / polyurethane hybrid prepolymer coating layer (v) is their weight %, i.e., (v)(b) + (v)(c), which is 10% to 40% by weight of the composition.
[0097] In a silicone / polyurethane hybrid prepolymer coating composition, the polyorganosiloxane (v)(d) containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule may be, for example, an MQ resin having Si-H dimethyl-terminated groups, such as a Si-H dimethyl-terminated polysiloxane having a viscosity of 25 mPa·s at 25°C and a silicon-bonded hydrogen content of about 9,000 ppm.
[0098] Any polyurethane curing catalyst (v)(e) in a silicone / polyurethane hybrid prepolymer coating composition may include any suitable known polyurethane catalyst such as tin, bismuth, zinc, or mercury catalysts, i.e., Sn, Bi, Zn, or Hg catalysts, preferably a Bi / Zn catalyst. Examples include carboxylates of tin, bismuth, zinc, and / or mercury. Suitable tin catalysts include, for example, tin triflates, organotin metal catalysts such as triethyl tin tartrate, tin octoate, tin oleate, tin naphthenate, butyl tin tri-2-ethylhexoate, tin butyrate, carbomethoxyphenyl tin trisberate, isobutyl tin triseroate, and diorganosin salts, particularly diorganosin dicarboxylate compounds such as dibutyltin dilaurate (DBTDL), dioctyltin dilaurate (DOTDL), dimethyltin dibutyrate, dibutyltin dimethoxide, dibutyltin diacetate (DBTDA), dibutyltin bis(2,4-pentanedione), dibutyltin dibenzoate, steric tin octoate, and dimethyltin dineodecanoate (dimethyltin Possible examples include dineodecanoate (DMTDN), dioctyltin dineodecanoate (DOTDN), and dibutyltin dioctoate. A commercially available example of tin catalyst (v)(e) is the dibutyltin dilaurate-based catalyst sold by Evonik under the trade name Dabco® T-12.
[0099] Alternatively, any polyurethane curing catalyst (v)(e) in the silicone / polyurethane hybrid prepolymer coating composition may, if present, be a suitable Bi / Zn catalyst, i.e., an organobismuth / zinc complex catalyst designed to catalyze the reaction between -NCOs groups and -OH groups for the polyurethane product, for example, commercially available from Guangzhou Yourun Synthetic Material Co., Ltd (Guang Dong, China) under the trade name BX-EM 23.
[0100] If present, any polyurethane curing catalyst (v)(e) may be present in an amount of 0.01 to 3% by weight of the composition, or 0.03 to 1.5% by weight of the silicone / polyurethane hybrid prepolymer coating composition, or 0.03 to 0.75% by weight of the composition.
[0101] Polyether polyols (v)(f) have at least two hydroxyl groups per molecule, or at least three hydroxyl groups per molecule, and have a hydroxyl value of >100 mgKOH / g according to ASTM-D4274-11. Polyether polyols (v)(f) have an average formula (-C n H 2n -O-) yThe polyether may contain one or more linear or branched polyethers having repeating units, where n is an integer from 2 to 6, and y is an integer or at least an integer of 2, which does not need to be the same throughout the polyoxyalkylene but may differ from unit to unit, for example, it may contain ethylene oxide units (-[CH2-CH2-O]-), trimethylene oxide units (-[CH2-CH2-CH2-O]-), tetramethylene oxide units (-[CH2-CH2-CH2-CH2-O]-), oxypropylene units (-[CH(CH3)-CH2-O]-), and / or oxybutylene units (-[CH(CH2CH3)-CH2-O]-). The polyether polyol (v)(f) may be, for example, a commercially available polyethertriol with a hydroxyl value of 647-676 mgKOH / g sold by Dow Chemical under the trade name VORANOL® CP 260 Polyol, or a commercially available polyethertriol with a hydroxyl value of 370-396 mgKOH / g sold by Dow Chemical under the trade name VORANOL® CP 450 Polyol, or polyether polyol HF-302 commercially available from Zhejiang Hengfeng New Material Co., Ltd. The content of polyether polyol (v)(f) is 10% to 30% by weight in the silicone / polyurethane hybrid prepolymer coating composition used to prepare the aforementioned silicone / polyurethane hybrid prepolymer coating layer (v).
[0102] The silicone / polyurethane hybrid prepolymer coating composition used to prepare the aforementioned silicone / polyurethane hybrid prepolymer coating layer (v) is stored in two parts, a first part and a second part. The polyether polyol (v)(f) and the platinum group metal catalyst (v)(g) are separated from the remaining components during storage (in the second part). Any of the aforementioned tin or Bi / Zn catalysts may be present in the first or second part, if present, and the remaining components are retained in the first part until they are mixed together.
[0103] All of the above weight percentage values for the silicone / polyurethane hybrid prepolymer coating composition used to prepare the aforementioned silicone / polyurethane hybrid prepolymer coating layer (v) exclude the solvent content.
[0104] The solvent may vary depending on the component, but may include any suitable solvent, for example, ethylene glycol dibutyl ether and / or one or more esters of glycol ethers, such as (but not limited to) ethylene glycol methyl ether acetate, ethylene glycol monoethyl ether acetate, ethylene glycol monopropyl ether acetate, ethylene glycol monobutyl ether acetate, propylene glycol monomethyl ether acetate, dipropylene glycol monomethyl ether acetate, propylene glycol diacetate, and dipropylene glycol monoethyl ether acetate.
[0105] The composition can be cured at a temperature of 100°C to 200°C for 2 to 10 minutes.
[0106] The average dry coat thickness of the silicone / polyurethane hybrid prepolymer coating layer (v) is 10 μm to 50 μm. This was determined by measuring the length and width of a release paper sample, coating the release paper with the silicone / polyurethane hybrid prepolymer coating composition, curing it, weighing the release paper coated with the resulting silicone / polyurethane hybrid prepolymer coating layer (v), and calculating the average thickness based on the following formula. Average dry coat thickness of layer (v) = Weight of layer (v) / (Density) * width * length)
[0107] In the case shown, the average dry coat thickness of each layer was determined in the same way as the thickness of layer (v) by determining the weight of each layer and using the above formula. In all cases, the density was determined according to ASTM D792. As previously stated, a method for preparing the silicone leather composite material described herein is also provided. This process is (a) A step of coating release paper with a layer of silicone / polyurethane hybrid prepolymer coating composition, and curing the composition to provide a silicone / polyurethane hybrid prepolymer coating layer (v), (b) A step of applying a layer of silicone skin composition onto a cured silicone / polyurethane hybrid prepolymer coating layer (v), curing the composition to provide a silicone skin layer (iii), (c) A step of applying a layer of silicone binder composition onto a cured silicone skin layer (iii), applying a textile layer (i) onto the silicone binder composition, curing and / or laminating the composition to form a silicone binder layer (ii) between the textile support layer (i) and the skin layer (iii), (d) A step of removing the release paper from the cured silicone / polyurethane hybrid prepolymer coating layer (v), and (e) The step of applying a layer of a two-component hydrosilylated curable silicone topcoat composition onto a cured silicone / polyurethane hybrid prepolymer coating layer (v), and curing the topcoat composition to form a silicone topcoat layer (iv).
[0108] When a two-component hydrosilylated curable silicone topcoat composition was applied to release paper as the first step of the process, followed by the application of a silicone / polyurethane hybrid prepolymer coating composition (v), problems were found. Surprisingly, these problems were avoided by adding a topcoat on the cured silicone / polyurethane hybrid prepolymer coating layer (v) as the final step, and thus the above process was developed.
[0109] In one embodiment of the manufacturing process, the process is: (a) A step of coating the release paper with a layer of silicone / polyurethane hybrid prepolymer coating composition, curing it at a temperature of 120°C to 180°C for 2 to 10 minutes to form a silicone / polyurethane hybrid prepolymer coating layer (v), and obtaining an average dry coat thickness of 10 μm to 50 μm using the above method, (b) Applying a layer of silicone skin composition onto a cured silicone / polyurethane hybrid prepolymer coating layer (v), curing it at any suitable temperature, for example, 100-150°C, to produce a silicone skin layer (iii) having a thickness of 50 μm to 1 mm, 50-750 μm, or 50-500 μm, or 50-350 μm, or 50-250 μm, or an average dry coat thickness of 70 μm to 200 μm using the above method, (c) A step of applying a layer of silicone binder composition onto a cured silicone skin layer (iii), applying a textile layer (i) onto the silicone binder, and curing and / or laminating the silicone binder (ii) between the textile support layer (i) and the skin layer (iii) at a temperature of 130°C to 180°C for 2 to 8 minutes, wherein the thickness of the resulting layer is determined by the thickness requirements of the silicone leather composite material and the thickness of the other layers. (d) A step of removing the release paper from the cured silicone / polyurethane hybrid prepolymer coating layer (v), and (e) The process includes applying a layer of a two-component hydrosilylated curable silicone topcoat composition onto a cured silicone / polyurethane hybrid prepolymer coating layer (v), curing the topcoat at 130°C to 160°C for 2 to 8 minutes to form a silicone topcoat (v) having an average dry coat thickness of 5 to 20 μm using the above method, thereby completing a silicone leather composite material.
[0110] Each individual part of the above two-component hydrosilylated compositions can be prepared by any suitable method. For this purpose, any mixing techniques and apparatus described in the prior art can be used. The specific apparatus used will depend on the components and the viscosity of each final curable composition. Suitable mixers include, but are not limited to, paddle-type mixers, such as planetary mixers, and kneader-type mixers. It may be desirable to cool the components during mixing to avoid premature curing of the composition. Therefore, as the first step of the process, parts A and B of each two-component composition may be mixed together, and if desired, for example, in the case of a two-component hydrosilylated composition, the composition may be degassed, for example, the skin layer and the binder layer.
[0111] The order in which the components of the hydrosilylated curable silicone elastomer composition are mixed in a two-component hydrosilylated curable silicone topcoat composition is not important. Prepare suitable portions A and B, and then, immediately before use, mix portions A and B together in a predetermined weight ratio of 15:1 to 1:2, for example, 1:1.
[0112] After preparation and / or mixing, each composition used to provide each layer in the silicone leather composite material may be applied according to the above process using any suitable application method, such as spraying, rolling, brushing, spin coating, dip coating, solvent casting, slot die coating, spray coating, knife coating, or gravure coating.
[0113] Any suitable release paper can be used, for example, Japan Asahi's super matte release paper ARX175DM, Dai Nippon Printing Co., Ltd.'s release papers DE-7, DE-90, DE-43C, DE-73J, or Dai Nippon Printing Co., Ltd.'s semi-matte release paper DE-73M.
[0114] Each curing step may be carried out in an oven suitable for curing and drying, for example, in a hot air oven, or in a conveyor oven in the case of a continuous process.
[0115] If desired, the final silicone leather composite material may be post-cured at a temperature of approximately 75°C to 180°C, generally, but not necessarily, toward the lower end of the range, for example, 75°C to 120°C for 2 to 48 hours, or 6 to 36 hours, or 10 to 24 hours.
[0116] Silicone leather composite materials can be designed to have a wide variety of properties by considering the contents of different layers, and may have excellent flame retardancy, smoke density, heat resistance, stain resistance, solvent resistance, hydrolysis resistance, etc., depending on the requirements of the leather's end application. On the other hand, the provision of a silicone / polyurethane hybrid prepolymer coating layer (v) has resulted in significantly improved abrasion resistance.
[0117] Potential end uses include, but are not limited to, furniture, decorations, handbags, binders, travel bags, clothing, phone covers, electronic product covers, book covers, footwear, car interiors, car seats, medical beds / seats, and wearable devices. [Examples]
[0118] In the following examples and comparative examples, several silicone leather composite materials were prepared and tested to demonstrate the advantages of incorporating a silicone / polyurethane hybrid prepolymer coating layer (v) as a means of improving abrasion resistance. All viscosities were measured at 25°C. Viscosity was measured using a Brookfield DV 3T Rheometer, or a Brookfield® rotational viscometer with spindle LV-4 (designed for viscosities in the range of 1,000 to 2,000,000 mPa·s) or a Brookfield® rotational viscometer with spindle LV-1 (designed for viscosities in the range of 15 to 20,000 mPa·s) at a rotational speed of 10 rpm for viscosities less than 1,000 mPa·s.
[0119] The amount (by weight) of unsaturated groups and / or silicon-bonded hydrogen present was determined using quantitative infrared analysis according to ASTM E168.
[0120] Two prepolymers were prepared by reacting carbinol-terminated polydimethylsiloxane with 1,4-butanediol (chain extender) and isophorone diisocyanate (IPDI).
[0121] Carbinol-terminated PDMS1 was a monoethylene glycol-terminated polydimethylsiloxane with a viscosity of approximately 48 mPa·s at 25°C and approximately 60 mg KOH / g when measured according to ASTM-D4274-11. Carbinol-terminated PDMS1 is commercially available from Dow Silicones Corporation under the trade name DOWSIL®BY16-201.
[0122] Carbinol-terminated PDMS2 was a polydimethylsiloxane double-terminated with a -C3H6-0-C2H4-OH linear carbinol group bonded to a terminal silicon, having a viscosity of approximately 45 mPa·s and a KOH content of approximately 62 mg at 25°C (according to supplier information). Carbinol-terminated PDMS2 is commercially available from Shin-Etsu Chemical Co. Ltd. under the trade name KF-6001.
[0123] Isophorone diisocyanate (IPDI) has the following structure.
[0124] [ka]
[0125] Table 1a shows the amounts of each starting component used to produce the silicone / polyurethane hybrid prepolymers in the examples. The reaction was carried out at a temperature of approximately 70°C for 3 hours in the presence of dipropylene glycol methyl ether acetate (DPMA) as the solvent. The resulting prepolymer product is not extracted from the solvent upon completion, but is mixed in solution with the other components of the composition. Meanwhile, the solvent evaporates during the curing process.
[0126] [Table 1]
[0127] Next, four silicone / polyurethane hybrid prepolymer coating compositions (SPHPT1-4) were prepared using one or other of the above prepolymers. First, each composition was prepared into two parts containing several solute components in a solvent. The solute components other than the aforementioned prepolymers are as follows: The silicone elastomer powder used is commercially available from Dow Silicones Corporation under the trade name Dowsil® 23N Additive, and has an average particle size of 2 μm and a particle size distribution of 1 to 10 μm, both of which were determined by Dow Silicones Corporation's enterprise test method CTM1138, which is publicly available upon request. The polyurethane microparticles used in the composition have an average particle size of 1 to 10 μm (according to supplier information) and are commercially available from Dainichiseika Color & Chemicals Mfg. Co. Ltd. under the trade name RHU-5070D Polyurethane microparticles. Polymethyl methacrylate (PMMA) particles are cross-linked acrylic dispersed particles with a narrow particle distribution size averaging approximately 5 μm (according to supplier information), and are commercially available from Soken Chemical & Engineering under the trade name Chemisnow® MZ-5HN. The tin catalyst used is a dibutyltin dilaurate-based catalyst commercially available from Evonik under the trade name Dabco(registered trademark) T-12. The Bi / Zn catalyst is an organobismuth / zinc complex catalyst designed to catalyze the reaction between NCOs groups and -OH groups for polyurethane products, and is commercially available from Guangzhou Yourun Synthetic Material Co., Ltd (Guang Dong, China) under the trade name BX-EM 23. The polyethertriol used in the examples has an average molecular weight of 260 and is commercially available from Dow Chemical under the trade name VORANOL® CP 260 Polyol. The resinous SiH crosslinking agent is a Si-H dimethyl-terminated resinous Si-H polysiloxane having a viscosity of 25 mPa·s at 25°C and a silicon-bonded hydrogen content of approximately 9,000 ppm. The solute components of each Part A composition are shown in Table 2a, and the solute components of Part B composition are shown in Table 2b. The solute components of each Part A and Part B composition were dissolved in a suitable solvent, and the weight percentages of the solute components of Part A and Part B were cumulatively added up to 100% by weight, and the present solvent was removed. The solvent evaporated during the preparation, processing, and especially the curing process.
[0128] [Table 2]
[0129] [Table 3]
[0130] The modulus of elasticity (MPa) of SPHPT1-4 was determined by preparing partial A and partial B compositions in appropriate solvents. The two parts were mixed together, then coated onto an aluminum plate, and cured by placing in an oven at 130°C-150°C for 30 minutes to evaporate the solvent. The resulting cured film was then removed from the plate and tested for its modulus according to ASTM D882, with the modulus calculated using the first straight line portion of the load elongation curve. The resulting moduli were 117 MPa for SPHPT1, 59 MPa for SPHPT2, 116 MPa for SPHPT3, and 39 MPa for SPHPT4.
[0131] A two-component silicone leather topcoat of the type disclosed in the applicant's PCT application PCT / CN21 / 080128, which was unpublished at the time of filing this application, was prepared according to the following composition, and the same topcoat was used in all examples (when included in the silicone leather composite material). The formulations used in the examples are shown in Tables 3a and 3b below.
[0132] [Table 4]
[0133] [Table 5]
[0134] The components of Tables 3a and 3b are defined as described above or below. The vinyl-terminated siloxane polymer is a dimethylvinyl-terminated polydimethylsiloxane with a vinyl content of approximately 0.08% by weight and a viscosity of 65,000 mPa·s at 25°C. The high vinylsiloxane copolymer is a dimethylvinyl-terminated dimethylmethylvinylpolysiloxane copolymer having a viscosity of 15,000 mPa·s at 25°C and a vinyl content of approximately 8.0% by weight. Vinyl-terminated siloxane copolymer 2 is a dimethylvinyl-terminated dimethylmethylvinylpolysiloxane copolymer having a viscosity of 300 mPa·s at 25°C and a vinyl content of approximately 1.15% by weight. Humed silica is 300m 2 HDK(registered trademark) T30P calcined silica (Wacker Chimie) has a BET surface area of / g. HMDZ is hexamethyldisilazane, MVD (methyl vinyl diol) is a dimethylhydroxy-terminated polydimethylmethyl vinylsiloxane having a viscosity of approximately 30 mPa·s at 25°C and a vinyl content of approximately 12.0% by weight. The platinum catalyst is a platinum catalyst in a solution of polydimethylsiloxane having approximately 5000 ppm of platinum metal relative to the rest of the composition. The inhibitor is methyl(tris(1,1-dimethyl-2-propynyloxy))silane, ZrAcAc masterbatch is zirconium acetylacetonate in a 50:50 masterbatch of vinyl-terminated siloxane polymers. Silane 1 is 3-glycidoxypropyltrimethoxysilane.
[0135] Two skin layers were used in the example. The formulations used in the following example are shown in Table 4.
[0136] [Table 6]
[0137] SILASTIC® LCF 8300 Skin is a two-component silicone-based material designed for high strength and hardness to provide enhanced abrasion resistance when coated onto fabrics. It is intended for use as a skin layer for synthetic silicone leather, which is commercially available from Dow Silicones Corporation (Midland, Michigan, USA). SILASTIC® LCF 8500 Skin is a two-component silicone-based material designed for high strength and hardness to enhance abrasion resistance when coated onto fabrics. It is intended for use as a skin layer for synthetic silicone leathers, commercially available from Dow Silicones Corporation (Midland, Michigan, USA). SILASTIC® LCF 8300 Skin and SILASTIC® LCF 8500 Skin are designed to be blended as desired.
[0138] Skin layer 1 is substantially the same as skin layer 2, except for the addition of an adhesion promoter.
[0139] The silicone binder layer used to bond the fabric to the skin layer was SILASTIC® LCF 8400 Binder, a two-component silicone system designed for high-strength bonding to textile substrates, commercially available from Dow Silicones Corporation (Midland, Michigan, USA).
[0140] Next, the selection of Comparative Examples (C1-3) and Examples Ex.1-4 was made such that the silicone binder layer (ii) was between the textile support (i) and the skin layer (iii), the skin layer (iii) was between the silicone binder layer (ii) and the silicone / polyurethane hybrid prepolymer coating layer (v), and the silicone / polyurethane hybrid prepolymer coating layer (v) was between the skin layer (iii) and the silicone topcoat (iv). The release paper used in all examples was Type DE-73M, commercially available from Dai Nippon Printing Co. Ltd., the silicone binder layer used to adhere the fabric to the skin layer was SILASTIC® LCF 8400, and the other compositions used to prepare the composite materials of Comparative Examples 1-3 (C1-3) and Ex.1-4 are shown in Table 5 below.
[0141] [Table 7]
[0142] In each of Comparative Examples 1-3 and Examples 1-4, the two-component hydrosilylated curable silicone topcoat composition, the silicone / polyurethane hybrid prepolymer coating composition, the skin layer coating composition, and the partial A and partial B compositions of the silicone binder composition were mixed to produce the final composition for each layer. The obtained skin layer coating composition and silicone binder composition were degassed, and each silicone leather composite material was prepared as follows.
[0143] The additional process steps taken to obtain composite material C.1 were as follows: 1) A silicone topcoat composition was applied onto release paper and cured at 150°C for 5 minutes to obtain a topcoat layer having an average dry coat thickness of approximately 13 μm. 2) Next, the silicone skin layer composition was applied onto the top coat layer and then cured at 120°C for 1.5 minutes. The average dry coat thickness of the resulting skin layer was approximately 125 μm. 3) The adhesive layer composition was applied onto the skin layer and laminated onto the fabric layer, then cured at 140°C for 3 minutes. The average dry coat thickness of the adhesive layer was approximately 250 μm. 4) Next, the release paper was removed for this embodiment.
[0144] The process used to obtain composite material C.2 was as follows: 1) A silicone / polyurethane hybrid prepolymer coating composition was applied onto release paper and then cured at 150°C for 3 minutes. The average dry coat thickness of the resulting silicone / PU hybrid coating layer was approximately 20 μm. 2) Next, the silicone skin layer composition was applied onto the silicone / PU hybrid coating layer and cured at 120°C for 1.5 minutes. The average dry coat thickness of the resulting skin layer was approximately 125 μm. 3) The adhesive layer composition was then applied to the skin layer, and subsequently laminated onto the fabric layer, and cured at 140°C for 3 minutes. The average dry coat thickness of the resulting adhesive layer was approximately 250 μm. 5) Next, the release paper was removed for this embodiment.
[0145] In each case, the additional steps taken in the process to obtain composite material C.3 and Examples 1-4 were as follows: 1) A silicone / polyurethane hybrid prepolymer coating composition was applied to release paper and cured at 150°C for 3 minutes. The average dry coat thickness of the silicone / polyurethane hybrid prepolymer coating layer was approximately 20 μm. 2) Next, the silicone skin layer composition was applied onto the silicone / polyurethane hybrid prepolymer coating layer and then cured at 120°C for 1.5 minutes. The average dry coat thickness of the resulting skin layer was approximately 125 μm. 3) The adhesive composition was then applied to the skin layer, then laminated onto the fabric layer, and then cured at 140°C for 3 minutes. The average dry coat thickness of the resulting adhesive layer was approximately 250 μm. 4) Remove the release paper from the silicone / polyurethane hybrid prepolymer coating layer, apply the silicone topcoat composition onto the silicone / polyurethane hybrid prepolymer coating layer, and cure at 150°C for 5 minutes. The average dry coat thickness of the silicone topcoat in each example was approximately 13 μm.
[0146] The abrasion resistance of each obtained silicone leather composite material was tested using a Gakushin Model:GT-7020 manufactured by GOODTECHWILL Testing Machines Co.,Ltd.
[0147] A silicone leather composite material was cut into 10 x 100 mm rectangles and then attached to the load test head of a Gakushin Model: GT-7020 using double-sided tape. Abrasive action was provided by a piece of cotton abrasive cloth (JIS L3102 6# 30 mm x 250 mm) placed on the movable curved platen of the Gakushin instrument. The platen moved back and forth at 30 cycles / min, and the total weight of each head was 1 kg. The test was stopped every 2000 cycles, and the effect on the surface of the leather composite material was observed and is shown in Tables 6a and 6b below.
[0148] [Table 8]
[0149] Comparative Example 3 was not tested because its adhesion to the silicone / polyurethane hybrid prepolymer coating layer (v) was weak, allowing the silicone topcoat to be rubbed off with a finger. Ex.1-4 were also analyzed after the abrasion test and were determined to have passed the test. Details of the observations are provided in Table 6b below.
[0150] [Table 9]
[0151] Each of the silicone leather composite materials Ex.1 to Ex.4 showed no significant change in surface texture and retained its soft feel after passing the JSPS (Japan Society for the Promotion of Science) test for a two-component hydrosilylated, curable silicone topcoat coating.
[0152] In the second batch of the example, the composition of Example 1 was used to evaluate the best method for the process described herein.
[0153] Comparative Example 4: 1) A silicone / polyurethane hybrid prepolymer coating composition (SPHPT1) was applied to release paper and then cured by heating at 120°C for 8 minutes. The thickness of the resulting cured silicone / polyurethane hybrid prepolymer coating layer was approximately 70 μm. 2) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 130°C for 1.5 minutes. The average thickness of the dried skin layer was approximately 140 μm. 3) Next, the silicone binder composition was applied to the skin layer, then laminated onto the fabric backing layer, and cured at 150°C for 3 minutes. The average thickness of the dried binder layer was approximately 250 μm. 4) Finally, the release paper was removed, and a two-component hydrosilylated curable silicone topcoat was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 150°C for 5 minutes. The average thickness of the cured, dried silicone topcoat was approximately 10 μm.
[0154] Comparative Example 5: 1) The silicone / polyurethane hybrid prepolymer coating composition SPHPT1 was applied to release paper and then cured by heating at 150°C for 3 minutes. The thickness of the resulting cured silicone / polyurethane hybrid prepolymer coating layer was approximately 20 μm. 2) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 120°C for 1.5 minutes. The average thickness of the cured dry skin layer was approximately 125 μm. 3) Next, the silicone binder composition was applied onto the skin layer, then laminated onto the fabric backing layer, and then cured at 140°C for 3 minutes. The average thickness of the dried silicone binder layer was approximately 250 μm. 4) Finally, the release paper was removed and a two-component hydrosilylated curable silicone topcoat was applied. The release paper was removed, and the two-component hydrosilylated curable silicone topcoat was coated onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 150°C for 5 minutes. The average thickness of the cured, dried silicone topcoat layer was approximately 50 μm.
[0155] Comparative Example 6: 1) The silicone / polyurethane hybrid prepolymer coating composition SPHPT1 was applied to release paper and then cured by heating at 150°C for 3 minutes. The thickness of the resulting cured silicone / polyurethane hybrid prepolymer coating layer was approximately 20 μm. 2) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 120°C for 1.5 minutes. The average thickness of the cured, dried skin layer was approximately 20 μm. 3) Next, the silicone binder composition was applied onto the skin layer, then laminated onto the fabric backing layer, and then cured at 140°C for 3 minutes. The average thickness of the dried silicone binder layer was approximately 250 μm. 4) Finally, the release paper was removed, and a two-component hydrosilylated curable silicone topcoat was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 150°C for 5 minutes. The average thickness of the cured, dried silicone topcoat layer was approximately 13 μm.
[0156] Comparative Example 7: 1) A two-component hydrosilylated curable silicone topcoat composition was applied to release paper and cured at 150°C for 5 minutes. The thickness of the cured, dried silicone topcoat layer was approximately 13 μm. 2) The silicone / polyurethane hybrid prepolymer coating composition SPHPT1 was applied onto a silicone topcoat layer and then cured by heating at 150°C for 3 minutes. The average thickness of the resulting cured silicone / polyurethane hybrid prepolymer coating layer was approximately 20 μm. 3) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 120°C for 1.5 minutes. The thickness of the cured skin layer was approximately 140 μm. 4) Next, the silicone binder composition was applied onto the skin layer, then laminated onto the fabric backing layer, and then cured at 140°C for 3 minutes. The average thickness of the dried silicone binder layer was approximately 250 μm. 5) Remove the release paper.
[0157] Example 5 1) The silicone / polyurethane hybrid prepolymer coating composition SPHPT1 was applied to release paper and then cured by heating. The silicone / polyurethane hybrid prepolymer coating layer was applied to release paper and then cured by heating at 150°C for 3 minutes. The average thickness of the resulting cured dry silicone / polyurethane hybrid prepolymer coating layer was approximately 20 μm. 2) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 120°C for 1.5 minutes. The average thickness of the cured dry skin layer was approximately 125 μm. 3) Next, the silicone binder composition was applied onto the skin layer, then laminated onto the fabric backing layer, and then cured at 140°C for 3 minutes. The average thickness of the dried silicone binder layer was approximately 250 μm. 4) Finally, the release paper was removed, and the two-component hydrosilylated curable silicone topcoat composition was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 150°C for 5 minutes. The average thickness of the silicone topcoat layer was approximately 13 μm.
[0158] Example 6: 1) The silicone / polyurethane hybrid prepolymer coating composition SPHPT2 was applied to release paper and then cured by heating at 120°C for 8 minutes. The thickness of the resulting cured silicone / polyurethane hybrid prepolymer coating layer was approximately 30 μm. 2) Next, skin layer composition SL1 was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 130°C for 1.5 minutes. The average thickness of the cured, dried skin layer was approximately 70 μm. 3) Next, the silicone binder composition was applied onto the skin layer, then laminated onto the fabric backing layer, and then cured at 150°C for 3 minutes. The average thickness of the dried silicone binder layer was approximately 200 μm. 4) Finally, the release paper was removed, and the two-component hydrosilylated curable silicone topcoat composition was applied onto the cured silicone / polyurethane hybrid prepolymer coating layer and cured at 150°C for 5 minutes. The thickness of the silicone topcoat layer was approximately 10 μm.
[0159] When the six resulting composite materials were tested in the same manner as described above, it was found that in Comparative Example 4, where the average dry coat thickness of the silicone / polyurethane hybrid prepolymer coating layer was thicker than the desired range, the texture was poor. In Comparative Example 5, the average dry coat thickness of the silicone topcoat layer was greater than the specified upper limit, resulting in a significant negative change in gloss and texture of the resulting composite material. In Comparative Example 6, the average dry coat thickness of the skin layer was less than the required thickness, and the resulting composite material was significantly damaged after 4000 cycles of JSPS testing, and was therefore considered to have failed the JSPS test. In Comparative Example 7, the silicone topcoat layer was directly applied onto release paper as step 1 of the process. It was found that the majority of the silicone topcoat remained on the release paper, resulting in residue on the paper, and it failed the JSPS test. In contrast, Example 5 of the present invention was observed to retain a soft texture, showed no significant change in surface texture after silicone topcoat coating, and passed the JSPS test. Similarly, Example 6 of the present invention was also observed to retain a soft texture, showed no significant change in surface texture after application of the silicone topcoat coating, and passed the JSPS test.
Claims
1. A silicone leather composite material, (i) Textile support layer, (ii) A silicone binder, which is a cured product of a two-component hydrosilylated curable silicone rubber composition designed to adhere to the textile support layer (i) and the skin layer (iii), and having a Shore A hardness of 20 to 40 as measured according to ASTM D2240, (iii) A silicone skin layer, which is a cured product of a two-component hydrosilylated curable silicone rubber composition containing an adhesion promoter, and which has a Shore A hardness of 50 or greater (≧) when measured according to ASTM D2240, (iv) A silicone topcoat layer comprising a silicone topcoat layer which is a cured product of a two-component hydrosilylated curable silicone topcoat containing an adhesion promoter, The silicone binder (ii) is bonded between the textile support (i) and the skin layer (iii), and the skin layer (iii) is located between the silicone binder layer (ii) and the silicone topcoat layer (iv). A silicone leather composite material characterized in that a silicone / polyurethane hybrid prepolymer coating layer (v) having an elastic modulus of 10 MPa or more, determined by calculating the elastic modulus using the first straight portion of the load elongation curve according to ASTM D882, is provided in the silicone leather composite material between the silicone skin layer (iii) and the silicone topcoat layer (iv).
2. The silicone / polyurethane hybrid prepolymer coating layer (v) is a cured product of the silicone / polyurethane hybrid prepolymer coating composition, and the composition is (v)(a) Silicone / polyurethane hybrid prepolymer and (v) (b) Any cured silicone elastomer powder and (v)(c) Any silicon-free particles and / or fine particles selected from at least one of polymethyl methacrylate (PMMA), ethylene-vinyl acetate copolymer (EVA), ethylene-acrylate copolymer (EAA), ethylene-butyl acrylate copolymer (EBA), ethylene-methyl acrylate copolymer (EMA), ethylene-ethyl acrylate copolymer (EEA), or polyurethane polymer, and (v)(d) A polyorganosiloxane present in an amount of 1% to 10% by weight of the composition, containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule, (v)(f) A polyether polyol having at least two hydroxyl groups per molecule and having a hydroxyl value greater than 100 mg KOH / g when measured according to ASTM-D4274-11, (v)(g) A silicone leather composite material according to claim 1, comprising a platinum group metal catalyst.
3. The silicone leather composite material according to claim 2, wherein the silicone / polyurethane hybrid prepolymer coating composition further comprises a polyurethane curing catalyst (v)(e).
4. The silicone leather composite material according to claim 2 or 3, wherein the silicone / polyurethane hybrid prepolymer coating composition contains (v)(b) the cured silicone elastomer powder, and (v)(c) one or both of the silicon-free particles and / or fine particles selected from at least one of polymethyl methacrylate (PMMA), ethylene-vinyl acetate copolymer (EVA), ethylene-acrylate copolymer (EAA), ethylene-butyl acrylate copolymer (EBA), ethylene-methyl acrylate copolymer (EMA), ethylene-ethyl acrylate copolymer (EEA), or polyurethane polymer.
5. The silicone leather composite material according to claim 1, 2, or 3, wherein the average dry coat thickness of the silicone / polyurethane hybrid prepolymer coating layer (v) is 10 μm to 50 μm using the following method: The average dry coat thickness is determined by measuring the length and width of a sample of release paper, coating the release paper with a silicone / polyurethane hybrid prepolymer coating composition, curing it, weighing the release paper coated with the resulting silicone / polyurethane hybrid prepolymer coating layer (v), and calculating the average thickness based on the following formula. Average dry coat thickness of layer (v) = Weight of layer (v) / (Density * Width * Length)
6. The silicone topcoat layer (iv) is a cured product of a two-component hydrosilylated curable silicone topcoat composition, and the composition is Component (iv) (a) One or more organopolysiloxane polymers having at least two unsaturated groups per molecule, wherein the unsaturated groups are selected from alkenyl groups, alkynyl groups, or mixtures thereof, and having a viscosity of 100 to 500,000 mPa·s at 25°C, Components (iv) (b) A silica-reinforced filler that has been optionally hydrophobized, Component (iv)(c) A polyorganosiloxane containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule, Components (iv) and (d) hydrosilylation catalyst, Component (iv)(e) Adhesion promoter comprising zirconium acetylacetonate in an amount of 1 to 5% by weight of the composition, 1,3,5-tris[3-(trimethoxysilyl)propyl]-1,3,5-triazine-2,4,6(1H,3H,5H)-trione and / or one or more epoxysilanes of the following formula, in an amount of 1 to 6% by weight of the composition: 【Chemistry 1】 In the formula, R 5 is an alkyl group having 1 to 6 carbon atoms, R 6 An adhesion promoter comprising an epoxysilane or a mixture thereof, wherein the alkoxy group has 1 to 6 carbon atoms and z = 0, 1, or 2, Components (iv)(f) One or more selected from the group consisting of isopentadecane, isohexadecane, isoheptadecane, isooctadecane, isononadecane, and mixtures thereof, or a trimethyl-terminated polydimethylsiloxane having a viscosity of 5 mPa·s or more (≧) to 100 mPa·s or less (≦) at 25°C, and optionally, A silicone leather composite material according to claim 1, 2, or 3, comprising component (iv)(g) cured silicone powder.
7. The silicone leather composite material according to claim 1, 2, or 3, wherein the one or more adhesion promoters in the two-component hydrosilylated curable silicone rubber composition provided for generating a skin layer (iii) comprises at least one isocyanatoalkylsilane and / or one epoxysilane.
8. The average dry coat thickness of the silicone skin layer (iii) is 70 μm to 200 μm, and / or The silicone leather composite material according to claim 1, 2, or 3, wherein the average dry coat thickness of the two-component hydrosilylated curable silicone topcoat (iv) is 5 to 20 μm, and / or the average dry coat thickness of the silicone / polyurethane hybrid prepolymer coating layer (v) is 10 μm to 50 μm.
9. A method for preparing the silicone leather composite material according to claim 1, (a) A step of coating release paper with a layer of silicone / polyurethane hybrid prepolymer coating composition, and curing the composition to provide a silicone / polyurethane hybrid prepolymer coating layer (v), (b) A step of applying a layer of silicone skin composition onto the cured silicone / polyurethane hybrid prepolymer coating layer (v), curing the silicone skin composition to provide a silicone skin layer (iii), (c) A step of applying a layer of silicone binder composition onto a cured silicone skin layer (iii), applying a textile layer (i) onto the silicone binder composition, curing and / or laminating the composition to form a silicone binder layer (ii) between the textile support layer (i) and the skin layer (iii), (d) A step of removing the release paper from the cured silicone / polyurethane hybrid prepolymer coating layer (v), (e) A method comprising the steps of applying a layer of a two-component hydrosilylated curable silicone topcoat composition onto the cured silicone / polyurethane hybrid prepolymer coating layer (v), and curing the two-component hydrosilylated curable silicone topcoat composition to form a silicone topcoat layer (iv).
10. The process according to claim 9, wherein the silicone / polyurethane hybrid prepolymer coating composition is cured at a temperature of 120°C to 180°C for 2 to 10 minutes to obtain an average dry coat thickness of 10 μm to 50 μm using the following method: The average dry coat thickness is determined by measuring the length and width of a sample of release paper, coating the release paper with a silicone / polyurethane hybrid prepolymer coating composition, curing it, weighing the release paper coated with the resulting silicone / polyurethane hybrid prepolymer coating layer (v), and calculating the average thickness based on the following formula. Average dry coat thickness of layer (v) = Weight of layer (v) / (Density * Width * Length)
11. The process according to claim 9 or 10, wherein the two-component hydrosilylated curable silicone topcoat composition is cured at a temperature of 130°C to 160°C for 2 to 8 minutes to form a silicone topcoat (v) having an average dry coat thickness of 5 to 20 μm using the following method: The average dry coat thickness is determined by measuring the length and width of a sample of release paper, coating the release paper with a silicone / polyurethane hybrid prepolymer coating composition, curing it, weighing the release paper coated with the resulting silicone / polyurethane hybrid prepolymer coating layer (v), and calculating the average thickness based on the following formula. Average dry coat thickness of layer (v) = Weight of layer (v) / (Density * Width * Length)
12. Use of a silicone / polyurethane hybrid prepolymer coating composition for improving the abrasion resistance of the silicone leather composite material according to claim 1, wherein the silicone / polyurethane hybrid prepolymer coating layer (v) has an elastic modulus of 10 MPa or more, which is determined by calculating the elastic modulus using the first straight portion of the load elongation curve according to ASTM D882.
13. The aforementioned silicone / polyurethane hybrid prepolymer coating composition (v)(a) Silicone / polyurethane hybrid prepolymer and (v) (b) Any cured silicone elastomer powder and (v)(c) Any silicon-free particles and / or fine particles selected from at least one of polymethyl methacrylate (PMMA), ethylene-vinyl acetate copolymer (EVA), ethylene-acrylate copolymer (EAA), ethylene-butyl acrylate copolymer (EBA), ethylene-methyl acrylate copolymer (EMA), ethylene-ethyl acrylate copolymer (EEA), or polyurethane polymer, (v)(d) A polyorganosiloxane present in an amount of 1% to 10% by weight of the composition, containing at least two or at least three silicon-bonded hydrogen (-Si-H) groups per molecule, (v)(f) A polyether polyol having at least two hydroxyl groups per molecule and having a hydroxyl value greater than 100 mg KOH / g when measured according to ASTM-D4274-11, (v)(g) Use of the silicone / polyurethane hybrid prepolymer coating composition according to claim 12, comprising a platinum group metal catalyst.
14. Use of the silicone / polyurethane hybrid prepolymer coating composition according to claim 12, wherein the silicone / polyurethane hybrid prepolymer coating composition further comprises a polyurethane curing catalyst (v)(e).
15. Use of a layer of a silicone / polyurethane hybrid prepolymer coating layer (v) in the silicone / polyurethane composite leather material according to any one of claims 1, 2, or 3, or prepared according to the method of claim 9, in or for furniture, decorations, handbags, binders, travel bags, clothing, telephone covers, electronic product covers, book covers, footwear, automotive interiors, automotive seats, wearable devices, and / or medical beds / seats.
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