UV-curable silicone composition for stereolithography and cured product thereof
A UV-curable silicone composition for stereolithography, combining organopolysiloxane, hydrophobic silica particles, and a photopolymerization initiator, addresses the brittleness issue of existing compositions, achieving a cured product with improved mechanical strength and elongation.
Patent Information
- Application Number
- JP2025566457
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2024-04-26
- Filing Date
- 2024-12-06
- Publication Date
- 2026-01-21
- Estimated Expiration
- 2044-12-06
AI Technical Summary
Existing ultraviolet-curable silicone compositions for stereolithography have low mechanical strength and elongation, making them brittle and unsuitable for applications requiring flexible, rubber-like properties.
A UV-curable silicone composition comprising organopolysiloxane with specific (meth)acryloyloxy-containing groups, hydrophobic silica particles, and a photopolymerization initiator, formulated to achieve a viscosity suitable for stereolithography methods, resulting in a cured product with excellent rubber physical properties.
The composition exhibits good rubber physical properties with a viscosity suitable for stereolithography, providing a cured product with high elongation and improved mechanical strength.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an ultraviolet-curable silicone composition for stereolithography and a cured product thereof. [Background technology]
[0002] In recent years, the development of modeling materials for use in 3D printers has become more active, and a variety of materials, from metals to resins, are being used as modeling materials. In the field of resins, for example, acrylate-based photocurable resin compositions and urethane acrylate-based photocurable resin compositions can be cited, but the cured products of these resin compositions are very hard and cannot be bent freely (Patent Document 1).
[0003] Soft silicone materials are increasingly required depending on the application, and silicone materials for 3D printers tailored to the modeling method have already been developed. For example, a composition containing an alkenyl group-containing organopolysiloxane, a mercapto group-containing organopolysiloxane, and an MQ resin has already been developed as a material for stereolithography (Patent Document 2). A silicone composition containing a platinum catalyst activated by ultraviolet light has also been proposed for dispensing technology (Patent Document 3). Furthermore, a thermosetting silicone composition has also been proposed for 3D printers (Patent Document 4).
[0004] Additionally, a UV-curable, low-viscosity silicone material has been proposed for use in inkjet 3D printers (Patent Document 5). This material has the advantage of being cured by short-term UV irradiation and having excellent modeling accuracy, but it has the drawback of being poor in mechanical strength and heat resistance compared to ordinary silicone materials. Therefore, new ultraviolet-curable silicone compositions have been developed for use in stereolithography, which has been rapidly increasing in recent years (Patent Documents 6 and 7). However, compared to the mechanical strength of thermosetting silicone compositions, they have low elongation and can be brittle. In recent years, however, stereolithography has become possible even with higher viscosities than before. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Patent No. 5890990 [Patent Document 2] Patent No. 4788863 [Patent Document 3] Patent No. 5384656 [Patent Document 4] Patent No. 6727290 [Patent Document 5] Patent No. 6687111 [Patent Document 6] Patent No. 6962290 [Patent Document 7] Patent No. 7342910 Summary of the Invention [Problem to be solved by the invention]
[0006] The present invention has been made in light of the above circumstances, and has as its object to provide an ultraviolet-curable silicone composition that has a viscosity suitable for use in stereolithography methods such as laser methods and Digital Light Processing (DLP) methods, and that gives a cured product that exhibits excellent rubber physical properties, as well as a cured product thereof. [Means for solving the problem]
[0007] As a result of extensive research conducted by the present inventors in order to achieve the above-mentioned object, they discovered that by adding a photopolymerization initiator to an organopolysiloxane having a specific (meth)acryloyloxy-containing group and hydrophobic silica particles having an average particle size within a specific range and a specific degree of hydrophobicity, it is possible to obtain an ultraviolet-curable silicone composition that is also applicable to stereolithography and that gives a cured product with good rubber physical properties, and thus completed the present invention.
[0008] That is, the present invention provides: 1. (A) The following formula (1) [ka] (In the formula, R 1 are each independently a monovalent hydrocarbon group having 1 to 20 carbon atoms, and R 2 represents an oxygen atom or an alkylene group having 1 to 20 carbon atoms, and R 3 are each independently an acryloyloxyalkyl group, a methacryloyloxyalkyl group, an acryloyloxyalkyloxy group, a methacryloyloxyalkyloxy group, an (acryloyloxyalkyl)dimethylsilyloxy group, or a (methacryloyloxyalkyl)dimethylsilyloxy group, p is a number that satisfies 0≦p≦10, a is a number that satisfies 1≦a≦3, and the dashed line represents a bond. 100 parts by mass of an organopolysiloxane having two groups represented by the formula (B) hydrophobic silica particles having an average particle diameter of 10 to 1,000 nm and a hydrophobicity of 60% or more as determined by a methanol titration method: 10 to 500 parts by mass; and (C) Photopolymerization initiator: 0.01 to 20 parts by mass a UV-curable silicone composition for stereolithography, 2. The ultraviolet-curable silicone composition for stereolithography according to 1, having a viscosity at 23°C of 500 Pa·s or less. 3. The ultraviolet-curable silicone composition for stereolithography according to 1 or 2, further comprising (D) an ultraviolet absorber having light absorption in the wavelength range of 360 to 410 nm, in an amount of 0.01 to 20 parts by mass per 100 parts by mass of component (A). 4. The ultraviolet-curable silicone composition for stereolithography according to any one of 1 to 3, further comprising 0.01 to 20 parts by mass of (E) a coloring material per 100 parts by mass of component (A). 5. A cured product of the ultraviolet-curable silicone composition for stereolithography described in any one of 1 to 4. 6. The cured product according to 5, having an elongation at break of 150% or more. to provide. [Effects of the Invention]
[0009] The UV-curable silicone composition for stereolithography of the present invention has a viscosity that makes it suitable for use in stereolithography methods such as laser and DLP, and the cured product exhibits good rubber physical properties. DETAILED DESCRIPTION OF THE INVENTION
[0010] The present invention will be described in detail below. [1] UV-curable silicone composition for stereolithography The ultraviolet-curable silicone composition for stereolithography according to the present invention contains the following components (A) to (C): (A) an organopolysiloxane having two groups represented by the following formula (1) per molecule: (B) Hydrophobic silica particles having an average particle size of 10 to 1,000 nm and a hydrophobicity of 60% or more as measured by methanol titration. (C) Photopolymerization initiator
[0011] (A) Organopolysiloxane Component (A) used in the present invention is one of the crosslinking components of the composition, and is an organopolysiloxane having two groups represented by the following formula (1) per molecule, and whose main chain is essentially composed of repeating diorganosiloxane units.
[0012] [ka] (In the formula, the dashed lines represent bonds.)
[0013] In formula (1), R 1 are each independently a monovalent hydrocarbon group having 1 to 20 carbon atoms, preferably a monovalent hydrocarbon group having 1 to 10 carbon atoms, more preferably 1 to 8 carbon atoms, excluding aliphatic unsaturated groups. R 2 is an oxygen atom or an alkylene group having 1 to 20 carbon atoms, preferably an alkylene group having 1 to 10 carbon atoms, and more preferably an alkylene group having 1 to 5 carbon atoms. R 3are each independently an acryloyloxyalkyl group, a methacryloyloxyalkyl group, an acryloyloxyalkyloxy group, a methacryloyloxyalkyloxy group, an (acryloyloxyalkyl)dimethylsilyloxy group, or a (methacryloyloxyalkyl)dimethylsilyloxy group.
[0014] In formula (1), R 1 The monovalent hydrocarbon group having 1 to 20 carbon atoms may be straight-chain, branched, or cyclic, and examples thereof include alkyl, alkenyl, aryl, and aralkyl groups. Specific examples thereof include alkyl groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, tert-butyl, n-hexyl, cyclohexyl, n-octyl, 2-ethylhexyl, and n-decyl; alkenyl groups such as vinyl, allyl (2-propenyl), 1-propenyl, isopropenyl, and butenyl; aryl groups such as phenyl, tolyl, xylyl, and naphthyl; and aralkyl groups such as benzyl, phenylethyl, and phenylpropyl.
[0015] In addition, some or all of the hydrogen atoms bonded to carbon atoms of these monovalent hydrocarbon groups may be substituted with halogen atoms such as chlorine, fluorine, or bromine, or other substituents such as a cyano group. Specific examples of such substituents include halogen-substituted hydrocarbon groups such as chloromethyl, bromoethyl, and trifluoropropyl groups; and cyano-substituted hydrocarbon groups such as a cyanoethyl group. Among these, R 1 As the alkyl group, an alkyl group having 1 to 5 carbon atoms and a phenyl group are preferred, and a methyl group, an ethyl group and a phenyl group are more preferred.
[0016] R 2 The alkylene group having 1 to 20 carbon atoms may be linear, branched, or cyclic, and specific examples thereof include methylene, ethylene, propylene, trimethylene, tetramethylene, isobutylene, pentamethylene, hexamethylene, heptamethylene, octamethylene, nonamethylene, and decylene groups. Among these, R2 As the alkyl group, an oxygen atom, a methylene group, an ethylene group, or a trimethylene group is preferable, and an oxygen atom or an ethylene group is more preferable.
[0017] R 3 The number of carbon atoms in the alkyl (alkylene) group in the acryloyloxyalkyl group, methacryloyloxyalkyl group, acryloyloxyalkyloxy group, methacryloyloxyalkyloxy group, (acryloyloxyalkyl)dimethylsilyloxy group, or (methacryloyloxyalkyl)dimethylsilyloxy group is not particularly limited, but is preferably 1 to 10, more preferably 1 to 5. Specific examples of these alkyl groups include R 1 Among the groups exemplified above, those having 1 to 10 carbon atoms are exemplified. R 3 Specific examples of the compound include, but are not limited to, those represented by the following formulas:
[0018] [ka] (In the formula, the dashed lines represent bonds.)
[0019] In the above formula, b is a number that satisfies 1≦b≦4, and preferably 1≦b≦3. R 4 is an alkylene group having 1 to 10 carbon atoms, preferably an alkylene group having 1 to 5 carbon atoms. 4 A specific example of this is R 2 Among the groups exemplified above, those having 1 to 10 carbon atoms are preferred, and among these, methylene, ethylene and trimethylene groups are more preferred, with methylene and ethylene groups being more preferred.
[0020] In formula (1), p is a number that satisfies 0≦p≦10, preferably a number that satisfies 0≦p≦5, and more preferably 0 or 1, and a is a number that satisfies 1≦a≦3, and preferably 1 or 2.
[0021] The bonding position of the group represented by general formula (1) in the organopolysiloxane molecule of component (A) may be at the molecular chain terminal (one terminal or both terminals), at a non-terminal position (i.e., midway along the molecular chain or at a side chain), or both. However, from the perspective of flexibility of the resulting cured product, it is desirable for the bonding position to be at the terminals only.
[0022] In the organopolysiloxane molecule of component (A), groups bonded to silicon atoms other than the group represented by general formula (1) above include, for example, the above R 1 The examples include the same groups as those shown above, and are preferably monovalent hydrocarbon groups having 1 to 12 carbon atoms, more preferably 1 to 10 carbon atoms, excluding aliphatic unsaturated groups. Specific examples of these include the above-mentioned R 1 Examples of the groups include the same as those exemplified in 1., but from the viewpoint of ease of synthesis, alkyl groups, aryl groups and halogenated alkyl groups are preferred, and methyl groups, phenyl groups and trifluoropropyl groups are more preferred.
[0023] The molecular structure of component (A) is basically a straight or branched chain (including a straight chain with a branch in part of the main chain) main chain consisting of repeating diorganosiloxane units, and linear diorganopolysiloxanes in which both molecular chain terminals are blocked with groups represented by the above general formula (1) are particularly preferred. The component (A) may be a single polymer having these molecular structures, a copolymer comprising these molecular structures, or a mixture of two or more of these polymers.
[0024] The viscosity of the organopolysiloxane of component (A) at 25°C is preferably 10 to 10,000 mPa·s, more preferably 50 to 5,000 mPa·s, in order to further improve the viscosity of the composition and the mechanical properties of the cured product. This viscosity range typically corresponds to a number average degree of polymerization of about 10 to 550, preferably about 50 to 450, for linear organopolysiloxanes. In the present invention, the viscosity can be measured using a rotational viscometer (for example, BL type, BH type, BS type, cone-plate type, rheometer, etc.) (the same applies hereinafter). In the present invention, the degree of polymerization (or molecular weight) can be determined as the polystyrene-equivalent number-average degree of polymerization (or number-average molecular weight) in gel permeation chromatography (GPC) analysis using, for example, toluene as a developing solvent.
[0025] Specific examples of the organopolysiloxane of component (A) include those represented by the following formulas (2) to (5), but are not limited to these.
[0026] [ka] (In the formula, R 4 and b have the same meanings as above, Me represents a methyl group, Ph represents a phenyl group, q and r are numbers that make the viscosity of the organopolysiloxane fall within the above range, with q being a number that preferably satisfies 1≦q≦400, more preferably 1≦q≦200, and even more preferably 1≦q≦100, and r being a number that preferably satisfies 1≦r≦400, and more preferably 10≦r≦300. The siloxane units to which q and r are attached may be arranged in any order.
[0027] Such organopolysiloxanes can be produced by known methods. For example, the polysiloxane represented by formula (2) can be obtained by reacting 2-hydroxyethyl acrylate with the hydrosilylation reaction product of a dimethylsiloxane-diphenylsiloxane copolymer endblocked with dimethylvinylsiloxy groups and chlorodimethylsilane. The organopolysiloxane represented by the above formula (3) can be obtained as the hydrosilylation reaction product of a dimethylsiloxane-diphenylsiloxane copolymer endblocked with dimethylvinylsiloxy groups and 3-(1,1,3,3-tetramethyldisiloxanyl)propyl methacrylate (CAS No. 96474-12-3). The organopolysiloxane represented by the above formula (4) can be obtained by reacting 2-hydroxyethyl acrylate with the hydrosilylation reaction product of a dimethylsiloxane-diphenylsiloxane copolymer endblocked with dimethylvinylsiloxy groups and dichloromethylsilane. The organopolysiloxane represented by formula (5) above can be obtained by reacting the hydrosilylation reaction product of a dimethylsiloxane-diphenylsiloxane copolymer endblocked with dimethylvinylsiloxy groups with dichloromethylsilane with (hydroxydimethylsilyl)methyl acrylate (CAS No. 118536-45-1).
[0028] (B) Hydrophobic silica particles Component (B) is hydrophobic silica particles. By including component (B), the fluidity of the composition can be maintained while increasing the mechanical strength of the cured product.
[0029] The average particle diameter of component (B) is 10 to 1,000 nm, preferably 20 to 1,000 nm, more preferably 20 to 500 nm, and even more preferably 30 to 200 nm. If the average particle diameter is smaller than 10 nm, aggregation becomes severe and fluidity is lost. If it is larger than 1,000 nm, the effect of improving mechanical strength is small. The above average particle diameter is the volume-based median diameter (D) in particle size distribution measurement by laser light diffraction method. 50 ) is the value measured.
[0030] The hydrophobicity of component (B) measured by methanol titration is 60% or more, preferably 64% or more. Silica particles with a high hydrophobicity do not aggregate even when highly loaded in the composition, and can increase the mechanical strength of the cured product without impairing the flowability.
[0031] The degree of hydrophobicity can be determined by the following methanol titration method. (1) The sample is suspended in a predetermined amount of ion-exchanged water, and methanol is added dropwise while stirring. (2) Read the amount of the sample dropped when the entire amount of the sample is suspended in the ion-exchanged water. (3) The value calculated by [{amount of methanol added (mL)} / {amount of methanol added (mL) + amount of ion-exchanged water (mL)}] x 100 is the hydrophobicity.
[0032] The shape of the component (B) used in the present invention is not particularly limited, but a spherical shape is preferred.
[0033] The blend amount of component (B) is 10 to 500 parts by mass, preferably 20 to 300 parts by mass, and more preferably 30 to 200 parts by mass, per 100 parts by mass of component (A). If the blend amount is less than 10 parts by mass, the effect of improving the mechanical strength of the cured product is small, and if the blend amount exceeds 500 parts by mass, the viscosity of the composition becomes too high and the flowability is poor.
[0034] In addition, component (B) forms R on the silica surface. 7 SiO 3 / 2 Units (R 7 is a substituted or unsubstituted monovalent hydrocarbon group having 1 to 20 carbon atoms, and R 9 3SiO 1 / 2 Units (R 9 are the same or different substituted or unsubstituted monovalent hydrocarbon groups having 1 to 6 carbon atoms.
[0035] Such component (B) can be, for example, a tetrafunctional silane compound, an alkyl silicate, or a mixture thereof, which is obtained by hydrolysis and condensation to form R 7 SiO 3 / 2 Units, then R 9 3SiO 1 / 2 It can be obtained by introducing units by hydrolysis condensation.
[0036] [Method for synthesizing component (B)] Specifically, the component (B) used in the present invention is preferably synthesized by a method including the following three steps. Step (α): Synthesis of hydrophilic silica particles Step (β): A step of subjecting hydrophilic silica particles to surface hydrophobic treatment to obtain an intermediate (B). Step (γ): A step of further subjecting the component (B) intermediate to surface hydrophobic treatment to obtain hydrophobic silica particles of component (B).
[0037] Each step will be explained below in order. Step (α): Synthesis of hydrophilic silica particles Step (α) is a step of obtaining a dispersion of hydrophilic silica particles by hydrolyzing and condensing either or both of a tetrafunctional silane compound represented by the following general formula (I) and an alkyl silicate represented by the following general formula (II) in a mixed liquid of a hydrophilic organic solvent and water in the presence of a basic substance. Si(OR 5 )4(I) [ka] (In the formula, R 5 are the same or different monovalent hydrocarbon groups having 1 to 6 carbon atoms, and m is a number from 1 to 100.
[0038] In the above general formulas (I) and (II), R 5 are the same or different monovalent hydrocarbon groups having 1 to 6 carbon atoms, preferably 1 to 4 carbon atoms, and more preferably 1 or 2 carbon atoms. R 5 The monovalent hydrocarbon group represented by may be linear, branched, or cyclic, and specific examples thereof include alkyl groups such as methyl, ethyl, n-propyl, isopropyl, and n-butyl groups; and aryl groups such as phenyl groups. Among these, R 5 is preferably a methyl, ethyl, n-propyl or n-butyl group, more preferably a methyl group or an ethyl group.
[0039] In the above general formula (II), m is a number of 1 to 100, preferably a number of 1 to 50, and more preferably a number of 1 to 25.
[0040] Specific examples of the tetrafunctional silane compound represented by the above general formula (I) include tetraalkoxysilanes such as tetramethoxysilane, tetraethoxysilane, tetrapropoxysilane, and tetrabutoxysilane; and tetraaryloxysilanes such as tetraphenoxysilane. Of these, preferred are tetramethoxysilane, tetraethoxysilane, tetrapropoxysilane, and tetrabutoxysilane, and more preferred are tetramethoxysilane and tetraethoxysilane. Specific examples of the alkyl silicate represented by the general formula (II) include methyl silicate and ethyl silicate, and among these, methyl silicate is preferred. These may be used alone or in combination of two or more.
[0041] Specific examples of the hydrophilic organic solvent used in step (α) are not particularly limited as long as they dissolve the tetrafunctional silane compound represented by general formula (I) or the alkyl silicate represented by general formula (II) and water, and include, for example, alcohols; cellosolves such as methyl cellosolve, ethyl cellosolve, butyl cellosolve, and cellosolve acetate; ketones such as acetone and methyl ethyl ketone; and ethers such as dioxane and tetrahydrofuran. Among these, alcohols and cellosolves are preferred, and alcohols are more preferred.
[0042] The alcohols include those represented by the following general formula (VI). R 6 OH (VI) (In the formula, R 6 is a monovalent hydrocarbon group having 1 to 6 carbon atoms.
[0043] In the above general formula (VI), R 6 is a monovalent hydrocarbon group having 1 to 6 carbon atoms, preferably 1 to 4 carbon atoms, and more preferably 1 or 2 carbon atoms. 6 Specific examples of the monovalent hydrocarbon group represented by R 5 Among them, R6 is preferably a methyl, ethyl, n-propyl, or isopropyl group, more preferably a methyl group or an ethyl group.
[0044] Specific examples of the alcohol represented by general formula (VI) include methanol, ethanol, propanol, isopropanol, butanol, etc., and among these, methanol and ethanol are preferred. As the number of carbon atoms in the alcohol increases, the particle size of the resulting silica particles increases. Therefore, methanol is preferred to obtain the desired small silica particles.
[0045] The amount of water used in the hydrolysis and condensation is preferably 0.5 to 5 moles, more preferably 0.6 to 2 moles, and even more preferably 0.7 to 1 mole, per mole of the total of the hydrocarbyloxy groups of the tetrafunctional silane compound represented by general formula (I) and / or the alkyl silicate represented by general formula (II). The ratio of water to hydrophilic organic solvent is preferably 10 to 200 parts by mass of the hydrophilic organic solvent per 100 parts by mass of water.
[0046] Specific examples of the basic substance used in step (α) include ammonia, dimethylamine, diethylamine, etc., and among these, ammonia and diethylamine are preferred, and ammonia is more preferred. These basic substances can be dissolved in a required amount in water, and then the resulting aqueous solution (basic) can be mixed with a hydrophilic organic solvent.
[0047] The amount of the basic substance used is preferably 0.01 to 2 mol, more preferably 0.02 to 0.5 mol, and even more preferably 0.04 to 0.12 mol, per mol of the total of the hydrocarbyloxy groups of the tetrafunctional silane compound represented by general formula (I) and / or the alkyl silicate represented by general formula (II). In this case, the smaller the amount of the basic substance, the more desirable small-diameter silica particles can be obtained.
[0048] The basic substance may be added to a mixture of a hydrophilic organic solvent and water, and then further added to the resulting mixture together with the tetrafunctional silane compound represented by general formula (I) and / or the alkyl silicate represented by general formula (II). Alternatively, the basic substance may be added to a mixture of water and a hydrophilic organic solvent simultaneously with the addition of the tetrafunctional silane compound and / or the alkyl silicate and the hydrophilic organic solvent.
[0049] The reaction conditions for step (α) are not particularly limited, and the reaction can be carried out under conventionally known conditions, for example, preferably at about 10 to 80° C. for about 1 to 10 hours.
[0050] The obtained mixed solvent dispersion containing hydrophilic silica particles may be used as is in step (β), but it is preferable to convert it into an aqueous dispersion containing hydrophilic silica particles by adding water to the mixed solvent dispersion containing hydrophilic silica particles, evaporating off the hydrophilic organic solvent, and converting it into an aqueous dispersion, since the remaining alkoxy groups are hydrolyzed by this.
[0051] The dispersion medium of the silica particle mixed solvent dispersion can be converted to water, for example, by adding water to the dispersion and distilling off the hydrophilic organic solvent (repeated as necessary). The amount of water added at this time is preferably 50 to 200 parts by mass, more preferably 80 to 150 parts by mass, relative to 100 parts by mass of the total amount of the hydrophilic organic solvent used and the alcohol generated in the synthesis step of the hydrophilic silica particles.
[0052] Step (β): Surface treatment step for hydrophilic silica particles Step (β) is a step of adding either or both of a trifunctional silane compound represented by the following general formula (III) and its (partial) hydrolysis condensate to the mixed solvent dispersion of hydrophilic silica particles obtained in step (α) to treat the surfaces of the hydrophilic silica particles, thereby obtaining a dispersion of silica particles (hydrophobic silica particle intermediate), which is an intermediate of component (B). R 7 Si(OR 8 )3(III) (In the formula, R 7is a substituted or unsubstituted monovalent hydrocarbon group having 1 to 20 carbon atoms, and R 8 are the same or different monovalent hydrocarbon groups having 1 to 6 carbon atoms.
[0053] In the above general formula (III), R 7 R is a substituted or unsubstituted monovalent hydrocarbon group having 1 to 20 carbon atoms, preferably 1 to 10 carbon atoms, more preferably 1 to 3 carbon atoms, and even more preferably 1 or 2 carbon atoms. 7 The monovalent hydrocarbon group may be linear, branched, or cyclic, and specific examples thereof include alkyl groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, n-hexyl, and n-decyl groups. Among these, R 7 is preferably a methyl, ethyl, n-propyl or isopropyl group, more preferably a methyl group or an ethyl group. Some or all of the hydrogen atoms of these monovalent hydrocarbon groups may be substituted with halogen atoms such as fluorine atoms, chlorine atoms or bromine atoms, and is preferably a fluorine-substituted alkyl group.
[0054] In the above general formula (III), R 8 are the same or different monovalent hydrocarbon groups having 1 to 6 carbon atoms, preferably 1 to 3 carbon atoms, and more preferably 1 or 2 carbon atoms. 8 A specific example of this is R 5 Among them, R 8 is preferably a methyl, ethyl or n-propyl group, more preferably a methyl group or an ethyl group.
[0055] Specific examples of the trifunctional silane compound represented by general formula (III) include unsubstituted or halogen-substituted trialkoxysilanes such as methyltrimethoxysilane, methyltriethoxysilane, ethyltrimethoxysilane, ethyltriethoxysilane, n-propyltrimethoxysilane, n-propyltriethoxysilane, isopropyltrimethoxysilane, isopropyltriethoxysilane, butyltrimethoxysilane, butyltriethoxysilane, hexyltrimethoxysilane, trifluoropropyltrimethoxysilane, and heptadecafluorodecyltrimethoxysilane. Among these, preferred are methyltrimethoxysilane, methyltriethoxysilane, ethyltrimethoxysilane, and ethyltriethoxysilane, and more preferred are methyltrimethoxysilane and methyltriethoxysilane.
[0056] The amount of the trifunctional silane compound represented by general formula (III) added is preferably 0.001 to 1 mol, more preferably 0.01 to 0.4 mol, and even more preferably 0.01 to 0.2 mol per mol of Si atoms in the hydrophilic silica particles obtained in step (α). If the amount added is 0.001 mol or more, the hydrophobicity of the resulting component (B) is increased, resulting in excellent dispersibility. If the amount added is 1 mol or less, the risk of aggregation of component (B) can be suppressed. The treatment conditions in step (β) are not particularly limited, and are preferably, for example, about 10 to 80° C. for about 1 to 10 hours.
[0057] Step (γ): Surface treatment step for the intermediate component (B) Step (γ) is a step in which the dispersion medium of the mixed solvent dispersion of silica particles, which are intermediates of component (B) obtained in step (β), is converted to, for example, a ketone-based solvent to obtain a ketone-based solvent dispersion of hydrophobic silica particle intermediates, and then either one or both of a silazane compound represented by the following general formula (IV) and a monofunctional silane compound represented by the following general formula (V) are added to this ketone-based solvent dispersion to treat the surfaces of the silica particles, which are intermediates of component (B), thereby obtaining hydrophobic silica particles of component (B). This step triorganosilylates the silanol groups remaining on the surfaces of the hydrophobic silica particle intermediates, converting them into R 9 3SiO 1 / 2 Units are introduced onto the surface. R 9 3SiNHSiR 9 3(IV) R 9 3SiX (V) (In the formula, R 9 are the same or different substituted or unsubstituted monovalent hydrocarbon groups having 1 to 6 carbon atoms, and X is an OH group or a hydrolyzable group.
[0058] In the above general formulas (IV) and (V), R 9 R are the same or different substituted or unsubstituted monovalent hydrocarbon groups having 1 to 6 carbon atoms, preferably 1 to 4 carbon atoms, and more preferably 1 or 2 carbon atoms. 9 A specific example of this is R 5 Among them, R 9 is preferably a methyl, ethyl, or n-propyl group, more preferably a methyl group or an ethyl group. Some or all of the hydrogen atoms of these monovalent hydrocarbon groups may be substituted with halogen atoms such as fluorine atoms, chlorine atoms, or bromine atoms, and is preferably a fluorine-substituted alkyl group.
[0059] X is an OH group or a hydrolyzable group. Examples of the hydrolyzable group include a chlorine atom; an alkoxy group such as a methoxy group or an ethoxy group; an amino group, an N-methylamino group, an N,N'-dimethylamino group, an N-ethylamino group, an N,N'-diethylamino group; and an acyloxy group such as an acetoxy group. Of these, an alkoxy group or an amino group is preferred, an alkoxy group is more preferred, and a methoxy group or an ethoxy group is even more preferred.
[0060] Specific examples of the silazane compound represented by the general formula (IV) include hexamethyldisilazane, hexaethyldisilazane, and tetramethyldivinyldisilazane, with hexamethyldisilazane being preferred. Specific examples of the monofunctional silane compound represented by general formula (V) include monosilanol compounds such as trimethylsilanol and triethylsilanol; monochlorosilanes such as trimethylchlorosilane and triethylchlorosilane; monoalkoxysilanes such as trimethylmethoxysilane and trimethylethoxysilane; monoaminosilanes such as trimethylsilyldimethylamine and trimethylsilyldiethylamine; and monoacyloxysilanes such as trimethylacetoxysilane. Among these, trimethylsilanol, trimethylmethoxysilane, or trimethylsilyldiethylamine is preferred, and trimethylsilanol or trimethylmethoxysilane is more preferred. These may be used alone or in combination of two or more.
[0061] The amount of the silazane compound represented by general formula (IV) and / or the monofunctional silane compound represented by general formula (V) used is preferably 0.1 to 0.5 mol, more preferably 0.2 to 0.4 mol, and even more preferably 0.25 to 0.35 mol, per mol of Si atoms in the hydrophobic silica particle intermediate obtained in step (β). If the amount used is 0.1 mol or more, the hydrophobicity of the obtained hydrophobic silica particles will be high and they will have excellent dispersibility. Taking into account costs and the like, an amount used of 0.5 mol or less is sufficient.
[0062] The dispersion medium of the mixed solvent dispersion of the hydrophobic silica particle intermediate obtained in step (β) can be converted from a mixed solvent of water or a hydrophilic organic solvent and an alcohol generated during hydrolysis to a ketone-based solvent by adding a ketone-based solvent to the mixed solvent dispersion of the hydrophobic silica particle intermediate, and then distilling off the water or the hydrophilic organic solvent and the alcohol mixture (this operation can be repeated as necessary). The conditions for this conversion are preferably about 10 to 150°C for about 1 to 20 hours. The amount of the ketone solvent added is preferably 50 to 500 parts by mass, more preferably 100 to 300 parts by mass, relative to 100 parts by mass of the obtained hydrophobic silica particle intermediate. Specific examples of the ketone solvent used here include methyl ethyl ketone, methyl butyl ketone, and acetylacetone, and among these, methyl isobutyl ketone is preferred. The surface treatment conditions in step (γ) are not particularly limited, and are preferably, for example, at about 10 to 150° C. for about 1 to 20 hours.
[0063] The component (B) obtained as described above can be obtained as a powder by a conventional method such as drying at room temperature or under heat at normal pressure or drying under reduced pressure.
[0064] (C) Photopolymerization initiator Component (C) is a photopolymerization initiator. Specific examples of photopolymerization initiators that can be used in the present invention include 2,2-diethoxyacetophenone, 2,2-dimethoxy-1,2-diphenylethan-1-one (Omnirad 651), 1-hydroxycyclohexylphenylketone (Omnirad 184), 2-hydroxy-2-methyl-1-phenylpropan-1-one (Omnirad 1173), 2-hydroxy-1-{4-[4-(2-hydroxy-2-methylpropionyl)benzyl]phenyl}-2-methylpropan-1-one (Omnirad 127), phenylglyoxylic acid methyl ester (Omnirad MBF), 2-methyl-1-[4-(methylthio)phenyl]-2-morpholinopropan-1-one (Omnirad 907), 2-benzyl-2-dimethylamino-1-(4-morpholinophenyl)-1-butanone (Omnirad 369), bis(2,4,6-trimethylbenzoyl)-phenylphosphine oxide (Omnirad 819), 2,4,6-trimethylbenzoyl-diphenyl-phosphine oxide (Omnirad TPO), ethyl phenyl(2,4,6-trimethylbenzoyl)phosphinate (Omnirad TPO-L) and the like (all manufactured by IGM Resins BV). These may be used alone or in combination of two or more. Among these, from the viewpoint of compatibility with components (A) and (B), 2,2-diethoxyacetophenone, 2-hydroxy-2-methyl-1-phenyl-propan-1-one (Omnirad 1173), bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (Omnirad 819), 2,4,6-trimethylbenzoyl-diphenyl-phosphine oxide (Omnirad TPO H), and ethyl phenyl(2,4,6-trimethylbenzoyl)phosphinate (Omnirad TPO-L) are preferred.
[0065] The amount of photopolymerization initiator added is 0.01 to 20 parts by mass, preferably 0.1 to 10 parts by mass, per 100 parts by mass of component (A). If the amount is less than 0.01 part by mass, curability will be insufficient, and if it exceeds 20 parts by mass, deep curability will be impaired.
[0066] (D) UV absorber with light absorption in the range of 360 to 410 nm To adjust the curing properties during stereolithography using a 3D printer, the composition of the present invention may contain an ultraviolet absorber that absorbs light at a wavelength of 360 to 410 nm.
[0067] Specific examples of ultraviolet absorbers that can be used in the present invention include 2-(2H-benzotriazol-2-yl)-6-dodecyl-4-methylphenol (Tinuvin 571, manufactured by BASF), benzenepropanoic acid 3-(2H-benzotriazol-2-yl)-5-(1,1-dimethylethyl)-4-hydroxy C7-9 side chain and linear alkyl ester (Tinuvin 384-2, manufactured by BASF), 2-(5-chloro-2-benzotriazolyl)-6-tert-butyl-p-cresol (Tinuvin 326, manufactured by BASF), and reaction products of 2-(4,6-bis(2,4-dimethylphenyl)-1,3,5-triazin-2-yl)-5-hydroxyphenyl with [(C10-C16 mainly C12-C13 alkyloxy)methyl]oxirane (Tinuvin 400, manufactured by BASF), thioxanthone, 2-isopropylthioxanthone, 2,4-diethylthioxanthone, benzophenone, camphorquinone, 1-phenyl-1,2-propanedione, diethylaminohydroxybenzoylhexylbenzoate (Uvinul A Plus, manufactured by BASF), 1-(4-tert-butylphenyl)-3-(4-methoxyphenyl)-1,3-propanedione, 2-ethylhexyl 4-methoxycinnamate, and the like can be used alone or in combination of two or more.
[0068] When an ultraviolet absorber is used, the amount added is preferably 0.01 to 20 parts by mass, and more preferably 0.1 to 10 parts by mass, per 100 parts by mass of component (A). If the amount is less than 0.01 part by mass, the effect of the ultraviolet absorber may not be fully exhibited, while if it exceeds 20 parts by mass, deep section curing may be impaired.
[0069] (E) Color material Various coloring materials may be added to the composition of the present invention for the purpose of adjusting the curability of the composition or for the purpose of coloring the composition. As the coloring material, general pigments (iron oxide, titanium oxide, zinc oxide, etc.), dyes, carbon black, etc. can be used. These may be used alone or in combination of two or more.
[0070] When a coloring material is used, the amount added is preferably 0.01 to 20 parts by mass per 100 parts by mass of component (A). If the amount is less than 0.01 part by mass, the effect of the coloring material may not be fully exhibited, and if it exceeds 20 parts by mass, deep section curing may be impaired.
[0071] The composition of the present invention may contain additives such as a silane coupling agent, an adhesion promoter, a polymerization inhibitor, an antioxidant, an ultraviolet absorber which is a light resistance stabilizer, and a light stabilizer, as long as the effects of the present invention are not impaired. The composition of the present invention can also be used by appropriately mixing it with other resin compositions.
[0072] [2] Method for producing silicone composition The method for producing the silicone composition of the present invention is not particularly limited, and any conventionally known method can be used. That is, the silicone composition of the present invention can be obtained by mixing components (A) to (C) and, if necessary, other components.
[0073] The method for producing the silicone composition of the present invention preferably includes the following steps (1) and (2). Step (1): A step of producing the component (B) by a method including the following steps (α), (β), and (γ): Step (2): Mixing components (A) to (C) and, if necessary, other components
[0074] Step (1): A step of producing component (B) Step (1) is a step of producing component (B) by a method including the following steps (α), (β), and (γ):
[0075] Step (α): A step of obtaining a dispersion of hydrophilic silica particles by hydrolyzing and condensing one or both of a tetrafunctional silane compound represented by the following general formula (I) and an alkyl silicate represented by the following general formula (II) in a mixed liquid of a hydrophilic organic solvent and water in the presence of a basic substance. Si(OR 5 )4(I) [ka] (In the formula, R 5 and m have the same meaning as above.)
[0076] Step (β): A step of adding either one or both of a trifunctional silane compound represented by the following general formula (III) and its (partial) hydrolysis condensate to the mixed solvent dispersion of hydrophilic silica particles obtained in step (α) to treat the surfaces of the hydrophilic silica particles, thereby obtaining a dispersion of silica particles, which is an intermediate of component (B). R 7 Si(OR 8 )3(III) (In the formula, R 7 and R 8 has the same meaning as above.)
[0077] Step (γ): A step of adding either a silazane compound represented by the following general formula (IV) or a monofunctional silane compound represented by the following general formula (V) to the dispersion of silica particles, which are an intermediate of component (B), obtained in step (β), to treat the surfaces of the silica particles, which are an intermediate of component (B), thereby obtaining hydrophobic silica particles of component (B). R 93SiNHSiR 9 3(IV) R 9 3SiX (V) (In the formula, R 9 and X have the same meaning as above.)
[0078] The detailed method for producing the component (B) is as described above.
[0079] Step (2): Mixing components (A) to (C) There are no particular limitations on the step of mixing components (A) to (C). The ultraviolet-curable silicone composition for stereolithography of the present invention can be obtained by mixing the above components (A) to (C), and, if necessary, other components, in any order, followed by stirring, etc. The equipment used for stirring, etc., is not particularly limited, but includes a crusher, a three-roll mill, a ball mill, a planetary mixer, etc. These equipment may also be used in combination as appropriate.
[0080] The silicone composition of the present invention may be in the form of a one-component or two-component type. A one-component composition can be obtained, for example, by adding components (A) to (C) and, if necessary, other components, to a gate mixer (manufactured by Inoue Seisakusho Co., Ltd., trade name: Planetary Mixer) and mixing them. Alternatively, components (A) and (B) are placed in the gate mixer and mixed under reduced pressure at room temperature for 1 hour. After cooling the resulting mixture, component (C) is added and the mixture is mixed at room temperature for 30 minutes.
[0081] From the viewpoint of stereolithography, the viscosity of the ultraviolet-curable silicone composition for stereolithography of the present invention at 23°C is preferably 500 Pa·s or less, more preferably 400 Pa·s or less, and even more preferably 100 Pa·s or less. If the viscosity exceeds 500 Pa·s, the stereolithography ability deteriorates, and it may not be possible to accurately obtain the desired model. There is no particular lower limit, but a viscosity of 1 Pa·s or more is preferred, and 2 Pa·s or more is more preferred.
[0082] [3] Cured product The ultraviolet-curable silicone composition for stereolithography of the present invention cures rapidly upon irradiation with ultraviolet light. In this case, examples of the light source for the ultraviolet light to be irradiated include a UV-LED lamp, a high-pressure mercury lamp, an ultra-high-pressure mercury lamp, a metal halide lamp, a carbon arc lamp, and a xenon lamp. The ultraviolet irradiation is preferably carried out, for example, at about room temperature (25° C.) in an inert gas atmosphere such as nitrogen or argon.
[0083] When the composition of the present invention is cured by irradiation with ultraviolet light alone, the irradiation dose (cumulative light amount) is preferably 1 to 10,000 mJ / cm 2 for a sheet formed to a thickness of about 2.0 mm from the composition of the present invention. 2 and more preferably 10 to 8,000 mJ / cm 2 That is, the illuminance is 100mW / cm 2 When ultraviolet light is used, the ultraviolet light may be irradiated for about 0.01 to 100 seconds.
[0084] In order for the cured product obtained from the UV-curable silicone composition for stereolithography of the present invention to exhibit excellent rubber properties, the tensile strength is preferably 2.0 MPa or more, more preferably 3.0 MPa or more. The elongation at break is preferably 150% or more, more preferably 200% or more. These values are measured in accordance with JIS-K6249. [Example]
[0085] The present invention will be explained in more detail below with reference to Synthesis Examples, Comparative Synthesis Examples, Examples and Comparative Examples, but the present invention is not limited to these Examples. The compounds of the respective components used in the examples are as follows: In the following formulas, Me represents a methyl group, and Ph represents a phenyl group.
[0086] [1] Ingredients Component (A) [ka] (In the formula, the siloxane units in parentheses may be arranged in any order.)
[0087] (B) Component (B-1) Hydrophobic silica particles obtained in Synthesis Example 1 (B-2) Hydrophobic silica particles obtained in Synthesis Example 2 (B-3) Hydrophobic silica particles obtained in Synthesis Example 3 (Compared to B-1) Hydrophobic silica particles obtained in Comparative Synthesis Example 1
[0088] (C) Component (C-1) 2-Hydroxy-2-methyl-1-phenyl-propan-1-one (Omnirad 1173, manufactured by IGM Resins BV) (C-2) Ethyl phenyl(2,4,6-trimethylbenzoyl)phosphinate (Omnirad TPO-L, manufactured by IGM Resins BV)
[0089] [2] Synthesis of hydrophobic silica particles [Synthesis Example 1] Step (α): Synthesis of hydrophilic silica particles A 3-liter glass reactor equipped with a stirrer, dropping funnel, and thermometer was charged with 623.7 g of methanol, 41.4 g of water, and 49.8 g of 28% by weight aqueous ammonia, and mixed. The solution was adjusted to 35°C, and while stirring, 1,163.7 g of tetramethoxysilane and 418.4 g of 5.4% by weight aqueous ammonia were simultaneously added dropwise over 5 hours. After the dropwise addition was completed, stirring was continued for another 0.5 hours to allow hydrolysis to occur, yielding a suspension of hydrophilic spherical silica particles. The glass reactor was equipped with an ester adapter and a condenser, and heated to 60-70°C until 649 g of methanol was distilled off, at which point 1,600 g of water was added. The mixture was then further heated to 70-90°C, and 160 g of methanol was distilled off, yielding an aqueous suspension of hydrophilic silica particles.
[0090] Step (β): Surface treatment step for hydrophilic silica particles To this aqueous suspension, 115.8 g of methyltrimethoxysilane (0.1 equivalent relative to SiO2) and 46.6 g of 5.4 mass % aqueous ammonia were added dropwise over 0.5 hours at 25°C, and after the addition, the mixture was heated to 50°C and aged for 1 hour. After completing the reaction, the mixture was cooled to 25°C and the hydrophilic silica particle surfaces were treated to obtain a dispersion of hydrophobic silica particle intermediate, which is an intermediate for component (B).
[0091] Step (γ): Surface treatment step for the intermediate component (B) 1,000 g of methyl isobutyl ketone was added to the resulting dispersion, and the dispersion was heated to 80-115°C while maintaining the intense undulations at the liquid interface. 1,336 g of a mixture of methanol and water was distilled off over 11 hours. 357.4 g of hexamethyldisilazane was added to the resulting dispersion at 25°C, and the dispersion was heated to 120°C and reacted for 3 hours. The silica particles were trimethylsilylated to obtain hydrophobic silica particles. The solvent was then distilled off under heating using an evaporator, yielding 477 g of hydrophobic silica particles (B-1).
[0092] [Synthesis Example 2] 470 g of hydrophobic silica particles (B-2) were obtained in the same manner as in step (α) of Synthesis Example 1, except that 1,163.7 g of tetramethoxysilane was changed to 901.9 g of methyl silicate (Methyl silicate 51 manufactured by Colcoat Co., Ltd.).
[0093] [Synthesis Example 3] 360 g of hydrophobic silica particles (B-3) were obtained in the same manner as in step (β) of Synthesis Example 1, except that the amount of methyltrimethoxysilane used was changed to 11.6 g (0.01 equivalents relative to SiO 2 ).
[0094] [Comparative Synthesis Example 1] A 3-liter glass reactor equipped with a stirrer, dropping funnel, and thermometer was charged with 60 g of isopropanol and 100 g of Snowtex OL (Nissan Chemical Industries, Ltd., average particle size 50 nm, dispersed in water, solids concentration 20% by mass), a type of colloidal silica, and mixed. 0.48 g of methyltrimethoxysilane was added dropwise to this solution over 0.5 hours, after which the solution was heated to 50°C and aged for 1 hour. After completing the reaction, the solution was cooled to 25°C and the silica particle surfaces were treated.
[0095] Subsequently, 0.78 g of hexamethyldisilazane was added, and the dispersion was heated to 105° C. and reacted for 2 hours. Finally, 2.6 g of a 35% by mass aqueous hydrochloric acid solution was added. g The solvent was then removed by heating in an evaporator to obtain hydrophobic silica particles (comparison with B-1).
[0096] [Measurement method] The obtained hydrophobic silica particles were measured according to the following measurement methods 1 and 2. The obtained results are shown in Table 1.
[0097] 1.Measuring the average particle size of hydrophobic silica particles (1) 0.1 g of sample was placed in a glass bottle, and 20 g of methanol was added and stirred. (2) The mixture was dispersed in an ultrasonic dispersing device for 10 minutes to prepare a measurement sample. (3) The sample in (2) was measured using a laser analysis scattering particle size distribution measuring device (Nikkiso Co., Ltd., Nanotrac150), and the volume-based median diameter (particle diameter corresponding to 50% of the cumulative distribution when the particle size distribution is expressed as a cumulative distribution) was taken as the average particle diameter.
[0098] 2. Measurement of the hydrophobicity of hydrophobic silica particles (methanol titration method) (1) 0.2 mg of sample was weighed into a 500 mL Erlenmeyer flask. (2) 50 mL of ion-exchanged water was added to (1) and stirred with a stirrer. (3) Methanol was added dropwise from a burette while stirring, and the amount added was read when the entire sample was suspended in the ion-exchanged water. (4) The hydrophobicity was calculated using the following formula: Hydrophobicity (%) = [{amount of methanol dropped (mL)} / {amount of methanol dropped Amount (mL) + Amount of ion-exchanged water (mL) × 100
[0099] [Table 1]
[0100] [3] Production and evaluation of silicone compositions, production and evaluation of cured products [Examples 1 to 7 and Comparative Example 1] The above components (A) to (C) were mixed in the ratios shown in Table 2 to prepare the silicone compositions shown in Table 2. The viscosity of the compositions in Table 2 was measured at 23°C using a rotational viscometer.
[0101] The prepared silicone composition was irradiated with ultraviolet light having a wavelength of 405 nm at a dose of 8,000 mJ / cm using a UV curing device manufactured by CCS Inc. under a nitrogen atmosphere at room temperature (25°C). 2 The sheet was cured by irradiating it with ultraviolet light so that the thickness of the sheet was 2.0 mm. The hardness, elongation at break, and tensile strength of the cured product were measured in accordance with JIS K 6249:2003.
[0102] [Table 2]
[0103] table 2 As shown in the table, the UV-curable silicone compositions prepared in Examples 1 to 7 have low viscosities that make them suitable for use in stereolithography, and the cured products thereof have good mechanical properties.
Claims
1. (A) Formula (1) below 【Chemistry 1】 (In the formula, R 1 are each independently a monovalent hydrocarbon group having 1 to 20 carbon atoms; R 2 represents an oxygen atom or an alkylene group having 1 to 20 carbon atoms, R 3 are each independently an acryloyloxyalkyl group, a methacryloyloxyalkyl group, an acryloyloxyalkyloxy group, a methacryloyloxyalkyloxy group, an (acryloyloxyalkyl)dimethylsilyloxy group, or a (methacryloyloxyalkyl)dimethylsilyloxy group, p is a number that satisfies 0≦p≦10, a is a number that satisfies 1≦a≦3, and the dashed line represents a bond. 100 parts by mass of an organopolysiloxane having two groups represented by the formula (I) in one molecule, (B) hydrophobic silica particles having an average particle size of 10 to 1,000 nm and a hydrophobicity of 60% or more as measured by a methanol titration method: 10 to 500 parts by mass; and (C) Photopolymerization initiator: 0.01 to 20 parts by mass 1. A UV-curable silicone composition for stereolithography comprising:
2. 2. The ultraviolet-curable silicone composition for stereolithography according to claim 1, which has a viscosity at 23[deg.] C. of 500 Pa.s or less.
3. 2. The ultraviolet-curable silicone composition for stereolithography according to claim 1, further comprising (D) an ultraviolet absorber having light absorption in the wavelength range of 360 to 410 nm, in an amount of 0.01 to 20 parts by mass per 100 parts by mass of component (A).
4. 2. The ultraviolet-curable silicone composition for stereolithography according to claim 1, further comprising 0.01 to 20 parts by weight of a coloring material (E) per 100 parts by weight of component (A).
5. A cured product of the ultraviolet-curable silicone composition for stereolithography according to any one of claims 1 to 4.
6. The cured product according to claim 5, which has an elongation at break of 150% or more.
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