Method for manufacturing laminate formed article, thermosensitive gelling agent and laminate formed article composition

The method addresses the issue of sagging and crushing in 3D printed cement materials by using a thermal gelling agent in the additive manufacturing composition, which is quickly defluidized upon heating, enhancing the printing process's efficiency and quality.

JP2025072427AInactive Publication Date: 2025-05-09NIPPON A & L INC
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Patent Information

Application Number
JP2025013352
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-03-01
Filing Date
2025-01-29
Publication Date
2025-05-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Cement materials used in 3D printing for building construction tend to sag and crush due to slow solidification, and existing solutions like Patent Document 1 do not effectively address the issue of stacking cement materials vertically.

Method used

A method for manufacturing additive manufacturing products using a laminated additive manufacturing composition containing a water-curable inorganic composition and a thermal gelling agent. The thermal gelling agent is an aqueous medium with a polymer and a nonionic surfactant, which is quickly defluidized upon heating, reducing sagging and crushing during lamination.

Benefits of technology

The proposed method significantly reduces sagging and crushing of water-curable inorganic compositions during 3D printing, ensuring practical usability, while also improving fluidity, anti-foaming properties, and adhesive strength between layers.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method for manufacturing a laminated formed article by lamination molding such as 3D printings, in which the occurrence of dripping and crushing of a water-setting inorganic composition during lamination is reduced to a level sufficient for practical use.SOLUTION: A method for manufacturing a laminated formed article includes laminating a laminate formed article composition containing a water-setting inorganic composition and a thermosensitive gelling agent, and heating the composition during and / or after a lamination, thereby making the laminate formed article composition non-fluid. The thermosensitive gelling agent contains an aqueous medium, a polymer dispersed in the aqueous medium, and a nonionic surfactant having a cloud point of 30°C or higher and a HLB value of 10 to 18, and the thermosensitive gelling agent has a value of a1 / a0 of 15 or more, where a0 is the penetration resistance at 17±3°C immediately after degassing and a1 is the penetration resistance at 17±3°C after 30 seconds of microwave heating at 600 W after degassing.SELECTED DRAWING: None
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Description

[Technical field]

[0001] The present invention relates to a method for producing a layered object, a thermosensitive gelling agent, and a composition for layered object production. [Background technology]

[0002] 3D printer architecture, which uses a 3D printer (additive manufacturing device) to layer cement materials based on the three-dimensional data of the building, is attracting attention. This construction method allows for more freedom in design than conventional methods, and is said to significantly reduce costs by saving labor and shortening construction time.

[0003] Although cement materials are widely used as building materials, they require a considerable amount of time to solidify. Therefore, attempts have been made to shorten the solidification time. For example, Patent Document 1 describes a method for shortening the drying reaction by adding an aqueous resin emulsion of a specific chemical structure having a thermosensitive gelling ability to a water-setting inorganic powder to obtain a soft mortar sheet. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2005-104749 A Summary of the Invention [Problem to be solved by the invention]

[0005] When cement materials are layered using a 3D printer, dripping and crushing of the cement inevitably occurs, but even if the mortar material described in Patent Document 1, which is said to be able to shorten the drying reaction, is applied to a 3D printer, the above problems cannot be solved. This is because Patent Document 1 only discloses a method that is effective to the extent that the mortar material is sandwiched between two carrier films and heated to form a film, and the composition is not designed to stack the cement material vertically.

[0006] Therefore, an object of the present invention is to provide a method for manufacturing an additively manufactured object by additive manufacturing such as 3D printing, in which the occurrence of dripping and crushing of the water-setting inorganic composition during stacking is reduced to a level sufficient for practical use.

[0007] Another object of the present invention is to provide a material to be contained in a water-setting inorganic composition used for additive manufacturing such as 3D printing, which has excellent defoaming properties and is highly miscible with the water-setting inorganic composition, and which is quickly rendered non-fluid when mixed with the water-setting inorganic composition and heated, and a composition for additive manufacturing using this material. [Means for solving the problem]

[0008] The present invention provides the following [1] to

[15] .

[0009] [1] A method for producing an layered object, comprising: layering a layered modeling composition containing a water-setting inorganic composition and a thermosensitive gelling agent; and heating the layered modeling composition during and / or after the layering to make the layered modeling composition non-fluid; The thermosensitive gelling agent comprises an aqueous medium and a polymer dispersed in the aqueous medium. and a nonionic surfactant having a cloud point of 30°C or higher and an HLB value of 10 to 18, The thermosensitive gelling agent is The following compositions (1) to (5) [(1) to (5) are calculated as solid contents, and the water content is 18.5% by mass] were mixed together. (1) Mortar 100 parts by weight (2) Sodium gluconate 1 part by mass (3) Carboxymethyl cellulose 0.5 parts by mass (4) Silicone-based defoaming agent 0.1 parts by mass (5) 4.5 parts by mass of the heat-sensitive gelling agent 100 g of the sample is placed in a cylindrical container with an open top, degassed, and then the penetration resistance (needle diameter = 2 mm, penetration speed = 30 mm / min, penetration depth = 10 mm) is measured. The method for producing a thermosensitive gelling agent has an a1 / a0 value of 15 or more, where a0 is the value at 17±3°C immediately after degassing and a1 is the value at 17±3°C after microwave heating at 600 W for 30 seconds after degassing. According to this manufacturing method, it is possible to perform layered manufacturing such as 3D printing while reducing the occurrence of dripping and crushing of the water-setting inorganic composition during layering to a practically sufficient level. Note that the thermosensitive gelling agent refers to a material that gels when heated.

[0010] A thermosensitive gelling agent exhibiting such a penetration resistance value can prevent the water-curable inorganic composition from dripping or collapsing during lamination. In addition, the composition for layered molding used in the above-mentioned manufacturing method can be quickly defluidized after heating, and therefore has the property of excellent fluidity when discharged from a nozzle. In addition, the composition for layered molding has excellent defoaming properties, and for example, bubbles disappear just by applying light vibration, preventing a final strength deficiency. And, since the above-mentioned thermosensitive gelling agent also acts as a binder, the adhesive strength between layers after curing is good. That is, according to this manufacturing method, it is also possible to solve problems such as improving the fluidity of the composition for layered molding before curing when it is discharged from a nozzle, improving the defoaming property of the composition for layered molding before curing, and improving the adhesive strength between layers after curing of the composition for layered molding.

[0011] [2] The method according to [1], wherein the polymer is at least one selected from the group consisting of homo- or copolymers of conjugated dienes and homo- or copolymers of ethylenically unsaturated monomers. Such conjugated diene-based polymers and vinyl-based polymers are effective as components of thermosensitive gelling agents.

[0012] [3] The method according to [2], wherein the conjugated diene homopolymer or copolymer is at least one selected from the group consisting of styrene-butadiene rubber, methyl methacrylate-butadiene rubber, acrylonitrile-butadiene rubber, styrene-butadiene-vinylpyridine rubber, butadiene rubber and natural rubber. Such conjugated diene polymers are particularly effective as components of heat-sensitive gelling agents.

[0013] [4] The method according to any one of [1] to [3], wherein the nonionic surfactant is polyoxyethylene alkyl ether and / or polyoxyethylene aryl ether. When the above-mentioned components are used as the nonionic surfactant, the lamination property becomes particularly excellent.

[0014] [5] The method according to [4], wherein the polyoxyethylene alkyl ether has an alkyl moiety having 12 to 20 carbon atoms.

[0015] [6] The method according to [4], wherein the aryl portion of the polyoxyethylene aryl ether is an aryl in which at least one hydrogen atom is substituted with an aralkyl.

[0016] The use of components [5] and [6] as nonionic surfactants can significantly reduce the occurrence of sagging and crushing of the water-setting inorganic composition during lamination. In addition, the nonionic surfactants of the above components have an excellent balance of hydrophilicity and hydrophobicity, improve miscibility with the water-setting inorganic composition, prevent the inclusion of bubbles, and provide excellent defoaming properties, which contribute to improving the final strength.

[0017] [7] The method according to any one of [1] to [6], wherein the hydraulic inorganic composition is a cement as defined in JIS R 5210:2019, JIS R 5211:2019, JIS R 5212:2019, JIS R 5213:2019 or JIS R 5214:2019, or a mortar or concrete containing the cement. Such a cement, mortar or concrete exhibits excellent strength after hardening even when combined with a gelling agent having the above-mentioned characteristics.

[0018] [8] A thermosensitive gelling agent for a water-curable inorganic composition to be additively manufactured, comprising: The dispersion is composed of an aqueous medium, a carboxyl group-containing polymer (not including a group represented by -NHCHO-) containing a carboxyl group-containing monomer as a monomer unit dispersed in the aqueous medium, and a surfactant (although the carboxyl group in the dispersion may form a salt), A thermosensitive gelling agent, comprising, as the surfactant, 0.5 to 3 parts by mass of an anionic surfactant per 100 parts by mass of the carboxy group-containing polymer, and 1 to 8 parts by mass of a nonionic surfactant having a cloud point of 30 to 90° C. per 100 parts by mass of the carboxy group-containing polymer. When the carboxy groups in the dispersion form a salt, it is sufficient that a part or all of the carboxy groups form a salt, and examples of the salt include alkali metal salts such as sodium salts and calcium salts, alkaline earth metal salts, and ammonium salts.

[0019] The present inventors have discovered that a thermosensitive gelling agent that can be mixed with a water-setting inorganic composition and quickly rendered non-fluid by heating is effective as a material to be added to water-setting inorganic compositions such as cement and mortar to prevent sagging and crushing, and that the thermosensitive gelling agent must have good miscibility with the water-setting inorganic composition. However, when the thermosensitive gelling agent is used in additive manufacturing such as 3D printing and solidification is promoted by heating, the defoaming property of the thermosensitive gelling agent is extremely important.

[0020] In other words, if the water-curable inorganic composition contains air bubbles, when it is heated to gel it, the air bubbles expand rapidly, causing the entire composition to swell like a sponge, and if it is solidified in this state, the strength of the model will be greatly reduced. In additive manufacturing such as 3D printing, it is difficult to insert rebar into the model, so preventing air bubbles is extremely important.

[0021] The thermosensitive gelling agent described in [8] has excellent defoaming properties, and even if foaming occurs, most of the foam disappears soon (for example, in about 10 minutes). In addition, when it is contained in a water-curable inorganic composition used for additive manufacturing such as 3D printing, it has excellent miscibility. And, when it is mixed with the water-curable inorganic composition and heated, it is quickly defluidized (gelled). It is considered that when the water-curable inorganic composition is heated, the cation concentration (for example, calcium ion concentration) increases, and the anionic surfactant is deactivated. In addition, when the water-curable inorganic composition is heated to a temperature above the cloud point of the nonionic surfactant, the surfactant is deactivated, and gelation occurs. When gelation occurs, the sagging and crushing of the water-curable inorganic composition during 3D printing (additive manufacturing) is reduced to a level sufficient for practical use.

[0022] [9] The thermosensitive gelling agent according to [8], wherein the carboxy group-containing polymer contains an ethylenically unsaturated carboxylic acid monomer as the carboxy group-containing monomer and an aliphatic conjugated diene monomer as monomer units.

[0023]

[10] The thermosensitive gelling agent according to [9], further comprising at least one monomer unit selected from the group consisting of an alkenyl aromatic monomer, a vinyl cyanide monomer, an unsaturated carboxylic acid alkyl ester monomer, a hydroxyalkyl group-containing unsaturated monomer, and an unsaturated carboxylic acid amide monomer.

[0024] The carboxyl group-containing polymer composed of the monomer described in [9] or

[10] can be easily produced by emulsion polymerization, and when mixed with a water-curable inorganic composition to obtain a composition for additive manufacturing, the composition has excellent physical properties when cured, and also has excellent defoaming properties and miscibility.

[0025]

[11] The thermosensitive gelling agent according to any one of [8] to

[10] , wherein the anionic surfactant is a sulfonic acid-based anionic surfactant.

[0026]

[12] The thermosensitive gelling agent according to any one of [8] to

[11] , wherein the nonionic surfactant is a polyoxyalkylene alkyl ether and / or a polyoxyalkylene aryl ether.

[0027]

[13] The thermosensitive gelling agent according to any one of [8] to

[12] , wherein the nonionic surfactant has an HLB value of 11 to 15. Note that within this range, a lower HLB value tends to provide better defoaming properties.

[0028]

[14] A composition for layered manufacturing, comprising the thermosensitive gelling agent according to any one of [8] to

[13] and a water-curable inorganic composition. This composition for layered manufacturing can be used for layered manufacturing such as 3D printing, and since gelation occurs due to heating, the occurrence of sagging or crushing is suppressed.

[0029]

[15] The composition for additive manufacturing according to

[14] , wherein the hydraulic inorganic composition is a cement defined in JIS R 5210:2019, JIS R 5211:2019, JIS R 5212:2019, JIS R 5213:2019 or JIS R 5214:2019, or a mortar or concrete containing the cement.

[0030] By using the composition for layered modeling according to

[14] or

[15] , it is possible to provide a method for manufacturing a modeled object by layered modeling of a water-setting inorganic composition, in which the water-setting inorganic composition contains a thermosensitive gelling agent according to any one of [8] to

[13] , and the layered product is heated during and / or after layering to gel the thermosensitive gelling agent. Effect of the Invention

[0031] According to the present invention, it is possible to provide a method for manufacturing an additively manufactured object by additive manufacturing such as 3D printing, in which the occurrence of sagging or crushing of a water-setting inorganic composition during stacking is reduced to a level sufficient for practical use.

[0032] The present invention also makes it possible to provide a material to be contained in a water-setting inorganic composition used for additive manufacturing such as 3D printing, which has excellent defoaming properties and is highly miscible with the water-setting inorganic composition, and which is quickly rendered non-fluid when mixed with the water-setting inorganic composition and heated, and a composition for additive manufacturing using this material. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0033] The method for manufacturing an layered object according to the embodiment involves layering a composition for layered manufacturing containing a water-setting inorganic composition and a thermosensitive gelling agent, and rendering the composition for layered manufacturing non-fluid by heating during and / or after layering, wherein (i) the thermosensitive gelling agent contains an aqueous medium, a polymer dispersed in the aqueous medium, and a nonionic surfactant having a cloud point of 30°C or higher and an HLB value of 10 to 18, and (ii) the thermosensitive gelling agent is a blend of the following (1) to (5) [(1) to (5) are calculated on a solids basis, and the water content is 18.5% by mass]. ] is introduced into a cylindrical container with an open top in an amount of 100 g, and after degassing, the penetration resistance (needle diameter=2 mm, piercing speed=30 mm / min, piercing depth=10 mm) is measured, where a0 is the value at 17±3°C immediately after degassing, and a1 is the value at 17±3°C after microwave heating at 600 W for 30 seconds after degassing, and the a1 / a0 value is 15 or more. Note that degassing can be performed by vibrating the cylindrical container containing the blend of (1) to (5) so that no visible bubbles are generated in the blend at least at the opening of the cylindrical container. (1) Mortar 100 parts by weight (2) Sodium gluconate 1 part by mass (3) Carboxymethyl cellulose 0.5 parts by mass (4) Silicone-based defoaming agent 0.1 parts by mass (5) 4.5 parts by mass of the heat-sensitive gelling agent

[0034] The above embodiment may be referred to as "first embodiment." A nonionic surfactant having a cloud point of 30° C. or higher and an HLB value of 10 to 18 may be referred to as "nonionic surfactant 1," and a nonionic surfactant other than nonionic surfactant 1 may be referred to as "nonionic surfactant 2." An example of the aqueous medium is water, which may contain a water-soluble component (e.g., ethanol, glycerol, etc.).

[0035] The first embodiment will be described in detail below.

[0036] The thermosensitive gelling agent may be provided as a dispersion (emulsion, latex, etc.) containing the above-mentioned polymer and a nonionic surfactant. In this case, the above-mentioned polymer may be obtained by emulsifying or dispersing polymerizing the polymer with a nonionic surfactant or a nonionic surfactant and another surfactant (anionic surfactant, cationic surfactant, etc.) (Method A), or the above-mentioned polymer may be emulsified or dispersing polymerized with the above-mentioned other surfactant, and the nonionic surfactant may be added later (Method B). Alternatively, the nonionic surfactant may be added to the product obtained by Method A (Method C). The nonionic surfactant used in Methods A, B, and C may consist of only Nonionic Surfactant 1, or may be a mixture of Nonionic Surfactant 1 and Nonionic Surfactant 2.

[0037] As the polymer dispersed in the aqueous medium, a polymer having a glass transition temperature (sometimes abbreviated as "Tg") of -50 to 35°C measured at a heating rate of 10°C / min by a differential scanning calorimeter can be used. Tg can also be -45 to 30°C or -40 to 30°C. As the polymer dispersed in the aqueous medium, a polymer having an elastic modulus (Young's modulus) of 1 to 10 MPa at 25°C can also be used. The Young's modulus can be measured in accordance with JIS K 6251:2017. As the polymer dispersed in the aqueous medium, a polymer having a Tg of -50 to 35°C and a Young's modulus of 1 to 10 MPa is suitable, and the polymer may be crosslinked or uncrosslinked. Such a polymer has properties as an elastomer.

[0038] As the polymer dispersed in the aqueous medium, a homopolymer or copolymer of a conjugated diene (sometimes abbreviated as a "conjugated diene-based polymer") and a homopolymer or copolymer of an ethylenically unsaturated monomer (sometimes abbreviated as a "vinyl-based polymer") are effective.

[0039] The "conjugated diene polymer" used in the first embodiment may be at least one selected from the group consisting of styrene-butadiene rubber (hereinafter, sometimes abbreviated as "SBR", and modified products such as carboxyl modification are also included in SBR), methyl methacrylate-butadiene rubber (hereinafter, sometimes abbreviated as "MBR", and modified products such as carboxyl modification are also included in MBR), acrylonitrile-butadiene rubber (hereinafter, sometimes abbreviated as "NBR", and modified products such as carboxyl modification are also included in NBR), styrene-butadiene-vinylpyridine rubber (hereinafter, sometimes abbreviated as "VP", and modified products such as carboxyl modification are also included in VP), butadiene rubber (hereinafter, sometimes abbreviated as "BR", and modified products such as carboxyl modification are also included in BR), and natural rubber (hereinafter, sometimes abbreviated as "NR", and polyisoprene is also included in NR).

[0040] When the conjugated diene polymer is provided as a dispersion, it is provided as at least one type selected from the group consisting of a styrene-butadiene rubber emulsion (styrene-butadiene rubber latex), a methyl methacrylate-butadiene rubber emulsion (methyl methacrylate-butadiene rubber emulsion latex), an acrylonitrile-butadiene rubber emulsion (acrylonitrile-butadiene rubber latex), a styrene-butadiene-vinylpyridine rubber emulsion (styrene-butadiene-vinylpyridine rubber latex), a butadiene rubber emulsion (butadiene rubber latex) and a natural rubber emulsion (natural rubber latex).

[0041] Examples of the conjugated diene polymer include copolymers of an aliphatic conjugated diene monomer (e.g., 10 to 80% by mass based on the total monomers), an ethylenically unsaturated carboxylic acid monomer (e.g., 0.5 to 15% by mass based on the total monomers), and other copolymerizable monomers (e.g., 5 to 89.5% by mass based on the total monomers).

[0042] Examples of the aliphatic conjugated diene monomer include 1,3-butadiene, 2-methyl-1,3-butadiene, 2,3-dimethyl-1,3-butadiene, 2-chloro-1,3-butadiene, substituted linear conjugated pentadiene, substituted and side-chain conjugated hexadienes, etc., and these can be used alone or in combination. In view of the ease of industrial production, availability, and cost, it is particularly preferable to use 1,3-butadiene.

[0043] As the ethylenically unsaturated carboxylic acid monomer, one or more monobasic acids or dibasic acids (anhydrides) such as itaconic acid, acrylic acid, methacrylic acid, crotonic acid, maleic acid, fumaric acid, etc. can be used.

[0044] Examples of other monomers include alkenyl aromatic monomers, vinyl cyanide monomers, unsaturated carboxylic acid alkyl ester monomers, unsaturated monomers containing a hydroxyalkyl group, and unsaturated carboxylic acid amide monomers.

[0045] Examples of alkenyl aromatic monomers include styrene, α-methylstyrene, methyl-α-methylstyrene, vinyltoluene, divinylbenzene, etc. These can be used alone or in combination of two or more. Styrene is particularly preferred from the viewpoints of industrial ease of production, availability, and cost.

[0046] Examples of vinyl cyanide monomers include acrylonitrile, methacrylonitrile, α-chloroacrylonitrile, α-ethylacrylonitrile, etc. These monomers may be used alone or in combination of two or more. In view of ease of industrial production, availability, and cost, it is particularly preferable to use acrylonitrile or methacrylonitrile.

[0047] Examples of the unsaturated carboxylic acid alkyl ester monomer include methyl acrylate, methyl methacrylate, ethyl acrylate, ethyl methacrylate, butyl acrylate, glycidyl methacrylate, dimethyl fumarate, diethyl fumarate, dimethyl maleate, diethyl maleate, dimethyl itaconate, monomethyl fumarate, monoethyl fumarate, and 2-ethylhexyl acrylate. These can be used alone or in combination of two or more. In view of the ease of industrial production, availability, and cost, it is particularly preferable to use methyl methacrylate.

[0048] Examples of unsaturated monomers containing a hydroxyalkyl group include β-hydroxyethyl acrylate, β-hydroxyethyl methacrylate, hydroxypropyl acrylate, hydroxypropyl methacrylate, hydroxybutyl acrylate, hydroxybutyl methacrylate, 3-chloro-2-hydroxypropyl methacrylate, di-(ethylene glycol) maleate, di-(ethylene glycol) itaconate, 2-hydroxyethyl maleate, bis(2-hydroxyethyl) maleate, 2-hydroxyethyl methyl fumarate, etc. These may be used alone or in combination of two or more.

[0049] Examples of the unsaturated carboxylic acid amide monomer include acrylamide, methacrylamide, N-methylol acrylamide, N-methylol methacrylamide, N,N-dimethyl acrylamide, etc. These can be used alone or in combination of two or more.

[0050] In addition to the above monomers, any of the monomers used in normal emulsion polymerization, such as ethylene, propylene, vinyl acetate, vinyl propionate, vinyl chloride, and vinylidene chloride, can be used.

[0051] Such a conjugated diene polymer may have a carboxy group, and in that case, the ratio of the carboxy group-containing monomer to the total monomers constituting the polymer is preferably 0.1 to 5.0 mass%, and may be 0.5 to 3.5 mass%, or 1.0 to 3.0 mass%.

[0052] As used in the first embodiment, the "vinyl-based polymer" includes an acrylic polymer and / or an ethylene-based copolymer.

[0053] The acrylic polymer means a polymer containing, as a monomer unit, a monomer having a (meth)acryloyl group or a monomer copolymerizable with said monomer (excluding ethylene copolymers as defined below). Here, (meth)acryloyl means acryloyl or methacryloyl, and the same applies to similar compounds.

[0054] The acrylic polymer may be provided as an aqueous dispersion, in which case the aqueous dispersion may be obtained by emulsion polymerization of the raw material monomers. The aqueous dispersion of the acrylic polymer may be a forced emulsion type aqueous dispersion in which a solution of the acrylic polymer in an organic solvent is dispersed in water and at least a part of the organic solvent is removed.

[0055] The acrylic polymer may be an acrylic rubber having elastomer properties, and preferably has a Tg of -40 to 30°C as defined above.

[0056] The acrylic polymer is a copolymer of a low Tg monomer (meaning a monomer that, when homopolymerized, has a Tg of 20° C. or less, preferably 0° C. or less, as defined above) and a high Tg monomer (meaning a monomer that, when homopolymerized, has a Tg of 50° C. or more, as defined above), and an acrylic polymer having a Tg of −40 to 30° C. as a copolymer, as defined above, is preferred. At least one of the low Tg monomer and the high Tg monomer has the above-mentioned (meth)acryloyl group.

[0057] The low Tg monomer includes an acrylic acid ester of a linear or branched non-tertiary alcohol having 1 to 12 carbon atoms, and the number of carbon atoms of the non-tertiary alcohol may be 4 to 12 or 4 to 8. Examples of such non-tertiary alcohol include 1-butanol, 2-butanol, 1-pentanol, 2-pentanol, 3-pentanol, 2-methyl-1-butanol, 3-methyl-1-butanol, 1-hexanol, 2-hexanol, 2-methyl-1-pentanol, 3-methyl-1-pentanol, 2-ethyl-1-butanol, 3,5,5-trimethyl-1-hexanol, 3-heptanol, 1-octanol, 2-octanol, isooctyl alcohol, 2-ethyl-1-hexanol, 1-decanol, 2-propylheptanol, 1-dodecanol, 1-tridecanol, and 1-tetradecanol.

[0058] That is, examples of low Tg monomers include n-butyl acrylate, isobutyl acrylate, hexyl acrylate, 2-ethyl-hexyl acrylate, isooctyl acrylate, caprolactone acrylate, isodecyl acrylate, tridecyl acrylate, lauryl methacrylate, methoxy-polyethylene glycol-monomethacrylate, lauryl acrylate, ethoxy-ethoxyethyl acrylate, and ethoxylated-nonyl acrylate.

[0059] Examples of high Tg monomers include methacrylic acid esters of linear or branched non-tertiary alcohols having 1 to 2 or 6 to 18 carbon atoms, and acrylic acid esters of cyclic non-tertiary alcohols having 6 to 18 carbon atoms.

[0060] That is, examples of high Tg monomers include methyl methacrylate, ethyl methacrylate, stearyl methacrylate, phenyl methacrylate, cyclohexyl methacrylate, isobornyl acrylate, isobornyl methacrylate, benzyl methacrylate, 3,3,5-trimethylcyclohexyl acrylate, cyclohexyl acrylate, and propyl methacrylate.

[0061] In addition to the above, examples of high Tg monomers include styrene, alkylstyrenes (methylstyrene, etc.), (meth)acrylic acid, (meth)acrylamide, N-alkylacrylamides (N-octylacrylamide, etc.), N,N-dialkylacrylamides (N,N-dimethylacrylamide, etc.), (meth)acrylonitrile, etc.

[0062] The ethylene-based copolymer is a copolymer of ethylene and an ethylenically unsaturated monomer, and examples thereof include ethylene vinyl acetate, ethylene ethyl acrylate, ethylene vinyl ether, and ethylene-α-olefin copolymer.

[0063] The ethylene copolymer may be provided as an aqueous dispersion, and in this case, the aqueous dispersion may be obtained by emulsion polymerization of the raw material monomers.

[0064] As the ethylene copolymer, an ethylene copolymer having properties as an elastomer can be used. As such an ethylene copolymer, one having a Tg of -40 to 30°C as defined above is preferable.

[0065] In the first embodiment, for the above blend of (1) to (5) [(1) to (5) are calculated as solid contents, and the moisture content is 18.5% by mass], a gelling agent is used such that the a1 / a0 value (30 second value) is 15 or more, using a1 after microwave heating at 600 W for 30 seconds.

[0066] The value of a1 / a0 (30-second value) may be 15 to 350, and may further be 19 to 330. In addition to the value of a1 / a0 (30-second value) being 15 or more using a1 after 30 seconds of microwave heating at 600 W, the value of a2 / a0 (50-second value) using a2 after 50 seconds of microwave heating at 600 W may be 30 or more. The value of a2 / a0 (50-second value) may be 30 to 530, or 35 to 530. Furthermore, the value of a3 / a0 (70-second value) using a3 after 70 seconds of microwave heating at 600 W may be 60 or more. The value of a3 / a0 (70-second value) may be 60 to 900, or 60 to 880. In other words, the value of a1 / a0 (30 second value) may be 15 or more and the value of a2 / a0 (50 second value) may be 30 or more, the value of a1 / a0 (30 second value) may be 15 or more and the value of a3 / a0 (70 second value) may be 60 or more, or the value of a1 / a0 (30 second value) may be 15 or more and the value of a2 / a0 (50 second value) may be 30 or more and the value of a3 / a0 (70 second value) may be 60 or more.

[0067] As the (1) mortar contained in the mixture of (1) to (5), "Quick Drying Cement" manufactured by Katei Kagaku Co., Ltd. (https: / / www.monotaro.com / g / 00269134 / ?tq=%E9%80%9F%E4%B9%BE%20%E3%82%BB%E3%83%A1%E3%83%B3%E3%83%88) or its equivalent is used. As the (4) silicone-based defoaming agent contained in the mixture of (1) to (5), an emulsion-type defoaming agent containing α-(octadecanoyloxy)-ω-hydroxy-poly(oxyethylene), glyceryl monostearate, silicon dioxide, and octamethylcyclotetrasiloxane with an active ingredient of 28% (for example, "DOWSIL TM SH 5507 Emulsion" or its equivalent.

[0068] The thermosensitive gelling agent used in the first embodiment contains a nonionic surfactant with a cloud point of 30° C. or higher and an HLB value of 10 to 18. Here, the cloud point means the cloud point defined in JIS K 3211:1990, and can be measured, for example, in a 2% by mass water dilution. The HLB value is a value that indicates the degree of affinity of a surfactant to water and oil (organic compounds insoluble in water), and can be determined by the Griffin method (HLB value=20×sum of formula weights of hydrophilic parts / molecular weight).

[0069] The cloud point of the nonionic surfactant may be 30-100°C, 30-98°C, or 40-98°C, and the HLB value of the nonionic surfactant may be 11-17, or 12-17.

[0070] As the nonionic surfactant, polyoxyethylene alkyl ether and / or polyoxyethylene aryl ether can be used. The polyoxyethylene alkyl ether (i) is preferably one in which the alkyl portion is an alkyl having 12 to 20 carbon atoms, and the polyoxyethylene aryl ether (ii) is preferably one in which the aryl portion is an aryl in which at least one hydrogen atom is substituted with an aralkyl. Examples of the nonionic surfactant (i) include polyoxyethylene lauryl ether, polyoxyethylene cetyl ether, polyoxyethylene stearyl ether, and polyoxyethylene octyldodecyl ether. Examples of the nonionic surfactant (ii) include polyoxyethylene distyrenated phenyl ether and polyoxyethylene tribenzyl phenyl ether.

[0071] In the first embodiment, the amount of the nonionic surfactant 1 relative to 100 parts by mass of the polymer can be 1 to 12 parts by mass, 3 to 10 parts by mass, or 5 to 8 parts by mass.

[0072] As the hydraulic inorganic composition in the first embodiment, portland cement as defined in JIS R 5210:2019, blast furnace cement as defined in JIS R 5211:2019, silica cement as defined in JIS R 5212:2019, fly ash cement as defined in JIS R 5213:2019, or ecocement as defined in JIS R 5214:2019, or mortar or concrete containing these cements can be used.

[0073] In the first embodiment, the heat-sensitive gelling agent can be used in an amount of 1 to 20 parts by mass, 3 to 15 parts by mass, or 3 to 10 parts by mass relative to 100 parts by mass (solid content equivalent) of the water-setting inorganic composition.

[0074] In the first embodiment, the thermosensitive gelling agent may contain additives such as antifoaming agents, dispersants, antioxidants, viscosity adjusters, pH control agents, preservatives, electrolytes, fillers, plasticizers, starch, coloring pigments, etc., within the range that does not affect the effects of the present invention. The solid content concentration of the thermosensitive gelling agent in the first embodiment may be, for example, 30 to 60% by mass, or may be 40 to 50% by mass.

[0075] The thermosensitive gelling agent according to the embodiment is a thermosensitive gelling agent for a water-curable inorganic composition to be layered and manufactured, and is composed of an aqueous medium, a carboxyl group-containing polymer (not including a group represented by -NHCHO-) containing a carboxyl group-containing monomer as a monomer unit dispersed in the aqueous medium, and a dispersion (in which the carboxyl group may form a salt) containing a surfactant, the proportion of the carboxyl group-containing monomer relative to the total monomers constituting the carboxyl group-containing polymer being 0.1 to 5.0 mass%, and the surfactant contains 0.5 to 3 parts by mass of an anionic surfactant relative to 100 parts by mass of the carboxyl group-containing polymer, and 1 to 8 parts by mass of a nonionic surfactant having a cloud point of 30 to 90°C relative to 100 parts by mass of the carboxyl group-containing polymer. This embodiment may be referred to as the "second embodiment".

[0076] The second embodiment will be described in detail below.

[0077] The carboxyl group-containing polymer is dispersed in an aqueous medium, and the anionic surfactant and the nonionic surfactant are usually dissolved in the aqueous medium and have the function of emulsifying and dispersing the carboxyl group-containing polymer in the aqueous medium. The aqueous medium may be water, and the water may contain a water-soluble component (e.g., ethanol, glycerol, etc.).

[0078] A carboxyl group-containing polymer has a carboxyl group on the side chain and / or at the end of the polymer molecule, but does not have a group represented by -NHCH2O-. Examples of the group represented by -NHCH2O- include -NHCH2OH and -NHCH2OC n H 2n+1 (n is a number from 1 to 4).

[0079] The carboxyl group-containing polymer is not limited in terms of the skeleton of the main chain, as long as it has a carboxyl group. The main chain may have continuous carbon atoms (e.g., vinyl polymer), or may have a urethane bond (polyurethane), an ester bond (polyester), an ether bond (polyether), or a combination thereof.

[0080] The water-curable inorganic composition containing a carboxyl group-containing polymer is heated for gelation during additive manufacturing. The minimum film-forming temperature (MFT) of the carboxyl group-containing polymer is arbitrary, but considering the binder properties of the water-curable inorganic composition, the MFT is preferably 0 to 50°C, and may be 5 to 40°C. The value of the glass transition temperature (Tg) is generally linked to the MFT, but the Tg is preferably -20 to 50°C, and may be -15 to 40°C.

[0081] The carboxyl group-containing polymer can be obtained by polymerization of monomers, and the ratio of the carboxyl group-containing monomer to the total monomers constituting the carboxyl group-containing polymer is 0.1 to 5.0 mass%. The ratio of the carboxyl group-containing monomer may be 0.5 to 3.5 mass%, or 1.0 to 3.0 mass%. If the ratio of the carboxyl group-containing monomer is out of the range of 0.1 to 5.0 mass%, the miscibility with the water-curable inorganic composition becomes poor. If the ratio of the carboxyl group-containing monomer is less than 0.1 mass%, the miscibility with the water-curable inorganic composition can be compensated for by increasing the amount of the anionic surfactant, but in that case, the defoaming property is poor, which is not preferable.

[0082] The carboxyl group-containing polymer includes a polymer containing an ethylenically unsaturated carboxylic acid monomer (corresponding to a carboxyl group-containing monomer) and an aliphatic conjugated diene monomer as a monomer unit. The ethylenically unsaturated carboxylic acid monomer includes monobasic acids or dibasic acids (which may be in the form of anhydrides) such as acrylic acid, methacrylic acid, crotonic acid, maleic acid, fumaric acid, and itaconic acid, and one or more of these can be used. The aliphatic conjugated diene monomer includes 1,3-butadiene, 2-methyl-1,3-butadiene, 2,3-dimethyl-1,3-butadiene, 2-chloro-1,3-butadiene, substituted linear conjugated pentadiene, substituted and side chain conjugated hexadienes, and the like, and one or more of these can be used. The use of 1,3-butadiene is particularly preferred from the viewpoints of industrial ease of production, availability, and cost.

[0083] The carboxyl group-containing polymer may contain, in addition to the ethylenically unsaturated carboxylic acid monomer and the aliphatic conjugated diene monomer, at least one monomer unit selected from the group consisting of an alkenyl aromatic monomer, a vinyl cyanide monomer, an unsaturated carboxylic acid alkyl ester monomer, a hydroxyalkyl group-containing unsaturated monomer, and an unsaturated carboxylic acid amide monomer.

[0084] Examples of alkenyl aromatic monomers include styrene, α-methylstyrene, methyl-α-methylstyrene, vinyltoluene, divinylbenzene, etc. These can be used alone or in combination of two or more. Styrene is particularly preferred from the viewpoints of industrial ease of production, availability, and cost.

[0085] Examples of vinyl cyanide monomers include acrylonitrile, methacrylonitrile, α-chloroacrylonitrile, and α-ethylacrylonitrile. These monomers may be used alone or in combination of two or more. In view of ease of industrial production, availability, and cost, it is particularly preferable to use acrylonitrile or methacrylonitrile.

[0086] Examples of the unsaturated carboxylic acid alkyl ester monomer include methyl acrylate, methyl methacrylate, ethyl acrylate, ethyl methacrylate, butyl acrylate, glycidyl methacrylate, dimethyl fumarate, diethyl fumarate, dimethyl maleate, diethyl maleate, dimethyl itaconate, monomethyl fumarate, monoethyl fumarate, and 2-ethylhexyl acrylate. These can be used alone or in combination of two or more. In view of the ease of industrial production, availability, and cost, it is particularly preferable to use methyl methacrylate.

[0087] Examples of unsaturated monomers containing a hydroxyalkyl group include β-hydroxyethyl acrylate, β-hydroxyethyl methacrylate, hydroxypropyl acrylate, hydroxypropyl methacrylate, hydroxybutyl acrylate, hydroxybutyl methacrylate, 3-chloro-2-hydroxypropyl methacrylate, di-(ethylene glycol) maleate, di-(ethylene glycol) itaconate, 2-hydroxyethyl maleate, bis(2-hydroxyethyl) maleate, 2-hydroxyethyl methyl fumarate, etc. These may be used alone or in combination of two or more.

[0088] Examples of the unsaturated carboxylic acid amide monomer include acrylamide, methacrylamide, N-methylol acrylamide, N-methylol methacrylamide, N,N-dimethyl acrylamide, etc. These can be used alone or in combination of two or more.

[0089] In addition to the above monomers, any of the monomers used in normal emulsion polymerization, such as ethylene, propylene, vinyl acetate, vinyl propionate, vinyl chloride, and vinylidene chloride, can be used.

[0090] In the second embodiment, the carboxyl group-containing polymer may be provided in the form of a dispersion (emulsion, latex, suspension, etc.) in which the polymer is dispersed in an aqueous medium. The thermosensitive gelling agent as a whole contains 0.5 to 3 parts by mass of an anionic surfactant per 100 parts by mass of the carboxyl group-containing polymer. When the carboxyl group-containing polymer is provided as a dispersion, the dispersion may contain 0.5 to 3 parts by mass of an anionic surfactant per 100 parts by mass of the carboxyl group-containing polymer. Alternatively, a dispersion containing less than 0.5 to 3 parts by mass of an anionic surfactant may be prepared, and the anionic surfactant may be added later when preparing the thermosensitive gelling agent so that the total amount is 0.5 to 3 parts by mass per 100 parts by mass of the carboxyl group-containing polymer.

[0091] In the second embodiment, the thermosensitive gelling agent as a whole contains 1 to 8 parts by mass of a nonionic surfactant with a cloud point of 30 to 90 ° C. per 100 parts by mass of the carboxyl group-containing polymer, but when the carboxyl group-containing polymer is provided as a dispersion, the dispersion may contain 1 to 8 parts by mass of a nonionic surfactant per 100 parts by mass of the carboxyl group-containing polymer. Alternatively, a dispersion containing less than 1 to 8 parts by mass of a nonionic surfactant (which may be a dispersion containing no nonionic surfactant) may be prepared, and the nonionic surfactant may be added later so that the total amount is 1 to 8 parts by mass per 100 parts by mass of the carboxyl group-containing polymer when preparing the thermosensitive gelling agent. However, since the nonionic surfactant has a cloud point of 30 to 90 ° C., when the nonionic surfactant is added to the system during the synthesis or preparation of the dispersion, only a nonionic surfactant having a cloud point higher than the temperature for synthesis or preparation is added.

[0092] When the carboxyl group-containing polymer is provided as a dispersion, examples of the dispersion include styrene-butadiene latex (containing styrene, butadiene, and a carboxyl group-containing monomer as monomer components), chloroprene latex (containing chloroprene and a carboxyl group-containing monomer as monomer components), methyl methacrylate-butadiene latex (containing methyl methacrylate, butadiene, and a carboxyl group-containing monomer as monomer components), nitrile rubber latex (containing acrylonitrile, butadiene, and a carboxyl group-containing monomer as monomer components), polybutadiene latex (containing butadiene and a carboxyl group-containing monomer as monomer components), and 2-vinylpyridine-styrene-butadiene latex (containing 2-vinylpyridine, styrene, butadiene, and a carboxyl group-containing monomer as monomer components).

[0093] Further usable dispersions include acrylate resin emulsions (containing, as monomer components, (meth)acrylate and carboxyl group-containing monomers), styrene-acrylate resin emulsions (containing, as monomer components, styrene, (meth)acrylate and carboxyl group-containing monomers), ethylene-vinyl acetate resin emulsions (containing, as monomer components, ethylene, vinyl acetate and carboxyl group-containing monomers), ethylene-vinyl acetate-acrylate copolymer resin emulsions (containing, as monomer components, ethylene, vinyl acetate, (meth)acrylate and carboxyl group-containing monomers), etc.

[0094] The dispersion also includes polyurethane emulsions (emulsions of polyurethanes having carboxy groups at the side chains or ends) and polyester emulsions (emulsions of polyesters having carboxy groups at the side chains or ends). In these emulsions, carboxy groups are introduced into the side chains or ends of the polyurethane or polyester.

[0095] When the carboxyl group-containing polymer is provided as a dispersion, its solid content is usually 30 to 60% by mass, and may be 40 to 50% by mass. The average particle size of the carboxyl group-containing polymer (the average particle size is measured by dyeing the copolymer latex with osmium tetroxide, taking a transmission electron microscope photograph, measuring the diameters of 1000 particles using an image analysis processing device (device name: IP-1000PC manufactured by Asahi Kasei Corporation), and averaging the number of particles) is arbitrary, and may be 80 to 250 nm, 100 to 200 nm, or 120 to 180 nm.

[0096] In the second embodiment, the thermosensitive gelling agent contains a surfactant in addition to the above-mentioned aqueous medium and carboxyl group-containing polymer, and the surfactant contains 0.5 to 3 parts by mass of an anionic surfactant per 100 parts by mass of the carboxyl group-containing polymer, and 1 to 8 parts by mass of a nonionic surfactant having a cloud point of 30 to 90° C. per 100 parts by mass of the carboxyl group-containing polymer. Although the inclusion of other components as surface active agents is not prohibited, it is preferable that the gelling agent is composed only of these components since they have a large effect on thermosensitive gelation.

[0097] Examples of the anionic surfactant include alkyl sulfate ester anionic surfactants such as sodium lauryl sulfate, triethanolamine lauryl sulfate, and ammonium lauryl sulfate; polyoxyethylene alkyl ether sulfate salt anionic surfactants such as sodium polyoxyethylene lauryl ether sulfate and sodium polyoxyethylene polyoxypropylene alkyl ether sulfate; sulfonic acid anionic surfactants such as sodium dodecylbenzenesulfonate, sodium alkylnaphthalenesulfonate, sodium dialkylsulfosuccinate, alkylmonoamide disodium sulfosuccinate, sodium alkyldiphenyletherdisulfonate, and sodium alkanesulfonate; and carboxylic acid surfactants such as rosin acid salts and fatty acid salts. Among these, sulfonic acid anionic surfactants are preferred.

[0098] The content of the anionic surfactant is 0.5 to 3 parts by mass, but may be 1.0 to 2.5 parts by mass, or 1.0 to 2.0 parts by mass, based on 100 parts by mass of the carboxyl group-containing polymer. If the content of the anionic surfactant is less than 0.5 parts by mass, the miscibility becomes poor, and if it exceeds 3 parts by mass, the defoaming property decreases and heat-sensitive gelation becomes difficult.

[0099] Examples of the nonionic surfactant include polyoxyalkylene alkyl ether-based nonionic surfactants such as polyoxyethylene lauryl ether, polyoxyethylene cetyl ether, polyoxyethylene stearyl ether, polyoxyethylene oleyl ether, polyoxyethylene myristyl ether, and polyoxyethylene octyldodecyl ether; and polyoxyalkylene aryl ether-based nonionic surfactants such as polyoxyethylene distyrenated phenyl ether and polyoxyethylene tribenzyl phenyl ether.

[0100] The content of the nonionic surfactant is 1 to 8 parts by mass, but may be 2.0 to 7.5 parts by mass, or 3.0 to 7.0 parts by mass, based on 100 parts by mass of the carboxyl group-containing polymer. If the content of the nonionic surfactant is less than 1 part by mass, miscibility becomes poor, and if it exceeds 8 parts by mass, heat-sensitive gelation becomes difficult and defoaming properties also decrease.

[0101] In the second embodiment, the cloud point of the nonionic surfactant is 30 to 90°C. The cloud point may be 30 to 85°C, 40 to 90°C, 40 to 85°C, 50 to 90°C, or 50 to 85°C. Since the cloud point of the nonionic surfactant correlates with the temperature of thermosensitive gelation, it is preferable to determine the cloud point of the nonionic surfactant to be used according to the temperature at which the water-curable inorganic composition to which the carboxyl group-containing polymer is added is layered. For example, in layered manufacturing outdoors at high temperatures (such as in summer), it is preferable to use a nonionic surfactant with a high-temperature cloud point such as 40 to 90°C or 50 to 90°C, and in layered manufacturing outdoors at low temperatures (such as in winter), it is preferable to use a nonionic surfactant with a low-temperature cloud point such as 30 to 80°C, 30 to 70°C, or 30 to 60°C.

[0102] In the second embodiment, the HLB value of the nonionic surfactant may be in the range of 11 to 15. The HLB value may be 12 to 14. As the HLB value increases, the defoaming property tends to decrease.

[0103] In the second embodiment, the thermosensitive gelling agent only needs to contain the above-mentioned aqueous medium, carboxyl group-containing polymer, and surfactant, and may contain additives such as antifoaming agents, dispersants, antioxidants, viscosity adjusters, pH preparations, preservatives, electrolytes, fillers, plasticizers, starch, coloring pigments, etc., within the range that does not affect the effects of the present invention. The solid content concentration of the thermosensitive gelling agent can be, for example, 30 to 60% by mass, or may be 40 to 50% by mass.

[0104] To obtain the thermosensitive gelling agent, the components may be mixed together. However, since the component contains a nonionic surfactant with a cloud point of 30 to 90°C, it is preferable to mix the components at a temperature below the cloud point of the nonionic surfactant.

[0105] A production example in which a carboxyl-containing polymer containing a carboxyl-containing monomer as a monomer unit is provided as a latex will be described below. In this case, the latex is obtained in a state in which the aqueous medium, the carboxyl-containing polymer, and the anionic surfactant required for the thermosensitive gelling agent are contained.

[0106] The latex can be produced by emulsion polymerization of a monomer component containing an ethylenically unsaturated carboxylic acid monomer, an aliphatic conjugated diene monomer, and other copolymerizable monomers in an aqueous medium together with a surfactant.

[0107] As the other copolymerizable monomer, at least one selected from the group consisting of alkenyl aromatic monomers, vinyl cyanide monomers, unsaturated carboxylic acid alkyl ester monomers, hydroxyalkyl group-containing unsaturated monomers, and unsaturated carboxylic acid amide monomers can be used. Specific examples of the monomers are as described above, and the above-mentioned anionic surfactants can be used as the surfactant.

[0108] Examples of the method for adding the monomer components and other components during emulsion polymerization include a lump-sum addition method, a divided addition method, a continuous addition method, and a power feed method. Among these, it is preferable to adopt a continuous addition method (hereinafter sometimes referred to as "continuous addition"). Furthermore, continuous addition may be performed multiple times.

[0109] The emulsion polymerization is usually carried out using a polymerization initiator, and a chain transfer agent may be used for the purpose of adjusting the molecular weight, etc.

[0110] Examples of the polymerization initiator include water-soluble polymerization initiators such as lithium persulfate, potassium persulfate, sodium persulfate, and ammonium persulfate; and oil-soluble polymerization initiators such as cumene hydroperoxide, benzoyl peroxide, t-butyl hydroperoxide, acetyl peroxide, diisopropylbenzene hydroperoxide, and 1,1,3,3-tetramethylbutyl hydroperoxide. These can be used alone or in combination of two or more. In particular, it is preferable to select from potassium persulfate, sodium persulfate, cumene hydroperoxide, and t-butyl hydroperoxide. The amount of the polymerization initiator is not particularly limited, but is appropriately adjusted in consideration of the monomer composition, the pH of the polymerization reaction system, and the combination of other additives.

[0111] Examples of the chain transfer agent include alkyl mercaptans such as n-hexyl mercaptan, n-octyl mercaptan, t-octyl mercaptan, n-dodecyl mercaptan, t-dodecyl mercaptan, and n-stearyl mercaptan; xanthogen compounds such as dimethyl xanthogen disulfide and diisopropyl xanthogen disulfide; thiuram compounds such as tetramethylthiuram disulfide, tetraethylthiuram disulfide, and tetramethylthiuram monosulfide; 2,6-di-t-butyl-4-methylphenol, and and styrenated phenol; allyl compounds such as allyl alcohol; halogenated hydrocarbon compounds such as dichloromethane, dibromomethane, and carbon tetrabromide; vinyl ethers such as α-benzyloxystyrene, α-benzyloxyacrylonitrile, and α-benzyloxyacrylamide; and chain transfer agents such as triphenylethane, pentaphenylethane, acrolein, methacrolein, thioglycolic acid, thiomalic acid, 2-ethylhexyl thioglycolate, terpinolene, and α-methylstyrene dimer. These can be used alone or in combination of two or more. The amount of the chain transfer agent can be appropriately adjusted in consideration of the combination with other additives.

[0112] By mixing the above-mentioned thermosensitive gelling agent with the water-curable inorganic composition, a composition for layered modeling can be obtained and used for layered modeling such as 3D printing. Then, by heating the laminate during and / or after lamination, the thermosensitive gelling agent gels, and dripping or crushing of the composition for layered modeling is prevented. Heating may be performed, for example, so that the composition for layered modeling is heated to, for example, 40 to 100°C, or may be heated to 50 to 90°C. Any means for heating may be used, and examples of the heating include blowing hot air, irradiation with far-infrared rays, irradiation with a heating lamp, irradiation with microwaves, and blowing superheated steam.

[0113] In the second embodiment, the mixing ratio of the thermosensitive gelling agent to the water-curable inorganic composition can be, for example, 1 to 15 parts by mass, or may be 3 to 10 parts by mass, of the thermosensitive gelling agent calculated as solid content, per 100 parts by mass of the water-curable inorganic composition.

[0114] In the second embodiment, the hydraulic inorganic composition may be Portland cement as defined in JIS R 5210:2019, blast-furnace cement as defined in JIS R 5211:2019, silica cement as defined in JIS R 5212:2019, fly ash cement as defined in JIS R 5213:2019, or ecocement as defined in JIS R 5214:2019, or mortar or concrete containing these cements. EXAMPLES

[0115] The present invention will be described below with reference to examples, but the present invention is not limited to the following examples.

[0116] (Copolymer 1) In a pressure-resistant polymerization reactor, 95 parts by mass of polymerization water, 7.2 parts by mass of styrene, 2.3 parts by mass of 1,3-butadiene, 1.2 parts by mass of acrylic acid, 0.5 parts by mass of fumaric acid, 2 parts by mass of hydroxyethyl acrylate, 6 parts by mass of cyclohexene, 0.03 parts by mass of t-dodecyl mercaptan, 0.9 parts by mass of sodium dodecylbenzenesulfonate, and 0.3 parts by mass of sodium hydrogen carbonate were charged under a nitrogen atmosphere and stirring was started. 1 part by mass of potassium persulfate was added to raise the temperature inside the reactor to 70°C, and 19.5 parts by mass of styrene, 5.3 parts by mass of 1,3-butadiene, and 0.06 parts by mass of t-dodecyl mercaptan were continuously added over 150 minutes. Immediately after the addition of each monomer and other compounds was completed, 28.0 parts by mass of styrene, 34 parts by mass of 1,3-butadiene, and 0.36 parts by mass of t-dodecyl mercaptan were continuously added over 360 minutes. Thereafter, the temperature inside the polymerization reactor was raised to 85°C, and the polymerization was terminated when the polymerization conversion rate exceeded 98%. Next, the pH was adjusted to 7.0 with an aqueous sodium hydroxide solution, and steam distillation was carried out to remove unreacted monomers and other low boiling point compounds, thereby obtaining an emulsion containing copolymer 1.

[0117] (Copolymer 2) In a pressure-resistant polymerization reactor, 90 parts by mass of polymerization water, 0.16 parts by mass of sodium bicarbonate, 0.6 parts by mass of sodium dodecylbenzenesulfonate, 5.2 parts by mass of styrene, 2.7 parts by mass of 1,3-butadiene, 0.1 parts by mass of methyl methacrylate, 4 parts by mass of cyclohexene, 1.2 parts by mass of acrylic acid, 1 part by mass of hydroxyethyl acrylate, and 0.5 parts by mass of fumaric acid were charged under a nitrogen atmosphere and stirring was started. 1 part by mass of potassium persulfate was added to raise the temperature inside the reactor to 68 ° C., and 66.3 parts by mass of styrene, 23 parts by mass of 1,3-butadiene, 1 part by mass of t-dodecyl mercaptan, and 0.5 parts by mass of sodium dodecylbenzenesulfonate were continuously added over 450 minutes. Thereafter, the polymerization was terminated when the polymerization conversion rate exceeded 98%. Next, the pH was adjusted to 7.0 with an aqueous sodium hydroxide solution, and steam distillation was carried out to remove unreacted monomers and other low boiling point compounds, thereby obtaining an emulsion containing Copolymer 2.

[0118] (Copolymer 3) Cyatex NA-106 (acrylonitrile-butadiene latex) manufactured by Nippon A&L Co., Ltd. was used as copolymer 3.

[0119] (Copolymer 4) Copolymer 4 was prepared by adding 2.0 parts by mass of sodium dodecylbenzenesulfonate to J-9049 (styrene-butadiene latex with unmodified carboxylic acid) manufactured by Nippon A&L Co., Ltd.

[0120] (Copolymer 5) In a pressure-resistant polymerization reactor, 0.8 parts by mass of itaconic acid, 0.04 parts by mass of sodium alkyldiphenyletherdisulfonate, 0.24 parts by mass of turpentine oil, 1.4 parts by mass of sodium salt of β-naphthalenesulfonic acid formalin condensate, and 100 parts by mass of polymerization water were charged under a nitrogen atmosphere, stirring was started, and the temperature inside the reactor was raised to 67° C. When the temperature reached 67° C., 0.33 parts by mass of potassium persulfate was added, and immediately after the completion of the addition of potassium persulfate, 9.6 parts by mass of 1,3-butadiene, 14.2 parts by mass of methyl methacrylate, 0.06 parts by mass of t-dodecyl mercaptan, 0.012 parts by mass of turpentine oil, and 0.06 parts by mass of sodium salt of β-naphthalenesulfonic acid formalin condensate were continuously added over 100 minutes. After the addition was completed, the reaction was continued for 80 minutes, and then 20.4 parts by mass of 1,3-butadiene, 31.0 parts by mass of methyl methacrylate, 0.14 parts by mass of t-dodecyl mercaptan, 0.027 parts by mass of turpentine oil, and 0.14 parts by mass of sodium salt of β-naphthalenesulfonic acid formalin condensate were added continuously over 270 minutes. After the addition was completed, stirring was continued for 90 minutes, and then 0.2 parts by mass of itaconic acid, 0.01 parts by mass of turpentine oil, and 0.05 parts by mass of sodium salt of β-naphthalenesulfonic acid formalin condensate were added. Furthermore, 6 parts by mass of 1,3-butadiene, 17.8 parts by mass of methyl methacrylate, 0.1 parts by mass of t-dodecyl mercaptan, 0.05 parts by mass of turpentine oil, and 0.35 parts by mass of sodium salt of β-naphthalenesulfonic acid formalin condensate were added continuously over 120 minutes. Then, when the polymerization conversion rate reached 98% or more, the polymerization was terminated. Next, the pH was adjusted to 7.0 with potassium hydroxide, and steam distillation was performed to remove unreacted monomers and other low boiling point compounds, thereby obtaining an emulsion containing copolymer 5.

[0121] (Copolymer 6) Copolymer 6 was prepared using Cyatex SR-110 (a styrene-butadiene latex modified with carboxylic acid) manufactured by Nippon A&L Co., Ltd.

[0122] (Copolymer 7) In a pressure-resistant polymerization reactor, 90 parts by mass of polymerization water, 6.0 parts by mass of styrene, 4.0 parts by mass of 1,3-butadiene, 1.0 parts by mass of methyl methacrylate, 1.0 parts by mass of hydroxyethyl acrylate, 2.0 parts by mass of fumaric acid, 2 parts by mass of cyclohexene, 0.15 parts by mass of sodium dodecylbenzenesulfonate, and 0.3 parts by mass of sodium bicarbonate were charged under a nitrogen atmosphere and stirring was started. 1 part by mass of potassium persulfate was added and the temperature inside the reactor was raised to 70°C, and 54.0 parts by mass of styrene, 29.0 parts by mass of 1,3-butadiene, 3.0 parts by mass of methyl methacrylate, 0.47 parts by mass of t-dodecyl mercaptan, and 0.1 parts by mass of sodium dodecylbenzenesulfonate were continuously added over 420 minutes. After the addition of each monomer and other compounds was completed, 0.1 parts by mass of t-dodecyl mercaptan was immediately added and reacted for 150 minutes while maintaining the temperature at 70°C. Thereafter, the temperature inside the polymerization reactor was raised to 85°C, and the polymerization was terminated when the polymerization conversion rate exceeded 98%. Next, the pH was adjusted to 7.0 with an aqueous sodium hydroxide solution, and steam distillation was carried out to remove unreacted monomers and other low boiling point compounds, thereby obtaining an emulsion containing copolymer 7.

[0123] (Acrylic Copolymer 1) In a pressure-resistant polymerization reactor, 105 parts by mass of polymerization water, 5.2 parts by mass of styrene, 4.6 parts by mass of 2-ethylhexyl acrylate, 1.5 parts by mass of itaconic acid, 0.2 parts by mass of ethylene glycol dimethacrylate, 0.3 parts by mass of sodium dodecylbenzenesulfonate, and 0.3 parts by mass of sodium bicarbonate were charged under a nitrogen atmosphere and stirring was started. 1 part by mass of potassium persulfate was added to raise the temperature inside the reactor to 70°C, and 45.8 parts by mass of styrene, 40.6 parts by mass of 2-ethylhexyl acrylate, 2.1 parts by mass of ethylene glycol dimethacrylate, 0.7 parts by mass of sodium dodecylbenzenesulfonate, and 10 parts by mass of polymerization water were continuously added over 300 minutes. Thereafter, the polymerization was terminated when the polymerization conversion rate exceeded 98%. Next, the pH of the obtained emulsion was adjusted to 7.0 with an aqueous sodium hydroxide solution, and steam distillation was performed to remove unreacted monomers and other low-boiling point compounds, to obtain an acrylic copolymer 1.

[0124] (Examples 1 to 14, Comparative Examples 1 to 3) A nonionic surfactant shown in Table 1 was added to 100 parts by mass of each of Copolymers 1 to 7 in the amount shown in the same table to be used as a heat-sensitive gelling agent. In Example 14, Sumiflex 510HQ manufactured by Sumika Chemtex Corporation was used.

[0125] (Comparative Examples 4 to 8) Copolymers 2 to 5 and acrylic copolymer 1, which do not contain a nonionic surfactant, were used as heat-sensitive gelling agents.

[0126] Comparative Example 9 A commercially available latex for mixing with mortar (L-3642E, manufactured by Nippon A&L Co., Ltd.) was used as a gelling agent.

[0127] (Comparative Examples 10 to 11) A commercially available mortar (Katei Kagaku's "Quick Drying Cement") was used, and no heat-sensitive gelling agent was used. In Comparative Example 11, 1 part by mass of sodium gluconate, a setting retarder, was added to 100 parts by mass of the mortar.

[0128] [Table 1]

[0129] [Table 2]

[0130] [Penetration resistance value] 100 g of the following blends (1) to (5) [(1) to (5) are calculated as solid contents, and the moisture content is 18.5% by mass] were introduced into a cylindrical container with an open top. (1) Mortar ("Quick-drying Cement" manufactured by Katei Kagaku Co., Ltd.) 100 parts by weight (2) Sodium gluconate 1 part by mass (3) Carboxymethyl cellulose 0.5 parts by mass (4) Silicone-based defoaming agent (Dow Toray Industries, Inc., “DOWSIL TMSH 5507 Emulsion”) 0.1 part by mass (5) Gelling agents of Examples 1 to Comparative Examples 2: 4.5 parts by mass Next, the bottom surface of the cylindrical container was struck with a spatula for 1 minute to defoam it. After defoaming, the penetration resistance value (needle diameter = 2 mm, piercing speed = 30 mm / min, piercing depth = 10 mm) was measured at 17°C. During the measurement, the maximum value was read, and measurements were taken at 5 points per sample to obtain an average value. The average value obtained at this time was designated as a0. After degassing, the mixture was heated in a microwave oven at 600W for 30 seconds, cooled in ice water at 2 to 5°C, and the contents were cooled to 17°C. The average value of the penetration resistance was obtained at the same temperature in the same manner as above. The average value obtained at this time was designated as a1. Table 1 shows a0, a1, and a1 / a0.

[0131] [Stackability] For Examples 1 to 13 and Comparative Examples 1 and 2 in which a gelling agent was added, and Comparative Examples 3 and 4 in which a gelling agent was not added, a piping bag and a squeezer for food processing were used to extrude the mixture into a string shape of about 10 mm in width with a squeezer aperture of 10 mm, and after about 100 mm of the mixture was extruded, it was heated in a microwave heating device at 600 W for 20 seconds, folded back, and laminated to see how many layers could be formed without sagging or breaking. When 10 or more layers were formed, they were marked with ◎, when 7 to 9 layers were formed, 〇, when 4 to 6 layers were formed, △, and when 3 layers or less were formed, ×.

[0132] The additive manufacturing compositions of the examples had good final curing strength and interlayer adhesive strength. The bubbles disappeared when the container in which the additive manufacturing composition was contained was simply vibrated lightly (by tapping with a spatula, etc.). The additive manufacturing composition before curing also had good dischargeability from the nozzle.

[0133] (Copolymer A) In a pressure-resistant polymerization reactor equipped with a stirrer, 150 parts by mass of polymerization water and the initial addition components shown in Table 3 were charged all at once, the temperature was raised to 75°C, and the continuously added components shown in Table 3 were continuously added for 8 hours to carry out a polymerization reaction. The polymerization was terminated when the polymerization conversion rate exceeded 98%. Next, the pH was adjusted to 7 using sodium hydroxide, and steam distillation was carried out to remove unreacted monomers and other low-boiling point compounds, thereby obtaining a latex containing copolymer A. Note that this copolymer A corresponds to a carboxyl group-containing polymer in which the ratio of carboxyl group-containing monomers to the total monomers is 0.1 to 5.0% by mass. Table 3 shows the particle size of the latex particles.

[0134] (Copolymer B~I) Copolymers B to I were obtained in the same manner as for copolymer A, except that the components were changed to those shown in Table 3. Copolymers B to F and H correspond to carboxyl group-containing polymers in which the ratio of carboxyl group-containing monomer to the total monomers is 0.1 to 5.0 mass%. Copolymer G is a carboxyl group-containing polymer, but the ratio of the carboxyl group-containing monomer to the total monomers exceeds 5.0 mass%. Copolymer I is a polymer without a carboxyl group. Table 3 shows the average particle size of the latex particles.

[0135] [Table 3]

[0136] (Examples 21 to 30) A thermosensitive gelling agent was prepared by mixing a latex containing copolymers A, B, C, E, F, and H shown in Table 4 with a nonionic surfactant shown in the same table in the ratio shown in the same table. The properties were measured according to the following methods, and the results are shown in Table 4.

[0137] (Comparative Examples 21 to 26) A thermosensitive gelling agent was prepared by mixing a latex containing copolymers A, D, G, and I shown in Table 5 with a nonionic surfactant shown in the same table in the ratio shown in the same table. The properties were measured according to the following methods, and the results are shown in Table 5.

[0138] (Mortar compatibility and heat-sensitive gelation) 100g of fast-drying cement manufactured by Katei Kagaku and 1.0g of sodium gluconate were weighed out and mixed thoroughly in a 200mL plastic cup. Next, 24.4g of a heat-sensitive gelling agent adjusted to 45% solids and 6.3g of water were added and mixed thoroughly. The plastic cup was immersed in boiling water and heated for 10 minutes. Note that sodium gluconate is a setting retarder, and if it is not added, the mixture will set immediately after heating. The evaluation criteria were as follows: [Evaluation Criteria] Mortar compatibility: Good = 〇, Viscosity = △, Solidification = × Heat-sensitive gelation: Solidification = 〇, Fluidity = ×

[0139] (defoaming) 200g of heat-sensitive gelling agent adjusted to 45% solid content was weighed into a 1000mL measuring cylinder. 800mL of air was blown into the latex over 35 seconds. The volume of the foam was measured. The smaller the foam volume 10 minutes after blowing air, the better the defoaming performance.

[0140] [Table 4]

[0141] [Table 5]

Claims

1. A method for producing an layered object, comprising: layering a composition for layered modeling, the composition containing a water-setting inorganic composition and a thermosensitive gelling agent; and heating the composition for layered modeling during and / or after the layering to make the composition non-fluid, The thermosensitive gelling agent comprises an aqueous medium, a polymer dispersed in the aqueous medium, and a nonionic surfactant having a cloud point of 30° C. or higher and an HLB value of 10 to 18; The thermosensitive gelling agent is The following blends of (1) to (5) [(1) to (5) are calculated as solid contents, and the water content is 18.5% by mass] were mixed together. (1) Mortar 100 parts by weight (2) Sodium gluconate 1 part by mass (3) Carboxymethyl cellulose 0.5 parts by mass (4) Silicone-based defoaming agent: 0.1 parts by mass (5) The heat-sensitive gelling agent: 4.5 parts by mass 100 g of the mixture was introduced into a cylindrical container with an open top, degassed, and then the penetration resistance (needle diameter = 2 mm, piercing speed = 30 mm / min, piercing depth = 10 mm) was measured. The production method for a thermosensitive gelling agent, wherein the value of a1 / a0 is 15 or more, where a0 is the value at 17±3°C immediately after degassing and a1 is the value at 17±3°C after microwave heating at 600 W for 30 seconds after degassing.

2. The method according to claim 1, wherein the polymer is at least one selected from the group consisting of homo- or copolymers of conjugated dienes and homo- or copolymers of ethylenically unsaturated monomers.

3. The method according to claim 2, wherein the homo- or copolymer of the conjugated diene is at least one selected from the group consisting of styrene-butadiene rubber, methyl methacrylate-butadiene rubber, acrylonitrile-butadiene rubber, styrene-butadiene-vinylpyridine rubber, butadiene rubber, and natural rubber.

4. The method according to claim 1 , wherein the nonionic surfactant is a polyoxyalkylene alkyl ether and / or a polyoxyethylene aryl ether.

5. The method according to claim 4, wherein the polyoxyethylene alkyl ether has an alkyl moiety having 12 to 20 carbon atoms.

6. The method according to claim 4 , wherein the aryl moiety of the polyoxyethylene aryl ether is an aryl in which at least one hydrogen atom is substituted with an aralkyl.

7. The hydraulic inorganic composition is a cement defined in JIS R 5210:2019, JIS R 5211:2019, JIS R 5212:2019, JIS R 5213:2019 or JIS R 5214:2019, or a mortar or concrete containing the cement. The manufacturing method according to claim 1.

8. A thermosensitive gelling agent for a water-curable inorganic composition to be additively manufactured, comprising: An aqueous medium; and a carboxyl group-containing polymer (wherein -NHCH 2 The dispersion does not include a group represented by the formula (I)-O-, and a surfactant (provided that the carboxy group in the dispersion may form a salt), a ratio of the carboxy group-containing monomer to the total monomers constituting the carboxy group-containing polymer is 0.1 to 5.0% by mass, The surfactant may be 0.5 to 3 parts by mass of an anionic surfactant relative to 100 parts by mass of the carboxy group-containing polymer; The heat-sensitive gelling agent contains 1 to 8 parts by mass of a nonionic surfactant having a cloud point of 30 to 90° C. per 100 parts by mass of the carboxyl group-containing polymer.

9. The thermosensitive gelling agent according to claim 8 , wherein the carboxyl group-containing polymer contains an ethylenically unsaturated carboxylic acid monomer as the carboxyl group-containing monomer and an aliphatic conjugated diene monomer as monomer units.

10. The thermosensitive gelling agent according to claim 9, further comprising at least one monomer unit selected from the group consisting of an alkenyl aromatic monomer, a vinyl cyanide monomer, an unsaturated carboxylic acid alkyl ester monomer, a hydroxyalkyl group-containing unsaturated monomer, and an unsaturated carboxylic acid amide monomer.

11. The thermosensitive gelling agent according to claim 8 , wherein the anionic surfactant is a sulfonic acid-based anionic surfactant.

12. 9. The thermosensitive gelling agent according to claim 8, wherein the nonionic surfactant is a polyoxyalkylene alkyl ether and / or a polyoxyalkylene aryl ether.

13. 9. The thermosensitive gelling agent according to claim 8, wherein the nonionic surfactant has an HLB value of 11 to 15.

14. A composition for layered manufacturing, comprising the thermosensitive gelling agent according to any one of claims 8 to 13 and a water-curable inorganic composition.

15. The additive manufacturing composition according to claim 14, wherein the hydraulic inorganic composition is a cement defined in JIS R 5210:2019, JIS R 5211:2019, JIS R 5212:2019, JIS R 5213:2019, or JIS R 5214:2019, or a mortar or concrete containing the cement.

Citation Information

Patent Citations

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