Expandable methyl methacrylate resin particles, methyl methacrylate expanded particles, methyl methacrylate expanded molded body, and lost model
The introduction of foamable methyl methacrylate resin particles with a specific composition and particle size addresses the issues of surface quality and residue in foamed molded bodies, enhancing their suitability for metal casting.
Patent Information
- Application Number
- JP2022511692
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-30
- Filing Date
- 2021-03-04
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2041-03-04
AI Technical Summary
Existing foamable methyl methacrylate resin particles fail to provide foamed molded bodies with excellent surface quality and excessive residue during combustion.
The development of foamable methyl methacrylate resin particles with a base resin containing methyl methacrylate units, acrylic ester units, and crosslinking agent units, along with a foaming agent, and a volume average particle diameter of 0.30 mm to 0.50 mm.
These particles enable the production of foamed molded bodies with improved surface quality and reduced residue during combustion, making them suitable for metal casting applications.
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Abstract
Description
[Technical field]
[0001] The present invention relates to expandable methyl methacrylate resin particles, methyl methacrylate expanded particles, a methyl methacrylate expandable molded article, and a lost model. [Background technology]
[0002] When metal casting is performed, a lost foam casting method (full mold method) is known in which a model made of a foam molded body is buried in casting sand, and molten metal is poured into the foam molded body to replace the foam molded body with the metal, thereby casting a casting. In the full mold method, a foam molded body of a methyl methacrylate polymer is used from the viewpoint of reducing residues during casting.
[0003] Conventional techniques for expandable methyl methacrylate-based resin particles for producing foamed molded articles of methyl methacrylate polymers include techniques such as those shown in the following Patent Documents 1 and 2. Patent Document 1 discloses expandable methyl methacrylate-based resin particles that are obtained by polymerizing methyl methacrylate, an acrylic acid ester, and a polyfunctional monomer and have a particle size of 0.5 to 1.4 mm.
[0004] Patent Document 2 discloses expandable methyl methacrylate resin particles having an average particle size of 0.3 to 0.5 mm, which are obtained by suspension polymerization of a mixture of a methacrylic acid ester monomer and a styrene compound. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] International Publication No. WO2016 / 047490 [Patent Document 2] Japanese Patent Publication No. 2003-261603 Summary of the Invention [Problem to be solved by the invention]
[0006] However, the above-mentioned conventional techniques have room for improvement in terms of the surface quality of the foamed molded article provided by the expandable methyl methacrylate resin particles and in terms of reducing residues generated when the foamed molded article is combusted.
[0007] In view of the above circumstances, an object of one embodiment of the present invention is to provide novel expandable methyl methacrylate resin particles that can provide foamed molded articles that have excellent surface quality and produce little residue upon combustion. [Means for solving the problem]
[0008] The inventors conducted extensive research to solve the above problems and have now completed the present invention.
[0009] The expandable methyl methacrylate-based resin particles according to one embodiment of the present invention include a base resin containing, as structural units, structural units derived from a methyl methacrylate unit, an acrylic ester unit, and a crosslinking agent, and a foaming agent, and have a volume average particle diameter of 0.30 mm to 0.50 mm. In the base resin, (a) the content of the methyl methacrylate units is 90.0 parts by weight to 99.0 parts by weight and the content of the acrylic ester units is 1.0 parts by weight to 10.0 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, (b) the content of the structural units derived from the crosslinking agent is 0.05 parts by weight or more and less than 0.20 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, and (c) the content of the structural units derived from an aromatic vinyl compound is 2.5 parts by weight or less, relative to 100 parts by weight of the base resin. Effect of the Invention
[0010] According to one embodiment of the present invention, it is possible to provide expandable methyl methacrylate resin particles which can provide a foamed molded article having excellent surface quality and generating little residue upon combustion. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] An embodiment of the present invention will be described below, but the present invention is not limited thereto. The present invention is not limited to each configuration described below, and various modifications are possible within the scope of the claims. In addition, embodiments or examples obtained by combining the technical means disclosed in different embodiments or examples are also included in the technical scope of the present invention. Furthermore, new technical features can be formed by combining the technical means disclosed in each embodiment. All academic documents and patent documents described in this specification are incorporated herein by reference. In addition, unless otherwise specified in this specification, "A to B" representing a numerical range means "A or more (including A and greater than A) and B or less (including B and smaller than B)".
[0012] In this specification, "expandable methyl methacrylate-based resin particles" may be referred to as "expandable resin particles", "methyl methacrylate-based expanded particles" may be referred to as "expanded particles", and "methyl methacrylate-based expanded molded body" may be referred to as "expanded molded body".
[0013] 1. Technical Concept of One Embodiment of the Present Invention As a result of investigations by the present inventors, it has been found that the foamed molded articles obtained using the expandable resin particles disclosed in Patent Documents 1 and 2 have room for improvement in terms of surface quality and reduction of residues generated during combustion.
[0014] For example, the expandable methyl methacrylate resin particles described in Patent Document 1 have a large particle size. Therefore, when a molded article is produced using the expanded particles obtained by expanding the expandable methyl methacrylate resin particles, the expanded particles have poor filling properties in thin-walled areas (narrow areas in a mold). As a result, the technology described in Patent Document 1 produces a molded article with poor surface beauty.
[0015] The foam molded product of the methyl methacrylate polymer described in Patent Document 2 contains a styrene component to improve surface smoothness. The present inventors independently discovered that foam molded products containing a styrene component generate residues during combustion, which adversely affect the quality of castings.
[0016] In view of the above circumstances, one embodiment of the present invention provides expandable methyl methacrylate-based resin particles, methyl methacrylate-based expanded particles, and methyl methacrylate-based expanded molded articles that are excellent in expandability, filling property, and shrinkage property.
[0017] The inventors independently found the following problems: (1) methyl methacrylate-based expanded particles obtained by expanding expandable methyl methacrylate-based resin particles having a large volume average particle diameter have poor mold filling properties; (2) expandable methyl methacrylate-based resin particles having a small volume average particle diameter have poor expandability; (3) methyl methacrylate-based expanded particles obtained by expanding expandable methyl methacrylate-based resin particles having a small volume average particle diameter have large shrinkage during molding; and (4) as a result of (2) and (3) above, a foamed molded article obtained by molding the methyl methacrylate-based expanded particles in a mold has poor surface quality. The inventors focused on the problems they independently found, and as a result of intensive research, they have completed the present invention.
[0018] [2. Expandable methyl methacrylate resin particles] The expandable methyl methacrylate-based resin particles according to one embodiment of the present invention include a base resin containing, as structural units, structural units derived from a methyl methacrylate unit, an acrylic ester unit, and a crosslinking agent, and a foaming agent, and have a volume average particle diameter of 0.30 mm to 0.50 mm. In the base resin, (a) the content of the methyl methacrylate units is 90.0 parts by weight to 99.0 parts by weight and the content of the acrylic ester units is 1.0 parts by weight to 10.0 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, (b) the content of the structural units derived from the crosslinking agent is 0.05 parts by weight or more and less than 0.20 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, and (c) the content of the structural units derived from an aromatic vinyl compound is 2.5 parts by weight or less, relative to 100 parts by weight of the base resin.
[0019] The "expandable methyl methacrylate resin particles according to one embodiment of the present invention" may hereinafter be referred to as "the present expandable resin particles".
[0020] The present expandable resin particles can be expanded by a known method to provide expanded particles. The present expandable resin particles can be expanded and molded in a mold by a known method to provide a foamed molded article.
[0021] The present expandable resin particles have the above-mentioned structure, and therefore have the advantage of being able to provide a foamed molded article with excellent surface quality and little residue when burned. In this specification, the surface quality of the foamed molded article is evaluated by the surface beauty of the foamed molded article, as described in the following examples. The surface quality of the foamed molded article is affected by the expandability of the expandable resin particles, which are the raw material of the foamed molded article, and the filling property and shrinkage property of the expanded particles. The better the expandability of the expandable resin particles, and the filling property and shrinkage property of the expanded particles, the better the surface quality of the foamed molded article. Therefore, the present expandable resin particles have the above-mentioned structure, and therefore have the advantage of being able to provide expanded particles that are (a) excellent in expandability and (b) excellent in filling property and shrinkage property.
[0022] (Base resin) The base resin contained in the expandable resin particles includes, as structural units, methyl methacrylate units, acrylic ester units, and structural units derived from a crosslinking agent. In this specification, the term "methyl methacrylate units" refers to structural units derived from methyl methacrylate monomers, and the term "acrylic ester units" refers to structural units derived from acrylic ester monomers. In this specification, the term "monomer" may be omitted. Therefore, in this specification, for example, when the terms "methyl methacrylate" and "acrylic ester" are simply used, they mean "methyl methacrylate monomer" and "acrylic ester monomer", respectively.
[0023] In the base resin contained in the present expandable resin particles, it is preferable that, relative to 100 parts by weight of the total amount of methyl methacrylate units and acrylic ester units, (a) the content of methyl methacrylate units is 90.0 parts by weight to 99.0 parts by weight and the content of acrylic ester units is 1.0 parts by weight to 10.0 parts by weight, (b) the content of methyl methacrylate units is 91.0 parts by weight to 99.0 parts by weight and the content of acrylic ester units is 1.0 parts by weight to 9.0 parts by weight, and (c) the content of methyl methacrylate units is 92.0 parts by weight to 97.0 parts by weight and the content of acrylic ester units is 1.0 parts by weight to 9.0 parts by weight. The content of the units is more preferably 3.0 parts by weight to 8.0 parts by weight, (d) 93.0 parts by weight to 96.0 parts by weight of methyl methacrylate and 4.0 parts by weight to 7.0 parts by weight of acrylic acid ester, (e) the content of the methyl methacrylate units is more preferably 94.0 parts by weight to 96.0 parts by weight and the content of the acrylic acid ester units is more preferably 4.0 parts by weight to 6.0 parts by weight, and (f) the content of the methyl methacrylate units is particularly preferably 94.5 parts by weight to 95.0 parts by weight and the content of the acrylic acid ester units is particularly preferably 5.0 parts by weight to 5.5 parts by weight. In the base resin, when the content of the methyl methacrylate units exceeds 99.0 parts by weight relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic acid ester units, the expandable resin particles tend to be inferior in expandability and moldability. As a result, the expandable resin particles are difficult to provide a foamed molded article with excellent surface quality. In the base resin, when the content of the acrylic ester units exceeds 10 parts by weight per 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, the expanded particles tend to shrink easily.
[0024] Examples of the acrylic acid ester according to one embodiment of the present invention include methyl acrylate, ethyl acrylate, propyl acrylate, and butyl acrylate. As the acrylic acid ester, butyl acrylate is particularly preferred. In other words, it is particularly preferred that the acrylic acid ester unit is a butyl acrylate unit derived from a butyl acrylate monomer. Butyl acrylate has a large effect of lowering the glass transition temperature of the base resin. Therefore, according to this configuration, it is possible to provide expandable resin particles with excellent expandability.
[0025] The base resin of the present expandable resin particles contains a structural unit derived from a crosslinking agent. When the base resin of the present expandable resin particles contains a structural unit derived from a crosslinking agent, the expandable resin particles can provide expanded particles having excellent shrinkage properties.
[0026] Examples of the crosslinking agent include compounds having two or more functional groups exhibiting radical reactivity. Among compounds having two or more functional groups exhibiting radical reactivity, it is preferable to use a bifunctional monomer having two functional groups as the crosslinking agent. In other words, it is preferable that the base resin of the present expandable resin particles contains a bifunctional monomer unit, which is a constituent unit derived from a bifunctional monomer, as a constituent unit derived from a crosslinking agent. This configuration has the advantages that (a) the expandable resin particles have excellent expandability, (b) the expanded particles obtained by expanding the expandable resin particles have excellent shrinkage properties, and (c) the expanded molded body obtained by molding the expanded particles in a mold has excellent surface quality.
[0027] Examples of the bifunctional monomer include (a) compounds in which both terminal hydroxyl groups of ethylene glycol or the oligomer of ethylene glycol, such as ethylene glycol di(meth)acrylate, diethylene glycol di(meth)acrylate, and triethylene glycol di(meth)acrylate, are esterified with acrylic acid or methacrylic acid, (b) compounds in which hydroxyl groups of dihydric alcohols, such as neopentyl glycol di(meth)acrylate, hexanediol di(meth)acrylate, and butanediol di(meth)acrylate, are esterified with acrylic acid or methacrylic acid, and (c) aryl compounds having two alkenyl groups, such as divinylbenzene. Hexanediol di(meth)acrylate, such as 1,6-hexanediol diacrylate, is preferred as the bifunctional monomer, since the molecular weight of the base resin can be easily adjusted with hexanediol di(meth)acrylate. In this specification, "(meth)acrylate" refers to methacrylate and / or acrylate.
[0028] In the base resin, the content of the structural unit derived from the crosslinking agent relative to 100 parts by weight of the total amount of the methyl methacrylate unit and the acrylic acid ester unit is 0.05 parts by weight or more and less than 0.20 parts by weight, preferably 0.05 parts by weight to 0.19 parts by weight, more preferably 0.05 parts by weight to 0.17 parts by weight or less, more preferably 0.08 parts by weight to 0.15 parts by weight or less, and even more preferably 0.08 parts by weight to 0.13 parts by weight. According to the above-mentioned configuration, (a) the expandable resin particles have excellent expandability, (b) the expanded particles obtained by expanding the expandable resin particles have excellent shrinkage, and (c) the expanded molded body obtained by molding the expanded particles in a mold has excellent surface quality. According to the above-mentioned configuration, the expanded molded body further has the advantages of excellent strength and small residues upon combustion.
[0029] The base resin of the present expandable resin particles may further contain a constituent unit derived from an aromatic vinyl compound as a constituent unit. Examples of aromatic vinyl compounds include styrene, α-methylstyrene, paramethylstyrene, t-butylstyrene, and chlorostyrene. When the base resin of the present expandable resin particles contains a constituent unit derived from an aromatic vinyl compound, a foamed molded product having excellent strength can be obtained.
[0030] From the viewpoint of obtaining a foamed molded article with little residue when burned, it is preferable that the amount of the constituent unit derived from the aromatic vinyl compound in the base resin is as small as possible. In the base resin, the content of the constituent unit derived from the aromatic vinyl compound relative to 100 parts by weight of the base resin is 2.5 parts by weight or less, preferably less than 2.5 parts by weight, more preferably 2.0 parts by weight or less, more preferably 1.5 parts by weight or less, even more preferably 1.0 parts by weight or less, and particularly preferably 0 parts by weight. That is, it is particularly preferable that the base resin of the present expandable resin particles does not contain a constituent unit derived from an aromatic vinyl compound.
[0031] (foaming agent) The foaming agent contained in the expandable resin particles is not particularly limited. Examples of the foaming agent include volatile foaming agents such as (a) aliphatic hydrocarbons, which are hydrocarbons having 3 to 5 carbon atoms, such as propane, isobutane, normal butane, isopentane, normal pentane, and neopentane, and (b) hydrofluorocarbons, such as difluoroethane and tetrafluoroethane, which have an ozone depletion potential of zero. These foaming agents may be used alone or in combination of two or more.
[0032] In the present expandable resin particles, the content of the blowing agent relative to 100 parts by weight of the expandable methyl methacrylate resin particles is preferably 5 parts by weight to 12 parts by weight, more preferably 7 parts by weight to 10 parts by weight. This configuration has the advantage that expandable resin particles having sufficient expandability can be provided and heavy polymerization equipment is not required.
[0033] (Other additives) In addition to the base resin and the blowing agent, the expandable resin particles may contain other additives, such as solvents, plasticizers, cell regulators, flame retardants, flame retardant auxiliaries, heat radiation inhibitors, pigments, dyes, and antistatic agents.
[0034] The solvent is not particularly limited, but a solvent having a boiling point of 50° C. or more is preferable. Examples of the solvent having a boiling point of 50° C. or more include (a) aliphatic hydrocarbons having 6 or more carbon atoms (C6 or more), such as toluene, hexane, and heptane, and (b) alicyclic hydrocarbons having 6 or more carbon atoms, such as cyclohexane and cyclooctane. Toluene and / or cyclohexane are preferable as the solvent having a boiling point of 50° C. or more, since expandable resin particles having excellent expandability can be obtained. In the expandable resin particles, the content of the solvent relative to 100 parts by weight of the base resin is preferably 1.5 parts by weight to 3.0 parts by weight. When the content of the solvent relative to 100 parts by weight of the base resin is (a) 1.5 parts by weight or more, expandable resin particles having sufficient expandability can be obtained, and when the content of the solvent is (b) 3.0 parts by weight or less, a foamed molded product in which surface expansion is suppressed, that is, which has excellent dimensional stability, can be obtained.
[0035] The plasticizer is not particularly limited, but is preferably a high-boiling plasticizer having a boiling point of 200° C. or higher. Examples of the high-boiling plasticizer include (a) fatty acid glycerides such as stearate triglyceride, palmitate triglyceride, laurate triglyceride, stearate diglyceride, and stearate monoglyceride, (b) vegetable oils such as coconut oil, palm oil, and palm kernel oil, (c) aliphatic esters such as dioctyl adipate and dibutyl sebacate, and (d) organic hydrocarbons such as liquid paraffin and cyclohexane.
[0036] In the present expandable resin particles, the content of the plasticizer relative to 100 parts by weight of the base resin is preferably 0.40 parts by weight to 4.00 parts by weight, preferably 0.50 parts by weight to 3.50 parts by weight, more preferably 0.60 parts by weight to 3.00 parts by weight, more preferably 0.70 parts by weight to 2.70 parts by weight, more preferably 0.80 parts by weight to 2.40 parts by weight, more preferably 0.90 parts by weight to 2.10 parts by weight, even more preferably 1.00 parts by weight to 1.80 parts by weight, and particularly preferably 1.20 parts by weight to 1.50 parts by weight. This configuration has the advantage that the expandable resin particles have excellent expandability and excellent shrinkage properties.
[0037] Examples of the cell regulator include (a) aliphatic bisamides such as methylene bis-stearic acid amide and ethylene bis-stearic acid amide, and (b) polyethylene wax.
[0038] (Weight average molecular weight) The expandable resin particles preferably have a weight average molecular weight, measured by gel permeation chromatography (GPC) and converted into polystyrene of 100,000 to 400,000. This configuration makes it possible to obtain a foamed molded article having excellent surface quality and generating little residue upon combustion.
[0039] (Volume average particle size) The volume average particle diameter of the expandable resin particles is 0.30 mm to 0.50 mm, preferably 0.35 to 0.45 mm, and more preferably 0.40 mm to 0.45 mm. When the volume average particle diameter of the expandable resin particles is less than 0.30 mm, the expandable resin particles cause a decrease in expandability during expansion and / or an increase in the amount of blocking during expansion. When the volume average particle diameter of the expandable resin particles is more than 0.50 mm, the expandable resin particles obtained by expanding the expandable resin particles have poor filling properties in a narrow space when the expandable resin particles are filled into a molding machine. The narrow space in the molding machine corresponds to a thin part in the obtained foamed molded product. In this specification, the volume average particle diameter of the expandable resin particles is the particle diameter at which the volume cumulative 50% is obtained by measuring the particle diameter of the expandable resin particles on a volume basis using a particle size analyzer (for example, an image processing type Millitrac JPA particle size analyzer), and the obtained results are displayed as a cumulative distribution.
[0040] The expandable resin particles of the present invention have excellent expandability. The expandability of the expandable resin particles is evaluated by the heating time of the expandable resin particles until the expandable resin particles become expanded particles with a predetermined expansion ratio. In this specification, the expandability of the expandable resin particles is evaluated by the heating time obtained by carrying out the following (1) to (3) in order: (1) putting the expandable methyl methacrylate resin particles in a steamer at 100°C and heating the expandable methyl methacrylate resin particles; (2) taking out the methyl methacrylate expanded particles obtained by expanding the expandable methyl methacrylate resin particles from the steamer at regular intervals and measuring the expansion ratio of the methyl methacrylate expanded particles; (3) measuring the time from putting the expandable methyl methacrylate resin particles in the steamer until methyl methacrylate expanded particles with an expansion ratio of 45 times are obtained, that is, the heating time of the expandable methyl methacrylate resin particles. Here, the expansion ratio of the methyl methacrylate type expanded beads is a value obtained by carrying out the following steps (1) to (3) in order: (1) Weigh out 10 g of the methyl methacrylate type expanded beads and measure them at 1000 cm 3(2) Measure the volume of 10 g of the methyl methacrylate-based expanded beads from the graduations on the graduated cylinder; (3) Calculate the expansion ratio of the methyl methacrylate-based expanded beads by the following formula; Expansion ratio (cm 3 / g) = Volume of foam particles (cm 3 ) / 10g.
[0041] In this specification, the expansion ratio of the methyl methacrylate-based expanded beads is calculated by the above-mentioned method, and can also be called the bulk ratio. The unit of the expansion ratio is actually cm based on the above-mentioned formula. 3 / g, but for convenience, the unit of the expansion ratio is expressed as "times" in this specification.
[0042] The shorter the heating time, the better the expandable resin particles are intended to be. The heating time of the expandable resin particles measured as described above is preferably less than 6 minutes, more preferably less than 5 minutes 30 seconds, more preferably less than 5 minutes, even more preferably less than 4 minutes 30 seconds, and particularly preferably less than 4 minutes. According to this configuration, the expandable resin particles can provide a foamed molded article with better surface quality.
[0043] 3. Method for producing expandable methyl methacrylate resin particles A method for producing expandable methyl methacrylate resin particles according to one embodiment of the present invention includes a copolymerization step of copolymerizing a monomer mixture containing a methyl methacrylate monomer and an acrylic ester monomer, and a blowing agent impregnation step of impregnating the resulting copolymer with a blowing agent. The copolymerization step further includes (a) an initiation step of initiating copolymerization of the monomer mixture in the presence of 0.20 to 1.20 parts by weight of a first poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture, and (b) an addition step of adding 0.08 to 0.50 parts by weight of a second poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture to the reaction mixture when the polymerization conversion rate is 35% to 70% after the initiation step. In the copolymerization step, the amount of the methyl methacrylate monomer used is 90.0 parts by weight to 99.0 parts by weight, and the amount of the acrylic ester monomer used is 1.0 parts by weight to 10.0 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate monomer and the acrylic ester monomer used.
[0044] In this specification, the term "poorly water-soluble inorganic salt" refers to an inorganic salt whose solubility in water at 25° C. is 0.1 mg / ml or less.
[0045] The "production method for expandable methyl methacrylate resin particles according to one embodiment of the present invention" may hereinafter be referred to as "the present production method".
[0046] Since the present production method has the above-mentioned configuration, it can provide expandable methyl methacrylate-based resin particles that can provide a foamed molded article with excellent surface quality and little residue when burned. Furthermore, since the present production method has the above-mentioned configuration, it has the advantage of being able to provide the present expandable resin particles described in Section [2. Expandable methyl methacrylate-based resin particles]. In other words, the present production method is suitably used for producing the present expandable resin particles described in Section [2. Expandable methyl methacrylate-based resin particles]. Note that the "copolymer" in the present production method corresponds to the "base resin" contained in the expandable resin particles described in Section [2. Expandable methyl methacrylate-based resin particles].
[0047] Each step of the present manufacturing method will be described below, but the description in Section [2. Expandable methyl methacrylate-based resin particles] will be used as appropriate for matters other than those described in detail below. In addition, the present expandable resin particles described in Section [2. Expandable methyl methacrylate-based resin particles] are preferably manufactured by the present manufacturing method, but may be manufactured by a method other than the present manufacturing method. In other words, the manufacturing method of the present expandable resin particles is not limited to the embodiment of the present manufacturing method described below.
[0048] (3-1.Copolymerization process) The copolymerization step in the present production method includes suspension polymerization in which a monomer mixture is polymerized in an aqueous suspension. Hereinafter, the copolymer (base resin) obtained in the copolymerization step may be simply referred to as "resin particles."
[0049] In the present invention, the term "aqueous suspension" refers to a liquid in which monomer droplets and / or resin particles are dispersed in water or an aqueous solution by stirring, etc. In the aqueous suspension, (a) a water-soluble surfactant and a monomer may be dissolved, and (b) a water-insoluble dispersant, a polymerization initiator, a chain transfer agent, a crosslinking agent, a bubble regulator, a flame retardant, a solvent, a plasticizer, etc. may be dispersed together with the monomer.
[0050] The weight ratio of the monomer and polymer (resin) in the aqueous suspension to water or aqueous solution is preferably 1.0 / 0.6 to 1.0 / 3.0, expressed as the ratio of the resulting methyl methacrylate resin / water or aqueous solution. Note that the "aqueous solution" referred to here means a solution consisting of water and components other than the methyl methacrylate resin.
[0051] The copolymerization step includes an initiation step of initiating copolymerization of the monomer mixture in the presence of 0.20 to 1.20 parts by weight of a first poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture. The initiation step is a step of initiating copolymerization of the monomer mixture using, for example, an aqueous suspension containing (a) water, (b) a monomer mixture containing a methyl methacrylate monomer and an acrylic acid ester monomer, (c) 0.20 to 1.20 parts by weight of a first poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture, (d) a crosslinking agent, and optionally (e) a polymerization initiator, a surfactant, a dispersant other than the poorly water-soluble inorganic salt, a chain transfer agent, a cell regulator, a flame retardant, a solvent, a plasticizer, and the like.
[0052] In this specification, “before the start of the polymerization reaction” may also be referred to as “the early stage of polymerization.” The first poorly water-soluble inorganic salt blended (added) to the aqueous suspension in the initiation step, and the polymerization initiator, which is optionally blended, can be considered to be substances (raw materials) used in the early stage of polymerization.
[0053] In the initiation step, the first poorly water-soluble inorganic salt can function as a dispersant. Examples of the first poorly water-soluble inorganic salt used in the initiation step, i.e., in the early stage of polymerization, include tricalcium phosphate, magnesium pyrophosphate, hydroxyapatite, and kaolin.
[0054] In addition, in the initiation step, (a) a water-soluble polymer such as polyvinyl alcohol, methyl cellulose, polyacrylamide, or polyvinylpyrrolidone, and / or (b) an anionic surfactant such as sodium α-olefin sulfonate or sodium dodecylbenzene sulfonate may be used in combination with the first poorly water-soluble inorganic salt.
[0055] The first poorly water-soluble inorganic salt used in the initiation step is preferably calcium phosphate tribasic from the viewpoint of the protective power of the resin particles and / or the monomer droplets. From the viewpoint of the dispersion stability of the droplets, the initiation step is preferably a step of initiating copolymerization of the monomer mixture in the presence of calcium phosphate tribasic, which is a poorly water-soluble inorganic salt, and sodium α-olefinsulfonate, which is an anionic surfactant.
[0056] The initiation step is preferably a step of initiating copolymerization of the monomer mixture in the presence of the first poorly water-soluble inorganic salt, preferably 0.20 parts by weight to 1.20 parts by weight, more preferably 0.20 parts by weight to 1.10 parts by weight, and even more preferably 0.40 parts by weight to 1.10 parts by weight, relative to 100 parts by weight of the monomer mixture. When copolymerization of the monomer mixture is initiated in the presence of 0.20 parts by weight or more of the first poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture, there is no risk of the volume average particle diameter of the resulting expandable resin particles becoming too large. When copolymerization of the monomer mixture is initiated in the presence of 1.10 parts by weight or less of the first poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture, there is no risk of a large amount of fine particles of the expandable resin particles being generated. That is, by initiating copolymerization of the monomer mixture in the presence of the first poorly water-soluble inorganic salt in an amount within the above-mentioned range, expandable resin particles having a desired volume average particle diameter can be obtained with good yield.
[0057] In the initiation step, when the water-soluble polymer and / or the anionic surfactant are used in combination with the first poorly water-soluble inorganic salt, the concentration of the water-soluble polymer and / or the anionic surfactant in the aqueous suspension is preferably 30 ppm to 100 ppm based on the concentration of the monomer mixture.
[0058] The copolymerization step includes an addition step of adding 0.08 to 0.50 parts by weight of a second poorly water-soluble inorganic salt relative to 100 parts by weight of the monomer mixture to the reaction mixture when the polymerization conversion rate is 35% to 70% after the initiation step.
[0059] In this specification, “after the start of the polymerization reaction” may also be referred to as “during the polymerization.” In the addition step, the second poorly water-soluble inorganic salt added to the reaction mixture can be considered as a substance (raw material) used during the polymerization.
[0060] When the polymerization (copolymerization) of the monomer mixture in the copolymerization step is carried out by suspension polymerization, the reaction mixture in the addition step can also be called an aqueous suspension.
[0061] In the addition step, the second poorly water-soluble inorganic salt can function as a dispersant. Examples of the second poorly water-soluble inorganic salt used in the addition step, i.e., during polymerization, include the substances already exemplified as the first poorly water-soluble inorganic salt. The second poorly water-soluble inorganic salt is preferably one or more selected from the group consisting of tribasic calcium phosphate, hydroxyapatite, and kaolin, and more preferably tribasic calcium phosphate. This configuration has the advantage that it is possible to prevent the resin particles from coalescing with each other after the addition (addition) of the dispersant, and resin particles of the desired particle size can be obtained.
[0062] The addition step is preferably a step of adding the second poorly water-soluble inorganic salt to the reaction mixture at a time point when the polymerization conversion rate is 35% to 70% after the initiation step, preferably 0.08 parts by weight to 0.50 parts by weight, more preferably 0.10 parts by weight to 0.50 parts by weight, more preferably 0.10 parts by weight to 0.40 parts by weight, even more preferably 0.10 parts by weight to 0.30 parts by weight, and particularly preferably 0.10 parts by weight to 0.20 parts by weight, relative to 100 parts by weight of the monomer mixture in the addition step. When 0.08 parts by weight or more of the second poorly water-soluble inorganic salt is added to the reaction mixture relative to 100 parts by weight of the monomer mixture in the addition step, there is no risk that the volume average particle diameter of the resulting expandable resin particles will become too large. When 0.50 parts by weight or less of the second poorly water-soluble inorganic salt is added to the reaction mixture relative to 100 parts by weight of the monomer mixture in the addition step, the production cost increases due to the excessive use of the poorly water-soluble inorganic salt. That is, by adding the second poorly water-soluble inorganic salt in an amount within the above-mentioned range to the reaction mixture in the addition step, expandable resin particles having a desired volume average particle size can be obtained at low production costs.
[0063] In the addition step, the second poorly water-soluble inorganic salt is preferably added to the reaction mixture when the polymerization conversion rate is 35% to 70%, more preferably when the polymerization conversion rate is 40% to 50%. According to this configuration, expandable resin particles having a desired volume average particle size can be obtained. The method for measuring the polymerization conversion rate in this specification will be described in detail in the following examples.
[0064] The copolymerization step is preferably carried out in at least two stages by changing the polymerization temperature. For convenience, the two polymerization steps having different polymerization temperatures are hereinafter referred to as the first polymerization step and the second polymerization step. It can also be said that the copolymerization step preferably includes a first polymerization step and a second polymerization step successively having different polymerization temperatures.
[0065] The copolymerization step preferably includes, for example, (a) a first polymerization step carried out at a polymerization temperature of 70°C to 90°C using a low-temperature decomposition type polymerization initiator, and (b) a second polymerization step carried out consecutively to the first polymerization step, at a polymerization temperature higher than that of the first polymerization step (for example, 90°C to 110°C) using a high-temperature decomposition type polymerization initiator. In the copolymerization step, it is preferable that the main polymerization reaction is carried out in the above-mentioned first polymerization step, and the remaining monomer is reduced in the above-mentioned second polymerization step.
[0066] As the polymerization initiator, radical-generating polymerization initiators generally used in the manufacture of thermoplastic polymers can be used.Typical radical-generating polymerization initiators include, for example, (a) organic peroxides such as benzoyl peroxide, lauroyl peroxide, t-butyl peroxybenzoate, isopropyl-t-butyl peroxycarbonate, butyl perbenzoate, t-butyl peroxy-2-ethylhexanoate, t-butyl perpivalate, t-butyl peroxy isopropyl carbonate, di-t-butyl peroxy hexahydroterephthalate, 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-amylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-butylperoxy)cyclohexane, and t-butyl peroxy-2-ethylhexyl monocarbonate, and (b) azo compounds such as azobisisobutyronitrile and azobisdimethylvaleronitrile. These polymerization initiators may be used alone or in combination of two or more.
[0067] Of the above-mentioned radical generating polymerization initiators, (a) benzoyl peroxide, lauroyl peroxide, t-butyl perpivalate, di-t-butylperoxyhexahydroterephthalate, azobisisobutyronitrile, and azobisdimethylvaleronitrile are low-temperature decomposition type polymerization initiators, and (b) t-butylperoxybenzoate, isopropyl-t-butylperoxycarbonate, butyl perbenzoate, t-butylperoxy-2-ethylhexanoate, t-butylperoxyisopropylcarbonate, 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-amylperoxy)-3,3,5-trimethylcyclohexane, 1,1-bis(t-butylperoxy)cyclohexane, and t-butylperoxy-2-ethylhexyl monocarbonate are high-temperature decomposition type polymerization initiators.
[0068] The amount of the polymerization initiator used, calculated as the total amount in the first polymerization step and the second polymerization step, is preferably 0.1 to 0.5 parts by weight per 100 parts by weight of the monomer mixture. According to this configuration, expandable resin particles having excellent expandability can be obtained.
[0069] The initiation step may be (a) a step of initiating copolymerization of a monomer mixture in the presence of a first poorly water-soluble inorganic salt, a low-temperature decomposition type polymerization initiator, and a high-temperature decomposition type polymerization initiator, or (b) a step of initiating copolymerization of a monomer mixture in the presence of a first poorly water-soluble inorganic salt and a low-temperature decomposition type polymerization initiator. When the initiation step is a step of initiating copolymerization of a monomer mixture in the presence of a first poorly water-soluble inorganic salt and a low-temperature decomposition type polymerization initiator, the high-temperature decomposition type polymerization initiator may be added to the reaction mixture (aqueous suspension) after the initiation step, i.e., during the polymerization.
[0070] In the copolymerization step, it is preferable to use a chain transfer agent. The chain transfer agent is not particularly limited, and well-known substances used in the polymerization of methyl methacrylate resins can be used. Examples of the chain transfer agent include (a) monofunctional chain transfer agents such as alkyl mercaptans and thioglycolic acid esters, and (b) polyfunctional chain transfer agents in which the hydroxyl groups of polyhydric alcohols such as ethylene glycol, neopentyl glycol, trimethylolpropane, and sorbitol are esterified with thioglycolic acid or 3-mercaptopropionic acid. Examples of the alkyl mercaptans include n-octyl mercaptan, n-dodecyl mercaptan, and t-dodecyl mercaptan. The amount of the chain transfer agent used is preferably 0.1 parts by weight or more and less than 0.5 parts by weight per 100 parts by weight of the base resin.
[0071] (3-2. Foaming agent impregnation process) In the foaming agent impregnation step, the methyl methacrylate resin particles, which are the copolymer obtained in the copolymerization step, are impregnated with a foaming agent, thereby obtaining expandable methyl methacrylate resin particles.
[0072] The blowing agent impregnation step can be carried out at any time, for example, along with the second polymerization step or after the second polymerization step.
[0073] In the foaming agent impregnation step, the obtained copolymer is preferably impregnated with the foaming agent when the polymerization conversion rate from monomer to copolymer is 80% to 95%. When the foaming agent is impregnated into the copolymer when the polymerization conversion rate is 80% or more, the foaming agent is appropriately impregnated into the inside of the copolymer, so there is no risk of the copolymers coagulating due to softening of the copolymer, and the production yield is good. When the foaming agent is impregnated into the copolymer when the polymerization conversion rate is 95% or less, the foaming agent is sufficiently impregnated into the inside of the copolymer, so there is no risk of a double cell structure (hard core) being formed in the expanded particles obtained by expanding the expandable resin particles. As a result, by molding the expanded particles in a mold, a foamed molded product with excellent surface quality can be obtained.
[0074] In the foaming agent impregnation step, the amount of foaming agent impregnated into the methyl methacrylate resin particles, which is a copolymer, includes a preferred embodiment, and is the same as the content of the foaming agent in the expandable resin particles described in the section (foaming agent) of [2. Expandable methyl methacrylate resin particles]. According to this configuration, expandable resin particles having sufficient expandability can be obtained, and the expandable resin particles can be safely produced without causing aggregation of the copolymer in the foaming agent impregnation step.
[0075] In the foaming agent impregnation step, the treatment temperature (also referred to as the impregnation temperature) and treatment time (also referred to as the impregnation time) when the copolymer is impregnated with the foaming agent are not particularly limited.
[0076] In the foaming agent impregnation step, the impregnation temperature when the foaming agent is impregnated into the copolymer is preferably 95°C to 120°C or less, more preferably 100°C to 117°C or less. When the impregnation temperature is 95°C or more, the foaming agent is sufficiently impregnated into the inside of the copolymer, so there is no risk of a double cell structure (hard core) being formed in the expanded particles obtained by expanding the expandable resin particles obtained. As a result, by molding the expanded particles in a mold, a foamed molded product with excellent surface quality can be obtained. When the impregnation temperature is 120°C or less, the pressure inside the polymerization machine does not become too high, so that it is possible to obtain expandable resin particles that can provide expanded particles having a uniform cell structure without requiring a heavy-duty impregnation facility that can withstand high pressure.
[0077] In the present production method, when a solvent (for example, a solvent having a boiling point of 50° C. or higher) is used, it is preferable to add the solvent to the reaction mixture (aqueous suspension) immediately before or simultaneously with the blowing agent impregnation step.
[0078] [4. Methyl methacrylate-based expanded particles] The methyl methacrylate-based expanded particles according to one embodiment of the present invention are expanded particles obtained by expanding the expandable methyl methacrylate-based resin particles described in Section [2. Expandable methyl methacrylate-based resin particles] or the expandable methyl methacrylate-based resin particles produced by the production method described in Section [3. Production method of expandable methyl methacrylate-based resin particles].
[0079] The "methyl methacrylate-based expanded particles according to one embodiment of the present invention" may hereinafter be referred to as "the present expanded particles".
[0080] The expandable resin particles can be made into expanded particles by a general expansion method. Specifically, for example, the following operations (1) to (3) are carried out in order to obtain methyl methacrylate-based expanded particles: (1) the expandable methyl methacrylate-based resin particles are placed in a vessel equipped with a stirrer; (2) the expandable methyl methacrylate-based resin particles are heated by a heat source such as steam; (3) the expandable methyl methacrylate-based resin particles are expanded to a desired expansion ratio by the above (2) to obtain methyl methacrylate-based expanded particles.
[0081] The expansion of the expandable methyl methacrylate-based resin particles can be said to be a preliminary expansion for obtaining a methyl methacrylate-based foamed molded article described later from the expandable methyl methacrylate-based resin particles. Therefore, the expansion of the expandable methyl methacrylate-based resin particles is sometimes called "pre-expansion", and the methyl methacrylate-based expanded particles are sometimes called "methyl methacrylate-based pre-expanded particles".
[0082] The present expanded beads have excellent packing properties. The packing properties of the expanded beads are evaluated based on the volume of the expanded beads actually placed in a container having a given shape and size when the expanded beads are placed in the container. In this specification, the packing properties of the expanded beads are evaluated based on the volume obtained by carrying out the following steps (1) to (3) in order: (1) placing methyl methacrylate-based expanded beads with an expansion ratio of 45 times into a container having a length of 120 mm, a width of 80 mm, and a thickness of 6 mm; (2) placing (transferring) the methyl methacrylate-based expanded beads in the container into a measuring cylinder; (3) measuring the volume of the methyl methacrylate-based expanded beads from the graduations of the measuring cylinder.
[0083] It is intended that the larger the volume, the better the packing properties of the expanded beads. 3 It is preferable that it is 51cm or more. 3 More preferably, it is 52 cm or more. 3 According to this configuration, the expanded beads can provide an expanded molded article having superior surface quality.
[0084] [5. Methyl methacrylate foamed moldings] A methyl methacrylate-based foamed molded article according to one embodiment of the present invention is a foamed molded article obtained by molding the methyl methacrylate-based foamed beads described in the section [4. Methyl methacrylate-based foamed beads] in a mold.
[0085] The "methyl methacrylate foam molded article according to one embodiment of the present invention" may hereinafter be referred to as the "present foam molded article."
[0086] The expanded beads can be molded into an expanded molded article by a general in-mold molding method. Specifically, for example, a methyl methacrylate expanded molded article can be obtained by carrying out the following operations (1) to (3) in order: (1) filling a mold that can be closed but cannot be sealed with methyl methacrylate expanded beads; (2) heating the methyl methacrylate expanded beads with water vapor; (3) fusing the methyl methacrylate expanded beads to each other by the above (2) to obtain a methyl methacrylate expanded molded article.
[0087] The methyl methacrylate foam molded article according to one embodiment of the present invention has excellent surface quality. In addition, the methyl methacrylate foam molded article according to one embodiment of the present invention has the advantage that when the foam molded article is buried in casting sand and molten metal is poured into the foam molded article to replace the foam molded article with the metal, there is little residue. For these reasons, the methyl methacrylate foam molded article according to one embodiment of the present invention can be suitably used as a lost model.
[0088] [6. Vanishing model] The efflorescent model according to one embodiment of the present invention includes a methyl methacrylate foam molded product described in the section [5. Methyl methacrylate foam molded product].
[0089] The lost foam according to one embodiment of the present invention has excellent surface quality and produces little residue when burned, and therefore can be suitably used for various metal castings.
[0090] An embodiment of the present invention may have the following configuration. (1) Expandable methyl methacrylate-based resin particles comprising a base resin containing, as structural units, methyl methacrylate units, acrylic ester units, and structural units derived from a crosslinking agent, and a foaming agent, the volume average particle diameter being 0.30 mm to 0.50 mm, in which, in the base resin, (a) the content of the methyl methacrylate units is 90.0 parts by weight to 99.0 parts by weight, and the content of the acrylic ester units is 1.0 parts by weight to 10.0 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, (b) the content of the structural units derived from the crosslinking agent is 0.05 parts by weight or more and less than 0.20 parts by weight, relative to 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units, and (c) the content of the structural units derived from an aromatic vinyl compound is 2.5 parts by weight or less, relative to 100 parts by weight of the base resin. (2) The expandable methyl methacrylate resin particles according to (1), wherein the acrylic ester is butyl acrylate. (3) Expanded methyl methacrylate-based particles obtained by expanding the expandable methyl methacrylate-based resin particles according to (1) or (2). (4) A methyl methacrylate foamed molded article obtained by molding the methyl methacrylate foamed particles according to (3) in a mold. (5) A lost model comprising the methyl methacrylate foam molded article according to (4). EXAMPLES
[0091] Examples and comparative examples are given below, but the present invention is not limited to these.
[0092] (Polymerization conversion rate of expandable methyl methacrylate resin particles) During polymerization, the aqueous suspension was sampled and filtered. The weight of the resin component remaining on the filter paper was measured, and the weight obtained was the weight before heating. Next, a polymerization inhibitor was added to the resin component, and the resin component was heated at 150°C for 30 minutes to remove volatile components. Thereafter, the weight of the obtained resin component was measured, and the weight obtained was the weight after heating. The polymerization conversion rate was calculated using the following formula. Polymerization conversion rate (%) = weight after heating / weight before heating × 100.
[0093] (Volume average particle size of expandable methyl methacrylate resin particles) The particle size of the expandable methyl methacrylate resin particles was measured on a volume basis using an image processing type Millitrac JPA particle size analyzer. The results were displayed as a cumulative distribution, and the particle size at 50% of the cumulative volume was taken as the volume average particle size.
[0094] (Expandable methyl methacrylate resin particles) The following (1) to (3) were carried out in order: (1) the expandable methyl methacrylate resin particles were placed in a steamer at 100°C, and the expandable methyl methacrylate resin particles were heated; (2) the methyl methacrylate foamed particles obtained by expanding the expandable methyl methacrylate resin particles were taken out of the steamer at regular intervals, and the expansion ratio of the methyl methacrylate foamed particles was measured; (3) the time from when the expandable methyl methacrylate resin particles were placed in the steamer until methyl methacrylate foamed particles with an expansion ratio of 45 times were obtained, that is, the heating time of the expandable methyl methacrylate resin particles, was measured. The expandability of the expandable methyl methacrylate resin particles was evaluated from the obtained heating time based on the following criteria. ◎ (Excellent): Heating time is less than 4 minutes 〇 (Good): Heating time is between 4 and 6 minutes × (bad): Heating time is more than 6 minutes.
[0095] Here, the expansion ratio of the methyl methacrylate type expanded beads was obtained by carrying out the following (1) to (3) in order: (1) 10 g of the methyl methacrylate type expanded beads were weighed out and then heated to 1000 cm 3 (2) The volume of 10 g of the methyl methacrylate-based expanded beads was measured from the graduations on the graduated cylinder; (3) The expansion ratio of the methyl methacrylate-based expanded beads was calculated by the following formula; Expansion ratio (cm 3 / g) = Volume of foam particles (cm 3 ) / 10g.
[0096] (Filling ability of methyl methacrylate-based expanded particles) The following steps (1) to (3) were carried out in order: (1) Methyl methacrylate-based expanded particles with an expansion ratio of 45 times were placed in a container with a length of 120 mm, a width of 80 mm, and a thickness of 6 mm; (2) The methyl methacrylate-based expanded particles in the container were placed (transferred) into a graduated cylinder; (3) The volume of the methyl methacrylate-based expanded particles was measured from the graduations of the graduated cylinder. The packing property of the methyl methacrylate-based expanded particles was evaluated from the obtained volume based on the following criteria. ◎(Excellent): Volume is 52cm 3 End 〇(Good): Volume is 50cm 3 Over 52cm 3 less than × (defective): Volume is 50cm 3 less than.
[0097] (Shrinkage of methyl methacrylate-based expanded particles) The expandable methyl methacrylate resin particles were expanded using a pressurized pre-expanding machine (manufactured by Daikai Kogyo, BHP) under conditions of a blowing steam pressure of 0.12 to 0.16 MPa to obtain methyl methacrylate expanded particles with an expansion ratio of 45 times. This operation resulted in obtaining methyl methacrylate expanded particles with an expansion ratio of 45 times. The obtained methyl methacrylate expanded particles were left in a room temperature (about 23°C) environment for one day, and then the degree of shrinkage of the surface of the methyl methacrylate expanded particles was observed. The shrinkage of the methyl methacrylate expanded particles was evaluated from the observation results of the surface of the methyl methacrylate expanded particles based on the following criteria. ⊚ (Excellent): No wrinkles are observed on the surface of the methyl methacrylate expanded beads by visual inspection, and the surface is glossy. ◯ (Good): No wrinkles are observed on the surface of the methyl methacrylate-based expanded beads by visual inspection, and no gloss is observed on the surface. × (bad): Wrinkles are visually observed on the surface of the methyl methacrylate type expanded beads.
[0098] (Surface quality of methyl methacrylate foam molded products) The surface condition of the methyl methacrylate foam molded article was visually observed. The surface quality of the methyl methacrylate foam molded article was evaluated from the observation results based on the following criteria. ◎ (Excellent): There are almost no gaps between particles on the surface, meaning the surface is very beautiful. ○ (Good): There are few grains on the surface, i.e. the surface is beautiful. × (bad): There are many intergranular spaces on the surface, i.e., the surface has a bad appearance.
[0099] (Evaluation of residues generated during combustion of methyl methacrylate foam molded products) Approximately 7g (approximately 300cm 3 The methyl methacrylate foam molded body of each of the above was ignited with a gas burner, burned, and visually observed for soot generation during combustion. The residues generated during combustion of the methyl methacrylate foam molded body were evaluated based on the following criteria from the soot observation results. ◎ (Excellent): Almost no soot is generated 〇(Good): A small amount of soot is generated. × (Poor): A large amount of soot is generated.
[0100] Example 1 In a 6L autoclave equipped with a stirrer, 150 parts by weight of water, 0.53 parts by weight of calcium phosphate tribasic as the first poorly water-soluble inorganic salt, 0.0075 parts by weight of sodium α-olefin sulfonate, 0.08 parts by weight of lauroyl peroxide, 0.1 parts by weight of 1,1-bis(t-butylperoxy)cyclohexane, 0.1 parts by weight of 1,6-hexanediol diacrylate as a crosslinking agent, and 0.24 parts by weight of n-dodecyl mercaptan were charged to prepare a mixed liquid containing the first poorly water-soluble inorganic salt. Then, (a) 95 parts by weight of methyl methacrylate and 5 parts by weight of butyl acrylate as a monomer mixture, and (b) 1 part by weight of toluene were charged into the mixed liquid to prepare an aqueous suspension. Next, the temperature of the aqueous suspension was raised to 80°C to start polymerization, that is, the initiation step was carried out. After 1 hour and 45 minutes had elapsed from the start of polymerization (after the initiation step), the polymerization conversion rate was measured and found to be 43%. After 1 hour and 45 minutes had elapsed since the start of polymerization (after the initiation step), 0.12 parts by weight of tribasic calcium phosphate was added as a second poorly water-soluble inorganic salt to the reaction mixture (aqueous suspension) to carry out the addition step.
[0101] After another 2 hours and 35 minutes, 1.5 parts by weight of cyclohexane and 9 parts by weight of normal-rich butane (in normal-rich butane, the weight ratio of normal butane to isobutane (normal butane / isobutane) is 70 / 30) as a blowing agent were charged into the aqueous suspension. Thereafter, the temperature of the aqueous suspension was raised to 101°C. Next, the temperature of the aqueous suspension was maintained at 101°C for 10 hours to carry out polymerization and impregnation of the blowing agent into the copolymer (copolymerization step and blowing agent impregnation step). Thereafter, the water-washed suspension was cooled. After cooling of the water-washed suspension, the obtained product was washed, dehydrated and dried to obtain expandable methyl methacrylate resin particles.
[0102] The obtained expandable methyl methacrylate resin particles were sieved using sieves with mesh sizes of 0.355 mm and 0.600 mm, and expandable methyl methacrylate resin particles having particle sizes of 0.355 mm to 0.600 mm were collected by this operation.
[0103] The obtained expandable methyl methacrylate resin particles were expanded using a pressurized pre-expansion machine (manufactured by Daikai Kogyo Co., Ltd., BHP) to obtain methyl methacrylate expanded particles with an expansion ratio of 45 times.
[0104] Next, the obtained methyl methacrylate-based expanded beads were molded in a KR-57 molding machine using a mold having a length of 450 mm, a width of 300 mm and a thickness of 10 mm, to obtain a methyl methacrylate-based expanded molded article.
[0105] According to the above-mentioned method, the volume average particle size and expandability of the expandable methyl methacrylate resin particles, the filling property and shrinkage property of the methyl methacrylate foamed particles, and the surface quality and residue at the time of combustion of the methyl methacrylate foamed molded article were evaluated. The evaluation results are shown in Table 1.
[0106] Example 2 The same procedure as in Example 1 was carried out, except that the monomer mixture used was changed to 97 parts by weight of methyl methacrylate and 3 parts by weight of butyl acrylate, to obtain expandable resin particles, expanded particles, and foamed molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0107] Example 3 The same operations as in Example 1 were carried out, except that the monomer mixture used was changed to 93 parts by weight of methyl methacrylate and 7 parts by weight of butyl acrylate, to obtain expandable resin particles, expanded particles, and foamed molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0108] Example 4 The same operations as in Example 1 were carried out, except that the monomer mixture used was changed to 94.5 parts by weight of methyl methacrylate and 5.5 parts by weight of methyl acrylate, to obtain expandable resin particles, expanded particles, and expanded molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0109] Example 5 Expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that the amount of 1,6-hexane diacrylate used as a crosslinking agent was changed to 0.06 parts by weight. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0110] Example 6 Expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that the amount of 1,6-hexane diacrylate used as a crosslinking agent was changed to 0.18 parts by weight. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0111] Example 7 In the initiation step, expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that the amount of tricalcium phosphate used, which is the first poorly water-soluble inorganic salt, was changed to 1.05 parts by weight. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0112] Example 8 In the initiation step, expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that the amount of tricalcium phosphate used as the first poorly water-soluble inorganic salt was changed to 0.41 parts by weight. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0113] Example 9 Further, expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that 1.0 part by weight of styrene was used as the aromatic vinyl compound. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 1.
[0114] Comparative Example 1 The same operations as in Example 1 were carried out, except that the monomer mixture used was changed to 100 parts by weight of methyl methacrylate and 0 parts by weight of butyl acrylate, to obtain expandable resin particles, expanded particles, and foamed molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0115] Comparative Example 2 The same operations as in Example 1 were carried out, except that the monomer mixture used was changed to 88 parts by weight of methyl methacrylate and 12 parts by weight of butyl acrylate, to obtain expandable resin particles, expanded particles, and foamed molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0116] Comparative Example 3 Except for changing the amount of 1,6-hexane diacrylate used as a crosslinking agent to 0 parts by weight, the same procedure as in Example 1 was carried out to obtain expandable resin particles, expanded particles, and an expanded molded article. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0117] Comparative Example 4 Expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that the amount of 1,6-hexane diacrylate used as a crosslinking agent was changed to 0.22 parts by weight. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0118] Comparative Example 5 In the initiation step, the amount of tricalcium phosphate, which is the first poorly water-soluble inorganic salt, was changed to 0.17 parts by weight, and the same operations as in Example 1 were carried out to obtain expandable resin particles, expanded particles, and expanded molded articles. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0119] Comparative Example 6 Further, expandable resin particles, expanded particles, and expanded molded articles were obtained in the same manner as in Example 1, except that 3.0 parts by weight of styrene was used as the aromatic vinyl compound. Each evaluation item was evaluated in the same manner as in Example 1. The evaluation results are shown in Table 2.
[0120] [Table 1]
[0121] [Table 2] [Industrial Applicability]
[0122] According to one embodiment of the present invention, it is possible to provide expandable methyl methacrylate resin particles capable of providing a foamed molded article having excellent surface quality and generating little residue upon combustion. Therefore, one embodiment of the present invention can be suitably used as a lost pattern when performing metal casting by the full mold method.
Claims
1. The present invention includes a base resin including, as structural units, a methyl methacrylate unit, an acrylic ester unit, and a structural unit derived from a crosslinking agent, and a foaming agent, The volume average particle size is 0.30 mm to 0.50 mm. In the base resin, (a) the content of the methyl methacrylate units is 90.0 parts by weight to 99.0 parts by weight and the content of the acrylic ester units is 1.0 parts by weight to 10.0 parts by weight, based on 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units; (b) the content of the structural unit derived from the crosslinking agent is 0.05 parts by weight or more and less than 0.20 parts by weight based on 100 parts by weight of the total amount of the methyl methacrylate units and the acrylic ester units; and (c) Expandable methyl methacrylate resin particles, in which the content of structural units derived from an aromatic vinyl compound is 2.5 parts by weight or less based on 100 parts by weight of the base resin.
2. 2. The expandable methyl methacrylate resin particles according to claim 1, wherein the acrylic ester is butyl acrylate.
3. 3. A methyl methacrylate-based expanded particle obtained by expanding the expandable methyl methacrylate-based resin particle according to claim 1 or 2.
4. A methyl methacrylate foamed molded article obtained by molding the methyl methacrylate foamed beads according to claim 3 in a mold.
5. A lost pattern comprising the methyl methacrylate foam molded article according to claim 4.
Citation Information
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