Expandable resin particles, expanded particles, expanded molded article, and method for producing expandable resin particles

By optimizing the composition and polymerization process of expandable resin particles with styrene and acrylonitrile units, the invention achieves low VOC emissions in foamed molded articles, addressing the high VOC issue of existing technologies and enhancing productivity.

JP7797374B2Active Publication Date: 2026-01-13KANEKA CORP
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Patent Information

Application Number
JP2022508205
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-18
Filing Date
2021-03-04
Publication Date
2026-01-13
Estimated Expiration
2041-03-04

AI Technical Summary

Technical Problem

Existing expandable polystyrene resin particles emit high levels of volatile organic compounds (VOCs), necessitating lengthy drying processes to meet automotive and building material standards, which increases costs and reduces productivity.

Method used

Developed expandable resin particles with a specific composition of styrene and acrylonitrile units, and a controlled addition of acrylonitrile during polymerization, resulting in a high D2230/D1600 ratio, which enhances gas barrier properties and reduces VOC emissions.

Benefits of technology

The new resin particles produce foamed molded articles with low VOC emissions, meeting industry standards without additional drying, thus improving productivity and reducing environmental impact.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An aspect of the present invention relates to expandable resin particles comprising a base resin including specific amounts of styrene units and acrylonitrile units and a blowing agent. The expandable resin particles give expanded particles which give an ATR-FTIR spectrum in which the D2230 / D1600 is 1.20 or greater.
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Description

[Technical Field]

[0001] The present invention relates to expandable resin beads, expanded beads, a foamed molded article, and a method for producing expandable resin beads. [Background technology]

[0002] Expandable polystyrene resin particles are well known as expandable resin particles. Expandable polystyrene resin particles are widely used because they can be easily used to obtain molded articles by in-mold foam molding and are inexpensive.

[0003] While foamed molded articles made from expandable polystyrene resin particles are lightweight and have excellent heat insulating properties, they have the problem of emitting large amounts of volatile organic compounds (hereinafter sometimes referred to as "VOCs," an acronym for Volatile Organic Compounds) per unit time. Therefore, when used in fields such as automobiles and building materials, which have strict VOC standards, foamed molded articles must be dried for several days, which is one of the reasons for the increased costs.

[0004] Techniques aimed at solving the above problems are disclosed in Patent Documents 1 to 3. Patent Document 1 describes a method for producing expandable polystyrene-based resin particles, which is characterized by polymerizing a styrene-based monomer using 1,1-bis(t-butylperoxy)-cyclohexane or 1,1-bis(t-amylperoxy)-3,3,5-trimethylcyclohexane as a polymerization initiator.

[0005] Patent Documents 2 and 3 disclose expandable resin particles containing a blowing agent in a copolymer of a styrene monomer, an acrylonitrile monomer, and an alpha-methylstyrene monomer. The techniques of Patent Documents 2 and 3 use 1,1-bis(t-amylperoxy)-3,3,5-trimethylcyclohexane as a polymerization initiator.

[0006] Patent Document 4 discloses a method for producing expandable polystyrene-based resin particles, in which a polymerizable monomer (A) containing a styrene-based monomer is impregnated with a blowing agent during or after suspension polymerization in an aqueous medium, characterized in that when the polymerization conversion rate of the polymerizable monomer (A) is 85% by weight or more, a polymerizable monomer (B) copolymerizable with the polymerizable monomer (A) is added in an amount of 0.5 to 3 parts by weight per 100 parts by weight of the polymerizable monomer (A) charged.

[0007] Patent Document 5 discloses expandable resin particles comprising a base resin containing styrene units and acrylonitrile units as constituent units, and a blowing agent, wherein the expandable resin particles have a styrene content of 20 ppm or less and an ethylbenzene content of 130 ppm or less. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] Japan Patent Application Publication No. 2017-052894 [Patent Document 2] Japan Patent Application Publication No. 2015-151486 [Patent Document 3] Japan Patent Application Publication No. 2016-164213 [Patent Document 4] Japanese Patent Publication No. 2008-260795 [Patent Document 5] International Publication No. WO2020 / 032178 Summary of the Invention [Problem to be solved by the invention]

[0009] The above-mentioned conventional technologies were improvements in terms of VOC reduction compared to the general expandable resin particles at the technological level at the time of their development. However, there is a high level of interest in VOC reduction in the market, and the above-mentioned conventional technologies still had room for further improvement in terms of VOC reduction.

[0010] One embodiment of the present invention has been made in consideration of the above-mentioned problems, and its object is to provide novel expandable resin beads that can provide novel expanded molded articles with low VOC emissions, as well as expanded beads, expanded molded articles, and methods for producing the expandable resin beads. [Means for solving the problem]

[0011] The present inventors have conducted extensive research to solve the above problems and have completed the present invention. That is, one embodiment of the present invention includes the following features.

[0012] Expandable resin particles comprising a base resin containing styrene units and acrylonitrile units as constituent units, and a blowing agent, wherein in the base resin, (a) the content of the styrene units is 80.0 parts by weight to 84.5 parts by weight, the content of the acrylonitrile units is 15.5 parts by weight to 20.0 parts by weight, and (b) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, and the D2230 / D1600 of the expanded beads obtained by expanding the expandable resin particles 22 times is 1.20 or more; wherein the D2230 / D1600 is the ratio in an infrared absorption spectrum obtained by Fourier transform infrared spectroscopy using a total reflection measurement method on the surface of the expanded beads, wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 It is the ratio of the absorbance (D1600) of the sample.

[0013] A method for producing expandable resin particles, comprising: a copolymerization step of copolymerizing a monomer mixture containing a styrene monomer and an acrylonitrile monomer; and a blowing agent impregnation step of impregnating the resulting copolymer with a blowing agent, wherein the copolymerization step further comprises: (a) a charging step of charging an initial monomer mixture containing the styrene monomer and a portion of the acrylonitrile monomer into a vessel; and (b) an adding step of adding a portion of the acrylonitrile monomer to a reaction mixture after initiation of polymerization of the initial monomer mixture, wherein in the copolymerization step, (a) a total amount of the styrene monomer used is 80.0 parts by weight to 84.5 parts by weight, and a total amount of the acrylonitrile monomer used is 15.5 parts by weight to 20.0 parts by weight, and (b) a total amount of the styrene monomer and the acrylonitrile monomer used is 100 parts by weight, and the amount of the portion of the acrylonitrile monomer added to the reaction mixture in the adding step is 2.0 parts by weight to 5.0 parts by weight. [Effects of the Invention]

[0014] According to one embodiment of the present invention, it is possible to provide novel expandable resin beads that can provide novel expanded molded articles with low VOC emissions, as well as expanded beads, expanded molded articles, and methods for producing the expandable resin beads. DETAILED DESCRIPTION OF THE INVENTION

[0015] One embodiment of the present invention will be described below, but the present invention is not limited thereto. The present invention is not limited to the respective configurations described below, and various modifications are possible within the scope of the claims. Furthermore, embodiments or examples obtained by appropriately 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 literature and patent documents described in this specification are incorporated herein by reference. Furthermore, unless otherwise specified in this specification, the term "A to B" representing a numerical range means "greater than or equal to A (including and greater than A) and less than or equal to B (including and less than B)."

[0016] 1. Technical Concept of an Embodiment of the Invention The inventors have conducted research and found that foamed molded articles obtained using the expandable resin particles disclosed in Patent Documents 1 to 3 require a long-term drying process in order to meet the VOC emission standards required in the automotive and building materials fields. In other words, the techniques of Patent Documents 1 to 3 have room for improvement in terms of VOC reduction and productivity.

[0017] The present inventors have conducted extensive research to provide expandable resin particles with a low VOC content and a foamed molded article with a low VOC emission rate, and have independently discovered the following novel findings: (i) the more acrylonitrile units present on the surface of the expandable resin particles, the lower the VOC emission rate of the foamed molded article provided by the expandable resin particles; and (ii) by not blending the entire amount of acrylonitrile used from the early stages of polymerization, but adding a portion of the acrylonitrile used during the polymerization, it is possible to provide expandable resin particles and the like having many acrylonitrile units on their surfaces.

[0018] Based on these new findings, the present inventors have completed one embodiment of the present invention.

[0019] [2. Expandable Resin Particles] Expandable resin particles according to one embodiment of the present invention are expandable resin particles comprising a base resin containing styrene units and acrylonitrile units as constituent units, and a blowing agent, wherein in the base resin, (a) the content of the styrene units is 80.0 parts by weight to 84.5 parts by weight, and the content of the acrylonitrile units is 15.5 parts by weight to 20.0 parts by weight, and (b) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, The expanded beads obtained by expanding the expandable resin beads 22 times have a D2230 / D1600 of 1.20 or more. Here, the D2230 / D1600 is the ratio of the ratio in the infrared absorption spectrum obtained by Fourier transform infrared spectroscopy using the total reflection measurement method on the surface of the expanded beads. wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 It is the ratio of the absorbance (D1600) of the sample.

[0020] The "expandable resin particles according to one embodiment of the present invention" may hereinafter be referred to as "the present expandable resin particles."

[0021] Because the expandable resin particles have the above-described structure, they have the advantage of being able to provide a foamed molded article with low VOC emissions. Specifically, the expandable resin particles have the advantage of being able to provide a foamed molded article with a styrene emission level of less than 1.00 ppm and an ethylbenzene emission level of less than 10.5 ppm. A foamed molded article with low VOC emissions immediately after production can meet the VOC standards required in the automotive and building materials industries, without requiring an additional high-temperature, long-term drying process. In other words, the expandable resin particles have the advantage of being able to provide a foamed molded article with high productivity. The styrene emission levels and ethylbenzene emission levels from foamed molded articles will be described later.

[0022] Here, the present expandable resin particles can be used to produce expanded particles by a known method, and the expanded particles can be used to perform in-mold foam molding (in-mold molding) by a known method to provide a foamed molded article.

[0023] (2-1.VOC) In a broad sense, VOC refers to "organic compounds that are gaseous when emitted into the atmosphere from an exhaust outlet or dispersed into the air," as defined, for example, in Japan's Air Pollution Control Act. Each technical field designates compounds that should be regulated as VOCs. For example, the Ministry of Health, Labor and Welfare of Japan has established indoor concentration guideline values ​​for the following substances: formaldehyde, acetaldehyde, toluene, ethylbenzene, xylene, styrene, nonanal, tetradecane, di-n-butyl phthalate, di-2-ethylhexyl phthalate, p-dichlorobenzene, chlorpyrifos, diazinon, and fenobucarb. The Japan Automobile Manufacturers Association has also established concentration restrictions for the following substances in automobile cabins: formaldehyde, acetaldehyde, toluene, ethylbenzene, xylene, styrene, tetradecane, di-n-butyl phthalate, and di-2-ethylhexyl phthalate.

[0024] In this specification, VOC refers to "organic compounds that may be contained in expandable resin particles, expanded particles, or foamed molded articles, which (a) are gaseous when emitted into the atmosphere or dispersed, and (b) have indoor concentration guideline values ​​set by the Ministry of Health, Labor, and Welfare of Japan." Specifically, VOC refers to styrene and ethylbenzene.

[0025] (2-2. Base resin) The base resin contained in the expandable resin particles contains styrene units and acrylonitrile units as structural units. In this specification, a "styrene unit" refers to a structural unit derived from a styrene monomer, and an "acrylonitrile unit" refers to a structural unit derived from an acrylonitrile monomer.

[0026] The base resin of the expandable resin particles contains acrylonitrile units as structural units, which provides a sufficiently strong bond between polymer chains, resulting in foamed molded articles that have excellent gas barrier properties and can suppress the rate of VOC emission.

[0027] When the total content of styrene units and acrylonitrile units in the base resin is taken as 100 parts by weight, the content of styrene units is 80.0 to 84.5 parts by weight, preferably 81.0 to 84.0 parts by weight, and more preferably 82.0 to 83.0 parts by weight. When the content of styrene units is (a) 80.0 parts by weight or more, the expandable resin particles have excellent moldability, and when (b) 84.5 parts by weight or less, the expandable resin particles can provide a foamed molded article having excellent heat resistance.

[0028] When the total content of styrene units and acrylonitrile units in the base resin is taken as 100 parts by weight, the content of acrylonitrile units is 15.5 to 20.0 parts by weight, preferably 16.0 to 19.0 parts by weight, and more preferably 17.0 to 18.0 parts by weight. When the content of acrylonitrile units is 15.5 parts by weight or more, the expandable resin particles provide a foamed molded article that has the following advantages: (a) excellent gas barrier properties, resulting in low emissions of styrene as a VOC, and (b) excellent heat resistance. When the content of acrylonitrile units is 20.0 parts by weight or less, the expandable resin particles have the following advantages: excellent moldability and increased polymerization stability during production.

[0029] The base resin contained in the expandable resin particles may further contain an alpha-methylstyrene unit as a structural unit. When the base resin further contains an alpha-methylstyrene unit, the glass transition temperature of the base resin increases, and the expandable resin particles can provide a foamed molded article with sufficient heat resistance. In this specification, the "alpha-methylstyrene unit" refers to a structural unit derived from an alpha-methylstyrene monomer.

[0030] When the total content of styrene units, acrylonitrile units, and alpha-methylstyrene units in the base resin is taken as 100 parts by weight, the content of alpha-methylstyrene units is preferably 0.0 to 15.0 parts by weight, more preferably 3.0 to 15.0 parts by weight, even more preferably 4.0 to 10.0 parts by weight, and particularly preferably 4.0 to 7.0 parts by weight. Alpha-methylstyrene monomers have a methyl group at the alpha position, which creates significant steric hindrance and therefore is characterized by poor reactivity. Furthermore, when alpha-methylstyrene units are contained in the base resin, the alpha-methylstyrene unit site in the base resin is characterized by being easily decomposed. Therefore, when the content of alpha-methylstyrene units in the base resin exceeds 0.0 parts by weight, in other words, when alpha-methylstyrene monomers are used in the production of the base resin, there is an advantage in that the polymerization rate does not become too fast during the production of expandable resin particles, making it easier to control the polymerization. Furthermore, when the content of alpha-methylstyrene units in the base resin is 15.0 parts by weight or less, (a) the resulting base resin is less likely to decompose, and the expandable resin particles can provide a foamed molded article with excellent flame retardancy, (b) the reactivity during the polymerization reaction is not deteriorated, and the weight-average molecular weight of the resulting base resin does not become too low, and (c) the expandable resin particles have a low styrene content as a VOC.

[0031] The base resin may contain, as a structural unit, a structural unit other than a styrene unit, an acrylonitrile unit, and an alpha-methylstyrene unit. The base resin may further contain, as a structural unit, a structural unit derived from an olefin-based monomer, a styrene-based monomer other than a styrene monomer and an alpha-methylstyrene monomer, and a structural unit derived from an acrylic acid ester-based monomer.

[0032] Examples of the olefin monomer include an ethylene monomer, a propylene monomer, a butene monomer, and a butadiene monomer.

[0033] Examples of styrene-based monomers other than styrene monomer and alpha-methylstyrene monomer include styrene-based derivatives such as para-methylstyrene monomer, t-butylstyrene monomer, and chlorostyrene monomer.

[0034] Examples of the acrylic acid ester monomer include alkyl acrylates such as methyl acrylate and butyl acrylate.

[0035] (2-3. Foaming Agent) Examples of the blowing agent contained in the expandable resin particles include, but are not limited to, (a) aliphatic hydrocarbons such as propane, isobutane, normal butane, isopentane, normal pentane, and neopentanecyclohexane, and (b) fluorohydrocarbons with an ozone depletion potential of zero such as difluoroethane and tetrafluoroethane. The above-mentioned blowing agents may be used alone or in combination of two or more.

[0036] The content of the blowing agent in the expandable resin particles is preferably 2 to 7 parts by weight, more preferably 3 to 6 parts by weight, and even more preferably 4 to 5 parts by weight, per 100 parts by weight of the expandable resin particles. According to the above configuration, (a) it is possible to produce expanded beads with an expansion ratio of 5 times or more using the expandable resin particles, and (b) the expandable resin particles can provide a foamed molded article with excellent heat resistance and flame retardancy.

[0037] (2-4. Other additives) In addition to the base resin and the blowing agent, the expandable resin particles may optionally contain other additives, such as solvents, plasticizers, cell regulators, flame retardants, flame retardant auxiliaries, heat radiation inhibitors, pigments, dyes, and antistatic agents.

[0038] Examples of plasticizers include high-boiling plasticizers with a boiling point of 200°C or higher. Examples of such plasticizers include (a) fatty acid glycerides such as stearic acid triglyceride, palmitic acid triglyceride, lauric acid triglyceride, stearic acid diglyceride, and stearic acid 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. When expandable resin particles contain a large amount of these plasticizers, the heat resistance of the foamed molded article that can be provided by the expandable resin particles tends to deteriorate. Therefore, the content of the plasticizer in the expandable resin particles can be appropriately set so that the foamed molded article that can be provided by the expandable resin particles has the desired heat resistance.

[0039] The expandable resin particles may contain a cell regulator to adjust the cell diameter in a foamed molded product that can be produced by the expandable resin particles. Examples of the cell regulator include (a) aliphatic bisamides such as methylene bisstearamide and ethylene bisstearamide, and (b) polyethylene wax. The content of the cell regulator in the expandable resin particles is preferably less than 0.1 parts by weight per 100 parts by weight of the expandable resin particles. According to this configuration, the foamed molded product that can be produced by the expandable resin particles does not suffer from deterioration in heat resistance or increased VOC emissions due to micronized cells.

[0040] The expandable resin particles may contain a flame retardant so that the foamed molded articles that can be produced by the expandable resin particles are flame-retardant. Brominated flame retardants are preferred. Examples of brominated flame retardants include 2,2-bis[4'-(2'',3''-dibromo-2''-methylpropyloxy)-3',5'-dibromophenyl]-propane (also known as tetrabromobisphenol A-bis(2,3-dibromo-2-methylpropyl)ether), hexabromocyclododecane, tetrabromocyclooctane, brominated polystyrene, and brominated butadiene-styrene block copolymer. Because the foamed molded articles that can be produced by the expandable resin particles are more likely to be flame-retardant, the expandable resin particles preferably contain 2,2-bis[4'-(2'',3''-dibromo-2''-methylpropyloxy)-3',5'-dibromophenyl]-propane as the flame retardant.

[0041] The content of the flame retardant in the expandable resin particles is preferably 1.5 to 3.0 parts by weight, and more preferably 1.8 to 2.5 parts by weight, per 100 parts by weight of the expandable resin particles. When the content of the flame retardant in the expandable resin particles is (a) 1.5 parts by weight or more, per 100 parts by weight of the expandable resin particles, the expandable resin particles can provide a foamed molded article with sufficient flame retardancy, and when (b) 3.0 parts by weight or less, the expandable resin particles have a low VOC content and excellent moldability.

[0042] When the expandable resin particles contain a flame retardant, the expandable resin particles preferably further contain a flame retardant aid. A radical generator such as a peroxide can be used as the flame retardant aid. Examples of such radical generators include dicumyl peroxide, t-butyl peroxybenzoate, 2,3-dimethyl-2,3-diphenylbutane, and 3,4-dialkyl-3,4-diphenylhexane. Because this has minimal effect on the polymerization reaction and can provide foamed molded articles with excellent flame retardancy, the expandable resin particles more preferably contain a peroxide as the flame retardant aid, with a 10-hour half-life temperature of 130°C or higher and 150°C or lower, and particularly preferably dicumyl peroxide.

[0043] The content of the flame retardant aid in the expandable resin particles is preferably 0.3 parts by weight or more and 1.5 parts by weight or less per 100 parts by weight of the expandable resin particles. When the content of the flame retardant aid in the expandable resin particles is (a) 0.3 parts by weight or more per 100 parts by weight of the expandable resin particles, the foamed molded article that can be provided by the expandable resin particles has sufficient flame retardancy, and when (b) 1.5 parts by weight or less per 100 parts by weight of the expandable resin particles, the foamed molded article that can be provided by the expandable resin particles has sufficient heat resistance.

[0044] The expandable resin particles preferably contain an anti-blocking agent on the surface of the expandable resin particles as an external additive. In the expansion process for obtaining expanded particles from expandable resin particles, the obtained expanded particles may bond together (also known as blocking). When the expandable resin particles contain an anti-blocking agent on the surface, blocking can be easily prevented.

[0045] Examples of the anti-blocking agent include (a) polysiloxane-based external additives such as methylphenylpolysiloxane, dimethylpolysiloxane, and diphenylpolysiloxane, and (b) fatty acid metal salts such as zinc stearate, calcium stearate, magnesium stearate, aluminum stearate, zinc oleate, magnesium oleate, zinc laurate, and calcium laurate. Polysiloxane-based external additives are preferred as the anti-blocking agent because of their significant anti-blocking effect. Among polysiloxane-based external additives, methylphenylpolysiloxane and diphenylpolysiloxane are preferred as the anti-blocking agent because they are thought to be less likely to peel off from the expandable resin particles, with methylphenylpolysiloxane being more preferred.

[0046] (2-5. Physical Properties) (D2230 / D1600) In this specification, "Fourier transform infrared spectroscopy analysis by attenuated total reflection measurement" may also be referred to as "ATR-FTIR analysis," and "infrared absorption spectrum obtained by ATR-FTIR analysis of a surface" may also be referred to as "ATR-FTIR spectrum." "D2230 / D1600 of expanded beads obtained by expanding the present expandable resin beads 22 times" means "the ratio in the ATR-FTIR spectrum of expanded beads obtained by expanding the present expandable resin beads 22 times, wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 The ratio of the absorbance (D1600) to the absorbance (D1600) of the sample.

[0047] Here, the expanded particles used to obtain ATR-FTIR spectra are obtained by treating the expandable resin particles in the following order (1) to (5): (1) sieving the expandable resin particles to separate those with particle diameters of 0.5 mm to 1.4 mm; (2) placing the separated expandable resin particles into a pressure-type expansion machine (e.g., a BHP manufactured by Daikai Kogyo Co., Ltd.); (3) next, blowing steam into the expansion machine at a blowing steam pressure of 0.08 MPa to 0.10 MPa and adjusting the pressure inside the expansion machine to a range of 0.01 MPa to 0.02 MPa, thereby setting the temperature inside the expansion machine (expansion temperature) to 100°C to 104°C; (4) heating the expandable resin particles at the expansion temperature to expand the expandable resin particles to 22 times the expansion ratio, thereby obtaining expanded particles; (5) next, leaving the obtained expanded particles at 25°C for 12 to 24 hours, thereby obtaining expanded particles used to obtain ATR-FTIR spectra.

[0048] Here, the expansion ratio of the expanded beads is calculated by carrying out the following steps (1) to (3) in order: (1) Weigh out 10 g of the expanded beads and measure them at 1000 cm 3 (2) Measure the volume of 10 g of expanded beads from the graduated cylinder; (3) Calculate the expansion ratio of the expanded beads using the following formula: Foaming ratio (cm 3 / g): Volume of foam particles (cm 3 ) / 10g.

[0049] In this specification, the expansion ratio of the expanded beads is calculated by the above-mentioned method, and therefore can also be called the bulk ratio.

[0050] In the ATR-FTIR spectrum, D2230 is derived from the carbon-nitrogen triple bond contained in the acrylonitrile unit, and D1600 is derived from the benzene ring contained in the styrene unit. wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1The ratio (D2230 / D1600) of the absorbance (D1600) of the expanded beads to the absorbance (D2230) can be said to represent the ratio of acrylonitrile units to styrene units on the surface of the expanded beads. It can be said that the ratio of acrylonitrile units to styrene units on the surface of the expanded beads is highly likely to be the same as the ratio of acrylonitrile units to styrene units on the surface of the expandable resin beads, which are the raw material for the expanded beads. Therefore, when the D2230 / D1600 ratio in the ATR-FTIR spectrum of expanded beads obtained by expanding the expandable resin beads 22 times is 1.20 or more, it can also be said that there is a high probability that the D2230 / D1600 ratio in the ATR-FTIR spectrum of the expandable resin beads is 1.20 or more.

[0051] The present expandable resin beads have the advantage of being able to provide foamed molded articles with low VOC emissions because the expanded beads obtained by expanding the expandable resin beads 22 times have a D2230 / D1600 ratio of 1.20 or greater. While the reasons for this are unclear, they are presumed to be due to the high D2230 / D1600 ratio of the expanded beads obtained by expanding the expandable resin beads 22 times. As described above, acrylonitrile units can sufficiently strengthen the bonding strength between polymer chains, thereby significantly improving gas barrier properties. Therefore, it is presumed that the higher the acrylonitrile units present on the surface of the expanded beads, the better the gas barrier properties of the surface of the expanded beads, resulting in less VOC emission from foamed molded articles obtained from the expanded beads. However, one embodiment of the present invention is not limited to this presumption.

[0052] The expandable resin particles of the present invention have a D2230 / D1600 ratio of preferably 1.30 or more, more preferably 1.40 or more, more preferably 1.50 or more, more preferably 1.60 or more, more preferably 1.70 or more, even more preferably 1.80 or more, and particularly preferably 1.90 or more.

[0053] In one embodiment of the present invention, the ATR-FTIR spectrum of the expanded beads can be measured using an FTIR device connected to an ATR measurement device. The method for measuring the ATR-FTIR spectrum will be described in detail in the examples below.

[0054] (VOC content of expandable resin particles) In this specification, the styrene and ethylbenzene contents (i.e., VOC contents) in the expandable resin particles are expressed as weight ratios (ppm) based on the weight of the expandable resin particles. The styrene content in the expandable resin particles is preferably less than 20 ppm, and the ethylbenzene content is preferably 130 ppm or less. The styrene content in the expandable resin particles is more preferably 10 ppm or less, more preferably 5 ppm or less, and even more preferably 0 ppm, i.e., below the detection limit in the measurement method described below. The ethylbenzene content in the expandable resin particles is more preferably 120 ppm or less, more preferably 110 ppm or less, and even more preferably 100 ppm or less. According to the above configuration, the expandable resin particles can provide a foamed molded article that can reduce the amount of VOCs released into the environment, thereby minimizing adverse effects on the human body.

[0055] Here, the contents of styrene and ethylbenzene in the expandable resin particles are calculated by carrying out the following steps (1) to (4) in order: (1) dissolving 0.25 g of expandable resin particles in 20 ml of methylene chloride together with cyclopentanol as an internal standard; (2) subjecting the resulting solution to gas chromatography (GC-2014, manufactured by Shimadzu Corporation) to perform gas chromatography and detect the amounts of styrene and ethylbenzene in the solution; (3) dissolving styrene or ethylbenzene in methylene chloride together with cyclopentanol as an internal standard, and subjecting the resulting solution to the gas chromatography to perform gas chromatography and obtain a calibration curve for styrene or ethylbenzene; (4) using the calibration curve and the results of gas chromatography performed on the solution, the weights of styrene monomer and ethylbenzene monomer contained in the solution, i.e., the expandable resin particles, are calculated as weight ratios (ppm) based on the weight of the expandable resin particles. The gas chromatography conditions are as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0056] (Weight average molecular weight of expandable resin particles) The weight-average molecular weight of the expandable resin particles is preferably 150,000 to 220,000, more preferably 160,000 to 220,000, even more preferably 170,000 to 220,000, and particularly preferably 180,000 to 210,000. When the weight-average molecular weight of the expandable resin particles is (a) 150,000 or more, the expandable resin particles can provide a foamed molded article with sufficient strength, flame retardancy, and heat resistance, and when (b) 220,000 or less, the expandable resin particles have good moldability. The weight-average molecular weight of the expandable resin particles can be measured, for example, by gel permeation chromatography (sometimes referred to as GPC).

[0057] In the production of expandable resin beads, the composition of the base resin does not change. Furthermore, in expanded beads produced using expandable resin beads, the structure of the expandable resin beads changes, but the composition of the expandable resin beads does not. Furthermore, in expanded beads produced using expandable resin beads, the structure of the expanded beads changes, but the composition of the expanded beads does not change. Therefore, the types of structural units and the contents of each structural unit obtained by analyzing expandable resin beads, expanded beads, or expanded molded articles can be considered to be the types of structural units and the contents of each structural unit contained in the base resin, which is their raw material, respectively. Furthermore, the weight-average molecular weight obtained by analyzing the base resin can be considered to be the weight-average molecular weight of expandable resin beads obtained using that base resin. Furthermore, the weight-average molecular weight obtained by analyzing the expanded beads or expanded molded articles can be considered to be the weight-average molecular weight of the expandable resin beads, which are their raw material.

[0058] The weight average molecular weight of the base resin, expanded beads, or expanded molded article can be obtained by measuring the base resin, expanded beads, or expanded molded article using gel permeation chromatography.

[0059] 3. Method for producing expandable resin particles A method for producing expandable resin particles according to one embodiment of the present invention includes a copolymerization step of copolymerizing a monomer mixture containing a styrene monomer and an acrylonitrile monomer, and a blowing agent impregnation step of impregnating the resulting copolymer with a blowing agent, wherein the copolymerization step includes: (a) a charging step of charging an initial monomer mixture containing the styrene monomer and a portion of the acrylonitrile monomer into a vessel; and (b) a step of introducing a portion of the acrylonitrile monomer into a reaction mixture after initiation of polymerization of the initial monomer mixture. and an adding step of adding a styrene monomer to the reaction mixture, wherein in the copolymerization step, (a) the total amount of the styrene monomer used is 80.0 parts by weight to 84.5 parts by weight, and the total amount of the acrylonitrile monomer used is 15.5 parts by weight to 20.0 parts by weight, and (b) the total amount of the styrene monomer and the acrylonitrile monomer used is 100 parts by weight, and in the adding step, the amount of the portion of the acrylonitrile monomer added to the reaction mixture is 2.0 parts by weight to 5.0 parts by weight.

[0060] The "method for producing expandable resin particles according to one embodiment of the present invention" may hereinafter be referred to as the "present production method."

[0061] Because the present production method has the above-described configuration, it can provide expandable resin particles that can provide expanded molded articles with low VOC emissions. Specifically, the present production method can provide expandable resin particles that can provide expanded molded articles with styrene emissions of less than 1.00 ppm and ethylbenzene emissions of less than 10.5 ppm. Furthermore, because the present production method has the above-described configuration, it has the advantage of being able to provide the expandable resin particles described in Section 2. Expandable Resin Particles. In other words, the method for producing expandable resin particles according to one embodiment of the present invention can be suitably used to produce the expandable resin particles described in Section 2. Expandable 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 Resin Particles.

[0062] Because of the above-described configuration, the present production method also has the advantage of being able to provide expandable resin particles with a low VOC content. The reason for this is unclear, but it is presumed as follows. It is presumed that the acrylonitrile monomer added to the reaction mixture after the initiation of polymerization of the initial monomer mixture makes it easier for styrene in the reaction mixture to be consumed in the polymerization reaction. As a result, it is presumed that styrene contained in the expandable resin particles as styrene monomer without being consumed in the polymerization reaction, i.e., expandable resin particles with a low content of styrene as a VOC, are obtained. However, one embodiment of the present invention is not limited to this presumption.

[0063] Each step of the present manufacturing method will be described below, but the description in Section [2. Expandable Resin Particles] will be used as appropriate for matters other than those detailed below. Furthermore, the present expandable resin particles, i.e., the expandable resin particles described in Section [2. Expandable Resin Particles], are preferably manufactured by the present manufacturing method, but may also be manufactured by methods 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.

[0064] (3-1.Copolymerization process) The copolymerization step is a step of copolymerizing a monomer mixture containing a styrene monomer and an acrylonitrile monomer to prepare a copolymer having structural units derived from the styrene monomer and structural units derived from the acrylonitrile monomer.

[0065] The styrene monomer may contain a small amount of ethylbenzene monomer used in its production process. In this specification, the content of ethylbenzene monomer in the styrene monomer is expressed as a weight ratio (ppm) based on the weight of the styrene monomer. The styrene monomer used in this production method preferably has a lower content of ethylbenzene monomer in the styrene monomer. The content of ethylbenzene monomer in the styrene monomer is, for example, preferably 130 ppm or less, more preferably 120 ppm or less, even more preferably 110 ppm or less, and still more preferably 100 ppm or less. According to the above configuration, the ethylbenzene content in the obtained expandable resin particles can be reduced.

[0066] In the copolymerization step, (a) the total amount of styrene monomer used is 80.0 to 84.5 parts by weight, the total amount of acrylonitrile monomer used is 15.5 to 20.0 parts by weight, and (b) the total amount of the styrene monomer and the acrylonitrile monomer used is 100 parts by weight. Here, the "total amount of acrylonitrile monomer used" includes a part of the amount of acrylonitrile monomer in the initial monomer mixture in the charging step and a part of the amount of acrylonitrile monomer added to the reaction mixture in the adding step described below.

[0067] Alpha-methylstyrene monomer may further be used in the copolymerization step, i.e., the monomer mixture may further comprise alpha-methylstyrene monomer.

[0068] The preferred embodiments of the total amount of styrene monomer, acrylonitrile monomer, and alpha-methylstyrene monomer used in the copolymerization step are the same as the preferred embodiments of the contents of styrene units, acrylonitrile units, and alpha-methylstyrene units in the base resin explained in the section (2-2. Base Resin). Therefore, the preferred embodiments of the total amount of styrene monomer, acrylonitrile monomer, and alpha-methylstyrene monomer used in the copolymerization step can be referenced in the section (2-2. Base Resin), by replacing "monomer" with "unit" and "total amount used" with "content."

[0069] In the copolymerization step, the method for copolymerizing the monomer mixture containing the styrene monomer and the acrylonitrile monomer is not particularly limited, and a conventionally known polymerization method can be used. The copolymerization step is preferably a suspension polymerization method in which polymerization is carried out in an aqueous suspension. Generally, suspension polymerization is superior to bulk polymerization in terms of removing heat of polymerization (i.e., heat removal). The copolymerization step will be described below using an example in which suspension polymerization is used.

[0070] In this specification, the term "aqueous suspension" refers to a liquid (aqueous solution) in which resin particles, expandable resin particles, and / or monomer droplets are dispersed in water or an aqueous solution using a stirrer or the like. The aqueous suspension may contain dissolved surfactants and monomers, or may contain dispersed therein water-insoluble dispersants, polymerization initiators, crosslinkers, plasticizers, cell regulators, flame retardants, and flame retardant aids, etc., along with the monomers. The polymerization initiators, crosslinkers, chain transfer agents, and polymerization modifiers used in the copolymerization step constitute part of the resulting copolymer.

[0071] When a seed suspension polymerization method is employed as the polymerization method, the monomers in the seed resin particles are also included in the monomer component.

[0072] In the copolymerization step, the weight ratio of water in the aqueous suspension is preferably 1.0 / 0.6 to 1.0 / 3.0, expressed as the weight ratio of the copolymer to be obtained / the weight of water.

[0073] A dispersant may be used in the copolymerization step. Examples of dispersants that can be used in the copolymerization step include (a) poorly water-soluble inorganic salts such as tricalcium phosphate, magnesium pyrophosphate, hydroxyapatite, and kaolin, and (b) water-soluble polymers such as polyvinyl alcohol, methyl cellulose, polyacrylamide, and polyvinylpyrrolidone. When using a poorly water-soluble inorganic salt as a dispersant, it is preferable to use an anionic surfactant such as sodium α-olefin sulfonate or sodium dodecylbenzene sulfonate in combination with the poorly water-soluble inorganic salt (dispersant) to increase dispersion stability. These dispersants may be further added to the aqueous suspension at any point during the copolymerization step, as needed.

[0074] The amount of dispersant used depends on the type of dispersant. When a poorly water-soluble inorganic salt is used as the dispersant, the amount of dispersant used is preferably 0.1 to 1.5 parts by weight per 100 parts by weight of water. When a water-soluble polymer is used as the dispersant, the dispersant is preferably used so that its concentration in the aqueous suspension is 30 to 100 ppm. Furthermore, when an anionic surfactant is used in combination with the poorly water-soluble inorganic salt, the anionic surfactant is preferably used so that its concentration in the aqueous suspension is 30 to 100 ppm.

[0075] In the copolymerization step of this production method, a chain transfer agent and a polymerization regulator may also be used. Examples of chain transfer agents include mercaptan compounds such as n-octyl mercaptan, n-dodecyl mercaptan, and t-dodecyl mercaptan. Examples of polymerization regulators include α-methylstyrene dimer, which is commonly used in the polymerization of acrylonitrile-styrene resins. α-methylstyrene dimer also contributes to adjusting the weight-average molecular weight of the copolymer, so it can also be considered a chain transfer agent. Chain transfer agents primarily function to adjust the weight-average molecular weight of the copolymer. Polymerization regulators primarily function to adjust the polymerization rate.

[0076] In the copolymerization step, it is preferable to use α-methylstyrene dimer as a chain transfer agent. This configuration has the advantages of (a) easily adjusting the polymerization rate and the weight-average molecular weight of the copolymer, and (b) hardly generating an odor from the foamed molded article that can be provided by the expandable resin particles.

[0077] The total amount of chain transfer agent and polymerization modifier used in the copolymerization step is preferably 0.1 to 0.6 parts by weight, more preferably 0.2 to 0.5 parts by weight, and particularly preferably 0.3 to 0.4 parts by weight, per 100 parts by weight of the monomer mixture, from the viewpoints of (a) the polymerization rate and (b) ease of controlling the weight-average molecular weight of the copolymer. The present inventors have surprisingly discovered that, compared with conventional techniques for producing expanded beads containing acrylonitrile, the present production method can reduce the total amount of chain transfer agent and polymerization modifier used. While the reason for this is unclear, it is presumed as follows: The reaction rate between acrylonitrile monomer and styrene monomer is faster than the reaction rate between styrene monomer and acrylonitrile monomer. Compared with conventional techniques for producing expanded beads containing acrylonitrile units, the present production method can reduce the amount of acrylonitrile monomer at the start of the polymerization reaction, i.e., the amount of acrylonitrile monomer in the initial monomer mixture during the charging step. Therefore, it is presumed that the total amount of the chain transfer agent and polymerization modifier used in the present production method can be reduced in order to obtain a desired polymerization rate and weight average molecular weight. However, one embodiment of the present invention is not limited to this presumption.

[0078] (3-2. Preparation process) The charging step is a step of charging a mixture of monomers used at the start of copolymerization, i.e., an initial monomer mixture, into a vessel. In the charging step, a dispersant, a polymerization initiator, a crosslinking agent, a plasticizer, a cell adjuster, a flame retardant, a flame retardant aid, etc. may be charged into the vessel together with the initial monomer mixture. The charging step can also be said to be a step of preparing an aqueous suspension for initiating copolymerization.

[0079] As the vessel, a known polymerization vessel can be used, for example, a heat-resistant and pressure-resistant vessel such as an autoclave.

[0080] In the charging step, the initial monomer mixture does not contain all of the acrylonitrile monomer used in the copolymerization step, but contains a portion of the acrylonitrile monomer used in the copolymerization step. In the charging step, the amount of the portion of the acrylonitrile monomer in the initial monomer mixture is preferably 12.0 to 18.0 parts by weight, more preferably 13.0 to 17.0 parts by weight, and even more preferably 14.0 to 16.0 parts by weight. According to the above configuration, expandable resin particles with excellent gas barrier properties can be obtained, and as a result, the expandable resin particles can provide a foamed molded article with low VOC emission.

[0081] The initial monomer mixture in the charging step does not need to contain all of the styrene monomer to be used in the copolymerization step. The initial monomer mixture may contain a portion of the styrene monomer to be used in the copolymerization step, and a portion or all of the remaining styrene monomer may be added to the reaction mixture after the initiation of polymerization of the initial monomer mixture, for example, in the adding step.

[0082] The method for initiating the polymerization (copolymerization) of the initial monomer mixture is not particularly limited. The copolymerization reaction can be initiated, for example, by raising the temperature of an aqueous suspension containing at least the initial monomer mixture and a polymerization initiator to a predetermined temperature.

[0083] The copolymerization step may further include a polymerization initiator mixing step in which the initial monomer mixture is mixed with a polymerization initiator to initiate polymerization (copolymerization) of the initial monomer mixture. The method for mixing the initial monomer mixture with the polymerization initiator is not particularly limited. Examples of such mixing methods include: (a) a method in which the polymerization initiator is added to a vessel containing the initial monomer mixture after the charging step, and the two are mixed; (b) a method in which the initial monomer mixture is added to a vessel containing the polymerization initiator in the charging step, and the two are mixed; and (c) a method in which the polymerization initiator and the initial monomer mixture are simultaneously added to a vessel in the charging step, and the two are mixed. "In a vessel" may also refer to, for example, an aqueous suspension in a vessel.

[0084] The copolymerization step may further include a temperature-raising step of raising the temperature of the aqueous suspension containing the initial monomer mixture and the polymerization initiator to initiate polymerization (copolymerization) of the initial monomer mixture. In the temperature-raising step, the temperature of the aqueous suspension containing the initial monomer mixture and the polymerization initiator is raised, for example, to the polymerization temperature of the first polymerization step described below.

[0085] (3-2. Addition process) The copolymerization step further includes an addition step of adding a part of the acrylonitrile monomer to be used in the copolymerization step to the reaction mixture after the initiation of polymerization of the initial monomer mixture. By having this configuration, the production method can provide expandable resin particles that can provide expanded particles having a D2230 / D1600 of 1.20 or more, i.e., expandable resin particles with a low VOC content and VOC emission amount.

[0086] In the adding step, the amount of the portion of the acrylonitrile monomer added to the reaction mixture is 2.0 to 5.0 parts by weight, preferably 2.5 to 4.5 parts by weight, and more preferably 3.0 to 4.0 parts by weight. According to this configuration, the D2230 / D1600 of the obtained expandable resin beads tends to be higher, and as a result, the obtained expandable resin beads have the advantage of being able to provide an expanded molded article with a lower VOC emission amount.

[0087] In the adding step, the part of the acrylonitrile monomer to be added to the reaction mixture may be added all at once to the reaction mixture, or may be divided into small amounts and added intermittently to the reaction mixture. In the adding step, the "partial amount of the acrylonitrile monomer to be added to the reaction mixture" means the total amount of the acrylonitrile monomer that was not charged into the vessel as the initial monomer mixture in the charging step and was subsequently added to the reaction mixture during the copolymerization.

[0088] The addition step is preferably carried out at any time after the polymerization conversion rate reaches 85%, more preferably at any time after it reaches 87%, even more preferably at any time after it reaches 88%, and particularly preferably at any time after it reaches 90%. According to this configuration, the expanded beads obtained by expanding the expandable resin beads to 22 times tend to have a higher D2230 / D1600 value, and as a result, the obtained expandable resin beads have the advantage of being able to provide a foamed molded article with a lower VOC emission amount.

[0089] The addition step is preferably carried out at any time before the polymerization conversion rate reaches 100%, in order to obtain expandable resin particles having a higher D2230 / D1600 value obtained by expanding the expandable resin particles by 22 times. In order to obtain expandable resin particles that can provide a foamed molded article with excellent fusion properties, the addition step is more preferably carried out at any time before the polymerization conversion rate reaches 98%, even more preferably at any time before it reaches 96%, and particularly preferably at any time before it reaches 94%.

[0090] Here, the polymerization conversion rate of the monomer is calculated by carrying out the following steps (1) to (7) in order: (1) filtering the reaction mixture (e.g., aqueous suspension) in the vessel with a filter paper (model number 21150 (diameter 150 mm), manufactured by ADVANTEC); (2) collecting and drying the residue obtained on the filter paper; (3) dissolving the dried residue (hereinafter also referred to as the dried residue) in methylene chloride together with the internal standard cyclopentanol; (4) subjecting the obtained solution to gas chromatography (GC-2014, manufactured by Shimadzu Corporation) to perform gas chromatography and detect the amount of monomer in the solution; (5) measuring the copolymerization reaction temperature. The monomers used in the reaction are dissolved in methylene chloride together with the internal standard cyclopentanol, and the resulting solution is subjected to the gas chromatography to obtain a calibration curve for the monomers used in the copolymerization reaction; (6) From the results of the gas chromatography performed on the calibration curve and the solution, the weight of the monomer in the solution, i.e., the dry residue, is calculated as a weight ratio (ppm) based on the weight of the dry residue; (7) Using the obtained result (weight ratio (ppm) of the monomer in the dry residue) with 10,000 ppm as 1%, the polymerization conversion is calculated based on the following formula: Polymerization conversion rate (%) = 100 - (weight ratio of monomer in dried residue (ppm) / 10,000). The gas chromatography conditions are as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0091] (1st polymerization step) The copolymerization step is preferably carried out in at least two stages by changing the polymerization temperature. For convenience, the two polymerization steps with different polymerization temperatures are hereinafter referred to as the first polymerization step and the second polymerization step. In other words, it can be said that the copolymerization step preferably includes a first polymerization step and a second polymerization step successively with different polymerization temperatures. This configuration has the advantage of easily producing expandable resin particles with a low VOC content (emission amount).

[0092] The first polymerization step is not particularly limited in terms of the polymerization temperature, polymerization time, etc., as long as the polymerization temperature is different from that of the second polymerization step.

[0093] The polymerization temperature in the first polymerization step is not particularly limited. The polymerization temperature in the first polymerization step is, for example, 85°C to 95°C, preferably 87°C to 93°C, more preferably 88°C to 92°C, and particularly preferably 89°C to 91°C. This configuration has the advantage of easily producing expandable resin particles having an absorbance ratio D2230 / D1600 of 1.20 or more, i.e., expandable resin particles with a low VOC content (emission amount). Furthermore, this configuration allows the decomposition amount of the polymerization initiator (e.g., polymerization initiator (X) described below) to be adjusted within an optimal range. This (a) facilitates adjustment of the polymerization rate (reaction rate), thereby improving polymerization stability, and (b) makes it easy to produce expandable resin particles within an appropriate molecular weight range.

[0094] The polymerization time of the first polymerization step is not particularly limited. The polymerization time of the first polymerization step is, for example, 4 to 9 hours, preferably 5 to 8 hours, and particularly preferably 6 to 7 hours. This configuration has the advantage of being able to achieve both productivity and polymerization stability.

[0095] In the first polymerization step, it is preferable to use, at least in part, a polymerization initiator having a 10-hour half-life temperature of 74° C. or higher and lower than 90° C. (hereinafter also referred to as polymerization initiator (X)).

[0096] In the first polymerization step, it is preferable to mainly use a polymerization initiator (X) as the polymerization initiator. Here, the term "mainly used" will be explained. For example, "In the first polymerization step, a polymerization initiator (X) is mainly used as the polymerization initiator" means that more than 50% by weight of the polymerization initiator (100% by weight) used in the first polymerization step is the polymerization initiator (X). Note that in the first polymerization step, the polymerization initiator (X) may coexist with a polymerization initiator other than the polymerization initiator (X) (for example, the polymerization initiator (Y) described below). "Use" can also be rephrased as "utilize" or "consume."

[0097] In the first polymerization step, it is preferable that 65% by weight or more of the polymerization initiator (100% by weight) used in the first polymerization step is the polymerization initiator (X), more preferably 80% by weight or more of the polymerization initiator (X), and particularly preferably 95% by weight or more of the polymerization initiator (X).

[0098] Examples of polymerization initiators (X) having a 10-hour half-life temperature of 74°C or higher but lower than 90°C include organic peroxides such as benzoyl peroxide (also known as dibenzoyl peroxide), ditoluyl peroxide, toluylbenzoyl peroxide, lauroyl peroxide, and di-t-butylperoxyhexahydroterephthalate, and azo compounds such as (b) azobisisobutyronitrile and azobisdimethylvaleronitrile. Among these polymerization initiators, benzoyl peroxide is particularly preferred as the polymerization initiator (X) because it facilitates the reaction of acrylonitrile, which can impart gas barrier properties. These polymerization initiators (X) may be used alone or in combination of two or more. The polymerization initiator (X) is suitable for use in the first polymerization step.

[0099] In the first polymerization step, it is particularly preferable to mainly use a monofunctional polymerization initiator such as benzoyl peroxide, ditoluyl peroxide, or toluylbenzoyl peroxide as the polymerization initiator (X). This configuration has the advantage that it is possible to easily obtain expandable resin particles having an absorbance ratio D2230 / D1600 of 1.20 or more, i.e., expandable resin particles with a low VOC content (emission amount).

[0100] In the first polymerization step, a polymerization initiator containing a polymerization initiator (X) having a 10-hour half-life temperature of 74°C or higher and lower than 90°C is used, and the polymerization initiator (X) preferably contains benzoyl peroxide. In the first polymerization step, a polymerization initiator containing a polymerization initiator (X) is used, and the polymerization initiator (X) preferably contains more than 50% by weight of benzoyl peroxide, more preferably 65% ​​by weight or higher, even more preferably 80% by weight or higher, and particularly preferably 95% by weight or higher, based on 100% by weight of the polymerization initiator (X). This configuration has the advantage of easily producing expandable resin particles having an absorbance ratio D2230 / D1600 of 1.20 or higher, i.e., expandable resin particles with a low VOC content (emission amount).

[0101] In the first polymerization step, it is preferable to mainly use (a) a polymerization initiator (X), (b) contain 95% by weight or more of benzoyl peroxide relative to 100% by weight of the polymerization initiator (X), (c) carry out the polymerization reaction at a polymerization temperature of 85°C to 95°C, and (d) for 4 to 9 hours. According to the above configuration, since the polymerization initiator (X) used in (a) the first polymerization step mainly decomposes in the first polymerization step, the polymerization reaction can be appropriately controlled, and (b) expandable resin particles with a low VOC content (emission amount) can be easily obtained.

[0102] In the first polymerization step, a polymerization initiator (X) is primarily used, and the amount of the polymerization initiator (X) used is preferably 0.08 to 0.25 parts by weight, more preferably 0.10 to 0.20 parts by weight, per 100 parts by weight of the monomer. In the first polymerization step, when the amount of the polymerization initiator (X) used is (a) 0.08 parts by weight or more per 100 parts by weight of the monomer, the polymerization proceeds sufficiently, and when it is (b) 0.25 parts by weight or less, the polymerization reaction does not proceed too quickly, making it easier to control the polymerization. Furthermore, when the amount of the polymerization initiator (X) used is 0.10 parts by weight or less and 0.20 parts by weight or less, the weight-average molecular weight of the resulting expandable resin particles is 170,000 to 220,000, resulting in high-quality expandable resin particles.

[0103] In this production method, the weight-average molecular weight of the copolymer can be adjusted by variously combining the types and amounts of the polymerization initiator and chain transfer agent, as well as the polymerization conditions for one polymerization step.

[0104] In the present production method, it is preferable that the above-mentioned acrylonitrile addition step is carried out during the first polymerization step. According to this configuration, the expanded beads obtained by expanding the expandable resin beads to 22 times tend to have a higher D2230 / D1600 value, and as a result, the expandable resin beads have the advantage of being able to provide foamed molded articles with lower VOC emissions.

[0105] (Second polymerization step) The second polymerization step is preferably carried out consecutively to the first polymerization at any time after the polymerization conversion rate reaches 90%. It can also be said that the first second polymerization step is preferably carried out at any time after the polymerization conversion rate reaches 90% or more. It can also be said that the second polymerization step is preferably started at any time after the polymerization conversion rate reaches 90% (or 90% or more).

[0106] The polymerization temperature of the second polymerization step is not particularly limited as long as it is different from the polymerization temperature of the first polymerization step. The polymerization temperature of the second polymerization step is, for example, 110 to 120°C, preferably 110 to 119°C, more preferably 110 to 118°C, more preferably 111 to 117°C, even more preferably 112 to 116°C, and particularly preferably 113 to 115°C. When the polymerization temperature of the second polymerization step is (a) 110°C or higher, the VOC content (particularly the styrene content) in the resulting expandable resin particles can be reduced. When the polymerization temperature is (b) 120°C or lower, the internal pressure of the polymerization machine used in the copolymerization step does not become too high, and high pressure resistance is not required, thereby eliminating the need for a heavy-duty polymerization machine and reducing production costs. That is, when the polymerization temperature of the second polymerization step is within the above-mentioned range, there is the advantage that VOCs can be efficiently reduced at or below the upper limit of the internal pressure of a typical polymerization machine. The polymerization temperature of the second polymerization step is preferably higher than that of the first polymerization step. According to this configuration, the VOC content in the resulting expandable resin particles can be reduced.

[0107] The polymerization time for the second polymerization step is not particularly limited. The polymerization time for the second polymerization step is, for example, 3 to 8 hours, more preferably 3 to 7 hours, and particularly preferably 4 to 6 hours. When the polymerization time for the second polymerization step is (a) 3 hours or more, the VOC content (particularly the styrene content) in the resulting expandable resin particles can be reduced. When the polymerization time for the second polymerization step is (b) 8 hours or less, the amount of decomposition of the flame retardant aid (e.g., dicumyl peroxide) is not too large, and the effect of the flame retardant aid is fully exerted when the foamed molded article is burned. As a result, the flame retardancy does not tend to deteriorate. In other words, when the polymerization time for the second polymerization step is within the above-mentioned range, there is an advantage that the VOC content can be reduced in the resulting expandable resin particles while maintaining qualities such as flame retardancy.

[0108] The polymerization time of the second polymerization step may be longer than 8 hours. The polymerization time of the second polymerization step may be, for example, 3 to 15 hours, 5 to 15 hours, 6 to 13 hours, 7 to 11 hours, or 8 to 9 hours. Expandable resin particles produced by a production method in which the polymerization time of the second polymerization step is within the above-mentioned range also represent one embodiment of the present invention.

[0109] In the second polymerization step, it is preferable to use, at least in part, a polymerization initiator having a 10-hour half-life temperature of 90°C or higher and 100°C or lower (hereinafter also referred to as polymerization initiator (Y)). In the second polymerization step, of the polymerization initiators (100% by weight) used (utilized or consumed) in the second polymerization step, it is preferable that 65% by weight or more is polymerization initiator (Y), more preferably 80% by weight or more is polymerization initiator (Y), and particularly preferably 95% by weight or more is polymerization initiator (Y).

[0110] Examples of polymerization initiators (Y) having a 10-hour half-life temperature of 90°C or higher and 100°C or lower include t-butylperoxyisopropyl monocarbonate, t-butylperoxy-2-ethylhexyl monocarbonate, t-amylperoxyisopropyl monocarbonate, t-amylperoxy-2-ethylhexyl monocarbonate, 1,1-bis(t-butylperoxy)cyclohexane, and 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane. These polymerization initiators (Y) may be used alone or in combination of two or more. The polymerization initiator (Y) is suitable for use in the second polymerization step.

[0111] 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane cleaves in two stages. The 10-hour half-life temperature at which 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane before cleavage undergoes the first stage of cleavage is 86°C. The 10-hour half-life temperature at which the intermediate product produced after the first stage of cleavage undergoes the second stage of cleavage is higher than the 10-hour half-life temperature of the first stage, at approximately 94°C. Regarding 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane, the final product produced after the second stage of cleavage primarily acts in the second polymerization step. Therefore, in this specification, 1,1-bis(t-butylperoxy)-3,3,5-trimethylcyclohexane is considered to be polymerization initiator (Y) rather than polymerization initiator (X).

[0112] As the polymerization initiator (Y), t-butylperoxy-2-ethylhexyl monocarbonate and t-amylperoxy-2-ethylhexyl monocarbonate are particularly preferred in that they promote the reaction between styrene remaining in the expandable resin particles or aqueous suspension and acrylonitrile.

[0113] In the second polymerization step, a polymerization initiator (Y) is primarily used. The amount of polymerization initiator (Y) used in the second polymerization step is preferably 0.25 to 0.90 parts by weight, more preferably 0.28 to 0.60 parts by weight, per 100 parts by weight of the monomer. When the amount of polymerization initiator (Y) used in the second polymerization step is within the above-mentioned range, the styrene and acrylonitrile remaining in the expandable resin particles or aqueous suspension tend to react more easily. Therefore, the proportion of styrene-acrylonitrile copolymer in the surface layer of the expandable resin particles tends to increase. As a result, there is an advantage in that expandable resin particles having an absorbance ratio D2230 / D1600 of 1.20 or higher, i.e., expandable resin particles with a low VOC content (emission amount), can be easily obtained.

[0114] The second polymerization step may be carried out in combination with the blowing agent impregnation step described below, that is, it may be carried out in the presence of a blowing agent.

[0115] (3-3. Foaming agent impregnation process) The blowing agent impregnation step can be carried out at any time, for example, together with the second polymerization step or after the second polymerization step.

[0116] In the blowing agent impregnation step, the copolymer obtained in the copolymerization step is impregnated with a blowing agent, thereby obtaining the expandable resin particle body.

[0117] The foaming agent impregnation step is initiated by adding a foaming agent to the aqueous suspension, and the specific treatment temperature (also referred to as impregnation temperature) and treatment time (also referred to as impregnation time) are not particularly limited.

[0118] The strength of the bonding strength between polymer chains in the base resin contained in the expandable resin particles and the efficiency of impregnation of the copolymer with a blowing agent during production of the expandable resin particles are inversely proportional. The present production method can provide expandable resin particles containing a base resin with strong bonding strength between polymer chains. Therefore, from the viewpoint of thoroughly impregnating the copolymer with the blowing agent, the impregnation temperature in the blowing agent impregnation step is preferably 110°C to 120°C, more preferably 111°C to 119°C, even more preferably 112°C to 118°C, and particularly preferably 114°C to 116°C. From the viewpoint of thoroughly impregnating the copolymer with the blowing agent, the impregnation time in the blowing agent impregnation step is preferably 3 to 8 hours, more preferably 3 to 7 hours, and particularly preferably 4 to 6 hours. When the second polymerization step is also performed as the blowing agent impregnation step, i.e., when the second polymerization step and the blowing agent impregnation step are performed together, the polymerization temperature of the second polymerization step can be said to be the impregnation temperature of the blowing agent impregnation step, and the polymerization time of the second polymerization step can be said to be the impregnation time of the blowing agent impregnation step.

[0119] (3-4. Drying process) The present production method preferably further includes a drying step of drying the expandable resin particles after the blowing agent impregnation step. The expandable resin particles are obtained in a dispersed state in an aqueous suspension. Therefore, when the present production method includes a drying step, the obtained expandable resin particles can be suitably used for the production of expanded beads, etc.

[0120] In the drying step, the method for drying the expandable resin particles is not particularly limited, and for example, a groove-type or cylindrical agitator dryer, a box-type or band-type through-air dryer, a fluidized bed dryer, or the like can be used.

[0121] The drying process in the drying step is preferably carried out at a temperature equal to or lower than the expansion temperature of the expandable resin particles, and from the viewpoint of productivity, it is more preferably carried out at 30°C to 55°C. The water content of the resulting expandable resin particles can be adjusted by adjusting the temperature at which the drying process is carried out (also referred to as the drying temperature). When the drying temperature is 30°C or higher, the water content in the resulting expanded particles does not become too high, which makes it possible to suppress the formation of fine bubbles in the expanded particles that can be provided by the expandable resin particles and reduce the amount of VOC emission. When the drying temperature is 55°C or lower, the water content in the resulting expanded particles does not become too low, which prevents the flame retardancy of the expanded molded article that can be provided by the expandable resin particles from being deteriorated.

[0122] [4. Foam particles] Expandable resin particles can be made into expanded particles by a general expansion method. Specific expansion methods include sequentially performing the following steps (1) to (3): (1) placing expandable resin particles in a container equipped with a stirrer, (2) heating the expandable resin particles with a heat source such as steam, and (3) expanding until a desired expansion ratio is reached to obtain expanded particles. Expanded particles are sometimes referred to as pre-expanded particles, and therefore the expansion method for obtaining pre-expanded particles is sometimes referred to as a pre-expanding method.

[0123] The equipment used for expanding the expandable resin particles and the expansion conditions may be appropriately set depending on the composition of the expandable resin particle body, the desired expansion ratio, etc., and are not particularly limited.

[0124] Expanded beads obtained by expanding the expandable resin beads according to one embodiment of the present invention also represent one embodiment of the present invention. Hereinafter, the "expanded beads according to one embodiment of the present invention" may also be referred to as "the present expanded beads." The present expanded beads can provide expanded molded articles with low VOC emissions, in other words, expanded molded articles with high productivity.

[0125] The expanded beads may have the following configuration. That is, expanded beads according to another embodiment of the present invention are expanded beads obtained by expanding expandable resin beads, and the expandable resin beads include a base resin containing styrene units and acrylonitrile units as constituent units, and a blowing agent, in which in the base resin (a) the content of the styrene units is 80.0 parts by weight to 84.5 parts by weight, the content of the acrylonitrile units is 15.5 parts by weight to 20.0 parts by weight, and (b) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, and in an infrared absorption spectrum obtained by Fourier transform infrared spectroscopy analysis of the surface of the expanded beads using a total reflection measurement method, wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 The ratio (D2230 / D1600) of the absorbance (D1600) of the

[0126] The expanded beads of the present invention may have the following configuration: That is, expanded beads according to another embodiment of the present invention (a) contain styrene units and acrylonitrile units as constituent units, (b) the content of the styrene units is 80.0 to 84.5 parts by weight, the content of the acrylonitrile units is 15.5 to 20.0 parts by weight, and (c) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, and (d) in an infrared absorption spectrum obtained by Fourier transform infrared spectroscopy analysis of the surface of the expanded beads by total reflection measurement method, wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 The ratio (D2230 / D1600) of the absorbance (D1600) of the

[0127] In this specification, the styrene and ethylbenzene contents (i.e., VOC contents) in the expanded beads are expressed as weight ratios (ppm) based on the weight of the expanded beads. The styrene (styrene monomer) content in the expanded beads is preferably 20 ppm or less, more preferably 10 ppm or less, more preferably 5 ppm or less, and even more preferably 0 ppm or less, i.e., below the detection limit in the measurement method described below. The ethylbenzene (ethylbenzene monomer) content in the expanded beads is preferably 130 ppm or less, more preferably 120 ppm or less, more preferably 110 ppm or less, and even more preferably 100 ppm or less. According to the above configuration, the expanded molded articles that can be produced from the expanded beads can reduce the amount of VOCs released into the environment, thereby reducing adverse effects on the human body.

[0128] The styrene and ethylbenzene contents in the expanded beads (i.e., VOC contents) can be measured using the same method as that for measuring the styrene and ethylbenzene contents in the expandable resin beads, except that expanded beads are used instead of expandable resin beads.

[0129] [5. Foam Molded Product] The expanded beads can be molded into a foamed molded article by a general in-mold molding method, such as filling a mold that can be closed but cannot be airtight with the expanded beads and heating and fusing the expanded beads with water vapor to form a foamed molded article.

[0130] The apparatus used for in-mold foam molding and the conditions for in-mold foam molding may be appropriately set depending on the composition of the expandable resin bead body, the desired expansion ratio, etc., and are not particularly limited.

[0131] A foamed molded article obtained by molding the expanded beads according to one embodiment of the present invention in a mold is also one embodiment of the present invention. Hereinafter, the "foamed molded article according to one embodiment of the present invention" may also be referred to as the "foamed molded article of the present invention." The foamed molded article of the present invention has the advantage of low VOC emissions.

[0132] In this specification, the amounts of styrene and ethylbenzene emitted from a foam molded product are expressed as weight ratios (ppm) based on the weight of the foam molded product. The foam molded product preferably has a styrene emission level of less than 1.00 ppm and an ethylbenzene emission level of less than 10.5 ppm. Here, the amounts of styrene and ethylbenzene emitted refer to the amounts (weight) of emissions released into a 20 ml container when 0.025 g of foam molded product is left in the container at 60°C for 2 hours, expressed as weight ratios (ppm) based on the weight of the foam molded product. The amount of styrene emitted from the foam molded product is preferably 0.90 ppm or less, more preferably 0.80 ppm or less, more preferably 0.70 ppm or less, even more preferably 0.60 ppm or less, and particularly preferably 0.50 ppm or less. The amount of ethylbenzene emitted from the present foamed molded product is more preferably 10.0 ppm or less, more preferably 9.0 ppm or less, more preferably 8.0 ppm or less, more preferably 7.0 ppm or less, even more preferably 6.0 ppm or less, and particularly preferably 5.0 ppm or less. If the amounts of styrene and ethylbenzene emitted from the present foamed molded product are within the above-mentioned ranges, there is an advantage that when the foamed molded product is used as an automobile interior material or a building insulation material, there is no risk of adverse effects on the body, such as sick building syndrome.

[0133] The amounts of styrene and ethylbenzene emitted from foamed molded articles (i.e., VOC emissions) are calculated by carrying out the following steps (1) to (7) in order: (1) preparing 0.025 g of foamed molded articles; (2) placing the foamed molded articles in a pressure-resistant glass container with a volume of 20 ml; (3) placing the pressure-resistant glass container in a headspace sampler (HS-10) manufactured by Shimadzu Corporation, which is connected to a gas chromatograph (GC-2014) manufactured by Shimadzu Corporation; (4) leaving the pressure-resistant glass container at 60°C for 2 hours in the HS-10; (5) after 2 hours, analyzing the gas chromatograph (GC-2014) manufactured by Shimadzu Corporation; (14) is used to analyze the gas in the pressure-resistant glass vessel, and the amounts of styrene and ethylbenzene in the gas are detected; (6) styrene or ethylbenzene is dissolved in methylene chloride together with the internal standard cyclopentanol, and the resulting solution is subjected to the gas chromatography to obtain a calibration curve for styrene or ethylbenzene; (7) from the calibration curve and the results of the gas chromatography performed on the gas in the pressure-resistant glass vessel, the weights of the emitted styrene and ethylbenzene are calculated as a weight ratio (ppm) based on the weight of the foamed molded product. The gas chromatography conditions are as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0134] The present foamed molded article is preferably a foamed molded article produced by producing expanded beads using the present expandable resin beads described in Section [2. Expandable Resin Beads] or the expandable resin beads produced by the present production method described in Section [3. Method for Producing Expandable Resin Beads], and then using the expanded beads. The present foamed molded article is preferably a foamed molded article produced by using the present expandable beads described in Section [4. Expanded Beads].

[0135] The present foam molded article preferably has excellent heat resistance. For example, when the present foam molded article is used as a heat insulating material or as a material for parts of an automobile exposed to sunlight, the present foam molded article preferably shows little deformation when used at 90°C or higher. Specifically, when a foam molded article with an expansion ratio of 20 times is left at 90°C for 168 hours, the dimensional change rate of the foam molded article before and after leaving it is preferably -0.4% to 0.4%, more preferably -0.35% to 0.35%, even more preferably -0.3% to 0.3%, and particularly preferably -0.25% to 0.25% or less.

[0136] The average chord length of the surface layer of the foamed molded article is preferably 50 μm or more but less than 100 μm, more preferably 50 μm to 90 μm, even more preferably 50 μm to 80 μm, and particularly preferably 60 μm to 80 μm. When the average cell diameter is 50 μm or more, (a) the cell membrane has a sufficient thickness, thereby minimizing dimensional change of the foamed molded article with respect to temperature; (b) reducing the amount of VOC and total VOC emitted; and (c) the cell membrane has a sufficient thickness, preventing melting of the cell membrane by pressurized steam during in-mold molding, thereby improving the surface properties of the foamed molded article. If the cell membrane is thin, the foamed molded article may expand in an environment of 90°C or higher, resulting in poor dimensional stability of the foamed molded article. The expansion of a foamed molded article in a high-temperature environment is sometimes referred to as tertiary expansion. When the average cell diameter is less than 100 μm, the surface properties of the foamed molded article are improved.

[0137] In this specification, the "average chord length of the surface layer" refers to the average chord length of the expanded beads lying in a straight line on the cut surface of the surface layer of the foamed molded article. The average chord length is a value obtained by measuring in accordance with ASTM-D-2842-97 using a photograph of the cut surface of the foamed molded article. The average chord length is determined by randomly selecting 10 expanded beads lying in a straight line on the cut surface of the surface layer of the foamed molded article in the photograph of the cut surface of the foamed molded article, measuring the chord length of each of the expanded beads, and averaging the results. The method for measuring the average chord length of the surface layer is described in detail in the Examples below.

[0138] The expansion ratio of the foamed molded article is preferably 5 times or more and less than 40 times, more preferably 10 times to 35 times, even more preferably 15 times to 30 times, and particularly preferably 20 times to 25 times. When the expansion ratio of the foamed molded article is (a) 5 times or more, the foamed molded article has the advantage of being lightweight, and when (b) it is less than 40 times, the foamed molded article has the advantage of being excellent in strength.

[0139] Here, the expansion ratio of the foam molded product is calculated by carrying out the following steps (1) to (3) in order: (1) measuring the dimensions of the foam molded product and calculating the volume; (2) measuring the weight of the foam molded product; and (3) calculating the expansion ratio of the foam molded product using the following formula: Foaming ratio (cm 3 / g): Volume of foamed molded product (cm 3 ) / weight of foamed molded product (g) That is, one embodiment of the present invention includes the following configuration.

[0140] [1] Expandable resin particles comprising a base resin containing styrene units and acrylonitrile units as constituent units, and a blowing agent, wherein in the base resin, (a) the content of the styrene units is 80.0 parts by weight to 84.5 parts by weight, the content of the acrylonitrile units is 15.5 parts by weight to 20.0 parts by weight, and (b) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, and the D2230 / D1600 of the expanded particles obtained by expanding the expandable resin particles 22 times is 1.20 or more, wherein the D2230 / D1600 is the ratio in an infrared absorption spectrum obtained by Fourier transform infrared spectroscopy using a total reflection measurement method on the surface of the expanded particles, wave number 2230cm -1 and absorbance (D2230) wave number 1600cm -1 It is the ratio of the absorbance (D1600) of the sample.

[0141] [2] Expandable resin particles according to [1], having a styrene content of less than 20 ppm and an ethylbenzene content of 130 ppm or less.

[0142] [3] Expanded particles obtained by expanding the expandable resin particles according to [1] or [2].

[0143] [4] A foamed molded article obtained by molding the foamed beads according to [3] in a mold.

[0144] [5] The foamed molded article according to [4], in which the amount of styrene emitted is less than 1.00 ppm and the amount of ethylbenzene emitted is less than 10.5 ppm.

[0145] [6] The foam molded article according to [4] or [5], having an expansion ratio of 5 times or more and less than 40 times. [7] The foam molded article according to [4] or [5], comprising: a copolymerization step of copolymerizing a monomer mixture containing a styrene monomer and an acrylonitrile monomer; and a blowing agent impregnation step of impregnating the resulting copolymer with a blowing agent, wherein the copolymerization step further comprises: (a) a charging step of charging an initial monomer mixture containing the styrene monomer and a portion of the acrylonitrile monomer into a vessel; and (b) an adding step of adding a portion of the acrylonitrile monomer into the reaction mixture after the initiation of polymerization of the initial monomer mixture, In the copolymerization step, (a) the total amount of the styrene monomer used is 80.0 parts by weight to 84.5 parts by weight, and the total amount of the acrylonitrile monomer used is 15.5 parts by weight to 20.0 parts by weight, and (b) the total amount of the styrene monomer and the acrylonitrile monomer used is 100 parts by weight, and in the addition step, the amount of the portion of the acrylonitrile monomer added to the reaction mixture is 2.0 parts by weight to 5.0 parts by weight.

[0146] [8] The method for producing expandable resin particles according to [7], wherein the adding step is carried out at any time after the polymerization conversion rate reaches 85%.

[0147] [9] The method for producing expandable resin particles according to [7] or [8], wherein in the charging step, the amount of the portion of the acrylonitrile monomer in the initial monomer mixture is 12.0 parts by weight to 18.0 parts by weight. [Example]

[0148] Examples and comparative examples are given below, but the present invention is not limited to these.

[0149] The polymerization initiators, flame retardants, flame retardant assistants, chain transfer agents and plasticizers used in the examples and comparative examples are as follows. Polymerization initiator (X): Benzoyl peroxide (Niper BW (NOF Corporation)) (10-hour half-life temperature 74°C) Polymerization initiator (Y): t-Butylperoxy-2-ethylhexyl monocarbonate (Perbutyl E (manufactured by Nippon Oil & Fats Co., Ltd.)) (10-hour half-life temperature 99°C); and 1,1-bis(t-butylperoxy)3,3,5-trimethylcyclohexane (manufactured by Arkema Yoshitomi Co., Ltd.) (10-hour half-life temperature: 86°C). Flame retardant: Tetrabromobisphenol A-bis(2,3-dibromo-2-methylpropyl) ether (Pyroguard SR-130 (Dai-ichi Kogyo Seiyaku Co., Ltd.)); and Hexabromocyclododecane (HBCD). Flame retardant synergists: Dicumyl peroxide (Percumyl D (manufactured by Nippon Oil & Fats Co., Ltd.)); and 2,3-Dimethyl-2,3-diphenylbutane (Nofumer BC (manufactured by Nippon Oil & Fats Co., Ltd.)). Chain transfer agent: α-Methylstyrene dimer (MSD (manufactured by Nippon Oil & Fats Co., Ltd.)). Plasticizer: Palm oil.

[0150] (Method of producing macromonomer) The macromonomer used in Comparative Example 6 was produced based on the method described in Production Example 2 and Example 2 of JP-A No. 2004-203932. Specifically, the method is as follows.

[0151] The various measurement and evaluation methods used in the examples and comparative examples are as follows. Unless otherwise specified, "parts" and "%" are by weight and refer to "parts by weight" and "% by weight", respectively.

[0152] (Method for measuring polymerization conversion rate) The polymerization conversion rate of the monomer was calculated by carrying out the following steps (1) to (7) in order: (1) The reaction mixture (e.g., aqueous suspension) in the vessel was filtered through a filter paper (model number 21150 (diameter 150 mm), manufactured by ADVANTEC); (2) The residue obtained on the filter paper was collected and dried; (3) The dried residue (hereinafter also referred to as the dried residue) was dissolved in methylene chloride together with the internal standard cyclopentanol; (4) The obtained solution was subjected to gas chromatography (GC-2014, manufactured by Shimadzu Corporation) to perform gas chromatography and detect the amount of monomer in the solution; (5) The monomer used in the copolymerization reaction was analyzed using the internal standard cyclopentanol. The resulting solution was dissolved in methylene chloride together with ethanol, and the resulting solution was subjected to gas chromatography. By performing gas chromatography, a calibration curve of the monomer used in the copolymerization reaction was obtained; (6) From the results of the calibration curve and the gas chromatography performed on the solution, the weight of the monomer in the solution, i.e., the dry residue, was calculated as a weight ratio (ppm) based on the weight of the dry residue; (7) Using the obtained result (weight ratio (ppm) of the monomer in the dry residue) with 10,000 ppm as 1%, the polymerization conversion rate was calculated according to the following formula: Polymerization conversion rate (%) = 100 - (weight ratio of monomer in dried residue (ppm) / 10,000). The gas chromatography conditions were as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0153] (Method for measuring the weight-average molecular weight (Mw) of expandable resin particles) A sample was prepared by dissolving 0.02 g of expandable resin particles in 20 cc of tetrahydrofuran. The sample was subjected to gel permeation chromatography (GPC) (Tosoh Corporation HLC-8020, column: TSKgel Super HZM-H, column temperature: 40°C, flow rate: 0.35 ml / min.) to measure the weight-average molecular weight (Mw) of the expandable resin particles. The weight-average molecular weight was calculated as a value converted into standard polystyrene. The results (weight-average molecular weight (Mw)) are shown in Table 3.

[0154] (Method for measuring styrene and ethylbenzene content in expandable resin particles) The styrene and ethylbenzene contents in the expandable resin particles were calculated by the following steps (1) to (4): (1) 0.25 g of expandable resin particles were dissolved in 20 mL of methylene chloride together with cyclopentanol as an internal standard; (2) the resulting solution was subjected to gas chromatography (GC-2014, Shimadzu Corporation) to detect the amounts of styrene and ethylbenzene in the solution; (3) styrene or ethylbenzene was dissolved in methylene chloride together with cyclopentanol as an internal standard, and the resulting solution was subjected to gas chromatography to obtain a calibration curve for styrene or ethylbenzene; (4) From the results of the calibration curve and the gas chromatography performed on the solution, the weights of styrene monomer and ethylbenzene monomer contained in the solution, i.e., the expandable resin particles, were calculated as weight ratios (ppm) based on the weight of the expandable resin particles. The results are shown in Table 3. The gas chromatography conditions were as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0155] (Method of manufacturing expanded beads) The expandable resin particles obtained in the examples and comparative examples were treated in the following order (1) to (5) to obtain expanded particles: (1) The expandable resin particles were sieved to separate expandable resin particles with a particle diameter of 0.5 mm to 1.4 mm; (2) The separated expandable resin particles were placed in a pressure expansion machine (e.g., a BHP manufactured by Daikai Kogyo Co., Ltd.); (2) Next, steam was blown into the expansion machine at a blowing steam pressure of 0.08 MPa to 0.10 MPa, and the pressure inside the expansion machine was adjusted to a range of 0.01 MPa to 0.02 MPa, thereby setting the temperature inside the expansion machine (expansion temperature) to 100°C to 104°C; (3) The expandable resin particles were heated at the expansion temperature to expand to a magnification of 22 times or 42 times, thereby obtaining expanded particles; (4) Next, the obtained expanded particles were left at 25°C for 12 to 24 hours.

[0156] The expanded beads obtained as described above were measured and evaluated for expansion ratio, blocking property, and D2230 / D1600 by the following methods. Note that D2230 / D1600 was measured only for expanded beads with an expansion ratio of 22 times.

[0157] (Method for measuring expansion ratio of expanded beads) The expansion ratio of the expanded beads was calculated by carrying out the following steps (1) to (3) in order: (1) 10 g of the expanded beads were weighed out and 3 (2) The volume of 10 g of expanded beads was measured from the scale of the measuring cylinder; (3) The expansion ratio of the expanded beads was calculated using the following formula: Foaming ratio (cm 3 / g): Volume of foam particles (cm 3 ) / 10g.

[0158] (Method for measuring and evaluating blocking) The blocking amount is the amount of lumps formed by the bonding of expanded beads in the pre-expansion machine when expanded beads are produced from expandable resin beads by the above-mentioned method. If the blocking amount is large, poor filling of the expanded beads occurs during the in-mold molding process using the expanded beads. Therefore, a small blocking amount is preferable.

[0159] The entire amount of expanded beads obtained by the above method was placed on a wire mesh with a mesh spacing of 1 cm, and the wire mesh was sieved to allow the expanded beads to pass through the wire mesh. The weight of the expanded bead mass remaining on the wire mesh was measured, and the amount of blocking was calculated using the following formula. Blocking amount (%) = Weight of foamed particle mass / Total weight of foamed particles × 100 The blocking property was evaluated based on the amount of blocking obtained, according to the following criteria. The results (blocking property) are shown in Table 3. Good: Less than 0.05% △ (Pass): Less than 0.01% 0.05% or more × (defective): 0.1% or more.

[0160] (Method for measuring D2230 / D1600 of expanded particles) Ten expanded beads were randomly selected from the expanded beads obtained as described above. The surfaces of the ten expanded beads were subjected to ATR-FTIR analysis under the following conditions to obtain infrared absorption spectra. Apparatus: FTIR [Shimadzu Corporation, FTIR-8400S] connected to a single-reflection attenuated total reflection (ATR) measurement device [PIKE, MIRacle] ATR prism (high refractive index crystal type): Zinc selenide (ZnSe) Incident angle: 45° Measurement area: 4000cm -1 ~600cm -1 Detector: DLATGS Penetration depth: 1.66 Number of reflections: 1 Resolution: 4cm -1 Accumulation count: 20 times Other: The infrared absorption spectrum measured without contact with the sample was used as the background, and processing that does not affect the measured spectrum was performed.

[0161] In ATR-FTIR analysis, the intensity of the infrared absorption spectrum obtained by the measurement changes depending on the degree of adhesion between the sample and the high refractive index crystal. -1The degree of adhesion between the sample and the high refractive index crystal was adjusted so that the absorbance was 0.05 to 0.10.

[0162] When the surface of the expanded beads was measured, the surface of the expanded beads was brought into close contact with the ATR prism.

[0163] From the infrared absorption spectrum obtained as described above, -1 absorbance (D2230) and 1600cm -1 The absorbance ratio (D2230 / D1600) of the absorbance (D1600) of the expanded resin particles was calculated. ATR-FTIR analysis was performed on the surface of each of 10 randomly selected expanded beads to obtain an infrared absorption spectrum, and 10 absorbance ratios (D2230 / D1600) were also obtained. Of the 10 absorbance ratios (D2230 / D1600), the minimum and maximum were excluded. The arithmetic mean of the remaining eight absorbance ratios was then used as the D2230 / D1600 of the expanded beads obtained by expanding the resulting expandable resin particles 22 times. The results are shown in Table 3.

[0164] It should be noted that Examples 4 and 6 are identical to Example 5 up to the production of expandable resin particles, but differ from Example 5 in the production of expanded beads using the obtained expandable resin particles and subsequent steps. That is, the expandable resin particles of Examples 4 and 6 are identical to those of Example 5, but the expanded beads and foamed molded articles are different from those of Example 5. Therefore, the D2230 / D1600 of the expanded beads obtained by expanding the expandable resin particles of Examples 4 and 6 22 times are identical to those of Example 5, and therefore this is omitted in Table 3 and indicated by "-".

[0165] The foamed molded article is produced as follows.

[0166] (Method of manufacturing foam molded article) The obtained expanded beads were molded in a molding machine (Daisen, KR-57) at a blowing steam pressure of 0.05 MPa to 0.08 MPa and a heating time of 10 to 20 seconds, to obtain flat expanded molded bodies with an expansion ratio (bulk ratio) of 20 or 40 times and measuring 400 mm in length, 350 mm in width, and 20 mm in thickness.

[0167] The resulting foamed molded articles were evaluated for expansion ratio, styrene and ethylbenzene emission amounts, average chord length of the surface layer, and heat resistance by the following methods.

[0168] (Method for measuring expansion ratio of foam molded product) The expansion ratio of the foam molded article was calculated by carrying out the following steps (1) to (3) in this order: (1) measuring the dimensions of the foam molded article and calculating the volume; (2) measuring the weight of the foam molded article; and (3) calculating the expansion ratio of the foam molded article using the following formula: Foaming ratio (cm 3 / g): Volume of foamed molded product (cm 3 ) / weight of foamed molded product (g) (Method for measuring the amount of styrene and ethylbenzene emitted from foamed molded products) The amounts of styrene and ethylbenzene emitted from the foamed molded article (i.e., VOC emissions) were calculated by carrying out the following steps (1) to (7) in order: (1) 0.025 g of foamed molded article was prepared; (2) The foamed molded article was placed in a pressure-resistant glass container with a volume of 20 ml; (3) The pressure-resistant glass container was placed in a headspace sampler (HS-10) manufactured by Shimadzu Corporation, which was connected to a gas chromatograph (GC-2014) manufactured by Shimadzu Corporation; (4) The pressure-resistant glass container was left at 60°C for 2 hours in the HS-10; (5) After 2 hours, the gas chromatograph (GC-2014) manufactured by Shimadzu Corporation was used to measure the amount of styrene and ethylbenzene emitted from the foamed molded article. The gas in the pressure-resistant glass vessel was analyzed using the styrene and ethylbenzene analyzer (14) to detect the amounts of styrene and ethylbenzene in the gas; (6) Styrene or ethylbenzene was dissolved in methylene chloride together with the internal standard cyclopentanol, and the resulting solution was subjected to gas chromatography to obtain a calibration curve for styrene or ethylbenzene; (7) From the calibration curve and the results of gas chromatography performed on the gas in the pressure-resistant glass vessel, the weights of emitted styrene and ethylbenzene were calculated as weight ratios (ppm) based on the weight of the foamed molded product. The results are shown in Table 3. The gas chromatography conditions were as follows: Capillary column: GL Science Rtx-1 Column temperature conditions: 50°C to 80°C at a rate of 3°C / min, then 80°C to 180°C at a rate of 10°C / min Carrier gas: helium.

[0169] (Method for measuring the average chord length of the surface layer) The average chord length of each foamed bead of the foamed molded article was measured using a photograph of the cross section of the foamed molded article projected in accordance with ASTM-D-2842-97. Specifically, in the photograph of the cross section of the foamed molded article projected, the average chord length was measured from the foamed beads present on a straight line on the cross section of the surface layer of the foamed molded article. Ten foamed beads present on the surface layer of the foamed molded article were randomly selected, and the average of the chord lengths of these foamed beads was used as the final value (average chord length).

[0170] (Weldability evaluation) The fusion rate was calculated as follows: (1) the foamed molded body was broken; (2) the broken surface was observed, and the number of particles that were broken, not at the particle interface, among all particles (100%) present in the observation field was counted; (3) the obtained results were used to calculate the fusion rate according to the following formula: Fusion rate (%) = (number of particles that are broken, not at the particle interface) / total number of particles present in the observation field × 100. The heat resistance of the foamed molded article was evaluated from the fusion rate obtained based on the following criteria. ◎ (Excellent): Fusion rate is 90% or more Good (Good): Fusion rate is 70% or more, but less than 90% × (poor): The fusion rate is less than 70%.

[0171] (Heat resistance evaluation) The foamed molded article was left at 90°C for 168 hours, and the dimensional change rate of the foamed molded article before and after leaving was calculated to evaluate the heat resistance of the foamed molded article.

[0172] Foamed molded articles with an expansion ratio of 20 or 40 times were dried at 60°C for 24 hours. Then, sample pieces measuring 150 mm in length, 150 mm in width, and 20 mm in thickness were cut out from the foamed molded articles. The length and width of the sample pieces were measured at three locations each to determine their initial dimensions (D). The foamed molded articles were then left in a dryer at 90°C for 168 hours, and the same measurements were repeated after leaving them thereafter to determine their dimensions (E) after drying at 90°C. The dimensional change rate was calculated using the following formula. Heat resistance was evaluated based on the absolute value of the dimensional change rate according to the following criteria. The absolute value of the dimensional change rate and the heat resistance evaluation results are shown in Table 3.

[0173] A positive value for the dimensional change indicates that the initial (before drying) dimension (D) is larger than the dried dimension (E), i.e., the foamed molded article has shrunk. A negative value for the dimensional change indicates that the dried dimension (E) is larger than the initial dimension (D), i.e., the foamed molded article has expanded.

[0174] Dimensional change rate (%) = ((D) - (E)) / (D) x 100 ◎ (Excellent): Absolute value of dimensional change rate is 0.3 or less ○ (Good): Absolute value of dimensional change rate is over 0.3 and 0.4 or less △ (Pass): Absolute value of dimensional change rate is over 0.4 and 0.5 or less × (bad): Absolute value of dimensional change rate is over 0.5 (Examples 1 to 8, Comparative Examples 1 to 6) A 6 L autoclave equipped with a stirrer was charged with 110 parts by weight of water, 0.105 parts by weight of tribasic calcium phosphate (dispersant), 0.0075 parts by weight of sodium α-olein sulfonate (surfactant), and the amounts of polymerization initiator, flame retardant, flame retardant aid, chain transfer agent, and plasticizer listed in Tables 1 and 2. The autoclave was degassed using a vacuum pump until the gauge pressure reached 0.06 MPa.

[0175] Thereafter, stirring of the raw materials charged in the autoclave was started with a stirrer. While stirring the raw materials, styrene, acrylonitrile, and macromonomer in the amounts shown in Tables 1 and 2 in the column of initial raw materials were further charged into the autoclave. Thereafter, the raw materials charged in the autoclave were stirred with a stirrer for 30 minutes. Thereafter, the temperature inside the autoclave was raised to 90°C, and the temperature inside the autoclave was maintained at the "polymerization temperature of the first polymerization step" shown in Tables 1 and 2 for the "polymerization time of the first polymerization step," thereby carrying out the first polymerization step.

[0176] During the first polymerization step, after the "polymerization time at the time of addition" shown in Tables 1 and 2 had elapsed from the start of the first polymerization step, the monomers shown in the "added monomer" column in the "addition step" column of Tables 1 and 2 were added to the autoclave in the amounts shown in Tables 1 and 2. When the monomers shown in the "added monomer" column were added to the autoclave, the ratio of the monomers copolymerized in the "initial raw material charge" column in the autoclave, i.e., the polymerization conversion, was measured by the method described above. The results are shown in the "polymerization conversion at the time of addition" column in Tables 1 and 2.

[0177] After the first polymerization step was completed, i.e., after the "polymerization time of the first polymerization step" listed in Tables 1 and 2 had elapsed, (i) 5 parts by weight of normal-rich butane (parts by weight of normal butane / parts by weight of isobutane = 70 / 30) was charged into the autoclave, and (ii) the autoclave was maintained at the "polymerization temperature of the second polymerization step" listed in Tables 1 and 2 for the "polymerization time of the second polymerization step." This carried out the blowing agent impregnation step along with the second polymerization step. That is, the "polymerization temperature of the second polymerization step" and the "polymerization time of the second polymerization step" listed in Tables 1 and 2 are the impregnation temperature and impregnation time, respectively, of the blowing agent impregnation step. The temperature inside the autoclave was then cooled to 40°C, and the particles were dehydrated. A drying step was then carried out at 40°C to obtain expandable resin particles. The obtained expandable resin particles were subjected to the various measurements and evaluations described above, and the results are shown in Table 3. [Table 1] [Table 2]

[0178] [Table 3] From Table 3, it was found that the expandable resin beads of Examples 1 to 8 according to one embodiment of the present invention had low styrene and ethylbenzene contents. It was also found that the expansion molded articles of Examples 1 to 8 had styrene emissions of less than 1.00 ppm and ethylbenzene emissions of less than 10.5 ppm. It was also found that the expanded beads obtained by expanding the expandable resin beads of Examples 1 to 8 22 times had D2230 / D1600 of 1.20 or more, satisfying the standard. It was also found that the expansion beads of Examples 1 to 8 had blocking properties of ○ (good), and the expansion molded articles of Examples 1 to 8 had heat resistance at 90°C of ○ (good) or ⊚ (excellent).

[0179] On the other hand, since Comparative Examples 1 to 6 are outside the scope of one embodiment of the present invention, it was found that the styrene emission amount of the foamed molded articles of Comparative Examples 1 to 6 was 1.00 ppm or more and the ethylbenzene emission amount was 10.5 ppm or more. In addition, the foamed molded articles of Comparative Examples 2 and 5 had a heat resistance at 90°C of × (poor). [Industrial Applicability]

[0180] According to one embodiment of the present invention, it is possible to provide expandable resin particles having a low VOC content, a method for producing the expandable resin particles, and a foamed molded article having a low VOC emission amount, and therefore, the present embodiment of the present invention can be suitably used in the fields of automobiles and building materials.

Claims

1. The expandable resin particles include a base resin containing a styrene unit and an acrylonitrile unit as constituent units, and a blowing agent, In the base resin, (a) the content of the styrene units is 80.0 parts by weight to 84.5 parts by weight, and the content of the acrylonitrile units is 15.5 parts by weight to 20.0 parts by weight, and (b) the total content of the styrene units and the acrylonitrile units is 100 parts by weight, the D2230 / D1600 of the expanded beads obtained by expanding the expandable resin beads 22 times is 1.20 or more; Expandable resin particles having a styrene content of less than 20 ppm and an ethylbenzene content of 130 ppm or less: Here, the D2230 / D1600 is the value at a wave number of 2230 cm in the infrared absorption spectrum obtained by Fourier transform infrared spectroscopy analysis using a total reflection measurement method on the surface of the expanded beads. -1 absorbance (D2230) and wave number 1600 cm -1 The absorbance (D1600) is the ratio of the absorbance of the sample to the absorbance of the sample.

2. Expanded particles obtained by expanding the expandable resin particles according to claim 1.

3. A foamed molded article obtained by molding the foamed beads according to claim 2 in a mold.

4. 4. The foamed molded article according to claim 3, wherein the amount of styrene emitted is less than 1.00 ppm and the amount of ethylbenzene emitted is less than 10.5 ppm.

5. The foamed molded article according to claim 3 or 4, having an expansion ratio of 5 times or more and less than 40 times.

6. A method for producing expandable resin particles, comprising: a copolymerization step of copolymerizing a monomer mixture containing a styrene monomer and an acrylonitrile monomer; a blowing agent impregnation step of impregnating the obtained copolymer with a blowing agent, the copolymerization step further includes: (a) a charging step of charging an initial monomer mixture containing the styrene monomer and a portion of the acrylonitrile monomer into a vessel; and (b) an adding step of adding a portion of the acrylonitrile monomer into the reaction mixture after initiation of polymerization of the initial monomer mixture, In the copolymerization step, (a) the total amount of the styrene monomers used is 80.0 parts by weight to 84.5 parts by weight, and the total amount of the acrylonitrile monomers used is 15.5 parts by weight to 20.0 parts by weight, and (b) the total amount of the styrene monomers and the acrylonitrile monomers used is 100 parts by weight, In the adding step, the amount of the portion of the acrylonitrile monomer added to the reaction mixture is 2.0 parts by weight to 5.0 parts by weight; the copolymerization step includes a first polymerization step and a second polymerization step which are successively carried out at different polymerization temperatures; In the second polymerization step, a polymerization initiator (Y) having a 10-hour half-life temperature of 90°C or higher and 100°C or lower is used, the polymerization initiator (Y) is at least one selected from the group consisting of t-butylperoxy-2-ethylhexyl monocarbonate, t-amylperoxyisopropyl monocarbonate, and t-amylperoxy-2-ethylhexyl monocarbonate; the D2230 / D1600 of the expanded beads obtained by expanding the expandable resin beads 22 times is 1.20 or more; Here, the D2230 / D1600 is the ratio of the absorbance at a wave number of 2230 cm −1 (D2230) to the absorbance at a wave number of 1600 cm −1 (D1600) in the infrared absorption spectrum obtained by Fourier transform infrared spectroscopy analysis of the surface of the expanded beads using a total reflection measurement method. A method for producing expandable resin particles.

7. The method for producing expandable resin particles according to claim 6 , wherein the adding step is carried out at any time after the polymerization conversion rate reaches 85%.

8. 8. The method for producing expandable resin particles according to claim 6, wherein in the charging step, the amount of the portion of the acrylonitrile monomer in the initial monomer mixture is 12.0 parts by weight to 18.0 parts by weight.

Citation Information

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