Method for producing foamed styrene resin particles
By controlling shear stress and particle ratios during the production of styrene-based resin particles, the method addresses the issue of flattened particles, resulting in spherical particles with improved dimensional stability and moldability for high-temperature applications.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-06
- Publication Date
- 2026-04-07
AI Technical Summary
Conventional methods for producing foamed styrene-based resin particles result in flattened particles, leading to poor moldability and insufficient dimensional stability at high temperatures, such as 95°C, which is crucial for applications like insulation materials.
A method involving melt-kneading a styrene/(meth)acrylic acid copolymer resin composition, controlling shear stress during extrusion, and maintaining specific ratios of particle dimensions, followed by impregnation with a hydrocarbon-based foaming agent, to produce spherical styrene-based resin particles with enhanced dimensional stability.
The method achieves styrene-based foamed molded articles with excellent dimensional stability at 95°C and spherical particles, improving moldability and thermal insulation properties.
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Abstract
Description
[Technical Field]
[0001] This invention relates to a method for producing foamed styrene-based resin particles. [Background technology]
[0002] Styrene-based foam molded materials, which are lightweight and easy to assemble, are sometimes used as insulation materials for hot water storage tanks, roof insulation, and pipe insulation. In these applications, dimensional stability is required when used for long periods in high-temperature environments, so styrene-based foam molded materials with enhanced heat resistance through copolymerization or other means are used.
[0003] For example, Patent Document 1 discloses foamable polystyrene resin particles comprising a polystyrene resin composition containing a carbon-based radiant heat transfer inhibitor and a foaming agent, which can provide a polystyrene resin foam molded article that achieves both a high foaming ratio and high heat insulation by setting the aspect ratio of the foamable polystyrene resin particles to 0.95 or less and the sphericity to 0.970 or more. [Prior art documents] [Patent Documents]
[0004] [Patent Document 1] Japanese Patent Publication No. 2020-33481 [Overview of the Initiative] [Problems that the invention aims to solve]
[0005] However, the conventional technologies described above had room for further improvement in terms of heat resistance and spheroidization.
[0006] One embodiment of the present invention has been made in view of the above-mentioned problems, and its objective is to provide a novel method for producing foamable styrene-based resin particles that can provide a styrene-based foamed molded article with excellent dimensional stability at 95°C, and that can provide spherical styrene-based foamed particles. [Means for solving the problem]
[0007] The inventors have diligently studied and developed the present invention to solve the aforementioned problems. That is, one embodiment of the present invention includes the following configuration. [1] A method for producing foamable styrene-based resin particles, comprising a styrene-based resin particle preparation step and a foaming agent impregnation step, wherein the styrene-based resin particle preparation step comprises a melt-kneading step of melt-kneading a styrene-based resin composition containing a styrene-based resin containing a styrene / (meth)acrylic acid copolymer in an extruder, an extrusion step of extruding the melt-kneaded material obtained in the melt-kneading step from an extrusion hole of a die provided at the extrusion end, and a step of stretching and cutting the melt-kneaded material extruded from the extrusion hole in the extrusion step to obtain styrene-based resin particles, the foaming agent impregnation step comprises impregnating the styrene-based resin particles with a hydrocarbon-based foaming agent in an aqueous suspension, the shear stress of the melt-kneaded material as it passes through the die in the extrusion step being 30kPa to 90kPa, and the ratio (L1 / D1) of the length in the tensile direction (L1) of the styrene-based resin particle to the length in the cross-section (D1) being 1.30 to 2.90. [2] The styrene resin composition contains graphite, and the amount of graphite is 1 to 10 parts by weight per 100 parts by weight of the styrene resin, the method for producing foamed styrene resin particles according to [1]. [3] The method for producing foamed styrene resin particles according to [1] or [2], wherein the styrene resin composition contains a flame retardant, and the content of the flame retardant is 0.1 to 5.0 parts by weight per 100 parts by weight of the styrene resin. [4] The method for producing foamed styrene-based resin particles according to [3], wherein the flame retardant comprises a bromine-containing organic compound having a 2,3-dibromo-2-alkylpropyl group. [5] A method for producing foamed styrene-based resin particles according to any one of [1] to [4], wherein the hydrocarbon blowing agent is selected from the group consisting of n-pentane, isopentane, neopentane, and cyclopentane. [6] A method for producing foamed styrene-based resin particles according to any one of [1] to [5], wherein the ratio (L2 / D2) of the length of the long axis (L2) of the foamed styrene-based resin particle to the length of the short axis (D2) is 1.00 to 1.20. [7] The method for producing foamed styrene resin particles according to [2], wherein the volume average particle size of the graphite is 1 μm to 5 μm. [8] The method for producing foamed styrene-based resin particles according to any one of [1] to [7], wherein the weight-average molecular weight Mw of the styrene-based resin particles is 150,000 to 300,000. [Effects of the Invention]
[0008] According to one aspect of the present invention, a method for producing foamable styrene-based resin particles is available that can provide styrene-based foamed molded articles with excellent dimensional stability at 95°C, and that can provide spherical styrene-based foamed particles. [Modes for carrying out the invention]
[0009] One embodiment of the present invention is described below, but the present invention is not limited thereto. The present invention is not limited to the 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. Moreover, new technical features can be formed by combining the technical means disclosed in each embodiment. All academic and patent documents mentioned herein are incorporated as references herein. Furthermore, unless otherwise specified herein, "A to B" representing a numerical range means "A or greater (including A and greater than A) and B or less (including B and less than B)."
[0010] [1. Technical Concept of One Embodiment of an Embodiment] The inventors have independently discovered that conventional methods for producing foamed styrene-based resin particles tend to result in flattened (unlikely spherical) foamed styrene-based resin particles. When foamed styrene-based resin particles are flattened, the styrene-based foam particles obtained by foaming these particles may also be flattened. Flattened styrene-based foam particles result in poor filling of molds with complex shapes, leading to a poor appearance of the resulting styrene-based foam molded article. In other words, styrene-based foam molded articles obtained from flattened styrene-based foam particles have poor moldability.
[0011] Furthermore, as mentioned above, styrene foam molded articles sometimes require dimensional stability at high temperatures (e.g., 95°C).
[0012] Therefore, the present inventors diligently conducted research with the aim of providing a novel method for producing foamable styrene-based resin particles that can provide styrene-based foam molded articles with excellent dimensional stability at 95°C, and that can provide spherical styrene-based foam particles. As a result, the present inventors have discovered, to their surprise, that the above-mentioned problems can be achieved by (a) keeping the shear stress when the molten mixture of the styrene-based resin composition passes through the die within a specific range, and (b) keeping the ratio (L1 / D1) of the tensile length (L1) to the cross-sectional length (D1) of the styrene-based resin particles before impregnation with the foaming agent within a specific range, and have thus completed the present invention.
[0013] [2. Method for producing foamed styrene resin particles] The manufacturing method of the foaming styrene resin particles according to an embodiment of the present invention includes a styrene resin particle preparation step and a foaming agent impregnation step. The styrene resin particle preparation step includes a melt kneading step of melt kneading a styrene resin composition containing a styrene resin containing a styrene / (meth)acrylic acid copolymer with an extruder, an extrusion step of extruding the melt kneaded product obtained in the melt kneading step from a discharge hole of a die provided at the tip in the extrusion direction of the extruder, and a step of pulling and cutting the melt kneaded product extruded from the discharge hole in the extrusion step to obtain styrene resin particles. The foaming agent impregnation step includes a step of impregnating the styrene resin particles with a hydrocarbon-based foaming agent in an aqueous suspension. In the extrusion step, the shear stress of the melt kneaded product when passing through the die is 30 kPa to 90 kPa, and the ratio (L1 / D1) of the length (L1) in the tensile direction to the length (D1) of the cross section of the styrene resin particles is 1.30 to 2.90.
[0014] In this specification, the "styrene resin composition" may be referred to as the "composition", the "styrene resin particles" may be referred to as the "resin particles", the "foaming styrene resin particles" may be referred to as the "foaming resin particles", the "styrene-based foamed particles" may be referred to as the "foamed particles", and the "styrene-based foamed molded body" may be referred to as the "foamed molded body". Also, in this specification, the "manufacturing method of the foaming styrene resin particles according to an embodiment of the present invention" may be referred to as the "present manufacturing method".
[0015] Since the present manufacturing method has the above-described configuration, it is possible to provide styrene-based foamed particles that can provide a styrene-based foamed molded body excellent in dimensional stability at 95°C, and it is possible to provide spheroidized styrene-based foamed particles. The foaming styrene resin particles obtained by the present manufacturing method are also an embodiment of the present invention. In this specification, the "foaming styrene resin particles according to an embodiment of the present invention" may be referred to as the "present foaming resin particles".
[0016] In this specification, the repeating unit derived from the X monomer may be referred to as the "X unit". The repeating unit can also be said to be a constituent unit.
[0017] In this specification, the " dimensional stability at 95°C" can also be said to be " heat resistance". The evaluation method for the dimensional stability at 95°C will be described in detail in the later examples.
[0018] In this specification, the "spheroidized styrene-based expanded particles" are intended to have a ratio (L3 / D3) of the length (L3) of the long axis to the length (D3) of the short axis in the expanded particles of 1.00 to 1.20. In other words, this production method can provide a foamable styrene-based resin particle that can provide styrene-based expanded particles with L3 / D3 of 1.00 to 1.20.
[0019] The shear stress in one embodiment of the present invention is intended to be the shear stress applied to the melt-kneaded material when the melt-kneaded material passes through the discharge hole (small hole) of the die. The shear stress can be measured using the device "capillary rheometer (capillograph)". More specifically, the state of the melt-kneaded material when passing through the discharge hole of the die is simulated with a capillary rheometer, and the shear rate (sec -1 )(a) and viscosity (Pa·s)(b) relationship of the melt is obtained. Separately, from the diameter (cm) per discharge hole of the die and the discharge amount (cm 3 / sec) per discharge hole of the die, the shear rate (sec -1 ) of the melt-kneaded material when passing through the discharge hole of the die is calculated. Subsequently, using the relational expression between the value of the shear rate (sec -1 )(a) and the value of the viscosity (Pa·s)(b) obtained with the capillary rheometer, the viscosity of the melt-kneaded material when passing through the discharge hole of the die is calculated. Next, the shear stress of the melt-kneaded material when passing through the discharge hole of the die is calculated by the product (a×b) of the shear rate and the viscosity. The measurement method of the shear stress will be described in detail in the later examples.
[0020] In one embodiment of the present invention, L1 / D1 is the ratio of the tensile length (L1) of the styrene resin particle to the cross-sectional length (D1), and is calculated by the following formula. L1 / D1 = Length in the tensile direction of the styrene resin particle (L1) / Length of the cross-section of the styrene resin particle (D1). Here, the tensile direction in styrene resin particles refers to the direction in which the molten mixture extruded from the die is pulled. The length in the tensile direction (L1) in styrene resin particles refers to the longest length in the tensile direction of the styrene resin particles. Furthermore, the cross-section in styrene resin particles refers to the cross-section perpendicular to the tensile direction. The length of the cross-section in styrene resin particles (D1) refers to the shortest length in the cross-section of the styrene resin particles.
[0021] This manufacturing method includes a styrene-based resin particle preparation step and a foaming agent impregnation step.
[0022] (2-1. Styrene resin particle preparation process) The styrene resin particle preparation process can also be described as a process of molding (processing) a styrene resin composition containing a styrene / (meth)acrylic acid copolymer into particle shape.
[0023] (Styrene resin) The styrene-based resin composition contains a styrene-based resin. The styrene-based resin contains a styrene / (meth)acrylic acid copolymer. In this specification, a styrene / (meth)acrylic acid copolymer means a copolymer having at least styrene-based units derived from a styrene-based monomer and (meth)acrylic acid-based units derived from a (meth)acrylic acid-based monomer. In other words, a styrene / (meth)acrylic acid copolymer is a copolymer obtained by polymerizing a monomer mixture containing at least a styrene-based monomer and a (meth)acrylic acid-based monomer.
[0024] The styrene monomer is not particularly limited, but examples include styrene (sometimes referred to as styrene monomer), α-methylstyrene, paramethylstyrene, t-butylstyrene, and chlorostyrene. Due to its ease of handling during manufacturing and the low cost of its raw materials, the styrene monomer preferably contains styrene units, and more preferably consists of styrene units.
[0025] Examples of (meth)acrylic acid monomers include acrylic acid and methacrylic acid. Due to their ease of handling during manufacturing and the low cost of raw materials, (meth)acrylic acid monomers preferably contain methacrylic acid units, and more preferably consist of methacrylic acid units.
[0026] The styrene / (meth)acrylic acid copolymer may contain constituent units derived from monomers other than styrene monomers and (meth)acrylic acid monomers.
[0027] The styrene / (meth)acrylic acid copolymer preferably contains 85% by weight or more of styrene-based units, more preferably 87% by weight or more, and particularly preferably 90% by weight or more, of the total constituent units contained in 100% by weight of the styrene / (meth)acrylic acid copolymer. There is no particular upper limit to the amount of styrene-based units in 100% by weight of the total constituent units contained in the styrene / (meth)acrylic acid copolymer, but for example, it is preferably 99% by weight or less.
[0028] The styrene / (meth)acrylic acid copolymer preferably contains 15% by weight or less of (meth)acrylic acid units, more preferably 13% by weight or less, and particularly preferably 10% by weight or less, of the total constituent units contained in the styrene / (meth)acrylic acid copolymer. The lower limit of (meth)acrylic acid units in 100% by weight of the total constituent units contained in the styrene / (meth)acrylic acid copolymer is not particularly limited, but for example, it is preferably 1% by weight or more.
[0029] If the amounts of styrene-based units and (meth)acrylic acid-based units in the styrene / (meth)acrylic acid copolymer are within the above-mentioned range, the glass transition temperature of the styrene / (meth)acrylic acid copolymer can be in the range of 105°C to 125°C.
[0030] Styrene-based resins may contain styrene homopolymers in addition to styrene / (meth)acrylic acid copolymers. Since styrene homopolymers are incompatible with styrene / (meth)acrylic acid copolymers, excessive addition tends to reduce heat resistance and refine the cell chord length of the foamed molded product.
[0031] The styrene-based resin preferably contains 90% by weight or more of styrene / (meth)acrylic acid copolymer, more preferably 95% by weight or more, and particularly preferably 99% by weight or more, of 100% by weight of the styrene-based resin. The styrene-based resin may also contain 100% by weight of styrene / (meth)acrylic acid copolymer. In other words, the styrene-based resin may consist only of a copolymer of styrene / (meth)acrylic acid copolymer.
[0032] In styrene-based resins, it is preferable to have a low content of resins incompatible with the styrene / (meth)acrylic acid copolymer (e.g., styrene homopolymer). A lower content of resins incompatible with the styrene / (meth)acrylic acid copolymer in the styrene-based resin has the advantage of reducing the tendency to obtain flattened foam particles and increasing the tendency to obtain spherical foam particles. Furthermore, a lower content of resins incompatible with the styrene / (meth)acrylic acid copolymer in the styrene-based resin has the advantage of reducing the risk of the cell chord length of the resulting foam molded body becoming finer, reducing the tendency of the surface of the foam molded body to melt, and resulting in a better appearance of the foam molded body.
[0033] The content of resins incompatible with the styrene / (meth)acrylic acid copolymer, such as styrene homopolymers, in 100% by weight of the styrene-based resin is preferably 10% by weight or less, more preferably 5% by weight or less, even more preferably 3% by weight or less, and particularly preferably 1% by weight or less.
[0034] The glass transition temperature of the styrene / (meth)acrylic acid copolymer is preferably 105°C to 125°C, more preferably 107°C to 123°C, even more preferably 108°C to 120°C, and particularly preferably 110°C to 115°C. This configuration has the advantage that the resulting foamed molded article has excellent dimensional stability at 95°C (i.e., excellent dimensional stability as a heat insulating material) as well as excellent moldability. When the glass transition temperature of the styrene / (meth)acrylic acid copolymer is 105°C or higher, it has the advantage that sufficient dimensional stability can be obtained when used at high temperatures (for example, in environments above 95°C). Furthermore, when the glass transition temperature of the styrene / (meth)acrylic acid copolymer is 125°C or lower, it has the advantage that the heat resistance does not become too high, so that the foamed particles obtained by foaming the foamed resin particles can obtain a sufficient foaming ratio. Note that the glass transition temperature of the styrene / (meth)acrylic acid copolymer rises as the content of (meth)acrylic acid units in the styrene / (meth)acrylic acid copolymer increases.
[0035] The glass transition temperature of the styrene resin is preferably 105°C to 125°C, more preferably 107°C to 123°C, even more preferably 108°C to 120°C, and particularly preferably 110°C to 115°C. This configuration has the advantage that the resulting foamed molded article has excellent dimensional stability at 95°C (i.e., excellent dimensional stability as a heat insulating material) and also excellent moldability. When the glass transition temperature of the styrene resin is 105°C or higher, it has the advantage that sufficient dimensional stability can be obtained when used at high temperatures (for example, in environments above 95°C). Furthermore, when the glass transition temperature of the styrene resin is 125°C or lower, the heat resistance does not become too high, so that the foamed particles obtained by foaming the foamed resin particles can obtain a sufficient foaming ratio. Note that the glass transition temperature of the styrene resin rises as the content of (meth)acrylic acid units in the styrene resin increases.
[0036] The weight-average molecular weight Mw of the styrene / (meth)acrylic acid copolymer is not particularly limited, but is preferably 150,000 to 400,000, and more preferably 180,000 to 300,000. When the weight-average molecular weight Mw of the styrene / (meth)acrylic acid copolymer is 400,000 or less, the viscosity of the molten mixture does not become too high, so spherical foamed styrene-based resin particles can be easily obtained. When the weight-average molecular weight Mw of the styrene / (meth)acrylic acid copolymer is 150,000 or more, the viscosity of the molten mixture does not become too low, so the molten mixture extruded from the die (sometimes called a strand) can be stably pulled (taken), and the resulting foamed molded article has the advantage of having excellent strength.
[0037] (Flame retardant) In order to impart flame retardancy to the resulting foamed molded article, it is preferable to use a flame retardant in this manufacturing method. In other words, it is preferable that the foamed resin particles contain a flame retardant.
[0038] The flame retardant is preferably used in the resin particle preparation process, and it is preferable that the styrene-based resin composition subjected to melt kneading contains the flame retardant. This configuration has the advantage that, since the resulting resin particles contain the flame retardant, foamed resin particles containing the flame retardant can be easily obtained.
[0039] The flame retardant is not particularly limited, and any known flame retardant that has been conventionally used in styrene-based foamed molded articles can be used. Examples of flame retardants include: (a) halogenated aliphatic hydrocarbon compounds such as hexabromocyclododecane, tetrabromobutane, and hexabromocyclohexane; (b) brominated phenols such as tetrabromobisphenol A, tetrabromobisphenol F, 2,4,6-tribromophenol, and tris(2,3-dibromopropyl) isocyanurate; (c) tetrabromobisphenol A-bis(2,3-dibromopropyl ether), tetrabromobisphenol S-bis(2,3-dibromopropyl ether), tetrabromobisphenol F-bis(2,3-dibromopropyl ether), and tetrabromobisphenol A-bis(2,3-dibromo-2-methylpropyl ether). Examples include brominated phenol derivatives such as (d) tetrabromobisphenol A-diglycidyl ether, 2,2-bis[4'(2",3"-dibromoalkoxy)-3',5'-dibromophenyl]-propane, and 2,2-bis[4-(2,3-dibromo-2-methylpropoxy)-3,5-dibromophenyl]propane, as well as (d) brominated butadiene / vinyl aromatic hydrocarbon copolymers such as brominated styrene / butadiene block copolymers, brominated random styrene / butadiene copolymers, and brominated styrene / butadiene graft copolymers (for example, EMERALD3000 manufactured by Chemtura, or copolymers disclosed in Japanese Patent Publication No. 2009-516019). In one embodiment of the present invention, among these, the flame retardant is preferably a bromine-containing organic compound having a 2,3-dibromo-2-alkylpropyl group, such as tetrabromobisphenol A-bis(2,3-dibromo-2-methylpropyl ether), 2,2-bis[4-(2,3-dibromo-2-methylpropoxy)-3,5-dibromophenyl]propane, or tetrabromobisphenol A-bis(2,3-dibromopropyl ether), because there is no risk of reducing the heat resistance of the resulting foamed molded article. These flame retardants may be used individually or in combination of two or more. Furthermore, when using a mixture of two or more flame retardants, the mixing ratio may be appropriately adjusted depending on the purpose.
[0040] The amount of flame retardant used (amount added, content) is not particularly limited, but preferably 0.1 to 5.0 parts by weight, more preferably 1.0 to 4.0 parts by weight, even more preferably 2.0 to 3.5 parts by weight, and particularly preferably 2.5 to 3.0 parts by weight per 100 parts by weight of styrene resin. This configuration has the advantage of a good balance between the flame retardancy and dimensional stability at 95°C of the resulting foamed molded article. Furthermore, when the amount of flame retardant used is 2.0 parts by weight or more per 100 parts by weight of styrene resin, the resulting foamed molded article has the advantage of having superior flame retardancy. Furthermore, when the amount of flame retardant used is 4.0 parts by weight or less per 100 parts by weight of styrene resin, the resulting foamed molded article has the advantage of not having a decrease in dimensional stability at 95°C, or if it does decrease, it is only very slight.
[0041] (Graphite) In order to impart thermal insulation properties to the resulting foamed molded article, it is preferable to use a carbon-based radiant heat transfer inhibitor in this manufacturing method, and more preferably to use graphite. In other words, it is preferable that the foamed resin particles contain a carbon-based radiant heat transfer inhibitor, and more preferably to contain graphite.
[0042] Graphite is preferably used in the resin particle preparation process, and the styrene-based resin composition subjected to melt kneading preferably contains a flame retardant. This configuration has the advantage that, since the resulting resin particles contain graphite, foamed resin particles containing graphite can be easily obtained.
[0043] The graphite is not particularly limited, but examples include flaky graphite, earthy graphite, spheroidal graphite, and artificial graphite. In this specification, the term "flaky" also includes scale-like, flake-like, or plate-like forms. In one embodiment of the present invention, the graphite preferably contains a graphite mixture mainly composed of flaky graphite, and more preferably contains flaky graphite, from the viewpoint of having a high radiant heat transfer suppression effect. These graphites may be used individually or mixed together. When mixing two or more types of graphite, the mixing ratio may be appropriately adjusted depending on the purpose.
[0044] The amount of graphite used (amount added, content) is not particularly limited, but preferably 1.0 to 10.0 parts by weight, more preferably 3.0 to 5.0 parts by weight, and even more preferably 3.5 to 4.0 parts by weight per 100 parts by weight of styrene resin. This configuration has the advantage of providing a good balance between the thermal insulation, expansion ratio, and heat resistance of the resulting foamed molded article. Furthermore, when the amount of graphite used is 2.0 parts by weight or more per 100 parts by weight of styrene resin, the resulting foamed molded article has the advantage of having superior thermal insulation. Furthermore, when the amount of graphite used is 10.0 parts by weight or less per 100 parts by weight of styrene resin, the bubbles (cell films) of the foamed resin particles become less likely to break during foaming and molding, resulting in a foamed molded article with a sufficient expansion ratio and excellent heat resistance.
[0045] The volume-average particle size of the graphite is preferably 1 μm to 10 μm, more preferably 1 μm to 7 μm, more preferably 1 μm to 5 μm, more preferably 1 μm to 4 μm, and even more preferably 1 μm to 3 μm. This configuration has the advantage that the resulting foamed particles and foamed molded articles can be highly foamed, and the foamed molded articles have excellent heat insulation and moldability. Furthermore, the smaller the volume-average particle size of the graphite, the higher the manufacturing cost. When the volume-average particle size of the graphite is 1 μm or more, the manufacturing cost, including the cost of crushing, does not become too high, thus having the advantage of lowering the cost of the foamed polystyrene resin particles. On the other hand, when the volume-average particle size is 10 μm or less, the cell membrane of the foamed particles is less likely to break during foaming and molding of the foamed resin particles, thus having the advantages that the resulting foamed particles and foamed molded articles can be easily highly foamed, have excellent moldability, have excellent dimensional stability (heat resistance) at 95°C, and have excellent mechanical strength (e.g., compressive strength). In this specification, the volume-average particle size of graphite refers to the D50 particle size (particle diameter when the cumulative volume reaches 50%) calculated by the laser diffraction-scattering method based on the Mie theory in accordance with JIS Z8825-1.
[0046] (Other additives) In this manufacturing method, additives other than graphite and flame retardants (other additives) may be used as needed. In other words, the styrene resin composition may contain other additives as needed. Other additives are not particularly limited, but include, for example: (a) heat stabilizers such as hindered amine compounds, phosphorus compounds, and epoxy compounds; (b) processing aids such as sodium stearate, magnesium stearate, calcium stearate, zinc stearate, barium stearate, and liquid paraffin; (c) light-resistant stabilizers such as phenolic antioxidants, nitrogen stabilizers, sulfur stabilizers, and benzotriazoles, in addition to hindered amines, phosphorus stabilizers, and epoxy compounds; (d) antistatic agents; (e) colorants such as pigments; (f) silica, calcium silicate, wollastonite, and Examples of other additives include inorganic compounds such as orine, clay, mica, zinc oxide, calcium carbonate, and sodium bicarbonate; (g) olefin waxes such as methyl methacrylate copolymers and polyethylene wax; (h) talc; (i) fatty acid bisamides such as methylene bisstearyl amide, ethylene bisstearyl amide, hexamethylene bispalmitate amide, and ethylene bisoleate amide; (j) nucleating agents such as ethylene / vinyl acetate copolymer resins; and (k) foaming aids such as solvents with a boiling point of 200°C or less at atmospheric pressure, such as cyclohexane and ethyl chloride. These other additives may be used individually or in combination of two or more. When using a mixture of two or more other additives, the mixing ratio may be adjusted as appropriate depending on the purpose.
[0047] (Melting and mixing process) In the melt-kneading process, a styrene-based resin composition containing a styrene / (meth)acrylic acid copolymer is melt-kneaded in an extruder to obtain a melt-kneaded styrene-based resin composition.
[0048] The extruder is not particularly limited, but examples include single-screw extruders and twin-screw extruders. The two shafts of a twin-screw extruder may be oriented in the same direction or in different directions. A twin-screw extruder is preferred from the viewpoint of additive dispersibility.
[0049] The cylinder temperature in the molten section of the extruder (also called the extrusion temperature) is not particularly limited as long as it is the temperature at which the styrene resin melts, but 200°C to 270°C is preferred. When the extrusion temperature is 200°C or higher, the load on the extruder does not increase, allowing for stable extrusion and also having the advantage of good dispersibility of additives. On the other hand, when the extrusion temperature is 270°C or lower, there is no risk of decomposition of the styrene resin itself. Furthermore, when the extrusion temperature is 270°C or lower, there is no risk of decomposition of the flame retardant itself, so the desired flame retardancy can be obtained, and there is no need to add an excessive amount of flame retardant to impart the desired flame retardancy.
[0050] The residence time of the styrene resin composition in the extruder from the time the styrene resin and various additives are supplied to the extruder until the end of melt mixing is preferably 9 minutes or less, more preferably 8 minutes or less, and even more preferably 7 minutes or less. With this configuration, there is no risk of decomposition of the flame retardant itself, so the desired flame retardancy can be obtained, and there is no need to add an excessive amount of flame retardant to impart the desired flame retardancy.
[0051] (Extrusion process) In the extrusion process, the molten mixture obtained in the melt-kneading process is extruded through the discharge hole of the die. The die is located at the front of the extrusion direction in the extrusion machine.
[0052] The die may have at least one discharge hole, or it may have multiple discharge holes.
[0053] The number of discharge holes formed in the die is appropriately changed depending on the size of the die and is not particularly limited. When the die has two or more discharge holes, from the viewpoint of productivity, the distance between the discharge holes formed in the die is preferably 3 mm to 10 mm. When the distance between the discharge holes is 3 mm or more, there is no risk of the strands immediately after the discharge hole coalescing, which has the advantage of not reducing productivity. When the distance between the discharge holes is 10 mm or less, a relatively large number of discharge holes can be formed in the die, which has the advantage of good productivity.
[0054] The diameter of the discharge holes formed in the die (or the diameter of each discharge hole if multiple discharge holes are formed) is not particularly limited, but for example, from the viewpoint of productivity, 0.05 mm to 2.00 mm is preferred, 0.08 mm to 1.50 mm is more preferred, 0.08 mm to 1.30 mm is even more preferred, and 0.09 mm to 1.20 mm is even more preferred. When the diameter of the discharge holes is 0.05 mm or larger, there is no risk of resin clogging occurring in the discharge holes, resulting in good productivity.
[0055] The amount of molten mixture discharged per discharge hole is not particularly limited, but from the viewpoint of sphericalizing the foamed particles, for example, 0.35 kg / hour to 1.00 kg / hour is preferred, and 0.35 kg / hour to 0.80 kg / hour is more preferred.
[0056] In the extrusion process, the shear stress of the molten compound as it passes through the die is 30kPa to 90kPa, preferably 35kPa to 80kPa, more preferably 40kPa to 70kPa, and particularly preferably 45kPa to 65kPa. With this configuration, styrene-based resin particles with an L1 / D1 ratio of 1.30 to 2.50 can be stably obtained, and spherical styrene-based foamed particles can be easily obtained from the resulting foamed resin particles. If the shear stress is less than 30kPa, the fluidity of the molten resin increases, making it difficult to tensile the extruded molten compound (strand), and making it difficult to adjust the ratio (L1 / D1) of the length in the tensile direction of the resin particles to the length in the cross-sectional area (D1). Also, if the shear stress is greater than 90kPa, the molten compound extruded from the discharge hole expands, resulting in excessively flattened resin particles, and the resulting foamed particles tend to be flattened as well.
[0057] Through diligent research, the inventors have independently discovered that, surprisingly, the shear stress strongly influences the sphericity of foamed particles (the (L3 / D3) of the foamed particles), in addition to the (L1 / D1) of the resin particles. At first glance, the sphericity of foamed particles and the shear stress during the manufacturing of resin particles seem to have little to no relationship. Therefore, the finding that shear stress strongly influences the sphericity of foamed particles is a surprising discovery that could not be easily conceived from conventional technical knowledge.
[0058] As mentioned above, shear stress is a value obtained by the product (a × b) of shear rate (a) and viscosity (b). When measuring molten material using a capillary rheometer, the relationship between the shear rate (a) and viscosity (b) of the molten material can be obtained by changing the measurement conditions (resin temperature (barrel temperature), capillary hole diameter, and discharge volume (piston descent speed), etc.). The shear rate (a) is proportional to the resin volume discharge volume per capillary hole and inversely proportional to the cube of the radius of the capillary hole. Viscosity (b) decreases as the shear rate increases and as the resin temperature increases. In other words, the shear rate (a) is proportional to the discharge volume of molten mixture per discharge hole formed in the die and inversely proportional to the cube of the radius of the discharge hole. Viscosity (b) decreases as the shear rate increases and as the extrusion temperature increases. Furthermore, the resin volume discharged per capillary hole is calculated based on the discharge volume of the extruder used in actual production, assuming a specific gravity of 1.0 g / cm³ for styrene-based resin. 3 It is obtained by dividing the volume discharged by the number of holes in the die.
[0059] (Process for obtaining styrene-based resin particles) In this process, the molten mixture extruded from the discharge port is pulled and cut. This yields styrene-based resin particles. In this specification, the "molten mixture extruded from the discharge port" may be referred to as a "strand." In other words, in this process, the strand is pulled and cut. "Pulling" may also be referred to as "drawing."
[0060] The strand may be pulled and cut using separate devices; for example, the strand may be pulled using a pulling machine (or draw machine), and then cut using a cutting machine. Alternatively, the strand may be pulled and cut using the same device; for example, the strand can be pulled and cut simultaneously using a pelletizer equipped with a rotating blade.
[0061] The tensile direction of the strand is not particularly limited, but is, for example, the same as the extrusion direction when the molten mixture is extruded from the die's discharge hole, and is, for example, horizontal. The tensile direction of the strand will be the tensile direction L1 of the resin particles, which will be described later.
[0062] The strand tensile speed is not particularly limited and can be adjusted as needed according to the discharge rate. For example, the strand tensile speed is preferably 15 m / min to 30 m / min, more preferably 15 m / min to 25 m / min, and even more preferably 18 m / min to 22 m / min. With this configuration, the L1 / D1 of the resin particles can be easily adjusted within the range of 1.30 to 2.90. When the tensile speed is 30 m / min or less, the L1 / D1 can be easily adjusted to 2.90 or less, and the strand tends to be cut stably. On the other hand, when the tensile speed is 15 m / min or more, the L1 / D1 can be easily adjusted to 1.30 or more, and spherical foam particles tend to be easily obtained.
[0063] The ratio (L1 / D1) of the tensile length (L1) of the resin particles to the cross-sectional length (D1) is 1.30 to 2.90, preferably 1.30 to 2.50, more preferably 1.25 to 2.00, and even more preferably 1.20 to 1.50. With this configuration, spherical foamed particles can be obtained from the resulting foamed styrene-based resin particles. When L1 / D1 is 1.3 or greater, there is no risk of the resulting foamed particles becoming flattened (L3 / D3 exceeding 1.20). On the other hand, when L1 / D1 is 2.90 or less, there is no risk of the strand tension becoming unstable, and as a result, the L1 of the resin particles becomes almost uniform. L1 / D1 can be adjusted by the tensile speed used to pull the strand, the number of teeth and rotation speed of the cutting machine's rotating blades, etc.
[0064] In this process, the molten mixture (strand) extruded from the discharge hole may be cooled and solidified before cutting. In other words, the resin particle preparation process may have a cooling process that cools the strand, occurring after the extrusion process but before this process. When the resin particle preparation process includes a cooling process, it has the advantage of facilitating the pulling and cutting of the strand.
[0065] In the cooling process, the method of cooling the strand is not particularly limited, but one example is to pass the strand through a water tank and water channels containing water as a cooling medium. The cooling of the strand may also be done by natural cooling, which is simply leaving the strand at room temperature.
[0066] The temperature in the water tank and channel (water temperature) is not particularly limited, but from the viewpoint of efficiently cooling and solidifying the molten mixture (strand), it is preferably 10°C to 80°C, more preferably 20°C to 70°C, and even more preferably 20°C to 50°C.
[0067] When a cooling process is performed, the temperature of the strand after cooling (hereinafter sometimes referred to as the cooling temperature) is not particularly limited. The cooling temperature is preferably 10°C to 80°C, more preferably 20°C to 70°C, and even more preferably 20°C to 50°C. With this configuration, the solidification of the resin composition in the strand is sufficiently fast, resulting in good productivity of resin particles.
[0068] The particle weight of the styrene-based resin particles is not particularly limited, but is preferably 0.3 mg to 1.5 mg, and more preferably 0.4 mg to 1.0 mg. The smaller the particle weight of the styrene-based resin particles, the easier it is to obtain a foamed molded product in which pre-foamed particles are filled to the finest details, even in the case of molds with complex shapes. The particle weight of the styrene-based resin particles can be adjusted by the number of small holes in the die, the diameter of the small holes, the tensile speed of the perforator, the rotation speed of the rotating blade, and so on.
[0069] (2-2. Foaming agent impregnation process) This manufacturing method includes a foaming agent impregnation step following a styrene resin particle preparation step. The foaming agent impregnation step involves impregnating the styrene resin particles obtained in the styrene resin particle preparation step with a hydrocarbon-based foaming agent in an aqueous suspension to obtain foamable styrene resin particles.
[0070] (Foaming agent) In this manufacturing method, a hydrocarbon-based blowing agent is used as the blowing agent. While not particularly limited, examples of hydrocarbon-based blowing agents include (a) aliphatic hydrocarbons such as propane, butane, and pentane; (b) alicyclic hydrocarbons such as cyclobutane and cyclopentane; and (c) halogenated hydrocarbons such as methyl chloride, dichlorodifluoromethane, and dichlorotetrafluoroethane. These blowing agents may be used individually or in combination of two or more. When using a mixture of two or more blowing agents, the mixing ratio may be adjusted as appropriate depending on the purpose. From the viewpoint of volatility and blowing power, it is preferable that the hydrocarbon-based blowing agent contains one selected from the group consisting of n-pentane, isopentane, neopentane, and cyclopentane. Furthermore, since the bubbles (cells) in the resulting foamed resin particles are more stable, it is preferable that the hydrocarbon-based blowing agent contains one selected from the group consisting of pentanes (n-pentane, isopentane, neopentane, and cyclopentane, etc.).
[0071] The amount of blowing agent used is not particularly limited. The blowing agent can also serve to lower the softening temperature of the styrene resin particles. Preferably, the amount is 3.0 to 12.0 parts by weight, more preferably 4.0 to 11.0 parts by weight, even more preferably 5.0 to 10.0 parts by weight, and particularly preferably 6.0 to 9.0 parts by weight per 100 parts by weight of styrene resin particles. When the amount of blowing agent used is 3.0 parts by weight or more per 100 parts by weight of styrene resin particles, there is no risk of low foaming force during foaming, and it is advantageous that foamed particles with a foaming ratio that is easy to use as an insulating material can be easily obtained. On the other hand, when the amount of blowing agent used is 12.0 parts by weight or less per 100 parts by weight of styrene resin particles, there is no excessive amount of blowing agent remaining in the foamed molded body, which is advantageous because the flame retardancy of the foamed molded body is less likely to deteriorate. When the amount of foaming agent used is 6.0 to 9.0 parts by weight per 100 parts by weight of styrene resin particles, foamed particles that achieve both high foaming properties and excellent moldability can be obtained.
[0072] The specific form of the foaming agent impregnation process is not particularly limited, but a preferred method is to (a) prepare an aqueous suspension by dispersing styrene resin particles and a dispersant in water in a container, then (b) supply a foaming agent to the aqueous suspension, and then (c) raise the temperature inside the container (temperature of the aqueous suspension) to a predetermined temperature (impregnation temperature) to impregnate the styrene resin particles with the foaming agent.
[0073] The container used in the foaming agent impregnation process is not particularly limited, but it is preferably a container that can be sealed and is pressure-resistant and heat-resistant, and more preferably equipped with a stirrer.
[0074] (Dispersant) In the foaming agent impregnation process, it is preferable to use a dispersant. By using a dispersant, the adhesion between resin particles (sometimes referred to as blocking) can be suppressed, and foamed particles can be produced stably. The dispersant is not particularly limited, but examples include poorly water-soluble inorganic salts such as calcium phosphate, hydroxyapatite, magnesium pyrophosphate, and calcium carbonate. These dispersants may be used individually or in mixtures of two or more. Furthermore, when using a mixture of two or more flame retardants, the mixing ratio may be appropriately adjusted depending on the purpose.
[0075] The amount of dispersant used is not particularly limited, but from the viewpoint of preventing or suppressing the adhesion of resin particles, 0.1 to 3.0 parts by weight is preferred, 0.2 to 2.5 parts by weight is more preferred, 0.3 to 2.0 parts by weight is even more preferred, and 0.5 to 1.5 parts by weight is particularly preferred, per 100 parts by weight of styrene-based resin particles.
[0076] When using the dispersant in the foaming agent impregnation process, it is preferable to use a dispersion aid together with the dispersant from the viewpoint of improving the effect of suppressing the adhesion between resin particles. The dispersion aid is not particularly limited, but examples include anionic surfactants such as sodium alkanesulfonate, sodium alkylbenzenesulfonate, and sodium α-olefin sulfonate. These dispersion aids may be used individually or in combination of two or more. Furthermore, when using a mixture of two or more dispersion aids, the mixing ratio may be appropriately adjusted depending on the purpose.
[0077] The amount of dispersion aid used is not particularly limited, but from the viewpoint of preventing or suppressing the adhesion of resin particles, it is preferably 0.001 to 0.500 parts by weight, more preferably 0.005 to 0.400 parts by weight, even more preferably 0.008 to 0.300 parts by weight, and most preferably 0.010 to 0.200 parts by weight per 100 parts by weight of styrene resin particles.
[0078] The impregnation temperature is not particularly limited. From the viewpoint of softening the styrene resin with the foaming agent and efficiently impregnating the foaming agent into the resin particles, the impregnation temperature is preferably a temperature equivalent to the glass transition temperature of the styrene resin (or styrene / (meth)acrylic acid copolymer) (for example, 105°C to 125°C, or the glass transition temperature - 10°C or higher (more preferably -5°C or higher, even more preferably -3°C or higher) and the glass transition temperature + 10°C or lower (more preferably +8°C or lower)). The impregnation temperature is more preferably 107°C to 123°C, and even more preferably 110°C to 120°C. When the impregnation temperature is 105°C or higher, the degree of impregnation of the foaming agent into the resin particles is increased, the cell structure of the foam particles becomes uniform or substantially uniform, and the surface of the resulting foamed molded article is free of indentations and has a good appearance. On the other hand, when the impregnation temperature is 125°C or lower, the impregnation of the foaming agent is improved, and the internal pressure of the polymerizer does not become too high, thus eliminating the need for a polymerizer with heavy-duty pressure resistance. Furthermore, when the impregnation temperature is 125°C or lower, there is the advantage that the adhesion of resin particles is prevented or suppressed.
[0079] The time for maintaining the temperature inside the container at the impregnation temperature (sometimes referred to as the impregnation time) is not particularly limited, but from the viewpoint of sufficiently impregnating the resin particles with the foaming agent, 3 to 10 hours is preferred, and 5 to 8 hours is more preferred. When the impregnation time is 3 hours or more, there is no risk of fine cells being present in the center of the foamed particles obtained by foaming from the foaming resin particles. As a result, there is the advantage of good moldability of the foamed particles. On the other hand, when the impregnation temperature is 10 hours or less, there is the advantage of good productivity.
[0080] After impregnation of the resin particles with the foaming agent is completed at an appropriate impregnation temperature, impregnation time, and amount of foaming agent used, foamable styrene-based resin particles can be obtained by, for example, cooling the temperature inside the container and drying the particles in the aqueous suspension.
[0081] In the foaming agent impregnation process, by appropriately adjusting the amount of foaming agent used and the impregnation temperature, foamable styrene resin particles having a desired L2 / D2 ratio can be obtained efficiently and easily.
[0082] (Expanded styrene resin particles) In the foamed styrene resin particles according to one embodiment of the present invention, the ratio (L2 / D2) of the length of the long axis (L2) to the length of the short axis (D2) is preferably 1.00 to 1.20, more preferably 1.00 to 1.15, and even more preferably 1.00 to 1.10. When L2 / D2 is within the above range, spherical foamed particles can be obtained, improving the packing of the foamed particles into the mold during the production of the foamed molded article. As a result, even in the case of molds with complex shapes, it is easier to obtain a foamed molded article in which the foamed particles are packed into the finest details. The length of the long axis (L2) of the foamed styrene resin particles refers to the maximum length between any two points on the foamed styrene resin particle. The length of the short axis (D2) of the foamed styrene resin particles refers to the shortest length in the direction perpendicular to the long axis.
[0083] (External additive) The surface of these foamed resin particles may be coated with known and commonly used external additives. In other words, these foamed resin particles may contain external additives on their surface. The external additives are not particularly limited, but examples include: (a) fatty acid triglycerides such as triglyceride laurate, triglyceride stearate, and triglyceride linoleate; (b) fatty acid diglycerides such as diglyceride laurate, diglyceride stearate, and diglyceride linoleate; (c) fatty acid monoglycerides such as monoglyceride laurate, monoglyceride stearate, and monoglyceride linoleate; (d) fatty acid metal salts such as zinc stearate, calcium stearate, magnesium stearate, aluminum stearate, zinc laurate, and calcium laurate; (e) silicone oils such as dimethylpolysiloxane and methylphenylpolysiloxane; (f) castor wax; and (g) vegetable oils such as castor oil and olive oil. These external additives may be used individually or in combination of two or more. When using a mixture of two or more external additives, the mixing ratio may be adjusted as appropriate depending on the purpose.
[0084] A known method can be used to coat (apply) an external additive to the surface of foamed styrene resin particles. A preferred coating method is to dry the obtained foamed styrene resin particles, then add the external additive to the dried foamed styrene resin particles, and coat them by mixing and stirring.
[0085] The amount of external additive used in these foamed resin particles is not particularly limited, but from the viewpoint of (a) preventing the foamed resin particles from sticking together during the production of the foamed particles, and (b) improving the surface elongation of the foamed molded article of the final product (preventing or reducing gaps between particles on the surface of the foamed molded article), it is preferable to use 0.01 to 2.00 parts by weight, more preferably 0.02 to 1.00 parts by weight, and even more preferably 0.02 to 0.50 parts by weight per 100 parts by weight of foamed styrene-based resin particles before application of the external additive.
[0086] [3. Styrene-based foamed particles] Styrene foamed particles obtained by foaming these foamable styrene resin particles are also an embodiment of the present invention. In other words, styrene foamed particles according to an embodiment of the present invention are obtained by foaming foamable styrene resin particles according to an embodiment of the present invention (for example, foamable styrene resin particles obtained by the manufacturing method described in section [2. Method for manufacturing foamable styrene resin particles] above). In this specification, "styrene foamed particles according to an embodiment of the present invention" may be referred to as "the foamed particles."
[0087] Because these foamed particles have the above-described structure, they have the advantage of providing a foamed molded article with excellent heat resistance and moldability.
[0088] In this process, when obtaining a foamed molded product from foamed resin particles, the foamed resin particles are first foamed to obtain foamed particles, and then these foamed particles are molded to obtain a foamed molded product. Therefore, in the process of obtaining a foamed molded product from foamed resin particles, the foaming of the foamed resin particles is sometimes referred to as "pre-foaming" or "primary foaming," and the resulting foamed particles are sometimes referred to as "pre-foamed particles" or "primary foamed particles."
[0089] These foamed particles can be obtained by foaming (pre-foaming or primary foaming) foamable styrene resin particles according to one embodiment of the present invention. The method for foaming the foamable styrene resin particles is not particularly limited, and conventional methods can be employed, such as using a cylindrical foaming device (pre-foaming device) and heating the foamable styrene resin particles using a heating medium such as steam to cause foaming. The equipment used for foaming and the foaming conditions can be appropriately set according to the composition of the foamable styrene resin particles and the desired foaming ratio, and are not particularly limited.
[0090] The foaming ratio of these foam particles is not particularly limited, but for example, it may be 10 to 90 times, preferably 20 to 80 times, more preferably 30 to 70 times, and particularly preferably 40 to 60 times. Foam particles having a low foaming ratio, and foam molded articles made using such foam particles, can be suitably used as cushioning materials for precision equipment, etc. Foam particles having a high foaming ratio, and foam molded articles made by molding such foam particles, can be suitably used as containers for fresh food, etc. In other words, foam particles having a foaming ratio within the above range can be suitably used for applications suitable for their foaming ratio.
[0091] The ratio (L3 / D3) of the length of the major axis (L3) to the length of the minor axis (D3) in the foamed particle is preferably 1.00 to 1.20, more preferably 1.00 to 1.15, and even more preferably 1.00 to 1.10. When the L3 / D3 of the foamed particle is within the above range, the foamed particle fills the mold well during in-mold foam molding. As a result, even when using a mold with a complex shape, the foamed particle fills even the smallest details, resulting in a foamed molded article with excellent moldability. The length of the major axis (L3) of the foamed particle refers to the maximum length between any two points on the foamed particle. The length of the minor axis (D3) of the foamed particle refers to the shortest length in the direction perpendicular to the major axis.
[0092] If foamed resin particles are obtained by this manufacturing method, where the shear stress of the molten mixture as it passes through the die is 30kPa to 90kPa and the L1 / D1 of the resin particles is 1.30 to 2.90, then the L2 / D2 can be 1.00 to 1.20. By foaming such foamed resin particles according to one embodiment of the present invention, foamed particles with an L3 / D3 in the range of 1.00 to 1.20 can be easily obtained.
[0093] The average chord length of the bubbles (sometimes called cells) in the foamed particles is not particularly limited, but is preferably 50 μm to 200 μm, and more preferably 80 μm to 150 μm. When the average chord length of the foamed particles is 50 μm or more, the surface of the resulting foamed molded article is not likely to melt due to heating during molding, and it has the advantage of having excellent moldability. On the other hand, when the average chord length of the foamed particles is 200 μm or less, the fusion properties between the foamed particles do not tend to deteriorate when molding using these foamed particles, and as a result, a foamed molded article with excellent moldability can be obtained.
[0094] [4. Styrene-based foamed molded products] A styrene foam molded article obtained by molding these foam particles is also an embodiment of the present invention. In other words, a styrene foam molded article according to an embodiment of the present invention is obtained by molding foam particles according to an embodiment of the present invention (for example, styrene foam particles obtained by foaming foamable styrene resin particles obtained by the manufacturing method described in section [2. Method for manufacturing foamable styrene resin particles]). In this specification, "styrene foam molded article according to an embodiment of the present invention" may be referred to as "this foam molded article".
[0095] This foamed molded product has the advantage of excellent dimensional stability at 95°C and high moldability.
[0096] The method for manufacturing a foamed molded article, or in other words, the method for molding foamed particles, is not particularly limited. For example, a foamed molded article can be obtained by heating and foaming (secondary foaming) foamed particles using an in-mold foaming molding method that uses a mold. More specifically, as an in-mold foaming molding method, a conventional method can be employed, such as filling a mold with foamed particles and blowing a heating medium such as steam into the mold to heat the foamed particles. The equipment used for heating and foaming, and the conditions for heating and foaming, can be set appropriately according to the desired foaming ratio, etc., and are not particularly limited.
[0097] This foamed molded article exhibits excellent dimensional stability at 95°C. For example, a foamed molded article obtained by foaming this foamable resin particles 50 times (pre-foaming) and molding the resulting foamed particles has the advantage of a small dimensional change rate (e.g., less than 2%) when heated at 95°C for 168 hours. A smaller dimensional change rate is preferable. This foamed molded article also has the advantage of excellent thermal conductivity and minimum oxygen index. For example, the thermal conductivity of this foamed molded article may be 0.033 W / mK or less, and the minimum oxygen index may be 26 or higher. It is preferable that this foamed molded article has a dimensional change rate of less than 2%, a thermal conductivity of 0.033 W / mK or less, and a minimum oxygen index of 26 or higher. With this configuration, it has the advantages of being lightweight, easy to assemble, cost-effective, resistant to deformation even in high-temperature environments (e.g., 95°C), and possessing high thermal insulation and flame retardancy. Such foamed molded products are particularly suitable as insulation materials for parts with complex shapes that are exposed to high temperatures, such as insulation materials for hot water storage tanks, roof insulation materials, and pipe insulation materials. [Examples]
[0098] The present invention will be described in more detail below with reference to examples and comparative examples, but the technical scope of the present invention is not limited by these examples.
[0099] 〔material〕 The substances used in the examples and comparative examples are shown below.
[0100] (Styrene resin) (A1) MA100: Styrene / methacrylic acid copolymer [Manufactured by PS Japan Co., Ltd.] The molar ratio of styrene units to methacrylic acid units is 96 / 4, and the weight-average molecular weight (Mw) is 270,000. Glass transition temperature: 110°C (A2) MR100: Styrene / methacrylic acid copolymer [Manufactured by PS Japan Co., Ltd.] The molar ratio of styrene units to methacrylic acid units is 96 / 4, and the weight-average molecular weight (Mw) is 220,000. Glass transition temperature: 110°C (A3) G9001: Styrene / methacrylic acid copolymer [Manufactured by PS Japan Co., Ltd.] The molar ratio of styrene units to methacrylic acid units is 92 / 8, and the weight-average molecular weight (Mw) is 190,000. Glass transition temperature: 120°C (A4)680: Styrene homopolymer [Manufactured by PS Japan Co., Ltd.] Weight-average molecular weight Mw 250,000, glass transition temperature 100°C (Graphite) (B1) SGP-40B [(Manufactured by Marutoyo Casting Materials Co., Ltd., flake-like, particle size 5 μm)] (B2) MT-2 [manufactured by Marutoyo Casting Materials Co., Ltd., scaly shape: particle size 2 μm] (Flame retardant) (C)SR-130: 2,2-Bis[4-(2,3-dibromo-2-methylpropoxy)-3,5-dibromophenyl]propane [manufactured by Daiichi Kogyo Seiyaku Co., Ltd., bromine content = 66% by weight] (Foaming agent) (D1) Pentane: A mixture of n-pentane and isopentane, with a mixing ratio of n-pentane / isopentane = 8 / 2 (manufactured by Wako Pure Chemical Industries, Ltd.) (D2) Butane: A mixture of normal butane and isobutane, with a mixing ratio of normal butane / isobutane = 7 / 3 (manufactured by Iwatani Gas Co., Ltd.).
[0101] [Measurement method] The evaluation methods used in the examples and comparative examples are described below.
[0102] (Measurement of glass transition temperature) Resin particles of styrene / (meth)acrylic acid copolymer or styrene resin were sealed in an open-type aluminum pan. Using a differential scanning calorimeter (Hitachi High-Tech Science Corporation, DSC7000X), the resin particles were heated from 40°C to 150°C at a rate of 10°C / min while nitrogen gas was flowed at 40 ml / min. The inflection point of the endothermic curve obtained as a result of the measurement (the minimum value of the endothermic differential curve) was defined as the glass transition point of the styrene / (meth)acrylic acid copolymer or styrene resin.
[0103] (Measurement of shear stress of molten mixture as it passes through the die's discharge port) The shear stress of the melt-kneaded material when passing through the die discharge holes was measured using a capillary rheometer (manufactured by Toyo Seiki: Capillograph). Specifically, it was as follows. Using a capillary (φ1.0 mm × L length 5 mm), the temperatures of the barrel and the piston were set to the cylinder temperatures (extrusion temperatures) in each example and comparative example, and the temperature of the capillary was set to the resin temperature at the die tip in each example and comparative example. Then, the styrene / (meth)acrylic acid copolymer was filled into the barrel so that no air was mixed in. After 2 minutes, the piston was lowered to extrude the molten resin from the capillary. The lowering speed was changed from 0.5 mm / min to 5 mm / min, and the shear rate ( / sec) and viscosity (Pa·s) at each lowering speed were measured. The relational expression between the value of the shear rate (sec -1 )(a) and the value of the viscosity (Pa·s)(b) was calculated. Separately, from the diameter (cm) per die discharge hole and the discharge amount (cm 3 / sec) per die discharge hole, the shear rate (sec -1 ) of the melt-kneaded material when passing through the die discharge holes was calculated. Subsequently, using the relational expression obtained with the capillary rheometer, the viscosity of the melt-kneaded material when passing through the die discharge holes was calculated. Next, the shear stress of the melt-kneaded material when passing through the die discharge holes was calculated by the product (a×b) of the shear rate and the viscosity. The shear stress corresponds to the shear stress applied per die discharge hole. The specific calculation formula for the shear rate (sec -1 ) was as follows. Shear rate (sec -1 ) = {4 × discharge amount per die discharge hole (cm 3 / sec)} / {pi (π) × (diameter per die discharge hole (cm)) 3} (Measurement of the particle weight per styrene resin particle) For each example and comparative example, 10 grains were randomly selected from the obtained styrene resin particles, and the weight Wp (mg) of the 10 styrene resin particles was measured. The particle weight per grain was determined from Wp / 10 (mg).
[0104] (Measurement of the ratio (L1 / D1) of the tensile length (L1) of styrene resin particles to the cross-sectional length (D1)) For each example and comparative example, five styrene resin particles were randomly selected from the obtained particles. For each styrene resin particle, the tensile length (L1) and the cross-sectional length (D1) were measured with calipers, and the L1 / D1 value was calculated. Five L1 / D1 values were obtained for each example and comparative example (N=5). The arithmetic mean of the five L1 / D1 values was taken as the L1 / D1 value for each example and comparative example.
[0105] (Measurement of the ratio (L2 / D2) of the length of the long axis (L2) of expanded styrene resin particles to the length of the short axis (D2)) For each example and comparative example, five particles were randomly selected from the obtained foamed styrene resin particles. For each foamed styrene resin particle, the length of the long axis (L2) and the length of the short axis (D2) were measured with calipers, and the L2 / D2 value was calculated. Five L2 / D2 values were obtained for each example and comparative example (N=5). The arithmetic mean of the five L2 / D2 values was taken as the L2 / D2 value for each example and comparative example.
[0106] (Measurement of foaming ratio of styrene foam particles) The foaming particles were poured into a 1L graduated cylinder until it overflowed, and then leveled off at the top of the cylinder. The weight (g) of the foaming particles in the graduated cylinder was measured. The foaming ratio (times) is calculated as (1000 (cc) / weight (g) of foaming particles).
[0107] (Measurement of the ratio (L3 / D3) of the length of the long axis (L3) of styrene foam particles to the length of the short axis (D3)) For each example and comparative example, five styrene foam particles were randomly selected from the obtained particles. For each styrene foam particle, the length of the long axis (L3) and the length of the short axis (D3) were measured with calipers, and the L3 / D3 value was calculated. Five L3 / D3 values were obtained for each example and comparative example (N=5). The arithmetic mean of the five L3 / D3 values was taken as the L3 / D3 value for each example and comparative example.
[0108] (Evaluation of the moldability of foamed molded products) The appearance of the foamed molded product was visually inspected and evaluated as follows: ○: The foamed molded body surface shows no shrinkage or melting, and the gaps between foam particles on the surface of the foamed molded body are within 0.1 mm, meaning the surface is smooth. △: There is no shrinkage or melting on the surface of the foamed molded body, but the gaps between foam particles on the surface of the foamed molded body exceed 0.1 mm. ×: The foamed molded product exhibits shrinkage and melting on its surface, and the gaps between foam particles exceed 0.1 mm.
[0109] (Dimensional change rate of foamed molded material at 95°C) A foamed molded body with a foaming ratio of 50 was dried at 60°C for 24 hours. Then, the foamed molded body was cut to a length of 150 mm, a width of 150 mm, and a thickness of 20 (t) mm. The dimensions of the cut foamed molded body were measured at three points in both the length and width directions, and the average dimension (A) was calculated. Next, the foamed molded body was left to stand in a 95°C dryer for 168 hours. Afterward, the dimensions of the foamed molded body were measured at three points in both the length and width directions, and the average dimension (B) was calculated. The dimensional change rate was calculated using the following formula, and the evaluation was performed based on the calculated dimensional change rate: Dimensional change rate (%) = ((A) - (B)) / (A) × 100. ◎ (Excellent): Dimensional change rate is less than 1% ○ (Good): Dimensional change rate is 1% or more but less than 2% × (Defective): Dimensional change rate is 2% or more.
[0110] (Thermal conductivity of foamed molded material) A test specimen measuring 300 mm in length, 300 mm in width, and 25 mm in thickness was cut from the center of the foamed molded body, avoiding the feeder holes and release pin marks of the mold. Both sides of the test specimen had a skin layer (the surface that was in direct contact with the mold). The cut test specimen was left to stand at 60°C for 48 hours, and then at 23°C for 24 hours. After that, the thermal conductivity of the test specimen was measured using a thermal conductivity measuring device (HC-074, manufactured by Eiko Seiki Co., Ltd.) in accordance with the heat flow meter method of JIS A1412-2:1999, at an average temperature of 23°C and a temperature difference of 20°C.
[0111] (Flame retardancy of foamed molded material) The foamed molded body was left to stand at 60°C for 48 hours, and then at 23°C for another 24 hours. After that, the foamed molded body was evaluated according to JIS A9511 (Foamed Plastic Insulation Material) Measurement Method A, and a fire extinguishing time of 3 seconds or less was considered a pass (○).
[0112] [Example 1] (Styrene resin particle preparation process) 100 parts by weight of styrene / (meth)acrylic acid copolymer (A1), 4 parts by weight of graphite (B1), and 2 parts by weight of flame retardant (C) were weighed and blended for 10 minutes using a blender (manufactured by Showa Chemical Machinery Co., Ltd.) to obtain a styrene-based resin composition. The styrene-based resin composition was supplied to a co-screw extruder (TEM26, manufactured by Toshiba Machine Co., Ltd.), and melt-kneaded at a cylinder setting temperature of 230°C (resin temperature when passing through the die of 240°C) and a screw rotation speed of 200 rpm to obtain a molten mixture (melt-kneading process). The molten mixture was extruded at a discharge rate of 20 kg / hour through the discharge holes (hole diameter 1.20 mm) of a die attached to the tip of an extruder (extrusion process). During the extrusion process, the residence time of the styrene resin composition in the extruder was 7 minutes. The number of discharge holes in the die and the distance between discharge holes are as shown in Table 1. Subsequently, the strand extruded from the discharge holes was passed through a 30°C water bath to cool and solidify the strand to 30°C (cooling process). Then, the strand was pulled at a tensile speed of 19 m / min and cut with a rotating blade at a rotation speed of 98 rpm using a pelletizer to obtain styrene resin particles. The obtained styrene resin particles had a particle weight of 0.9 mg per particle and an L1 / D1 of 2.0.
[0113] (Foaming agent impregnation process) 100 parts by weight of the obtained styrene-based resin particles, 200 parts by weight of deionized water, 1.0 part by weight of tricalcium phosphate as a dispersant, 0.03 parts by weight of sodium dodecylbenzenesulfonate as a dispersion aid, and 3.0 parts by weight of sodium chloride were placed in a 6 L autoclave (made of pressure-resistant glass) equipped with a stirring device, and the autoclave was sealed. Next, 7.0 parts by weight of pentane (D1) was added to the autoclave as a blowing agent. Subsequently, the temperature inside the autoclave was raised to 118°C and maintained at 118°C for 8 hours. After that, the temperature inside the autoclave was cooled to room temperature (25 ± 2°C), and the foamed resin particles impregnated with the blowing agent were removed from the autoclave. The obtained foamed resin particles were pickled with hydrochloric acid and then washed with water. Next, the foamed resin particles were dehydrated using a centrifuge (manufactured by Matsumoto Machinery Co., Ltd.), and then dried using an air-flow dryer (manufactured by Hiraiwa Iron Works Co., Ltd.) to obtain foamed styrene-based resin particles. The obtained foamed styrene resin particles had an L2 / D2 ratio of 1.11.
[0114] (Manufacturing of pre-foamed particles) 100 parts by weight of the obtained foamable styrene resin particles, 0.2 parts by weight of zinc stearate, and 0.07 parts by weight of caster wax were placed into a pressurized pre-foaming machine (BHP-110, manufactured by Daikai Kogyo Co., Ltd.) equipped with a stirrer. Subsequently, steam was used as the heating medium, and the foamable styrene resin particles in the foamer were heated at a blown steam pressure of 0.09 MPa to cause foaming (primary foaming) of the foamable styrene resin particles, obtaining foamed particles with a bulk ratio (apparent ratio) of 50 times. The obtained styrene foamed particles had an L3 / D3 ratio of 1.11.
[0115] (Manufacturing of foamed molded products) A molding machine (KR-57, manufactured by Daisen Co., Ltd.) equipped with a flat plate-shaped mold measuring 450 mm in length, 300 mm in width, and 250 mm in thickness was used. Foamed particles, expanded 50 times using the method described above, were filled into the mold. Foam molding was performed in the mold using steam (water vapor) as the heating medium to produce a foamed molded body. The molding conditions were as follows: blowing steam pressure 0.08 MPa, cracking 1 mm, mold heating 2 seconds, heating one side for 6 seconds, heating the other side for 4 seconds, heating both sides for 8 seconds, supplemental heating for 5 seconds, water cooling for 5 seconds, air cooling for 5 seconds, and vacuum cooling for 120 seconds. The obtained foamed molded body was stored at 10°C and then various evaluations were performed. The density of the foamed molded body was 0.20 kg / m³ 3 The results were as follows. The evaluation results are shown in Table 1.
[0116] [Example 2] Except for changing the die temperature setting to 250°C (resin temperature 260°C), styrene-based resin particles, foamed styrene-based resin particles, styrene-based foamed particles, and styrene-based foamed molded articles were produced using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0117] [Example 3] Except for changing the diameter of the discharge hole of the extruder die to 0.09 cm and the discharge rate to 12 kg / hour, styrene-based resin particles, foamed styrene-based resin particles, styrene-based foam particles, and styrene-based foam molded articles were produced using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0118] [Examples 4-7] Except for changing the types of styrene resin and graphite used in the formulations shown in Table 1, styrene resin particles, foamed styrene resin particles, styrene foam particles, and styrene foam molded articles were prepared using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0119] [Comparative Example 1] Except for using the type of styrene resin shown in Table 1, setting the die temperature to 210°C (resin temperature 220°C), and changing the discharge rate to 30 kg / hour, styrene resin particles, foamed styrene resin particles, styrene foam particles, and styrene foam molded articles were produced using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0120] [Comparative Example 2] Except for using the type of styrene resin shown in Table 1, setting the die temperature to 250°C (resin temperature 260°C), and changing the discharge rate to 10 kg / hour, styrene resin particles, foamed styrene resin particles, styrene foam particles, and styrene foam molded articles were produced using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0121] [Comparative Example 3] Except for using the type of styrene resin shown in Table 1 and changing the strand tensile speed by the pelletizer to 10 m / min, styrene resin particles, foamed styrene resin particles, styrene foam particles, and styrene foam molded articles were prepared using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0122] [Comparative Example 4] Except for using the type of styrene resin shown in Table 1 and changing the strand tensile speed by pelletizer to 30 m / min, styrene resin particles, foamed styrene resin particles, styrene foam particles, and styrene foam molded articles were prepared using the same procedure as in Example 1, and the same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0123] [Comparative Example 5] Styrene resin particles, foamed styrene resin particles, and styrene foam particles were prepared using the same procedure as in Example 1, except that the type of styrene resin used was the formulation shown in Table 1 and the die setting temperature was changed to 210°C. In in-mold molding, a styrene foam molded article was prepared using the same procedure as in Example 1, except that the blowing vapor pressure was changed to 0.08 MPa. The same evaluation as in Example 1 was performed. The evaluation results are shown in Table 1.
[0124] [Table 1]
[0125] [Consideration] From Table 1, we can see the following: (1) Examples 1 to 7 show that foamed styrene-based resin particles obtained by a manufacturing method in which the resin composition contains a copolymer of styrene and (meth)acrylic acid, the shear stress of the molten mixture during die passage is in the range of 30 kPa to 90 kPa, and L1 / D1 is in the range of 1.30 to 2.90, can be obtained as foamed molded articles with excellent dimensional stability at 95°C and high moldability.
[0126] (2) In Comparative Examples 1 and 2, the shear stress is outside the range of 30 kPa to 90 kPa. It can be seen that if foamed styrene resin particles obtained by such a manufacturing method are used, a foamed molded article with inferior appearance due to greater surface shrinkage and melting will be obtained compared to Example 1.
[0127] (3) In Comparative Examples 3 and 4, the L1 / D1 ratio is outside the range of 1.30 to 2.90. It can be seen that if foamed styrene resin particles obtained by such a manufacturing method are used, a foamed molded article with inferior appearance due to greater surface shrinkage and melting will be obtained compared to Example 1.
[0128] (4) In Comparative Example 5, the styrene resin does not contain a styrene / (meth)acrylic acid copolymer. It can be seen that if foamed styrene resin particles obtained by such a manufacturing method are used, a foamed molded article will be obtained that exhibits greater shrinkage and melting of the surface of the foamed molded article compared to Example 1, resulting in a poorer appearance and a poor dimensional change rate at 95°C. [Industrial applicability]
[0129] The present invention can be suitably used in fields such as thermal insulation materials (for example, hot water storage tanks, roof insulation materials, pipe insulation materials, temperature-controlled storage containers, temperature-controlled transport containers, etc.).
Claims
1. The process includes a styrene-based resin particle preparation step and a foaming agent impregnation step. The styrene-based resin particle preparation step is as follows: A melt-kneading step in which a styrene-based resin composition containing a styrene / (meth)acrylic acid copolymer is melt-kneaded in an extruder, An extrusion step is performed in which the molten mixture obtained in the melting and kneading step is extruded from the discharge hole of a die provided at the leading end of the extrusion direction of the extruder, The process includes a step of stretching and cutting the molten mixture extruded from the discharge hole in the extrusion step to obtain styrene-based resin particles, The aforementioned foaming agent impregnation step is The styrene-based resin particles are further impregnated with a hydrocarbon-based blowing agent in an aqueous suspension. In the extrusion process, The shear stress of the molten mixture as it passes through the die is 30 kPa to 90 kPa. A method for producing foamed styrene-based resin particles, wherein the ratio (L1 / D1) of the tensile length (L1) of the styrene-based resin particle to the cross-sectional length (D1) is 1.30 to 2.
90.
2. The aforementioned styrene-based resin composition contains graphite, A method for producing foamed styrene resin particles according to claim 1, wherein the content of graphite is 1 to 10 parts by weight with respect to 100 parts by weight of the styrene resin.
3. The styrene-based resin composition contains a flame retardant, A method for producing foamed styrene resin particles according to claim 1, wherein the content of the flame retardant is 0.1 to 5.0 parts by weight per 100 parts by weight of the styrene resin.
4. The method for producing foamed styrene-based resin particles according to claim 3, wherein the flame retardant comprises a bromine-containing organic compound having a 2,3-dibromo-2-alkylpropyl group.
5. The method for producing foamed styrene-based resin particles according to claim 1, wherein the hydrocarbon-based foaming agent comprises one selected from the group consisting of n-pentane, isopentane, neopentane, and cyclopentane.
6. The method for producing foamed styrene-based resin particles according to claim 1, wherein the ratio (L2 / D2) of the length of the long axis (L2) of the foamed styrene-based resin particle to the length of the short axis (D2) is 1.00 to 1.
20.
7. The method for producing foamed styrene-based resin particles according to claim 2, wherein the volume-average particle size of the graphite is 1 μm to 5 μm.
8. A method for producing foamed styrene-based resin particles according to any one of claims 1 to 7, wherein the weight-average molecular weight Mw of the styrene-based resin particles is 150,000 to 300,000.
Citation Information
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