Resin composition, molding, and laminate sheet
A resin composition with eggshell powder and styrene-based thermoplastic elastomer addresses the brittleness of polystyrene resin, enhancing moldability and reducing breakage during molding, particularly in extrusion processes, while utilizing waste materials.
Patent Information
- Application Number
- JP2024012050
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-30
- Publication Date
- 2025-08-12
AI Technical Summary
Polystyrene resin compositions are prone to brittleness and breakage during molding, especially when combined with eggshell powder, leading to reduced moldability and increased risk of resin breakage during processes like extrusion molding.
A resin composition comprising 5 to 75% eggshell powder and 25 to 95% styrene-based thermoplastic elastomer, with a melt flow rate of 0.5 to 15 g/10 min and tensile elongation at break of 20 to 230%, which enhances moldability and suppresses resin breakage.
The composition achieves improved moldability and reduces resin breakage during molding, particularly in extrusion processes, while utilizing naturally derived materials to minimize environmental impact.
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Figure 2025117293000003 
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a resin composition, a molded article, and a laminate sheet. [Background technology]
[0002] In recent years, environmental issues such as global warming have become a focus of attention, and attempts have been made to use naturally derived materials as inorganic fillers in resin compositions. For example, Patent Document 1 describes a method for producing a resin composition by kneading inorganic fine particle aggregates derived from inorganic waste with a resin raw material. Patent Document 2 describes a resin composition containing a thermoplastic resin and eggshell powder having predetermined physical properties in a predetermined mass ratio. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-256260 [Patent Document 2] Patent Publication No. 2021-152129 Summary of the Invention [Problem to be solved by the invention]
[0004] Polystyrene resin is a typical thermoplastic resin that is highly transparent, moldable, and inexpensive, and therefore widely used in a variety of applications, such as home appliance parts, automotive interior materials, building materials, food containers, packaging materials, and toys. However, polystyrene resin is highly brittle, and is therefore prone to breakage when pulled or impacted, especially when molded into a sheet. Furthermore, resin compositions containing polystyrene resin and eggshell powder exhibit even greater brittleness, making the resin less likely to stretch and also reducing its flowability. When such resin compositions are molded into a sheet, for example, by extrusion molding, it is difficult to obtain the desired moldability, and there is a risk of the resin breaking during molding.
[0005] An object of the present invention is to provide a resin composition that has good moldability and can suppress breakage of the resin during molding, as well as a molded article and a laminate sheet that contain the resin composition. [Means for solving the problem]
[0006] As a result of extensive investigations, the present inventors have found that the above-mentioned problems can be solved by a resin composition including the following aspects. [1] A resin composition comprising eggshell powder (A) and a styrene-based thermoplastic elastomer (B), wherein the content of the eggshell powder (A) is 5 to 75 mass% and the content of the styrene-based thermoplastic elastomer (B) is 25 to 95 mass% relative to the total mass of the resin composition, and the resin composition has a melt flow rate of 0.5 to 15 g / 10 min at 200°C under a 5 kg load and a tensile elongation at break of 20 to 230% as measured in accordance with ASTM-D638. [Effects of the Invention]
[0007] According to the present invention, it is possible to provide a resin composition that has good moldability and can suppress breakage of the resin during molding, as well as a molded article and a laminate sheet that include the resin composition. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 2 is an explanatory diagram of a layer structure of a laminated sheet according to one embodiment. [Figure 2] FIG. 10 is an explanatory diagram of a layer structure of a laminated sheet according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0009] An embodiment of the present invention will be described in detail below, but the scope of the present invention is not limited to the embodiment described herein, and various modifications can be made without departing from the spirit of the present invention. Furthermore, when multiple upper and lower limit values are described for a specific parameter, any upper and lower limit values can be combined to form a suitable numerical range. The expression "α to β" indicating a numerical range means "above α and below β." When a specific description given for one embodiment also applies to other embodiments, that description may be omitted in other embodiments.
[0010] The configurations and combinations thereof in each embodiment are merely examples, and additions, omissions, substitutions, and other modifications of the configurations are possible as appropriate without departing from the spirit of the present disclosure. The present disclosure is not limited to the embodiments. Each aspect disclosed in this specification can be combined with any other feature disclosed in this specification.
[0011] [Resin composition] A first embodiment of the present disclosure relates to a resin composition. The resin composition according to the first embodiment contains eggshell powder (A) and a styrene-based thermoplastic elastomer (B), and the content of the eggshell powder (A) is 5 to 75 mass% and the content of the styrene-based thermoplastic elastomer (B) is 25 to 95 mass% relative to the total mass of the resin composition. The resin composition has a melt flow rate of 0.5 to 15 g / 10 min at 200°C under a 5 kg load, and a tensile elongation at break of 20 to 230% as measured in accordance with ASTM-D638.
[0012] The resin composition according to the first embodiment contains predetermined amounts of eggshell powder (A) and styrene-based thermoplastic elastomer (B), and the melt flow rate (MFR) and tensile elongation at break of the resin composition fall within predetermined ranges, thereby enabling it to have good moldability. Furthermore, such a resin composition can suppress breakage of the resin during molding (particularly during extrusion molding). Furthermore, the specific amount of eggshell powder (A) allows for the use of naturally derived materials and the effective use of waste materials such as food waste, thereby contributing to reducing environmental impact.
[0013] ·MFR The resin composition according to the first embodiment has an MFR at 200°C under a 5 kg load (hereinafter referred to as "MFR (200°C, 5 kg load)") of 0.5 to 15 g / 10 min. When the resin composition has an MFR (200°C, 5 kg load) of 0.5 to 15 g / 10 min, the fluidity required for extrusion molding can be ensured, resulting in good moldability. That is, when the MFR (200°C, 5 kg load) is 0.5 g / 10 min or more, it is possible to prevent the fluidity from becoming too low, which would make it difficult to produce a sheet-shaped molded product. When the MFR (200°C, 5 kg load) is 15 g / 10 min or less, it is possible to prevent drawdown (a phenomenon in which the resin cannot withstand its own weight when heated, resulting in uneven thickness) during molding, particularly extrusion molding, which makes it difficult to produce a uniform sheet.
[0014] In one embodiment, the MFR (200°C, 5 kg load) of the resin composition is preferably 0.5 to 12 g / 10 min, more preferably 1.0 to 11 g / 10 min, and even more preferably 1.5 to 10.5 g / 10 min, from the viewpoint of improving fluidity during molding. In a more preferred embodiment, the MFR (200°C, 5 kg load) of the resin composition may be 1.5 to 6.5 g / 10 min, 2.0 to 6.5 g / 10 min, or 2.5 to 6.0 g / 10 min. The MFR of the resin composition is a value measured in accordance with the standard JIS K 7210-2:2014 (ISO 1133-2:2011).
[0015] The MFR (200°C, 5 kg load) of the resin composition according to the first embodiment can be adjusted within the above range by adjusting the amount of eggshell powder (A) in the resin composition, adjusting the amount of styrene-based thermoplastic elastomer (B), or combining multiple styrene-based thermoplastic elastomers (B). For example, increasing the proportion of eggshell powder (A) tends to lower the MFR (200°C, 5 kg load) of the resin composition, while decreasing the proportion of eggshell powder (A) tends to increase the MFR (200°C, 5 kg load) of the resin composition. For example, when the resin composition contains 50% by mass or more of eggshell powder (A), the MFR (200°C, 5 kg load) tends to decrease further. Therefore, to achieve the desired MFR (200°C, 5 kg load), it is preferable to incorporate a specific amount of a styrene-butadiene block copolymer as the styrene-based thermoplastic elastomer (B). It is more preferable to combine two or more types of styrene-based thermoplastic elastomers (B), and even more preferable to combine two or more types of styrene-butadiene block copolymers. When the resin composition contains less than 50% by mass of eggshell powder (A), the MFR (200°C, 5 kg load) value is relatively easy to adjust, so the amount of styrene-based thermoplastic elastomer (B) may be adjusted to maintain a high tensile elongation at break.
[0016] Tensile elongation at break The resin composition according to the first embodiment has a tensile elongation at break measured according to ASTM-D638 of 20 to 230%. If the resin composition has a tensile elongation at break of 20% or more, the resin can be prevented from breaking during molding, particularly extrusion molding. From this perspective, the tensile elongation at break of the resin composition is preferably 25% or more, more preferably 30% or more, even more preferably 35% or more, and particularly preferably 40% or more. Furthermore, if the resin composition has a tensile elongation at break of 230% or less, the resin composition can be prevented from causing drawdown (a phenomenon in which the resin cannot withstand its own weight when heated, resulting in thickness deviation) during molding, particularly extrusion molding, which makes it impossible to form a uniform sheet. From this perspective, the tensile elongation at break of the resin composition is preferably 190% or less, more preferably 170% or less, even more preferably 150% or less, even more preferably 130% or less, and particularly preferably 120% or less.
[0017] In the resin composition according to the first embodiment, the tensile elongation at break can be adjusted by the amount of the styrene-based thermoplastic elastomer (B). In one embodiment, when the content of eggshell powder (A) in the resin composition is 50% by mass or more, it is preferable that the thermoplastic resin contains only the styrene-based thermoplastic elastomer (B) and does not contain any other styrene-based resins. This configuration makes it easier to adjust the tensile elongation at break to within the above range.
[0018] <Eggshell powder (A)> The eggshell powder (A) is not particularly limited in terms of its raw material as long as it is made from powdered eggshells, but it is preferably made from animal eggshells, more preferably chicken eggshells. From the viewpoint of further reducing the environmental load, it is preferable to use waste as the raw material, and it may also be made from food waste.
[0019] The content of eggshell powder (A) is 5 to 75% by mass relative to the total mass of the resin composition. In one embodiment, from the viewpoints of easily obtaining a molded article with a uniform film thickness and easily obtaining a high tensile modulus of elasticity of the obtained molded article, the content of eggshell powder (A) relative to the total mass of the resin composition is preferably 5% by mass or more but less than 50% by mass, more preferably 5 to 45% by mass, even more preferably 6 to 45% by mass, and particularly preferably 7 to 40% by mass. Note that, from the viewpoint of obtaining a molded article with a lower environmental impact, it is preferable to set the content of eggshell powder (A) in the resin composition to a high level. From this viewpoint, the content of eggshell powder (A) relative to the total mass of the resin composition is preferably 50 to 75% by mass, more preferably more than 50% by mass but not more than 70% by mass, and even more preferably 51 to 68% by mass.
[0020] When the content of eggshell powder (A) in the resin composition is 50% by mass or more, the resin becomes more brittle, making it more susceptible to molding defects and resin breakage during molding. After extensive research, the present inventors discovered that a resin composition that exhibits good moldability and minimizes resin breakage during molding can be obtained by combining eggshell powder (A) with a styrene-based thermoplastic elastomer (B) in the resin composition, setting the lower limit of the proportion of the styrene-based thermoplastic elastomer (B) to 25% by mass or more, and further controlling the MFR and tensile elongation at break within a predetermined range. The inventors also discovered that the resin composition according to the first embodiment more preferably contains only the styrene-based thermoplastic elastomer (B) as the thermoplastic resin, and even more preferably contains a styrene-butadiene block copolymer as the styrene-based thermoplastic elastomer (B), as described below. The inventors also discovered that the above effects can be more easily achieved by combining two or more types of styrene-butadiene block copolymers.
[0021] In one embodiment, the content of eggshell powder (A) is 5 to 300 parts by mass relative to 100 parts by mass of the styrene-based thermoplastic elastomer (B). From the viewpoint of obtaining a resin composition with a lower environmental impact, the content may be 100 to 300 parts by mass, 104 to 300 parts by mass, 106 to 300 parts by mass, 110 to 300 parts by mass, or 113 to 300 parts by mass relative to 100 parts by mass of the styrene-based thermoplastic elastomer (B).
[0022] In one embodiment, the average particle size of the eggshell powder (A) is preferably greater than 3 μm and not greater than 70 μm, more preferably 3.5 to 65 μm, and even more preferably 4 to 60 μm, from the viewpoints of easily adjusting the flowability of the resin composition to a range suitable for extrusion sheet molding and enhancing the dispersibility of the eggshell powder (A) in the resin. In one embodiment, the average particle size of the eggshell powder (A) may be greater than 3 μm and not greater than 40 μm, 4 to 30 μm, 5 to 25 μm, or 10 to 20 μm. The average particle size of the eggshell powder (A) can be adjusted according to the "sieving method" and evaluated by measuring the laser diffraction and scattering state under wet conditions using water as the dispersion medium using a particle size distribution analyzer. In one embodiment, the resin composition may contain 50 to 75 mass% of eggshell powder (A) having an average particle size of 4 to 30 μm, based on the total mass of the resin composition.
[0023] In one embodiment, the density (g / cm 3 ) of the eggshell powder (A) 3 ) is preferably 1.5 to 3.0 g / cm from the viewpoint of minimizing the content of eggshell membrane. 3 and more preferably 1.7 to 2.8 g / cm 3 and more preferably 2.0 to 2.7 g / cm 3 is.
[0024] Eggshell powder (A) can be prepared by a conventionally known manufacturing method. For example, eggshells may be pulverized by a known method and then classified to obtain eggshell powder (A) having a desired average particle size. Specifically, after removing the eggshell membrane from the eggshell, the eggshell is dried. The eggshell is then pulverized using a pulverizer or the like to obtain eggshell powder. The eggshell powder can then be obtained by classification using a sieve with an appropriate mesh size.
[0025] Commercially available eggshell powder (A) can also be used, such as those manufactured by Green Techno 21 Co., Ltd. under the trade name "GT-31," those manufactured by Green Techno 21 Co., Ltd. under the trade name "GT-26," and those manufactured by Kewpie Egg Corporation under the trade name "Calhope (registered trademark)."
[0026] In one embodiment, the resin composition may contain an inorganic filler other than the eggshell powder (A) as long as the effects of the present invention are not impaired. Examples of inorganic fillers other than the eggshell powder (A) include inorganic fillers derived from minerals such as calcium carbonate, talc, and zeolite; inorganic fillers derived from biominerals such as pearls, shells, bones, and the exoskeletons of crustaceans; and inorganic fillers such as glass fibers and glass beads.
[0027] When eggshell powder (A) is used in combination with the aforementioned inorganic filler, it is preferable to adjust the total content of eggshell powder (A) and the inorganic filler so that it does not exceed 75% by mass relative to the total mass of the resin composition. From the viewpoint of more easily achieving the effect of combined use with the styrene-based thermoplastic elastomer (B) described below, the content of eggshell powder (A) in the inorganic filler is preferably 60% by mass or more, more preferably 70% by mass or more, even more preferably 90% by mass or more, and particularly preferably 98% by mass or more, relative to the total amount of the inorganic filler. In one embodiment, the inorganic filler can be composed solely of eggshell powder (A).
[0028] <Styrene-based thermoplastic elastomer (B)> The resin composition according to the first embodiment is characterized by containing a predetermined amount of eggshell powder (A) and a styrene-based thermoplastic elastomer (B). The styrene-based thermoplastic elastomer (B) is a block copolymer of an aromatic vinyl compound and a conjugated diene, or a hydrogenated product thereof.
[0029] Examples of aromatic vinyl compounds include styrene, α-methylstyrene, p-methylstyrene, o-methylstyrene, m-methylstyrene, ethylstyrene, and pt-butylstyrene. These aromatic vinyl compounds may be used alone or in combination of two or more. In one embodiment, the aromatic vinyl compound preferably contains styrene.
[0030] Examples of conjugated dienes include 1,3-butadiene, 2-methyl-1,3-butadiene (isoprene), 2,3-dimethyl-1,3-butadiene, 1,3-pentadiene, and 1,3-hexadiene, and it is preferable to include at least one selected from these. One type of conjugated diene may be used alone, or two or more types may be used in combination. In one embodiment, it is preferable that the conjugated diene includes 1,3-butadiene and / or isoprene.
[0031] Specific examples of the styrene-based thermoplastic elastomer (B) include block copolymers such as styrene-butadiene (SB), styrene-isoprene (SI), styrene-butadiene-butylene (SBB), styrene-butadiene-isoprene (SBI), styrene-butadiene-styrene (SBS), styrene-butadiene-butylene-styrene (SBBS), styrene-isoprene-styrene (SIS), and styrene-butadiene-isoprene-styrene (SBIS), as well as hydrogenated block copolymers thereof. These may be used alone or in combination. In one embodiment, the styrene-based thermoplastic elastomer (B) preferably contains a styrene-butadiene block copolymer and a partially or fully hydrogenated polymer thereof. In a preferred embodiment, the styrene-based thermoplastic elastomer (B) may contain only a styrene-butadiene block copolymer. In this disclosure, the term "styrene-butadiene block copolymer" may also include its hydrogenated product.
[0032] The proportion of the diene component in the styrene-based thermoplastic elastomer (B) is preferably 10 to 35 mass%, more preferably 15 to 35 mass%, even more preferably 20 to 35 mass%, and particularly preferably 20 to 30 mass%, relative to the total mass of the styrene-based thermoplastic elastomer (B), from the viewpoint of easily adjusting the MFR and tensile elongation at break of the resin composition within predetermined ranges. The content of the conjugated diene component may be a value calculated from the amount of the conjugated diene charged, or may be a value measured by potentiometric titration using iodine monochloride, potassium iodide, and sodium thiosulfate standard solutions.
[0033] The weight average molecular weight (Mw) of the styrene-based thermoplastic elastomer (B) is preferably 100,000 to 200,000, more preferably 110,000 to 180,000, and even more preferably 110,000 to 160,000. When the Mw of the styrene-based thermoplastic elastomer (B) is within the above range, the mixability with the eggshell powder (A) is easily improved. The Mw of the styrene-based thermoplastic elastomer is measured by GPC under the same conditions as those for the polystyrene resin described above.
[0034] The MFR (200°C, 5 kg load) of the styrene-based thermoplastic elastomer (B) is preferably 3.0 to 25 g / 10 min, more preferably 4.0 to 22 g / 10 min, and even more preferably 5.0 to 19 g / 10 min, from the viewpoint of easily adjusting the MFR of the resin composition within a predetermined range. In one embodiment, the MFR (200°C, 5 kg load) of the styrene-based thermoplastic elastomer (B) may be in the range of 8.0 to 16 g / 10 min. The MFR (200°C, 5 kg load) of the styrene-based thermoplastic elastomer (B) can be measured under the same conditions as those for the MFR (200°C, 5 kg load) of the resin composition described above.
[0035] The content of the styrene-based thermoplastic elastomer (B) in the resin composition is 25 to 95 mass%, preferably 30 to 95 mass%, more preferably 35 to 95 mass%, and even more preferably 40 to 95 mass%. In one embodiment, the content of the styrene-based thermoplastic elastomer (B) in the resin composition may be 25 to 50 mass%, 30 to 50 mass%, or 35 to 50 mass%, relative to the total mass of the resin composition. In another embodiment, the styrene-based thermoplastic elastomer (B) may be blended in such a range that the total amount of the eggshell powder (A) and the styrene-based thermoplastic elastomer (B) is 100 mass%.
[0036] In one embodiment, the styrene-based thermoplastic elastomer (B) preferably contains at least two types of styrene-butadiene block copolymers. "Containing at least two types of styrene-butadiene block copolymers" means containing two or more types of styrene-butadiene block copolymers that differ in at least one physical property among MFR (200°C, 5 kg load), tensile elongation at break, conjugated diene content, and Mw. The at least two types of styrene-butadiene block copolymers preferably include the following styrene-butadiene block copolymers (b1) and (b2).
[0037] (Styrene-butadiene block copolymers (b1) and (b2)) The styrene-butadiene block copolymer (b1) (hereinafter sometimes referred to as "resin (b1)") preferably has an MFR (200°C, 5 kg load) of 3.0 to 10 g / 10 min and a tensile elongation at break measured in accordance with ASTM-D638 of 250 to 400%. The MFR (200°C, 5 kg load) of resin (b1) may be 3.0 to 9.0 g / 10 min, 4.0 to 8.0 g / 10 min, or 5.0 to 8.0 g / 10 min. The tensile elongation at break of resin (b1) may be 250 to 380%, 280 to 370%, or 300 to 370%. Furthermore, the Mw of the resin (b1) is preferably from 140,000 to 200,000, more preferably from 140,000 to 190,000, and even more preferably from 145,000 to 180,000.
[0038] The styrene-butadiene block copolymer (b2) (hereinafter sometimes referred to as "resin (b2)") preferably has an MFR (200°C, 5 kg load) of more than 10 g / 10 min and not more than 30 g / 10 min, and a tensile elongation at break measured in accordance with ASTM-D638 of 20% or more and less than 250%. The MFR (200°C, 5 kg load) of resin (b2) may be 12 to 28 g / 10 min, 12 to 25 g / 10 min, 15 to 24 g / 10 min, or 17 to 22 g / 10 min. The tensile elongation at break of resin (b1) may be 50% or more and less than 250%, 100 to 245%, 150 to 245%, or 180 to 245%. Furthermore, the Mw of the resin (b2) is preferably 110,000 or more and less than 140,000, more preferably 1,100,000 to 135,000, and even more preferably 115,000 to 130,000.
[0039] When a resin composition contains 50% by mass or more of eggshell powder (A), including the above-mentioned resin (b1) and resin (b2) as the styrene-based thermoplastic elastomer (B) makes it easier to obtain a resin composition that has good moldability and can suppress resin breakage during molding (particularly during extrusion molding). As mentioned above, as the content of eggshell powder (A) in a resin composition increases, the resin becomes more brittle, making it more likely to suffer from molding defects or resin breakage during molding. After extensive research, the present inventors have found that high fluidity and high tensile elongation at break can be achieved by combining at least two types of styrene-based thermoplastic elastomers, particularly by combining and blending the above-mentioned resin (b1) and resin (b2). Such a resin composition has good moldability and is more likely to suppress resin breakage during molding.
[0040] When the resin composition contains resin (b1) and resin (b2), they are blended so that the total content of resin (b1) and resin (b2) is 25 to 95% by mass based on the total mass of the resin composition. In one embodiment, the mass ratio of resin (b1) to resin (b2) in the resin composition (resin (b1):resin (b2)) is preferably 5:1 to 1:2, and more preferably 4:1 to 1:1.5. In a preferred embodiment, the resins may be blended so that the mass ratio is resin (b1) > resin (b2). By blending so that the mass ratio is resin (b1) > resin (b2), the MFR (200°C, 5 kg load) and tensile elongation at break tend to fall within the specified ranges, and a resin composition with good moldability tends to be obtained.
[0041] In one embodiment, the resin composition may contain only eggshell powder (A) and resin (b1) and resin (b2) as thermoplastic resins. In a more preferred embodiment, the content of eggshell powder (A) may be 50 to 70 mass%, the content of resin (b1) may be 20 to 40 mass%, and the content of resin (b2) may be 10 to 30 mass%, relative to the total mass of the resin composition (provided that the total of eggshell powder (A), resin (b1), and resin (b2) does not exceed 100 mass%).
[0042] In one embodiment, the coefficient (f) of the resin composition, expressed as MFR (200°C, 5 kg load) x tensile elongation at break (ASTM-D638), may be 65 to 1500, 80 to 1400, 100 to 1300, or 140 to 1200. A resin composition having a coefficient (f) within the above range has a good balance between MFR (200°C, 5 kg load) and tensile elongation at break, has better moldability, and is less likely to break during molding.
[0043] <Other thermoplastic resins> The resin composition according to the first embodiment may contain a thermoplastic resin other than the styrene-based thermoplastic elastomer (B) within a range that does not impair the effects of the present invention. Examples of other thermoplastic resins include polystyrene resins.
[0044] (Polystyrene resin) The polystyrene resin refers to a polymer of an aromatic vinyl compound, a copolymer of an aromatic vinyl compound and a compound copolymerizable with the aromatic vinyl compound (excluding a block copolymer of an aromatic vinyl compound and a conjugated diene), or a polymer obtained by graft polymerization of these in the presence of a rubber polymer. Examples of the aromatic vinyl compound include the same compounds as those described above for the styrene-based thermoplastic elastomer (B), and styrene is preferred.
[0045] Examples of rubbery polymers include conjugated diene rubber, copolymers of conjugated dienes and aromatic vinyl compounds, and ethylene-propylene copolymer rubbers. More specifically, examples include polybutadiene, styrene-butadiene random copolymers, styrene-butadiene block copolymers, and polymers in which some or all of these are hydrogenated. Note that the polystyrene resin does not include the aforementioned styrene-based thermoplastic elastomer (B). In one embodiment, the polystyrene resin may contain a polymer containing monomer units derived from the aromatic vinyl compound, monomer units derived from the unsaturated nitrile compound, and the rubbery polymer. As such a polymer, a copolymer of acrylonitrile, styrene, and a conjugated diene rubber is preferred, and an acrylonitrile-butadiene-styrene copolymer is more preferred.
[0046] The polystyrene resin may be general-purpose polystyrene (homopolystyrene, hereinafter also referred to as "GPPS") or high impact polystyrene (hereinafter also referred to as "HIPS"). In one embodiment, the polystyrene resin preferably includes at least one resin selected from general-purpose polystyrene and high impact polystyrene, and preferably includes HIPS.
[0047] In one embodiment, when the content of eggshell powder (A) in the resin composition is less than 50% by mass relative to the total mass of the resin composition, the resin composition may contain at least one polystyrene resin selected from GPPS and HIPS, or may contain HIPS. On the other hand, when the content of eggshell powder (A) in the resin composition is 50% by mass or more, it is preferable that the resin composition does not contain these polystyrene resins, from the viewpoint of easily achieving the desired MFR and tensile elongation at break. When the resin composition contains a polystyrene resin, the content of the polystyrene resin is preferably 40% by mass or less, more preferably 30% by mass or less, and particularly preferably 20% by mass or less, based on the total mass of the resin composition. The content of the polystyrene resin in the resin composition may be 10% by mass or less, or may be 5% by mass or less.
[0048] From the viewpoint of the MFR of the resin composition, the weight average molecular weight (Mw) of the polystyrene resin may be 10,000 to 500,000, or 100,000 to 400,000. The Mw of the polystyrene resin refers to a value calculated in terms of polystyrene by GPC (gel permeation chromatography).
[0049] The MFR (200°C, 5 kg load) of the polystyrene resin may be 1.0 to 10 g / 10 min, 1.3 to 6.0 g / 10 min, or 1.5 to 5.5 g / 10 min. The MFR (200°C, 5 kg load) of the polystyrene resin is a value measured in accordance with JIS K 7210-2:2014 (ISO 1133-2:2011).
[0050] The resin composition according to the first embodiment may contain a thermoplastic resin other than the above-mentioned polystyrene resin and styrene-based thermoplastic elastomer (B).
[0051] <Other ingredients> In one embodiment, the resin composition may contain optional components such as ultraviolet absorbers, light stabilizers, antioxidants, lubricants, plasticizers, colorants, antistatic agents, flame retardants, and mineral oils, as well as reinforcing fibers such as glass fibers, carbon fibers, and aramid fibers, as long as the effects of the present invention are not impaired. Among these, it is preferable to contain the additive (C) described below. Furthermore, these other components may be used alone or in combination of two or more.
[0052] (Additive (C)) In one embodiment, the resin composition may contain an additive (C) containing at least one compound selected from fatty acid amide (c1), fatty acid sodium (c2), and fatty acid ester (c3). In this case, it is preferable that the combined content of fatty acid amide (c1), fatty acid sodium (c2), and fatty acid ester (c3) exceeds 50% by mass relative to the total mass of additive (C), and that the combined content of additive (C) is 10 parts by mass or less relative to 100 parts by mass of eggshell powder (A) and styrene-based thermoplastic elastomer (B). Adding additive (C) in such an amount facilitates controlling the MFR (200°C, 5 kg load) and / or tensile elongation at break within a predetermined range. Adding additive (C) is particularly preferable when the content of eggshell powder (A) in the resin composition exceeds 50% by mass.
[0053] In one embodiment, the content of additive (C) may be 9 parts by mass or less, 8 parts by mass or less, or 7 parts by mass or less, relative to 100 parts by mass of the total of the eggshell powder (A) and the styrene-based thermoplastic elastomer (B). The lower limit of the content of additive (C) may be 0.5 parts by mass or more, or 1 part by mass or more, relative to 100 parts by mass of the total of the eggshell powder (A) and the styrene-based thermoplastic elastomer (B), from the viewpoint of MFR (200°C, 5 kg load) and / or tensile elongation at break. That is, the content of additive (C) may be 0.5 to 10 parts by mass, 0.5 to 9 parts by mass, 0.5 to 8 parts by mass, 1 to 8 parts by mass, or 1 to 6 parts by mass, relative to 100 parts by mass of the total of the eggshell powder (A) and the styrene-based thermoplastic elastomer (B).
[0054] (Fatty acid amide (c1)) The additive (C) can contain a fatty acid amide (c1) (hereinafter, also referred to as "compound (c1)"). The fatty acid amide (c1) has "R 1 It is a compound having an amide group represented by the formula "-C(=O)-N-". The term "fatty acid amide" includes primary amides, secondary amides, tertiary amides, and those having two or more nitrogen atoms in one molecule. On the other hand, the fatty acid amide (c1) in this embodiment does not include polymers such as aliphatic polyamides typified by nylon-6.
[0055] R 1 is a hydrocarbon group which may have a substituent. The term "optionally substituted" means that one or more hydrogen atoms in the hydrocarbon group may be substituted with a substituent. R 1 is preferably an alkyl group having 2 or more carbon atoms, which may have a substituent, or an alkenyl group, which may have a substituent. There are no particular limitations on such fatty acid amide (c1) as long as it has the effect of the present invention. However, from the viewpoint of compatibility with the styrene-based thermoplastic elastomer (B), R 1is preferably a higher fatty acid amide in which R is an alkyl group having 10 or more carbon atoms, which may have a substituent, or an alkenyl group, which may have a substituent. Specific examples include saturated fatty acid monoamides such as lauric acid amide, palmitic acid amide, stearic acid amide, and behenic acid amide; unsaturated fatty acid monoamides such as oleic acid amide and erucic acid amide; substituted amides such as N-stearyl stearic acid amide, N-stearyl oleic acid amide, N-oleyl stearic acid amide, and N-stearyl erucic acid amide; methylene bisstearic acid amide, ethylene biscapric acid amide, ethylene biscapric acid amide, and ethylene biscapric acid amide. Examples of the compound (c1) include saturated fatty acid bisamides such as ethylene bislauric acid amide, ethylene bisstearic acid amide, ethylene bisbehenic acid amide, hexamethylene bisstearic acid amide, and N,N'-distearyl adipamide; and unsaturated fatty acid bisamides such as ethylene bisoleic acid amide, ethylene biserucic acid amide, hexamethylene bisoleic acid amide, and N,N'-dioleyl adipamide. These may be used alone or in combination of two or more. Among these, from the viewpoint of easily suppressing breakage of the resin during molding, particularly extrusion molding, compound (c1) preferably contains a saturated fatty acid bisamide having 10 or more carbon atoms, and more preferably contains ethylene bisstearic acid amide.
[0056] (Sodium fatty acid (c2)) The additive (C) can contain fatty acid sodium salt (c2). The fatty acid sodium salt (c2) (hereinafter sometimes referred to as "compound (c2)") is a compound represented by "R 2 -C(=O)-O-Na" is a compound represented by R 2 is R 1Examples of the fatty acid sodium salt (c2) include those shown in the above, and preferably an alkyl group having 2 or more carbon atoms, which may have a substituent, or an alkenyl group, which may have a substituent. There are no particular restrictions on the fatty acid sodium salt (c2) as long as it has the effect of the present invention. In one embodiment, from the viewpoint of making it easier to obtain a resin composition having better compatibility with the styrene-based thermoplastic elastomer (B) and having better tensile elongation at break, it is preferable to use a fatty acid sodium salt (c2) having R 2 is preferably a sodium salt of a higher fatty acid, wherein is an alkyl group having 10 or more carbon atoms, which may have a substituent, or an alkenyl group, which may have a substituent. Specific examples include sodium salts of higher fatty acids having 10 to 20 carbon atoms, such as sodium laurate, sodium myristate, sodium palmitate, sodium oleate, and sodium stearate. These may be used alone or in combination of two or more. That is, the fatty acid sodium salt (c2) may be a mixture of the above-mentioned sodium salts of higher fatty acids having 10 to 20 carbon atoms.
[0057] (Fatty acid ester (c3)) The additive (C) can contain a fatty acid ester (c3). The fatty acid ester (c3) (hereinafter sometimes referred to as "compound (c3)") has "R 3 It is an ester containing a fatty acid group represented by -C(=O)O-. In one embodiment, the fatty acid ester (c3) is preferably a higher fatty acid ester obtained by reacting a higher fatty acid having 10 or more carbon atoms with a polyhydric alcohol. The higher fatty acid is preferably an alkyl or alkenyl group having 10 or more carbon atoms which may have a substituent. In addition, examples of the polyhydric alcohol include dihydric to hexahydric polyhydric alcohols such as ethylene glycol, glycerin, 1,2,4-butanetriol, diglycerin, pentaerythritol, sorbitol, erythritol, and hexanetriol.
[0058] In a preferred embodiment, the higher fatty acid ester may include a glycerin fatty acid ester. Examples of the glycerin fatty acid ester include lauric acid monoglyceride, lauric acid diglyceride, lauric acid triglyceride, palmitic acid monoglyceride, palmitic acid diglyceride, palmitic acid triglyceride, stearic acid monoglyceride, stearic acid diglyceride, stearic acid triglyceride, stearic acid tetraglyceride, hydroxystearic acid monoglyceride, hydroxystearic acid diglyceride, hydroxystearic acid triglyceride, and hydroxystearic acid tetraglyceride. These may be used alone or in combination of two or more. Among these, it is preferable to include hydroxystearic acid glyceride, from the viewpoint of more easily improving the compatibility between the eggshell powder (A) and the resin component and more easily obtaining a resin composition having excellent tensile elongation at break.
[0059] In one embodiment, the additive (C) preferably contains any one of compound (c1), compound (c2), or compound (c3). From the viewpoint of easily improving the tensile elongation at break, it is preferable to contain compound (c2). Furthermore, from the viewpoint of easily obtaining a resin composition with a higher MFR (200°C, 5 kg load), it is preferable to contain compound (c1).
[0060] In one embodiment, the total content of the compounds (c1) to (c3) in the additive (C) is more than 50% by mass, may be more than 50% by mass and not more than 100% by mass, may be 55 to 100% by mass, may be 60 to 100% by mass, or may be 65 to 100% by mass, relative to the total mass of the additive (C).
[0061] [Method of producing resin composition] The resin composition according to the first embodiment can be produced by melt-kneading the eggshell powder (A), the styrene-based thermoplastic elastomer (B), and, if necessary, the other components (preferably the additive (C)) and / or other thermoplastic resins. Specifically, the components are fed into a twin-screw extruder, melt-kneaded at a temperature of 200 to 250°C, and then extruded in the form of strands to prepare a pellet-shaped resin composition.
[0062] [Application] The resin composition according to the first embodiment has good moldability and can suppress breakage of the resin during molding, particularly breakage of the resin during extrusion molding. Such a resin composition can be suitably used particularly as a resin composition for molded products by extrusion molding (a resin composition for extrusion molding). Furthermore, as a molded product by extrusion molding, it is particularly suitable as a resin composition for sheet-shaped molded products. In one embodiment, the resin composition is preferably a resin composition for extrusion sheet molding. It should be noted that the use of the resin composition according to the first embodiment is not limited to extrusion molding or sheet-shaped molded products.
[0063] [Molded products] A second embodiment of the present disclosure relates to a molded article containing the resin composition according to the first embodiment. The molded article according to the second embodiment has good moldability because it contains a resin composition containing a predetermined amount of eggshell powder (A) and a styrene-based thermoplastic elastomer (B) and having a predetermined MFR and tensile elongation at break. Furthermore, the resin is less likely to break during molding, particularly extrusion molding. Furthermore, the molded article according to the second embodiment contains a certain amount of eggshell powder (A) as an inorganic filler, which reduces the environmental impact. Such molded articles can be used in a variety of applications, including home appliance parts, automotive interior materials, building materials, food containers, toys, and packaging materials.
[0064] In one embodiment, the molded article may be in the form of a sheet. A preferred method for producing a sheet-shaped molded product is an extrusion sheet molding method in which a resin composition is extruded using an extruder equipped with a T-die. When producing a sheet-shaped molded product by the extrusion sheet molding method, a step of winding up the sheet-shaped molded product extruded from the molding machine with a winder is generally included. If a highly brittle resin composition is used, the resin is likely to break when extruded from the molding machine. In addition, the sheet may be damaged by being pulled when wound up by the winder. The resin composition according to the first embodiment can prevent breakage or damage to the resin when producing a sheet-shaped molded product.
[0065] The sheet-shaped molded product may be further molded by vacuum pressure forming, pressure forming, or the like. If a highly brittle resin composition is used, the sheet may be damaged by the external force applied during vacuum pressure forming or pressure forming. The resin composition according to the first embodiment can prevent damage to the sheet-shaped molded product during vacuum pressure forming or pressure forming. The resin composition according to a preferred embodiment can produce a vacuum pressure forming product or pressure forming product with a uniform film thickness.
[0066] [Laminated sheet] A third embodiment of the present disclosure relates to a laminated sheet. The laminate sheet according to the third embodiment has at least a layer (X) containing a polystyrene resin and a layer (Y) containing the resin composition according to the first embodiment. FIG. 1 shows an example of a laminate sheet according to the third embodiment. The laminate sheet 10 has a configuration in which a layer (Y) (hereinafter referred to as "layer (Y)") containing the resin composition according to the first embodiment is laminated on a layer (X) (hereinafter referred to as "layer (X)") containing a polystyrene resin. Because such a laminate sheet 10 has layer (Y), it is an environmentally friendly laminate sheet. Furthermore, the laminate sheet 10 has excellent formability even when further molded by vacuum pressure molding, pressure molding, or the like.
[0067] <Layer (X) containing polystyrene resin> Examples of the polystyrene resin contained in layer (X) include the same polystyrene resins as those exemplified in the resin composition according to the first embodiment. In one embodiment, the polystyrene resin preferably contains at least one resin selected from GPPS and HIPS. When the resin composition contains a polystyrene resin, the polystyrene resin contained in layer (X) may be the same type of polystyrene resin as the polystyrene resin contained in layer (Y), or may be a different type of polystyrene (e.g., a different type of monomer).
[0068] In one embodiment, the ratio (X:Y) of the total thickness of the layer (X) to the total thickness of the layer (Y) is preferably 10-30:70-90. In one embodiment, the total thickness of the layer (X) is preferably 30% or less, and more preferably 25% or less, of the total thickness of the laminate sheet. In one embodiment, the total thickness of the layer (X) may be, for example, more than 0 mm and 0.36 mm or less, or more than 0 mm and 0.3 mm or less. In the present disclosure, the layer thickness is a value measured using a constant pressure thickness measuring instrument in accordance with JIS K6783.
[0069] <Layer (Y) containing resin composition> The layer (Y) contains eggshell powder (A) and a styrene-based thermoplastic elastomer (B). The descriptions of the eggshell powder (A), the styrene-based thermoplastic elastomer (B), and the resin composition in the resin composition according to the first embodiment also apply here.
[0070] The content of eggshell powder (A) is 3.5 to 67.5% by mass, preferably 5 to 50% by mass, and more preferably 5 to 45% by mass, relative to the total mass of the laminate sheet. By setting the content of eggshell powder (A) to 3.5 to 67.5% by mass relative to the total mass of the laminate sheet, a laminate sheet with a low environmental impact is likely to be obtained. Furthermore, since the laminate sheet contains the resin composition according to the first embodiment, even if the proportion of eggshell powder (A) in the laminate sheet is high, good moldability is likely to be achieved, and the resin is less likely to break during molding. The content of eggshell powder (A) in the laminate sheet can be determined by quantifying the proportion of eggshell powder in the ash after burning the laminate sheet using TG-DTA.
[0071] The layer (Y) preferably has an MFR (200°C, 5 kg load) of 0.5 to 15 g / 10 min and a tensile elongation at break of 20 to 230% as measured in accordance with ASTM-D638. Since the layer (Y) contains the first resin composition (preferably contains only the resin composition according to the first embodiment), it has a predetermined MFR and tensile elongation at break. This provides good moldability when made into a laminate sheet. Furthermore, resin breakage during molding can be suppressed. Furthermore, since the layer (Y) contains eggshell powder (A), it can be made into a laminate sheet with low environmental impact. The MFR (200°C, 5 kg load) and tensile elongation at break can be measured by the same method as for the resin composition described above.
[0072] In one embodiment, the laminate sheet may have a structure having at least three layers. In this case, it is preferable that the layer (X) has a first layer (x-1) (hereinafter referred to as "first layer (x-1)") containing a polystyrene resin and a second layer (x-2) (hereinafter referred to as "second layer (x-2)") containing a polystyrene resin, and the layer (Y) is located between the first layer (x-1) and the second layer (x-2).
[0073] Fig. 2 shows an example of a laminate sheet according to the third embodiment having a structure with at least three layers. The laminate sheet 20 in Fig. 2 has a structure in which a second layer (x-2), a layer (Y), and a first layer (x-1) are laminated in this order. In the laminate sheet 20, the layer (Y) is laminated directly on the second layer (x-2), and the first layer (x-1) is laminated directly on the layer (Y). In the laminate sheet 20 shown in Fig. 2, a first layer (x-1) constitutes one outermost surface of the laminate sheet 20, and a second layer (x-2) constitutes the other outermost surface of the laminate sheet 20. As described above, the laminate sheet according to the third embodiment may have a structure in which two or more layers containing polystyrene resin constitute both surfaces of the laminate sheet. In this case, by arranging the layer (Y) between the first layer (x-1) and the second layer (x-2), it is possible to obtain a laminate sheet that is easy to achieve both an environmental load reduction effect and moldability.
[0074] When the laminate sheet has a three-layer structure, the polystyrene resins contained in the first layer (x-1) and the second layer (x-2) may be the same type of polystyrene resin, or different types of polystyrene (e.g., different types of monomers). In one embodiment, the polystyrene resins contained in the first layer (x-1) and the second layer (x-2) are preferably the same type (having the same monomer composition).
[0075] In one embodiment, the thickness ratio (x-1:Y:x-2) of the first layer (x-1), the layer (Y), and the second layer (x-2) is preferably 5-15:70-90:5-15, and more preferably 8-13:74-84:8-13, with the sum of the thickness ratios being 100. The thicknesses of the first layer (x-1) and the second layer (x-2) may be 0.01-0.18 mm and 0.016-0.156 mm, respectively.
[0076] The layer (X) may contain, as necessary, other additives such as ultraviolet absorbers, light stabilizers, antioxidants, lubricants, plasticizers, colorants, antistatic agents, flame retardants, mineral oils, etc., reinforcing fibers such as glass fibers, carbon fibers, aramid fibers, etc., within the range that does not impair the effects of the present invention. These may be used alone or in combination of two or more.
[0077] From the viewpoint of further reducing the environmental load, the thickness of the layer (Y) is preferably 70% or more, more preferably 75% or more, of the total thickness of the laminate sheet. The thickness of the layer (Y) can be, for example, 0.14 to 1.2 mm, or 0.15 to 1.2 mm.
[0078] In one embodiment, the total thickness of the laminate sheet is preferably 0.2 to 1.2 mm, and more preferably 0.3 to 1.0 mm, from the viewpoint of easily preventing breakage of the resin during molding.
[0079] <Layer structure of laminated sheet> The laminate sheet according to the third embodiment has one or more layers (X) and one or more layers (Y). The laminate sheet is composed of a total of two or more layers, and may be composed of three or more layers, four or more layers, or five or more layers.
[0080] In another embodiment, the laminated sheet may have a structure in which layers (X) and layers (Y) are alternately laminated.
[0081] The laminate sheet may have layers other than the layer (X) and the layer (Y). Examples of such layers include a gas barrier layer containing an ethylene-vinyl alcohol copolymer (EVOH) or an adhesive layer containing an adhesive. Even when the laminate sheet has the other layers, from the viewpoint of further reducing the environmental load and providing a laminate sheet with superior strength, the content of eggshell powder (A) is preferably 3.5 to 67.5 mass%, more preferably 5 to 50 mass%, and even more preferably 5 to 45 mass%, relative to the total mass of the laminate sheet.
[0082] The method for producing the laminate sheet is not limited as long as it does not impair the effects of the present invention. For example, the laminate sheet can be produced by co-extrusion molding the layer (X), the layer (Y), and other layers that are optionally provided, all of which are integrated together. A preferred co-extrusion molding method is a common multilayer co-extrusion method such as a feedblock method or a multi-manifold method, in which all layers of the laminate sheet are integrated, extruded into a single sheet from the lip of the discharge outlet, solidified through a cooling roll, and wound up by a winder. The laminate sheet according to this embodiment can be prevented from being damaged when wound up by a winder. A T-die (also called a T-die) is preferably used as the die. When producing a laminate sheet by a multilayer co-extrusion method, it is preferable to match the fluidity of the resin compositions that make up each layer.
[0083] The laminate sheet has good formability, and the resin is less likely to break during extrusion molding. Therefore, the laminate sheet can be suitably used for vacuum pressure forming or pressure forming. The laminate sheet can be suitably used for applications such as food containers and packaging materials. However, the applications of the laminate sheet according to the third embodiment are not limited to these applications.
[0084] A non-limiting list of exemplary embodiments and combinations of exemplary embodiments of the present disclosure are set forth below. [1] A resin composition, The resin composition contains eggshell powder (A) and a styrene-based thermoplastic elastomer (B), the content of the eggshell powder (A) is 5 to 75 mass% and the content of the styrene-based thermoplastic elastomer (B) is 25 to 95 mass% relative to the total mass of the resin composition; the resin composition has a melt flow rate of 0.5 to 15 g / 10 min at 200°C under a load of 5 kg; A resin composition having a tensile elongation at break measured in accordance with ASTM-D638 of 20 to 230%. [2] The resin composition according to [1], wherein the average particle size of the eggshell powder (A) is more than 3 μm and not more than 70 μm. [3] The resin composition according to [1] or [2], wherein the styrene-based thermoplastic elastomer (B) contains a styrene-butadiene block copolymer. [4] The resin composition according to any one of [1] to [3], wherein the styrene-based thermoplastic elastomer (B) contains at least two types of styrene-butadiene block copolymers. [5] The resin composition according to any one of [1] to [4], which is for extrusion molding. [6] A molded article comprising the resin composition according to any one of [1] to [5]. [7] A laminate sheet having at least a layer (X) containing a polystyrene resin and a layer (Y) containing the resin composition according to any one of [1] to [6]. [8] The laminate sheet according to [7], wherein the content of the eggshell powder (A) is 3.5 to 67.5 mass % relative to the total mass of the laminate sheet. [9] The laminate sheet according to [7] or [8], wherein the total thickness of the laminate sheet is 0.2 to 1.2 mm.
[10] The layer (X) containing a polystyrene resin has a first layer (x-1) containing a polystyrene resin and a second layer (x-2) containing a polystyrene resin, The laminate sheet according to any one of [7] to [9], wherein the layer (Y) containing the resin composition is located between the first layer (x-1) containing the polystyrene resin and the second layer (x-2) containing the polystyrene resin.
[11] The laminate sheet according to
[10] , wherein the first layer (x-1) containing the polystyrene resin constitutes one outermost surface of the laminate sheet, and the second layer (x-2) containing the polystyrene resin constitutes the other outermost surface of the laminate sheet.
[12] The laminate sheet according to
[10] or
[11] , wherein the thickness ratio (x-1:Y:x-2) of the first layer (x-1) containing the polystyrene resin, the layer (Y) containing the resin composition, and the second layer (x-2) containing the polystyrene resin is 5-15:70-90:5-15 (with the sum of the thickness ratios being 100).
[13] The resin composition according to any one of [1] to [5], wherein the content of the eggshell powder (A) relative to the total mass of the resin composition is more than 50 mass% and not more than 75 mass%.
[14] The styrene-based thermoplastic elastomer (B) comprises a styrene-butadiene block copolymer (b1) and a styrene-butadiene block copolymer (b2), the styrene-butadiene block copolymer (b1) has an MFR (200°C, 5 kg load) of 3.0 to 10 g / 10 min and a tensile elongation at break measured in accordance with ASTM-D638 of 250 to 400%, The resin composition according to any one of [1] to [5] and
[13] , wherein the styrene-butadiene block copolymer (b2) has an MFR (200°C, 5 kg load) of more than 10 g / 10 min and not more than 30 g / 10 min, and a tensile elongation at break measured in accordance with ASTM-D638 of 20% or more and less than 250%.
[15] The resin composition according to
[14] , wherein the mass ratio ((b1):(b2)) of the styrene-butadiene block copolymer (b1) to the styrene-butadiene block copolymer (b2) in the resin composition is 5:1 to 1:2.
[16] The resin composition according to any one of [1] to [5] or
[13] to
[15] , further comprising an additive (C) containing at least one compound selected from fatty acid amides (c1), fatty acid sodium salts (c2), and fatty acid esters (c3). [Example]
[0085] The present invention will be explained in more detail below by showing examples, but the interpretation of the present invention is not limited to these examples.
[0086] [Eggshell powder (A)] Green Techno 21 Co., Ltd., product name "GT-31" (average particle size: 15 μm, density: 2.6 g / cm 3 ).
[0087] [Styrene-based thermoplastic elastomer (B)] As the styrene-based thermoplastic elastomer (B), the following resin was prepared. Resin (b1): Styrene-butadiene block copolymer (MFR (200°C, 5 kg load): 5.9 g / 10 min, tensile elongation at break (ASTM-D638): 332%, conjugated diene content: 28.7%, Mw: 148,000). Resin (b2): Styrene-butadiene block copolymer (MFR (200°C, 5 kg load): 21.6 g / 10 min, tensile elongation at break (ASTM-D638): 239%, conjugated diene content: 23.0%, Mw: 119,000).
[0088] [Other thermoplastic resins] Polystyrene resin: HIPS (MFR (200°C, 5 kg load): 2.7 g / 10 min, tensile elongation at break (ASTM-D638): 50%, rubber content (conjugated diene content): 7%).
[0089] [Other ingredients] Compound (c1): Ethylene bis(stearic acid amide) (manufactured by Kao Corporation, product name "Kaowax EB-FF"). Compound (c2): Manufactured by Miyoshi Oil & Fats Co., Ltd., product name "Tankal MH" (a mixture of sodium fatty acids with a mass ratio of lauric acid: myristic acid: palmitic acid: stearic acid: oleic acid = 3:2:40:15:30).
[0090] The conjugated diene content and Mw of each component were measured under the following conditions: MFR and tensile elongation at break were measured by the methods described below.
[0091] <Amount of conjugated diene> The conjugated diene content of resin (b1), resin (b2) and polystyrene resin was measured by potentiometric titration using iodine monochloride, potassium iodide and sodium thiosulfate standard solutions.
[0092] <mw> Measurement was performed by GPC under the following conditions. (GPC measurement conditions) Equipment: Shodex Corporation, product name "Shodex SYSTEM-21" Column: PLgel MIXED-B Measurement temperature: 40℃ Solvent: tetrahydrofuran Flow rate: 1.0mL / min Detection method: RI Sample concentration: 0.2% by mass Injection volume: 100μL Calibration curve: Standard polystyrene (Polymer Laboratories)
[0093] [Example 1] As the styrene-based thermoplastic elastomer (B), 39 parts by mass of resin (b1) and 10 parts by mass of resin (b2) were blended. Furthermore, 51 parts by mass of eggshell powder (A) was blended, and the mixture was melt-kneaded at 200°C and 350 rpm using a twin-screw extruder (Toshiba Machine Co., Ltd., product name "TEM35-B") and extruded into a strand shape at a throughput of 20 kg / h to obtain a pellet-shaped resin composition. The MFR (200°C, 5 kg load), tensile elongation at break, and tensile modulus of elasticity of the resulting resin composition were measured under the following conditions. Furthermore, the coefficient (f) (MFR (200°C, 5 kg load) × tensile elongation at break) was calculated from the MFR (200°C, 5 kg load) and tensile elongation at break. Furthermore, the moldability of the resulting resin composition and its effect of suppressing resin breakage during molding were evaluated under the following conditions. The results are shown in Table 1.
[0094] <Melt flow rate (MFR)> The MFR of the resin composition pellets obtained in the examples and comparative examples was measured at 200°C under a load of 5 kg in accordance with the standard JIS K 7210-2:2014 (ISO 1133-2:2011). The results are shown in Table 1.
[0095] <Tensile elongation at break and tensile modulus> Measurements were performed in accordance with ASTM-D638 using an autograph (Shimadzu Corporation, product name "AGS-X"). Specifically, a plate-shaped sample with a thickness of 0.40 mm was prepared under the following conditions, and then cut into the shape of a No. 1 dumbbell to prepare a measurement sample. The tensile elongation at break and tensile modulus of elasticity of the sample were then measured at a measurement temperature of 23°C and a humidity of 50% at a tension rate of 5 mm / min. The arithmetic mean values were calculated from the measurement results of 10 measurement samples. Equipment used: Heat press (Tester Sangyo Co., Ltd., SA-303) Temperature: 200℃
[0096] <Formability evaluation> Those with an MFR (200°C, 5 kg load) of 0.5 to 15 g / 10 min and a tensile elongation at break of 20 to 230% were rated as "pass." Those with an MFR (200°C, 5 kg load) and / or tensile elongation at break outside the above ranges were rated as "fail."
[0097] <Resin breakage prevention> If the MFR and tensile elongation at break are equal to or greater than a predetermined value, the resin is more likely to be prevented from breaking due to brittleness during molding (particularly during extrusion molding). On the other hand, if the MFR and / or tensile elongation at break are too high, drawdown may occur during extrusion molding, causing the resin to break. Therefore, the resin's ability to prevent breakage during molding was evaluated based on the coefficient (f) and in accordance with the following evaluation criteria (note that the following evaluation criteria are evaluation indicators for the resin compositions of the present examples and comparative examples). (Evaluation criteria) Good: The coefficient (f) was 150 to 1000. Pass: The coefficient (f) was 65 or more and less than 150, or more than 1000 and less than 1500. Unacceptable: The coefficient (f) was less than 65 or more than 1500.
[0098] [Examples 2 to 11 and Comparative Examples 1 to 7] A pellet-shaped resin composition was obtained in the same manner as in Example 1, except that the formulation of the resin composition was as shown in Table 1. The MFR, tensile elongation at break, and tensile modulus of elasticity of the obtained resin composition were evaluated in the same manner as in Example 1. Furthermore, moldability and resin breakage suppression were evaluated in the same manner as in Example 1. The results are shown in Tables 1 and 2.
[0099] [Table 1]
[0100] [Table 2]
[0101] As shown in Table 1, the resin compositions of Examples 1 to 11 had MFR (200°C, 5 kg load) and tensile elongation at break within the specified ranges. Such resin compositions have good moldability. Furthermore, since the coefficient (f) was also within the specified range, breakage of the resin during molding, particularly extrusion molding, can be suppressed. Furthermore, the resin compositions of Examples 1 to 11 had a good MFR and tensile elongation at break, while also having a tensile modulus sufficient for a molded product. Therefore, even when molded into a sheet-shaped product, the molded product can be prevented from breaking. On the other hand, the resin compositions of Comparative Examples 2 to 7 showed good MFR (200°C, 5 kg load) values, but poor tensile elongation at break values. Such resin compositions cannot achieve good moldability. In addition, the coefficient (f) values were also low, suggesting that resin breakage occurs during molding, particularly extrusion molding. The resin composition of Comparative Example 1 had poor fluidity, making it impossible to measure MFR (200°C, 5 kg load). From the above results, it was confirmed that the resin composition according to the first embodiment has good moldability and can suppress resin breakage during molding. Such resin compositions are suitable as raw materials for molded products, particularly sheet-shaped molded products. Furthermore, such resin compositions can also be suitably used as raw material resins for laminate sheets. [Explanation of symbols]
[0102] 10, 20 laminated sheet X Polystyrene resin-containing layer x-1: a first layer containing polystyrene resin x-2 A second layer containing polystyrene resin Y Layer containing the resin composition according to the first embodiment< / mw>
Claims
1. A resin composition comprising: The resin composition contains eggshell powder (A) and a styrene-based thermoplastic elastomer (B), the content of the eggshell powder (A) is 5 to 75% by mass, and the content of the styrene-based thermoplastic elastomer (B) is 25 to 95% by mass, relative to the total mass of the resin composition; The resin composition has a melt flow rate of 0.5 to 15 g / 10 min at 200°C under a load of 5 kg, A resin composition having a tensile elongation at break measured in accordance with ASTM-D638 of 20 to 230%.
2. The resin composition according to claim 1, wherein the eggshell powder (A) has an average particle size of more than 3 μm and not more than 70 μm.
3. 3. The resin composition according to claim 1, wherein the styrene-based thermoplastic elastomer (B) comprises a styrene-butadiene block copolymer.
4. 3. The resin composition according to claim 1, wherein the styrene-based thermoplastic elastomer (B) comprises at least two types of styrene-butadiene block copolymers.
5. The resin composition according to claim 1 or 2, which is for extrusion molding.
6. A molded article comprising the resin composition according to claim 1 or 2.
7. A laminate sheet comprising at least a layer (X) containing a polystyrene resin and a layer (Y) containing the resin composition according to claim 1 or 2.
8. The laminate sheet according to claim 7, wherein the content of the eggshell powder (A) is 3.5 to 67.5% by mass relative to the total mass of the laminate sheet.
9. The laminate sheet according to claim 7, wherein the total thickness of the laminate sheet is 0.2 to 1.2 mm.
10. the layer (X) containing a polystyrene resin has a first layer (x-1) containing a polystyrene resin and a second layer (x-2) containing a polystyrene resin, The layer (Y) containing the resin composition is located between the first layer (x-1) containing the polystyrene resin and the second layer (x-2) containing the polystyrene resin. The laminate sheet according to claim 7.
11. The first layer (x-1) containing the polystyrene resin constitutes one outermost surface of the laminate sheet, and the second layer (x-2) containing the polystyrene resin constitutes the other outermost surface of the laminate sheet. The laminate sheet according to claim 10.
12. The laminate sheet according to claim 10, wherein the thickness ratio (x-1:Y:x-2) of the first layer (x-1) containing the polystyrene resin, the layer (Y) containing the resin composition, and the second layer (x-2) containing the polystyrene resin is 5 to 15:70 to 90:5 to 15 (provided that the total of the thickness ratios is 100).
Citation Information
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