Thermoplastic resin composition, molded article, method for producing thermoplastic resin composition, and method for producing molded article
The incorporation of a modified maleic anhydride-styrene copolymer in thermoplastic resin compositions addresses dispersibility and processability issues, enhancing the dispersibility and stability of near-infrared absorbing metal oxide particles, resulting in improved transparency and near-infrared absorption in molded articles.
Patent Information
- Application Number
- JP2024109064
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2044-07-05
AI Technical Summary
Existing thermoplastic resin compositions with near-infrared absorbing materials suffer from poor dispersibility and processability issues, leading to secondary aggregation and increased haze in films, and poor fiberization due to low affinity between components.
Incorporating a modified maleic anhydride-styrene copolymer into the thermoplastic resin composition to improve affinity between near-infrared absorbing metal oxide particles and the resin, maintaining interparticle distance and enhancing dispersibility, thereby improving processability and optical properties.
The modified maleic anhydride-styrene copolymer enhances dispersibility and stability of near-infrared absorbing metal oxide particles, reducing defects during molding and improving the transparency and near-infrared absorption of molded articles.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a thermoplastic resin composition, a molded article, a method for producing a thermoplastic resin composition, and a method for producing a molded article, and in particular to a thermoplastic resin composition containing near-infrared absorbing metal oxide particles. [Background technology]
[0002] Resin products that have the property of absorbing light in the near-infrared wavelength range and generating heat include fibers, clothing made from such fibers, and films. To impart this property to these products, a material that absorbs near-infrared rays must be applied to the surface of the product or dispersed within it. From the standpoint of durability, it is preferable to disperse the material within the product, but the state of dispersion can affect the property and processability.
[0003] As conventional near-infrared absorbing materials, for example, tungsten oxide microparticles and composite tungsten oxide microparticles have been disclosed as materials with high transmittance for light in the visible light region and low transmittance for light in the near-infrared region, and fibers incorporating such near-infrared absorbing materials have also been disclosed (Patent Document 1).
[0004] Furthermore, a conventional method for producing a thermoplastic resin composition containing a near-infrared absorbing material includes a step of kneading composite particles containing a dispersant and fine particles such as tungsten-based oxide coated with the dispersant, a compatibilizer, and polyethylene, wherein the dispersant for the composite particles contains a polar group-containing resin and the compatibilizer is a polar group-containing polyolefin (Patent Documents 2 and 3). These disclosures state that by treating the fine particles with a dispersant containing a polar group-containing resin and then kneading using a polar group-containing polyolefin as a compatibilizer, the dispersibility of fine particles such as composite tungsten-based oxide in polyethylene or polypropylene and film processability are improved. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Patent No. 7226321 [Patent Document 2] Patent No. 7190877 [Patent Document 3] Patent No. 7190878 Summary of the Invention [Problem to be solved by the invention]
[0006] However, in Patent Document 1, the near-infrared absorbing material and the thermoplastic resin are simply melt-kneaded, and therefore the dispersibility of the near-infrared absorbing material is not sufficient, resulting in problems such as poor processing stability in spinning and film formation due to secondary aggregation and an increase in the haze value of the film.
[0007] Furthermore, in Patent Documents 2 and 3, because polyethylene or polypropylene is nonpolar, the affinity between polyethylene or polypropylene and the dispersant and compatibilizer is low, and the dispersibility of the fine particles during kneading is not sufficient. In particular, high dispersibility is required when melt-molding fibers using the thermoplastic resin composition, but it is difficult to achieve dispersibility sufficient to fiberize the thermoplastic resin composition using the above-mentioned production method. In addition, because the compatibilizer has low heat resistance, adding a polar group-containing polyolefin to a high-melting point thermoplastic resin such as polyethylene terephthalate or polyamide may deteriorate processability.
[0008] The present invention aims to provide a particle-containing thermoplastic resin composition, a molded article, a method for producing a particle-containing thermoplastic resin composition, and a molded article, which can improve dispersibility to achieve excellent near-infrared absorption in molded articles, and can also improve processability while suppressing the occurrence of problems and defects during molding. [Means for solving the problem]
[0009] As a result of extensive research, the present inventors have found that adding a modified maleic anhydride-styrene copolymer to a thermoplastic resin composition containing near-infrared absorbing metal oxide particles (a) improves the affinity between the hydrophilic moieties and the near-infrared absorbing metal oxide particles and between the hydrophobic moieties and the thermoplastic resin because the modified maleic anhydride-styrene copolymer possesses both the hydrophilic properties derived from maleic anhydride and the hydrophobic properties derived from styrene, and (b) improves the affinity between the hydrophilic moieties and the near-infrared absorbing metal oxide particles and the thermoplastic resin because other compounds bond to the modified moieties of the modified maleic anhydride unit structure, forming a comb-like structure of the copolymer, thereby maintaining the interparticle distance between the near-infrared absorbing metal oxide particles in the thermoplastic resin composition, thereby improving the dispersibility and stability of the near-infrared absorbing metal oxide in the thermoplastic resin composition. Furthermore, the present inventors have found that this improves processability while suppressing problems such as thread breakage and defects when molding fibers, films, etc., and also enables the realization of excellent optical properties in molded fiber structures and films.
[0010] That is, the present invention provides the following configurations. [1] A thermoplastic resin composition comprising a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), the amount of the modified maleic anhydride-styrene copolymer (A) blended relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 parts by mass to 150 parts by mass, A thermoplastic resin composition in which the number of particles of the near-infrared absorbing metal oxide particles (B) exceeding 2 μm in size is 50 or less within a square 200 μm field of view observed under a microscope.
[0011] [2] The thermoplastic resin composition according to [1], wherein the weight average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000.
[0012] [3] The near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, and The thermoplastic resin composition according to [1], wherein at least a portion of the modified maleic anhydride-styrene copolymer (A) is bonded to the near-infrared absorbing metal oxide particles (B) via the dispersant (b).
[0013] [4] The thermoplastic resin composition according to [1], wherein the near-infrared absorbing metal oxide particles (B) are one or more selected from the group consisting of cesium tungsten oxide, indium tin oxide, and antimony tin oxide.
[0014] [5] The thermoplastic resin composition according to [1], wherein the thermoplastic resin (C) is one or more selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins.
[0015] [6] A molded article which is a melt-molded product of the thermoplastic resin composition according to [1] or [2].
[0016] [7] A method for producing a thermoplastic resin composition, comprising a step of mixing a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), and melt-kneading the mixture at a temperature equal to or higher than the melting point of the thermoplastic resin (C), the amount of the modified maleic anhydride-styrene copolymer (A) blended relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 parts by mass to 150 parts by mass, A method for producing a thermoplastic resin composition, wherein the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm in size is 50 or less within a square 200 μm field of view observed under a microscope.
[0017] [8] The method includes a step of preparing an aqueous dispersion of the near-infrared absorbing metal oxide particles (B), The method for producing a thermoplastic resin composition according to [7], comprising mixing the modified maleic anhydride-styrene copolymer (A), the water dispersion of the near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C).
[0018] [9] The method for producing a thermoplastic resin composition according to [7], wherein the weight average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000.
[0019]
[10] The method for producing a thermoplastic resin composition according to [7], wherein the modified maleic anhydride-styrene copolymer (A) has a pH of 5 to 9 when made into a 10% by mass aqueous solution.
[0020]
[11] The near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, and [7] The method for producing a thermoplastic resin composition according to [7], wherein at least a portion of the modified maleic anhydride-styrene copolymer (A) is bonded to the near-infrared absorbing metal oxide particles (B) via the dispersant (b).
[0021]
[12] The method for producing a thermoplastic resin composition according to [7], wherein the near-infrared absorbing metal oxide particles (B) are one or more selected from the group consisting of cesium tungsten oxide, indium tin oxide, and antimony tin oxide.
[0022]
[13] The method for producing a thermoplastic resin composition according to [7], wherein the thermoplastic resin (C) is one or more selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins.
[0023]
[14] A method for producing a molded article, comprising a step of melt-molding a thermoplastic resin composition obtained by the production method according to [7]. [Effects of the Invention]
[0024] According to the present invention, it is possible to improve dispersibility and realize excellent near-infrared absorptivity of a molded product, and also to improve processability while suppressing the occurrence of problems and defects during molding. [Brief explanation of the drawings]
[0025] [Figure 1]FIG. 1 shows an optical microscope image of the thermoplastic resin composition obtained in Example 3 when the dispersion state was evaluated. [Figure 2] FIG. 2 is a diagram showing an optical microscope image of the thermoplastic resin composition obtained in Comparative Example 3 when the dispersion state was evaluated. DETAILED DESCRIPTION OF THE INVENTION
[0026] An example of the present invention will be described below, but the scope of the present invention is not limited to the embodiment described here, and various modifications can be made without departing from the spirit of the present invention. Furthermore, when multiple upper and lower limit values are listed for a specific parameter, any of these upper and lower limit values can be combined to form a suitable numerical range.
[0027] <Thermoplastic resin composition> The thermoplastic resin composition of the present embodiment is a thermoplastic resin composition containing a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), in which the amount of the modified maleic anhydride-styrene copolymer (A) blended per 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 parts by mass to 150 parts by mass, and the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm is 50 or less within a square 200 μm field of view observed under a microscope.
[0028] (Modified maleic anhydride-styrene copolymer (A)) The modified maleic anhydride-styrene copolymer (A) is not particularly limited as long as it is a copolymer of modified maleic anhydride and styrene. The modified maleic anhydride-styrene copolymer (A) may have one type of modified maleic anhydride as a unit structure, or may have two or more types of modified maleic anhydride. Furthermore, the thermoplastic resin composition may contain a copolymer of maleic anhydride and styrene (hereinafter also referred to as "unmodified maleic anhydride-styrene copolymer"), provided that it contains the modified maleic anhydride-styrene copolymer (A).
[0029] In this embodiment, the amount of the modified maleic anhydride-styrene copolymer (A) blended relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 to 150 parts by mass, preferably 25 to 130 parts by mass, and more preferably 30 to 110 parts by mass. By blending the amount of the modified maleic anhydride-styrene copolymer (A) of 20 to 150 parts by mass relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B), a high concentration of the modified maleic anhydride-styrene copolymer (A) can be present at the interface between the near-infrared absorbing metal oxide particles (B) and the thermoplastic resin (C), which increases the affinity between the near-infrared absorbing metal oxide particles (B) and the thermoplastic resin (C) and improves dispersibility.
[0030] The weight-average molecular weight of the modified maleic anhydride-styrene copolymer (A) is preferably 1,000 to 20,000, more preferably 1,500 to 15,000, and even more preferably 2,000 to 10,000. When the weight-average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000, the dispersibility of the near-infrared absorbing metal oxide particles (B) in the thermoplastic resin (C) can be further improved.
[0031] The modified maleic anhydride-styrene copolymer (A) is not particularly limited as long as the carboxylic acid groups of the maleic acid-styrene copolymer are modified with a modifying agent, but the maleic acid-styrene copolymer may be modified with a modifying agent in part or in whole.
[0032] The modifying agent is not particularly limited, but examples thereof include compounds having a hydroxyl group, an amino group, an epoxy group, etc. Furthermore, one type of compound may be used as the modifying agent, or two or more types of compounds may be used as the modifying agent.
[0033] Specific examples of the modified maleic anhydride-styrene copolymer (A) include DISPERBYK-2010, DISPERBYK-2012, DISPERBYK-2013, DISPERBYK-2015, DISPERBYK-190, BYKJET-1951, and BYKJET-9152 manufactured by BYK Japan Co., Ltd. Of these, DISPERBYK-2012, DISPERBYK-2013, DISPERBYK-2015, and DISPERBYK-190, which have high solubility in water at room temperature, are preferred.
[0034] (Near-infrared absorbing metal oxide particles (B)) The near-infrared absorbing metal oxide particles (B) are not particularly limited as long as they are oxide particles that absorb light with wavelengths in the near-infrared region. The near-infrared absorbing metal oxide particles (B) are preferably surface-modified with a dispersant (b) having a polar group, and at least a portion of the modified maleic anhydride-styrene copolymer (A) is bonded to the near-infrared absorbing metal oxide particles (B) via the dispersant (b). The dispersant (b) having a polar group is added to the near-infrared absorbing metal oxide particles (B) during production to improve dispersibility. However, it has low affinity with the thermoplastic resin (C), which can cause secondary aggregation during melt molding of the thermoplastic resin composition. In this embodiment, when the near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, bonding of at least a portion of the modified maleic anhydride-styrene copolymer (A) to the dispersant (b) can improve affinity with the thermoplastic resin (C), suppress secondary aggregation of the near-infrared absorbing metal oxide particles (B), and improve dispersibility.
[0035] Examples of the dispersant (b) having a polar group include compounds having one or more groups selected from the group consisting of an amino group, a hydroxyl group, a carboxyl group, and an epoxy group. Specific examples of the dispersant (b) include SOLSPERSE3000, SOLSPERSE9000, SOLSPERSE11200, and SOLSPERSE56000 manufactured by Lubrizol Japan, DISPERBYK-101, DISPERBYK-164, DISPERBYK-181, and DISPERBYK-184 manufactured by BYK Japan, Alphon UC-3000, Alphon UF-5022, Alphon UG-4010, and Alphon UG-4070 manufactured by Toagosei Co., Ltd., and Ajisper PB-711, Ajisper PB-821, and Ajisper PB-822 manufactured by Ajinomoto Fine-Techno Co., Ltd.
[0036] Specific examples of the near-infrared absorbing metal oxide particles (B) include one or more selected from the group consisting of cesium tungsten oxide (CWO), indium tin oxide (ITO), and antimony tin oxide (ATO). Among these, cesium tungsten oxide is preferred from the viewpoint of near-infrared absorbing performance.
[0037] In this embodiment, within a 200 μm square field of view observed under a microscope, the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm in size is 50 or less, preferably 30 or less, and more preferably 10 or less. By ensuring that the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm within the above field of view is 50 or less, processability such as spinnability, transparency of molded articles, and near-infrared absorbency can be improved. Furthermore, although the content of near-infrared absorbing metal oxide particles (B) is limited depending on the specifications of the thermoplastic resin composition, high near-infrared absorbency can be exhibited even when the content of near-infrared absorbing metal oxide particles (B) is low.
[0038] The average primary particle size of the near-infrared absorbing metal oxide particles (B) is not particularly limited, but is preferably 10 nm to 200 nm, more preferably 20 nm to 150 nm, and even more preferably 30 nm to 120 nm. When the average primary particle size of the near-infrared absorbing metal oxide particles (B) is 30 nm to 120 nm, a good balance between near-infrared absorbency and dispersibility can be achieved.
[0039] (Thermoplastic resin (C)) The thermoplastic resin (C) is not particularly limited as long as it is a resin having thermoplastic properties. Specific examples of the thermoplastic resin (C) include one or more types selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins.
[0040] Examples of polyester resins include polyethylene terephthalate, polybutylene terephthalate, polytrimethylene terephthalate, polytetramethylene terephthalate, polycyclohexanedimethylene terephthalate, polyethylene-2,6-naphthalenedicarboxylate, polylactic acid, etc. Furthermore, these polyesters may be copolymers in which an alcohol component such as butanediol or a dicarboxylic acid such as isophthalic acid is copolymerized as a third component, or may be mixtures of these various polyesters.
[0041] Examples of polyamide-based resins include aliphatic polyamides such as polyamide 6, polyamide 66, polyamide 610, polyamide 10, polyamide 1010, polyamide 11, polyamide 12, and polyamide 6-12, and copolymers thereof; and semi-aromatic polyamides synthesized from aromatic dicarboxylic acids and aliphatic diamines.
[0042] Examples of polyurethane resins include ether-based polyurethane resins and ester-based polyurethane resins. Any ether-based polyurethane resin may be used as long as it has an ether bond in the molecule, and a resin obtained from a polymer diol having an ether bond and an organic diisocyanate may be used as raw materials. Any ester-based polyurethane resin may be used as long as it has an ester bond in the molecule, and a resin obtained from a polymer diol having an ester bond and an organic diisocyanate may be used as raw materials.
[0043] Methods for determining resin decomposition of the thermoplastic resin composition of this embodiment include, for example, intrinsic viscosity (IV), melt flow rate (MFR), and melt volume rate (MVR). Of these, polyester resins are expressed by intrinsic viscosity (IV). The retention of IV (intrinsic viscosity) measured by the following formula (1) in accordance with JIS K7390 is preferably 70% or more, and more preferably 80% or more. An IV retention of 70% or more can prevent problems such as molding difficulties and deterioration of the physical properties of molded products. IV retention (%) = measured IV of thermoplastic resin composition / IV of polyethylene terephthalate × 100% Formula (1)
[0044] <Molded body> The molded article according to this embodiment is a melt-molded product of the thermoplastic resin composition. The molded article is not particularly limited, but examples thereof include fibers, films, and fiber structures.
[0045] (fiber) The fiber of this embodiment can be obtained, for example, by melt-spinning the thermoplastic resin composition. The fiber may also be obtained by mixing a masterbatch composed of the thermoplastic resin composition with another thermoplastic resin to obtain a thermoplastic resin composition, and then melt-spinning the thermoplastic resin composition.
[0046] The fibers contain a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C). The types and contents of the components constituting the fibers can be determined based on the types and contents of the components constituting the thermoplastic resin composition described above. Furthermore, the fibers may contain one or more other components, provided that they contain the modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C).
[0047] (film) The film of the present embodiment is obtained by forming the above-described thermoplastic resin composition into a film. The film may be obtained by mixing a masterbatch composed of the above-described thermoplastic resin composition with another thermoplastic resin to obtain a thermoplastic resin composition, and then forming the thermoplastic resin composition into a film.
[0048] The film contains a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C). The types and contents of the components constituting the film can be determined by the types and contents of the components constituting the thermoplastic resin composition described above. Furthermore, the film may contain one or more other components, provided that it contains the modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C).
[0049] (Fiber structures) The fiber structure of this embodiment is partially or entirely composed of the above-mentioned fibers. Examples of the fiber structure include cloth, felt, and sheet-like materials.
[0050] <Method of producing thermoplastic resin composition> The method for producing a thermoplastic resin composition according to this embodiment includes a step of mixing a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), and melt-kneading the mixture at a temperature equal to or higher than the melting point of the thermoplastic resin (C), wherein the amount of the modified maleic anhydride-styrene copolymer (A) per 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 to 150 parts by mass, and the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm is 50 or less within a square 200 μm field of view observed under a microscope.
[0051] In the above process, a mixture of modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and thermoplastic resin (C) is melt-kneaded at a temperature equal to or higher than the melting point of thermoplastic resin (C). By melt-kneading the mixture at a temperature equal to or higher than the melting point of thermoplastic resin (C), the dispersibility of near-infrared absorbing metal oxide particles (B) in the thermoplastic resin composition can be improved. When thermoplastic resin (C) is composed of multiple thermoplastic resins, it is preferable to select the thermoplastic resin with the highest melting point from the multiple thermoplastic resins and melt-knead the resins at a temperature equal to or higher than the melting point.
[0052] The method for melt-kneading the mixture is not particularly limited as long as it can be melt-kneaded while controlling the temperature, and can be carried out using a known device such as a twin-screw extruder.
[0053] The modified maleic anhydride-styrene copolymer (A) used in the above step preferably has a weight-average molecular weight of 1,000 to 20,000, more preferably 1,500 to 15,000, and even more preferably 2,000 to 10,000. When the weight-average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000, gas generation due to volatilization during processing is suppressed, and the amount remaining in the thermoplastic resin composition is increased, thereby improving heat resistance and also suppressing an increase in viscosity, thereby improving productivity.
[0054] The modified maleic anhydride-styrene copolymer (A) is not particularly limited, and may have one type of amine-modified maleic anhydride or two or more types of amine-modified maleic anhydride as a unit structure. When the modified maleic anhydride-styrene copolymer (A) has two types of amine-modified maleic anhydride as a unit structure, for example, it may be a copolymer in which two types of amines are grafted to form a maleimide skeleton. Specific examples of the modified maleic anhydride-styrene copolymer (A) include those with the same structures as those described above.
[0055] In the above process, the modified maleic anhydride-styrene copolymer (A) may be introduced into a melt kneader together with the near-infrared absorbing metal oxide particles (B) and the thermoplastic resin (C), or may be mixed with the near-infrared absorbing metal oxide particles (B) and then introduced into the melt kneader together with the thermoplastic resin (C). From the viewpoint of improving dispersibility, it is preferable to mix the modified maleic anhydride-styrene copolymer (A) with the near-infrared absorbing metal oxide particles (B) and then introduce the mixed solution into the melt kneader together with the thermoplastic resin (C). Furthermore, the pH of a 10% by mass aqueous solution of the modified maleic anhydride-styrene copolymer (A) is preferably 5 to 9, more preferably 5.5 to 8.5. By having a pH of 5 to 9 when the modified maleic anhydride-styrene copolymer (A) is prepared into a 10% by mass aqueous solution, hydrolysis of the thermoplastic resin during processing can be suppressed.
[0056] Specific examples of the near-infrared absorbing metal oxide particles (B) used in the above step include one or more selected from the group consisting of cesium tungsten oxide (CWO), indium tin oxide (ITO), and antimony tin oxide (ATO). Among these, cesium tungsten oxide is preferred from the viewpoint of near-infrared absorbing performance.
[0057] In the above process, the near-infrared absorbing metal oxide particles (B) may be mixed in the form of a powder or an aqueous dispersion. When the near-infrared absorbing metal oxide particles (B) are mixed in the form of a powder, the presence of the modified maleic anhydride-styrene copolymer (A) can sufficiently improve dispersibility. When the near-infrared absorbing metal oxide particles (B) are mixed in the form of an aqueous dispersion, an aqueous dispersion of the near-infrared absorbing metal oxide particles (B) is prepared, and the modified maleic anhydride-styrene copolymer (A), the aqueous dispersion of the near-infrared absorbing metal oxide particles (B), and the thermoplastic resin (C) are mixed together. This can further improve dispersibility. The content of the near-infrared absorbing metal oxide particles (B) in the aqueous dispersion is preferably 10% by mass to 60% by mass, more preferably 20% by mass to 40% by mass.
[0058] The near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, and may be further treated with a modified maleic anhydride-styrene copolymer (A) in the above step. That is, at least a portion of the modified maleic anhydride-styrene copolymer (A) may be bonded to the near-infrared absorbing metal oxide particles (B) via the dispersant (b). Specific examples of the dispersant (b) having a polar group may have the same structure as described above.
[0059] The thermoplastic resin (C) may be one or more types selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins. It is preferable to melt-knead at a temperature equal to or higher than the melting point of the thermoplastic resin (C). When the thermoplastic resin (C) is a plurality of types selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins, it is preferable to select a thermoplastic resin with the highest melting point among the thermoplastic resins and melt-knead at a temperature equal to or higher than that melting point, and more preferably melt-knead at a temperature within the range of melting point +20°C to melting point +50°C.
[0060] <Method of manufacturing molded body> The method for producing a molded article according to this embodiment includes a step of melt-molding the thermoplastic resin composition obtained by the above-described production method. When melt molding a fiber as a molded article, the thermoplastic resin composition obtained by the above-mentioned production method can be melt-spun. A commonly used melt spinning device can be used for melt spinning. Alternatively, the fiber may be obtained by mixing a masterbatch composed of the above-mentioned thermoplastic resin composition with another thermoplastic resin to obtain a thermoplastic resin composition, which is then melt-spun. When a film is melt-molded as a molded article, it can be obtained by forming the thermoplastic resin composition obtained by the above-mentioned manufacturing method into a film. The film forming method is not particularly limited, but examples include a heat press method, a single-layer or multi-layer inflation method, and a T-die method. Alternatively, the film may be obtained by mixing a masterbatch composed of the above-mentioned thermoplastic resin composition with another thermoplastic resin to obtain a thermoplastic resin composition, which is then formed into a film.
[0061] The thermoplastic resin composition and molded article according to this embodiment can be produced by the above-described method for producing a thermoplastic resin composition and method for producing a molded article. [Example]
[0062] The present invention will now be described in more detail with reference to examples, but the present invention is not limited to the following examples.
[0063] <<Experiment A: Preparation and Evaluation of Near-Infrared Absorbing Thermoplastic Resin Film>> Example 1 The mixture contained 49.33 parts by mass of a thermoplastic resin, polyamide 11 (Rilsan® BMNO, manufactured by ARKEMA), a dispersant-treated cesium tungsten oxide aqueous dispersion (YMW-D20, manufactured by Sumitomo Metal Mining Co., Ltd.), and a cesium tungsten oxide aqueous dispersion (YMW-D20, manufactured by Sumitomo Metal Mining Co., Ltd.). 0.332.5 parts by mass of WO3 (20% by mass) and 0.17 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Japan, modified maleic anhydride-styrene copolymer, weight-average molecular weight 5200, pH 6.05, non-volatile content 100%) were kneaded in a Laboplastomill to obtain the thermoplastic resin composition of Example 1. This thermoplastic resin composition was formed into a film using a heat press to obtain a near-infrared absorbing thermoplastic resin film 1 containing 1.0 wt % of CWO (also referred to as CsWO) and having a thickness of 110 μm.
[0064] Example 2 The mixture consisted of 47.66 parts by mass of thermoplastic polyamide 11 (Rilsan® BMNO, manufactured by ARKEMA), 47.66 parts by mass of dispersant-treated cesium tungsten oxide powder (YMDS-874, manufactured by Sumitomo Metal Mining Co., Ltd.), and 47.66 parts by mass of dispersant-treated cesium tungsten oxide powder (YMDS-874, manufactured by Sumitomo Metal Mining Co., Ltd.). 0.33 2.17 parts by mass of WO3 (23% by mass) and 0.17 parts by mass of dispersant DISPERBYK-2013 (manufactured by BYK Japan, modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were kneaded in a Laboplastomill to obtain the thermoplastic resin composition of Example 2. This thermoplastic resin composition was formed into a film using a heat press to obtain a near-infrared absorbing thermoplastic resin film 2 containing 1.0 wt % of CWO and having a thickness of 110 μm.
[0065] (Comparative Example 1) The mixture consisted of 47.83 parts by mass of thermoplastic polyamide 11 (Rilsan® BMNO, manufactured by ARKEMA), 47.83 parts by mass of dispersant-treated cesium tungsten oxide powder (YMDS-874, manufactured by Sumitomo Metal Mining Co., Ltd.), and 47.83 parts by mass of dispersant-treated cesium tungsten oxide powder (YMDS-874, manufactured by Sumitomo Metal Mining Co., Ltd.). 0.33 2.17 parts by mass of WO3 (23% by mass) was kneaded in a Laboplastomill to obtain a thermoplastic resin composition of Comparative Example 1. This thermoplastic resin composition was formed into a film using a heat press to obtain a near-infrared absorbing thermoplastic resin film 3 containing 1.0 wt % of CWO and having a thickness of 110 μm.
[0066] (Comparative Example 2) The mixture was mixed with 47.41 parts by mass of a thermoplastic resin, polyamide 11 (Rilsan® BMNO, manufactured by ARKEMA), a dispersant-treated cesium tungsten oxide aqueous dispersion (YMW-D20, manufactured by Sumitomo Metal Mining Co., Ltd.), and a 100% aqueous dispersion of cesium tungsten oxide (Cs 0.33 2.5 parts by mass of WO3 (20% by mass) and 0.09 parts by mass of dispersant DISPERBYK-2013 (manufactured by BYK Japan, modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were kneaded in a Laboplastomill to obtain the thermoplastic resin composition of Comparative Example 2. This thermoplastic resin composition was formed into a film using a heat press to obtain a near-infrared absorbing thermoplastic resin film 4 containing 1.0 wt % of CWO and having a thickness of 110 μm.
[0067] (Reference example 1) A thermoplastic resin composition of Reference Example 1 was obtained by kneading 50 parts by mass of polyamide 11 (Rilsan (registered trademark) BMNO, manufactured by ARKEMA) which is a thermoplastic resin, in a Labo Plastomill. This thermoplastic resin composition was formed into a film using a heat press to obtain a thermoplastic resin film 5 having a thickness of 110 μm.
[0068] <Evaluation> [Dispersion state] The thermoplastic resin compositions obtained in the Examples and Comparative Examples were sandwiched between two glass slides using a hot plate to produce films of 100 μm or less. The number of near-infrared-absorbing metal oxide particles exceeding a predetermined particle size in the film was counted using a transmission optical microscope (Nikon Solutions, ECLIPSE LV100). At a magnification of 200, a score of very good (◎) was given for the number of particles exceeding 2 μm within a square 200 μm field of view, with a score of more than 10 and no more than 50, a score of good (◯), and a score of more than 50, with a score of poor (×). [Evaluation criteria] 10 or fewer particles over 2 μm: Very good (◎) Between 10 and 50 particles over 2 μm: Good (Good) More than 50 particles over 2 μm...Failure "×"
[0069] [Haze measurement (1)] The haze of the films obtained in the examples and comparative examples was measured in accordance with JIS K 7361 using a haze meter (NDH70002II model, manufactured by Nippon Denshoku Industries Co., Ltd.) A difference in haze from a thermoplastic resin (haze value 2.35%) to which near-infrared absorbing metal oxide particles had not been added was evaluated as very good (◎), a difference of 1.0% to 5.0% was evaluated as good (◯), and a difference of more than 5.0% was evaluated as poor (×). [Evaluation criteria] Haze difference less than 1.0%...Very good "◎" Haze difference: 1.0% to 5.0% - Good "Good" Haze difference over 5.0%....Failure "X"
[0070] Table 1 shows the evaluation results of the above-mentioned Examples and Comparative Examples.
[0071] [Table 1]
[0072] From the results in Table 1 above, it was found that in Examples 1 and 2, the blending amount of the modified maleic anhydride-styrene copolymer (A) relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) was in the range of 20 to 150 parts by mass, and the number of CWO particles exceeding 2 μm was 50 or less within a square 200 μm field of view observed with an electron microscope, so that the dispersibility of the CWO particles in the thermoplastic resin composition was excellent, and the obtained near-infrared absorbing thermoplastic resin film had a small haze difference and was excellent in transparency. Furthermore, in Example 1, when a thermoplastic resin composition was prepared using an aqueous dispersion of near-infrared absorbing metal oxide particles (B), it was found that the dispersibility of the near-infrared absorbing metal oxide particles (B) in the thermoplastic resin composition was superior, and the haze difference of the obtained near-infrared absorbing thermoplastic resin film was small and the transparency was superior, compared to Example 2, in which a powder of near-infrared absorbing metal oxide particles (B) was used.
[0073] On the other hand, in Comparative Example 1, the modified maleic anhydride-styrene copolymer (A) was not contained in the thermoplastic resin composition, and the dispersibility of the near-infrared absorbing metal oxide particles (B) was poor. Further, the haze difference of the obtained near-infrared absorbing thermoplastic resin film was large and the transparency was poor. In Comparative Example 2, the blending amount of the modified maleic anhydride-styrene copolymer (A) with respect to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) was less than 20 parts by mass. Although the haze difference of the obtained near-infrared absorbing thermoplastic resin film was small, the dispersibility of the near-infrared absorbing metal oxide particles (B) was poor.
[0074] <<Experiment B: Evaluation of Fibers and Woven Fabrics>> (Example 3) <Preparation of CWO Masterbatch> 90 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, Inc., J125S, IV value 0.76), which is a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20 mass%), and 5 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (1).
[0075] <Spinning> Using a multifilament melt spinning apparatus, 210 parts by mass of masterbatch (1) (equivalent to 10.5 parts by mass of CWO) and 840 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, Inc., J125S) were used as spinning raw materials, and spun at a spinning temperature of 280°C, an extrusion rate of 1 kg / h, and a take-up speed of 1000 m / min for 1 hour to obtain near-infrared absorbing multifilament fibers containing 1.0% by weight of CWO.
[0076] <Production of Woven Fabric> Using the above near-infrared absorbing multifilament fiber, a knitted fabric with 30 gauge and a basis weight of 150 g / m was produced by a circular knitting machine. 2 The knitted fabric was produced.
[0077] (Example 4) <Production of CWO masterbatch> 90 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, J125S, IV value 0.76), which is a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20% by mass), and 10 parts by mass of a dispersant DISPERBYK-2012 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 3100, pH = 5.62, non-volatile content 40%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 250°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (2).
[0078] <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of CWO and a knitted fabric were produced.
[0079] (Example 5) <Production of CWO masterbatch> 91.7 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), which is a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.33 WO3 20% by mass), and 3.3 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 250°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (3). <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of CWO and a knitted fabric were produced.
[0080] (Example 6) <Preparation of CWO masterbatch> 90 parts by mass of polylactic acid (manufactured by Unitika Ltd., TE-2000C), a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20% by mass) 25 parts by mass, and 5 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 200°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (4).
[0081] <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of CWO and a knitted fabric were produced.
[0082] (Example 7) <Preparation of CWO masterbatch> 91.7 parts by mass of polyamide 11 (manufactured by ARKEMA S.A., Rilsan (registered trademark), BMNO), a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20% by mass) 25 parts by mass, and 3.3 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 230°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (5).
[0083] <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of CWO and a knitted fabric were produced.
[0084] (Example 8) <Preparation of CWO masterbatch> 91.7 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion treated with a dispersant (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20% by mass), and 8.3 parts by mass of a dispersant DISPERBYK-190 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 3900, pH 5.58, non-volatile content 40%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 250°C, mesh filter with a trapped particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (6). <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of CWO and a knitted fabric were produced.
[0085] (Example 9) <Preparation of ATO masterbatch> 80 parts by mass of polyamide 11 (manufactured by Arkema S.A., Rilsan (registered trademark) BMNO), a thermoplastic resin, 16.7 parts by mass of an antimony tin oxide aqueous dispersion treated with a dispersant (manufactured by Toxici Co., Ltd., SN 9387, ATO 30% by mass), and 3.3 parts by mass of a dispersant DISPERBYK-2013 (manufactured by BYK Chemie Japan Co., Ltd., modified maleic anhydride-styrene copolymer, weight average molecular weight 5200, pH 6.05, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280°C, mesh filter with a trapped particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (7).
[0086] <Production of spun yarn and knitted fabric> In the same manner as in Example 1, a near-infrared absorbing multifilament fiber containing 1.0% by weight of ATO and a knitted fabric were produced.
[0087] (Comparative Example 3) <Preparation of CWO Masterbatch> 95 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, Inc., J125S, IV value 0.76), which is a thermoplastic resin, and an aqueous dispersion of cesium tungstate treated with a dispersant (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.33 25 parts by mass of WO3 20% were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280°C, mesh filter with a supplementary particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (8). Regarding the obtained masterbatch (8), when the evaluation of the dispersion state was carried out, it was found to be defective "×", so the evaluation of the spinnability and the knitted fabric was not carried out.
[0088] (Comparative Example 4) <Preparation of CWO Masterbatch> 91.7 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, Inc., J125S, IV value 0.76), which is a thermoplastic resin, an aqueous dispersion of cesium tungstate treated with a dispersant (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 25 parts by mass of WO3 of 20% and 3.3 parts by mass of a dispersant DISPERBYK-102 (manufactured by BYK Chemie Japan Co., Ltd., phosphate ester, weight average molecular weight 2200, pH 1.53, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (9).
[0089] <Spinning, Fabric Production, and Spectral Characteristic Evaluation> In the same manner as in Example 1, an infrared absorption multifilament fiber and a knitted fabric containing 1.0% by weight of CWO were produced.
[0090] (Comparative Example 5) <Preparation of CWO Masterbatch> 90 parts by mass of polyethylene terephthalate (manufactured by Mitsui Chemicals, J125S, IV value 0.76), which is a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd., YMW-D20, Cs 0.33 WO3 20% by mass), and 5 parts by mass of a dispersant SY glycerol ester CRS-75 (manufactured by Sakamoto Yakuhin Kogyo Co., Ltd., polyglycerol fatty acid ester, weight average molecular weight 5900, pH 9.28, non-volatile content 100%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280 °C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (10). Regarding the obtained masterbatch (10), when the evaluation of the dispersion state was carried out, it was found to be defective "×", so the spinning property evaluation and the knitted fabric evaluation were not carried out.
[0091] (Comparative Example 6) <Preparation of CWO Masterbatch> 91.7 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), which is a thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.33 WO3 20% by mass), and 3.3 parts by mass of a dispersant DISPERBYK-185 (manufactured by BYK Chemie Japan Co., Ltd., modified polyurethane, pH 8.58, non-volatile content exceeding 90%) were melt-kneaded in a 18 mmφ twin-screw extruder (set temperature 280 °C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (11). Regarding the obtained masterbatch (11), when the evaluation of the dispersion state was carried out, it was found to be "×", so the spinning property evaluation and the knitted fabric evaluation were not carried out.
[0092] (Comparative Example 7) <Preparation of CWO Masterbatch> 91.7 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), which is a thermm thermoplastic resin, 25 parts by mass of a cesium tungsten oxide aqueous dispersion (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.3325 parts by mass of WO3 (20% by mass), and 3.3 parts by mass of dispersant DISPERBYK-2055 (manufactured by BYK Chemie Japan, modified acrylate, pH = 9.95, non-volatile content 100%) were melt-kneaded in a 18 mm φ twin-screw extruder (set temperature 280 °C, mesh filter with a trapped particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (12). For the obtained masterbatch (12), when the evaluation of the dispersion state was carried out, it was found to be defective "×", so the evaluation of the spinning property and the evaluation of the knitted fabric were not carried out.
[0093] (Comparative Example 8) <Preparation of CWO Masterbatch> 91.7 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), a cesium tungsten oxide aqueous dispersion treated with a dispersant (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.33 25 parts by mass of WO3 (20% by mass), and 3.3 parts by mass of dispersant Admer (registered trademark) QE-800 (manufactured by Mitsui Chemicals, Inc., maleic anhydride-modified polyolefin, non-volatile content 100%) were melt-kneaded in a 18 mm φ twin-screw extruder (set temperature 250 °C, mesh filter with a trapped particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (13). For the obtained masterbatch (13), when the evaluation of the dispersion state was carried out, it was found to be defective "×", so the evaluation of the spinning property and the evaluation of the knitted fabric were not carried out.
[0094] (Comparative Example 9) <Preparation of CWO Masterbatch> 56 parts by mass of polyamide 6 (manufactured by UBE Industries, Ltd., 1015B), a cesium tungsten oxide aqueous dispersion treated with a dispersant (manufactured by Sumitomo Metal Mining Co., Ltd.: YMW-D20, Cs 0.3325 parts by mass of WO3 (20% by mass) and 39 parts by mass of a dispersant, Admer (registered trademark) QE-800 (manufactured by Mitsui Chemicals, Inc., maleic anhydride-modified polyolein, non-volatile content 100%), were melt-kneaded in an 18 mmφ twin-screw extruder (set temperature 250°C, mesh filter with a capture particle diameter of 20 μm). The obtained thermoplastic resin composition was pelletized to obtain a masterbatch (14). The resulting masterbatch (14) was evaluated for dispersion state and was rated as poor (×), so spinnability and knitted fabric were not evaluated.
[0095] (Reference example 2) <Spinning> Using a multifilament melt spinning device, a thermoplastic resin polyethylene terephthalate (Mitsui Chemicals, Inc., J125S, IV value 0.76) was used as the spinning raw material. The spinning was carried out for 1 hour at a spinning temperature of 280°C, an extrusion rate of 1 kg / h, and a take-up speed of 1000 m / min, to obtain a 150 denier 24 filament multifilament fiber.
[0096] <Knitted fabric production> The above multifilament fiber was knitted on a cylindrical knitting machine with a gauge of 30 and a weight of 110 g / m 2 A knitted fabric was produced.
[0097] <Evaluation> [Dispersion state] The thermoplastic resin compositions obtained in the Examples and Comparative Examples were sandwiched between two glass slides using a hot plate to produce films with a thickness of 100 μm or less. Using an optical microscope (Nikon Solutions, ECLIPSE LV100 model) in a transmission mode, the number of near-infrared absorbing metal oxide particles exceeding a predetermined particle size in the film was counted. At a magnification of 200, a score of very good (◎) was given for the number of particles exceeding 2 μm within a square 200 μm field of view, with a score of more than 10 and no more than 50, with a score of good (◯), and a score of more than 50, with a score of poor (×). [Evaluation criteria] The number of particles exceeding 2 μm is 10 or less...Very good "◎" The number of particles exceeding 2 μm is more than 10 and not more than 50... Good "〇" The number of particles exceeding 2 μm is more than 50... Poor "×"
[0098] [Haze measurement (2)] A 10% by mass aqueous solution of the modified maleic anhydride-styrene copolymer (A) used in the examples and comparative examples was prepared, and using a haze meter (manufactured by Nippon Denshoku Industries Co., Ltd., model NDH70002II), in accordance with JIS K7361, the haze of the aqueous solution was measured. Also, the solubility of each dispersant in water was visually confirmed. The results are shown in Table 2.
[0099]
Table 2
[0100] <Spinnability> The masterbatches obtained in the examples and comparative examples and a natural resin without added oxide particles were mixed at a predetermined ratio to obtain a compound containing 1% by mass of oxide particles. The obtained compound was melt-spun and then drawn to obtain fibers. If the dispersibility is not good, it will be trapped in the nozzle mesh, the monitor pressure will increase, and yarn breakage will occur. When there is no yarn breakage in 1 hour and the monitor pressure increase rate is 5% or less, it is very good "◎", when there is no yarn breakage in 1 hour and the monitor pressure increase rate exceeds 5% and is 15% or less, it is good "〇", and when there is yarn breakage or there is no yarn breakage and the monitor pressure increase rate exceeds 15%, it is poor "×". [Evaluation criteria] No yarn breakage and the monitor pressure increase rate is 5% or less... Very good "◎" No yarn breakage and the monitor pressure increase rate exceeds 5% and is 15% or less... Good "〇" There is yarn breakage or there is no yarn breakage and the monitor pressure increase rate exceeds 15%... Poor "×"
[0101] <IV value measurement> Among the examples and comparative examples, the IV value (intrinsic viscosity) of each sample was measured in accordance with JIS K7390 for masterbatches containing polyethylene terephthalate, a thermoplastic resin. A low IV value can cause problems such as difficulty in molding and deterioration of the physical properties of molded products. An IV retention of 80% or more was evaluated as very good (◎), an IV retention of 70% or more but less than 80% was evaluated as good (◯), and an IV retention of less than 70% was evaluated as poor (×). The retention was calculated according to formula (1). IV retention (%) = measured IV value of each sample / IV value of polyethylene terephthalate × 100% Formula (1) [Evaluation criteria] IV retention rate over 80%...Very good "◎" IV retention rate: 70% to less than 80% - Good "Good" IV retention rate less than 70%... Poor "X"
[0102] <Near infrared transmittance measurement> The knitted fabrics obtained in the examples and comparative examples were measured for transmittance of light with wavelengths of 1000 nm to 2000 nm in the near-infrared region using an ultraviolet-visible-near-infrared spectrophotometer (manufactured by JASCO Corporation, Model V-770), and the average value was calculated.
[0103] Table 3 shows the evaluation results of the above examples and comparative examples.
[0104] [Table 3]
[0105] The results in Table 2 above show that in Examples 3 to 9, the amount of modified maleic anhydride-styrene copolymer (A) per 100 parts by mass of near-infrared absorbing metal oxide particles (B) was in the range of 20 to 150 parts by mass, and the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm was 50 or less within a square 200 μm field of view observed with an electron microscope, demonstrating excellent dispersibility of the near-infrared absorbing metal oxide particles (B) in the thermoplastic resin composition and excellent spinnability. Furthermore, in Examples 3 to 8, in which CWO particles were used as the near-infrared absorbing metal oxide particles (B), the near-infrared transmittance was 12.4% to 28.5%, demonstrating excellent near-infrared absorbency of the knitted fabric.
[0106] Fig. 1 shows an optical microscope image of the thermoplastic resin composition obtained in Example 3 when the dispersion state was evaluated. As shown in Fig. 1, in the thermoplastic resin composition obtained in Example 3, only a few particles of near-infrared absorbing metal oxide particles (B) exceeding 2 µm were observed within a square 200 µm field of view.
[0107] Furthermore, it was found that the near-infrared transmittance of the knitted fabrics obtained in Examples 3 and 4 was lower than that of Comparative Example 4, in which a phosphate ester was used as a dispersant. This is presumably due to the excellent dispersibility of the near-infrared absorbing metal oxide particles (B) in the fibers.
[0108] On the other hand, in Comparative Example 3, the modified maleic anhydride-styrene copolymer (A) was not contained in the thermoplastic resin composition, and the dispersibility of the near-infrared absorbing metal oxide particles (B) was poor. Fig. 2 shows an optical microscope image of the thermoplastic resin composition obtained in Comparative Example 3 when the dispersion state was evaluated. As shown in Fig. 2, in the thermoplastic resin composition obtained in Comparative Example 3, many particles of near-infrared absorbing metal oxide particles (B) exceeding 2 µm were confirmed within the same field of view.
[0109] In Comparative Examples 5 to 9, a dispersant other than the modified maleic anhydride-styrene copolymer (A) was contained in the thermoplastic resin composition, and the dispersibility of the near-infrared absorbing metal oxide particles (B) in the thermoplastic resin composition was poor. In Comparative Example 4, a phosphate ester was contained as a dispersant in the thermoplastic resin composition, and the IV retention rate was inferior to that of Examples 3 and 4. This is presumably because the pH of the phosphate ester was 1.53, which was lower than 5, and therefore hydrolysis was promoted in the thermoplastic resin composition, resulting in a decrease in viscosity.
Claims
1. A thermoplastic resin composition comprising a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), the blending amount of the modified maleic anhydride-styrene copolymer (A) relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 parts by mass to 150 parts by mass, the number of particles of the near infrared absorbing metal oxide particles (B) exceeding 2 μm in size is 50 or less within a square 200 μm visual field observed under a microscope, the near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, and a thermoplastic resin composition, wherein at least a portion of the modified maleic anhydride-styrene copolymer (A) is bonded to the near-infrared absorbing metal oxide particles (B) via the dispersant (b).
2. 2. The thermoplastic resin composition according to claim 1, wherein the weight average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000.
3. 2. The thermoplastic resin composition according to claim 1, wherein the near-infrared absorbing metal oxide particles (B) are one or more selected from the group consisting of cesium tungsten oxide, indium tin oxide, and antimony tin oxide.
4. The thermoplastic resin composition according to claim 1, wherein the thermoplastic resin (C) is one or more selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins.
5. A molded article which is a melt-molded product of the thermoplastic resin composition according to claim 1 or 2.
6. A method for producing a thermoplastic resin composition, comprising a step of mixing a modified maleic anhydride-styrene copolymer (A), near-infrared absorbing metal oxide particles (B), and a thermoplastic resin (C), and melt-kneading the mixture at a temperature equal to or higher than the melting point of the thermoplastic resin (C), the blending amount of the modified maleic anhydride-styrene copolymer (A) relative to 100 parts by mass of the near-infrared absorbing metal oxide particles (B) is 20 parts by mass to 150 parts by mass, the number of near-infrared absorbing metal oxide particles (B) exceeding 2 μm in size is 50 or less within a square 200 μm field of view observed under a microscope, the near-infrared absorbing metal oxide particles (B) are surface-modified with a dispersant (b) having a polar group, and a dispersant (b) for dispersing the modified maleic anhydride-styrene copolymer (A) from the near-infrared absorbing metal oxide particles (B);
7. preparing an aqueous dispersion of the near-infrared absorbing metal oxide particles (B), The method for producing a thermoplastic resin composition according to claim 6, wherein the modified maleic anhydride-styrene copolymer (A), the aqueous dispersion of the near-infrared absorbing metal oxide particles (B), and the thermoplastic resin (C) are mixed.
8. 7. The method for producing a thermoplastic resin composition according to claim 6, wherein the weight average molecular weight of the modified maleic anhydride-styrene copolymer (A) is 1,000 to 20,000.
9. The method for producing a thermoplastic resin composition according to claim 6, wherein the modified maleic anhydride-styrene copolymer (A) has a pH of 5 to 9 when made into a 10% by mass aqueous solution.
10. 7. The method for producing a thermoplastic resin composition according to claim 6, wherein the near-infrared absorbing metal oxide particles (B) are one or more selected from the group consisting of cesium tungsten oxide, indium tin oxide, and antimony tin oxide.
11. The method for producing a thermoplastic resin composition according to claim 6, wherein the thermoplastic resin (C) is one or more resins selected from the group consisting of polyester-based resins, polyamide-based resins, and polyurethane-based resins.
12. A method for producing a molded article, comprising a step of melt-molding the thermoplastic resin composition obtained by the method according to claim 6.
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