Method for manufacturing thermoplastic resin compositions
A method for producing thermoplastic resin compositions by mixing a polycarbonate/ABS alloy with high-temperature carbonates addresses hydrolysis issues, enhancing moist heat properties and appearance in PC/ABS resin compositions, especially with recycled materials.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-04-28
- Publication Date
- 2026-04-10
AI Technical Summary
Thermoplastic resin compositions, particularly PC/ABS resin compositions, suffer from deteriorating moist heat properties and appearance defects due to hydrolysis, especially when using recycled materials, and existing methods to improve thermal stability are inadequate.
A method for producing a thermoplastic resin composition by mixing a polycarbonate/ABS alloy with a carbonate that does not contain Group 1 or Group 2 elements and has a decomposition temperature of 200°C or higher, in specific proportions to enhance moist heat properties and reduce appearance defects.
The method results in a thermoplastic resin composition with improved wet heat characteristics and reduced appearance defects, suitable for recycled materials, by preventing hydrolysis through the use of high-decomposition-temperature carbonates.
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Abstract
Description
Technical Field
[0001] The present disclosure relates to a method for producing a thermoplastic resin composition.
Background Art
[0002] Polycarbonate (PC) resin, which is a thermoplastic resin, is used in the casings and components of various products such as machinery, automobiles, home appliances, and OA equipment. In addition, by blending other thermoplastic resins, additives, etc. with PC resin to impart functionality and flame retardancy, it is used in many applications as a highly functional PC resin composition. In particular, a PC / styrene-based resin composition, which is an alloy of PC resin and a styrene-based resin typified by an ABS resin that is a copolymer of acrylonitrile, butadiene, and styrene, is widely used in the above applications because of cost reduction, improved moldability of PC resin, impact resistance, etc.
[0003] ABS resin used in a PC / ABS resin composition, which is representative of a PC / styrene-based resin composition, is often used as an ABS resin produced by emulsion polymerization from a cost perspective. However, Non-Patent Document 1 discloses that an ABS resin produced by bulk polymerization is superior in wet heat characteristics to an ABS resin produced by emulsion polymerization. Thus, for cost reduction, it is preferable to use an ABS resin produced by emulsion polymerization as the ABS resin used in a PC / ABS resin composition, but there is a problem in that the wet heat characteristics are inferior.
[0004] In recent years, in consideration of the environment, efforts have been made to recycle resins. However, generally, used thermoplastic resin compositions have a problem in that they deteriorate with longer use, causing a decrease in properties.
[0005] Patent Document 1 (Japanese Patent Publication No. 2002-60610) discloses that phosphite compounds, phosphonite compounds, etc., are blended into PC resin as antioxidants to improve its thermal stability, that these compounds are more easily hydrolyzed by heat and moisture than PC resin, and that hydrolysis generates acidic components, that these acidic components promote the hydrolysis of PC resin and cause deterioration of the PC resin's moist heat properties. Patent Document 1 also discloses a method for deactivating components such as the acidic components by adsorbing or coordinating them onto the surface of a compound selected from metal carbonate salts, metal silicate salts, and specific metal oxides. [Prior art documents] [Patent Documents]
[0006] [Patent Document 1] Japanese Patent Publication No. 2002-60610 [Non-patent literature]
[0007] [Non-Patent Document 1] Molding Volume 30 Issue 4 p.155-157 2018 [Overview of the project] [Problems that the invention aims to solve]
[0008] However, the hydrolysis mechanism of PC resin described in Patent Document 1 has not been fully elucidated, and there is still room for improvement in the deterioration of the moist heat properties of PC resin. Furthermore, when using used resin, the deterioration of moist heat properties may lead to a deterioration in the appearance of the molded product.
[0009] This disclosure is made to solve the above-mentioned problems and aims to provide a method for producing a thermoplastic resin composition that has excellent moist heat properties and reduced appearance defects. [Means for solving the problem]
[0010] As a result of diligent research to solve the above problems, the present inventors have found that by removing magnesium and calcium contained in the thermoplastic resin composition by reacting them with carbonate ions, it is possible to obtain a thermoplastic resin composition with excellent moist heat properties and reduced appearance defects. This disclosure relates to a method for producing a thermoplastic resin composition.
[0011] A method for producing a thermoplastic resin composition, The process includes mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin with a carbonate, The first ABS resin was obtained by emulsion polymerization, The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the polycarbonate / ABS alloy.
[0012] A method for producing a thermoplastic resin composition, The process includes mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin, at least one selected from the group consisting of a second polycarbonate resin and a second ABS resin, and a carbonate. The first ABS resin and the second ABS resin are obtained by emulsion polymerization. The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass, based on 100 parts by mass of the total of the polycarbonate / ABS alloy and at least one selected from the group consisting of the second polycarbonate resin and the second ABS resin.
[0013] A method for producing a thermoplastic resin composition, A step of mixing a second polycarbonate resin, a second ABS resin, and the carbonate is included, The second ABS resin is obtained by emulsion polymerization, The carbonate does not contain elements of Group 1 and Group 2 of the periodic table, The carbonate has a decomposition temperature of 200 °C or higher, A method for producing a thermoplastic resin composition, wherein the content of the carbonate is more than 0.1 part by mass and less than 6.0 parts by mass with respect to a total of 100 parts by mass of the second polycarbonate resin and the second ABS resin. [Effect of the Invention]
[0014] According to the present disclosure, it is possible to provide a method for producing a thermoplastic resin composition having excellent wet heat characteristics and reduced appearance defects. [Brief Description of the Drawings]
[0015] [Figure 1] FIG. 1 is a diagram for explaining a mechanism for capturing magnesium ions and calcium ions in a polycarbonate / ABS alloy. [Embodiments for Carrying Out the Invention]
[0016] Hereinafter, embodiments of the present disclosure will be described.
[0017] Embodiment 1. [Method for Producing Thermoplastic Resin Composition] The manufacturing method of the thermoplastic resin composition of this embodiment includes a step of mixing a polycarbonate / ABS alloy (PC / ABS alloy) containing a first PC resin and a first ABS resin, and a carbonate. The first ABS resin is obtained by emulsion polymerization. The carbonate does not contain elements of Group 1 and Group 2 of the periodic table and has a decomposition temperature of 200 °C or higher. The content of the carbonate is more than 0.1 part by mass and less than 6.0 parts by mass with respect to 100 parts by mass of the PC / ABS alloy. In this embodiment, the first PC resin is simply referred to as "PC resin", and the first ABS resin is simply referred to as "ABS resin".
[0018] 《Mixing Step》 In the mixing step, the PC / ABS alloy and the carbonate are mixed. At this time, other components such as additives may be added.
[0019] In this step, the PC / ABS alloy and the carbonate are used, for example, in the form of flakes, pellets, powders or granules.
[0020] The mixing method is not particularly limited. For example, physical mixing such as melt kneading, solvent cast blending, latex blending, polymer complex, etc. can be performed. Mixing is preferably melt kneading.
[0021] In the mixing step, mixing devices such as a tumbler, Henschel mixer (registered trademark), rotary mixer, super mixer, ribbon tumbler, V blender, etc. can be used. In advance, the materials are uniformly mixed using these mixing devices to prepare a mixture. It is preferable to further perform melt kneading and finally make pellets.
[0022] For melt kneading and pelletization, single-screw, multi-screw, tandem, etc. extrusion kneaders can be used. Alternatively, a Banbury mixer, roller, conical mill, blast mill, Brabender plastograph, etc. may be used. The operation of the extrusion kneader, etc. may be batch type or continuous type.
[0023] Alternatively, the mixture may be prepared by mixing the PC / ABS alloy and carbonate without melt-kneading. The mixture may be supplied to a molding machine and melt-kneaded in the heating cylinder of the molding machine; that is, mold blending may be performed.
[0024] Furthermore, the thermoplastic resin composition produced by the manufacturing method of this embodiment can be processed into molded articles by conventionally known molding methods. Examples of molding methods include injection molding.
[0025] Polycarbonate / ABS alloy The PC / ABS alloy of this embodiment is a mixture (polymer alloy) of PC resin and ABS resin. The PC / ABS alloy may be manufactured by using a compatibilizer, by block polymerization or graft polymerization, or a commercially available product may be used.
[0026] The PC / ABS alloy may be PC / ABS alloy recovered from used products, etc. (hereinafter referred to as "used PC / ABS alloy"), or it may be PC / ABS alloy that has not yet been used (hereinafter referred to as "unused PC / ABS alloy").
[0027] The PC / ABS alloy may be a mixture of used PC / ABS alloy and unused PC / ABS alloy. There are no particular restrictions on the mixing ratio of used PC / ABS alloy to unused PC / ABS alloy. However, from the viewpoint of resource efficiency, a higher content of used PC / ABS alloy is preferable.
[0028] (Polycarbonate resin) There are no particular restrictions on the PC resin, and various types can be used. For example, aromatic polycarbonates produced by a solution method (interfacial polycondensation method) or a melt method (transesterification method) using a divalent phenol and a carbonate precursor can be used. That is, those produced by reacting a divalent phenol with a phosgene via interfacial polycondensation, or a divalent phenol with diphenyl carbonate, etc. via transesterification may be used. In addition, commercially available PC resins may be used.
[0029] Various divalent phenols can be cited, but particularly 2,2-bis(4-hydroxyphenyl)propane [bisphenol A], bis(4-hydroxyphenyl)methane, 1,1-bis(4-hydroxyphenyl)ethane, 2,2-bis(4-hydroxy-3,5-dimethylphenyl)propane, 4,4'-dihydroxydiphenyl, bis(4-hydroxyphenyl)cycloalkane, bis(4-hydroxyphenyl)oxide, bis(4-hydroxyphenyl)sulfide, bis(4-hydroxyphenyl)sulfone, bis(4-hydroxyphenyl)sulfoxide, bis(4-hydroxyphenyl)ether, bis(4-hydroxyphenyl)ketone, etc., or halogen-substituted derivatives thereof. Other examples include hydroquinone, resorcinol, catechol, etc. These may be used individually or in combination of two or more, but among these, bis(hydroxyphenyl)alkanes are preferred, and bisphenol A is more preferred.
[0030] Examples of carbonate precursors include carbonyl halides, carbonyl esters, and haloformates, specifically phosgene, dihaloformates of divalent phenols, diphenyl carbonate, dimethyl carbonate, and diethyl carbonate.
[0031] The PC resin may be PC resin recovered from used products, etc. (hereinafter referred to as "used PC resin"), or it may be PC resin that has not yet been used (hereinafter referred to as "unused PC resin").
[0032] The PC resin may be a mixture of used PC resin and unused PC resin. There are no particular restrictions on the mixing ratio of used PC resin and unused PC resin. However, from the viewpoint of resource efficiency, it is preferable that the content of used PC resin is higher than the content of unused PC resin.
[0033] The PC resin content in the PC / ABS alloy is 45% by mass or more and 90% by mass or less. Since PC resin has superior heat resistance and flame retardancy compared to ABS resin, it is preferable that the PC resin content is higher than that of ABS resin. However, if the PC resin content in the PC / ABS alloy exceeds 90% by mass, the fluidity during molding will decrease, i.e., the moldability will decrease. The PC resin content in the PC / ABS alloy may be 50% by mass or more, 55% by mass or more, or 60% by mass or more. The PC resin content in the PC / ABS alloy may be 85% by mass or less, 80% by mass or less, or 75% by mass or less.
[0034] ABS resin ABS resin is a copolymer of acrylonitrile, butadiene, and styrene. Molded products made of ABS resin have excellent surface gloss and impact strength. For this reason, ABS resin is widely used in home appliances, office automation equipment, and the like. In this embodiment, the composition ratio of acrylonitrile, butadiene, and styrene in the ABS resin is not particularly limited.
[0035] The ABS resin may be ABS resin recovered from used products (hereinafter referred to as "used ABS resin") or ABS resin that has not yet been used (hereinafter referred to as "unused ABS resin").
[0036] The ABS resin may be a mixture of used and unused ABS resin. There are no particular restrictions on the mixing ratio of used and unused ABS resin. However, from the viewpoint of resource efficiency, it is preferable that the content of used ABS resin is higher than the content of unused ABS resin.
[0037] The ABS resin content in the PC / ABS alloy is 5% by mass or more and 50% by mass or less. If the ABS resin content in the PC / ABS alloy exceeds 50% by mass, the heat resistance and flame retardancy may decrease. The ABS resin content in the PC / ABS alloy may be 10% by mass or more, 15% by mass or more, or 20% by mass or more. The ABS resin content in the PC / ABS alloy may be 45% by mass or less, 40% by mass or less, or 35% by mass or less.
[0038] The ABS resin used in this example was obtained by emulsion polymerization. The ABS resin may be produced by a known emulsion polymerization method, or a commercially available emulsion polymerization product may be used.
[0039] The general method for producing ABS resin by emulsion polymerization is as follows: Butadiene is emulsion polymerized using an emulsifier and a water-soluble polymerization initiator to obtain a polymer latex. Acrylonitrile and styrene are polymerized in the presence of the obtained polymer latex and emulsifier to obtain an ABS-based polymer latex. A coagulant is added to the obtained ABS-based polymer latex to separate the polymer, and the separated polymer is washed and dried to produce ABS.
[0040] Conventional known emulsifiers, water-soluble polymerization initiators, and coagulants are used. Examples of emulsifiers include higher fatty acid soaps and rosinate soaps. Examples of water-soluble polymerization initiators include potassium peroxodisulfate and α-cumyl hydroperoxide. Examples of coagulants include inorganic acids and metal salts.
[0041] In this process, complete removal of the emulsifier by washing is not usually achieved, and emulsifier remains in the resulting ABS resin. Although a method of thoroughly washing the resulting ABS resin beforehand is conceivable, even with thorough washing using organic solvents such as water or methanol, the emulsifier incorporated into the ABS resin cannot be easily removed. Among these emulsifier-derived residues, the Group 1 and Group 2 elements of the periodic table react with moisture in the air to generate hydroxide ions, creating an alkaline environment which is thought to accelerate the hydrolysis of the PC resin and worsen its moist heat properties.
[0042] Here, the inventors analyzed used and unused PC / ABS alloys using inductively coupled plasma atomic emission spectrometry (ICP-AES) and confirmed that each PC / ABS alloy contained 0.01% by mass of sodium (Na), magnesium (Mg), and calcium (Ca), which are Group 1 and Group 2 elements of the periodic table, respectively. After further investigation, the inventors found that while capturing Na ions is difficult, Mg and Ca ions react with sulfate and carbonate ions to form precipitates in water, making them less reactive with water. Therefore, mixing sulfate and carbonate ions into the resin can prevent an alkaline environment from being created (see Figure 1). The used and unused PC / ABS alloys used were commercially available.
[0043] Furthermore, the solubility in water at room temperature is 2.1 mol / L for magnesium sulfate and 0.018 mol / L for calcium sulfate, compared to 0.0012 mol / L for magnesium carbonate and 0.00015 mol / L for calcium carbonate. Thus, since the solubility of carbonates in water is lower than that of sulfates for Mg and Ca ions, it is considered that in this embodiment, mixing in the carbonate described later is significantly more effective in preventing an alkaline environment. However, since carbonates decompose by releasing carbon dioxide when heated, it is preferable to mix in a carbonate with a high decomposition temperature.
[0044] (Additives) The PC / ABS alloy may contain additives such as oil-absorbing inorganic compounds, flow regulators, plasticizers, mold release agents, antioxidants, flame retardants, flame retardant aids, metal deactivators, dyes, pigments, and antistatic agents, to the extent that they do not hinder the objective of this embodiment. These additives may be included in the PC / ABS alloy individually or in combination of two or more types.
[0045] The oil-absorbing inorganic compound is not particularly limited. Examples include aluminum oxide such as alumina and boehmite, calcium silicate, kaolinite, and calcium carbonate.
[0046] The flow modifier is not particularly limited. Examples include hydrocarbons such as liquid paraffin, paraffin wax, and synthetic polyethylene wax; fatty acids such as stearic acid, palmitic acid, and oleic acid; higher alcohols such as stearyl alcohol, cetyl alcohol, and oleyl alcohol; fatty acid amides such as stearamide, oleamide, erucamide, methylenebisstearate, and ethylenebisstearate; metal soaps such as magnesium stearate, calcium stearate, and zinc stearate; and esters such as monoglyceride stearate, stearyl stearate, and hydrogenated oil.
[0047] The plasticizer is not particularly limited. Examples include polyethylene glycol, polyamide oligomers, ethylene bis-stearoamide, phthalate esters, adipic acid esters, polystyrene oligomers, polyethylene wax, silicone oil, mineral oil, and the like.
[0048] The mold release agent is not particularly limited. Examples include polyethylene wax, silicone oil, long-chain carboxylic acids, and long-chain carboxylic acid metal salts.
[0049] The antioxidant is not particularly limited. Examples include phosphoric acid-based antioxidants such as tris(2,4-di-t-butylphenyl) phosphite and tetrakis(2,4-di-t-butylphenyl)[1,1-biphenyl]-4,4'-diylbisphosphonate; sulfur-based antioxidants such as dilauryl-3,3'-thiodipropionate and dioctadecyl-3,3'-thiodipropionate; and hindered phenol-based antioxidants such as tetrakis[methylene-3-(3',5'-di-t-butyl-4'-hydroxyphenyl)propionate]methane and stearyl β-(3,5-di-t-butyl-4-hydroxyphenyl)propionate.
[0050] The flame retardant is not particularly limited. In this embodiment, conventionally known flame retardants can be used. Examples include phosphorus-based flame retardants such as bisphenol A bis(diphenyl phosphate), tricresyl phosphate, triphenyl phosphate, and tris-3-chloropropyl phosphate; bromine-based flame retardants such as 2,2-bis[4-(2,3-dibromopropoxyl)-3,5-dibromophenyl]propane, bis(3,5-dibromo-4-dibromopropyloxyphenyl)sulfone, ethylenebispentabromobenzene, and hexabromocyclododecane; silicone-based flame retardants; and hydroxide-based flame retardants such as magnesium hydroxide and aluminum hydroxide.
[0051] To enhance the flame-retardant effect of the flame retardant, a flame retardant additive may be used in combination. The flame retardant additive is not particularly limited. Examples include additives such as polytetrafluoroethylene modified with acrylic, and antimony compounds such as antimony trioxide.
[0052] The metal deactivator is not particularly limited. Examples include 2',3-bis[[3-[3,5-di-t-butyl-4-hydroxyphenyl]propionyl]]propionohydrazide and decamethylenedicarboxylic acid disalithyroylhydrazide.
[0053] The content of each additive in the PC / ABS alloy is, for example, 0% by mass or more and 20% by mass or less. The content of each additive in the PC / ABS alloy may be 2% by mass or more, 5% by mass or more, 7% by mass or more, 17% by mass or less, 15% by mass or less, or 13% by mass or less.
[0054] (Used resin) At least one of the PC resin, ABS resin, and PC / ABS alloy is used; that is, it is preferable that at least one is used PC resin, used ABS resin, or used PC / ABS alloy. Furthermore, it is preferable that at least one of the PC resin, ABS resin, and PC / ABS alloy includes used materials; that is, it is preferable that at least one is a mixture of used PC resin and unused PC resin, a mixture of used ABS resin and unused ABS resin, or a mixture of used PC / ABS alloy and unused PC / ABS alloy. This is from the viewpoint of resource efficiency.
[0055] However, when using used PC / ABS alloy, used PC resin, and used ABS resin, there is a risk that various properties of the thermoplastic resin composition, such as mechanical properties and moist heat properties, may deteriorate. Therefore, if at least one of the PC / ABS alloy, PC resin, and ABS resin is used, it is preferable to add at least one of the unused PC / ABS alloy, unused PC resin, and unused ABS resin from the viewpoint of improving the various properties of the thermoplastic resin composition.
[0056] Carbonates The carbonate contained in the thermoplastic resin composition of this embodiment does not contain Group 1 or Group 2 elements of the periodic table. This is because if the carbonate contains Group 1 or Group 2 elements of the periodic table, as described above, it will react with moisture in the air to generate hydroxide ions, creating an alkaline environment which may accelerate the hydrolysis of the PC resin and worsen its moist heat properties.
[0057] Furthermore, the carbonate has a decomposition temperature of 200°C or higher. Here, "decomposition temperature" in this embodiment means the temperature at which, when the carbonate is heated, it undergoes a decomposition reaction into two or more compounds at a certain temperature or temperature range. The decomposition temperature is measured, for example, by thermal analysis such as differential scanning calorimetry (DSC), and is the temperature at which endothermic or exothermic reactions begin when heated from room temperature at a constant heating rate under a nitrogen gas atmosphere. If the decomposition temperature is less than 200°C, the viscosity of the thermoplastic resin composition may increase, and it may not mix well. From the viewpoint of fluidity (moldability) during molding, the decomposition temperature is preferably 220°C or higher, and more preferably 240°C or higher. Also, from the viewpoint that if the decomposition temperature is too high, the physical properties of the thermoplastic resin composition after molding may deteriorate, the decomposition temperature is preferably, for example, 300°C or lower, preferably 280°C or lower, and more preferably 260°C or lower.
[0058] Examples of carbonates in this embodiment include cobalt carbonate (decomposition temperature: 280°C), manganese carbonate (decomposition temperature: 200°C), Cadmium carbonate Examples include cobalt carbonate (decomposition temperature: 357°C), iron carbonate (decomposition temperature: 200°C), and silver carbonate (decomposition temperature: 210°C). Among these, cobalt carbonate is preferred because it has the optimal decomposition temperature.
[0059] The carbonate content in the thermoplastic resin composition of this embodiment is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of PC / ABS alloy. If the carbonate content is 0.1 parts by mass or less, the moist heat properties may not be sufficiently improved. If the carbonate content is 6.0 parts by mass or more, the carbonate may bleed out, resulting in an undesirable appearance. Preferably, the carbonate content is between 0.5 parts by mass and 5.0 parts by mass.
[0060] "others" The thermoplastic resin composition in this embodiment may contain additives such as oil-absorbing inorganic compounds, flow regulators, plasticizers, mold release agents, antioxidants, flame retardants, flame retardant aids, metal deactivators, dyes, pigments, and antistatic agents, to the extent that they do not hinder the purpose of this embodiment. These additives may be included in the thermoplastic resin composition individually or in combination of two or more. Details of each additive are as described above.
[0061] The content of each additive in the thermoplastic resin composition of this embodiment is, for example, 0 to 20 parts by mass per 100 parts by mass of PC / ABS alloy. The content of each additive in the thermoplastic resin composition may be 2 parts by mass or more, 5 parts by mass or more, 7 parts by mass or more, 17 parts by mass or less, 15 parts by mass or less, or 13 parts by mass or less.
[0062] Embodiment 2. The method for producing the thermoplastic resin composition of this embodiment includes a step of mixing a PC / ABS alloy containing a first PC resin and a first ABS resin, at least one selected from the group consisting of a second PC resin and a second ABS resin, and a carbonate. The first ABS resin and the second ABS resin are obtained by emulsion polymerization. The carbonate does not contain group 1 or group 2 elements of the periodic table and has a decomposition temperature of 200°C or higher. The carbonate content is more than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the total of the PC / ABS alloy and at least one selected from the group consisting of the second PC resin and the second ABS resin.
[0063] The following describes this embodiment, but any explanations that overlap with Embodiment 1 will be omitted. For the sake of convenience, the PC resin contained in the PC / ABS alloy is referred to as the first PC resin and distinguished from the second PC resin, but the first PC resin and the second PC resin may be the same or different. Similarly, for the sake of convenience, the ABS resin contained in the PC / ABS alloy is referred to as the first ABS resin and distinguished from the second ABS resin, but the first ABS resin and the second ABS resin may be the same or different. Regarding the second PC resin and the second ABS resin, for points other than those described below, the descriptions relating to the first PC resin and the first ABS resin in Embodiment 1 will be referenced.
[0064] In this embodiment, the resin used is a PC / ABS alloy containing a first PC resin and a first ABS resin, and at least one selected from the group consisting of a second PC resin and a second ABS resin.
[0065] The content of the first PC resin and the second PC resin combined (hereinafter, the combined content of the first PC resin and the second PC resin is also referred to as "total PC resin") relative to the total of the PC / ABS alloy and at least one selected from the group consisting of the second PC resin and the second ABS resin is 45% by mass or more and 90% by mass or less. Since PC resin has superior heat resistance and flame retardancy compared to ABS resin, it is preferable that the PC resin content is higher than that of ABS resin. However, if the content of total PC resin relative to the total of the PC / ABS alloy and at least one selected from the group consisting of the second PC resin and the second ABS resin exceeds 90% by mass, the fluidity during molding may decrease, i.e., the moldability may decrease. The content of total PC resin relative to the total of the PC / ABS alloy and at least one selected from the group consisting of the second PC resin and the second ABS resin may be 50% by mass or more, 55% by mass or more, or 60% by mass or more. The content of total PC resin relative to the total of PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin may be 85% by mass or less, 80% by mass or less, or 75% by mass or less.
[0066] The content of the combined first ABS resin and second ABS resin (hereinafter, the combined first ABS resin and second ABS resin will also be referred to as "total ABS resin") relative to the total of the PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin is 5% by mass or more and 50% by mass or less. If the content of total ABS resin relative to the total of the PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin exceeds 50% by mass, the heat resistance and flame retardancy may decrease. The content of total ABS resin relative to the total of the PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin may be 10% by mass or more, 15% by mass or more, or 20% by mass or more. The content of total ABS resin relative to the total of PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin may be 45% by mass or less, 40% by mass or less, or 35% by mass or less.
[0067] In this embodiment, the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the total of the PC / ABS alloy and at least one selected from the group consisting of the second PC resin and the second ABS resin. If the carbonate content is 0.1 parts by mass or less, the moist heat properties may not be sufficiently improved. If the carbonate content is 6.0 parts by mass or more, the carbonate may bleed out, resulting in an undesirable appearance. Preferably, the carbonate content is between 0.5 parts by mass and 5.0 parts by mass.
[0068] The content of each additive in the thermoplastic resin composition of this embodiment is, for example, 0 to 20 parts by mass per 100 parts by mass of the total of PC / ABS alloy and at least one selected from the group consisting of second PC resin and second ABS resin. The content of each additive in the thermoplastic resin composition may be 2 parts by mass or more, 5 parts by mass or more, 7 parts by mass or more, 17 parts by mass or less, 15 parts by mass or less, or 13 parts by mass or less.
[0069] It is preferable that at least one of the first PC resin, second PC resin, first ABS resin, second PC resin, and PC / ABS alloy is used, that is, at least one is used PC resin, used ABS resin, or used PC / ABS alloy. It is also preferable that at least one of the first PC resin, second PC resin, first ABS resin, second PC resin, and PC / ABS alloy includes used materials, that is, at least one is a mixture of used PC resin and unused PC resin, a mixture of used ABS resin and unused ABS resin, or a mixture of used PC / ABS alloy and unused PC / ABS alloy. This is from the viewpoint of resource efficiency.
[0070] Embodiment 3. The method for producing the thermoplastic resin composition of this embodiment includes a step of mixing a second PC resin, a second ABS resin, and a carbonate. The second ABS resin is obtained by emulsion polymerization. The carbonate does not contain any Group 1 or Group 2 elements of the periodic table and has a decomposition temperature of 200°C or higher. The carbonate content is more than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the total of the second PC resin and the second ABS resin.
[0071] The following describes this embodiment, but any explanations that overlap with Embodiments 1 and 2 will be omitted.
[0072] In this embodiment, a second PC resin and a second ABS resin are used as the resins. In other words, PC / ABS alloy is not used.
[0073] The content of the second PC resin relative to the total of the second PC resin and the second ABS resin is 45% by mass or more and 90% by mass or less. Since PC resin has superior heat resistance and flame retardancy compared to ABS resin, a higher PC resin content is preferable. However, if the content of the second PC resin relative to the total of the second PC resin and the second ABS resin exceeds 90% by mass, the fluidity during molding will decrease, i.e., the moldability will decrease. The content of the second PC resin relative to the total of the second PC resin and the second ABS resin may be 50% by mass or more, 55% by mass or more, or 60% by mass or more. The content of the second PC resin relative to the total of the second PC resin and the second ABS resin may be 85% by mass or less, 80% by mass or less, or 75% by mass or less.
[0074] The content of the second ABS resin relative to the total of the second PC resin and the second ABS resin is 5% by mass or more and 50% by mass or less. If the content of the second ABS resin relative to the total of the second PC resin and the second ABS resin exceeds 50% by mass, the heat resistance and flame retardancy may decrease. The content of the second ABS resin relative to the total of the second PC resin and the second ABS resin may be 10% by mass or more, 15% by mass or more, or 20% by mass or more. The content of the second ABS resin relative to the total of the second PC resin and the second ABS resin may be 45% by mass or less, 40% by mass or less, or 35% by mass or less.
[0075] In this embodiment, the carbonate content is more than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the total of the second PC resin and the second ABS resin. If the carbonate content is 0.1 parts by mass or less, the moist heat properties may not be sufficiently improved. If the carbonate content is 6.0 parts by mass or more, the carbonate may bleed out, resulting in an undesirable appearance. Preferably, the carbonate content is between 0.5 parts by mass and 5.0 parts by mass.
[0076] The content of each additive in the thermoplastic resin composition of this embodiment is, for example, 0 parts by mass or more and 20 parts by mass or less, based on 100 parts by mass of the total of the second PC resin and the second ABS resin. The content of each additive in the thermoplastic resin composition may be 2 parts by mass or more, 5 parts by mass or more, 7 parts by mass or more, 17 parts by mass or less, 15 parts by mass or less, or 13 parts by mass or less.
[0077] It is preferable that at least one of the second PC resin and the second ABS resin is used, that is, at least one is used PC resin or used ABS resin. Furthermore, it is preferable that at least one of the second PC resin and the second ABS resin includes used resin, that is, at least one is a mixture of used PC resin and unused PC resin, or a mixture of used ABS resin and unused ABS resin. This is from the viewpoint of resource efficiency. [Examples]
[0078] The present disclosure will be described in detail below with reference to examples, but the present disclosure is not limited to these examples.
[0079] <Test Example 1> In Test Example 1, the following tests were conducted to compare used PC / ABS alloy with unused PC / ABS alloy. The used PC / ABS alloy was selected and recovered from used home appliances, while the unused PC / ABS alloy was a commercially available PC / ABS alloy. It was confirmed that the ABS resin contained in each PC / ABS alloy was obtained by emulsion polymerization by examining the particle shape using an electron microscope.
[0080] (measurement) The components and their content in used and unused PC / ABS alloys were determined by thermogravimetric analysis (TGA), gas chromatography-mass spectrometry (GC-MS), and ICP-AES.
[0081] As samples, 10 mg of each PC / ABS alloy was weighed out and measured using a TGA instrument (STA7200, Hitachi High-Tech Science Corporation) in the temperature range of 30°C to 1000°C at a heating rate of 10°C / min.
[0082] As a sample, 0.5 mg of each PC / ABS alloy was weighed out, immersed in 20 mL of tetrahydrofuran, and heated to 50°C, stirring until the pellet shape disappeared. The stirred mixture was added to 80 mL of ethanol, and measured using a GC-MS instrument (JEOL Ltd., Jms-Q1000GCK9 Ultra Quad GC / MS) under the conditions of heating at a temperature of 340°C for 24 minutes.
[0083] As samples, 150 mg each of PC / ABS alloy was weighed out, various acids were added, the containers were sealed, and dissolved in a microwave pretreatment device. Insoluble matter was filtered out. The filtrate was transferred to a volumetric flask and brought to a fixed volume (Sample A). The insoluble matter, along with the filter paper, was transferred to a platinum dish, ashed using a burner, then acid was added again and heated to dissolve it. After cooling, it was transferred to a volumetric flask and brought to a fixed volume (Sample B). Samples A and B obtained above were used as ICP measurement solutions, and measurements were performed using an ICP-AES instrument (Hitachi High-Tech Science Corporation, SPS-3100).
[0084] The measurement results showed that the used PC / ABS alloy contained 59% by mass of PC resin, 26% by mass of ABS resin, 13% by mass of bisphenol A bis(diphenyl phosphate), a phosphate ester-based flame retardant, and 2% by mass of inorganic substances and other impurities. The inorganic substances included 0.01% by mass of Na, 0.01% by mass of Mg, 0.01% by mass of Ca, 0.3% by mass of silicon (Si), 0.3% by mass of titanium (Ti), 0.06% by mass of aluminum (Al), 0.04% by mass of iron (Fe), and 0.03% by mass of tin (Sb). On the other hand, the unused PC / ABS alloy contained 70% by mass of PC resin, 16% by mass of ABS resin, 11% by mass of bisphenol A bis(diphenyl phosphate), a phosphate ester-based flame retardant, and 3% by mass of inorganic substances and other impurities. The inorganic components included 0.01% by mass of Na, 0.01% by mass of Mg, 0.01% by mass of Ca, 0.3% by mass of Si, and 0.1% by mass of Ti. The unused PC / ABS alloy did not contain Al, Fe, or Sb.
[0085] (Bending test) ISO dumbbell type A specimens were molded from each PC / ABS alloy using an injection molding machine under the conditions of a molding temperature of 240°C and a mold temperature of 60°C. The bending strength of each specimen was measured by bending test. The bending test was performed according to the method compliant with JIS K 7171. Specifically, each specimen was exposed to a humid heat environment of 65°C and 85% relative humidity for 1340 hours, and then measured using a universal testing machine (Shimadzu Corporation, AG-X20KN) at a test speed of 2 mm / min. Each specimen was subjected to bending until its strength fell to less than 75% of its strength before exposure.
[0086] The bending test results showed that the time required to reach the above strength was 2500 hours for unused PC / ABS alloy, compared to 1200 hours for used PC / ABS alloy. Thus, it was confirmed that the moist heat properties of used PC / ABS alloy were significantly lower compared to those of unused PC / ABS alloy.
[0087] (Melt flow rate test) The melt flow rate (MFR) of each PC / ABS alloy was measured by MFR testing. The MFR testing was performed according to the method specified in JIS K 7210. Specifically, the measurement was performed using a melt flow indexer (TP-401, manufactured by Tester Industries Co., Ltd.) under conditions of a temperature of 260°C and a load of 2.16 kgf. A higher MFR value indicates greater resin fluidity, but it is also considered that the molecular weight of PC decreases, and the PC / ABS alloy is degraded.
[0088] MFR (Metal Fluid Flow Rate) testing revealed that unused PC / ABS alloys had a fluidity of 20 g / 10 min, while used PC / ABS alloys had a fluidity of over 70 g / 10 min. Thus, it was confirmed that the fluidity of used PC / ABS alloys was significantly higher than that of unused PC / ABS alloys. This is thought to be due to the progression of hydrolysis of the PC resin due to aging.
[0089] Furthermore, when the weight-average molecular weight of each PC / ABS alloy was measured by gel permeation chromatography (GPC), the unused PC / ABS alloy had a molecular weight of 47,000, while the used PC / ABS alloy had a molecular weight of 40,000. Since the physical properties of PC / ABS alloys depend on the molecular weight of PC, it is thought that the smaller the weight-average molecular weight, the more advanced the hydrolysis of the PC resin, and the more the physical properties deteriorated due to moist heat degradation.
[0090] <Test Example 2> In Test Example 2, a thermoplastic resin composition containing the used PC / ABS alloy used in Test Example 1 was prepared, and its moist heat properties were evaluated.
[0091] (Example 1) The same used PC / ABS alloy as in Test Example 1 and cobalt carbonate (manufactured by Thermo Scientific) were prepared. These materials were mixed in the volumes shown in Table 1, and the resulting mixture was supplied to a kneader and melted while being heated at 240°C. Subsequently, ISO dumbbell test specimen A (hereinafter simply referred to as "test specimen") was molded using an injection molding machine under the conditions of a molding temperature of 240°C and a mold temperature of 60°C.
[0092] (Examples 2-3) Each test specimen was molded under the same conditions as in Example 1, except that the amount of cobalt carbonate added was changed to the mass shown in Table 1.
[0093] (Examples 4-6) In addition to the same used PC / ABS alloy as in Test Example 1 and the cobalt carbonate mentioned above, unused PC resin (Covestro, Makrolon) was prepared. These materials were mixed in the volumes shown in Table 1. Each test specimen was formed by heating, melting, and injection molding the resulting mixture under the same conditions as in Example 1.
[0094] (Examples 7-9) In addition to the cobalt carbonate and unused PC resin mentioned above, used ABS resin was prepared. These materials were mixed in the volumes shown in Table 1. The resulting mixture was heated, melted, and injection-molded under the same conditions as in Example 1 to form each test piece. The used ABS resin was obtained by separating low-density polypropylene and high-density engineering plastics from a mixed plastic obtained by crushing used large home appliances using wet sorting, and then separating the PS resin using electrostatic sorting. It was confirmed that the used ABS resin was obtained by emulsion polymerization using the same method as in Test Example 1.
[0095] (Comparative Example 1) The above-mentioned used PC / ABS alloy was prepared. Test specimens were molded under the same conditions as in Example 1, except that cobalt carbonate was not mixed in.
[0096] (Comparative Examples 2-3) Each test specimen was molded under the same conditions as in Example 1, except that the amount of cobalt carbonate added was changed to the mass shown in Table 1.
[0097] (Evaluation method) The evaluation was conducted using the following method.
[0098] [exterior] For each test specimen, we visually checked whether or not the added cobalt carbonate had bled out. The results are shown in Table 1. Specimens that did not bleed out are labeled "A," and specimens that did bleed out are labeled "B."
[0099] [Bending test] The bending strength of each specimen was measured by bending tests. The bending tests were conducted according to the method specified in JIS K 7171. Specifically, each specimen was exposed to a humid heat environment at a temperature of 65°C and a relative humidity of 85% for 1340 hours, and then tested at a speed of 2 mm / min. The bending strength at yield was measured using the same universal testing machine as in Test Example 1. The retention rate of bending strength after exposure relative to the bending strength before exposure (bending strength retention rate) was also calculated. The results are shown in Table 1. Each specimen is classified as "A" if the bending strength retention rate was 75% or higher, and as "B" if it was less than 75%.
[0100] [comprehensive evaluation] Based on the evaluation of the appearance and bending tests described above, a comprehensive judgment was made, with cases where both were "A" being classified as "A," and cases where at least one of the appearance or bending tests was "B" being classified as "B."
[0101] [Table 1]
[0102] (result) Table 1 shows that the thermoplastic resin composition used in the example received an "A" rating in both appearance and bending tests, confirming its excellent appearance and moist heat properties.
[0103] On the other hand, the thermoplastic resin composition in the comparative example was found to be "B" in either the appearance test or the bending test, indicating that either the appearance or the moist heat properties were inferior.
[0104] Comparative Examples 1 and 2 exhibited inferior bending strength. This is likely because the lack of cobalt carbonate or the low amount of cobalt carbonate added prevented improvement in moist heat properties. Comparative Example 3 exhibited inferior appearance. This is likely due to the high amount of cobalt carbonate added.
[0105] [Note] [1] A method for producing a thermoplastic resin composition, The process includes mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin with a carbonate, The first ABS resin was obtained by emulsion polymerization, The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the polycarbonate / ABS alloy. [2] A method for producing the thermoplastic resin composition according to [1], wherein at least one of the first polycarbonate resin, the first ABS resin, and the polycarbonate / ABS alloy is used or contains used materials. [3] A method for producing a thermoplastic resin composition, The process includes mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin, at least one selected from the group consisting of a second polycarbonate resin and a second ABS resin, and a carbonate. The first ABS resin and the second ABS resin are obtained by emulsion polymerization. The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass, based on 100 parts by mass of the total of the polycarbonate / ABS alloy and at least one selected from the group consisting of the second polycarbonate resin and the second ABS resin. [4] A method for producing the thermoplastic resin composition according to [3], wherein at least one of the first polycarbonate resin, the second polycarbonate resin, the first ABS resin, the second ABS resin, and the polycarbonate / ABS alloy is used or contains used materials. [5] A method for producing a thermoplastic resin composition, Second polycarbonate resin, second ABS resin, charcoal The process includes mixing the salt and, The second ABS resin was obtained by emulsion polymerization. The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the total of the second polycarbonate resin and the second ABS resin. [6] A method for producing the thermoplastic resin composition according to [5], wherein at least one of the second polycarbonate resin and the second ABS resin is used or contains used resin. [7] The carbonate is cobalt carbonate, manganese carbonate, Cadmium carbonate A method for producing a thermoplastic resin composition according to any one of [1] to [6], wherein the thermoplastic resin composition is at least one selected from the group consisting of iron carbonate and silver carbonate. The embodiments and examples disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of this disclosure is indicated by the claims rather than the foregoing description, and all modifications are intended to be within the meaning and scope of the equivalents of the claims.
Claims
1. A method for producing a thermoplastic resin composition, The process includes a step of mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin with a carbonate, The first ABS resin was obtained by emulsion polymerization, The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass per 100 parts by mass of the polycarbonate / ABS alloy.
2. A method for producing a thermoplastic resin composition according to claim 1, wherein at least one of the first polycarbonate resin, the first ABS resin, and the polycarbonate / ABS alloy is used or includes used materials.
3. A method for producing a thermoplastic resin composition, The process includes mixing a polycarbonate / ABS alloy containing a first polycarbonate resin and a first ABS resin, at least one selected from the group consisting of a second polycarbonate resin and a second ABS resin, and a carbonate. The first ABS resin and the second ABS resin are obtained by emulsion polymerization. The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass, based on 100 parts by mass of the total of the polycarbonate / ABS alloy and at least one selected from the group consisting of the second polycarbonate resin and the second ABS resin.
4. A method for producing a thermoplastic resin composition according to claim 3, wherein at least one of the first polycarbonate resin, the second polycarbonate resin, the first ABS resin, the second ABS resin, and the polycarbonate / ABS alloy is used or includes used materials.
5. A method for producing a thermoplastic resin composition, The process includes mixing a second polycarbonate resin, a second ABS resin, and a carbonate. The second ABS resin was obtained by emulsion polymerization, The carbonate mentioned above does not contain any elements from Group 1 or Group 2 of the periodic table. The carbonate has a decomposition temperature of 200°C or higher. A method for producing a thermoplastic resin composition, wherein the carbonate content is greater than 0.1 parts by mass and less than 6.0 parts by mass, based on 100 parts by mass of the total of the second polycarbonate resin and the second ABS resin.
6. A method for producing a thermoplastic resin composition according to claim 5, wherein at least one of the second polycarbonate resin and the second ABS resin is used or contains used resin.
7. A method for producing a thermoplastic resin composition according to any one of claims 1 to 6, wherein the carbonate is at least one selected from the group consisting of cobalt carbonate, manganese carbonate, cadmium carbonate, iron carbonate, and silver carbonate.
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