Resin composition for galvano laser welding, molded article, galvano laser welding kit, in-vehicle camera part, in-vehicle camera module, ultraviolet exposure body, and method for manufacturing molded article

The resin composition for galvano laser welding, incorporating reactive compounds with thermoplastic resins, addresses the challenge of welding complex products with varying thicknesses and transmittances, achieving uniform heating and enhanced weld strength across diverse conditions.

JP7722361B2Active Publication Date: 2025-08-13MITSUBISHI CHEM CORP
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Patent Information

Application Number
JP2022519627
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-07
Filing Date
2021-05-07
Publication Date
2025-08-13
Estimated Expiration
2041-05-07

AI Technical Summary

Technical Problem

The increasing complexity of laser-welded products with varying thicknesses and transmittances requires a resin composition that can be laser welded under a wide range of conditions.

Method used

A resin composition for galvano laser welding, comprising 0.1 to 20 parts by mass of a reactive compound, such as an epoxy compound, blended with a thermoplastic resin, including polyester-based resins like polybutylene terephthalate, and optionally polycarbonate resin, along with inorganic fillers and pigments, to enable laser welding across diverse thickness and transmittance variations.

Benefits of technology

The composition allows for laser welding under a wide range of conditions, ensuring uniform heating and increased weld strength by reacting the reactive compound at the weld interface, even with complex shapes and varying thicknesses.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided are a resin composition with which laser welding is possible under wide-laser-irradiation conditions, a molded article, a galvano-type laser welding kit, an onboard camera component, an onboard camera module, a UV ray exposure body, and a method for manufacturing the molded article. The galvano-type laser welding resin composition contains 0.1-20 mass parts of a reactive compound to 100 mass parts of a thermoplastic resin.
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Description

[Technical Field]

[0001] The present invention relates to a resin composition for galvano laser welding, a molded article, a galvano laser welding kit, an in-vehicle camera component, an in-vehicle camera module, an ultraviolet exposure body, and a method for producing a molded article. [Background technology]

[0002] Thermoplastic resins, including polybutylene terephthalate resin, are widely used in various equipment components because they have excellent mechanical strength, chemical resistance, electrical insulation, and other properties, as well as excellent heat resistance, moldability, and recyclability.

[0003] Recently, welding has become more common to improve productivity, and laser welding, which has little impact on electronic components, is becoming increasingly popular. For example, Patent Document 1 discloses a resin composition for use in laser welding, characterized in that it contains, per 100 parts by mass of (A) a thermoplastic polyester-based resin material containing at least one of a polybutylene terephthalate homopolymer and a polybutylene terephthalate copolymer, a polyethylene terephthalate resin, or a polycarbonate resin, (B) 0.0005 to 0.5 parts by mass of nigrosine, and (C) 0.01 to 2 parts by mass of a colorant containing at least an anthraquinone dye C1 having a maximum absorption wavelength in the range of 590 to 635 nm, a perinone dye C2 having a maximum absorption wavelength in the range of 460 to 480 nm, and an anthraquinone dye C3 having a maximum absorption wavelength in the range of 435 to 455 nm, in a mass ratio of C1:C2:C3=24 to 41:24 to 39:22 to 46 relative to 100 parts by mass of the total of C1, C2, and C3. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 6183822 Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, the shapes of laser-welded products have become more complex and diverse, and it is becoming more common for a single welded member to have regions with different thicknesses or regions with different transmittances. Such welded members are required to be laser weldable under a wide range of laser irradiation conditions. The present invention aims to solve these problems and to provide a resin composition that can be laser welded under a wide range of laser irradiation conditions, as well as a method for producing a molded article, a kit, an in-vehicle camera component, an in-vehicle camera module, and a molded article using the resin composition. [Means for solving the problem]

[0006] As a result of investigations conducted by the present inventors in light of the above-mentioned problems, it was found that the above-mentioned problems could be solved by blending a reactive compound with a thermoplastic resin and further employing galvano-type laser welding. Specifically, the above-mentioned problems were solved by the following means. <1> A resin composition for galvano laser welding, comprising 0.1 to 20 parts by mass of a reactive compound relative to 100 parts by mass of a thermoplastic resin. <2> the reactive compound comprises an epoxy compound; <1> The resin composition according to claim 1. <3> the reactive compound comprises an elastomer containing epoxy groups; <1> The resin composition according to claim 1. <4> The epoxy group-containing elastomer has a melt flow rate (MFR) of less than 10 g / 10 min, measured at 190°C under a load of 2.16 kgf in accordance with JIS K7210. <3> The resin composition according to claim 1. <5> The thermoplastic resin includes a polyester-based resin. <1> ~ <3> The resin composition according to any one of the above. <6> The polyester resin includes polybutylene terephthalate resin. <5> The resin composition according to claim 1. <7> Further, the present invention includes a polycarbonate resin. <5> or <6> The resin composition according to claim 1. <8> Further, the composition contains an inorganic filler. <1> ~ <7> The resin composition according to any one of the above. <9> The inorganic filler comprises glass fiber. <8> The resin composition according to claim 1. <10> Furthermore, pigments are included. <1> ~ <9> The resin composition according to any one of the above. <11> the dye is a light-transmitting dye; <10> The resin composition according to claim 1. <12> the light-transmitting pigment comprises a black pigment and / or a black pigment composition; <11> The resin composition according to claim 1. <13> When the resin composition is injection molded into a size of 60 mm x 60 mm x 1.5 mm, the difference in light transmittance at a wavelength of 1064 nm between a position 15 mm from the gate side and a position 45 mm from the gate side is 2.1% or more. <11> or <12> The resin composition according to claim 1. <14> the dye is a light-absorbing dye; <10> The resin composition according to claim 1. <15> the light absorbing pigment comprises carbon black; <14> The resin composition according to claim 1. <16> <1> ~ <15> A molded article formed from the resin composition according to any one of the above items. <17> A kit having a light-transmitting resin composition and a light-absorbing resin composition, At least one of the light-transmitting resin composition and the light-absorbing resin composition is <1> ~ <15> A galvano laser welding kit comprising the resin composition according to any one of the above items. <18> The light-transmitting resin composition is <1> ~ <13> The resin composition according to any one of the above, wherein the light-absorbing resin composition is <14> or <15> The resin composition according to claim 1, <17> The galvano laser welding kit according to claim 1. <19> <1> ~ <15> or a resin composition according to any one of <17> or <18> An in-vehicle camera component formed from the kit described in claim 1. <20> <19> An in-vehicle camera module including the in-vehicle camera component according to claim 1. <21> <1> ~ <15> or a resin composition according to any one of <17> or <18> An ultraviolet-exposed object formed from the kit described in 1. <22> The ultraviolet exposure body is an in-vehicle camera part, a housing of a millimeter wave radar installed inside and / or outside a vehicle, a housing of an electric parking brake, or a housing of a sensor case. <21> The ultraviolet-exposed body according to claim 1. <23> Galvano-laser welding the transmitting resin member and the absorbing resin member together; At least one of the transparent resin member and the absorbing resin member is <1> ~ <15> 1. A method for producing a molded article formed from the resin composition according to any one of claims 1 to 9. <24> The transparent resin member is <1> ~ <13> A permeable resin member formed from the resin composition according to any one of the above, wherein the absorbing resin member is <14> or <15> An absorbent resin member formed from the resin composition described in <23> A method for producing the molded article described in claim 1. [Effects of the Invention]

[0007] The present invention makes it possible to provide a resin composition that can be laser welded under a wide range of laser irradiation conditions, as well as a molded article, a galvano-type laser welding kit, an in-vehicle camera part, an in-vehicle camera module, an ultraviolet-exposed body, and a method for producing a molded article. [Brief explanation of the drawings]

[0008] [Figure 1] Graph 1 shows the relationship between irradiation energy and welding strength in Examples and Comparative Examples. [Figure 2] Graph 2 shows the relationship between irradiation energy and welding strength in Examples and Comparative Examples. [Figure 3] FIG. 2 is a schematic diagram showing a test piece for measuring laser welding strength in the examples. [Figure 4] FIG. 2 is a schematic diagram showing a test piece for measuring laser welding strength in the examples. [Figure 5] FIG. 2 is a schematic diagram showing a test piece for measuring laser welding strength in the examples. [Figure 6] FIG. 2 is a schematic diagram showing a method for measuring laser welding strength in the examples. [Figure 7] FIG. 2 is a schematic diagram showing the positions at which laser transmittance is measured in the examples. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, an embodiment for carrying out the present invention (hereinafter simply referred to as "the present embodiment") will be described in detail. Note that the present embodiment is an example for explaining the present invention, and the present invention is not limited to only this embodiment. In this specification, the symbol "to" is used to mean that the numerical values before and after it are included as the lower limit and upper limit. In this specification, various physical properties and characteristic values are those at 23°C unless otherwise specified. In this specification, "parts by mass" indicates the relative amount of a component, and "% by mass" indicates the absolute amount of a component.

[0010] The resin composition of this embodiment is a resin composition for galvano laser welding, characterized by containing 0.1 to 20 parts by mass of a reactive compound per 100 parts by mass of thermoplastic resin. Galvano laser welding and the incorporation of a reactive compound enable laser irradiation over a wide range of laser irradiation conditions. Galvano laser welding allows for pinpoint laser beam irradiation at high speed by rotating two mirrors (X and Y axes) or three mirrors (X, Y, and Z axes). This allows for uniform laser irradiation across the entire welded area, allowing for nearly simultaneous heating of the entire area without allowing for cooling. This is believed to reduce the likelihood of strength reduction due to localized unevenness in the weld. Therefore, it is believed that the range of welding conditions is broadened. Furthermore, the incorporation of a reactive compound is believed to increase weld strength by heating the entire interface of the welded area upon laser irradiation, resulting in reaction of the reactive compound (preferably the epoxy group of the reactive compound) contained in both the transmitting resin member and the absorbing resin member. If laser welding becomes possible under a wide range of laser irradiation conditions, it can be applied even when the thickness or transmittance of the parts to be laser welded varies depending on the part. The resin composition of this embodiment may be a light-transmitting resin composition for forming a member (transmitting resin member) on the side that is irradiated with a laser during laser welding, or a light-absorbing resin composition for forming a member (absorbing resin member) on the side that absorbs the laser. In particular, it is preferable that both the laser-transmitting resin composition and the light-absorbing resin composition are the resin composition of this embodiment. Details of laser irradiation will be described later. The resin composition of this embodiment will be described below.

[0011] <Thermoplastic resin> The resin composition of the present embodiment contains a thermoplastic resin. Examples of thermoplastic resins include polyester resins, polycarbonate resins, polystyrene resins, acrylic resins, polyacetal resins, polyphenylene oxide resins, polyphenylene sulfide resins, polysulfone resins, polyethersulfone resins, polyetherimide resins, polyetherketone resins, polyolefin resins, and polyamide resins, with polyester resins, polycarbonate resins, and polystyrene resins being preferred, and polyester resins and polycarbonate resins being more preferred. Furthermore, the thermoplastic resin contained in the resin composition of the present embodiment may partially have elastomer functions, however, in the present embodiment, an elastomer having an epoxy group is classified as a reactive compound, which will be described later.

[0012] In a first embodiment of the thermoplastic resin, the thermoplastic resin contains a polyester-based resin. By containing the polyester-based resin, the terminal carboxyl group and the reactive compound tend to react easily during laser light irradiation, and the welding strength tends to be improved. Furthermore, in the first embodiment of the thermoplastic resin, the polyester resin preferably contains a polybutylene terephthalate resin. By containing a polyethylene terephthalate resin, the reactive compound tends to react more easily. In the first embodiment, the total content of the polyester resin and the elastomer blended as needed among the thermoplastic resins contained in the resin composition is preferably 80% by mass or more, more preferably 85% by mass or more, even more preferably 90% by mass or more, even more preferably 95% by mass or more, and even more preferably 97% by mass or more.

[0013] In a second embodiment of the thermoplastic resin, the thermoplastic resin contains a polyester-based resin and further contains a polycarbonate resin. By containing a polycarbonate resin, the transmittance of the molded article increases, and even with low laser beam irradiation energy, reactive compounds near the weld interface tend to react more easily, resulting in higher weld strength. Furthermore, by containing a polycarbonate resin with a high glass transition temperature, the molded article can be more resistant to fading during weather resistance tests or when stored outdoors for long periods of time. Furthermore, it is preferable that the polyester-based resin contains a polybutylene terephthalate resin. In the second embodiment, the mass ratio of the polyester-based resin to the polycarbonate resin is preferably 51 to 99:49 to 1, more preferably 60 to 95:40 to 5, even more preferably 70 to 90:30 to 10, and even more preferably 75 to 85:25 to 15. In the second embodiment, among the thermoplastic resins contained in the resin composition, the total content of the polyester resin, the polycarbonate resin, and the elastomer blended as needed is preferably 80% by mass or more, more preferably 85% by mass or more, even more preferably 90% by mass or more, even more preferably 95% by mass or more, and even more preferably 97% by mass or more.

[0014] A third embodiment of the thermoplastic resin is an embodiment in which the thermoplastic resin in the first or second embodiment further contains a thermoplastic resin having an elastomer function. The thermoplastic resin having elastomer function herein is intended to exclude those that fall under the category of reactive compounds described below.

[0015] <<Polyester resin>> The polyester resin used in this embodiment is not particularly limited in type, but examples include polybutylene terephthalate resin and polyethylene terephthalate resin, with polybutylene terephthalate resin being preferred.

[0016] Polybutylene terephthalate resin is a resin obtained by polycondensation of terephthalic acid as the main acid component and 1,4-butanediol as the main diol component. "The main acid component is terephthalic acid" means that 50% by mass or more of the acid component is terephthalic acid, preferably 60% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, 90% by mass or more, or 95% by mass or more. "The main diol component is 1,4-butanediol" means that 50% by mass or more of the diol component is 1,4-butanediol, preferably 60% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, 90% by mass or more, or 95% by mass or more. When the polybutylene terephthalate resin contains other acid components, examples thereof include isophthalic acid and dimer acid, and when the polybutylene terephthalate resin contains other diol components, examples thereof include polyalkylene glycols such as polytetramethylene glycol (PTMG).

[0017] When a polybutylene terephthalate resin copolymerized with polytetramethylene glycol is used, the proportion of the tetramethylene glycol component in the copolymer is preferably 3 to 40 mass%, more preferably 5 to 30 mass%, and even more preferably 10 to 25 mass%. By setting the copolymerization proportion in this range, a better balance between laser weldability and heat resistance tends to be achieved, which is preferable.

[0018] When a dimer acid copolymerized polybutylene terephthalate is used as the polybutylene terephthalate resin, the proportion of the dimer acid component in all carboxylic acid components is preferably 0.5 to 30 mol %, more preferably 1 to 20 mol %, and even more preferably 3 to 15 mol %, in terms of carboxylic acid groups. By setting the copolymerization proportion in this range, it is preferred that the balance between laser weldability, long-term heat resistance, and toughness tends to be excellent.

[0019] When isophthalic acid copolymerized polybutylene terephthalate is used as the polybutylene terephthalate resin, the proportion of isophthalic acid components in all carboxylic acid components is preferably 1 to 30 mol %, more preferably 1 to 20 mol %, and even more preferably 3 to 15 mol %, in terms of carboxylic acid groups. By setting the copolymerization proportion in this range, it is preferred that the balance between laser weldability, heat resistance, injection moldability, and toughness tends to be excellent.

[0020] The polybutylene terephthalate resin used in this embodiment is preferably a resin in which 90% by mass or more of the acid component is terephthalic acid and 90% by mass or more of the diol component is 1,4-butanediol (polybutylene terephthalate homopolymer), a copolymerized polybutylene terephthalate resin copolymerized with polytetramethylene glycol, or an isophthalic acid copolymerized polybutylene terephthalate resin.

[0021] The intrinsic viscosity of the polybutylene terephthalate resin is preferably 0.5 to 2 dL / g. From the viewpoint of moldability and mechanical properties, those having an intrinsic viscosity in the range of 0.6 to 1.5 dL / g are more preferable. By using one having an intrinsic viscosity of 0.5 dL / g or more, the mechanical strength of the obtained molded article tends to be further improved. Furthermore, by using one having an intrinsic viscosity of 2 dL / g or less, the fluidity of the polybutylene terephthalate resin tends to be improved, which improves moldability and laser weldability. The intrinsic viscosity is a value measured at 30° C. in a mixed solvent of tetrachloroethane and phenol in a 1:1 (mass ratio). When two or more polybutylene terephthalate resins are contained, the intrinsic viscosity is that of the mixture.

[0022] The amount of terminal carboxy groups in the polybutylene terephthalate resin may be appropriately selected and determined, but is typically 60 eq / ton or less, preferably 50 eq / ton or less, and more preferably 30 eq / ton or less. By setting the amount of terminal carboxy groups to 50 eq / ton or less, gas generation during melt molding of the polybutylene terephthalate resin can be more effectively suppressed. Furthermore, the lower limit of the amount of terminal carboxy groups is not particularly specified, but is typically 5 eq / ton. When two or more types of polybutylene terephthalate resins are contained, the amount of terminal carboxy groups is the amount of terminal carboxy groups in the mixture.

[0023] The amount of terminal carboxy groups in a polybutylene terephthalate resin is determined by dissolving 0.5 g of polybutylene terephthalate resin in 25 mL of benzyl alcohol and titrating the solution with a 0.01 mol / L benzyl alcohol solution of sodium hydroxide. Methods for adjusting the amount of terminal carboxy groups include adjusting the polymerization conditions, such as the raw material charge ratio, polymerization temperature, and pressure reduction method, and reacting with a terminal blocking agent, and any other conventionally known methods.

[0024] The polyethylene terephthalate resin used in this embodiment is a resin obtained by polycondensation of terephthalic acid as the main acid component and ethylene glycol as the main diol component. The term "the main acid component is terephthalic acid" means that 50% by mass or more of the acid component is terephthalic acid, preferably 60% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, 90% by mass or more, or 95% by mass or more. The term "the main diol component is ethylene glycol" means that 50% by mass or more of the diol component is ethylene glycol, preferably 60% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, 90% by mass or more, or 95% by mass or more.

[0025] When the polyethylene terephthalate resin contains other acid components, examples thereof include phthalic acid, isophthalic acid, naphthalenedicarboxylic acid, 4,4'-diphenylsulfonedicarboxylic acid, 4,4'-biphenyldicarboxylic acid, 1,4-cyclohexanedicarboxylic acid, 1,3-phenylenedioxydiacetic acid and structural isomers thereof, dicarboxylic acids such as malonic acid, succinic acid, and adipic acid and derivatives thereof, and oxyacids such as p-hydroxybenzoic acid and glycolic acid and derivatives thereof. Furthermore, when the polyethylene terephthalate resin contains other acid components, examples of the other diol components include aliphatic glycols such as 1,2-propanediol, 1,3-propanediol, 1,4-butanediol, pentamethylene glycol, hexamethylene glycol, and neopentyl glycol; alicyclic glycols such as cyclohexanedimethanol; and aromatic dihydroxy compound derivatives such as bisphenol A and bisphenol S.

[0026] Furthermore, the polyethylene terephthalate resin may be copolymerized with 1.0 mol % or less, preferably 0.5 mol % or less, and more preferably 0.3 mol % or less of a branched component, for example, a trifunctional acid capable of forming an ester, such as tricarballylic acid, trimellitic acid, trimellitic acid, or a tetrafunctional acid capable of forming an ester, such as pyromellitic acid, or an alcohol capable of forming an ester, such as glycerin, trimethylolpropane, or pentaerythritol.

[0027] The intrinsic viscosity of the polyethylene terephthalate resin is preferably 0.3 to 1.5 dL / g, more preferably 0.3 to 1.2 dL / g, and even more preferably 0.4 to 0.8 dL / g. The intrinsic viscosity of the polyethylene terephthalate resin is a value measured at 30° C. in a mixed solvent of tetrachloroethane and phenol in a 1:1 (mass ratio).

[0028] The concentration of terminal carboxy groups in the polyethylene terephthalate resin is preferably 3 to 60 eq / ton, more preferably 5 to 50 eq / ton, and even more preferably 8 to 40 eq / ton. By setting the terminal carboxy group concentration to 60 eq / ton or less, gas generation during melt molding of the resin material is reduced, and the mechanical properties of the resulting molded article tend to be improved. Conversely, by setting the terminal carboxy group concentration to 3 eq / ton or more, the heat resistance, retention heat stability, and color of the resulting molded article tend to be improved, which is preferable. The terminal carboxyl group concentration of the polyethylene terephthalate resin is a value determined by dissolving 0.5 g of polyethylene terephthalate resin in 25 mL of benzyl alcohol and titrating the solution with a 0.01 mol / L benzyl alcohol solution of sodium hydroxide.

[0029] <<Polycarbonate resin>> The polycarbonate resin used in this embodiment may be a known polycarbonate resin. Polycarbonate resins are generally thermoplastic polymers or copolymers, which may be branched, obtained by reacting a dihydroxy compound or a small amount of a polyhydroxy compound with phosgene or a carbonate diester. The method for producing the polycarbonate resin is not particularly limited, and polycarbonate resins produced by the conventionally known phosgene method (interfacial polymerization method) or melt method (ester interchange method) may be used. However, polycarbonate resins produced by the melt polymerization method are preferred in terms of laser transparency and laser weldability.

[0030] The dihydroxy compound used as the raw material is preferably an aromatic dihydroxy compound, and examples thereof include 2,2-bis(4-hydroxyphenyl)propane (i.e., bisphenol A), tetramethylbisphenol A, bis(4-hydroxyphenyl)-p-diisopropylbenzene, hydroquinone, resorcinol, and 4,4-dihydroxydiphenyl, with bisphenol A being preferred. Also usable are compounds in which one or more tetraalkylphosphonium sulfonates are bonded to the above aromatic dihydroxy compounds.

[0031] Among the polycarbonate resins mentioned above, aromatic polycarbonate resins derived from 2,2-bis(4-hydroxyphenyl)propane or aromatic polycarbonate copolymers derived from 2,2-bis(4-hydroxyphenyl)propane and other aromatic dihydroxy compounds are preferred. They may also be copolymers, such as copolymers with polymers or oligomers having a siloxane structure. Furthermore, two or more of the above polycarbonate resins may be mixed and used.

[0032] The viscosity-average molecular weight of the polycarbonate resin is preferably 5,000 to 30,000, more preferably 10,000 to 28,000, and even more preferably 14,000 to 24,000. By using a resin having a viscosity-average molecular weight of 5,000 or more, the mechanical strength of the resulting molded article tends to be improved. Furthermore, by using a resin having a viscosity-average molecular weight of 30,000 or less, the flowability of the resin composition tends to be improved, and moldability and laser weldability tend to be improved. The viscosity average molecular weight of the polycarbonate resin is the viscosity average molecular weight [Mv] calculated from the solution viscosity measured at 25°C using methylene chloride as a solvent.

[0033] <<Styrene-based resin>> The styrene-based resin used in this embodiment is a polymer mainly composed of a compound having a styrene skeleton. "Mainly composed of a compound having a styrene skeleton" means that 50% by mass or more of the raw material monomers are compounds having a styrene skeleton, preferably 60% by mass or more, more preferably 70% by mass or more, and may be 80% by mass or more, 90% by mass or more, or 95% by mass or more. Examples of compounds having a styrene skeleton include styrene, α-methylstyrene, paramethylstyrene, vinyltoluene, and vinylxylene, with styrene being preferred. A typical example of a compound having a styrene skeleton is polystyrene (PS). Furthermore, copolymers obtained by copolymerizing a compound having a styrene skeleton with other monomers can also be used as styrene-based resins. Representative examples include acrylonitrile-styrene copolymer (AS resin) obtained by copolymerizing styrene and acrylonitrile, and maleic anhydride-styrene copolymer (maleic anhydride-modified polystyrene resin) obtained by copolymerizing styrene and maleic anhydride.

[0034] As the styrene-based resin, a rubber-containing styrene resin obtained by copolymerizing or blending a rubber component can also be preferably used. Examples of the rubber component include conjugated diene hydrocarbons such as butadiene, isoprene, and 1,3-pentadiene, but in this embodiment, butadiene rubber is preferably used. When a rubber component is copolymerized or blended, the amount of the rubber component is usually 1% by mass or more and less than 50% by mass, preferably 3 to 40% by mass, more preferably 5 to 30% by mass, and even more preferably 5 to 20% by mass, of the total segments of the styrene-based resin. As the rubber component-containing styrene-based resin, rubber-containing polystyrene is preferred, butadiene rubber-containing polystyrene is more preferred, and high impact polystyrene (HIPS) is particularly preferred from the viewpoint of toughness.

[0035] As the styrene-based resin, polystyrene, acrylonitrile-styrene copolymer (AS resin), butadiene rubber-containing polystyrene, and maleic anhydride-modified polystyrene are preferred, and among these, polystyrene and high impact polystyrene (HIPS) are preferred.

[0036] The styrene resin preferably has a mass average molecular weight measured by GPC of 50,000 to 500,000, with 100,000 to 400,000 being particularly preferred, and 150,000 to 300,000 being particularly preferred. By setting the mass average molecular weight to 50,000 or more, bleed-out of molded articles can be more effectively suppressed, decomposition gas is less likely to be generated during molding, and weld strength tends to be higher. Furthermore, by setting the mass average molecular weight to 500,000 or less, the fluidity of the resin composition is improved, and laser welding strength tends to be further improved.

[0037] <<Other elastomers>> The resin composition of the present embodiment may contain an elastomer other than the styrene-based resin and the elastomer having an epoxy group, which will be described later. Examples of elastomers include thermoplastic elastomers that are blended as part of a thermoplastic resin to improve the impact resistance of molded articles obtained from the resin composition, and rubbery polymers or those obtained by copolymerizing rubbery polymers with compounds that react with them can be used.

[0038] Examples of the first embodiment of the other elastomer include copolymers of ethylene and unsaturated carboxylic acid esters (ethylene-methacrylate copolymer, ethylene-butyl acrylate copolymer, etc.), copolymers of ethylene and aliphatic vinyl compounds, terpolymers of ethylene, propylene, and non-conjugated dienes, acrylic rubbers (polybutyl acrylate, poly(2-ethylhexyl acrylate), butyl acrylate-2-ethylhexyl acrylate copolymer, etc.), polybutadiene, polyisoprene, diene copolymers (styrene-butadiene copolymer, acrylonitrile-butadiene copolymer, acrylic-butadiene rubber, etc.), copolymers of ethylene and α-olefins having 3 or more carbon atoms (ethylene-propylene copolymer, ethylene-butene copolymer, ethylene-octene copolymer, etc.), silicone rubbers (polyorganosiloxane rubber, IPN composite rubbers composed of polyorganosiloxane rubber and polyalkyl(meth)acrylate rubber), etc. In this specification, (meth)acrylate means acrylate and methacrylate, and (meth)acrylic acid means acrylic acid and methacrylic acid.

[0039] A second embodiment of the other elastomer is a core-shell elastomer. By using a core-shell elastomer, the reactive compound contained in the core layer tends to provide excellent adhesion to thermoplastic resins such as polybutylene terephthalate resin, and thus tends to increase welding strength. An example of a core-shell elastomer is one in which a monomer component is graft-copolymerized onto a core polymer. The core is preferably a rubbery polymer, and examples thereof include acrylonitrile-acrylic rubbery polymer-styrene graft copolymer (ASA resin), methyl methacrylate-acrylic rubbery polymer-styrene graft copolymer (MSA resin), methyl methacrylate-acrylonitrile-acrylic rubbery polymer-styrene graft copolymer (MASA resin), polyorganosiloxane-containing rubbery polymer, etc., with polyorganosiloxane-containing rubbery polymer being preferred. The polyorganosiloxane-containing rubbery polymer usually has a glass transition temperature of 0° C. or lower, preferably −20° C. or lower, and more preferably −30° C. or lower. Specific examples of the rubber component are not particularly limited as long as it contains polyorganosiloxane rubber, and examples thereof include polyorganosiloxane rubber, and (IPN type) composite rubber of polyorganosiloxane rubber and polyalkyl acrylate rubber.

[0040] Specific examples of the monomer component graft-copolymerizable with the core include aromatic vinyl compounds, vinyl cyanide compounds, (meth)acrylic acid ester compounds, (meth)acrylic acid compounds, epoxy group-containing (meth)acrylic acid ester compounds such as glycidyl (meth)acrylate, maleimide compounds such as maleimide, N-methylmaleimide, and N-phenylmaleimide; α,β-unsaturated carboxylic acid compounds such as maleic acid, phthalic acid, and itaconic acid, and anhydrides thereof (for example, maleic anhydride, etc.).

[0041] Specific examples of rubber polymers, aromatic vinyl compounds, vinyl cyanide compounds, and (meth)acrylic acid ester compounds can be found in paragraphs 0042 to 0046 of JP 2019-059813 A, the contents of which are incorporated herein by reference.

[0042] The core-shell type elastomer is preferably a compound obtained by graft polymerizing a (meth)acrylic acid ester compound onto a polyorganosiloxane-containing rubbery polymer (preferably a composite rubber of polyorganosiloxane rubber and polyalkyl acrylate rubber).

[0043] The melt flow rate (MFR) of the elastomer, measured at 190°C under a load of 2.16 kgf according to JIS K7210, is preferably 0.1 to 50 g / 10 min, more preferably 0.5 to 30 g / 10 min. By setting the MFR within the above range, there is a tendency for the impact resistance to be improved while the appearance defect is more effectively suppressed.

[0044] <<Blend ratio and content of thermoplastic resin>> In this embodiment, the resin composition preferably contains 10 to 90% by mass of a thermoplastic resin. The content of the thermoplastic resin in the resin composition is preferably 20% by mass or more, more preferably 30% by mass or more, and may be 40% by mass or more, or even 50% by mass or more. The content of the thermoplastic resin in the resin composition is preferably 85% by mass or less, and may be 80% by mass or less, 75% by mass or less, or 70% by mass or less. In particular, in this embodiment, when a thermoplastic resin having an elastomer function is contained (excluding those corresponding to reactive compounds described later), the content thereof is preferably 1 part by mass or more, more preferably 5 parts by mass or more, and even more preferably 8 parts by mass or more, per 100 parts by mass of a thermoplastic resin having no elastomer function (for example, a polyester resin or a polycarbonate resin). The upper limit of the thermoplastic resin having an elastomer function is preferably 20 parts by mass or less, more preferably 15 parts by mass or less, per 100 parts by mass of a thermoplastic resin having no elastomer function. The resin composition may contain only one type of thermoplastic resin, or may contain two or more types. When two or more types are contained, the total amount is preferably within the above range.

[0045] <Reactive compounds> The resin composition of this embodiment contains 0.1 to 20 parts by mass of the reactive compound relative to 100 parts by mass of the thermoplastic resin. By containing the reactive compound, the weld strength tends to increase. The reactive compound is preferably a compound that can chemically react with the carboxyl or hydroxyl groups present at the terminals of the polybutylene terephthalate resin to cause a crosslinking reaction or chain extension. The reactive compound preferably contains at least one selected from the group consisting of epoxy compounds, carbodiimide compounds, compounds having an oxazoline group (ring), compounds having an oxazine group (ring), compounds having a carboxyl group, and compounds having an amide group. It is more preferable that the reactive compound contains at least one selected from epoxy compounds and carbodiimide compounds. It is even more preferable that the reactive compound contains an epoxy compound, and it is even more preferable that the reactive compound contains an elastomer containing an epoxy group. In particular, the resin composition of this embodiment preferably contains at least 90 mass %, more preferably at least 95 mass %, and particularly preferably at least 99 mass % of the reactive compound is an epoxy compound (preferably an elastomer containing an epoxy group).

[0046] <<Epoxy compounds>> The epoxy compound is not particularly limited as long as it has one or more epoxy groups in one molecule, and a wide variety of known epoxy compounds can be used. The inclusion of an epoxy compound tends to broaden the range of laser irradiation conditions.

[0047] A first embodiment of the epoxy compound includes non-elastomers such as a glycidyl compound, an epoxy compound having an aromatic ring, and an alicyclic epoxy compound, and it is preferable to include at least an epoxy compound having an aromatic ring.

[0048] Specific examples of the first embodiment of the epoxy compound include bisphenol A type epoxy compounds (including bisphenol A diglycidyl ether), bisphenol F type epoxy compounds (including bisphenol F diglycidyl ether), biphenyl type epoxy compounds (including bis(glycidyloxy)biphenyl), resorcinol type epoxy compounds (including resorcinol diglycidyl ether), novolac type epoxy compounds, epoxy compounds having an aromatic ring such as benzoic acid glycidyl ester, terephthalic acid diglycidyl ester, orthophthalic acid diglycidyl ester, methyl glycidyl ether, butyl glycidyl ether, 2-ethylhexyl glycidyl ether, decyl glycidyl ether, (di)glycidyl ethers such as glycidyl ether, stearyl glycidyl ether, phenyl glycidyl ether, butylphenyl glycidyl ether, allyl glycidyl ether, neopentyl glycol diglycidyl ether, ethylene glycol diglycidyl ether, glycerin diglycidyl ether, and propylene glycol diglycidyl ether; paraffinic (e.g., saturated fatty acid) or olefinic (e.g., unsaturated fatty acid) (di)glycidyl esters such as sorbic acid glycidyl ester, adipic acid diglycidyl ester, epoxidized linseed oil, and epoxidized soybean oil; and alicyclic epoxy compounds such as vinylcyclohexene dioxide and dicyclopentadiene oxide. Among these, bisphenol A type epoxy compounds, novolac type epoxy compounds, bisphenol F type epoxy compounds, biphenyl type epoxy compounds, etc. are preferred, and orthocresol / novolac type epoxy resins (polyglycidyl ether compounds of o-cresol-formaldehyde polycondensates) are particularly preferred. Commercially available products include "Joncryl ADR4368C" (trade name: manufactured by BASF), Epicoat 1003 (trade name: manufactured by Mitsubishi Chemical Corporation), and Nippon Steel & Sumikin Chemical Co., Ltd. (trade name: YDCN704).

[0049] The epoxy compound of the first embodiment preferably has a mass average molecular weight of 15,000 or less, more preferably 10,000 or less. There is no particular lower limit to the mass average molecular weight, but the mass average molecular weight is preferably 100 or more, more preferably 500 or more. By setting the mass average molecular weight within this range, the effects of the present embodiment tend to be more effectively exhibited.

[0050] The epoxy compound of the first embodiment preferably has an epoxy equivalent of 100 g / eq or more, more preferably 150 g / eq or more, and more preferably 150 g / eq or more, and more preferably 1500 g / eq or more, more preferably 900 g / eq or less, and even more preferably 800 g / eq or less. By setting the epoxy equivalent to the lower limit or more, the weld strength and the hydrolysis resistance of the welded body tend to be higher, while by setting it to the upper limit or less, the fluidity tends to be higher and molding tends to be easier.

[0051] In a second embodiment, the epoxy compound contains an elastomer containing an epoxy group. By containing an elastomer containing an epoxy group, a molded article having higher impact resistance and laser weldability tends to be obtained.

[0052] The melt flow rate (MFR) of the epoxy group-containing elastomer, measured according to JIS K7210 at 190°C under a load of 2.16 kgf, is preferably less than 10 g / 10 min, more preferably less than 9 g / 10 min, and particularly preferably less than 8 g / 10 min. The lower limit of the MFR is preferably 1 g / 10 min or more, and particularly preferably 2 g / 10 min or more. The use of such elastomers tends to improve impact resistance, hydrolysis resistance, and laser weldability, which is desirable. It is believed that using an epoxy group-containing elastomer with a specific MFR value leaves unreacted epoxy groups in the resulting molded product, which reacts with carboxyl groups during laser welding, resulting in increased weld strength.

[0053] A first embodiment of the epoxy group-containing elastomer is a copolymer obtained by copolymerizing an α-olefin, a glycidyl ester of an α,β-unsaturated acid, and, if necessary, an unsaturated monomer copolymerizable therewith. It is preferable to use 60 mass % or more of the α-olefin and the glycidyl ester of an α,β-unsaturated acid among all the copolymerization components.

[0054] Examples of α-olefins include ethylene, propylene, butene-1, and pentene-1. Two or more of these may be used. Examples of glycidyl esters of α,β-unsaturated acids include glycidyl acrylate, glycidyl methacrylate, glycidyl ethacrylate, and glycidyl itaconate. Two or more of these may be used. Examples of vinyl monomers copolymerizable with the above components include vinyl ethers, vinyl esters such as vinyl acetate and vinyl propionate, acrylic and methacrylic esters such as methyl, ethyl, propyl, and butyl, acrylonitrile, and styrene. Two or more of these may be used.

[0055] Preferred examples of the epoxy group-containing elastomer of the first embodiment include ethylene / glycidyl methacrylate copolymer, ethylene / glycidyl methacrylate / vinyl acetate copolymer, ethylene / glycidyl methacrylate / alkyl acrylate copolymer, and ethylene / alkyl acrylate / vinyl acetate copolymer. In particular, from the viewpoint of excellent toughness and further improving the moist heat resistance and impact resistance of molded articles, ethylene / glycidyl methacrylate / alkyl acrylate (preferably butyl acrylate) copolymer is preferred. Specific examples of the epoxy group-containing elastomer of the first embodiment include "Rotader" (registered trademark) AX8900 and AX8700 manufactured by Arkema.

[0056] A second embodiment of the epoxy group-containing elastomer is a core-shell elastomer. The use of a core-shell elastomer facilitates dispersion in polybutylene terephthalate resins due to its small molecular size, and the reaction of reactive groups tends to increase welding strength. An example of a core-shell elastomer is one in which a monomer component is graft-copolymerized onto a core polymer. The core is preferably a rubbery polymer, and examples thereof include acrylonitrile-acrylic rubbery polymer-styrene graft copolymer (ASA resin), methyl methacrylate-acrylic rubbery polymer-styrene graft copolymer (MSA resin), methyl methacrylate-acrylonitrile-acrylic rubbery polymer-styrene graft copolymer (MASA resin), polyorganosiloxane-containing rubbery polymer, etc., with polyorganosiloxane-containing rubbery polymer being preferred. The polyorganosiloxane-containing rubbery polymer usually has a glass transition temperature of 0° C. or lower, preferably −20° C. or lower, and more preferably −30° C. or lower. Specific examples of the rubber component are not particularly limited as long as it contains polyorganosiloxane rubber, and examples thereof include polyorganosiloxane rubber, and composite rubber (IPN type) of polyorganosiloxane rubber and polyalkyl acrylate rubber.

[0057] Specific examples of the monomer component graft-copolymerizable with the core include aromatic vinyl compounds, vinyl cyanide compounds, (meth)acrylic acid ester compounds, (meth)acrylic acid compounds, epoxy group-containing (meth)acrylic acid ester compounds such as glycidyl (meth)acrylate, maleimide compounds such as maleimide, N-methylmaleimide, and N-phenylmaleimide; α,β-unsaturated carboxylic acid compounds such as maleic acid, phthalic acid, and itaconic acid, and anhydrides thereof (for example, maleic anhydride, etc.).

[0058] Specific examples of rubber polymers, aromatic vinyl compounds, vinyl cyanide compounds, and (meth)acrylic acid ester compounds can be found in paragraphs 0042 to 0046 of JP 2019-059813 A, the contents of which are incorporated herein by reference.

[0059] The epoxy group-containing elastomer of the second embodiment is preferably a compound obtained by graft polymerizing an epoxy group-containing (meth)acrylic acid ester compound onto a polyorganosiloxane-containing rubbery polymer (preferably a composite rubber of polyorganosiloxane rubber and polyalkyl acrylate rubber).

[0060] Specific examples of the elastomer containing an epoxy group according to the second embodiment include "Metablen (registered trademark, the same applies hereinafter) S-2002" and "Metablen S-2200" manufactured by Mitsubishi Rayon Co., Ltd.

[0061] Other epoxy compounds that can be used in this embodiment can be found in paragraphs 0060 to 0067 of JP 2019-019305 A, the contents of which are incorporated herein by reference.

[0062] <<Carbodiimide compounds>> In the resin composition of this embodiment, it is also preferable to contain a carbodiimide compound as the reactive compound. A carbodiimide compound is a compound containing a carbodiimide group (-N=C=N-) in the molecule. As the carbodiimide compound, any of an aliphatic carbodiimide compound having an aliphatic main chain, an alicyclic carbodiimide compound having an alicyclic main chain, and an aromatic carbodiimide compound having an aromatic main chain can be used. Among them, the use of an aliphatic carbodiimide compound having good reactivity with polymer terminals is preferred. The type of carbodiimide compound may be a monomer type or a polymer type, but in this embodiment, a polymer type is preferred.

[0063] Examples of the aliphatic carbodiimide compound include diisopropylcarbodiimide and dioctyldecylcarbodiimide. Examples of the alicyclic carbodiimide compound include dicyclohexylcarbodiimide and poly(4,4'-dicyclohexylmethanecarbodiimide), with poly(4,4'-dicyclohexylmethanecarbodiimide) being particularly preferred. An example of a commercially available product is "Carbodilite" (trade name; manufactured by Nisshinbo Chemical Inc.).

[0064] Examples of the aromatic carbodiimide compound include diphenylcarbodiimide, di-2,6-dimethylphenylcarbodiimide, N-triyl-N'-phenylcarbodiimide, di-p-nitrophenylcarbodiimide, di-p-aminophenylcarbodiimide, di-p-hydroxyphenylcarbodiimide, di-p-chlorophenylcarbodiimide, di-p-methoxyphenylcarbodiimide, di-3,4-dichlorophenylcarbodiimide, di-2,5-dichlorophenylcarbodiimide, di-o-chlorophenylcarbodiimide, p-phenylene-bis-di-o-triylcarbodiimide, p-phenylene-bis-dicyclohexylcarbodiimide, p-phenylene-bis-di-p-chlorophenylcarbodiimide, ethylene-bis-diphenyl Examples of the carbodiimide compounds include mono- or dicarbodiimide compounds such as 4,4'-biphenylmethanecarbodiimide, poly(4,4'-diphenylmethanecarbodiimide), poly(3,5'-dimethyl-4,4'-biphenylmethanecarbodiimide), poly(p-phenylenecarbodiimide), poly(m-phenylenecarbodiimide), poly(3,5'-dimethyl-4,4'-diphenylmethanecarbodiimide), poly(naphthylenecarbodiimide), poly(1,3-diisopropylphenylenecarbodiimide), poly(1-methyl-3,5-diisopropylphenylenecarbodiimide), poly(1,3,5-triethylphenylenecarbodiimide) and poly(triisopropylphenylenecarbodiimide), and two or more of these can also be used in combination.

[0065] In the case of carbodiimide, the mass average molecular weight is preferably 10,000 or less, more preferably 4,000 or less, and the lower limit is preferably 100 or more, more preferably 500 or more.

[0066] The content of carbodiimide groups contained in the carbodiimide compound is, in terms of carbodiimide equivalent (weight [g] of the carbodiimide compound required to provide 1 mol of carbodiimide groups), preferably 100 g / mol or more, more preferably 200 g / mol or more, and even more preferably 235 g / mol or more. The upper limit is preferably 1000 g / mol, more preferably 800 g / mol or less, and even more preferably 650 g / mol or less. Use within the above range allows for stable control of reactivity with the polymer.

[0067] <<Compounds containing an oxazoline group (ring)>> Examples of the compound having the oxazoline group (ring) include oxazoline, alkyloxazoline (alkyloxazoline having 1 to 4 carbon atoms such as 2-methyloxazoline and 2-ethyloxazoline), and bisoxazoline compounds.

[0068] Examples of the bisoxazoline compound include 2,2'-bis(2-oxazoline), 2,2'-bis(alkyl-2-oxazoline) [2,2'-bis(alkyl-2-oxazoline having 1 to 6 carbon atoms) such as 2,2'-bis(4-methyl-2-oxazoline), 2,2'-bis(4-ethyl-2-oxazoline), and 2,2'-bis(4,4-dimethyl-2-oxazoline)], 2,2'-bis(aryl-2-oxazoline) [2,2'-bis(4-phenyl-2-oxazoline)], 2,2'-bis(cycloalkyl-2-oxazoline), and the like. 2,2'-bis(4-cyclohexyl-2-oxazoline) and the like], 2,2'-bis(aralkyl-2-oxazoline) and the like], 2,2'-alkylenebis(2-oxazoline) and the like], 2,2'-alkylenebis(2-oxazoline) and the like], 2,2'-alkylenebis(2-oxazoline) and the like], 2,2'-alkylenebis(alkyl-2-oxazoline) and the like], 2,2'-ethylenebis(2-oxazoline), 2,2'-tetramethylenebis(2-oxazoline), and the like], 2,2'-C10 alkylenebis(C1-6 alkyl-2-oxazoline) such as 2,2'-tetramethylenebis(4,4-dimethyl-2-oxazoline), 2,2'-arylenebis(2-oxazoline) [2,2'-(1,3-phenylene)-bis(2-oxazoline), 2,2'-(1,4-phenylene)-bis(2-oxazoline), 2,2'-(1,2-phenylene)-bis(2-oxazoline), 2,2'-diphenylenebis(2-oxazoline), etc.], 2,2'-arylenebis(alkyl-2-oxazoline) [2,2'-(1,3-phenylene)-bis(2-oxazoline), 2,2'-(1,4-phenylene)-bis(2-oxazoline), 2,2'-(1,2-phenylene)-bis(2-oxazoline), 2,2'-diphenylenebis(2-oxazoline), etc.], -oxazoline) [2,2'-phenylene-bis(alkyl-2-oxazoline having 1 to 6 carbon atoms) such as 2,2'-(1,3-phenylene)-bis(4-methyl-2-oxazoline, 2,2'-(1,4-phenylene)-bis(4,4-dimethyl-2-oxazoline)], 2,2'-aryloxyalkanebis(2-oxazoline) [2,2'-9,9'-diphenoxyethanebis(2-oxazoline)], 2,2'-cycloalkylenebis(2-oxazoline) [2,2'-cyclohexylenebis(2-oxazoline)], N,N'-Alkylenebis(2-carbamoyl-2-oxazoline) [N,N'-C1-10 alkylenebis(2-carbamoyl-2-oxazoline) such as N,N'-ethylenebis(2-carbamoyl-2-oxazoline) and N,N'-tetramethylenebis(2-carbamoyl-2-oxazoline)], N,N'-alkylenebis(2-carbamoyl-alkyl-2-oxazoline) [N,N'-ethylenebis(2-carbamoyl-2-oxazoline)] Examples include N,N'-C10 alkylenebis(2-carbamoyl-C1-6 alkyl-2-oxazoline) such as N,N'-tetramethylenebis(2-carbamoyl-4,4-dimethyl-2-oxazoline), N,N'-arylenebis(2-carbamoyl-2-oxazoline) [N,N'-phenylenebis(2-carbamoyl-oxazoline)], and the like.

[0069] Compounds having an oxazoline group also include vinyl polymers containing an oxazoline group (such as the Epocross RPS series, RAS series, and RMS series, manufactured by Nippon Shokubai Co., Ltd.) Of these oxazoline compounds, bisoxazoline compounds are preferred.

[0070] <<Compounds with an oxazine group (ring)>> As the compound having the oxazine group (ring), an oxazine or bisoxazine compound can be used.

[0071] Examples of the bisoxazine compound include 2,2'-bis(5,6-dihydro-4H-1,3-oxazine) and 2,2'-bis(alkyl-5,6-dihydro-4H-1,3-oxazine) [2,2'-bis(alkyl-5,6-dihydro-4H-1,3-oxazine having 1 to 6 carbon atoms), such as 2,2'-bis(4-methyl-5,6-dihydro-4H-1,3-oxazine), 2,2'-bis(4,4-dimethyl-5,6-dihydro-4H-1,3-oxazine), and 2,2'-bis(4,5-dimethyl-5,6-dihydro-4H-1,3-oxazine)]. , 2,2'-alkylenebis(5,6-dihydro-4H-1,3-oxazine) [2,2'-alkylenebis(5,6-dihydro-4H-1,3-oxazine) having 1 to 10 carbon atoms, such as 2,2'-methylenebis(5,6-dihydro-4H-1,3-oxazine), 2,2'-ethylenebis(5,6-dihydro-4H-1,3-oxazine), and 2,2'-hexanemethylenebis(5,6-dihydro-4H-1,3-oxazine)], 2,2'-arylenebis(5,6-dihydro-4H-1,3-oxazine) [2,2'-(1,3-phenylene)bis(5 ,6-dihydro-4H-1,3-oxazine), 2,2'-(1,4-phenylene)-bis(5,6-dihydro-4H-1,3-oxazine), 2,2'-(1,2-phenylene)-bis(5,6-dihydro-4H-1,3-oxazine), 2,2'-naphthylenebis(5,6-dihydro-4H-1,3-oxazine), 2,2'-diphenylenebis(5,6-dihydro-4H-1,3-oxazine), etc.], N,N'-alkylenebis(2-carbamoyl-5,6-dihydro-4H-1,3-oxazine) [N,N'-ethylenebis(2-carbamoyl-5 N,N'-C10 alkylenebis(2-carbamoyl-5,6-dihydro-4H-1,3-oxazine), N,N'-tetramethylenebis(2-carbamoyl-5,6-dihydro-4H-1,3-oxazine), etc.], N,N'-alkylenebis(2-carbamoyl-alkyl-5,6-dihydro-4H-1,3-oxazine) [N,N'-ethylenebis(2-carbamoyl-4-methyl-5,6-dihydro-4H-1,3-oxazine), N,N'-hexamethylenebis(2-carbamoyl-4,Examples of suitable oxazine compounds include N,N'-C10 alkylenebis(2-carbamoyl-C1-6 alkyl-5,6-dihydro-4H-1,3-oxazine) such as N,N'-4-dimethyl-5,6-dihydro-4H-1,3-oxazine, and N,N'-arylenebis(2-carbamoyl-5,6-dihydro-4H-1,3-oxazine) [N,N'-phenylenebis(2-carbamoyl-oxazine)]. Of these oxazine compounds, bisoxazine compounds are preferred.

[0072] <<Compounds with a carboxy group>> Examples of the compound having a carboxy group (carboxylic acid compound) include formic acid, acetic acid, propionic acid, acrylic acid, methacrylic acid, oxalic acid, malonic acid, succinic acid, maleic acid, fumaric acid, adipic acid, benzoic acid, phthalic acid, terephthalic acid, lactic acid, malic acid, tartaric acid, diphenolic benzenesulfonic acid, toluenesulfonic acid, dodecylbenzenesulfonic acid, nonylbenzenesulfonic acid, nitrobenzenesulfonic acid, cyanobenzenesulfonic acid, hydroxybenzenesulfonic acid, methylsulfonic acid, trifluoromethanesulfonic acid, trifluoroacetic acid, nitrobenzenecarboxylic acid, cyanobenzenecarboxylic acid, hydroxybenzenecarboxylic acid, hydroxyacetic acid, and salts thereof.

[0073] <<Compounds with an amide group>> Examples of the compound having an amide group include (meth)acrylamide, N-methylmethacrylamide, methylolated acrylamide, methylolated methacrylamide, ureidovinyl ether, β-ureidoisobutylvinyl ether, and ureidoethyl acrylate.

[0074] <<Reactive compound content>> The resin composition of the present embodiment contains 0.1 to 20 parts by mass of the reactive compound relative to 100 parts by mass of the thermoplastic resin. When the resin composition of this embodiment contains a reactive compound, the content thereof is preferably 0.2 parts by mass or more, more preferably 0.3 parts by mass or more, even more preferably 0.4 parts by mass or more, even more preferably 0.5 parts by mass or more, even more preferably 0.8 parts by mass or more, even more preferably 1.0 parts by mass or more, and particularly preferably 1.2 parts by mass or more, relative to 100 parts by mass of the thermoplastic resin. By setting the content at or above the lower limit, the weld strength tends to be higher. Furthermore, the upper limit of the content of the reactive compound is preferably 18 parts by mass or less, more preferably 15 parts by mass or less, and even more preferably 10 parts by mass or less, relative to 100 parts by mass of the thermoplastic resin. By setting the content at or below the upper limit, the fluidity tends to be higher and the moldability tends to be improved.

[0075] In particular, when the resin composition of this embodiment contains an elastomer containing a reactive group (preferably an epoxy group) as the reactive compound, the content thereof is preferably 1 part by mass or more, more preferably 5 parts by mass or more, even more preferably 7 parts by mass or more, and even more preferably 8 parts by mass or more, relative to 100 parts by mass of the thermoplastic resin. By setting the content at or above the lower limit, impact resistance and weld strength tend to be higher. Furthermore, the upper limit of the content of the reactive compound is preferably 20 parts by mass or less, more preferably 16 parts by mass or less, even more preferably 15 parts by mass or less, even more preferably 12 parts by mass or less, and even more preferably 10 parts by mass or less, relative to 100 parts by mass of the thermoplastic resin. Setting the content at or below the upper limit tends to improve moldability and also tends to make it easier to maintain high strength of the base material of the laser-welded body.

[0076] The resin composition of the present embodiment may contain only one type of reactive compound, or may contain two or more types. When two or more types are contained, the total amount is preferably in the above range.

[0077] <Dye> The resin composition of the present embodiment preferably contains a dye. When the resin composition of the present embodiment is used as a light-transmitting resin composition, the dye preferably contains a light-transmitting dye. When the resin composition of the present embodiment is used as a light-transmitting resin composition, the dye does not need to be contained. By containing a light-transmitting dye, the color of the transmissive resin member formed from the light-transmitting resin composition and the color of the absorbing resin member formed from the light-absorbing resin composition can be unified, which tends to improve the design. On the other hand, when the resin composition of the present embodiment is used as a light-absorbing resin composition, it contains a light-absorbing dye. By containing the light-absorbing dye, it is possible to absorb a laser and enable laser welding. These dyes will be described in detail below.

[0078] <<Light-transmitting dye>> The light-transmitting dye is not particularly limited as long as it transmits at least a certain percentage of the laser for laser welding, and any known dye can be used. The light-transmitting dye refers to a dye that, for example, when a polybutylene terephthalate resin (e.g., Novaduran (registered trademark) 5008), 30% by weight of glass fiber (e.g., Nippon Electric Glass Co., Ltd., product name: T-127), and 0.2% by weight of a dye (a dye believed to be a light-transmitting dye) are blended to a total of 100% by weight, and the light transmittance is measured using the measurement method (measurement of anti-gate side transmittance) described in the Examples below, the light-transmitting dye has a transmittance of 20% or more. Furthermore, by blending the light-transmitting dye of this embodiment, for example, the resin composition of this embodiment can be molded to a thickness of 1.5 mm to have a transmittance of 20% or more at a wavelength of 1064 nm. While an upper limit of 100% is ideal, a value of 90% or less is also acceptable. The light-transmitting dye can be appropriately selected depending on the application, and its color is not particularly limited. The light-transmitting dye used in this embodiment is preferably a black dye and / or a black dye composition. The black dye composition refers to a dye composition that exhibits black by combining two or more chromatic dyes such as red, blue, and green. The light-transmitting pigment is usually a dye. A first embodiment of the black pigment composition contains a green pigment and a red pigment. A second embodiment of the black pigment composition contains a red pigment, a blue pigment, and a yellow pigment. Specific examples of the light-transmitting dye include naphthalocyanine, aniline black, phthalocyanine, porphyrin, perinone, quaterrylene, azo, azomethine, anthraquinone, pyrazolone, squaric acid derivatives, perylene, chromium complexes, and immonium. Azomethine, anthraquinone, and perinone are preferred, and anthraquinone and perinone are more preferred.

[0079] Examples of commercially available products include colorants Plast Yellow 8000, Plast Red M 8315, Plast Red 8370, and Oil Green 5602 manufactured by Arimoto Chemical Co., Ltd.; colorants Macrolex Yellow 3G, Macrolex Red EG, and Macrolex Green 5B manufactured by LANXESS; and colorants KP Plast HK, KP Plast Red HG, KP Plast Red H2G, KP Plast Blue R, KP Plast Blue GR, and KP Plast Green G manufactured by Kiwa Chemical Industry Co., Ltd. Furthermore, dyes described in Japanese Patent No. 4157300 and Japanese Patent No. 4040460 can also be used, the contents of which are incorporated herein by reference.

[0080] When the resin composition of this embodiment is used as a light-transmitting resin composition, it may or may not contain a light-transmitting dye. However, from the viewpoint of design, it is preferable that the resin composition of this embodiment contains a light-transmitting dye in an amount of 0.001 to 5 parts by mass per 100 parts by mass of the thermoplastic resin. The lower limit of the content is preferably 0.01 parts by mass or more, more preferably 0.05 parts by mass or more, even more preferably 0.1 parts by mass or more, and even more preferably 0.2 parts by mass or more. By setting the content at or above the lower limit, the molded product is colored and the design is enhanced. The upper limit of the content is preferably 3 parts by mass or less, more preferably 2 parts by mass or less, even more preferably 1 part by mass or less, even more preferably 0.8 parts by mass or less, and even more preferably 0.5 parts by mass or less. Setting the content at or below the upper limit effectively suppresses bleed-out of the light-transmitting dye. The resin composition of the present embodiment may contain only one type of light-transmitting dye, or may contain two or more types. When two or more types are contained, the total amount is preferably in the above range. Furthermore, the light-transmitting resin composition generally does not substantially contain a light-absorbing dye. The term "substantially does not contain" means that, when the light-transmitting resin composition contains a light-absorbing dye, the content is at a level that does not inhibit light transmission for laser welding of the light-transmitting resin composition. For example, the content may be less than 0.001 parts by mass per 100 parts by mass of the thermoplastic resin. From the viewpoint of weather resistance, it is preferable that nigrosine is not contained, and the content thereof is preferably 5 ppm or less, more preferably 3 ppm or less, by mass in the resin component.

[0081] <<Light-absorbing dyes>> The light-absorbing dye has a maximum absorption wavelength in the range of the wavelength of the irradiated laser light, for example, in the range of wavelengths from 800 nm to 1100 nm. The light-absorbing dye refers to a dye that, when a polybutylene terephthalate resin (e.g., Novaduran (registered trademark) 5008), 30 mass % of glass fiber (e.g., Nippon Electric Glass Co., Ltd., product name: T-127), and 0.3 mass parts of a dye (a dye that is thought to be a light-absorbing dye) are blended and the light transmittance is measured by the measurement method described in the Examples below (measurement of transmittance on the anti-gate side), the transmittance is less than 20%, or even 10% or less.

[0082] The light-absorbing dye is usually a pigment. Examples of the light-absorbing dye include black colorants such as carbon black, and white colorants such as titanium oxide and zinc sulfide, and at least one of these may be used alone or in combination. Of these, those containing carbon black are preferred.

[0083] As the carbon black, for example, at least one or a combination of two or more of furnace black, thermal black, channel black, lamp black, and acetylene black can be used. It is also preferable to use carbon black that has been converted into a masterbatch in advance in order to facilitate dispersion.

[0084] From the viewpoint of dispersibility, the average primary particle size of carbon black is preferably 10 nm to 30 nm, and more preferably 15 nm or more or 25 nm or less. Good dispersibility more effectively reduces uneven welding during laser welding. In addition, from the viewpoint of jet blackness, carbon black should have a nitrogen adsorption specific surface area of 30 to 400 m as measured according to JIS K6217. 2 / g is preferred, and 50m 2 / g or more, among which 80m 2 It is more preferable that the saturation coefficient is 1 / g or more.

[0085] Furthermore, from the viewpoint of dispersibility, carbon black must have a DBP absorption of 20 to 200 cm as measured by JIS K6221. 3 / 100g is preferable, and 40cm 3 / 100g or more or 170cm 3 / 100g or less, among which 50cm 3 / 100g or more or 150cm 3 It is more preferable that the dispersibility is not more than 100g. Good dispersibility reduces uneven welding during laser welding.

[0086] When the resin composition of this embodiment is used as a light-absorbing resin composition, it contains a light-absorbing dye. Specifically, the light-absorbing resin composition of this embodiment preferably contains 0.01 to 10.00 parts by mass of the light-absorbing dye relative to 100 parts by mass of the thermoplastic resin (preferably a polyester-based resin). The lower limit of the content is preferably 0.1 parts by mass or more, more preferably 0.5 parts by mass or more, even more preferably 1 part by mass or more, and even more preferably 2 parts by mass or more. By setting the content at or above the lower limit, the thermoplastic resin tends to generate heat and melt upon laser irradiation, thereby promoting more effective laser welding. The upper limit of the content is preferably 8 parts by mass or less, more preferably 7 parts by mass or less, even more preferably 6 parts by mass or less, even more preferably 5 parts by mass or less, even more preferably 4 parts by mass or less, and even more preferably 3 parts by mass or less. Setting the content at or below the upper limit more effectively prevents decomposition of the thermoplastic resin due to sudden and excessive heat generation. The resin composition of the present embodiment may contain only one type of light-absorbing dye, or may contain two or more types. When two or more types are contained, the total amount is preferably in the above range. The light-absorbing resin composition may or may not contain a light-transmitting dye. In one embodiment, the content of the light-transmitting dye in the light-absorbing resin composition is less than 0.001 parts by mass relative to 100 parts by mass of the thermoplastic resin.

[0087] <Inorganic fillers> The resin composition of the present embodiment preferably further contains an inorganic filler. By containing an inorganic filler, particularly a fibrous inorganic filler, preferably glass fiber, the mechanical strength and heat resistance strength are improved, and the durability of the laser-welded article tends to be further improved.

[0088] The inorganic filler that can be contained in the resin composition of this embodiment has the effect of improving the mechanical properties of the resulting resin composition when blended with the resin, and commonly used inorganic fillers for plastics can be used. Fibrous inorganic fillers such as glass fiber, carbon fiber, basalt fiber, wollastonite, and potassium titanate fiber can be preferably used. Granular or amorphous fillers such as calcium carbonate, titanium oxide, feldspar minerals, clay, organoclay, and glass beads can also be used. Plate-like fillers such as talc can also be used. Scaly inorganic fillers such as glass flakes, mica, and graphite can also be used. Among these, fibrous fillers, particularly glass fiber, are preferred in terms of mechanical strength, rigidity, and heat resistance. Glass fibers can have either a round or irregular cross-sectional shape. It is more preferable to use an inorganic filler that has been surface-treated with a surface treatment agent such as a coupling agent. Glass fibers with a surface treatment agent attached thereto are preferred because they have excellent durability, moist heat resistance, hydrolysis resistance, and heat shock resistance.

[0089] Any conventionally known surface treatment agent can be used, and specific preferred examples include silane coupling agents such as aminosilane-based, epoxysilane-based, allylsilane-based, and vinylsilane-based silane coupling agents. Among these, aminosilane-based surface treatment agents are preferred, and specific preferred examples include γ-aminopropyltriethoxysilane, γ-aminopropyltrimethoxysilane, and γ-(2-aminoethyl)aminopropyltrimethoxysilane.

[0090] Other preferred surface treatment agents include novolac-type and other epoxy resin-based surface treatment agents, and bisphenol A-type epoxy resin-based surface treatment agents, and treatment with a novolac-type epoxy resin-based surface treatment agent is particularly preferred. The silane-based surface treatment agent and the epoxy resin-based surface treatment agent may be used alone or in combination, and it is also preferable to use both of them in combination. The glass fiber in this embodiment means a fibrous glass material, and more specifically, it is preferable that the glass fiber has a chopped shape obtained by bundling 1,000 to 10,000 glass fibers and cutting them to a predetermined length. The glass fibers in this embodiment preferably have a number-average fiber length of 0.5 to 10 mm, more preferably 1 to 5 mm. By using glass fibers with such a number-average fiber length, mechanical strength can be further improved. The number-average fiber length is calculated from the measured values obtained by randomly selecting glass fibers for which fiber length measurement is to be performed from an image obtained by observation with an optical microscope, measuring the long sides of the fibers. The observation is performed at a magnification of 20 times, and the number of fibers measured is 1,000 or more. This roughly corresponds to the cut length. The cross section of the glass fiber may be any shape, such as a circle, an ellipse, an oval, a rectangle, a shape in which both short sides of a rectangle are joined with semicircles, a cocoon shape, etc., but a circle is preferred. Here, the circle includes not only a circle in the geometric sense but also what is usually called a circle in the technical field of this embodiment. The lower limit of the number average fiber diameter of the glass fibers is preferably 4.0 μm or more, more preferably 4.5 μm or more, and even more preferably 5.0 μm or more. The upper limit of the number average fiber diameter of the glass fibers is preferably 15.0 μm or less, more preferably 14.0 μm or less. Using glass fibers having a number average fiber diameter in this range tends to produce molded products with superior mechanical strength. The number average fiber diameter of the glass fibers is calculated from the measured values obtained by randomly selecting glass fibers to be measured for fiber diameter from an image obtained by observation with an electron microscope, measuring the fiber diameter near the center, and then measuring the measured value. The observation is performed at a magnification of 1,000x, and the number of fibers measured is 1,000 or more. The number average fiber diameter of glass fibers having a cross section other than a circle is the number average fiber diameter when converted into a circle with the same area as the cross section.

[0091] The glass fiber is obtained by melt spinning commonly available glass such as E-glass (electrical glass), C-glass (chemical glass), A-glass (alkaline glass), S-glass (high strength glass), D-glass, R-glass, and alkali-resistant glass, but is not particularly limited as long as it can be made into glass fiber. In this embodiment, it is preferable to include E-glass.

[0092] The glass fiber used in this embodiment is preferably surface-treated with a surface treatment agent such as a silane coupling agent, for example, γ-methacryloxypropyltrimethoxysilane, γ-glycidoxypropyltrimethoxysilane, or γ-aminopropyltriethoxysilane. The amount of the surface treatment agent attached is preferably 0.01 to 1 mass% of the glass fiber. Furthermore, if necessary, the glass fiber may be surface-treated with a lubricant such as a fatty acid amide compound or silicone oil, an antistatic agent such as a quaternary ammonium salt, a resin capable of forming a film, such as an epoxy resin or urethane resin, or a mixture of a resin capable of forming a film with a heat stabilizer or a flame retardant.

[0093] Glass fibers are commercially available, such as T-286H, T-756H, T-127, and T-289H manufactured by Nippon Electric Glass Co., Ltd., DEFT2A manufactured by Owens Corning, HP3540 manufactured by PPG, and CSG3PA820 manufactured by Nitto Boseki Co., Ltd.

[0094] As described above, the resin composition of this embodiment preferably contains 5 to 100 parts by mass of an inorganic filler (preferably glass fiber) relative to 100 parts by mass of the thermoplastic resin. The lower limit of the inorganic filler content is preferably 10 parts by mass or more, more preferably 15 parts by mass or more, even more preferably 20 parts by mass or more, even more preferably 25 parts by mass or more, and even more preferably 28 parts by mass or more relative to 100 parts by mass of the thermoplastic resin. By setting the content at or above the lower limit, the base material strength of the laser-welded article tends to be increased, and the heat resistance of the laser-welded article also tends to be increased. The upper limit of the inorganic filler content is preferably 70 parts by mass or less, more preferably 60 parts by mass or less, and even more preferably 50 parts by mass or less relative to 100 parts by mass of the thermoplastic resin. By setting the content at or below the upper limit, the weld strength at the interface tends to be increased.

[0095] The content of the inorganic filler (preferably glass fiber) in the resin composition of this embodiment is preferably 20% by mass or more, more preferably 25% by mass or more, of the resin composition, and is preferably 40% by mass or less, more preferably 38% by mass or less. The resin composition of the present embodiment may contain only one type of inorganic filler (preferably glass fiber), or may contain two or more types. When two or more types are contained, the total amount is preferably in the above range.

[0096] <Other ingredients> The resin composition of this embodiment may contain other components in addition to those described above, as necessary, as long as the desired physical properties are not significantly impaired. Examples of other components include various resin additives. Note that the other components may be contained alone or in any combination and ratio of two or more. Specific examples include flame retardants, stabilizers, mold release agents, ultraviolet absorbers, antistatic agents, antifogging agents, antiblocking agents, flow improvers, plasticizers, dispersants, antibacterial agents, etc. The resin composition of the present embodiment preferably contains at least one of a stabilizer and a mold release agent.

[0097] <<Flame retardants>> The resin composition of the present embodiment may contain a flame retardant. By including a flame retardant, the flame retardancy tends to be further improved. Examples of flame retardants include organic halogen compounds, antimony compounds, phosphorus compounds, nitrogen compounds, and other organic and inorganic compounds. Specific examples of organic halogen compounds include brominated polycarbonate, brominated epoxy resin, brominated phenoxy resin, brominated polyphenylene ether resin, brominated polystyrene resin, brominated bisphenol A, and pentabromobenzyl polyacrylate.

[0098] Examples of antimony compounds include antimony trioxide, antimony pentoxide, and sodium antimonate. Examples of phosphorus compound flame retardants include phosphate esters, polyphosphoric acid, melamine polyphosphate, ammonium polyphosphate, metal phosphinates, and red phosphorus. Examples of nitrogen-based flame retardants include melamine cyanurate and phosphazene. Examples of organic and inorganic flame retardants other than those mentioned above include inorganic compounds such as aluminum hydroxide, magnesium hydroxide, silicon compounds, and boron compounds.

[0099] When a flame retardant is contained, the content thereof is usually 0.001 parts by mass or more, preferably 0.01 parts by mass or more, and usually 20 parts by mass or less, preferably 10 parts by mass or less, per 100 parts by mass of the thermoplastic resin. By setting the content of the flame retardant to the lower limit of the above range or more, the effect as a flame retardant can be more effectively obtained. Furthermore, by setting the content of the flame retardant to the upper limit of the above range or less, the effect does not plateau and is economical. The resin composition of the present embodiment may contain only one type of flame retardant, or may contain two or more types. When two or more types are contained, the total amount is preferably in the above range.

[0100] <<Stabilizer>> The resin composition of the present embodiment preferably contains a stabilizer, and the stabilizer is preferably a phosphorus-based stabilizer or a phenol-based stabilizer.

[0101] Any known phosphorus stabilizer can be used. Specific examples include phosphorus oxoacids such as phosphoric acid, phosphonic acid, phosphorous acid, phosphinic acid, and polyphosphoric acid; metal acid pyrophosphates such as sodium acid pyrophosphate, potassium acid pyrophosphate, and calcium acid pyrophosphate; phosphates of Group 1 or Group 2B metals such as potassium phosphate, sodium phosphate, cesium phosphate, and zinc phosphate; organic phosphate compounds, organic phosphite compounds, and organic phosphonite compounds, with organic phosphite compounds being particularly preferred. Examples of the phenolic stabilizer include hindered phenolic antioxidants. For details, please refer to paragraphs 0105 to 0111 of International Publication No. 2020 / 013127, the contents of which are incorporated herein by reference.

[0102] The content of the stabilizer is usually 0.001 parts by mass or more, preferably 0.01 parts by mass or more, and usually 1 part by mass or less, preferably 0.5 parts by mass or less, per 100 parts by mass of the thermoplastic resin. By setting the content of the stabilizer at or above the lower limit of the above range, the effect as a stabilizer can be more effectively obtained. Furthermore, by setting the content of the stabilizer at or below the upper limit of the above range, the effect does not plateau and is economical. The resin composition of the present embodiment may contain only one stabilizer, or may contain two or more stabilizers. When two or more stabilizers are contained, the total amount is preferably in the above range.

[0103] <<Release Agent>> The resin composition of this embodiment preferably contains a release agent (lubricant). Examples of the release agent include aliphatic carboxylic acids, esters of aliphatic carboxylic acids and alcohols, aliphatic hydrocarbon compounds having a number average molecular weight of 200 to 15,000, wax, and polysiloxane-based silicone oil. For details, please refer to paragraphs 0112 to 0121 of International Publication No. 2020 / 013127, the contents of which are incorporated herein by reference.

[0104] The content of the release agent is usually 0.001 part by mass or more, preferably 0.01 part by mass or more, and usually 2 parts by mass or less, preferably 1 part by mass or less, relative to 100 parts by mass of the thermoplastic resin. By setting the content of the release agent to be equal to or more than the lower limit of the above range, sufficient releasability effect is easily obtained, and by setting the content of the release agent to be equal to or less than the upper limit of the above range, sufficient hydrolysis resistance is obtained and mold contamination during injection molding is less likely to occur.

[0105] <Physical properties of resin composition> When the resin composition of this embodiment is used as a light-transmitting resin composition, it is preferable that the resin composition has excellent transmittance. Specifically, the light-transmitting resin composition of this embodiment has a transmittance (wavelength: 1064 nm) on the opposite side of the gate, measured using a Shimadzu ultraviolet-visible spectrophotometer (with an integrating sphere), of preferably more than 15.0%, more preferably 20.0% or more. There is no particular upper limit, but a practical value is 90% or less. Furthermore, when the resin composition of this embodiment is used as a light-transmitting resin composition, it is preferable that the resin composition has excellent tensile strength retention after 100 hours of high-temperature, high-humidity treatment (PCT (121°C x 2 atm x 100% RH) treatment). Specifically, the light-transmitting resin composition of this embodiment has a tensile strength retention after PCT100 treatment measured in accordance with ISO 527-1 and 527-2 of preferably 50% or more, more preferably 55% or more, and even more preferably 63% or more. There is no particular upper limit, but a practical value is, for example, 95% or less. In addition, when the resin composition of this embodiment is used as a light-transmitting resin composition, the notched Charpy impact strength is 7 kJ / m 2 It is preferable that the concentration is 8 kJ / m or more. 2 More preferably, it is 9 kJ / m or more. 2 The upper limit is not particularly specified, but it is preferably 20 kJ / m 2 The following is practical: Furthermore, when the resin composition of this embodiment is used as a light-absorbing resin composition, it is preferable that the resin composition has excellent tensile strength retention after high-temperature, high-humidity treatment. Specifically, the light-absorbing resin composition of this embodiment has a tensile strength retention after PCT treatment measured in accordance with ISO 527-1 and 527-2 of preferably 50% or more, more preferably 55% or more, and even more preferably 63% or more. There is no particular upper limit, but for example, 95% or less is practical. In addition, when the resin composition of this embodiment is used as a light-transmitting resin composition, the notched Charpy impact strength is 7 kJ / m 2 It is preferable that the concentration is 8 kJ / m or more. 2More preferably, it is 9 kJ / m or more. 2 The upper limit is not particularly specified, but it is preferably 20 kJ / m 2 The following is practical: Furthermore, the resin composition of this embodiment can be preferably used when the light transmittance of a molded product varies depending on the location. For example, when the resin composition of this embodiment is injection molded to a size of 60 mm x 60 mm x 1.5 mm, the difference in light transmittance at a wavelength of 1064 nm between a position 15 mm from the gate side and a position 45 mm from the gate side may be 2.1% or more, or even 2.2% or more. The upper limit of the difference in light transmittance is, for example, 3.5% or less, or even 3.0% or less, which is practical. The details of the methods for measuring the transmittance, the tensile strength retention rate after 100 hours of PCT treatment, the notched Charpy impact strength, and the difference in light transmittance are as described in the Examples below.

[0106] <Method of manufacturing resin composition> The resin composition of this embodiment can be produced by a conventional method for preparing a resin composition. Typically, the components and various optional additives are thoroughly mixed together and then melt-kneaded in a single-screw or twin-screw extruder. Alternatively, the resin composition of this embodiment can be prepared without premixing the components, or by premixing only a portion of the components, feeding the mixture into an extruder using a feeder, and melt-kneading. A masterbatch may be prepared by melt-kneading a portion of the components, such as the dye, with a thermoplastic resin, to prepare a masterbatch, which is then blended with the remaining components and melt-kneaded. When a fibrous inorganic filler such as glass fiber is used, it is also preferable to feed it from a side feeder midway through the cylinder of the extruder. The heating temperature during melt-kneading can usually be selected appropriately from the range of 220 to 300°C. If the temperature is too high, decomposition gases are likely to be generated, which may cause the material to become opaque. Therefore, it is desirable to select a screw configuration that takes into account shear heat generation, etc. To suppress decomposition during kneading and subsequent molding processes, it is desirable to use antioxidants and heat stabilizers.

[0107] <Method of manufacturing molded products> The method for producing the molded article is not particularly limited, and any molding method generally used for resin compositions can be used. Examples thereof include injection molding, ultra-high speed injection molding, injection compression molding, two-color molding, gas-assisted or other hollow molding, molding using a heat-insulating mold, molding using a rapidly heated mold, foam molding (including supercritical fluid), insert molding, IMC (in-mold coating molding), extrusion molding, sheet molding, thermoforming, rotational molding, lamination molding, press molding, blow molding, etc., among which injection molding is preferred. For details of injection molding, please refer to the description in paragraphs 0113 to 0116 of Japanese Patent No. 6183822, the contents of which are incorporated herein by reference.

[0108] <Kit> The galvano laser welding kit of this embodiment includes a light-transmitting resin composition and a light-absorbing resin composition, and at least one of the light-transmitting resin composition and the light-absorbing resin composition is the resin composition of this embodiment. By using the resin composition of this embodiment for at least one of the light-transmitting resin composition and the light-absorbing resin composition, appropriate laser welding is possible under a wide range of laser irradiation conditions. In the galvano laser welding kit of this embodiment, both the light-transmitting resin composition and the light-absorbing resin composition are preferably the resin composition of this embodiment. Specifically, the galvano laser welding kit of this embodiment preferably includes a galvano laser welding resin composition (light-transmitting resin composition) containing 0.1 to 20 parts by mass of a reactive compound per 100 parts by mass of thermoplastic resin, and a galvano laser welding resin composition (light-absorbing resin composition) containing 0.1 to 20 parts by mass of a reactive compound per 100 parts by mass of thermoplastic resin and further containing a light-absorbing dye. Such a kit has excellent laser weldability and is preferably used as a kit for producing molded articles by laser welding. That is, in the kit of this embodiment, the molded article formed from the light-transmitting resin composition becomes a transmissive resin member for laser light during laser welding, and the molded article formed from the light-absorbing resin composition becomes an absorbing resin member for laser light during laser welding. The resin composition of this embodiment is used for galvano laser welding. Galvano laser welding, also known as galvano scanning laser welding or quasi-simultaneous welding, is a method in which a laser beam is scanned using a built-in galvanometer mirror. The use of galvano laser welding enables laser welding over a wide range, facilitating laser welding of uneven components or components of different thicknesses.

[0109] In the above kit, it is preferable that 80% by mass or more of the components excluding the light-transmitting dye and inorganic filler in the resin composition of this embodiment are common to the components excluding the light-absorbing dye and inorganic filler in the light-absorbing resin composition, more preferably 90% by mass or more, and even more preferably 95 to 100% by mass are common to the components excluding the light-absorbing dye and inorganic filler in the resin composition of this embodiment.

[0110] The above kit can have a laser weld strength of 1000 N or more, and can further have a laser weld strength of 1500 N or more, 1800 N or more, or 2000 N or more. There is no particular upper limit to the laser weld strength, but a practical upper limit is 3000 N or less. The laser weld strength is measured as described in the Examples below. The kit preferably achieves high laser weld strength over a wide range of laser irradiation conditions, particularly over the entire irradiation energy range of 2.0 to 6.0 J / mm (particularly, 2000 N or more).

[0111] <<Molded Product Manufacturing Method>> The method for manufacturing a molded article of this embodiment includes galvano-laser welding a transmissive resin member and an absorptive resin member, at least one of which is formed from the resin composition of this embodiment. Preferably, both the transmissive resin member and the absorptive resin member are formed from the resin composition of this embodiment. Specifically, in the method for producing a molded article of this embodiment, the transmissive resin member is preferably formed from a galvano laser welding resin composition (light-transmitting resin composition) containing 0.1 to 20 parts by mass of a reactive compound relative to 100 parts by mass of a thermoplastic resin, and the absorbing resin member is preferably formed from a galvano laser welding resin composition (light-absorbing resin composition) containing 0.1 to 20 parts by mass of a reactive compound relative to 100 parts by mass of a thermoplastic resin, and further containing a light-absorbing dye. The light-transmitting resin composition preferably contains a light-transmitting dye.

[0112] Next, a laser welding method will be described. In this embodiment, a molded product is manufactured by galvano-type laser welding a transparent resin member and an absorbing resin member. Laser welding allows the transparent resin member and the absorbing resin member to be firmly welded together without using adhesive. Furthermore, galvano-type laser welding enables laser welding under a wide range of laser irradiation conditions. Furthermore, even if a gap occurs in the joining portion of a molded product due to sink marks or warping during molding, laser welding is possible even if the gap is 0.1 mm or more, preferably 0.2 mm or more, even 0.5 mm or more, and particularly 0.8 mm or more.

[0113] The laser welding conditions in this embodiment are preferably an output of 80 W or more, more preferably 100 W or more, and even more preferably 120 W or more. In this embodiment, galvano-type laser welding is performed, so even at high output, uniform laser irradiation is possible. Furthermore, from the viewpoint of productivity, the power is preferably 300 W or less, and even more preferably 250 W or less. The laser scanning speed is preferably high, for example, preferably 200 mm / s or higher, more preferably 300 mm / s or higher, even more preferably 400 mm / s or higher, even more preferably 500 mm / s or higher, even more preferably 600 mm / s or higher, even more preferably 700 mm / s or higher, and particularly preferably 800 mm / s or higher. By setting the speed at or above the lower limit, it becomes possible to uniformly irradiate the member with the laser. From the viewpoint of productivity, an upper limit of the laser scanning speed of, for example, 3000 mm / s or lower is practical. In the laser welding of this embodiment, the laser can be irradiated while rotating. The number of revolutions is, for example, 3 or more, preferably 5 or more, more preferably 7 or more, and even more preferably 9 or more. By making the number of revolutions equal to or greater than the lower limit, welding can be performed without unevenness. The upper limit of the number of revolutions is, for example, 100 or less, which is practical from the viewpoint of productivity, and may be 70 or less. The shapes of the members are not particularly limited, but since the members are joined together by laser welding, they usually have a shape that has at least a surface contact area (flat surface, curved surface). In laser welding, the laser light that has passed through the transmitting resin member is absorbed by the absorbing resin member, melting it and welding the two members together.

[0114] The laser light source used for laser welding can be determined depending on the absorption wavelength of the light-absorbing dye, and a laser with a wavelength in the range of 800 to 1100 nm is preferred. Specifically, a YAG (yttrium aluminum garnet crystal) laser (wavelength 1064 nm) or an LD (laser diode) laser (wavelengths of 808 nm, 820 nm, 840 nm, 880 nm, or 940 nm) can be preferably used. The laser focal diameter is preferably 0.1 mm or more, more preferably 0.2 mm or more, and even more preferably 0.5 mm or more. By making the diameter equal to or greater than the upper limit, the welding strength of the laser welded portion can be increased. Furthermore, the laser irradiation diameter is preferably 30 mm or less, more preferably 10 mm or less, and even more preferably 3.0 mm or less. By making the diameter equal to or less than the lower limit, the welding width can be controlled. The focal diameter of the laser light can be selected according to the width and height of the welding surface. The laser light may be focused or defocused on the joining surface, and it is preferable to select an appropriate method depending on the desired welded body.

[0115] More specifically, when laser welding, for example, a transmissive resin member and an absorptive resin member, the portions of the two members to be welded are first brought into contact with each other. At this time, the welded portions of the two members are preferably in surface contact, and may be flat surfaces, curved surfaces, or a combination of flat and curved surfaces. When maintaining the contact state, a transparent plate such as a glass plate, quartz plate, or acrylic plate may be placed on the transmission-side member, i.e., on the laser irradiation side, to apply pressure. Placing a glass or quartz plate is particularly effective in promoting the dissipation of heat generated during laser welding and achieving a good appearance. Pressure may also be applied using a metal plate surrounding the periphery of the transmission-side member to be welded. Next, a laser beam is irradiated from the transparent resin member side. If necessary, a lens may be used to focus the laser beam at the interface between the two. The focused beam passes through the transparent resin member and is absorbed near the surface of the absorptive resin member, generating heat and melting it. The heat is then transferred to the transparent resin member by thermal conduction, melting it and forming a molten pool at the interface between the two. After cooling, the two are bonded together. The molded product in which the transparent resin member and the absorbing resin member are welded in this manner has high weld strength. Note that the molded product in this embodiment is intended to include not only finished products and parts, but also parts that form part of these.

[0116] Molded articles obtained by laser welding in this embodiment have good mechanical strength, high weld strength, and minimal damage to the resin due to laser irradiation. Therefore, they can be used in a variety of applications, such as various storage containers, electrical and electronic equipment parts, office automation (OA) equipment parts, home appliance parts, mechanical mechanism parts, and vehicle mechanism parts. They are particularly suitable for food containers, pharmaceutical containers, oil and grease product containers, hollow vehicle parts (various tanks, intake manifold parts, camera housings), vehicle electrical parts (various control units, ignition coil parts, etc.), automotive electronic and sensor parts (housings for millimeter-wave radar, LiDAR, ECU cases, sonar sensors, etc.), electronically controlled throttle bodies, motor parts, various sensor parts, connector parts, switch parts, breaker parts, relay parts, coil parts, transformer parts, and lamp parts. The resin composition and kit of this embodiment are particularly suitable for exposure to ultraviolet light. In this embodiment, the term "UV-exposed object" refers to a molded article that is directly exposed to UV rays, a molded article that is exposed to reflected UV rays, or a molded article that is indirectly exposed to UV rays, such as a molded article that is exposed to UV rays through a transparent molded article. In this embodiment, the term "UV-exposed object" is particularly suitable for molded articles that are directly exposed to UV rays and molded articles that are exposed to reflected UV rays. Here, molded articles include components, housings, and other molded articles. Specifically, UV-exposed objects include on-board camera components installed inside or outside a vehicle, on-board camera modules including on-board camera components, or housings for millimeter-wave radar installed inside and / or outside a vehicle, millimeter-wave radar modules including such millimeter-wave radar, components inside vehicle headlamps, housings for electric parking brakes (EPBs), and housings for sensor cases such as sonar sensors. In particular, on-board camera components, housings for millimeter-wave radar installed inside and / or outside a vehicle, housings for electric parking brakes, or housings for sensor cases are preferred. [Example]

[0117] The present invention will be explained in more detail below with reference to examples. The materials, amounts used, ratios, processing details, processing procedures, etc. shown in the following examples can be appropriately changed without departing from the spirit of the present invention. Therefore, the scope of the present invention is not limited to the specific examples shown below. If the measuring instruments used in the examples are difficult to obtain due to discontinuation or the like, measurements can be made using other instruments with equivalent performance.

[0118] 1.Raw materials The raw materials shown in Tables 1 and 2 below were used.

[0119] [Table 1] [Table 2]

[0120] The carbon black masterbatch was produced as follows: Polybutylene terephthalate resin and carbon black were placed in a stainless steel tumbler in a mass ratio of 81:19 and mixed with stirring for 1 hour. The resulting mixture was placed in the main hopper of a 30 mm vent-type twin-screw extruder (manufactured by The Japan Steel Works, Ltd., "TEX30α") and kneaded under the following conditions: extruder barrel temperature set at 260°C, die temperature at 250°C, screw rotation speed at 200 rpm, and extrusion rate of 40 kg / hour into a strand-like form to produce a carbon black masterbatch.

[0121] <Measurement of epoxy equivalent> The epoxy equivalent was measured in accordance with JIS K 7236. The unit is eq / g.

[0122] <Adjustment of colorant> The colorants used were prepared by weighing out each dye and stirring for 5 hours.

[0123] Example A: Preparation of laser-transmittable resin composition (Examples A-1 to A-3, Comparative Examples A-1 to A-3) As shown in Table 3, components other than glass fiber were put into a stainless steel tumbler and stirred and mixed for 1 hour. Each component in Table 3 is expressed in parts by mass. The obtained mixture was put into the main hopper of a 30 mm vent type twin-screw extruder (manufactured by Nippon Steel Works, Ltd., "TEX30α"), and the glass fiber (GF) was supplied from the 7th side feeder from the hopper. The kneading was carried out under the conditions of the set temperature of the extruder barrel C1 to C15 being 260 °C, the die being 250 °C, the screw rotation speed being 200 rpm, and the discharge amount being 40 kg / hour, and extruded into strands to obtain pellets of the resin composition.

[0124] <Molding of the permeable resin member> After drying the resin composition pellets obtained above at 120 °C for 7 hours, using an injection molding machine (manufactured by Nissei Plastic Industrial Co., Ltd., "NEX80-9E"), a flat test piece with a size of 60 mm × 60 mm × thickness of 1.5 mm for transmittance measurement was injection molded under the conditions of a cylinder temperature of 260 °C, a mold temperature of 60 °C, and the following injection conditions. (Injection conditions) Holding pressure time: 10 sec Cooling time: 10 sec Injection speed: 90 mm / sec Back pressure: 5 MPa Screw rotation speed: 100 rpm

[0125] <Measurement of the transmittance on the anti-gate side> Among the test pieces (60 mm × 60 mm × thickness of 1.5 mm) obtained above, at a point 45 mm from the gate side portion and at the center of the width of the test piece, using an ultraviolet-visible near-infrared spectrophotometer (manufactured by Shimadzu Corporation, "UV-3100PC" with an integrating sphere), the transmittance (%) at a wavelength of 1064 nm was determined. <Measurement of the transmittance on the gate side> Among the test pieces, at a point 15 mm from the gate side portion and at the center of the width of the test piece, using an ultraviolet-visible near-infrared spectrophotometer (manufactured by Shimadzu Corporation, "UV-3100PC" with an integrating sphere), the transmittance (%) at a wavelength of 1064 nm was determined.

[0126] <Production of ISO multipurpose test pieces and test pieces for measuring the Charpy impact strength with a notch> After drying the pellets of the resin composition obtained above at 120 °C for 7 hours, an ISO multipurpose test piece with a thickness of 4.0 mm was injection molded in accordance with JIS7139 and JIS7152 using an injection molding machine (``J-85AD-60H'' manufactured by Japan Steel Works, Ltd.). In accordance with JIS179-1 and 179-2 standards, test pieces for measuring the notched Charpy impact strength were molded from the test pieces. Using the obtained test pieces, the anti-gate side transmittance, the tensile strength retention after PCT treatment, and the notched Charpy impact strength were measured.

[0127] <Tensile strength retention after PCT treatment> Using the ISO multipurpose test piece (thickness 4.0 mm) obtained above, the initial tensile strength (MPa) was measured in accordance with JIS7161. Also, the ISO multipurpose test piece (thickness 4.0 mm) was treated for 100 hours under the conditions of a temperature of 121 °C, a relative humidity of 100%, and a pressure of 2 atm using a pressure cooker tester (EH8-221M manufactured by ESPEC Corporation), and after conditioning in an environment of 23 °C × 50% humidity, the tensile strength (after 100 hours of treatment) was similarly measured (unit: MPa). Thereafter, the tensile strength retention rate was calculated. (Unit: %) Tensile strength retention rate (%) = Tensile strength after 100 hours of PCT treatment / Initial tensile strength × 100

[0128] <Notched Charpy impact strength> Using the ISO multipurpose test piece (thickness 4.0 mm) molded above, the notched Charpy impact strength was measured in accordance with ISO179-1 and 2. The unit is kJ / m 2 as shown.

[0129]

Table 3

[0130] Example B Production of laser-absorbing resin composition (Examples B-1 to B-8, Comparative Examples B-1 to B-4) As shown in Table 4 or Table 5, components other than glass fiber were put into a stainless tumbler and stirred and mixed for 1 hour. Each component in Table 4 or Table 5 is expressed in parts by mass. The obtained mixture was put into the main hopper of a 30 mm vent type twin-screw extruder (manufactured by Japan Steel Works, Ltd., "TEX30α"), and the glass fiber (GF) was supplied from the 7th side feeder of the hopper. The extruder barrel set temperatures C1 to C15 were 260 °C, the die was 250 °C, the screw rotation speed was 200 rpm, and kneading was carried out under the condition of a discharge rate of 40 kg / hour and extruded into strands to obtain pellets of the resin composition. Test pieces were prepared using the obtained pellets.

[0131] <Preparation of ISO multipurpose test pieces and test pieces for measuring notched Charpy impact strength> After drying the pellets of the resin composition obtained above at 120 °C for 7 hours, an ISO multipurpose test piece with a thickness of 4.0 mm was injection molded according to JIS7139 and JIS7152 using an injection molding machine (manufactured by Japan Steel Works, Ltd., "J-85AD-60H"). Also, in accordance with the JIS179-1 and 179-2 standards, test pieces for measuring the notched Charpy impact strength were molded from the test pieces. Using the obtained test pieces, the tensile strength retention and the notched Charpy impact strength after PCT treatment were measured by the same method as described above.

[0132]

Table 4

Table 5

[0133] Example C Laser welding Examples C-1 to C-13, Reference Examples C-1 to C-12 <Molding of the transparent resin member> After drying the resin pellets obtained in Example A at 120 °C for 7 hours, they were molded using an injection molding machine (manufactured by Japan Steel Works, Ltd., "J55") at a cylinder temperature of 260 °C and a mold temperature of 60 °C to produce a molded body (transparent resin member I) with a thickness of 1.5 mm as shown in Fig. 3. <Molding of absorbent resin components> The resin pellets obtained in Example B were dried at 120°C for 7 hours, and then molded using an injection molding machine ("J55" manufactured by The Japan Steel Works, Ltd.) at a cylinder temperature of 260°C and a mold temperature of 60°C to produce a molded body (absorbent resin member II) as shown in Figure 4.

[0134] The combinations of transparent resin members and absorbing resin members shown in Tables 6 to 8 were selected, and as shown in Figure 5, holes 21 and 22 were drilled in each and jigs 23 and 24 for measuring welding strength were placed inside. A lid-shaped transparent resin member I was placed on a box-shaped absorbing resin member II, and a laser light source was positioned vertically above the flange where the transparent resin members I and II overlapped. A glass plate was used to apply a pressing force of 4.92 N / mm (pressing force during welding) inward from both sides in the thickness direction to the overlapping portion of the transparent resin members I and II, while irradiating the laser under the conditions shown in Tables 6 to 8, to obtain a laser-welded product. The area marked with symbol 1 in Figure 5 is the area irradiated with the laser. The welding equipment is as follows:

[0135] <Galvano scanner type laser welding> Laser device: IPG YLR-300-AC-Y14 Wavelength: 1070nm Collimator: 7.5mm Laser Type: Fiber Laser power: 150, 180W Galvanometer scanner: ARGES Fiber Elephants21 Aperture: 21mm Laser irradiation speed: 900mm / s Laser irradiation cycles: 10 to 50 cycles Welding circumference: 137mm The laser beam was defocused and the position of the laser scanner was adjusted so that the spot diameter irradiated on the welding surface was 2 mm.

[0136] <Scanning laser welding> The welding conditions are as follows: Laser welding machine: Fine Devices FD-2330 Wavelength: 940nm Output: 30~120W Spot diameter: 2.1mmφ Scanning speed: 60mm / s Scanning distance: 137mm (1 lap) The laser weld strength of the obtained laser welded article was measured as follows.

[0137] <Laser welding strength> As shown in Figure 6, measuring jigs 25 and 26 were inserted into the top and bottom of a box made of the permeable resin member I and the absorbent resin member II prepared above, respectively, and connected to jigs 23 and 24 stored inside. The box was then pulled up and down (pulling speed: 5 mm / min) to measure the strength (welding strength) at which the permeable resin member I and the absorbent resin member II separated. The equipment used was a 1t Tensilon universal testing machine (load cell 10 kN) manufactured by ORIENTEC. The results are shown in the table below.

[0138] <Welding strength retention rate> The welded pieces welded as described above were treated for 50 hours using a pressure cooker tester (ESPEC EH8-221M) under conditions of a temperature of 121°C, a relative humidity of 100%, and a pressure of 2 atm. After conditioning the welded pieces in an environment of 23°C and a relative humidity of 50%, the weld strength (after 50 hours of treatment) was measured (unit: N) using the method described above. The weld strength retention rate was then calculated (unit: %). Weld strength retention rate (%)=[weld strength after 100 hours of PCT treatment / initial weld strength]×100 The unit is shown in %.

[0139] [Table 6]

[0140] [Table 7]

[0141] [Table 8]

[0142] The data for Example C-1 and Reference Example C-1 are shown in FIG. 1, and the data for Example C-2 and Reference Example C-2 are shown in FIG. As is clear from the above results, when the resin composition of the present invention was used, the galvano laser weldability was excellent, the adhesive strength was high, and the adhesive strength retention rate was also high. In contrast, when conventional scanning type laser welding was used instead of galvano type laser welding, or when the resin composition of the present invention was not used, the weld strength or its retention rate was low.

[0143] Example A': Preparation of laser-transmittable resin composition (Example A-4) The same procedure as in Example A-1 was carried out except that the thermoplastic resin in Example A-1 was changed as shown in Table 9, to obtain pellets of a resin composition.

[0144] <Transmittance on the opposite side of the gate> A flat plate-shaped test piece measuring 60 mm x 60 mm x 1.5 mm thick was injection molded in the same manner as in Example A-1. The transmittance on the opposite side of the gate was measured in the same manner as in Example A-1. The results are shown in Table 9 together with those of Example A-1.

[0145] <Transmittance measurement> The resin composition pellets obtained in Examples A-1 and A-4 were each dried at 120°C for 7 hours, and then injection-molded into flat test pieces measuring 100 mm x 100 mm x 1.0 mm thick for transmittance measurement using an injection molding machine (NEX80-9E manufactured by Nissei Plastic Industrial Co., Ltd.) at a cylinder temperature of 260°C, a mold temperature of 60°C, and under the following injection conditions: The transmittance of the gate side, center, and opposite side of the plate was then measured using an LPKF transmittance measuring device "TMG3." Figure 7 is a schematic diagram showing the positions of the gate side, center, and opposite side of the plate, with A being the gate side and B being the opposite side. The difference in transmittance between the gate side and the opposite side was also calculated. Laser wavelength: 980nm Sensor opening diameter: 3mm Laser beam focal diameter: 1.2mm

[0146] [Table 9] [Explanation of symbols]

[0147] 21 and 22 holes 23, 24 Measuring fixture 25, 26 Measuring fixture

Claims

1. containing 0.1 to 20 parts by mass of a reactive compound relative to 100 parts by mass of a thermoplastic resin, the reactive compound comprises an elastomer containing epoxy groups; a resin composition for galvano laser welding, wherein the epoxy group-containing elastomer has a melt flow rate (MFR) of less than 10 g / 10 min as measured at 190°C under a load of 2.16 kgf in accordance with JIS K7210;

2. The resin composition according to claim 1 , wherein the thermoplastic resin comprises a polyester-based resin.

3. The resin composition according to claim 2 , wherein the polyester resin comprises a polybutylene terephthalate resin.

4. The resin composition according to claim 2 or 3, further comprising a polycarbonate resin.

5. The resin composition according to any one of claims 1 to 4, further comprising an inorganic filler.

6. The resin composition according to claim 5 , wherein the inorganic filler comprises glass fiber.

7. The resin composition according to any one of claims 1 to 6, further comprising a pigment.

8. The resin composition according to claim 7 , wherein the dye is a light-transmitting dye.

9. The resin composition according to claim 8 , wherein the light-transmitting pigment comprises a black pigment and / or a black pigment composition.

10. 10. The resin composition according to claim 8 or 9, wherein when the resin composition is injection molded into a size of 60 mm x 60 mm x 1.5 mm, the difference in light transmittance at a wavelength of 1064 nm between a position 15 mm from the gate side and a position 45 mm from the gate side is 2.1% or more.

11. The resin composition according to claim 7 , wherein the dye is a light-absorbing dye.

12. The resin composition of claim 11 , wherein the light absorbing pigment comprises carbon black.

13. A molded article formed from the resin composition according to any one of claims 1 to 12.

14. A kit having a light-transmitting resin composition and a light-absorbing resin composition, A galvano laser welding kit, wherein at least one of the light-transmitting resin composition and the light-absorbing resin composition is the resin composition according to any one of claims 1 to 12.

15. The galvano-type laser welding kit according to claim 14, wherein the light-transmitting resin composition is the resin composition according to any one of claims 1 to 10, and the light-absorbing resin composition is the resin composition according to claim 11 or 12.

16. An in-vehicle camera part formed from the resin composition according to any one of claims 1 to 12 or the kit according to claim 14 or 15.

17. An in-vehicle camera module including the in-vehicle camera component according to claim 16.

18. An ultraviolet-exposed object formed from the resin composition according to any one of claims 1 to 12 or the kit according to claim 14 or 15.

19. The ultraviolet exposure body according to claim 18, wherein the ultraviolet exposure body is an in-vehicle camera part, a housing for a millimeter wave radar installed inside and / or outside a vehicle, a housing for an electric parking brake, or a housing for a sensor case.

20. Galvano-laser welding the transmitting resin member and the absorbing resin member together; A method for producing a molded product, wherein at least one of the transmissive resin member and the absorbing resin member is formed from the resin composition according to any one of claims 1 to 12.

21. The permeable resin member is a permeable resin member formed from the resin composition according to any one of claims 1 to 10, and the absorbing resin member is an absorbing resin member formed from the resin composition according to claim 11 or 12. A method for producing a molded product according to claim 20.

Citation Information

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