Polyamide resin composition

A polyamide resin composition with specific aliphatic and aromatic resin ratios and reinforcing fibers addresses mechanical and adhesion challenges, providing excellent adhesiveness and fuel resistance for bonding to acid-modified polyolefins.

JP7786367B2Active Publication Date: 2025-12-16UBE CORPORATION
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Patent Information

Application Number
JP2022508731
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-19
Filing Date
2021-03-19
Publication Date
2025-12-16
Estimated Expiration
2041-03-19

AI Technical Summary

Technical Problem

Existing polyamide resin compositions require improvements in mechanical properties, adhesion to polyolefins with specific acid modification, resistance to calcium chloride, and reduced solubility in fuel over extended periods.

Method used

A polyamide resin composition comprising 40 to 93% aliphatic polyamide resin with 46 to 110 μmol/g amino group concentration, 2 to 10% aromatic polyamide resin, 5 to 50% reinforcing fiber, and optional additives, with acid-modified polyolefin bonded to achieve excellent adhesiveness, calcium chloride resistance, and fuel resistance.

Benefits of technology

The composition exhibits enhanced mechanical properties, adhesiveness, and fuel resistance, suitable for bonding to polyolefins with specific acid modification, while maintaining dimensional stability and weight integrity in fuel environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a polyamide resin composition which is for bonding to acid-modified polyolefin and has superior mechanical properties, adhesiveness, calcium chloride resistance, and fuel resistance. The polyamide resin composition includes 40-93 mass% of an aliphatic polyamide resin (A) having an amino group concentration of 46-110 μmol / g, 2-10 mass% of an aromatic polyamide resin (B), 5-50 mass% of a reinforced fiber (C), and 0-53 mass% of a component (D) that is not (A)-(C), where the total of (A)-(D) accounts for 100 mass%. The amount of acid modification of the acid-modified polyolefin is 5-100 μmol / g.
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Description

[Technical Field]

[0001] The present invention relates to a polyamide resin composition. [Background technology]

[0002] Polyamide resins are known as resins with excellent fuel permeation resistance (low fuel permeation), and polyamide resin compositions with fuel permeation resistance are required for various applications. Patent Document 1 discloses that a fuel component made by welding a polyamide 6 resin having a higher amino end group concentration than a carboxyl end group concentration to a polyolefin resin modified with an unsaturated carboxylic acid or a derivative thereof has excellent fuel permeation resistance and excellent fuel resistance at the welded portion. Patent Document 2 discloses that a molded article made by using a polyamide molding material containing glass fiber has thermal stability and hydrolytic stability. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2002-370551 [Patent Document 2] Special Publication No. 2010-501653 Summary of the Invention [Problem to be solved by the invention]

[0004] However, compositions containing polyamide resins such as those disclosed in Patent Document 1 are required to have further improvements in mechanical properties and resistance to calcium chloride, which is used in snow-melting agents, etc. Furthermore, the present inventors have found that compositions containing polyamide resins such as those disclosed in Patent Documents 1 and 2 have room for further improvement in adhesion when bonded to polyolefins having a specific acid modification level. Furthermore, the present inventors have found that compositions containing polyamide resins that come into contact with fuel for long periods of time have room for further improvement in terms of reducing solubility in fuel.

[0005] Therefore, an object of the present invention is to provide a polyamide resin composition that has excellent mechanical properties, adhesiveness, calcium chloride resistance, and fuel resistance, and that can be bonded to polyolefins having a specific acid-modification amount. [Means for solving the problem]

[0006] The present invention relates to the following [1] to [8]. [1] A polyamide resin composition for bonding to an acid-modified polyolefin, the polyamide resin composition comprises 40 to 93 mass% of an aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g, 2 to 10 mass% of an aromatic polyamide resin (B), 5 to 50 mass% of a reinforcing fiber (C), and 0 to 53 mass% of a component (D) other than (A) to (C), the total of (A) to (D) being 100 mass%; The amount of acid modification of the acid-modified polyolefin is 5 to 100 μmol / g. Polyamide resin composition. [2] The polyamide resin composition of [1], wherein a Type A test piece obtained in accordance with ISO294-1 is immersed in an autoclave heated to 65°C for one week in an isooctane / toluene / ethanol mixture in which the volume ratio of isooctane:toluene:ethanol is 45:45:10, and the dimensional change rate is less than 0.5% and the weight change rate is less than 3.5%. [3] The polyamide resin composition of [1], wherein a Type A test piece obtained in accordance with ISO294-1 is immersed in an autoclave heated to 65°C for three weeks in an isooctane / toluene / ethanol mixture in which the volume ratio of isooctane:toluene:ethanol is 45:45:10, and the dimensional change is less than 0.5% and the weight change is less than 5.5%. [4] The polyamide resin composition according to any one of [1] to [3], wherein the aliphatic polyamide resin (A) is an aliphatic homopolyamide resin (A-1). [5] The polyamide resin composition according to any one of [1] to [4], wherein the aromatic polyamide resin (B) is an aromatic copolyamide resin (B-1). [6] The polyamide resin composition according to any one of [1] to [5], wherein the reinforcing fiber (C) is a glass fiber. [7] A molded article comprising the polyamide resin composition according to any one of [1] to [6] and an acid-modified polyolefin, wherein at least a portion of the polyamide resin composition and at least a portion of the acid-modified polyolefin are bonded together, and the amount of acid modification of the acid-modified polyolefin is 5 to 100 μmol / g. [8] Parts that come into contact with fuel, including the molded article of [7]. The present invention also relates to the following inventions: [1a] Use of a polyamide resin composition for adhering to an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of [1] to [6], and the acid-modified polyolefin is as defined in [1]. [2a] A method of using a polyamide resin composition for bonding to an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of [1] to [6], and the acid-modified polyolefin is as defined in [1]. [3a] Use of a polyamide resin composition as an adhesive for an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of [1] to [6], and the acid-modified polyolefin is as defined in [1]. [4a] A method for using a polyamide resin composition as an adhesive for an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of [1] to [6], and the acid-modified polyolefin is as defined in [1]. [Effects of the Invention]

[0007] According to the present invention, it is possible to provide a polyamide resin composition that is excellent in mechanical properties, adhesiveness, calcium chloride resistance, and fuel resistance, and that is suitable for adhering to polyolefins having a specific acid-modification amount. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a plan view showing the shape of a test piece for evaluating adhesiveness. [Figure 2] FIG. 2 is a side view showing the shape of a test piece for evaluating adhesiveness. DETAILED DESCRIPTION OF THE INVENTION

[0009] In this specification, the content of each component in a composition means the total amount of the multiple substances present in the composition when multiple substances corresponding to each component are present in the composition, unless otherwise specified. In this specification, the use of "to" to indicate a range of values ​​means that the values ​​before and after it are included as the lower and upper limits.

[0010] [Polyamide resin composition] The polyamide resin composition is for bonding to an acid-modified polyolefin, and comprises 40 to 93 mass% of an aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g, 2 to 10 mass% of an aromatic polyamide resin (B), 5 to 50 mass% of reinforcing fiber (C), and 0 to 53 mass% of a component (D) other than (A) to (C), the total of (A) to (D) being 100 mass%, and the amount of acid modification of the acid-modified polyolefin is 5 to 100 μmol / g. The polyamide resin composition not only has excellent mechanical properties, adhesiveness and calcium chloride resistance, but also has excellent fuel permeation resistance. Hereinafter, unless otherwise specified, the term "adhesion" refers to adhesion to "acid-modified polyolefins having an acid modification amount of 5 to 100 μmol / g."

[0011] <Aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g> The polyamide resin composition contains an aliphatic polyamide resin (A) (also referred to simply as "aliphatic polyamide resin (A)" in this specification) having an amino group concentration of 46 to 110 μmol / g.

[0012] The aliphatic polyamide resin (A) is an aliphatic polyamide resin having no aromatic ring or alicyclic group. Examples of the aliphatic polyamide resin (A) include an aliphatic homopolyamide resin (A-1) and an aliphatic copolyamide resin (A-2).

[0013] <Aliphatic homopolyamide resin (A-1)> The aliphatic homopolyamide resin (A-1) refers to a polyamide resin containing one type of monomer component. Examples of the monomer component constituting the aliphatic polyamide resin include a combination of an aliphatic diamine and an aliphatic dicarboxylic acid, a lactam, or an aminocarboxylic acid. When the monomer component constituting the aliphatic polyamide resin is a combination of an aliphatic diamine and an aliphatic dicarboxylic acid, the combination of one type of aliphatic diamine and one type of aliphatic dicarboxylic acid is considered to be one type of monomer component.

[0014] The aliphatic diamine preferably has 2 to 20 carbon atoms, and more preferably 4 to 12. The aliphatic dicarboxylic acid preferably has 2 to 20 carbon atoms, and more preferably 6 to 12. The lactam preferably has 6 to 12 carbon atoms. The aminocarboxylic acid preferably has 6 to 12 carbon atoms.

[0015] Examples of aliphatic diamines include ethylenediamine, tetramethylenediamine, pentamethylenediamine, hexamethylenediamine, heptamethylenediamine, octamethylenediamine, nonamethylenediamine, decamethylenediamine, undecamethylenediamine, dodecamethylenediamine, tridecanediamine, tetradecanediamine, pentadecanediamine, hexadecanediamine, heptadecanediamine, octadecanediamine, nonadecanediamine, and eicosanediamine. Examples of aliphatic dicarboxylic acids include oxalic acid, malonic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedionic acid, dodecanedionic acid, tridecanedionic acid, tetradecanedionic acid, pentadecanedioic acid, hexadecanedioic acid, octadecanedioic acid, and eicosanedionic acid.

[0016] Examples of combinations of aliphatic diamines and aliphatic dicarboxylic acids include a combination of hexamethylenediamine and adipic acid, a combination of hexamethylenediamine and sebacic acid, and a combination of hexamethylenediamine and dodecanedioic acid, and equimolar salts of these combinations are preferably used.

[0017] Examples of lactams include ε-caprolactam, enantholactam, undecane lactam, dodecane lactam, α-pyrrolidone, and α-piperidone. Examples of aminocarboxylic acids include 6-aminocaproic acid, 7-aminoheptanoic acid, 9-aminononanoic acid, 11-aminoundecanoic acid, and 12-aminododecanoic acid. From the viewpoint of productivity, the lactam is preferably ε-caprolactam, undecane lactam, or dodecane lactam.

[0018] Specific examples of the aliphatic homopolyamide resin (A-1) include polycaprolactam (polyamide 6), polyenantholactam (polyamide 7), polyundecane lactam (polyamide 11), polylauryl lactam (polyamide 12), polyhexamethylene adipamide (polyamide 66), polytetramethylene dodecamide (polyamide 412), polypentamethylene azelamide (polyamide 59), polypentamethylene sebacamide (polyamide 510), polypentamethylene dodecamide (polyamide 512), polyhexamethylene azelamide (polyamide 69), polyhexamethylene sebacamide (polyamide 610), polyhexamethylene dodecamide (polyamide 612), polynonamethylene adipamide polyamide 96), polynonamethylene azelamide (polyamide 99), polynonamethylene sebacamide (polyamide 910), polynonamethylene dodecamide (polyamide 912), polydecamethylene adipamide (polyamide 106), polydecamethylene azelamide (polyamide 109), polydecamethylene decamide (polyamide 1010), polydecamethylene dodecamide (polyamide 1012), polydodecamethylene adipamide (polyamide 126), polydodecamethylene azelamide (polyamide 129), polydodecamethylene sebacamide (polyamide 1210), polydodecamethylene dodecamide (polyamide 1212), polydodecamethylene oxamide (polyamide 122), and the like.

[0019] <Aliphatic copolyamide resin (A-2)> The aliphatic copolyamide resin (A-2) is an aliphatic polyamide resin that contains two or more kinds of monomer components constituting the aliphatic polyamide resin and does not have an aromatic ring or an alicyclic group. Therefore, the aliphatic copolyamide resin (A-2) may be a combination of an aliphatic diamine and an aliphatic dicarboxylic acid, or an aliphatic copolyamide resin that is a copolymer of two or more kinds of monomers selected from the group consisting of lactam and aminocarboxylic acid.

[0020] Specific examples of the aliphatic copolymer polyamide resin (A-2) include caprolactam / hexamethylenediaminoadipic acid copolymer (polyamide 6 / 66), caprolactam / hexamethylenediaminoazelaic acid copolymer (polyamide 6 / 69), caprolactam / hexamethylenediaminosebacic acid copolymer (polyamide 6 / 610), caprolactam / hexamethylenediaminoundecanoic acid copolymer (polyamide 6 / 611), caprolactam / hexamethylenediaminododecanoic acid copolymer (polyamide 6 / 612), caprolactam / aminoundecanoic acid copolymer (polyamide 6 / 11), caprolactam / lauryllactam copolymer (polyamide 6 / 12), caprolactam / hexamethylenediaminoadipic acid / lauryllactam copolymer (polyamide 6 / 66 / 12), caprolactam / hexamethylenediaminoadipic acid / hexamethylenediaminosebacic acid copolymer (polyamide 6 / 66 / 610), caprolactam / hexamethylenediaminoadipic acid / hexamethylenediaminododecanedicarboxylic acid copolymer (polyamide 6 / 66 / 612), hexamethylenediaminoadipic acid / caprolactam copolymer (polyamide 66 / 6), etc.

[0021] <Preferred embodiment> From the viewpoint of productivity, the aliphatic polyamide resin (A) is preferably an aliphatic homopolyamide resin (A-1), more preferably one or more selected from the group consisting of polyamide 6, polyamide 66, polyamide 610, polyamide 612, polyamide 11 and polyamide 12, and particularly preferably polyamide 6 and / or polyamide 66.

[0022] <Characteristics> (Amino group concentration) The amino group concentration of the aliphatic polyamide resin (A) is 46 to 110 μmol / g. If the amino group concentration is less than 46 μmol / g, the adhesiveness will be poor. If the amino group concentration exceeds 110 μmol / g, the molecular weight cannot be maintained, making it difficult to produce a polyamide resin with such an amino group concentration. Furthermore, the decrease in molecular weight will impair the mechanical properties of the molded product. The amino group concentration of the aliphatic polyamide resin (A) is preferably 50 to 110 μmol / g, more preferably 60 to 100 μmol / g, and particularly preferably 80 to 99 μmol / g. The amino group concentration is determined by dissolving the resin in a mixed solvent of phenol and methanol and performing neutralization titration. The amino group concentration can be adjusted by adding an aliphatic mono- or diamine and / or an aliphatic mono- or dicarboxylic acid during the production of the aliphatic polyamide resin (A).

[0023] (relative viscosity) The relative viscosity of the aliphatic polyamide resin (A) is not particularly limited, but is preferably 1.8 to 5.0, and particularly preferably 1.8 to 4.5, as measured at 25°C for a 1% by mass aliphatic polyamide resin (A) in 96% by mass sulfuric acid in accordance with JIS K 6920. The relative viscosity is preferably measured as described above, but when the relative viscosity of each aliphatic polyamide resin (A) and its mixing ratio are known, the average value calculated by multiplying each relative viscosity by the mixing ratio can be used as the relative viscosity of the entire aliphatic polyamide resin (A).

[0024] Examples of the production apparatus for the aliphatic polyamide resin (A) include known polyamide production apparatuses, such as batch-type reaction vessels, single- or multi-vessel continuous reaction vessels, tubular continuous reaction vessels, kneading reaction extruders such as single-screw kneading extruders and twin-screw kneading extruders. Known polymerization methods, such as melt polymerization, solution polymerization, and solid-state polymerization, can be used, and polymerization can be carried out by repeating normal pressure, reduced pressure, and increased pressure operations. These polymerization methods can be used alone or in appropriate combination.

[0025] The method for producing the aliphatic polyamide resin (A) is not particularly limited as long as it produces an aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g. Specific examples of methods for producing the aliphatic polyamide resin (A) include a method comprising adding an aliphatic diamine compound during or after polymerization of the aliphatic polyamide resin and / or during extrusion kneading of the aliphatic polyamide resin. Alternatively, the aliphatic polyamide resin (A) may be produced by adding an excess of the aliphatic diamine compound when the raw materials are charged, by adding the raw material monomer components and an aliphatic diamine compound other than the raw material monomer components when the raw materials are charged, or by polymerizing an aliphatic polyamide resin of a predetermined molecular weight and then adding the aliphatic diamine compound in an amount sufficient to achieve the desired amino group concentration immediately before withdrawing the aliphatic polyamide resin from the polymerization vessel. Furthermore, the aliphatic polyamide resin (A) may be produced by melt-kneading the polymerized aliphatic polyamide resin and the diamine compound to achieve the desired amino group concentration. As the production conditions for the aliphatic polyamide resin (A) other than those mentioned above, for example, the method described in JP-A No. 2002-370551 can be mentioned.

[0026] The aliphatic polyamide resin (A) may be one type or a combination of two or more types.

[0027] <Aromatic polyamide resin (B)> The aromatic polyamide resin (B) is a polyamide resin containing an aromatic ring, and therefore, examples of the aromatic polyamide resin (B) include an aromatic copolymer polyamide resin (B-1) and an aromatic homopolyamide resin (B-2).

[0028] <Aromatic Copolyamide Resin (B-1)> The aromatic copolyamide resin (B-1) is an aromatic polyamide resin containing two or more monomer components. Examples of the aromatic copolyamide resin (B-1) include aromatic polyamide resins that are copolymers of monomers selected from the group consisting of a combination of an aliphatic and / or alicyclic diamine and an aromatic dicarboxylic acid, a combination of an aromatic diamine and an aliphatic and / or alicyclic dicarboxylic acid, and a combination of an aromatic diamine and an aromatic dicarboxylic acid. When the monomer components constituting the aromatic polyamide resin are a combination of a diamine and a dicarboxylic acid, the combination of one diamine and one dicarboxylic acid is considered to be one monomer component. Examples of the aliphatic diamine and the aliphatic dicarboxylic acid include those mentioned above.

[0029] Examples of aromatic dicarboxylic acids include terephthalic acid, isophthalic acid, 2,6-naphthalenedicarboxylic acid, 2,7-naphthalenedicarboxylic acid, 1,4-naphthalenedicarboxylic acid, 1,4-phenylenedioxydiacetic acid, 1,3-phenylenedioxydiacetic acid, dibenzoic acid, 4,4'-oxydibenzoic acid, diphenylmethane-4,4'-dicarboxylic acid, diphenylsulfone-4,4'-dicarboxylic acid, and 4,4'-biphenyldicarboxylic acid. Examples of alicyclic dicarboxylic acids include 1,3-cyclopentanedicarboxylic acid and 1,4-cyclohexanedicarboxylic acid.

[0030] Examples of aromatic diamines include p-phenylenediamine, m-phenylenediamine, p-xylylenediamine, m-xylylenediamine, 4,4'-diaminodiphenylmethane, 4,4'-diaminodiphenylsulfone, and 4,4'-diaminodiphenylether. Examples of alicyclic diamines include cyclohexanediamine, methylcyclohexanediamine, and isophoronediamine.

[0031] Specific examples of the aromatic copolymer polyamide resin (B-1) include poly(tetramethylene terephthalamide / hexamethylene terephthalamide) copolymer (polyamide 4T / 6T), poly(tetramethylene terephthalamide / tetramethylene adipamide) copolymer (polyamide 4T / 46), poly(hexamethylene terephthalamide / hexamethylene isophthalamide) copolymer (polyamide 6T / 6I), poly(hexamethylene terephthalamide / 2-methylpentamethylene terephthalamide) copolymer (polyamide 6T / M5T), poly(hexamethylene terephthalamide / caproamide) copolymer (polyamide 6T / 6), poly(hexamethylene terephthalamide / hexamethylene adipamide) copolymer (polyamide 6T / M5T), and the like. polyamide 6T / 66), poly(hexamethylene terephthalamide / hexamethylene sebacamide) copolymer (polyamide 6T / 610), poly(hexamethylene terephthalamide / hexamethylene dodecamide) copolymer (polyamide 6T / 612), poly(hexamethylene terephthalamide / hexamethylene isophthalamide / hexamethylene adipamide) copolymer (polyamide 6T / 6I / 66), poly(hexamethylene terephthalamide / hexamethylene isophthalamide / hexamethylene sebacamide) copolymer (polyamide 6T / 6I / 610), poly(hexamethylene terephthalamide / hexamethylene isophthalamide / hexamethylene dodecamide) copolymer (polyamide 6T / 6I / 612), and the like.

[0032] Specific examples of the aromatic copolymer polyamide resin (B-1) include poly(nonamethylene terephthalamide / 2-methyloctamethylene terephthalamide) copolymer (polyamide 9T / M8T), poly(nonamethylene terephthalamide / 2-methyloctamethylene terephthalamide / undecanamide) copolymer (polyamide 9T / M8T / 11), poly(nonamethylene terephthalamide / 2-methyloctamethylene terephthalamide / dodecanamide) copolymer (polyamide 9T / M8T / 12), poly(nonamethylene terephthalamide / 2-methyloctamethylene terephthalamide / undecanamide) copolymer (polyamide 9T / M8T / 13), Poly(nonamethylene naphthalamide / nonamethylene isophthalamide / 2-methyloctamethylene isophthalamide) copolymer (Polyamide 9T / M8T / 9I / M8I), Poly(nonamethylene naphthalamide / 2-methyloctamethylene naphthalamide) copolymer (Polyamide 9N / M8N), Poly(nonamethylene naphthalamide / 2-methyloctamethylene naphthalamide / undecanamide) copolymer (Polyamide 9N / M8N / 11), Poly(nonamethylene naphthalamide / 2-methyloctamethylene naphthalamide / dodecanamide) copolymer (Polyamide 9N / M8 N / 12), poly(decamethylene terephthalamide / undecaneamide) copolymer (polyamide 10T / 11), poly(decamethylene terephthalamide / dodecanamide) copolymer (polyamide 10T / 12), poly(decamethylene terephthalamide / decamethylene sebacamide) copolymer (polyamide 10T / 1010), poly(decamethylene terephthalamide / decamethylene dodecamide) copolymer (polyamide 10T / 1012), poly(decamethylene terephthalamide / decamethylene isophthalamide / undecaneamide) copolymer (polyamide 10T / 10I / 11), poly(decamethylene terephthalamide / decamethylene isophthalamide / dodecanamide) copolymer (polyamide 10T / 10I / 12), poly(decamethylene terephthalamide / decamethylene isophthalamide / decamethylene sebacamide) copolymer (polyamide 10T / 10I / 1010), poly(decamethylene terephthalamide / decamethylene isophthalamide / decamethylene dodecamide) copolymer (polyamide 10T / 10I / 1012), poly(decamethylene naphthalamide / undecaneamide) copolymer (polyamide 10N / 11),Poly(decamethylene naphthalamide / dodecanamide) copolymer (polyamide 10N / 12), poly(decamethylene naphthalamide / decamethylene sebacamide) copolymer (polyamide 10N / 1010), poly(decamethylene naphthalamide / decamethylene dodecamide) copolymer (polyamide 10N / 1012), poly(decamethylene terephthalamide / decamethylene naphthalamide / undecaneamide) copolymer (polyamide 10T / 10N / 11), Examples include poly(decamethylene terephthalamide / decamethylene naphthalamide / dodecanamide) copolymer (polyamide 10T / 10N / 12), poly(decamethylene terephthalamide / decamethylene naphthalamide / decamethylene sebacamide) copolymer (polyamide 10T / 10N / 1010), and poly(decamethylene terephthalamide / decamethylene naphthalamide / decamethylene dodecamide) copolymer (polyamide 10T / 10N / 1012).

[0033] Specific examples of the aromatic copolymer polyamide resin (B-1) include poly(dodecamethylene terephthalamide / undecanamide) copolymer (polyamide 12T / 11), poly(dodecamethylene terephthalamide / dodecanamide) copolymer (polyamide 12T / 12), poly(dodecamethylene terephthalamide / dodecamethylene sebacamide) copolymer (polyamide 12T / 1210), poly(dodecamethylene terephthalamide / dodecamethylene dodecamide) copolymer (polyamide 12T / 1212), poly(dodecamethylene terephthalamide / dodecamethylene sebacamide) copolymer (polyamide 12T / 1213), Poly(dodecamethylene terephthalamide / dodecamethylene isophthalamide / undecanamide) copolymer (Polyamide 12T / 12I / 11), Poly(dodecamethylene terephthalamide / dodecamethylene isophthalamide / dodecanamide) copolymer (Polyamide 12T / 12I / 12), Poly(dodecamethylene terephthalamide / dodecamethylene isophthalamide / dodecamethylene sebacamide) copolymer (Polyamide 12T / 12I / 1210), Poly(dodecamethylene terephthalamide / dodecamethylene isophthalamide / dodecamethylene dodecamide) copolymer (Polyamide Polyamide 12T / 12I / 1212), poly(dodecamethylene naphthalamide / undecanamide) copolymer (polyamide 12N / 11), poly(dodecamethylene naphthalamide / dodecanamide) copolymer (polyamide 12N / 12), poly(dodecamethylene naphthalamide / dodecamethylene sebacamide) copolymer (polyamide 12N / 1210), poly(dodecamethylene naphthalamide / dodecamethylene dodecamide) copolymer (polyamide 12N / 1212), poly(dodecamethylene terephthalamide / dodecamethylene naphthalamide / undecaneamide) copolymer (polyamide 12N / 1212), Examples of such copolymers include poly(dodecanamide / dodecanamide) copolymer (polyamide 12T / 12N / 11), poly(dodecanethylene terephthalamide / dodecanethylene naphthalamide / dodecanamide) copolymer (polyamide 12T / 12N / 12), poly(dodecanethylene terephthalamide / dodecanethylene naphthalamide / dodecanethylene sebacamide) copolymer (polyamide 12T / 12N / 1210), and poly(dodecanethylene terephthalamide / dodecanethylene naphthalamide / dodecanethylene dodecamide) copolymer (polyamide 12T / 12N / 1212).

[0034] <Aromatic homopolyamide resin (B-2)> The aromatic homopolyamide resin (B-2) refers to a polyamide resin in which the monomer component constituting the aliphatic polyamide resin is one type. Thus, examples of the aromatic homopolyamide resin (B-2) include a combination of an aliphatic and / or alicyclic diamine with an aromatic dicarboxylic acid, a combination of an aromatic diamine with an aliphatic and / or alicyclic dicarboxylic acid, and a combination of an aromatic diamine with an aromatic dicarboxylic acid. Here, the aliphatic diamine, alicyclic diamine, aromatic diamine, aliphatic dicarboxylic acid, alicyclic dicarboxylic acid, and aromatic dicarboxylic acid are those described above.

[0035] Specific examples of the aromatic homopolyamide resin (B-2) include polynonamethylene terephthalamide (polyamide 9T), polynonamethylene naphthalamide (polyamide 9N), polydecamethylene terephthalamide (polyamide 10T), polydecamethylene naphthalamide (polyamide 10N), polydodecamethylene terephthalamide (polyamide 12T), polydodecamethylene naphthalamide (polyamide 12N), polymetaxylylene succinamide (polyamide MXD4), polymetaxylylene glutamide (polyamide MXD5), ​​polymetaxylylene adipamide (polyamide MXD6), polymetaxylylene suberamide (polyamide MXD8), polymetaxylylene azelamide (polyamide MXD9), polymetaxylylene sebacamide (polyamide MXD10), polymetaxylylene dodecamide (polyamide MXD12), polyparaxylylene succinamide (polyamide PXD4), polyparaxylylene glutamide (polyamide PXD5), ​​polyparaxylylene adipamide (polyamide PXD6), polyparaxylylene suberamide (polyamide PXD8), polyparaxylylene azelamide (polyamide PXD9), polyparaxylylene sebacamide (polyamide PXD10), polyparaxylylene dodecamide (polyamide PXD12), and the like.

[0036] <Preferred embodiment> The aromatic polyamide resin (B) is preferably an aromatic copolymer polyamide resin (B-1) comprising 40 to 95 mol% of units derived from terephthalic acid and 5 to 60 mol% of units derived from isophthalic acid, and an aliphatic diamine, or an aromatic homopolyamide resin (B-2) comprising an aliphatic dicarboxylic acid and m- or p-xylenediamine. More preferably, the aromatic copolymer polyamide resin (B-1) comprises 60 to 99 wt% of units derived from a monomer component comprising an aliphatic diamine, isophthalic acid, and terephthalic acid, and 1 to 40 wt% of units derived from an aliphatic polyamide component, or an aromatic homopolyamide resin (B-2) comprising an aliphatic dicarboxylic acid and m-xylenediamine. Here, the monomer component comprising an aliphatic diamine, isophthalic acid, and terephthalic acid is preferably an equimolar salt of hexamethylenediamine and terephthalic acid, or an equimolar salt of hexamethylenediamine and isophthalic acid. From the viewpoint of productivity, the aromatic polyamide resin (B) is more preferably one or more selected from the group consisting of polyamide 6T / 6I, polyamide MXD6 and polyamide PXD6, and particularly preferably polyamide 6T / 6I.

[0037] <Characteristics> <<Amino group concentration>> The amino group concentration of the aromatic polyamide resin (B) is not particularly limited, but from the viewpoint of productivity, it is preferably 20 to 110 μmol / g, more preferably 30 to 100 μmol / g, and particularly preferably 31 to 49 μmol / g. The amino group concentration can be adjusted by adding mono- or diamines and / or mono- or dicarboxylic acids in the production of the aromatic polyamide resin (B).

[0038] <<Relative viscosity>> The relative viscosity of the aromatic polyamide resin (B) is not particularly limited, but is preferably 1.8 to 5.0, and particularly preferably 1.8 to 4.5, as measured at 25°C for the aromatic polyamide resin (B) at a concentration of 1% by weight in 96% sulfuric acid in accordance with JIS K 6920. When two or more aromatic polyamide resins (B) are present, the relative viscosity can be as described for the aliphatic polyamide resin (A).

[0039] The production apparatus and polymerization method for the aromatic polyamide resin (B) may be the same as those described above for the aliphatic polyamide resin (A).

[0040] The aromatic polyamide resin (B) may be one type or a combination of two or more types.

[0041] <Reinforced Fiber (C)> Examples of the reinforcing fibers (C) include those known as reinforcing fibers for polyamide resins. Examples of the reinforcing fiber (C) include glass fiber, cellulose fiber, carbon fiber, alumina fiber, boron nitride fiber, aramid fiber, and polyparaphenylenebenzobisoxazole fiber, and are appropriately selected depending on the desired reinforcing purpose.

[0042] The shape of the reinforcing fiber (C) may be chopped strand, roving, milled fiber, etc. From the viewpoint of production, it is preferable to cut several thousand fibers in a bundle to a predetermined length to form chopped strand. The cross-sectional shape of the reinforcing fibers (C) may be circular or irregular cross-sectional shapes such as flat or cocoon-shaped.

[0043] When the cross-sectional shape of the reinforcing fiber (C) is circular, the diameter of the reinforcing fiber (C) is preferably 0.5 to 100 μm, more preferably 1.5 to 80 μm, and particularly preferably 5 to 50 μm, from the viewpoint of mechanical properties. When the cross-sectional shape of the reinforcing fiber (C) is irregular, the major axis of the reinforcing fiber (C) is preferably 0.5 to 100 μm, more preferably 1.5 to 80 μm, and particularly preferably 5 to 50 μm, from the viewpoint of mechanical properties. When the cross-sectional shape of the reinforcing fiber (C) is irregular, the minor axis of the reinforcing fiber (C) is preferably 0.25 to 50 μm, more preferably 0.5 to 40 μm, and particularly preferably 2.5 to 25 μm. The average remaining fiber length of the reinforcing fibers (C) in the polyamide resin composition is preferably 50 to 2000 μm, more preferably 100 to 1500 μm, and particularly preferably 150 to 1000 μm. The diameter, minor axis, and major axis of the reinforcing fibers (C) can be measured using a scanning electron microscope (SEM). The average remaining fiber length is determined by measuring the fiber lengths of approximately 1000 remaining fibers and averaging them.

[0044] The reinforcing fiber (C) may be a commercially available product known to those skilled in the art as a reinforcing fiber for polyamide resins, such as glass fiber chopped strands manufactured by Nippon Electric Glass Co., Ltd., glass fiber chopped strands manufactured by Nitto Boseki Co., Ltd., and carbon fiber Pyrofil manufactured by Mitsubishi Chemical Corporation.

[0045] The reinforcing fiber (C) is preferably at least one selected from the group consisting of glass fiber, carbon fiber and cellulose fiber, and particularly preferably glass fiber, in that it can efficiently impart mechanical properties and fuel resistance to the polyamide resin composition. The reinforcing fibers (C) may be one type or a combination of two or more types.

[0046] <Components (D) other than (A) to (C)> The polyamide resin composition may contain a component (D) other than (A) to (C) to the extent that the effects of the present invention are not impaired. Examples of such component (D) include polyamide resins other than the aliphatic polyamide resin (A) and the aromatic polyamide resin (B); and functionality-imparting agents such as carboxylates, plasticizers, heat-resistant materials, foaming agents, weathering agents, organic crystal nucleating agents, organic antioxidants, crystallization accelerators, mold release agents, lubricants, antistatic agents, flame retardants, flame retardant assistants, pigments, and dyes. It is preferred that the polyamide resin composition does not contain any polyamide resin other than the aliphatic polyamide resin (A) and the aromatic polyamide resin (B).

[0047] Component (D) may be one or a combination of two or more of each of these. For example, component (D) may be a combination of one or more pigments and one or more organic antioxidants.

[0048] Pigments are added to adjust the color of the polyamide resin composition. Examples of the pigment include inorganic pigments and organic pigments, such as titanium oxide, zinc white, carbon black, molybdenum red, Prussian blue, cobalt blue, clay, kaolin, barium sulfate, barium carbonate, calcium carbonate, talc, silica, alumina white, azo pigments, phthalocyanine pigments, quinacridone pigments, isoindoline pigments, threne pigments, and perylene pigments.

[0049] The dye is added to adjust the color of the polyamide resin composition. The dye is not particularly limited as long as it is a component that is normally used in polyamide resin compositions, and examples thereof include nigrosine.

[0050] Examples of carboxylates include alkaline earth metal salts or alkali metal salts of fatty acids having 6 to 40 carbon atoms.

[0051] The fatty acids having 6 to 40 carbon atoms are saturated or unsaturated fatty acids, and examples thereof include caprylic acid, capric acid, lauric acid, myristic acid, palmitic acid, margaric acid, stearic acid, arachidic acid, behenic acid, n-tridecylenic acid, n-pentadecylenic acid, decenoic acid, oleic acid, erucic acid, linoleic acid, linolenic acid, arachidonic acid, and eicosapentanoic acid. Examples of alkaline earth metals include magnesium, calcium, and barium. Examples of alkali metals include lithium, sodium, and potassium.

[0052] The carboxylate is preferably an alkaline earth metal salt of a saturated fatty acid having 8 to 40 carbon atoms, and calcium behenate is particularly preferred.

[0053] Examples of functionality-imparting agents other than those mentioned above include components described in JP-A-2002-370551.

[0054] ≪Content≫ The content of each component relative to the total mass of the polyamide resin composition is as follows: In the polyamide resin composition, the total of (A) to (D) is 100 mass %. The content of the aliphatic polyamide resin (A) is 40 to 93 mass%. From the viewpoints of mechanical properties and moldability, the content of the aliphatic polyamide resin (A) relative to the total mass of the polyamide resin composition is preferably 55 to 84 mass%, and particularly preferably 60.01 to 82.99 mass%. Furthermore, from the viewpoints of mechanical properties and moldability, the content of the aliphatic homopolyamide resin (A-1) relative to the total mass of the aliphatic polyamide resin (A) is preferably 60 to 100 mass%, more preferably 90 to 100 mass%, and particularly preferably 95 to 100 mass%.

[0055] The content of the aromatic polyamide resin (B) is 2 to 10% by mass. From the viewpoints of mechanical properties and moldability, the content of the aromatic polyamide resin (B) relative to the total mass of the polyamide resin composition is preferably 2.50 to 8.50% by mass, and particularly preferably 3.00 to 7.00% by mass. From the viewpoints of mechanical properties and moldability, the content of the aromatic copolyamide resin (B-1) relative to the total mass of the aromatic polyamide resin (B) is preferably 60 to 100% by mass, more preferably 90 to 100% by mass, and particularly preferably 95 to 100% by mass.

[0056] The content of the reinforcing fibers (C) is 5 to 50% by mass. From the viewpoints of mechanical properties and molding processability, the content of the reinforcing fibers (C) is preferably 6 to 43% by mass, and particularly preferably 9.50 to 31.00% by mass.

[0057] The content of component (D) other than components (A) to (C) is 0 to 53% by mass. From the viewpoints of mechanical properties and moldability, the content of component (D) other than components (A) to (C) is preferably 0 to 30% by mass, and particularly preferably 0 to 0.20% by mass.

[0058] (Preferred embodiment) The polyamide resin composition preferably shows a dimensional change of less than 0.5% and a weight change of less than 3.5% after immersion for one week in an isooctane / toluene / ethanol mixed solution having an isooctane:toluene:ethanol volume ratio of 45:45:10 in an autoclave heated to 65°C, using a Type A test piece obtained in accordance with ISO294-1.Furthermore, it is preferable that the dimensional change of the test piece is less than 0.5% and a weight change of less than 5.5% (preferably less than 3.5%) after immersion for three weeks in the isooctane / toluene / ethanol mixed solution. It is particularly preferable that after immersion in the isooctane / toluene / ethanol mixed solution for one week, the dimensional change rate is less than 0.5% and the weight change rate is less than 3.5%, and that after immersion in the isooctane / toluene / ethanol mixed solution for three weeks, the dimensional change rate is less than 0.5% and the weight change rate is less than 5.5%. Here, the dimensional change rate refers to the dimensional change rate in the length direction of the test piece. Furthermore, examples of molding resin temperatures and mold temperatures for producing Type A test pieces include the molding resin temperatures and mold temperatures in the injection welding method described below. It is particularly preferable that the molding resin temperature for producing Type A test pieces is 290°C and the mold temperature is 80°C.

[0059] <Method for producing polyamide resin composition> The method for producing the polyamide resin composition is not particularly limited, and the following methods can be applied, for example. The aliphatic polyamide resin (A), aromatic polyamide resin (B), reinforcing fiber (C), and component (D) other than (A) to (C) can be mixed using a commonly known melt-kneading machine such as a single-screw or twin-screw extruder, a Banbury mixer, a kneader, or a mixing roll. Specific mixing methods that are not limited include a method in which all raw materials are blended and then melt-kneaded using a twin-screw extruder; a method in which some raw materials are blended and then melt-kneaded, and then the remaining raw materials are blended and melt-kneaded; or a method in which some raw materials are blended and then the remaining raw materials are mixed using a side feeder during melt-kneading.

[0060] <Acid-modified polyolefin with an acid modification amount of 5 to 100 μmol / g> An acid-modified polyolefin having an acid modification amount of 5 to 100 μmol / g (also simply referred to as "acid-modified polyolefin" in this specification) has a predetermined acid modification amount so that the polyamide resin composition exhibits adhesiveness. In the molecule of such a polyolefin, functional groups having affinity for the aliphatic polyamide resin (A) and the aromatic polyamide resin (B) are present in an amount such that the polyamide resin composition exhibits adhesiveness.

[0061] The acid-modified amount of the acid-modified polyolefin is 5 to 100 μmol / g, preferably 6 to 100 μmol / g, and particularly preferably 7 to 40 μmol / g. If the acid-modified amount of the acid-modified polyolefin is less than 5 μmol / g, the adhesiveness will be poor. If the acid-modified amount of the acid-modified polyolefin is more than 100 μmol / g, the acid-modified polyolefin and the polyamide resin will react excessively at the adhesive interface, which may impair the inherent mechanical properties of the polyolefin. The acid-modified amount of the acid-modified polyolefin can be measured by titration. Specifically, the acid-modified amount of the acid-modified polyolefin can be measured by the method described in the Examples.

[0062] Examples of the polyolefin in the acid-modified polyolefin include (ethylene and / or propylene) / α-olefin copolymers, (ethylene and / or propylene) / (α,β-unsaturated carboxylic acid and / or α,β-unsaturated carboxylic acid ester) copolymers, and the like, with ethylene / α-olefin copolymers being preferred.

[0063] The (ethylene and / or propylene) / α-olefin copolymer is a polymer obtained by copolymerizing ethylene and / or propylene with an α-olefin having 3 or more carbon atoms. Examples of the α-olefins having 3 or more carbon atoms include propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-nonadecene, 1-eicosene, 3-methyl-1-butene, 3-methyl-1-pentene, 3-ethyl-1-pentene, 4-methyl-1-pentene, 4-methyl-1-hexene, 4,4-dimethyl-1-hexene, 4,4-dimethyl-1-pentene, 4-ethyl-1-hexene, 3-ethyl-1-hexene, 9-methyl-1-decene, 11-methyl-1-dodecene, and 12-ethyl-1-tetradecene.

[0064] The copolymer may also be one obtained by copolymerizing a polyene such as a non-conjugated diene. Examples of the non-conjugated diene include 1,4-pentadiene, 1,4-hexadiene, 1,5-hexadiene, 1,4-octadiene, 1,5-octadiene, 1,6-octadiene, 1,7-octadiene, 2-methyl-1,5-hexadiene, 6-methyl-1,5-heptadiene, 7-methyl-1,6-octadiene, 4-ethylidene-8-methyl-1,7-nonadiene, 4,8-dimethyl-1,4,8-decatriene (DMDT), and dicyclopentadiene. Examples of suitable olefins include ethylenediene, ethylenediamine, ethylenediamine-2-ol, ethylenediamine-3-ol, ethylenediamine-5-ol, ethylenediamine-2-ol, ethylenediamine-3-ol, ethylenediamine-4-ol, ethylenediamine-5-ol, ethylenediamine-5-ol, ethylenediamine-6-ol, ethylenediamine-7-ol, ethylenediamine-8-ol, ethylenediamine-9-ol, ethylenediamine-10-ol, ethylenediamine-11-ol, ethylenediamine-12-ol, ethylenediamine-13-ol, ethylenediamine-14-ol, ethylenediamine-15-ol, ethylenediamine-15-ol, ethylenediamine-16-ol, ethylenediamine-17-ol, ethylenediamine-18-ol, ethylenediamine-19 ...

[0065] The (ethylene and / or propylene) / (α,β-unsaturated carboxylic acid and / or α,β-unsaturated carboxylic acid ester) copolymer is a polymer obtained by copolymerizing ethylene and / or propylene with an α,β-unsaturated carboxylic acid and / or α,β-unsaturated carboxylic acid ester monomer. Examples of the α,β-unsaturated carboxylic acid monomer include acrylic acid and methacrylic acid. Examples of the α,β-unsaturated carboxylic acid ester monomer include methyl ester, ethyl ester, propyl ester, butyl ester, pentyl ester, hexyl ester, heptyl ester, octyl ester, nonyl ester, and decyl ester of an α,β-unsaturated carboxylic acid.

[0066] Compounds for acid-modifying polyolefins include carboxylic acids and derivatives thereof. Examples of carboxylic acids and derivatives thereof include acrylic acid, methacrylic acid, maleic acid, fumaric acid, itaconic acid, crotonic acid, mesaconic acid, citraconic acid, glutaconic acid, cis-4-cyclohexene-1,2-dicarboxylic acid, endo-bicyclo-[2.2.1]-5-heptene-2,3-dicarboxylic acid, and metal salts of these carboxylic acids, monomethyl maleate, monomethyl itaconate, methyl acrylate, ethyl acrylate, butyl acrylate, 2-ethylhexyl acrylate, hydroxyethyl acrylate, methyl methacrylate, 2-methyl methacrylate, ... -ethylhexyl, hydroxyethyl methacrylate, aminoethyl methacrylate, dimethyl maleate, dimethyl itaconate, maleic anhydride, itaconic anhydride, citraconic anhydride, endo-bicyclo-[2.2.1]-5-heptene-2,3-dicarboxylic anhydride, maleimide, N-ethylmaleimide, N-butylmaleimide, N-phenylmaleimide, acrylamide, methacrylamide, glycidyl acrylate, glycidyl methacrylate, glycidyl ethacrylate, glycidyl itaconate, and glycidyl citraconate.

[0067] The acid-modified polyolefin is preferably an (ethylene and / or propylene) / α-olefin copolymer and an (ethylene and / or propylene) / (α,β-unsaturated carboxylic acid and / or α,β-unsaturated carboxylic acid ester) copolymer acid-modified with an unsaturated carboxylic acid or its acid anhydride.

[0068] [Uses of polyamide resin composition] The polyamide resin composition is not particularly limited and can be used to produce molded articles using known methods. A molded article using the polyamide resin composition is a molded article comprising the polyamide resin composition and an acid-modified polyolefin, in which at least a portion of the polyamide resin composition and at least a portion of the acid-modified polyolefin are bonded together. That is, the present invention also relates to the use of the polyamide resin composition for bonding to an acid-modified polyolefin. The present invention also relates to a method for using the polyamide resin composition for bonding to an acid-modified polyolefin. The present invention also relates to the use of the polyamide resin composition as an adhesive for an acid-modified polyolefin. The present invention also relates to a method for using the polyamide resin composition as an adhesive for an acid-modified polyolefin.

[0069] A molded article using a polyamide resin composition can be produced by a method including a step of bonding a polyamide resin composition and an acid-modified polyolefin. The method for bonding a polyamide resin composition and an acid-modified polyolefin is not particularly limited and can be any method. A molded article using a polyamide resin composition is preferably produced by a method including a step of welding a polyamide resin composition and an acid-modified polyolefin. Examples of methods for welding a polyamide resin composition and an acid-modified polyolefin include a step of molding an acid-modified polyolefin and a step of injection-molding the polyamide resin composition and welding the two molded articles. Therefore, the present invention also relates to a method for producing a molded article, which includes a step of bonding a polyamide resin composition and an acid-modified polyolefin. A preferred embodiment of the method for producing a molded article includes a step of welding a polyamide resin composition and an acid-modified polyolefin.

[0070] Methods for welding a molded article of a polyamide resin composition and a molded article of an acid-modified polyolefin include vibration welding, injection welding, ultrasonic welding, spin welding, hot plate welding, hot wire welding, laser welding, and high-frequency induction welding, and are appropriately selected depending on the shape and / or intended use of the desired molded article. Examples of injection welding methods include die slide injection (DSI), die rotary injection (DRI), and two-color molding.

[0071] The molding resin temperature in the injection welding method is preferably 250°C to 320°C, and particularly preferably 270°C to 300°C. The mold temperature in the injection welding method is preferably 30°C to 120°C, and particularly preferably 50°C to 100°C.

[0072] The conditions for the step of molding the acid-modified polyolefin are not particularly limited, and any method can be adopted. The molding resin temperature of the acid-modified polyolefin is preferably 190°C to 250°C, and particularly preferably 180°C to 220°C. The mold temperature when molding the acid-modified polyolefin is preferably 10°C to 90°C, and particularly preferably 30°C to 60°C.

[0073] Therefore, the method for producing a molded article using a polyamide resin composition is preferably a method for producing a two-color molded article, including the following steps 1-a and 2-a. Step 1-a: A step of obtaining part 1 by injection molding an acid-modified polyolefin having an acid modification amount of 5 to 100 μmol / g at a cylinder temperature of 190°C to 250°C (preferably 180 to 220°C) and a mold temperature of 10°C to 90°C (preferably 30 to 60°C). Step 2-a: A step in which the part 1 obtained in step 1-a is heated to 90 to 110°C (preferably 100°C) and injected into a mold, and then the polyamide resin composition is injection molded at a molding resin temperature of 250 to 320°C (preferably 270 to 300°C) and a mold temperature of 30 to 120°C (preferably 50 to 100°C) to obtain a two-color molded product.

[0074] The polyamide resin composition and the acid-modified polyolefin, including the preferred ones, are as described above.

[0075] The shape of a molded product obtained using the polyamide resin composition is arbitrary, and examples thereof include a film, a sheet, a hollow shape (a tube, a hose, a bottle, etc.), and is appropriately selected depending on the purpose of the molded product.

[0076] Molded articles obtained using the polyamide resin composition can be used, either as the molded article itself or as parts containing the molded article, for various applications such as automobile parts, railway parts, machine parts, industrial materials, industrial materials, electrical parts, electronic parts, medical parts, food packaging parts, household goods, office supplies, building materials, furniture parts, etc. In parts used for various applications, members other than the molded article can be appropriately selected from known members depending on the application.

[0077] Furthermore, since the polyamide resin composition has excellent fuel resistance, a molded article obtained using the polyamide resin composition is preferably used as a part that comes into contact with fuel, and includes the molded article. Here, the fuel is not particularly limited, but is preferably an automobile fuel. Therefore, the part that comes into contact with fuel is preferably an automobile part.

[0078] Specific examples of automotive parts include fuel parts (fuel tanks such as gasoline tanks and oil tanks; fuel transport parts such as fuel delivery pipes, fuel rails, fuel tubes, and fuel hoses; parts attached to parts that come into contact with fuel, such as valves attached to fuel tanks, fuel hose joints, canister connection nozzles, and separators); intake system or exhaust system parts (air ducts, intake manifolds, air cleaners, air cleaner boxes, resonators, throttle bodies, pneumatic hoses, and the like); automotive exterior panels and exterior structural members (air spoilers, fenders, bumpers, suspension boots, and the like); and other automotive parts (hose joints, hydraulic tubes, hydraulic hoses, seat covers, and the like). Parts that come into contact with fuel are preferably parts attached to fuel tanks, such as valves, fuel hose joints, canister connection nozzles, and separators. [Example]

[0079] The present invention will be described in more detail below with reference to examples and comparative examples, but the present invention is not limited to these examples. The content of each component in the tables is in mass%. The components used in the examples and comparative examples and the methods for evaluating the physical properties of the molded articles are shown below.

[0080] [Ingredients used] 1. Aliphatic polyamide resin (A) (1) PA6(1): Polyamide 6 (manufactured by Ube Industries, Ltd.: amino group concentration = 91 μmol / g) 2. Aromatic polyamide resin (B) (1) PA6T / 6I: Polyamide 6T / 6I copolymer (Ms Chemie Japan Co., Ltd., Grivory® G21: amino group concentration = 38 μmol / g) 3. Reinforced fiber (C) (1) Glass fiber (1) (manufactured by Nippon Electric Glass Co., Ltd., ECS 03T-249H, cross-sectional shape: circular, average fiber diameter 10.5 μm) (2) Glass fiber (2) (manufactured by Nippon Electric Glass Co., Ltd., ECS 03920EW, cross-sectional shape: flat, minor axis 7 μm x major axis 28 μm) (3) Glass fiber (3) (manufactured by Nippon Electric Glass Co., Ltd., ECS 03T-289DE, cross-sectional shape: circular, average fiber diameter 6 μm) 4. Other ingredients (D) (1) PA6(2): Polyamide 6 (manufactured by Ube Industries, Ltd.: amino group concentration = 45 μmol / g) (2) Calcium behenate (manufactured by Nitto Kasei Kogyo Co., Ltd., CS-7) (3) Carbon black (HIBLACK 890B, manufactured by Orion Engineered Carbons Co., Ltd.) (4) Nigrosine (Orient Chemical Industries, Ltd., SPIRIT BLACK SZ) 5. Acid-modified polyolefin (1) Maleic anhydride modified polyethylene (1) Acid denaturation amount: 16 μmol / g (titration method) MFR: 0.6g / 10min (190℃, 2,160g) Density: 0.93 Melting point: 128°C (DSC method) (2) Maleic anhydride modified polyethylene (2) Acid denaturation amount: 38 μmol / g (titration method) MFR: 0.6g / 10min (190℃, 2,160g) Density: 0.94 Melting point: 128°C (DSC method) (3) Maleic anhydride modified polyethylene (3) Acid denaturation amount: 15 μmol / g (titration method) MFR: 0.2g / 10min (190℃, 2,160g) Density: 0.94 Melting point: 127°C (DSC method) (4) Maleic anhydride modified polyethylene (4) Acid denaturation amount: 4 μmol / g (titration method) MFR: 0.3g / 10min (190℃, 2,160g) Density: 0.94 Melting point: 127°C (DSC method) (5) Maleic anhydride modified polyethylene (5) Acid denaturation amount: 7 μmol / g (titration method) MFR: 3.2g / 10min (190℃, 2,160g) Density: 0.92 Melting point: 118°C (DSC method) (6) Maleic anhydride modified polyethylene (6) Acid denaturation amount: 0 μmol / g (titration method) MFR: 0.3g / 10min (190℃, 2,160g) Density: 0.95 Melting point: 134°C (DSC method)

[0081] [Preparation of polyamide resin composition pellets] The components listed in Table 1 were melt-kneaded in a twin-screw kneader ZSK32McPlus (manufactured by Coperion) with an L / D of 48 and a screw diameter of 32 mm at a cylinder temperature of 250°C, a screw rotation speed of 200 rpm, and a discharge rate of 50 kg / h to prepare pellets of a polyamide resin composition. The resulting pellets were used to evaluate the "mechanical properties" described below.

[0082] [Mechanical properties] (1) Tensile yield stress, nominal tensile strain at break, and tensile modulus Using the pellets, Type A test pieces were prepared in accordance with ISO294-1, and tensile tests were carried out in an atmosphere of 23°C in accordance with ISO527-1,2. (2) Flexural strength and flexural modulus Using the pellets, Type B test pieces were prepared in accordance with ISO294-1, and bending tests were carried out in an atmosphere of 23°C in accordance with ISO178. (3) Charpy impact strength Using the pellets, Type B test specimens were prepared in accordance with ISO 294-1, and V-notched in accordance with ISO 179 / 1eA in post-processing. A Charpy impact test was carried out with a hammer capacity of 1 J in an atmosphere at 23°C. (4) Deflection temperature under load Using the pellets, a Type B test piece was prepared in accordance with ISO294-1, and the temperature at which it deflected by a specified amount under a load of 1.8 MPa was measured in accordance with ISO75-2. In addition, when the flexural modulus exceeds 4,000 MPa, it is determined that the "mechanical properties" are excellent.

[0083] [Acid modification rate of acid-modified polyolefin] Xylene was added to the acid-modified polyolefin and dissolved with stirring in an oil bath at 125°C. After dissolving the acid-modified polyolefin, an appropriate amount of thymol blue was added, and a burette was set up to carry out neutralization titration using KOH to determine the acid modification rate of the polyolefin.

[0084] [Adhesion test with acid-modified polyolefin] (1) Preparation of test specimens In the following steps 1 and 2, a two-color injection-molded test piece (Test Piece 1) having an ASTM No. 1 dumbbell-shaped test piece shape was obtained. In the following step 3, a test piece (Test Piece 2) after fuel immersion was obtained. Figure 1 is a plan view showing the shape of the test piece for evaluating the adhesion test, and Figure 2 is a side view showing the shape of the test piece for evaluating the adhesion test. Here, the test piece is composed of part 1 (Figure 1, Figure 2:1) and part 2 (Figure 1, Figure 2:2). (1-1) Process 1 Using an injection molding machine (FANUC T-100D, clamping force 100 tons, screw diameter 36 mm), a metal piece having the shape of part 2 in Figure 1 was inserted into the mold, and primary molding of the maleic anhydride-modified polyolefin was performed under conditions of a cylinder temperature of 200°C, a mold temperature of 40°C, and an injection speed of 50 mm / sec, resulting in a molded product of maleic anhydride-modified polyolefin having the shape of part 1. (1-2) Process 2 The maleic anhydride-modified polyolefin molded article obtained in step 1 was thoroughly preheated to 100°C. Then, with the metal piece insert in the shape of part 2 removed, the maleic anhydride-modified polyolefin molded article was inserted into a mold. Part 2 was post-molded using a polyamide resin composition under conditions of a cylinder temperature of 290°C, a mold temperature of 90°C, and an injection speed of 100 mm / sec, to obtain a two-color injection-molded article (test piece 1). In test piece 1, the interface between part 1 (the maleic anhydride-modified polyolefin molded article) and part 2 (the polyamide resin composition molded article) was melt-bonded during the injection of the polyamide resin composition.

[0085] (1-3) Process 3 The two-color injection molded product (test piece 1) was placed in an autoclave and sealed until it was completely immersed in a Fuel C + 10% ethanol mixed fuel (iso-octane:toluene:ethanol = 45:45:10 (volume ratio)). The autoclave was heated to 65°C and the product was immersed for one week. After that, the molded product was removed, the chemicals were wiped off, and the fuel-immersed test piece (test piece 2) was obtained.

[0086] (2) Physical property testing A tensile test was performed on test piece 2 at room temperature (23°C), a test speed of 50 mm / sec, and a chuck distance of 140 mm to determine the elongation at break and the maximum stress at tensile yield. The values ​​in the table are the average values ​​of the test results for three test pieces. Here, a test piece was judged to have excellent adhesiveness if the elongation at break of the test piece immediately after production was 15% or more, the elongation at break of the test piece after immersion treatment for one week was 15% or more, and the elongation at break of the test piece after immersion treatment for three weeks was 15% or more.

[0087] [Calcium chloride resistance] Type A test pieces obtained according to ISO 294-1 were pretreated for 24 hours in a thermostatic chamber adjusted to 80°C and 90% RH. Gauze was placed in the center of the removed test piece, and a saturated calcium chloride aqueous solution was applied. After treatment under conditions 1 to 3, the surface appearance was observed. If the appearance was good (◯), it was judged to have excellent calcium chloride resistance. Condition 1: Leave at 100°C for 2 hours Condition 2: Leave at 80°C and 90% RH for 20 hours Condition 3: Leave at 80°C and 90% RH for 20 hours, then leave at 100°C for 2 hours ○: Appearance is good ×: Poor appearance

[0088] [Fuel permeability] Using an injection molding machine, flat test specimens with a diameter of 75 mm and a thickness of 1 mm were molded. Fuel permeation was measured at a test temperature of 60°C using a mixture of Fuel C (SAE, J1681) and 10% ethanol by volume (iso-octane:toluene:ethanol = 45:45:10 (volume ratio)) in accordance with JIS Z0208. The permeation area was 1.13 × 10 -3 m 2 (φ3.8×10 -2 The number of test pieces filled with the test fuel was "2," and the number of control pieces not filled with the test fuel was "1." The fuel permeability of the polyamide resin composition of Example 2 was measured and found to be 1.6 g·mm / (m 2 -24 hours).

[0089] [Fuel resistance] Type A test pieces obtained using a polyamide resin composition according to ISO 294-1 (molding resin temperature 290°C, mold temperature 80°C) were immersed in a mixture of isooctane / toluene / ethanol (=45 / 45 / 10 (volume ratio)) in an autoclave heated to 65°C for one week or three weeks. Thereafter, dimensional change rate in the longitudinal direction, weight change rate, and changes in tensile strength and tensile break strain were measured by tensile tests according to ISO 527-1,2. Here, a specimen was judged to have excellent fuel resistance if the longitudinal dimensional change rate after immersion treatment for one week and after immersion treatment for three weeks was less than 0.5%, and the weight change rate after immersion treatment for one week was less than 3.5%, and / or the weight change rate after immersion treatment for three weeks was less than 5.5%.

[0090] The results are shown in Table 1. The units of composition in the table are mass %.

[0091] [Table 1]

[0092] As is clear from the results in Table 1, the polyamide resin compositions of the examples were excellent in mechanical properties, adhesiveness, calcium chloride resistance and fuel resistance. In particular, a comparison of Examples 2, 6, and 7 shows that when the diameter of the reinforcing fiber (C) was small, the calcium chloride resistance was superior, and when the cross-sectional shape of the reinforcing fiber (C) was flat, the Charpy impact strength was superior. In Comparative Examples 1 and 2, the amount of acid modification in the acid-modified polyolefin was less than 5 μmol / g, and therefore the adhesiveness was poor. The resin composition of Comparative Example 3 was poor in adhesiveness because it did not contain both the aliphatic polyamide resin (A) and the aromatic polyamide resin (B) having an amino group concentration of 46 to 110 μmol / g. The resin composition of Comparative Example 4 did not contain the aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g, the aromatic polyamide resin (B), or the reinforcing fiber (C), and therefore was inferior in mechanical properties, adhesion, calcium chloride resistance, and fuel resistance. [Explanation of symbols]

[0093] 1: Part 1 2: Part 2

Claims

1. A polyamide resin composition for bonding to an acid-modified polyolefin, comprising: The polyamide resin composition comprises 40 to 93 mass% of an aliphatic polyamide resin (A) having an amino group concentration of 46 to 110 μmol / g, 2 to 10 mass% of an aromatic polyamide resin (B), 5 to 50 mass% of a reinforcing fiber (C), and 0 to 53 mass% of a component (D) other than (A) to (C), wherein the total of (A) to (D) is 100 mass%; (A) is at least one selected from the group consisting of polyamide 6, polyamide 66, polyamide 610, polyamide 612, polyamide 11, and polyamide 12; (B) is at least one selected from the group consisting of polyamide 6T / 6I, polyamide MXD6, and polyamide PXD6; The amount of acid modification of the acid-modified polyolefin is 7 to 40 μmol / g. Polyamide resin composition.

2. The polyamide resin composition according to claim 1, wherein a Type A test piece obtained in accordance with ISO294-1 is immersed in an isooctane / toluene / ethanol mixed solution in an autoclave heated to 65°C for one week, the volume ratio of isooctane:toluene:ethanol being 45:45:10, and the dimensional change rate is less than 0.5% and the weight change rate is less than 3.5%.

3. The polyamide resin composition according to claim 1, wherein a Type A test piece obtained in accordance with ISO294-1 is immersed in an isooctane / toluene / ethanol mixed solution in an autoclave heated to 65°C for 3 weeks, and the dimensional change rate is less than 0.5% and the weight change rate is less than 5.5%.

4. The polyamide resin composition according to any one of claims 1 to 3, wherein the reinforcing fiber (C) is a glass fiber.

5. The polyamide resin composition according to any one of claims 1 to 4, wherein the aliphatic polyamide resin (A) has an amino group concentration of 80 to 99 µmol / g.

6. The polyamide resin composition according to any one of claims 1 to 5, wherein the aromatic polyamide resin (B) is polyamide 6T / 6I.

7. A polyamide resin composition according to any one of claims 1 to 6 for producing a part that comes into contact with fuel, the part includes a molded article containing the polyamide resin composition and an acid-modified polyolefin, In the molded article, at least a part of the polyamide resin composition and at least a part of the acid-modified polyolefin are adhered to each other, The amount of acid modification of the acid-modified polyolefin is 7 to 40 μmol / g. The polyamide resin composition according to any one of claims 1 to 6.

8. A molded article comprising the polyamide resin composition according to any one of claims 1 to 6 and an acid-modified polyolefin, wherein at least a portion of the polyamide resin composition and at least a portion of the acid-modified polyolefin are bonded together, and the acid-modified amount of the acid-modified polyolefin is 7 to 40 μmol / g.

9. A fuel-contacting component comprising the molded article of claim 8.

10. A part that comes into contact with calcium chloride, the part comprising the molded article of claim 8.

11. A part requiring improved resistance to calcium chloride, the part comprising the molded article according to claim 8.

12. A method of using a polyamide resin composition for bonding to an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of claims 1 to 6, and the acid-modified polyolefin has an acid modification amount of 7 to 40 μmol / g.

13. A method for using a polyamide resin composition as an adhesive for an acid-modified polyolefin, wherein the polyamide resin composition is as defined in any one of claims 1 to 6, and the acid-modified polyolefin has an acid modification amount of 7 to 40 μmol / g.

Citation Information

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