Carbon fiber precursor treatment agent and use thereof

The use of a treatment agent with specific compounds (A) and (B) and surfactant (C) addresses yarn breakage and scale deposition issues, ensuring high-quality carbon fiber production by enhancing sizing properties and operational efficiency.

JP2025173614APending Publication Date: 2025-11-28MATSUMOTO YUSHI SEIYAKU CO LTD
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Patent Information

Application Number
JP2024079231
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-05-15
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Carbon fibers produced using conventional treatment agents face issues such as adhesive matter causing yarn breakage and scale deposition, leading to reduced operability and efficiency during the calcination process, particularly in large tows with numerous fibers.

Method used

A treatment agent for carbon fiber precursors containing specific compounds (A) and (B) with surfactant (C), which imparts excellent sizing properties, enhancing bundling and preventing interference during the flame-resistant and carbonization processes.

Benefits of technology

The treatment agent enables high-quality carbon fiber production by improving sizing ability, reducing yarn breakage, and maintaining operational efficiency by preventing fiber wrapping and scale deposition.

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Abstract

To provide a carbon fiber precursor treatment agent that can impart superior bundling property during a flame-resisting step to a carbon fiber precursor manufactured with application of the treatment agent, a carbon fiber precursor using the treatment agent, and a method for producing carbon fibers using the treatment agent.SOLUTION: The carbon fiber precursor treatment agent of the present invention is a carbon fiber precursor treatment agent containing at least one selected from the group consisting of the following compound (A) and the following compound (B), and a surfactant (C). Compound (A): a compound having a structure in which an alcohol (W) having 5 or more hydroxyl groups and a fatty acid (X) including a fatty acid having a branched structure are esterified. Compound (B): a compound having a structure in which an alcohol (Y) including an alcohol having a branched structure and an aliphatic carboxylic acid (Z) having 3 or more carboxyl groups are esterified.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a treatment agent for carbon fiber precursors (hereinafter sometimes simply referred to as a treatment agent) and its use. More specifically, the present invention relates to a treatment agent used in producing a carbon fiber precursor, a carbon fiber precursor (hereinafter sometimes referred to as a precursor) using the treatment agent, and a method for producing a carbon fiber using the treatment agent. [Background technology]

[0002] Taking advantage of their excellent mechanical properties, carbon fibers are widely used as reinforcing fibers for composite materials with plastics called matrix resins in aerospace, sports, general industrial, and other applications. A common method for producing carbon fiber is to convert a precursor into a flame-resistant fiber in an oxidizing atmosphere at 200 to 300°C (hereinafter sometimes referred to as the flame-resistant process), followed by carbonization in an inert atmosphere at 300 to 2000°C (hereinafter sometimes referred to as the carbonization process). (Hereinafter, the flame-resistant process and the carbonization process will be collectively referred to as the calcination process.) Conventionally, various treatment agents have been applied to the precursor to efficiently perform these calcination processes.

[0003] However, the treatment agent adhered to the precursor has had problems such as adhesive matter derived from the treatment agent that has fallen off the fiber during the precursor production process causing the fiber to wrap around drying rollers or guides, resulting in yarn breakage and reducing operability, and scale derived from the treatment agent, such as silicon oxide generated in the flame-proofing process carried out in an oxidizing atmosphere and silicon nitride generated in the carbonization process using nitrogen as an inert gas, depositing, reducing operability and operating efficiency and damaging the firing furnace. To avoid these problems, treatments using low-viscosity silicone compounds, treatments that combine aromatic compounds with amino-modified silicones, and treatments that contain aromatic esters as the main component have been proposed (see Patent Documents 1 to 3). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-46855 [Patent Document 2] Japanese Patent Application Laid-Open No. 2004-211240 [Patent Document 3] Japanese Patent Application Laid-Open No. 2004-143645 Summary of the Invention [Problem to be solved by the invention]

[0005] However, when carbon fibers are produced using carbon fiber precursors to which such treatment agents have been applied, there has often been a problem that the fibers cannot pass the calcination step. Upon investigating the cause, it was found that the problem of not being able to pass the baking process was caused by interference with adjacent fiber bundles due to insufficient bundling in the flame-proofing process, and that this problem was more likely to become apparent in large tows with a larger number of single fibers. Therefore, an object of the present invention is to provide a treatment agent for carbon fiber precursors that can impart excellent sizing properties to carbon fiber precursors in a flame-resistant treatment step, a carbon fiber precursor using the treatment agent, and a method for producing carbon fibers using the carbon fiber precursor. [Means for solving the problem]

[0006] As a result of intensive research to solve the above problems, the present inventors have found that a treatment agent for carbon fiber precursors containing at least one selected from a specific compound (A) and a specific compound (B), and a surfactant (C), can impart excellent sizing properties to the carbon fiber precursors in a flame-resistant treatment step.

[0007] That is, the treating agent for carbon fiber precursors of the present invention includes the following embodiments. <1> A treating agent for carbon fiber precursors, comprising at least one selected from the following compound (A) and the following compound (B), and a surfactant (C). Compound (A): A compound having an ester structure of an alcohol (W) having five or more hydroxyl groups and a fatty acid (X) including a fatty acid having a branched structure. Compound (B): A compound having an ester structure of an alcohol (Y) including an alcohol having a branched structure and an aliphatic carboxylic acid (Z) having three or more carboxyl groups. <2> The fatty acid (X) includes a saturated fatty acid having a branched structure. <1> The treating agent for carbon fiber precursors according to claim 1. <3> The fatty acid (X) includes a fatty acid having a branched structure having 5 to 10 carbon atoms. <1> or <2> The treating agent for carbon fiber precursors according to claim 1. <4> The alcohol (W) is an alcohol having 5 to 40 carbon atoms and 5 or more hydroxyl groups. <1> ~ <3> The treating agent for a carbon fiber precursor according to any one of the preceding claims. <5> the total proportion of the compound (A) and the compound (B) in the non-volatile content of the treatment agent for carbon fiber precursors is 5 to 95% by weight; <1> ~ <4> The treating agent for a carbon fiber precursor according to any one of the preceding claims. <6> a weight ratio ((A+B) / C) of the total of the compound (A) and the compound (B) to the surfactant (C) is 0.1 to 20; <1> ~ <5> The treating agent for a carbon fiber precursor according to any one of the preceding claims. <7> Carbon fiber precursor raw material carbon fiber precursor, <1> ~ <6> 1. A carbon fiber precursor having the treating agent for carbon fiber precursors according to any one of claims 1 to 9 adhered thereto. <8> <7> a flame-resistant step of converting the carbon fiber precursor according to claim 1 into a flame-resistant fiber; and a carbonization step of carbonizing the flame-resistant fiber. [Effects of the Invention]

[0008] The treating agent for carbon fiber precursors of the present invention can impart excellent sizing ability to the carbon fiber precursor in the flame-resistant treatment step. According to the carbon fiber precursor using the treating agent for carbon fiber precursors of the present invention and the method for producing carbon fiber using the carbon fiber precursor, the carbon fiber precursor produced by applying the treating agent has excellent sizing ability in the flame-resistant treatment step, and therefore high-quality carbon fiber can be obtained. DETAILED DESCRIPTION OF THE INVENTION

[0009] Each component of the treating agent for carbon fiber precursors of the present invention (hereinafter sometimes simply referred to as the treating agent) will be described. [Compound (A)] The compound (A) is not particularly limited as long as it is a compound having an ester structure of an alcohol (W) having five or more hydroxyl groups and a fatty acid (X) including a fatty acid having a branched structure, and one or more types may be used.

[0010] The alcohol (W) is not particularly limited as long as it has five or more hydroxyl groups, and known alcohols can be used. Examples of the alcohol (W) include aliphatic alcohols and aromatic alcohols, and from the viewpoint of focusing ability, aliphatic alcohols are preferred, and saturated aliphatic alcohols are more preferred.

[0011] The number of carbon atoms in the alcohol (W) is not particularly limited, but from the viewpoint of sizing ability, it is preferably 5 to 40. The upper limit of the carbon number is more preferably 35, even more preferably 30, and particularly preferably 20. On the other hand, the lower limit of the carbon number is more preferably 7, even more preferably 8, and particularly preferably 9. Furthermore, for example, it is more preferably 6 to 35, and even more preferably 6 to 20.

[0012] The number of hydroxyl groups possessed by the alcohol (W) is not particularly limited as long as it is 5 or more, but from the viewpoint of sizing ability, it is preferably 5 to 20. The upper limit of the number of hydroxyl groups is more preferably 15, even more preferably 12, and particularly preferably 10. On the other hand, the lower limit of the number of hydroxyl groups is more preferably 6. Also, for example, it is more preferably 5 to 15, and even more preferably 6 to 12.

[0013] Any combination of the upper and lower limits of the number of carbon atoms and the number of hydroxyl groups in the alcohol (W) can be applied. For example, an alcohol having 5 to 40 carbon atoms and 5 to 20 hydroxyl groups, and an alcohol having 6 to 20 carbon atoms and 6 to 12 hydroxyl groups are preferably used in terms of achieving the effects of the present invention.

[0014] The alcohol (W) is not particularly limited, and specific examples thereof include sorbitol, xylitol, mannitol, triglycerin, dipentaerythritol, tetraglycerin, pentaglycerin, decaglycerin, an alkylene oxide adduct of sorbitol, an alkylene oxide adduct of xylitol, an alkylene oxide adduct of mannitol, an alkylene oxide adduct of triglycerin, an alkylene oxide adduct of dipentaerythritol, and an alkylene oxide adduct of tetraglycerin. Examples of the alcohol (X) include those obtained by adding an alkylene oxide to pentaglycerin, those obtained by adding an alkylene oxide to decaglycerin, and the like, and from the viewpoint of sizing ability, xylitol, mannitol, triglycerin, dipentaerythritol, tetraglycerin, pentaglycerin, and decaglycerin are preferred, mannitol, triglycerin, dipentaerythritol, tetraglycerin, pentaglycerin, and decaglycerin are more preferred, and triglycerin, dipentaerythritol, tetraglycerin, pentaglycerin, and decaglycerin are particularly preferred. One or more types of alcohol (X) may be used.

[0015] The fatty acid (X) is not particularly limited as long as it is a fatty acid containing a fatty acid having a branched structure, and from the viewpoint of focusing ability, a fatty acid consisting of a fatty acid having a branched structure is preferred. The fatty acid having a branched structure contained in the fatty acid (X) is not particularly limited, but from the viewpoint of sizing ability and fuzz suppression, a fatty acid having a branched structure with 4 to 24 carbon atoms is preferred. The upper limit of the carbon number is more preferably 22, even more preferably 20, and particularly preferably 10. On the other hand, the lower limit of the carbon number is more preferably 5, even more preferably 6. Also, for example, 4 to 20 is more preferred, and 5 to 10 is even more preferred. As the fatty acid having a branched structure contained in the fatty acid (X), a saturated fatty acid having a branched structure is preferred in terms of bundling ability.

[0016] The fatty acid having a branched structure contained in the fatty acid (X) is not particularly limited, and examples thereof include isobutyric acid, 2-ethylhexanoic acid, isovaleric acid, 2-ethylbutyric acid, 2-hexyldecanoic acid, 2-hexadecyloctadecanoic acid, 3-methylcrotonic acid, 3-methylvaleric acid, 2-methylvaleric acid, 2-methyl-2-pentenoic acid, 2-methylhexanoic acid, 5-methylhexanoic acid, 2-methyl-4-pentenoic acid, 2-methylheptanoic acid, 4-methyl-n-octanoic acid, tiglic acid, 3,5,5-trimethylhexanoic acid, and 2,2,4,8,10,10-hexamethylundecane-5-carboxylic acid. In terms of sizing ability and ability to prevent inter-fiber fusion, isobutyric acid, 2-ethylhexanoic acid, isovaleric acid, 2-ethylbutyric acid, 2-hexyldecanoic acid, 2-hexadecyloctadecanoic acid, 3-methylvaleric acid, 2-methylvaleric acid, 2-methylhexanoic acid, 5-methylhexanoic acid, 2-methylheptanoic acid, 4-methyl-n-octanoic acid, tiglic acid, 3,5,5-trimethylhexanoic acid, and 2,2,4,8,10,10-hexamethylundecane-5-carboxylic acid are preferred, with 3,5,5-trimethylhexanoic acid and 2,2,4,8,10,10-hexamethylundecane-5-carboxylic acid being particularly preferred. One or more fatty acids (X) may be used.

[0017] The fatty acids contained in the fatty acid (X) other than the fatty acids having a branched structure are not particularly limited, and examples thereof include saturated fatty acids having 4 to 30 carbon atoms and unsaturated fatty acids having 4 to 30 carbon atoms. The saturated fatty acid having 4 to 30 carbon atoms is not particularly limited, but examples thereof include butyric acid, caproic acid, caprylic acid, lauric acid, palmitic acid, behenic acid, and montanic acid. Examples of unsaturated fatty acids having 4 to 30 carbon atoms include, but are not limited to, crotonic acid, myristoleic acid, palmitoleic acid, oleic acid, vaccenic acid, erucic acid, linoleic acid, and linolenic acid.

[0018] The proportion of fatty acids having a branched structure in fatty acid (X) is not particularly limited, but is preferably 15% to 100% by weight from the viewpoint of sizing ability. The upper limit of this proportion is more preferably 90% by weight, even more preferably 85% by weight, and particularly preferably 80% by weight. On the other hand, the lower limit of this proportion is more preferably 20% by weight, even more preferably 40% by weight, and particularly preferably 60% by weight. Also, for example, it is more preferably 20% to 100% by weight, and even more preferably 40% to 100% by weight. The proportion of fatty acids having a branched structure in fatty acid (X) refers to the proportion of fatty acids having a branched structure in all fatty acids (X) constituting compound (A). When multiple compounds (A) are used, it means the proportion of fatty acids having a branched structure in all fatty acids (mixture) constituting multiple compounds (A).

[0019] The number of ester bonds that compound (A) has in the molecule is not particularly limited, but from the viewpoint of focusing ability, it is preferable that compound (A) has two or more ester bonds. The upper limit of the number of ester bonds is preferably 10, more preferably 8, and even more preferably 6. On the other hand, the lower limit of the number of ester bonds is more preferably 3, more preferably 4, and particularly preferably 5. Also, for example, 2 to 10 are more preferable, and 2 to 8 are even more preferable.

[0020] The number of hydroxyl groups contained in the molecule of compound (A) is not particularly limited, but from the viewpoint of focusing ability, it is preferably 15 or less. The upper limit of the number of hydroxyl groups is preferably 12, more preferably 10, and even more preferably 8. On the other hand, the lower limit of the number of hydroxyl groups is more preferably 1, more preferably 2, and particularly preferably 4. Also, for example, 0 to 10 is more preferable, and 1 to 8 is even more preferable.

[0021] The molecular weight of compound (A) is not particularly limited, but is preferably 650 or more from the viewpoint of focusing ability. The upper limit of the molecular weight is preferably 5000, more preferably 4500, and even more preferably 4000. On the other hand, the lower limit of the molecular weight is more preferably 700, more preferably 750, and particularly preferably 800. Also, for example, 700 to 4500 is more preferable, and 750 to 4000 is even more preferable. Note that the molecular weight of compound (A) in the present invention is the sum of the atomic weights of the atoms constituting the compound, calculated using the standard atomic weights published by IUPAC.

[0022] The compound (A) is not particularly limited as long as it is a compound having a structure in which the alcohol (W) and the fatty acid (X) are esterified. From the viewpoint of focusing ability, however, an ester of an alcohol having 5 to 40 carbon atoms and 5 to 20 hydroxyl groups with a fatty acid having 4 to 24 carbon atoms and a branched structure, and an ester of an alcohol having 6 to 20 carbon atoms and 6 to 12 hydroxyl groups with a fatty acid having 5 to 10 carbon atoms and a branched structure are preferred.

[0023] The method for obtaining the compound (A) is not particularly limited, and it is possible to use a generally commercially available ester compound, or to use a compound obtained by synthesizing a generally commercially available alcohol (W) having 5 or more hydroxyl groups and a fatty acid (X) including a fatty acid having a branched structure by a known method through an esterification reaction.

[0024] [Compound (B)] The compound (B) is not particularly limited as long as it is a compound having an ester structure of an alcohol (Y) including an alcohol having a branched structure and an aliphatic carboxylic acid (Z) having three or more carboxyl groups, and one or more types may be used.

[0025] The alcohol (Y) is not particularly limited as long as it is an alcohol containing an alcohol having a branched structure, and known alcohols can be used. The number of carbon atoms in the alcohol having a branched structure contained in the alcohol (Y) is not particularly limited, but from the viewpoint of convergence, it is preferably 4 to 40. The upper limit of the carbon number is more preferably 35, even more preferably 30, and particularly preferably 20. On the other hand, the lower limit of the carbon number is more preferably 5, and even more preferably 6. Furthermore, for example, it is more preferably 5 to 35, and even more preferably 6 to 20.

[0026] The number of hydroxyl groups contained in the alcohol having a branched structure contained in the alcohol (Y) is not particularly limited, but from the viewpoint of focusing ability, the upper limit of the number of hydroxyl groups is more preferably 15, even more preferably 12, and particularly preferably 10. On the other hand, the lower limit of the number of hydroxyl groups is more preferably 1, even more preferably 3, and particularly preferably 5. Also, for example, 1 to 20 hydroxyl groups are preferred, 3 to 15 are more preferred, and 5 to 12 are more preferred.

[0027] Any combination of upper and lower limits for the number of carbon atoms and the number of hydroxyl groups in the alcohol having a branched structure contained in the alcohol (Y) can be applied. For example, alcohols having 6 to 20 carbon atoms and 1 to 20 hydroxyl groups, alcohols having 5 to 35 carbon atoms and 3 to 15 hydroxyl groups, and alcohols having 4 to 40 carbon atoms and 5 to 12 hydroxyl groups are preferably used in terms of achieving the effects of the present application.

[0028] The alcohol having a branched structure contained in the alcohol (Y) is not particularly limited, and specific examples thereof include 2-ethyl-1-hexanol, 2-butyl-1-octanol, 2-hexyl-1-decanol, isostearyl alcohol, 2-octyl-1-dodecanol, 2-decyl-1-tetradecanol, 2,2-diisobutyl-1,3-propanediol, 2,2-diisoamyl-1,3-propanediol, an alkylene oxide adduct of 2-butyl-1-octanol, an alkylene oxide adduct of 2-ethyl-1-hexanol, an alkylene oxide adduct of 2-hexyl-1-decanol, an alkylene oxide adduct of isostearyl alcohol, an alkylene oxide adduct of 2-octyl-1-dodecanol, an alkylene oxide adduct of 2-decyl-1-tetradecanol, and the like. Examples of the alkylene oxide adduct include 2,2-diisobutyl-1,3-propanediol and 2,2-diisoamyl-1,3-propanediol. In terms of focusing ability, the following are preferred: 2-ethyl-1-hexanol, 2-butyl-1-octanol, 2-hexyl-1-decanol, isostearyl alcohol, 2-octyl- 1-dodecanol and 2-decyl-1-tetradecanol are preferred, 2-ethyl-1-hexanol, 2-butyl-1-octanol, 2-hexyl-1-decanol, isostearyl alcohol and 2-octyl-1-dodecanol are more preferred, and 2-ethyl-1-hexanol, 2-butyl-1-octanol, 2-hexyl-1-decanol, isostearyl alcohol and 2-octyl-1-dodecanol are particularly preferred. The alcohol having a branched structure contained in the alcohol (Y) may be used alone or in combination of two or more kinds.

[0029] The carboxylic acid (Z) is not particularly limited as long as it is an aliphatic carboxylic acid having three or more carboxyl groups, but from the viewpoint of sizing ability, the upper limit of the number of carboxyl groups is preferably 9, more preferably 8, and even more preferably 7. On the other hand, the lower limit of the number of carboxyl groups is preferably 4, more preferably 5. Furthermore, for example, 3 to 9 are preferred, 4 to 8 are more preferred, and 5 to 7 are even more preferred.

[0030] The carboxylic acid (Z) is not particularly limited, but from the viewpoint of sizing ability and fuzz suppression, it preferably has 4 to 24 carbon atoms. The upper limit of the carbon number is more preferably 22, even more preferably 20, and particularly preferably 18. On the other hand, the lower limit of the carbon number is more preferably 6, even more preferably 8, and particularly preferably 10. Also, for example, 6 to 22 is more preferable, and 8 to 20 is more preferable.

[0031] The carboxylic acid (Z) is not particularly limited, but examples thereof include citric acid, cis-aconitic acid, trans-aconitic acid, tricarballylic acid, 1,2,3,4-butanetetracarboxylic acid, etc., and from the viewpoints of sizing ability and preventing fusion between fibers, citric acid, cis-aconitic acid, trans-aconitic acid, and tricarballylic acid are preferred, with citric acid and tricarballylic acid being particularly preferred. One or more types of carboxylic acid (Z) may be used.

[0032] The number of ester bonds that compound (B) has in the molecule is not particularly limited, but from the viewpoint of focusing ability, it is preferable that the number be 2 or more. The upper limit of the number of ester bonds is preferably 10, more preferably 8, and even more preferably 6. On the other hand, the lower limit of the number of ester bonds is more preferably 3, more preferably 4, and particularly preferably 5. Also, for example, 2 to 10 is more preferable, and 2 to 8 is even more preferable.

[0033] The number of carboxyl groups contained in the molecule of compound (B) is not particularly limited, but from the viewpoint of focusing ability, it is preferably 15 or less. The upper limit of the number of carboxyl groups is preferably 12, more preferably 10, and even more preferably 8. On the other hand, the lower limit of the number of carboxyl groups is more preferably 1, more preferably 2, and particularly preferably 4. Also, for example, 0 to 10 is more preferable, and 1 to 8 is even more preferable.

[0034] The molecular weight of compound (B) is not particularly limited, but is preferably 650 or more from the viewpoint of focusing ability. The upper limit of the molecular weight is preferably 5000, more preferably 4500, and even more preferably 4000. On the other hand, the lower limit of the molecular weight is more preferably 700, more preferably 750, and particularly preferably 800. Also, for example, 700 to 4500 is more preferable, and 750 to 4000 is even more preferable. Note that the molecular weight of compound (B) in the present invention is the sum of the atomic weights of the atoms constituting the compound, calculated using the standard atomic weights published by IUPAC.

[0035] The compound (B) is not particularly limited as long as it is a compound having a structure in which the alcohol (Y) and the carboxylic acid (Z) are esterified. From the viewpoint of focusing ability, however, an ester of an alcohol having 4 to 40 carbon atoms and 5 to 12 hydroxyl groups with an aliphatic carboxylic acid having 3 to 9 carboxyl groups, and an ester of an alcohol having 6 to 20 carbon atoms and 1 to 20 hydroxyl groups with an aliphatic carboxylic acid having 5 to 7 carboxyl groups are more preferred.

[0036] The method for obtaining compound (B) is not particularly limited, and it is possible to use a commercially available ester compound, or a compound obtained by synthesizing a commercially available fatty acid, including a fatty acid having a branched structure, and an alcohol having five or more hydroxyl groups by a known method through an esterification reaction, and use the compound.

[0037] [Surfactant (C)] The treating agent of the present invention contains a surfactant (C). The surfactant (C) is not particularly limited as long as it is a surfactant other than the compound (A) and the compound (B), and any known surfactant can be used. Examples of the surfactant include a nonionic surfactant, an anionic surfactant, a cationic surfactant, and an amphoteric surfactant. In terms of being able to uniformly impart sizing properties, it is preferable for the surfactant (C) to contain at least one selected from nonionic surfactants and anionic surfactants, and it is more preferable for the surfactant (C) to contain a nonionic surfactant.

[0038] Examples of nonionic surfactants include polyoxyalkylene linear alkyl ethers such as polyoxyethylene hexyl ether, polyoxyethylene octyl ether, polyoxyethylene decyl ether, polyoxyethylene lauryl ether, and polyoxyethylene cetyl ether; polyoxyalkylene branched primary alkyl ethers such as polyoxyethylene 2-ethylhexyl ether, polyoxyethylene isocetyl ether, and polyoxyethylene isostearyl ether; polyoxyalkylene secondary alkyl ethers such as polyoxyethylene 1-hexylhexyl ether, polyoxyethylene 1-octylhexyl ether, polyoxyethylene 1-hexyloctyl ether, polyoxyethylene 1-pentylheptyl ether, and polyoxyethylene 1-heptylpentyl ether; polyoxyalkylene alkenyl ethers such as polyoxyethylene oleyl ether; and polyoxyalkylene alkylphenyl ethers such as polyoxyethylene octylphenyl ether, polyoxyethylene nonylphenyl ether, and polyoxyethylene dodecylphenyl ether. esters; polyoxyalkylene alkylarylphenyl ethers such as polyoxyethylene tristyrylphenyl ether, polyoxyethylene distyrylphenyl ether, polyoxyethylene styrylphenyl ether, polyoxyethylene tribenzylphenyl ether, polyoxyethylene dibenzylphenyl ether, and polyoxyethylene benzylphenyl ether; polyoxyalkylene fatty acid esters such as polyoxyethylene monolaurate, polyoxyethylene monooleate, polyoxyethylene monostearate, polyoxyethylene monomyristate, polyoxyethylene dilaurate, polyoxyethylene diolate, polyoxyethylene dimyristate, and polyoxyethylene distearate; sorbitan esters such as sorbitan monopalmitate and sorbitan monolaurate; polyoxyalkylene sorbitan fatty acid esters such as polyoxyethylene sorbitan monostearate and polyoxyethylene sorbitan monolaurate; glycerin fatty acid esters such as glycerin monostearate, glycerin monolaurate, and glycerin monopalmitate;Polyglycerol fatty acid esters such as diglycerol monocaprylate, tetraglycerol monolaurate, hexaglycerol tristearate, decaglycerol monomyristate, decaglycerol monostearate, decaglycerol tristearate, and decaglycerol decastearate; polyoxyalkylene sorbitol fatty acid esters; sucrose fatty acid esters; polyoxyalkylene hydrogenated castor oil ethers such as polyoxyethylene hydrogenated castor oil ether; polyoxyalkylene alkylamino ethers such as polyoxyethylene lauryl amino ether and polyoxyethylene stearyl amino ether; oxyethylene-oxypropylene block or random copolymers; oxyethylene Examples of the oxyethylene-oxypropylene block or random copolymer with terminal alkyl etherification; oxyethylene-oxypropylene block or random copolymer with terminal sucrose etherification; polyoxyalkylene alkylamides such as polyoxyethylene laurylamide and polyoxyethylene stearylamide; and polyoxyalkylene 4-60 mole adducts of bisphenols such as a 4 mole polyoxyethylene adduct of bisphenol A, a 10 mole polyoxyethylene adduct of bisphenol A, a 30 mole polyoxyethylene adduct of bisphenol A, a 60 mole polyoxyethylene adduct of bisphenol A, and a 10 mole polyoxyethylene adduct of bisphenol F.

[0039] Among these nonionic surfactants, polyoxyalkylene branched primary alkyl ethers, polyoxyalkylene secondary alkyl ethers, polyoxyalkylene alkenyl ethers, polyoxyalkylene alkylphenyl ethers, polyoxyalkylene hydrogenated castor oil ethers, polyoxyalkylene fatty acid esters, oxyethylene-oxypropylene block copolymers, and terminal alkyl etherified products of oxyethylene-oxypropylene block copolymers are preferred, in that they can uniformly impart sizing properties to fibers, and polyoxyalkylene branched primary alkyl ethers, polyoxyalkylene secondary alkyl ethers, polyoxyalkylene hydrogenated castor oil ethers, oxyethylene-oxypropylene block or random copolymers, and terminal alkyl etherified products of oxyethylene-oxypropylene block copolymers are more preferred. In terms of emulsifying ability and penetrability, the number of moles of alkylene oxide added to the nonionic surfactant is preferably 3 to 40. The upper limit of the number of moles added is more preferably 35, even more preferably 30, and particularly preferably 25. On the other hand, the lower limit of the number of moles added is more preferably 5, even more preferably 7, and particularly preferably 9.

[0040] Examples of anionic surfactants include fatty acids (salts) such as oleic acid, palmitic acid, sodium oleate, potassium palmitate, and triethanolamine oleate; hydroxyl group-containing carboxylic acids (salts) such as hydroxyacetic acid, potassium hydroxyacetate, lactic acid, and potassium lactate; polyoxyalkylene alkyl ether acetic acids (salts) such as polyoxyethylene tridecyl ether acetic acid (sodium salt); salts of carboxyl group-polysubstituted aromatic compounds such as potassium trimellitate and potassium pyromellitate; alkylbenzene sulfonic acids (salts) such as dodecylbenzene sulfonic acid (sodium salt); polyoxyalkylene alkyl ether sulfonic acids (salts) such as polyoxyethylene 2-ethylhexyl ether sulfonic acid (potassium salt); higher fatty acid amide sulfonic acids (salts) such as stearoyl methyl taurine (sodium), lauroyl methyl taurine (sodium), myristoyl methyl taurine (sodium), and palmitoyl methyl taurine (sodium). alkylphosphonic acids (salts) such as octylphosphonate (potassium salt); aromatic phosphonic acids (salts) such as phenylphosphonate (potassium salt); alkylphosphonic acid alkyl phosphate esters (salts) such as 2-ethylhexylphosphonate mono 2-ethylhexyl ester (potassium salt); nitrogen-containing alkylphosphonic acids (salts) such as aminoethylphosphonic acid (diethanolamine salt); alkyl sulfate esters (salts) such as 2-ethylhexyl sulfate (sodium salt); polyoxyalkylene sulfate esters (salts) such as polyoxyethylene 2-ethylhexyl ether sulfate (sodium salt); long-chain sulfosuccinates such as sodium di-2-ethylhexyl sulfosuccinate and sodium dioctyl sulfosuccinate; and long-chain N-acyl glutamates such as sodium monosodium N-lauroyl glutamate and disodium N-stearoyl-L-glutamate.

[0041] Examples of cationic surfactants include alkyl quaternary ammonium salts such as lauryl trimethyl ammonium chloride, myristyl trimethyl ammonium chloride, palmityl trimethyl ammonium chloride, stearyl trimethyl ammonium chloride, oleyl trimethyl ammonium chloride, cetyl trimethyl ammonium chloride, behenyl trimethyl ammonium chloride, coconut oil alkyl trimethyl ammonium chloride, beef tallow alkyl trimethyl ammonium chloride, stearyl trimethyl ammonium bromide, coconut oil alkyl trimethyl ammonium bromide, cetyl trimethyl ammonium methosulfate, oleyl dimethyl ethyl ammonium ethosulfate, dioctyl dimethyl ammonium chloride, dilauryl dimethyl ammonium chloride, distearyl dimethyl ammonium chloride, and octadecyl diethyl methyl ammonium sulfate; (polyoxyethylene) lauryl amino ether lactate, stearyl amino ether lactate, and di(polyoxyethylene) lauryl methyl amino ether. (Polyoxyalkylene) alkylamino ether salts such as tert-butyl dimethyl phosphate, di(polyoxyethylene) lauryl ethyl ammonium ethosulfate, di(polyoxyethylene) hardened beef tallow alkylethylamine ethosulfate, di(polyoxyethylene) lauryl methyl ammonium dimethyl phosphate, and di(polyoxyethylene) stearylamine lactate; acylamidoalkyl quaternary ammonium salts such as N-(2-hydroxyethyl)-N,N-dimethyl-N-stearoylamidopropyl ammonium nitrate, lanolin fatty acid amidopropyl ethyl dimethyl ammonium ethosulfate, and lauroylamidoethyl methyl diethyl ammonium methosulfate; alkylethenoxy quaternary ammonium salts such as dipalmityl polyethenoxyethyl ammonium chloride and distearyl polyethenoxymethyl ammonium chloride; alkylisoquinolinium salts such as lauryl isoquinolinium chloride; benzalkonium salts such as lauryl dimethylbenzyl ammonium chloride and stearyl dimethylbenzyl ammonium chloride;Benzethonium salts such as benzyldimethyl{2-[2-(p-1,1,3,3-tetramethylbutylphenoxy)ethoxy]ethyl}ammonium chloride; pyridinium salts such as cetylpyridinium chloride; imidazolinium salts such as oleylhydroxyethylimidazolinium ethosulfate and laurylhydroxyethylimidazolinium ethosulfate; acyl basic amino acid alkyl ester salts such as N-cocoylarginine ethyl ester pyrrolidone carboxylate and N-lauroyllysine ethyl ester chloride; primary amine salts such as laurylamine chloride, stearylamine bromide, hardened beef tallow alkylamine chloride, and rosinamine acetate; cetylmethylamine sulfate secondary amine salts such as dilauryl methylamine sulfate, lauryl methylamine chloride, dilaurylamine acetate, stearyl ethylamine bromide, lauryl propylamine acetate, dioctylamine chloride, and octadecylethylamine hydroxide; tertiary amine salts such as dilauryl methylamine sulfate, lauryl diethylamine chloride, lauryl ethyl methylamine bromide, diethanol stearyl amidoethylamine trihydroxyethyl phosphate salt, and stearyl amidoethylethanolamine urea polycondensate acetate salt; fatty acid amide guanidinium salts; and alkyl trialkylene glycol ammonium salts such as lauryl triethylene glycol ammonium hydroxide.

[0042] Examples of amphoteric surfactants include imidazoline-based amphoteric surfactants such as 2-undecyl-N,N-(hydroxyethylcarboxymethyl)-2-imidazoline sodium and 2-cocoyl-2-imidazolinium hydroxide-1-carboxyethyloxy disodium salt; betaine-based amphoteric surfactants such as 2-heptadecyl-N-carboxymethyl-N-hydroxyethylimidazolium betaine, lauryl dimethylaminoacetic acid betaine, alkyl betaine, amido betaine, and sulfobetaine; and amino acid-based amphoteric surfactants such as N-lauryl glycine, N-lauryl β-alanine, and N-stearyl β-alanine.

[0043] [Silicone compound (D)] The treatment agent of the present invention may contain a silicone compound (D). There are no particular limitations on the silicone compound (D) as long as the main chain is an inorganic siloxane bond (-Si-O-Si-) and the side chain has an organic group, but it is preferable for the silicone compound (D) to contain a silicone having an amino group in order to prevent fusion between fibers. The silicone compound (D) may contain silicones other than those having an amino group. Examples of other silicones include polyether-modified silicone, dimethyl silicone, epoxy-modified silicone, amide-modified silicone, alkyl-modified silicone, aralkyl-modified silicone, phenyl-modified silicone, silanol-modified silicone, carbinol-modified silicone, and mercapto-modified silicone, and in terms of achieving the effects of the present application, it is preferable to include at least one selected from polyether-modified silicone, dimethyl silicone, alkyl-modified silicone, phenyl-modified silicone, and aralkyl-modified silicone, and it is more preferable to include polyether-modified silicone, phenyl-modified silicone, and aralkyl-modified silicone. These other silicones can be known ones.

[0044] The silicone having an amino group is not particularly limited as long as it has an inorganic siloxane bond (-Si-O-Si-) in the main chain and an organic group having an amino group in the side chain and / or terminal, and known silicones having an amino group can be appropriately used. Examples of silicones having an amino group include amino-modified silicones and amino polyether-modified silicones, and it is more preferable to include amino-modified silicones in terms of achieving the effects of the present application. One or more types of silicones having an amino group may be used. The aminopolyether-modified silicone is a silicone having an amino group (including an organic group having an amino group) and a polyether group (including an organic group having a polyoxyalkylene group).

[0045] The kinematic viscosity of the silicone having an amino group at 25°C is not particularly limited, but in terms of uniform adhesion to fibers, it is preferably 50 to 20,000 mm2 The upper limit of the kinematic viscosity is more preferably 15000 mm 2 / s, and more preferably 12000 mm 2 / s, particularly preferably 10,000 mm 2 On the other hand, the lower limit of the kinematic viscosity is more preferably 100 mm 2 / s, more preferably 150 mm 2 / s, particularly preferably 200 mm 2 / s. For example, 100 to 15,000 mm 2 / s is more preferable, 150 to 10,000 mm 2 / s is even more preferable.

[0046] The amino group (including an organic group having an amino group), which is the modified group of the silicone having an amino group, may be bonded to a side chain of the silicone main chain, or to an end, or may be bonded to both, but from the viewpoint of protecting the fibers in the flame-proofing process, it is preferable that it be bonded to a side chain (having an amino group on the side chain). Furthermore, the amino group may be any of a monoamine type, a diamine type, or a polyamine type, and both may coexist in one molecule, but from the viewpoint of uniformly applying the treatment agent to the inside of the fiber bundle in the flame-proofing process and forming a film with the treatment agent to protect the fibers, a monoamine type or a diamine type is preferred, and a diamine type is more preferred.

[0047] The amino equivalent of the silicone having an amino group is preferably 300 to 10,000 g / mol from the viewpoint of preventing adhesion or fusion between fibers. The upper limit of the amino equivalent is more preferably 9,500 g / mol, even more preferably 9,000 g / mol, and particularly preferably 8,000 g / mol. Meanwhile, the lower limit of the amino equivalent is more preferably 500 g / mol, even more preferably 1,000 g / mol, and particularly preferably 1,500 g / mol. Furthermore, for example, 500 to 9,000 g / mol is more preferable, and 1,000 to 8,000 g / mol is even more preferable. Here, amino equivalent refers to the mass of the siloxane skeleton per amino or ammonium group. The unit of g / mol is the value converted to per 1 mol of amino or ammonium groups. Therefore, the smaller the amino equivalent value, the higher the proportion of amino or ammonium groups in the molecule.

[0048] The amino group-containing silicone may be a combination of multiple amino group-containing silicones with different amino equivalents and kinematic viscosities (25°C). When two or more types of amino group-containing silicones are used, the above amino equivalent refers to the amino equivalent of the entire amino group-containing silicones (mixture), and the above kinematic viscosity at 25°C refers to the kinematic viscosity of the entire amino group-containing silicones (mixture).

[0049] [Brønsted acid compounds] The treatment agent of the present invention preferably contains a Brønsted acid compound in terms of stability of the treatment agent in an aqueous system. The Brønsted acid compound refers to a proton donor, and examples thereof include organic carboxylic acid compounds, inorganic acids, organic sulfonic acid compounds, organic phosphate ester compounds, organic sulfate ester compounds, and organic phosphonic acid compounds.

[0050] The organic carboxylic acid compound refers to an organic compound having a carboxyl group in its molecular structure. Examples of the organic carboxylic acid compound include, but are not limited to, aliphatic monocarboxylic acids, alkyl ether carboxylic acids, aliphatic polycarboxylic acids, aromatic carboxylic acids, aromatic polycarboxylic acids, and amino acids.

[0051] Examples of aliphatic monocarboxylic acids include acetic acid, lactic acid, butyric acid, crotonic acid, valeric acid, caproic acid, enanthic acid, caprylic acid, pelargonic acid, capric acid, lauric acid, myristic acid, myristoleic acid, pentadecanoic acid, palmitic acid, palmitoleic acid, isocetyl acid, margaric acid, stearic acid, isostearic acid, oleic acid, elaidic acid, vaccenic acid, linoleic acid, linolenic acid, arachidic acid, isoeicosalic acid, gadoleic acid, eicosenoic acid, docosanoic acid, isodocosanoic acid, erucic acid, tetracosanoic acid, isotetracosanoic acid, nervonic acid, cerotic acid, montanic acid, and melissic acid.

[0052] Examples of alkyl ether carboxylic acids include those in which the alkyl group has 8 to 18 carbon atoms and the number of moles of polyoxyalkylene added is 1 to 50. Examples of the alkyl group include octyl, nonyl, decyl, undecyl, dodecyl, tridecyl, isotridecyl, tetradecyl, pentadecyl, hexadecyl, heptadecyl, and octadecyl. Examples of the polyoxyalkylene group include polyoxyethylene, polyoxypropylene, and polyoxypolypropylene groups.

[0053] Aliphatic polycarboxylic acids include oxalic acid, malonic acid, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, and derivatives thereof.

[0054] The aromatic monocarboxylic acids include benzoic acid, cinnamic acid, naphthoic acid, toluic acid, and derivatives thereof.

[0055] Examples of aromatic polycarboxylic acids include phthalic acid, isophthalic acid, terephthalic acid, trimellitic acid, pyromellitic acid, and derivatives thereof.

[0056] An amino acid is a compound that has both an amino group and a carboxyl group in its molecular structure, and examples thereof include alanine, valine, leucine, isoleucine, phenylalanine, tryptophan, methionine, proline, glycine, tyrosine, serine, threonine, cysteine, asparagine, glutamine, lysine, arginine, histidine, aspartic acid, and glutamic acid.

[0057] Inorganic acids are acids containing non-metallic atoms, such as sulfuric acid, nitric acid, phosphoric acid, and hydrochloric acid.

[0058] Examples of the organic sulfonic acid compound include alkylbenzene sulfonic acid, polyoxyalkylene alkyl ether sulfonic acid, higher fatty acid amide sulfonic acid, alkyl sulfate monoester, and polyoxyalkylene sulfate monoester.

[0059] Examples of the organic phosphate ester compound include alkyl phosphate monoesters, alkyl phosphate diesters, polyoxyalkylene alkyl ether phosphate monoesters, polyoxyalkylene alkyl ether phosphate diesters, polyoxyalkylene alkyl phenyl ether phosphate monoesters, and polyoxyalkylene alkyl phenyl ether phosphate diesters.

[0060] Examples of the organic sulfate compound include alkyl sulfate, polyoxyalkylene alkyl sulfate, alkylphenyl sulfate, and polyoxyalkylene alkylphenyl sulfate.

[0061] Examples of the organic phosphonic acid compound include alkyl phosphonic acid, aromatic phosphonic acid, and polyoxyalkylene alkyl ether phosphonic acid.

[0062] The pKa of the Bronsted acid compound is preferably 0 to 7, more preferably 1 to 6.5, and even more preferably 2 to 6, from the viewpoint of the stability of the treatment agent in an aqueous system.

[0063] In terms of the stability of the treatment agent in an aqueous system, the Bronsted acid compound preferably includes at least one selected from an organic carboxylic acid compound, an inorganic acid, and an organic phosphate ester compound, more preferably includes at least one selected from lactic acid, an alkyl ether carboxylic acid, an organic phosphate ester compound, phosphoric acid, and acetic acid, and even more preferably includes at least one selected from an alkyl ether carboxylic acid, an organic phosphate ester compound, acetic acid, and phosphoric acid. One or more Bronsted acid compounds may be used.

[0064] [Treatment agent for carbon fiber precursor] The treating agent for carbon fiber precursors of the present invention contains at least one selected from the compound (A) and the compound (B), and a surfactant (C). The reason why the treatment agent for carbon fiber precursors of the present invention can impart excellent sizing properties to carbon fiber precursors in the flame-resistant treatment step is not particularly limited, but it is believed that the surfactant (C) causes compound (A) and / or compound (B) to adhere uniformly and evenly to the fibers, thereby uniformly transferring heat to the fibers, and further, the branched structure of compound (A) and compound (B) improves the heat resistance of the treatment agent, and the treatment agent is sufficiently retained on the fibers even in the flame-resistant treatment step, preventing the fibers from falling apart.

[0065] The proportion of compound (A) in the nonvolatile content of the treatment agent of the present invention is not particularly limited, but from the viewpoint of sizing ability, it is preferably 5 to 95% by weight. The upper limit of this proportion is more preferably 90% by weight, even more preferably 80% by weight, and particularly preferably 70% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 20% by weight, even more preferably 30% by weight, and particularly preferably 40% by weight. Also, for example, 20% by weight to 90% by weight is more preferable, and 30% by weight to 80% by weight is particularly preferable. The non-volatile content concentration in this invention is determined by spreading 2.0 to 3.0 g of the treatment agent evenly on an aluminum sheet (φ110 mm), drying it at 110°C under infrared lamp irradiation, accurately weighing the weight of the residue on the aluminum sheet when the fluctuation range of the volatile content over 150 seconds is 0.15%, and calculating the ratio (percentage) of the remaining weight after heating to the weight before heating.The non-volatile content in this invention refers to the residue on the aluminum sheet when the fluctuation range of the volatile content over 150 seconds is 0.15%, which was determined in the same manner as in the non-volatile content concentration measurement procedure.

[0066] The proportion of compound (B) in the nonvolatile content of the treatment agent of the present invention is not particularly limited, but from the viewpoint of sizing ability, it is preferably 5 to 95% by weight. The upper limit of this proportion is more preferably 90% by weight, even more preferably 80% by weight, and particularly preferably 70% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 20% by weight, even more preferably 30% by weight, and particularly preferably 40% by weight. Also, for example, 20% by weight to 90% by weight is more preferable, and 30% by weight to 80% by weight is particularly preferable.

[0067] The total proportion of compound (A) and compound (B) in the non-volatile content of the treatment agent of the present invention is not particularly limited, but from the viewpoint of sizing ability, it is preferably 5 to 95% by weight. The upper limit of this proportion is more preferably 90% by weight, even more preferably 80% by weight, and particularly preferably 70% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 20% by weight, even more preferably 30% by weight, and particularly preferably 40% by weight. Also, for example, 20% by weight to 90% by weight is more preferable, and 30% by weight to 80% by weight is particularly preferable.

[0068] The proportion of surfactant (C) in the nonvolatile content of the treatment agent of the present invention is not particularly limited, but is preferably 5 to 90% by weight from the viewpoint of imparting uniform sizing properties to fibers. The upper limit of this proportion is more preferably 80% by weight, even more preferably 70% by weight, and particularly preferably 60% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 10% by weight, even more preferably 15% by weight, and particularly preferably 20% by weight. Also, for example, 10% by weight to 80% by weight is more preferable, and 15% by weight to 70% by weight is particularly preferable.

[0069] The proportion of nonionic surfactant in the nonvolatile content of the treatment agent of the present invention is not particularly limited, but is preferably 5 to 90% by weight from the viewpoint of imparting uniform sizing properties to fibers. The upper limit of this proportion is more preferably 80% by weight, even more preferably 70% by weight, and particularly preferably 60% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 10% by weight, even more preferably 15% by weight, and particularly preferably 20% by weight. Furthermore, for example, 10% by weight to 80% by weight is more preferable, and 15% by weight to 70% by weight is particularly preferable.

[0070] The proportion of the silicone compound (D) in the nonvolatile content of the treatment agent of the present invention is preferably 0% by weight to 50% by weight, from the viewpoints of preventing fusion between fibers and improving spinning operability. The upper limit of this proportion is more preferably 45% by weight, even more preferably 40% by weight, particularly preferably 35% by weight, and most preferably 30% by weight. Meanwhile, the lower limit of this proportion is more preferably 5% by weight, even more preferably 10% by weight, and particularly preferably 15% by weight. Furthermore, for example, 0% by weight to 45% by weight is more preferable, 0% by weight to 40% by weight is even more preferable, and 0% by weight to 35% by weight is particularly preferable.

[0071] The proportion of silicone having an amino group in the nonvolatile content of the treatment agent of the present invention is preferably 0% by weight to 50% by weight, from the viewpoints of preventing fusion between fibers and operability in spinning. The upper limit of this proportion is more preferably 45% by weight, even more preferably 40% by weight, particularly preferably 35% by weight, and most preferably 30% by weight. Meanwhile, the lower limit of this proportion is more preferably 5% by weight, even more preferably 10% by weight, and particularly preferably 15% by weight. Furthermore, for example, 0% by weight to 45% by weight is more preferable, 0% by weight to 40% by weight is even more preferable, and 0% by weight to 35% by weight is particularly preferable.

[0072] When the treatment agent of the present invention further contains a Brønsted acid compound, the proportion of the Brønsted acid in the non-volatile content of the treatment agent of the present invention is not particularly limited, but is preferably 0.01% to 10% by weight from the viewpoint of emulsion stability of the treatment agent. The upper limit of this proportion is more preferably 8% by weight, even more preferably 6% by weight, and particularly preferably 4% by weight. Meanwhile, the lower limit of this weight proportion is more preferably 0.05% by weight, even more preferably 0.10% by weight, and particularly preferably 0.20% by weight. Furthermore, for example, 0.05% to 8% by weight is more preferable, and 0.10% to 6% by weight is particularly preferable.

[0073] The weight ratio ((A+B) / C) of the total of the compound (A) and the compound (B) to the surfactant (C) is preferably 0.1 to 20 in terms of imparting uniform sizing properties to the fibers. The upper limit of this weight ratio is more preferably 18, even more preferably 16, and particularly preferably 14. On the other hand, the lower limit of this weight ratio is more preferably 0.5, even more preferably 1.0, and particularly preferably 2.0. Also, for example, it is more preferably 0.5 to 18, and even more preferably 1.0 to 16.

[0074] [Other ingredients] The treating agent for carbon fiber precursors of the present invention may contain other components in addition to the above-mentioned components, as long as the effects of the present invention are not impaired. Examples of other components include phenol-based, amine-based, sulfur-based, phosphorus-based, and quinone-based antioxidants, antistatic agents, smoothing agents, antibacterial agents, preservatives, rust inhibitors, and moisture absorbents.

[0075] Examples of smoothing agents include ester compounds of aliphatic monoalcohols and aliphatic monocarboxylic acids, such as oleyl oleate, octyl stearate, octyl palmitate, and oleyl laurate; and triglycerides of coconut oil, soybean oil, linseed oil, sunflower oil, rapeseed oil, sesame oil, palm oil, and palm kernel oil.

[0076] The treatment agent of the present invention may also contain one or more low molecular weight silicones. Examples of low molecular weight silicones include linear or cyclic silicones having 2 to 7 silicon atoms. Specific examples of low molecular weight silicones include octamethylcyclotetrasiloxane, decamethylcyclopentasiloxane, dodecamethylcyclohexasiloxane, heptamethyloctyltrisiloxane, hexamethyldisiloxane, decamethyltetrasiloxane, and dodecamethylpentasiloxane. These low molecular weight silicones may be substituted. These low molecular weight silicones may be contained as a minor component of the silicone compound (D). The content of the low molecular weight silicone in the treatment agent of the present invention is preferably 5 parts by weight or less per 100 parts by weight of the silicone compound (D).

[0077] The treating agent for carbon fiber precursors of the present invention is preferably in a state in which the components of the treating agent containing at least one selected from the compound (A) and the compound (B), and the surfactant (C), are dissolved, solubilized, emulsified, or dispersed in water. There are no particular limitations on the weight percentage of water and the weight percentage of nonvolatile matter in the entire carbon fiber precursor treatment agent. For example, these may be appropriately determined taking into consideration factors such as the transportation costs for transporting the carbon fiber precursor treatment agent of the present invention and the ease of handling due to emulsion viscosity. The weight percentage of water in the entire carbon fiber precursor treatment agent is preferably 0.1 to 99.9 wt%, more preferably 10 to 99.5 wt%, and particularly preferably 50 to 99 wt%. The weight percentage (concentration) of nonvolatile matter in the entire carbon fiber precursor treatment agent is preferably 0.01 to 99.9 wt%. The upper limit of this percentage is more preferably 90 wt%, and even more preferably 50 wt%. Meanwhile, the lower limit of this percentage is preferably 0.5 wt%, preferably 1 wt%, and even more preferably 5 wt%. Furthermore, for example, 0.5 to 90 wt% is more preferably 0.5 to 50 wt%, and even more preferably 1 to 50 wt%.

[0078] The treating agent for carbon fiber precursors of the present invention can be produced by mixing the components described above. The method for emulsifying and dispersing the components described above is not particularly limited, and known techniques can be used. Examples of such methods include a method in which each component constituting the treating agent for carbon fiber precursors is added to warm water under stirring to emulsify and disperse the components, and a method in which each component constituting the treating agent for carbon fiber precursors is mixed and then subjected to mechanical shear force using a homogenizer, homomixer, ball mill, or the like, while gradually adding water to cause phase inversion emulsification. Alternatively, a method in which some components are emulsified and then the remaining components are dissolved and dispersed may be used.

[0079] The treating agent for carbon fiber precursors of the present invention can be suitably used as a treating agent for carbon fiber precursors.

[0080] [Carbon fiber precursor, its manufacturing method and carbon fiber manufacturing method] The carbon fiber precursor of the present invention is obtained by adhering the above-mentioned treating agent for carbon fiber precursors to a raw material carbon fiber precursor of the carbon fiber precursor, and spinning the resultant into a fiber. The method for producing a carbon fiber precursor of the present invention includes a spinning step of adhering the above-mentioned treating agent for carbon fiber precursors to a raw material carbon fiber precursor of the carbon fiber precursor, and spinning the resultant into a fiber. The method for producing a carbon fiber of the present invention includes a flame-retardant step of converting the carbon fiber precursor having the above-mentioned treatment agent for a carbon fiber precursor attached thereto into a flame-retardant fiber, and a carbonization step of further carbonizing the flame-retardant fiber. The flame-resistant process is preferably a process of converting a carbon fiber precursor into a flame-resistant fiber in an oxidizing atmosphere at 200 to 300°C, and the carbonization process is preferably a process of further carbonizing the flame-resistant fiber in an inert atmosphere at 300 to 2000°C. According to the carbon fiber manufacturing method of the present invention, the treatment agent for carbon fiber precursor of the present invention is used, which improves bundling ability, reduces fiber bundle disorder and uneven drawing, and enables the production of high-quality carbon fibers.

[0081] The spinning step is a step of spinning the carbon fiber precursor by adhering a treatment agent for carbon fiber precursors to a raw material carbon fiber precursor of the carbon fiber precursor, and preferably includes an adhering treatment step and a drawing step. The adhesion treatment step is a step of adhering a treatment agent for a carbon fiber precursor after spinning the raw carbon fiber precursor of the carbon fiber precursor. That is, in the adhesion treatment step, the treatment agent for a carbon fiber precursor is adhered to the raw carbon fiber precursor of the carbon fiber precursor. When the raw carbon fiber precursor of the carbon fiber precursor is stretched immediately after spinning, the high-magnification stretching after the adhesion treatment step is particularly called the "stretching step." The stretching step may be a wet heat stretching method using high-temperature steam, or a dry heat stretching method using a heated roller. The stretching ratio in the stretching step is preferably 2 to 20 times the total stretching ratio of the raw carbon fiber precursor immediately after spinning.

[0082] The carbon fiber precursor is not particularly limited as long as it is a precursor used in the production of carbon fibers, but is preferably composed of acrylic fibers whose main component is polyacrylonitrile obtained by copolymerizing at least 95 mol% or more of acrylonitrile with 5 mol% or less of a flame retardant-promoting component. A vinyl group-containing compound copolymerizable with acrylonitrile is preferably used as the flame retardant-promoting component. The single fiber fineness of the carbon fiber precursor is not particularly limited, but is preferably 0.1 to 2.0 dtex in terms of the balance between performance and production costs. The number of single fibers constituting the fiber bundle of the carbon fiber precursor is also not particularly limited, but is preferably 1,000 to 96,000 in terms of the balance between performance and production costs.

[0083] The treating agent for carbon fiber precursors may be applied to the raw material carbon fiber precursor of the carbon fiber precursor at any stage in the spinning process, but is preferably applied once before the drawing process. It may be applied at any stage before the drawing process, for example, immediately after spinning. It may also be applied again at any stage after the drawing process, for example, immediately after the drawing process, or at the winding stage, or immediately before the flame-resistant process. The application method may be by using a roller or the like, or by a dipping method, a spraying method, or the like.

[0084] In the adhesion treatment step, the application rate of the treatment agent for carbon fiber precursors is preferably 0.1 to 5 wt %, more preferably 0.3 to 1.5 wt %, based on the weight of the carbon fiber precursor, in order to strike a balance between obtaining an effect of preventing fiber-to-fiber sticking and fusion and preventing deterioration in the quality of the carbon fiber due to tar products of the treatment agent in the carbonization step. Note that the application rate of the treatment agent for carbon fiber precursors here is defined as the percentage of the weight of the nonvolatile content of the treatment agent for carbon fiber precursors adhered to the weight of the carbon fiber precursor.

[0085] The flame-resistant treatment is a process in which a carbon fiber precursor having a treatment agent for carbon fiber precursors attached thereto is converted into a flame-resistant fiber in an oxidizing atmosphere at, for example, 200 to 300°C. The oxidizing atmosphere is usually an air atmosphere. The temperature of the oxidizing atmosphere is preferably 230 to 280°C. In the flame-resistant treatment, the carbon fiber precursor after the attachment treatment is heat-treated for 20 to 100 minutes (preferably 30 to 60 minutes) while applying a tension at a draw ratio of 0.90 to 1.10 (preferably 0.95 to 1.05). In this flame-resistant treatment, a flame-resistant fiber having a flame-resistant structure is produced through intramolecular cyclization and oxygen addition to the ring.

[0086] The carbonization step is a step in which the flame-resistant fiber is further carbonized in an inert atmosphere at, for example, 300 to 2000°C. In the carbonization step, a preliminary carbonization step (first carbonization step) is preferably performed by heat-treating the flame-resistant fiber for several minutes in an inert atmosphere such as nitrogen or argon in a baking furnace having a temperature gradient from 300 to 800°C while applying a tension at a draw ratio of 0.95 to 1.15. Thereafter, to further promote carbonization and graphitization, the flame-resistant fiber is heat-treated for several minutes in an inert atmosphere such as nitrogen or argon while applying a tension at a draw ratio of 0.95 to 1.05, which is higher than that of the first carbonization step, to perform the second carbonization step, thereby carbonizing the flame-resistant fiber. The heat treatment temperature in the second carbonization step is preferably controlled by applying a temperature gradient and setting the maximum temperature to 1000°C or higher (preferably 1000 to 2000°C). This maximum temperature is appropriately selected and determined depending on the desired properties (tensile strength, elastic modulus, etc.) of the carbon fiber.

[0087] In the method for producing carbon fibers of the present invention, if a carbon fiber with an even higher elastic modulus is desired, a graphitization step can be carried out following the carbonization step. The graphitization step is usually carried out in an inert atmosphere such as nitrogen or argon at a temperature of 2000 to 3000°C while applying tension to the fiber obtained in the carbonization step.

[0088] The carbon fibers obtained in this manner can be surface-treated depending on the purpose to enhance the adhesive strength with the matrix resin when they are made into a composite material. Gas-phase or liquid-phase treatments can be used as the surface treatment method, and from the viewpoint of productivity, liquid-phase treatments using an electrolyte such as an acid or alkali are preferred. Furthermore, various sizing agents that are highly compatible with the matrix resin can be added to improve the processability and handling of the carbon fibers. [Example]

[0089] The present invention will be described in more detail below with reference to examples, but is not limited to these examples. In the following examples, percentages (%) and parts are by weight unless otherwise specified. Measurements of each property were carried out according to the methods described below.

[0090] <Treatment agent application rate> The application rate of the treatment agent for carbon fiber precursor was calculated by the ethanol extraction method using a Soxhlet extractor. However, for treatment agents containing silicone, the application rate was calculated by the following method. The carbon fiber precursor after the treatment agent was applied was alkali-fused with potassium hydroxide / sodium butyrate, then dissolved in water and adjusted to pH 1 with hydrochloric acid. Sodium sulfite and ammonium molybdate were added to this to develop color, and the silicon content was determined by colorimetric quantification of silicomolybdenum blue (wavelength 815 mμ). The silicon content determined here and the silicon content in the treatment agent previously determined by the same method were used to calculate the application rate (wt%) of the carbon fiber precursor treatment agent.

[0091] <Bundling of carbon fiber precursor> The degree of bundling of the carbon fiber precursor was observed at the time of winding and unwinding in the spinning process of the carbon fiber precursor, and at the inlet and outlet of the flame-resistant furnace in the flame-resistant process, and was visually evaluated overall according to the following evaluation criteria, with ◎ and ○ being considered as passing. ◎: The fiber bundle is of uniform thickness, and no loosening of the individual fibers is observed, showing excellent bundling properties. ◯: The fiber bundle is of uniform thickness, and there is almost no loosening of the single fibers, showing excellent bundling properties. △: The fiber bundle is of uniform thickness, but the individual fibers are loose and the bundling ability is somewhat poor. ×: Many single fibers are loosened, some single fibers are broken, and the bundling ability is poor.

[0092] <Abrasion resistance> Using a TM-type frictional embracing force tester TM-200 (manufactured by Daiei Scientific Instruments Co., Ltd.), a carbon fiber precursor strand (24K) was rubbed 1,000 times (reciprocating speed: 300 times / min) with a tension of 50 g using three mirror-finish chrome-plated stainless steel needles arranged in a zigzag pattern, and the state of fluffing of the carbon fiber precursor strand was visually evaluated according to the following criteria, with ⊚ and ◯ representing pass. ⊚: No fluffing was observed, just like before rubbing, and the abrasion resistance was very good. ◯: Only a few fluffs are observed, and the abrasion resistance is excellent. △: There is a little bit of fluffing and the abrasion resistance is a little poor. ×: Much fuzzing, significant single yarn breakage, and poor abrasion resistance.

[0093] <Spinning operation> After applying the treatment agent to 50 kg of carbon fiber precursor, the degree of contamination of the drying roller was evaluated according to the following evaluation criteria, with ⊚ and ◯ being considered acceptable. ⊚: There is no roller contamination due to gum-up, and the spinning operability is very excellent. ◯: Roller contamination due to gum-up is minimal, and spinning operability is excellent. △: Roller contamination due to gum-up occurs, and spinning operability is slightly poor. ×: Significant roller contamination due to gum-up, single yarns being taken out during spinning, and curling up, resulting in poor spinning operability.

[0094] <Carbon fiber strength> Measurement was carried out in accordance with the epoxy resin impregnated strand method specified in JIS-R-7608, and the average value of 10 measurements was taken as the carbon fiber strength (GPa).

[0095] <Preparation of a sample of non-volatile content of the treatment agent> 2.0 to 3.0 g of the treatment agent was spread evenly on an aluminum sheet (φ110 mm) and dried at 110°C under irradiation with an infrared lamp. The amount of the treatment agent remaining on the aluminum sheet when the fluctuation range of the volatile content over 150 seconds reached 0.15% was taken as the non-volatile content of the treatment agent.

[0096] [Synthesis of Compound (A)] (Synthesis example A-1) A reactor was charged with 1 mol of dipentaerythritol, 6 mol of 3,5,5-trimethylhexanoic acid, and 0.1 mol% of paratoluenesulfonic acid as a catalyst, and an esterification reaction was carried out at 190 to 240°C until the acid value reached 0.1 mgKOH / g, yielding Compound A-1.

[0097] (Synthesis Examples A-2 to A-7, B-1 to B-5, a-8 to a-12, and b-6 to b-10) Compounds A-2 to A-7, B-1 to B-5, a-8 to a-12, and b-6 to b-10 were obtained in the same manner as in Synthesis Example A-1, except that the raw materials and their amounts (molar ratios) were changed to those shown in Tables 1 and 2.

[0098] Example 1 A treatment agent for carbon fiber precursors with a nonvolatile content of 20 wt% was prepared by mixing and emulsifying compound A-1, surfactants C-1, C-2, C-3, antioxidant E-1, and water so as to obtain the nonvolatile content composition of the treatment agent shown in Table 3. The weight percentages of compound A-1, surfactant C-1, surfactant C-2, surfactant C-3, and antioxidant E-1 in the nonvolatile content of the treatment agent were 80 wt%; Next, the prepared treatment agent was further diluted with water to obtain a diluted solution with a nonvolatile content of 3.0% by weight. The dilution solution was applied to a raw material carbon fiber precursor obtained by copolymerizing 97 mol% acrylonitrile and 3 mol% itaconic acid, so that the non-volatile content of the treatment agent was 1.0 wt%. The carbon fiber precursor was then subjected to a drawing process (steam drawing, draw ratio 2.1 times) to produce a carbon fiber precursor (single fiber fineness 0.8 dtex, 24,000 filaments). This carbon fiber precursor was flame-resistant treated in a 250°C flame-resistant furnace for 60 minutes, and then calcined in a carbonization furnace with a temperature gradient of 300 to 1400°C under a nitrogen atmosphere to convert it into carbon fiber. The results of evaluation of each property value are shown in Table 1.

[0099] [Examples 2 to 50, Comparative Examples 1 to 14] A treating agent for carbon fiber precursors, a carbon fiber precursor, and a carbon fiber were prepared and evaluated in the same manner as in Example 1, except that the treating agent was prepared so that the non-volatile composition of the treating agent was as shown in Tables 3 to 8. The results of evaluation of each property value are shown in Tables 3 to 8.

[0100] The details of the components used in Tables 1 to 8 are as follows: <Alcohol (W) with 5 or more hydroxyl groups> (W-1) Dipentaerythritol (number of hydroxyl groups: 6, number of carbon atoms: 10) (W-2) Pentaglycerin (Number of hydroxyl groups: 7, Number of carbon atoms: 15) (W-3) Decaglycerin (number of hydroxyl groups: 12, number of carbon atoms: 30)

[0101] <Fatty acids with branched structures> (X-1) 3,5,5-trimethylhexanoic acid (carbon number: 9) (X-2) 2-Ethylhexanoic acid (carbon number: 8) (X-3) Isodecanoic acid (carbon number: 10)

[0102] <Alcohols with branched structures> (Y-1) 2-Ethylhexanol (carbon number: 8) (Y-2) Isodecyl alcohol (carbon number: 10) (Y-3) Isostearyl alcohol (carbon number: 18)

[0103] <Aliphatic carboxylic acid (Z) having three or more carboxyl groups> (Z-1) Tricarballylic acid (number of carboxyl groups: 3, number of carbon atoms: 6) (Z-2) Citric acid (carboxyl group number: 3, carbon number: 6)

[0104] <Other carboxylic acids> (x-4) Stearic acid (carbon number: 18) (x-5) Oleic acid (carbon number: 18) (x-6) Caprylic acid (carbon number: 8)

[0105] <Other alcohol> (y-4) 1-octanol (carbon number: 8) (y-5) 1-decanol (carbon number: 10) (y-6) Stearyl alcohol (carbon number: 18)

[0106] <Surfactant C> (C-1) POE(20) Hydrogenated Castor Oil Ether (C-2) POE(9) C12-C14 secondary alkyl ether (C-3) POE(5) cetyl ether POE(20) means that an average of 20 moles of polyoxyethylene have been added, and different values ​​in parentheses indicate different numbers of moles of polyoxyethylene added.

[0107] <Silicone Compound (D)> (D-1) Amino-modified silicone (25°C kinematic viscosity: 1,300 mm 2 / s, amino equivalent: 2,000 g / mol, modified type: diamine) (D-2) Amino-modified silicone (25°C kinematic viscosity: 120 mm 2 / s, amino equivalent: 5,000 g / mol, modified type: monoamine)

[0108] <Antioxidant (E)> (E-1) 1,3,5-tris(4-t-butyl-3-hydroxy-2,6-dimethylbenzyl)isocyanuric acid and thiodipropionic acid diolate mixed in a weight ratio of 1:2

[0109] [Table 1]

[0110] [Table 2]

[0111] [Table 3]

[0112] [Table 4]

[0113] [Table 5]

[0114] [Table 6]

[0115] [Table 7]

[0116] [Table 8]

[0117] As can be seen from Tables 3 to 8, the treating agents for carbon fiber precursors of Examples 1 to 50 are treating agents for carbon fiber precursors containing at least one selected from compound (A) and compound (B) and surfactant (C), and therefore can impart excellent sizing ability to the carbon fiber precursor in the flame-stabilizing step. On the other hand, the treating agents for carbon fiber precursors of Comparative Examples 1 to 14 are not treating agents for carbon fiber precursors according to the present invention, and therefore could not impart excellent sizing ability to the carbon fiber precursor in the flame-stabilizing step. [Industrial Applicability]

[0118] The treating agent for carbon fiber precursors of the present invention is a treating agent used when producing carbon fiber precursors, and is useful for producing high-quality carbon fibers. The carbon fiber precursors of the present invention are treated with the treating agent of the present invention and are useful for producing high-quality carbon fibers. High-quality carbon fibers can be obtained by the carbon fiber production method of the present invention.

Claims

1. A treatment agent for carbon fiber precursors, comprising at least one selected from the following compound (A) and the following compound (B), and a surfactant (C). Compound (A): A compound having an ester structure of an alcohol (W) having five or more hydroxyl groups and a fatty acid (X) including a fatty acid having a branched structure. Compound (B): A compound having an ester structure of an alcohol (Y) including an alcohol having a branched structure and an aliphatic carboxylic acid (Z) having three or more carboxyl groups.

2. The treatment agent for carbon fiber precursors according to claim 1 , wherein the fatty acid (X) comprises a saturated fatty acid having a branched structure.

3. 2. The treatment agent for carbon fiber precursors according to claim 1, wherein the fatty acid (X) comprises a fatty acid having a branched structure and having 5 to 10 carbon atoms.

4. 2. The treatment agent for carbon fiber precursors according to claim 1, wherein the alcohol (W) is an alcohol having 5 to 40 carbon atoms and 5 or more hydroxyl groups.

5. 2. The treatment agent for carbon fiber precursors according to claim 1, wherein a total proportion of the compound (A) and the compound (B) in the non-volatile components of the treatment agent for carbon fiber precursors is 5 to 95% by weight.

6. 2. The treatment agent for carbon fiber precursors according to claim 1, wherein a weight ratio ((A+B) / C) of the total of the compound (A) and the compound (B) to the surfactant (C) is 0.1 to 20.

7. A carbon fiber precursor obtained by adhering the treating agent for carbon fiber precursors according to any one of claims 1 to 6 to a raw material carbon fiber precursor of the carbon fiber precursor.

8. A method for producing a carbon fiber, comprising: a flame-resistant step of converting the carbon fiber precursor according to claim 7 into a flame-resistant fiber; and a carbonization step of carbonizing the flame-resistant fiber.

Citation Information

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