Fiber-reinforced composite material intermediate, and method for producing fiber-reinforced composite material

A non-aromatic epoxy resin composition with pigments and curing agents is applied to fiber-reinforced composites, photocured, and optionally heat-cured, addressing UV resistance and curing issues, resulting in a composite with enhanced UV resistance and mechanical properties.

JP7739717B2Active Publication Date: 2025-09-17TORAY INDUSTRIES INC
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Patent Information

Application Number
JP2021009278
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-03
Filing Date
2021-01-25
Publication Date
2025-09-17
Estimated Expiration
2041-01-25

AI Technical Summary

Technical Problem

Existing fiber-reinforced composite materials, particularly those using epoxy resin compositions, suffer from poor UV resistance and deterioration when exposed to light, and the application of UV-resistant coatings can compromise mechanical properties during thermal curing.

Method used

A method involving the application of a non-aromatic epoxy resin composition containing specific pigments and a cationic or anionic polymerization curing agent, followed by photocuring and optional heat curing, to create a fiber-reinforced composite material intermediate with enhanced UV resistance.

Benefits of technology

The method produces a composite material with improved UV resistance and prevents mixing of UV-resistant and UV-sensitive resins during thermal curing, maintaining mechanical integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method for producing a fiber-reinforced composite material intermediate which protects a surface of a base material such as a prepreg with a material rich in UV resistance and can protect degradation by UV, and prevents mixing a resin of a base material inferior in UV resistance during thermosetting and a coating agent having UV resistance.SOLUTION: A method for producing a fiber-reinforced composite material intermediate includes coating an epoxy resin composition containing the following components [A] to [D] onto a surface of a fiber-reinforced composite material preliminary body, and then photocuring the epoxy resin composition. [A] Non-aromatic epoxy resin. [B] Pigment having an average particle diameter of 0.1-10 μm. [C] Non-aromatic thermoplastic resin. [D] Cationic or anionic polymerization curing agent.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a method for producing a fiber-reinforced composite material intermediate, which comprises applying an epoxy resin composition having excellent UV resistance to the surface of a fiber-reinforced composite material preform and then photocuring the epoxy resin composition. [Background technology]

[0002] Products requiring high structural performance, such as aircraft structural components, wind turbine blades, automobile exterior panels, and computer applications such as IC trays and laptop computer housings, often use prepregs, which are made by impregnating fibers with thermosetting resins such as epoxy resin, or resin transfer molding (RTM) materials, in which preformed fibers are injected with thermosetting resin and then heated to harden. However, fiber-reinforced composite materials obtained by hardening general prepregs or RTM materials have poor UV resistance, and their surfaces deteriorate and degrade when exposed to light. Therefore, in recent years, there has been an increasing demand for adding UV resistance to the surface of carbon fiber-reinforced composite materials.

[0003] Patent Document 1 discloses a sheet material with UV blocking properties as a surface protection film for carbon fiber reinforced composite materials. Patent Document 2 also discloses a UV-resistant resin composition that combines an epoxy resin containing no aromatic rings with a carboxylic acid anhydride containing no aromatic rings and an ultraviolet absorber, which can be used as a coating agent for carbon fiber reinforced composite materials. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Special Publication No. 2015-507648 [Patent Document 2] International Publication No. 2003 / 002661 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the technology disclosed in Patent Document 1 has a problem in that the epoxy resin composition used in the film material contains an aromatic ring, and the film material itself has poor UV resistance. Also, in the technology disclosed in Patent Document 2, although the coating agent itself has UV resistance, when the coating agent is applied to the surface of the prepreg used in the fiber-reinforced composite material and then thermally cured, the coating agent and the prepreg resin, which does not have UV resistance, may mix, resulting in a loss of UV resistance or a deterioration in the mechanical properties of the fiber-reinforced composite material.

[0006] Therefore, the challenge is to realize a method for manufacturing a fiber-reinforced composite material intermediate that can protect the surface of a base material such as a prepreg with a highly UV-resistant material, preventing deterioration due to UV, and that prevents the base material resin, which has poor UV resistance, from mixing with a UV-resistant coating agent during thermal curing. [Means for solving the problem]

[0007] The present invention has the following configuration to solve the above problems: Namely, the method for producing a fiber-reinforced composite material intermediate of the present invention is characterized by applying an epoxy resin composition containing the following components [A] to [D] to the surface of a fiber-reinforced composite material preform, and then photocuring the epoxy resin composition. [A] Non-aromatic epoxy resin [B] Pigment with an average particle size of 0.1 to 10 μm [C] Non-aromatic thermoplastic resin [D] Cationic or anionic polymerization curing agent.

[0008] The method for producing a fiber-reinforced composite material of the present invention is characterized in that the fiber-reinforced composite material intermediate produced by the above-mentioned method for producing a fiber-reinforced composite material intermediate is further post-cured by heat. [Effects of the Invention]

[0009] The present invention can provide a fiber-reinforced composite material intermediate that can protect the surface of a base material such as a prepreg with a highly UV-resistant material, preventing deterioration due to UV, and that prevents mixing of a base material resin with poor UV resistance with a coating agent with UV resistance during thermal curing. DETAILED DESCRIPTION OF THE INVENTION

[0010] The method for producing a fiber-reinforced composite material of the present invention is a method for producing a fiber-reinforced composite material intermediate, which comprises applying an epoxy resin composition containing the following components [A] to [D] to the surface of a fiber-reinforced composite material preform, and then photocuring the epoxy resin composition: [A] Non-aromatic epoxy resin [B] Pigment with an average particle size of 0.1 to 10 μm [C] Non-aromatic thermoplastic resin [D] Cationic or anionic polymerization curing agent.

[0011] The component [A] of the present invention is a non-aromatic epoxy resin. Here, "aromatic" refers to a resin that contains aromatic hydrocarbons, compounds with resonance structures, or conjugated unsaturated heterocyclic compounds in its chemical structure, while anything other than that is "non-aromatic." In other words, a non-aromatic epoxy resin refers to an epoxy resin that does not contain aromatic hydrocarbon groups or unsaturated heterocyclic rings in its chemical structure.Examples of non-aromatic epoxy resins include alicyclic epoxy resins (epoxy resins containing a cycloalkane ring), such as tetrahydroindene diepoxide, vinylcyclohexene oxide, (3',4'-epoxycyclohexane)methyl 3,4-epoxycyclohexanecarboxylate, dipentene dioxide, bis(3,4-epoxycyclohexylmethyl) adipate, dicyclopentadiene dioxide, bis(2,3-epoxycyclopentyl)ether, and 1,2-epoxy-2,2-bis(hydroxymethyl)-1-butanol. 4-(2-oxiranyl)cyclohexane adduct, epoxidized butanetetracarboxylic acid tetrakis-(3-cyclohexenylmethyl) modified epsilon-caprolactone, bi-7-oxabicyclo[4.1.0]heptane, dodecahydrobisphenol A diglycidyl ether, dodecahydrobisphenol F diglycidyl ether, 1,4-cyclohexanedimethanol diglycidyl ether, hexahydrophthalic acid diglycidyl ester, hexahydroterephthalic acid diglycidyl ester, 2,2-bis(4-hydroxycyclohexyl) Specific examples of epoxy resins that do not contain any of an aromatic ring, an amine nitrogen atom, a cycloalkane ring, or a cycloalkene ring include ethylene glycol diglycidyl ether, propylene glycol diglycidyl ether, 1,4-butanediol glycidyl ether, 1,6-hexanediol diglycidyl ether, neopentylene glycol diglycidyl ether, glycerol polyglycidyl ether, and diglycerol polyglycidyl ether. Specific examples of trimethylolpropane polyglycidyl ether, sorbitol polyglycidyl ether, 1,4-bis(2-oxiranyl)butane, pentaerythritol polyglycidyl ether, and monofunctional epoxy compounds (epoxy compounds containing only one oxirane ring) that do not contain any aromatic ring or amine nitrogen atom include 4-tert-butyl glycidyl ether, butyl glycidyl ether, 1-butene oxide, 1,2-epoxy-4-vinylcyclohexane, and 2-ethylhexyl glycidyl ether.

[0012] From the viewpoint of heat resistance, the non-aromatic epoxy resin is preferably an alicyclic epoxy or one having a cycloalkane structure such as a cyclohexane ring in the molecule.

[0013] The non-aromatic epoxy resin may be a commercially available product. For example, "Celloxide (registered trademark)" 2021P, "Celloxide (registered trademark)" 8010, "Celloxide (registered trademark)" 2000, "Epolead (registered trademark)" GT401, "Celloxide (registered trademark)" 2081, EHPE3150 (manufactured by Daicel Chemical Industries, Ltd.), THI-DE (manufactured by JXTG Nippon Oil & Energy Corporation), TTA21, AAT15, TTA22 (manufactured by Sun Chemical Co., Ltd.), etc. ), Ex-121, Ex-211, Ex-212, Ex-313, Ex-321, Ex-411 (manufactured by Nagase Chemtec Corporation), Epolite (registered trademark) 4000 (manufactured by Kyoeisha Chemical Co., Ltd.), ST-3000, ST-4000 (manufactured by Nippon Steel Chemical & Material Co., Ltd.), YX8000 (manufactured by Mitsubishi Chemical Corporation), and EPALOY5000 (manufactured by HUNTSMAN).

[0014] By using at least two types of the non-aromatic epoxy resins, the reactivity of the epoxy resin composition can be controlled, and a good balance between the rapid curing property and the pot life of the epoxy resin composition can be obtained.

[0015] By including the non-aromatic epoxy resin in an amount of 90 mass % or more based on the entire epoxy resin composition, high light resistance (UV resistance) can be obtained.

[0016] Component [B] is a pigment (average particle size 0.1 to 10 μm). Examples of pigments include barium sulfate, zinc sulfide, titanium oxide, molybdenum red, cadmium red, chromium oxide, titanium yellow, cobalt green, cobalt blue, ultramarine, barium titanate, carbon black, iron oxide, red phosphorus, and copper chromate. An average particle size of 0.1 to 10 μm, preferably 0.1 to 5 μm, and more preferably 0.3 to 5 μm, allows for the production of an epoxy resin composition with high UV blocking properties. The average particle size is measured using a laser diffraction scattering method with an LA-950 (manufactured by Horiba, Ltd.). The volumetric results measured using "Araldite®" GY282 (component: bisphenol F-type epoxy resin, manufactured by Huntsman Japan Co., Ltd.) are used as the dispersion medium, and the particle size distribution measured is determined by the particle size (median diameter) at 50% of the cumulative curve of the particle size distribution.

[0017] By including the pigment in an amount of preferably 15 to 75 parts by mass, more preferably 25 to 55 parts by mass, and even more preferably 30 to 50 parts by mass relative to 100 parts by mass of the total epoxy resin contained in the epoxy resin composition, it is possible to obtain a good balance between the light-shielding properties of the cured resin and the adhesion between the epoxy resin composition according to the present invention and a fiber-reinforced composite material preform when hand-coated.

[0018] Component [C] is a non-aromatic thermoplastic resin. Here, "aromatic" refers to compounds containing aromatic hydrocarbons, compounds with resonance structures, or conjugated unsaturated heterocyclic compounds in their chemical structure; all other compounds are "non-aromatic." In other words, non-aromatic thermoplastic resins are thermoplastic resins that do not contain aromatic hydrocarbon groups or unsaturated heterocyclic rings in their chemical structure. Examples of non-aromatic thermoplastic resins include polyvinyl alcohol, polyvinyl acetal, polyvinyl formal, polyvinyl acetoacetal, polyvinyl butyral, polyvinyl acetate, hydrogenated bisphenol A-pentaerythritol phosphite polymer, hydrogenated terpene, and hydrogenated terpene phenol. Polyvinyl acetoacetal and polyvinyl butyral are preferred because they improve the elongation of the cured epoxy resin composition. Here, elongation refers to the bending strain (%) when the cured epoxy resin composition is bent at three points in a specified shape.

[0019] These non-aromatic thermoplastic resins are preferably soluble in the non-aromatic epoxy resin of component [A]. For example, if at least 10 parts by mass of thermoplastic resin powder is added to 100 parts by mass of the non-aromatic epoxy resin of component [A] and kneaded at 100 to 120°C for 1 hour, and the thermoplastic resin powder loses weight compared to the initial weight, the resin is considered soluble. Weight loss refers to a decrease in the powder mass that is optically undetectable, or a decrease of 10% or more in mass compared to the initial weight when the remaining powder is recovered. From the perspective of dissolving in the epoxy resin, the thermoplastic resin powder preferably has an average particle size of 100 μm or less as measured by laser diffraction. Furthermore, an average particle size of more than 100 nm is preferred, as it prevents aggregation during storage and facilitates mixing with the epoxy resin.

[0020] The non-aromatic thermoplastic resin can be a commercially available product. Examples include "J-POVAL (registered trademark)" (manufactured by Nippon Vinyl Acetate & Poval Co., Ltd.), "Vinylec (registered trademark)" (manufactured by JNC Corporation), "S-LEC (registered trademark)" (manufactured by Sekisui Chemical Co., Ltd.), "Ultrasene (registered trademark)" (manufactured by Tosoh Corporation), JPH-3800 (manufactured by Johoku Chemical Industry Co., Ltd.), and YS Polystar UH130 (manufactured by Yasuhara Chemical Co., Ltd.). When the epoxy resin composition is applied as a spray to the surface of a fiber-reinforced composite material preform, it is preferable to include 0.05 parts by mass or more of the non-aromatic thermoplastic resin per 100 parts by mass of the total epoxy resin contained in the epoxy resin composition, as this will provide a resin flow suppression effect. Furthermore, when the epoxy resin composition is applied by hand to the surface of a fiber-reinforced composite material preform, by including preferably 75 parts by mass or less, more preferably 65 parts by mass or less, and even more preferably 55 parts by mass or less of the non-aromatic thermoplastic resin per 100 parts by mass of the non-aromatic epoxy resin [A], good adhesion between the coating agent of the epoxy resin composition according to the present invention and the fiber-reinforced composite material preform can be obtained.

[0021] Furthermore, the molecular weight of these non-aromatic thermoplastic resins is preferably 5,000 to 70,000 g / mol, more preferably 7,000 to 65,000 g / mol, and even more preferably 10,000 to 60,000 g / mol, in order to obtain a good balance between uniform dissolution in the epoxy resin composition and the resin flow suppression effect. Here, the molecular weight refers to the weight average molecular weight in terms of polystyrene measured by gel permeation chromatography using HLC-8420GPC (manufactured by Tosoh Corporation).

[0022] Examples of commercially available products with different molecular weights include polyvinyl formal ("Vinylec (registered trademark)" K, manufactured by JNC Corporation, molecular weight 40,000 to 54,000 g / mol), polyvinyl formal ("Vinylec (registered trademark)" E, manufactured by JNC Corporation, molecular weight 95,000 to 134,000 g / mol), and polyvinyl acetoacetal ("S-LEC (registered trademark)" KS-10, manufactured by Sekisui Chemical Co., Ltd., molecular weight 17,000 g / mol).

[0023] Component [D] is a cationic or anionic curing agent. Examples of cationic curing agents include 1-naphthylmethylmethyl p-hydroxyphenylsulfonium hexafluoroantimonate, 2-methylbenzylmethyl p-hydroxyphenylsulfonium hexafluoroantimonate, benzylmethyl p-hydroxyphenylsulfonium hexafluoroantimonate, dimethyl-p-acetoxyphenylsulfonium hexafluoroantimonate, diaryliodonium salts, boron trifluoride piperidine, boron trifluoride monoethylamine, diaryliodonium salts, and sulfonium salts.

[0024] The cationic curing agent may be a commercially available product. Examples include ADEKAOPTON (registered trademark) CP-77, ADEKAOPTON (registered trademark) CP-66 (manufactured by ADEKA Corporation), CI-2639, CI-2624 (Nippon Soda), SAN-AID (registered trademark) SI-60, SAN-AID (registered trademark) SI-80, SAN-AID (registered trademark) SI-100, SAN-AID (registered trademark) SI-150, SAN-AID (registered trademark) SI-B4, SAN-AID (registered trademark) SI-B5 (manufactured by Sanshin Chemical Industry Co., Ltd.), TA-100, IK-1PC(80) (manufactured by San-Apro Co., Ltd.), boron trifluoride piperidine, and boron trifluoride monoethylamine (manufactured by Stella Chemifa Co., Ltd.). The cationic curing agent is preferably a photothermal cationic curing agent or a thermal cationic curing agent. Photothermal cationic curing agents are those that become reactive when exposed to light below a certain wavelength, such as ultraviolet or visible light, or heat above a certain temperature, while thermal cationic curing agents are those that become reactive when exposed to heat. Photothermal cationic curing agents are preferred because they can be cured in a wide variety of environments, while thermal cationic curing agents are preferred because they can achieve high storage stability through temperature control.

[0025] Examples of anionic curing agents include phosphorus hexafluoride, antimony hexafluoride, arsenic hexafluoride, tin hexachloride, iron tetrachloride, bismuth pentachloride, and niobium hexachloride.

[0026] By using two types of the above curing agents, the reactivity of the epoxy resin composition can be controlled, and a good balance between the rapid curing property and the pot life of the epoxy resin composition can be obtained.

[0027] The curing agent is preferably contained in an amount of 0.5 to 10 parts by mass, more preferably 1 to 5 parts by mass, and even more preferably 1 to 3 parts by mass, relative to 100 parts by mass of the total epoxy resin contained in the epoxy resin composition, thereby achieving fast curing properties, an effect of suppressing resin flow and volatilization during molding, and a good balance of fast curing properties, pot life, and UV resistance.

[0028] The epoxy resin composition of the present invention may also contain a thixotropy-imparting agent as the component [E]. Examples of the thixotropy-imparting agent include silicon dioxide, magnesium silicon sodium fluoride hydroxide oxide, alkyl quaternary ammonium salts, synthetic hectorite, clay minerals, modified bentonite, and mixtures of minerals and organically modified bentonite.

[0029] The thixotropy-imparting agent may be a commercially available product, and examples thereof include fumed silica (Aerosil (registered trademark) (manufactured by Nippon Aerosil Co., Ltd.)), OPTIGEL (registered trademark), OPTIBENT (registered trademark), GARAMITE (registered trademark), LAPONITE (registered trademark), TIXOGEL (registered trademark), CRAYTONE (registered trademark), CLOISITE (registered trademark) (manufactured by BYK Corporation), Somasif (registered trademark) ME-100, and Micromica MK (manufactured by Katakura Co-op Agri Co., Ltd.).

[0030] By including the thixotropy-imparting agent in an amount of preferably 0.1 to 20 parts by mass, more preferably 0.5 to 10 parts by mass, and even more preferably 0.5 to 5 parts by mass relative to 100 parts by mass of the total epoxy resin contained in the epoxy resin composition, a good balance can be obtained between the effect of suppressing resin flow during molding and the adhesion between the coating agent of the epoxy resin composition according to the present invention and a fiber-reinforced composite material preform.

[0031] Furthermore, the epoxy resin composition of the present invention may contain a curing aid as component [F]. Examples of the curing aid include 4-hydroxyphenyldimethylsulfonium methylsulfate and 4-(methylthio)phenol.

[0032] The curing aid may be a commercially available product, and examples thereof include "Saneido (registered trademark)" SI-S and "Saneido (registered trademark)" S-ME (manufactured by Sanshin Chemical Industry Co., Ltd.).

[0033] By including the curing aid in an amount of preferably 0.1 to 10 parts by mass, more preferably 0.1 to 5 parts by mass, and even more preferably 0.1 to 2.5 parts by mass relative to 100 parts by mass of the total epoxy resin contained in the epoxy resin composition, it is possible to obtain a good balance between the rapid curing property and the pot life of the epoxy resin composition.

[0034] The epoxy resin composition of the present invention may contain rubber as component [G]. Examples of rubber include natural rubber, diene rubber, and non-diene rubber. Examples of diene rubber include styrene-butadiene rubber, isoprene rubber, butadiene rubber, chloroprene rubber, and acrylonitrile-butadiene rubber. Examples of non-diene rubber include butyl rubber, ethylene-propylene rubber, ethylene-propylene-diene rubber, urethane rubber, silicone rubber, and fluororubber. Non-diene rubber is preferred as a component of the epoxy resin composition of the present invention. Among these, ethylene-propylene rubber, ethylene-propylene-diene rubber, silicone rubber, and fluororubber, which do not have double bonds in the polymer backbone, are particularly preferred because they have high light resistance and little effect on the UV resistance of the epoxy resin composition of the present invention. Furthermore, powder-like rubber is particularly preferred because it disperses well in the epoxy resin composition.

[0035] When applying an epoxy resin composition as a spray, including at least 0.05 parts by mass of the above-mentioned rubber per 100 parts by mass of the total epoxy resin contained in the epoxy resin composition provides excellent resin flow suppression and elongation of the cured epoxy resin composition, thereby preventing cracking after application. Here, elongation refers to the bending strain (%) when the cured epoxy resin composition is bent at three points in a predetermined shape. "Spray" refers to a method in which the epoxy resin composition is filled into a container and sprayed into a mist or foam using a nozzle with high-pressure air or mechanical movement. Including preferably 0.05 to 1 part by mass of the above-mentioned rubber per 100 parts by mass of the total epoxy resin contained in the epoxy resin composition is preferred because it maintains a high spray volume per unit time and provides a high resin flow suppression effect.

[0036] Furthermore, when applying the epoxy resin composition by hand, the content of the rubber is preferably 1 to 50 parts by mass per 100 parts by mass of the total epoxy resin. Inclusion of 1 part by mass or more of rubber per 100 parts by mass of the total epoxy resin results in excellent resin flow suppression and excellent elongation of the cured epoxy resin composition, thereby preventing cracking after application. Inclusion of 50 parts by mass or less of rubber results in excellent adhesion between the target and the epoxy resin composition. Hand application here refers to, for example, a method in which the epoxy resin composition is stored in a container, a brush or roller is dipped into the epoxy resin composition, and then the composition is applied to the target by hand using the brush or roller, or a method in which the epoxy resin composition is placed on the target and then spread using a spatula or bar coater.

[0037] The rubber may be a commercially available product, and examples thereof include KMP-598, KMP-600, KMP-601, KMP-602, and KMP-605 (manufactured by Shin-Etsu Chemical Co., Ltd.), Cevian (registered trademark) (manufactured by Daicel Miraize Co., Ltd.), JSR N215SL, JSR N222SH, JSR N238H, JSR N241H, JSR N250S, PN30A, PN20HA, and N280 (manufactured by JSR Corporation).

[0038] The epoxy resin composition according to the present invention can be applied to the outermost surface of a prepreg, RTM material, or resin film infusion (RFI) material (also referred to as a "fiber-reinforced composite material precursor" in the present invention) used in a fiber-reinforced composite material, or a semi-cured or completely cured composite material (referred to as a "fiber-reinforced composite material preform" in the present invention), and the resin applied to the surface layer can be photocured using a light source. Thereafter, if necessary, the epoxy resin layer applied to the surface layer can be post-cured using heat, or the uncured resin contained in the fiber-reinforced composite material precursor can be cured. (In the present invention, the product obtained by applying the epoxy resin composition to the surface of a "fiber-reinforced composite material preform" and photocuring the epoxy resin composition is referred to as a "fiber-reinforced composite material intermediate," and the product obtained by further curing the "fiber-reinforced composite material intermediate" is referred to as a "fiber-reinforced composite material.") Here, prepreg refers to a fiber-reinforced composite material precursor formed by impregnating reinforcing fibers with a thermosetting resin such as an epoxy resin. RTM materials refer to fiber-reinforced composite material precursors formed by stacking reinforcing fiber substrates in a mold and injecting a liquid thermosetting resin into the reinforcing fiber substrate. RFI materials refer to fiber-reinforced composite material precursors formed by layering a thermosetting resin film on a reinforcing fiber substrate and then heating and pressurizing the resulting laminate to impregnate the reinforcing fiber substrate with the thermosetting resin. A fiber-reinforced composite material preform with a degree of cure of 0 to 70% is preferred because the resin contained in the fiber-reinforced composite material preform is not yet fully cured, allowing for chemical bonding with a coating agent made from the epoxy resin composition of the present invention, improving adhesion between the coating agent and the fiber-reinforced composite material preform. For fiber-reinforced composite material preforms with a degree of cure exceeding 70%, it is preferable to roughen the surface by polishing or plasma treatment, thereby physically improving adhesion between the coating agent and the fiber-reinforced composite material preform. A degree of cure of 20 to 100% is preferable in that it makes it possible to reduce the amount of resin contained in the fiber reinforced composite material preform that is mixed with the coating agent comprising the epoxy resin composition of the present invention during molding.Therefore, in order to obtain a good balance between the adhesiveness between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform and the effect of suppressing the amount of resin contained in the fiber-reinforced composite material preform that is mixed with the coating agent made of the epoxy resin composition of the present invention during molding, it is more preferable that the degree of cure is 20 to 70%.

[0039] The epoxy resin composition according to the present invention is effective in obtaining a fiber-reinforced composite material having UV resistance on the surface by applying it to a fiber-reinforced composite material preform, photocuring it, and then heat curing it, but the epoxy resin composition may be applied by spraying, or by hand application using a brush or a bar coater, etc. After hand application, it is also possible to enhance adhesion between the epoxy resin composition according to the present invention and the fiber-reinforced composite material preform by using a release film or the like and evacuating it.

[0040] The epoxy resin composition of the present invention can be applied to a target object by various methods. For example, the epoxy resin composition can be dissolved in an organic solvent selected from acetone, methyl ethyl ketone, and methanol to reduce the viscosity, or the epoxy resin composition can be used as is and sprayed onto a fiber-reinforced composite material preform. Alternatively, a roller or brush can be dipped into the epoxy resin composition of the present invention and used to apply the composition to a fiber-reinforced composite material preform. Furthermore, the epoxy resin composition of the present invention can be applied to a fiber-reinforced composite material preform using a bar coater or spatula. In either method, the epoxy resin composition can be heated as needed to reduce the viscosity of the epoxy resin composition before application.

[0041] As described above, the epoxy resin composition according to the present invention can be applied to an object by any method, but the preferred application method varies depending on the room-temperature viscosity of the epoxy resin composition. When the room-temperature viscosity of the epoxy resin composition is 100 to 500 mPa·s, spray application is preferred. When applying by spray, a room-temperature viscosity of 100 mPa·s or higher can suppress resin flow at room temperature and maintain a uniform thickness of the coating material, while a room-temperature viscosity of 500 mPa·s or lower allows the epoxy resin composition to be applied without clogging when sprayed, improving workability.

[0042] When the room temperature viscosity of the epoxy resin composition according to the present invention is 0.5 to 30 Pa·s, it is preferable to apply it by hand using a roller, a brush, etc. When applying it using a brush, roller, etc., it is preferable that the room temperature viscosity of the epoxy resin composition is 0.5 Pa·s or more, since sagging during application can be suppressed, and when it is 30 Pa·s or less, it is possible to easily immerse the brush, roller, etc. in the epoxy resin composition, thereby improving workability.

[0043] When the room temperature viscosity of the epoxy resin composition according to the present invention is 30 to 30,000 Pa·s, hand application using a spatula, bar coater, or the like is preferred. When hand application is performed, a room temperature viscosity of the epoxy resin composition of 30 Pa·s or more is preferred because it effectively inhibits resin flow during molding. Furthermore, a room temperature viscosity of the epoxy resin composition of 30,000 Pa·s or less is preferred because it provides high adhesion between the epoxy resin composition and a fiber-reinforced composite material preform, thereby enhancing the adhesion between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform.

[0044] The weight of the epoxy resin composition of the present invention when applied to a fiber-reinforced composite material preform is 30 to 300 g / m 2 It is preferable that the weight of the epoxy resin composition is 30 g / m 2 When the thickness is 300 g / m or more, the surface of the fiber-reinforced composite material can be covered without being visible through the epoxy resin composition, and sufficient UV resistance can be exhibited. 2If the amount is less than this, heat generation due to curing of the epoxy resin composition can be suppressed when molding together with the fiber-reinforced composite material preform, which is preferable.

[0045] The manufacturing method of the present invention is characterized by applying the epoxy resin composition of the present invention to the surface of a fiber-reinforced composite material preform, such as prepreg, RTM material, or RFI material, and then photocuring the applied epoxy resin composition. Various carbon fibers, graphite fibers, glass fibers, aramid fibers, and the like are preferably used as the reinforcing fibers of the fiber-reinforced composite material preform. Producing a fiber-reinforced composite material using this method is advantageous in that it enables the amount of resin contained in the fiber-reinforced composite material preform, which is mixed with the coating agent comprising the epoxy resin composition of the present invention during the molding process, to be reduced. Furthermore, the fiber-reinforced composite material preform produced by this method can be fully cured by pressure and heat treatment, resulting in a fiber-reinforced composite material with UV resistance on the surface.

[0046] Various methods are used to adjust the degree of cure of fiber-reinforced composite preforms. When using prepregs, for example, they can be molded by heating and pressure using methods such as press molding, autoclave molding, bagging, tape wrapping, internal pressure molding, and pultrusion. Various known methods are also used to adjust the degree of cure of RTM materials. Methods include VaRTM, which injects resin under vacuum pressure, and HP-RTM, which injects resin under high pressure, depending on the characteristics of the thermosetting resin used in the RTM material. The degree of cure is controlled by the temperature and time of pretreatment. When controlling the degree of cure, using a multi-stage process in which the curing temperature is gradually changed is preferable because it allows for more stable control of the degree of cure and reduces voids in the fiber-reinforced composite material. The degree of cure of RTM materials can also be controlled by heating them in an oven after demolding. A degree of cure of the fiber-reinforced composite material preform of 30 to 70% is preferable because it increases the adhesion between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform, and a degree of cure of 80 to 100% is preferable because it reduces the likelihood of distortion during post-curing.

[0047] Various known post-curing methods can be used, but preferred methods include heating in an autoclave, oven, or press, and applying pressure as needed. Post-curing can be carried out in a metal, FRP, plaster, or wooden mold, or in a free-standing manner without a mold. The curing temperature depends on the curing agent and curing catalyst used in the resin of the fiber-reinforced composite material preform, but is preferably carried out at a temperature of 100 to 200°C from the perspectives of suppressing distortion and wrinkles due to thermal stress and maintaining adhesion between the resin layer applied as the outermost layer and the fiber-reinforced composite material preform.

[0048] After applying the coating agent, scraping off any excess coating agent that drips with a spatula or similar tool has a favorable effect on the surface quality of the molded product. Furthermore, by roughening the surface of a fiber-reinforced composite material preform, the degree of cure of which has been adjusted by pretreatment before UV curing, using polishing or plasma treatment, the adhesion between the coating agent and the fiber-reinforced composite material preform, as well as the adhesion between the coating agent and the fiber-reinforced composite material preform, can be improved. Furthermore, by roughening the surface of the coating agent after photocuring using polishing or plasma treatment, the adhesion between the coating agent and the paint or primer that covers it can be improved. [Example]

[0049] The present invention will be described in more detail below with reference to examples. However, the scope of the present invention is not limited to these examples. Measurements of various properties were carried out in an environment of 23°C and 50% relative humidity unless otherwise noted.

[0050] <Materials used in Examples and Comparative Examples> (1) Component [A] Non-aromatic epoxy resin (3',4'-epoxycyclohexane) methyl 3,4-epoxycyclohexanecarboxylate ("Celloxide (registered trademark)" 2021P, manufactured by Daicel Corporation) Epoxy equivalent: 136 (g / eq.) Diglycidyl ether of 2,2-bis(4-hydroxycyclohexyl)propane (YX8000, manufactured by Mitsubishi Chemical).

[0051] (2) Component [B] Pigment Titanium oxide (rutile type) (“Ti-Pure (registered trademark)” R-960, manufactured by Chemours, average particle size 0.5 μm).

[0052] (3) Component [C] Non-aromatic thermoplastic resin Polyvinyl formal ("Vinylec K (registered trademark)", manufactured by JNC Corporation).

[0053] (4) Component [D] Cationic curing agent Dimethyl-p-acetoxyphenylsulfonium hexafluoroantimonate "Sanaid (registered trademark)" SI-150, manufactured by Sanshin Chemical Industry Co., Ltd.

[0054] (5) Fiber-reinforced composite material preform T300 / 3631-2 woven fabric (plain weave) prepreg (manufactured by Toray Industries, Inc.) -T300 fabric (plain weave) (manufactured by Toray Industries, Inc.).

[0055] (6) Component [E] Thixotropic agent Fumed silica ("AEROSIL (registered trademark)" RY200S, manufactured by Nippon Aerosil Co., Ltd.).

[0056] (7) Component [F] Curing aid 4-Hydroxyphenyldimethylsulfonium methyl sulfate ("Sanaide (registered trademark)" SI-S, manufactured by Sanshin Chemical Industry Co., Ltd.).

[0057] (8) Component [G] Rubber Silicone rubber powder (KPM-601, manufactured by Shin-Etsu Chemical Co., Ltd.).

[0058] <Methods for producing and evaluating epoxy resin compositions and fiber-reinforced composite materials> Epoxy resin compositions and fiber-reinforced composite materials of the respective Examples and Comparative Examples were prepared by the following methods, and various measurements were carried out.

[0059] (1) Preparation of epoxy resin composition An epoxy resin corresponding to component [A], a pigment corresponding to component [B], and optionally a thixotropic agent [E] and a rubber [G] listed in Tables 1 to 8 were placed in a three-roll mill and mixed at an arbitrary roll rotation speed to obtain a powder mixture premix. The powder mixture premix and a thermoplastic resin corresponding to component [C] listed in Tables 1 to 5 were placed in a mixer and heated and mixed to dissolve the thermoplastic resin. Next, while continuing the kneading, the temperature was lowered to 60°C or below, and component [D] a cationic curing agent and optionally component [F] a curing aid listed in Tables 1 to 8 were added and stirred to obtain an epoxy resin composition.

[0060] (2) Adjusting the degree of hardening of the fiber-reinforced composite material preform A six-ply laminate of T300 / 3631-2 woven fabric (plain weave) prepreg was prepared as a fiber-reinforced composite material precursor and placed in an oven at 180°C for a certain period of time to adjust the degree of cure of the prepreg. Additionally, a six-ply laminate (also referred to as "preform" in this specification) was prepared as an RTM material by preforming T300 woven fabric (plain weave) in a molding die. The preform was molded, and a resin composition (also referred to as "Resin A" in this specification) containing 100 parts by mass of triglycidyl-m-aminophenol ("Araldite®" MY0600, manufactured by Huntsman Corporation, epoxy equivalent: 118) and diethyltoluenediamine ("jER®" Cure W, manufactured by Mitsubishi Chemical Corporation, amine equivalent: 68) was mixed so that the epoxy equivalent / amine equivalent ratio was 1.0 was poured into the mold. The resin composition was then poured into the preform at 60°C to obtain an RTM material. The degree of hardness of the obtained RTM material was adjusted by placing it in an oven at 180°C for a certain period of time.

[0061] (3) Measurement of the degree of hardening of a fiber-reinforced composite material The degree of cure of the fiber-reinforced composite material preform was calculated from the heat release amount of the exothermic curve obtained using a differential scanning calorimeter (DSC Q2500, manufactured by TA Instruments) at a heating rate of 5°C / min in a nitrogen atmosphere. In (2) above, the heat release amount of the fiber-reinforced composite material precursor before being placed in the 180°C oven was defined as W1 (mW / g), and the heat release amount of the fiber-reinforced composite material preform after being placed in the 180°C oven was defined as W2 (mW / g), and the degree of cure was calculated using the following formula: W2 / W1 × 100 [%].

[0062] (4) Surface treatment of fiber-reinforced composite material preforms The surface of the fiber-reinforced composite material preform was optionally treated (polished) by manually pressing water-resistant abrasive paper C34P#400 (manufactured by Riken Corundum Co., Ltd.) against the surface of the fiber-reinforced composite material preform and moving it back and forth five times.

[0063] (5) Method for applying epoxy resin composition to a fiber-reinforced composite material preform When applying the epoxy resin composition by spraying, a spray gun W-2001-2 (manufactured by Anest Iwata Corporation) was used to spray the epoxy resin composition onto the surface of the fiber reinforced composite material preform so that the coating thickness was 80 μm.

[0064] When the epoxy resin composition was applied by hand using a brush, the epoxy resin composition was collected in a container, the brush was dipped in the composition, and then the composition was applied directly to the target to a thickness of 80 μm.

[0065] When the epoxy resin composition was hand-applied using a bar coater, the epoxy resin composition was placed on the surface of the object to be coated, and then spread with the bar coater to coat the object to a thickness of 80 μm.

[0066] (6) Hardening of coating agent by UV irradiation Toscure 401 (Toshiba Lighting Technology) was used to apply 70 mW / cm 2 The coating agent applied to the surface of the fiber reinforced composite material preform in (5) above was UV-cured, thereby obtaining a fiber reinforced composite material intermediate.

[0067] (7) Heat curing of the material that has been applied with a coating agent to a fiber-reinforced composite material pre-form and photocured. The fiber-reinforced composite intermediates obtained in (6) above were heat-cured. The fiber-reinforced composite intermediates in which the fiber-reinforced composite preliminary was a prepreg laminate were heat-cured in an autoclave at 6 atmospheres and 180°C for 2 hours with a temperature increase rate of 1.7°C / min, while the fiber-reinforced composite intermediates in which the fiber-reinforced composite preliminary was an RTM material were heat-cured in an oven at 180°C for 2 hours with a temperature increase rate of 1.7°C / min.

[0068] (8) Adhesion between the coating agent and the fiber-reinforced composite material after heat curing A repair tape ("Scotch (registered trademark)" DUCT-TP18, manufactured by 3M Co.) was applied to an area of ​​48 mm x 80 mm on the surface of the coating agent of the fiber-reinforced composite material obtained by heat curing in (7) above, and after leaving it to stand for 5 minutes on a 10 cm square aluminum plate, the tape was peeled off. If even a small amount of the coating agent adhered to the adhesive surface of the tape, the adhesion between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material pre-body was judged to be "poor," and if there was no adhesion, it was judged to be "good."

[0069] (9) Amount of resin in the fiber-reinforced composite material preform mixed into the epoxy resin composition during molding The coating side of the fiber-reinforced composite material prepared in (7) above was measured by IR using the ATR method (FT / IR-4000 manufactured by JASCO Corporation, prism: diamond, measurement wavelength: 400 to 4000 cm -1 , accumulation number: 16 times) and the ester is shown at 1715 cm -1 The peak at 1592 cm represents the benzene ring derived from the cured resin used in the fiber-reinforced composite material preform. -1 By evaluating the value of this peak, it is possible to evaluate the amount of resin used in the fiber-reinforced composite preparatory body that mixes with the coating agent during molding and is exposed on the surface of the fiber-reinforced composite material. -1If the peak value of this peak was 0.6 or less, the surface of the fiber-reinforced composite material was judged to have good UV resistance. In addition, in Examples 61 to 64, IR measurement was carried out by the ATR method in the same manner as above, and the peak at 1715 cm -1 Normalization was not performed using the peak at 1592 cm , which indicates the benzene ring originating from the cured resin used in the fiber-reinforced composite material preform. -1 In this case, the peak value of 1592 cm , which indicates the benzene ring originating from the cured resin used in the fiber-reinforced composite material preform, was evaluated. -1 If the peak value was 1.0 or less, the UV resistance of the surface of the fiber reinforced composite material was judged to be good.

[0070] <Examples 1 to 22> In Examples 1 to 22, the surface of the prepreg with the adjusted degree of cure was left untreated or polished, and a coating agent consisting of a UV-resistant epoxy resin composition was applied. The coating agent was then cured by UV irradiation and finally heat-cured in an autoclave. In Examples 1 to 22, the amount of prepreg resin mixed into the coating agent during thermoforming was judged to be good. Furthermore, the higher the degree of cure of the prepreg before coating, the greater the effect of suppressing the amount of prepreg resin mixed into the coating agent during thermoforming, and this effect was particularly high in Examples 5 to 22.

[0071] The adhesiveness between the coating agent and the fiber-reinforced composite material preform after heat curing was judged to be good in Examples 1 to 14. On the other hand, among Examples 15 to 22, Examples 15, 17, 19, and 21, in which the prepreg was not surface-polished before coating, were judged to have poor adhesiveness between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform, while Examples 16, 18, 20, and 22, in which the fiber-reinforced composite material preform was surface-polished, were judged to have good adhesiveness between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform.

[0072] <Examples 23 to 44> In Examples 23 to 44, the surface of the RTM material with an adjusted degree of cure was left untreated or polished, and a coating agent made of a UV-resistant epoxy resin composition was applied. The coating agent was then cured by UV irradiation and finally thermally cured in an oven. Examples 23 to 44 were judged to be good in terms of the amount of resin from the RTM material that was mixed into the coating agent during thermoforming. Furthermore, the higher the degree of cure of the RTM material before application, the greater the effect of suppressing the amount of resin from the RTM material that was mixed into the coating agent during thermoforming, and this effect was particularly high in Examples 27 to 44.

[0073] The adhesion between the coating agent and the fiber-reinforced composite material after heat curing was judged to be good in Examples 23 to 44. On the other hand, among Examples 37 to 44, Examples 37, 39, 41, and 43, in which the RTM material was not surface-polished before coating, were judged to have poor adhesion between the coating agent and the fiber-reinforced composite material prep, while Examples 38, 40, 42, and 44, in which the fiber-reinforced composite material prep was surface-polished, were judged to have good adhesion between the coating agent and the fiber-reinforced composite material prep.

[0074] <Comparative Examples 1 and 2> In Comparative Examples 1 and 2, a coating agent made of a UV-resistant epoxy resin composition was applied to the surface of an untreated prepreg or RTM material, and then the coating agent was not cured by UV irradiation, but the prepreg was heat-cured in an autoclave and the RTM material in an oven. In Comparative Examples 1 and 2, the adhesion between the coating agent in the fiber-reinforced composite material and the fiber-reinforced composite material preform was judged to be good, but the amount of resin from the prepreg or RTM material that was mixed into the coating agent during thermoforming was too high, so the results were judged to be poor.

[0075] <Examples 45 to 54> In Examples 45 to 54, a coating agent consisting of a UV-resistant epoxy resin composition was applied to the surface of a prepreg with an adjusted degree of cure using a brush or bar coater, and then the coating agent was cured by UV irradiation and finally heat-cured in an autoclave. In Examples 45 to 54, the amount of prepreg resin mixed into the coating agent during thermoforming was judged to be good. It was also shown that the higher the degree of cure of the prepreg before coating, the greater the effect of suppressing the amount of prepreg resin mixed into the coating agent during thermoforming.

[0076] <Examples 50, 52, 55 to 64> In Examples 55 to 64, a coating agent consisting of a UV-resistant epoxy resin composition was applied to the surface of a prepreg with an adjusted degree of cure using a bar coater, and then the coating agent was cured by UV irradiation and finally heat-cured in an autoclave. In Examples 55 to 64, the amount of prepreg resin mixed into the coating agent during thermoforming was judged to be good. It was also shown that the higher the degree of cure of the prepreg before coating, the greater the effect of suppressing the amount of prepreg resin mixed into the coating agent during thermoforming.

[0077] In Examples 55 and 56, a thixotropy-imparting agent (component [E]) was added to the epoxy resin compositions described in the corresponding Examples 50 and 52. Comparing Examples 55 and 56 with Examples 50 and 52, it was shown that Examples 55 and 56 reduced the amount of prepreg resin mixed into the coating agent during the thermoforming process.

[0078] In Examples 57 to 58, a curing aid (component [F]) was added to the epoxy resin compositions of the corresponding Examples 50 and 52. Comparing Examples 57 to 58 with Examples 50 and 52, it was found that the addition of the curing aid increased the amount of resin in the prepreg mixed into the coating during the thermoforming process, but the evaluation was favorable. The curing aid (component [F]) has the effect of suppressing the curing reaction and improving processability during the preparation of the epoxy resin composition, demonstrating that it is possible to control both processability and the amount of resin in the prepreg mixed into the coating during the thermoforming process.

[0079] In Examples 59 and 60, rubber as component [G] was added to the epoxy resin compositions of the corresponding Examples 50 and 52. Comparing Examples 59 and 60 with Examples 50 and 52, it was shown that Examples 59 and 60 suppressed the amount of prepreg resin mixed into the coating agent during the thermoforming process.

[0080] Examples 61 and 62 contained two types of non-aromatic epoxy resin as component [A]. Compared with the corresponding Examples 50 and 52, the inclusion of two types of component [A] resulted in an increase in the amount of resin in the prepreg that was mixed into the coating agent during the thermoforming process, but the evaluation was good.

[0081] Examples 63 and 64 contain two types of component [A] and also contain component [E] a thixotropy-imparting agent, component [F] a curing aid, and [G] rubber. The inclusion of two types of component [A] and the addition of component [F] a curing aid increased the amount of resin in the prepreg mixed into the coating during the thermoforming process, as observed in Examples 57 to 58 and 61 to 62. However, in Examples 55 to 56 and 59 to 60, the effect of adding component [E] a thixotropy-imparting agent and component [G] rubber, which reduced the amount of resin in the prepreg mixed into the coating during the thermoforming process, was greater, demonstrating that it is possible to suppress the amount of resin in the prepreg mixed into the coating during the thermoforming process.

[0082] <Comparative Examples 3 and 4> In Comparative Examples 3 and 4, a coating agent made of a UV-resistant epoxy resin composition was applied to the surface of an untreated prepreg, and then the coating agent was heat-cured in an autoclave without being cured by UV irradiation. In Comparative Examples 3 and 4, the adhesion between the coating agent and the fiber-reinforced composite material preform was judged to be good, but the amount of prepreg resin mixed into the coating agent during thermoforming was large, so the results were judged to be poor.

[0083] [Table 1]

[0084] [Table 2]

[0085]

Table 3

[0086]

Table 4

[0087]

Table 5

[0088]

Table 6

[0089]

Table 7

[0090]

Table 8

Claims

1. A method for producing a fiber-reinforced composite material intermediate, comprising applying an epoxy resin composition containing the following components [A] to [D], wherein the component [B] is present in an amount of 15 to 75 parts by mass per 100 parts by mass of the total epoxy resins contained in the epoxy resin composition, to the surface of a fiber-reinforced composite material preform, and then photocuring the epoxy resin composition: [A] Non-aromatic epoxy resin [B] Pigment with an average particle size of 0.1 to 10 μm [C] Non-aromatic thermoplastic resin [D] Cationic or anionic polymerization curing agent

2. The method for producing a fiber-reinforced composite material intermediate according to claim 1, wherein the epoxy resin composition further comprises component [E] a thixotropic agent.

3. The method for producing a fiber-reinforced composite material intermediate according to claim 1 or 2, wherein the epoxy resin composition further comprises component [F] a curing aid.

4. The method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 3, wherein the epoxy resin composition contains at least two types of non-aromatic epoxy resins as component [A].

5. The method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 4, wherein the epoxy resin composition is applied to the surface of the fiber-reinforced composite material preliminary body by spraying or hand painting.

6. 6. The method for producing a fiber-reinforced composite material intermediate according to claim 1, wherein the degree of cure of the fiber-reinforced composite material pre-body is adjusted to exceed 70% before applying the epoxy resin composition, and then the surface of the fiber-reinforced composite material pre-body is polished before applying the epoxy resin composition.

7. The method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 5, wherein the surface of the fiber-reinforced composite material preliminary body is subjected to a plasma surface treatment before the epoxy resin composition is applied.

8. 8. The method for producing a fiber-reinforced composite material intermediate according to claim 1, wherein after photocuring the epoxy resin composition, the surface of the cured product of the epoxy resin composition is polished.

9. 8. The method for producing a fiber-reinforced composite material intermediate according to claim 1, wherein after photocuring the epoxy resin composition, the surface of the cured epoxy resin composition is subjected to plasma surface treatment.

10. The method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 9, wherein the reinforcing fibers are carbon fibers.

11. The method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 5 and 7 to 10, wherein the degree of cure of the fiber-reinforced composite material preliminary body is set to 20 to 70% before applying the epoxy resin composition.

12. A method for producing a fiber-reinforced composite material, further comprising thermally post-curing the fiber-reinforced composite material intermediate produced by the method for producing a fiber-reinforced composite material intermediate according to any one of claims 1 to 11.

Citation Information

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