Resin composition, optical fiber, method for manufacturing optical fiber, optical fiber ribbon, and optical fiber cable

The resin composition for optical fibers addresses the challenge of maintaining low Young's modulus and high breaking strength by using urethane (meth)acrylate compounds, improving microbend resistance and low-temperature performance.

JP7835166B2Active Publication Date: 2026-03-25SUMITOMO ELECTRIC INDUSTRIES LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-21
Publication Date
2026-03-25

AI Technical Summary

Technical Problem

Existing resin compositions for optical fiber primary coatings face challenges in achieving both low Young's modulus and high breaking strength, leading to increased microbend loss and defects at low temperatures as packing density increases.

Method used

A resin composition containing a photopolymerizable compound with urethane (meth)acrylate, derived from a polypropylene polyol and isocyanate group-containing (meth)acrylate, along with a photopolymerization initiator, is used to form a primary resin layer with adjustable Young's modulus and enhanced tensile strength, incorporating additional components like isocyanate group-containing silane compounds for improved adhesion.

Benefits of technology

The resin composition forms a layer with low Young's modulus and high breaking strength, enhancing microbend resistance and low-temperature properties without defects, suitable for high-density optical fiber applications.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This resin composition for the primary coating of an optical fiber comprises: a photopolymerizable compound containing a urethane (meth)acrylate that contains a reaction product of a polypropylene polyol having a number average molecular weight of 8000-20,000 and an isocyanate group-containing (meth)acrylate; and a photopolymerization initiator.
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Description

Technical Field

[0001] The present disclosure relates to a resin composition for primary coating of an optical fiber, an optical fiber, a method for manufacturing an optical fiber, an optical fiber ribbon, and an optical fiber cable. This application claims priority based on Japanese Application No. 2021-016587 filed on February 4, 2021, and incorporates all the descriptions described in the above Japanese application.

Background Art

[0002] In recent years, in the field of data center applications, the demand for high-density cables with increased packing density of optical fibers has been increasing. Generally, an optical fiber includes a coating resin layer for protecting a glass fiber as an optical transmission medium. The coating resin layer is composed of, for example, a primary resin layer in contact with the glass fiber and a secondary resin layer formed on the outer layer of the primary resin layer. When the packing density of the optical fiber increases, an external force (side pressure) is applied to the optical fiber, and microbend loss tends to increase. In order to improve the microbend resistance characteristics of the optical fiber, it is known to lower the Young's modulus of the primary resin layer and increase the Young's modulus of the secondary resin layer. For example, Patent Documents 1 to 5 describe a resin composition for primary coating containing a urethane (meth) acrylate which is a reaction product of a polyol, a diisocyanate, and a hydroxyl group-containing (meth) acrylate.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Patent Document 2

Patent Document 3

Patent Document 4

Patent Document 5

[0004] A resin composition for primary coating of optical fibers according to one aspect of this disclosure contains a photopolymerizable compound containing a urethane (meth)acrylate that includes a reaction product of a polypropylene polyol having a number average molecular weight of 8,000 to 20,000 and an isocyanate group-containing (meth)acrylate, and a photopolymerization initiator. [Brief explanation of the drawing]

[0005] [Figure 1] Figure 1 is a schematic cross-sectional view showing an example of an optical fiber according to this embodiment. [Figure 2] Figure 2 is a schematic cross-sectional view showing an optical fiber ribbon according to one embodiment. [Figure 3] Figure 3 is a schematic cross-sectional view showing an optical fiber ribbon according to one embodiment. [Figure 4] Figure 4 is a plan view showing the appearance of an optical fiber ribbon according to one embodiment. [Figure 5] Figure 5 is a schematic cross-sectional view showing an optical fiber cable according to one embodiment. [Figure 6] Figure 6 is a schematic cross-sectional view showing an optical fiber cable according to one embodiment. [Modes for carrying out the invention]

[0006] [Issues this disclosure aims to address] As the Young's modulus of the resin composition used for the primary coating decreases, the tensile strength also tends to decrease, leading to the formation of defects (voids) in the primary resin layer, which can easily cause increased transmission loss, especially at low temperatures.

[0007] This disclosure aims to provide a resin composition that can form a resin layer suitable for primary coating of optical fibers, achieving both low Young's modulus and high breaking strength, and an optical fiber with excellent microbend resistance and low-temperature properties.

[0008] [Effects of this disclosure] According to this disclosure, it is possible to provide a resin composition that can form a resin layer suitable for primary coating of optical fibers, which achieves both a low Young's modulus and high breaking strength, and an optical fiber that has excellent microbend resistance and low-temperature properties.

[0009] [Description of Embodiments in this Disclosure] First, the contents of the embodiments of this disclosure will be listed and explained. A resin composition for primary coating of optical fibers according to one aspect of this disclosure contains a photopolymerizable compound containing a urethane (meth)acrylate (A) which is a reaction product of a polypropylene polyol having a number average molecular weight of 8,000 to 20,000 and an isocyanate group-containing (meth)acrylate, and a photopolymerization initiator.

[0010] Such resin compositions can achieve both low Young's modulus and high breaking strength, and do not produce defects within the primary resin layer. Therefore, they can form a resin layer suitable for primary coating of optical fibers, improving the microbend resistance and low-temperature properties of the optical fiber.

[0011] From the viewpoint of improving adhesion between the glass fiber and the primary resin layer, the urethane (meth)acrylate (A) may further contain a reaction product of a polypropylene polyol having a number average molecular weight of 8,000 to 20,000, an isocyanate group-containing (meth)acrylate, and an isocyanate group-containing silane compound.

[0012] To further increase the tensile strength of the primary resin layer, the photopolymerizable compound may further contain a urethane (meth)acrylate (B), which is a reaction product of a polypropylene polyol with a number average molecular weight of 2000 to 20000, a diisocyanate, and a hydroxyl group-containing (meth)acrylate.

[0013] Because the Young's modulus of the primary resin layer can be easily adjusted, the number-average molecular weight of the polypropylene polyol used in urethane (meth)acrylate (B) may be between 6,000 and 20,000.

[0014] Since the breaking strength of the primary resin layer is further increased, a urethane (meth) acrylate (C) containing a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth) acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth) acrylate may be further included.

[0015] Since the Young's modulus suitable for the primary resin layer is adjusted, the number average molecular weight of the polyoxyalkylene monoalkyl ether may be 2000 or more and 10000 or less.

[0016] An optical fiber according to one aspect of the present disclosure includes a glass fiber including a core and a cladding, a primary resin layer that covers the glass fiber in contact with the glass fiber, and a secondary resin layer that covers the primary resin layer, and the primary resin layer includes a cured product of the above resin composition. Such an optical fiber is excellent in microbend resistance characteristics and low-temperature characteristics without causing defects in the primary resin layer.

[0017] A method for manufacturing an optical fiber according to one aspect of the present disclosure includes a coating step of applying the above resin composition to the outer periphery of a glass fiber including a core and a cladding, and a curing step of curing the resin composition by irradiating ultraviolet rays after the coating step. Thereby, an optical fiber excellent in microbend resistance characteristics and low-temperature characteristics can be produced.

[0018] An optical fiber ribbon according to one aspect of the present disclosure has a plurality of the above optical fibers arranged in parallel and is covered with a ribbon resin. Such an optical fiber ribbon is excellent in microbend resistance characteristics and low-temperature characteristics and can be filled at high density in an optical fiber cable.

[0019] In one embodiment of the present disclosure, the optical fiber cable has the optical fiber ribbon housed within the cable. The optical fiber cable according to the present disclosure may also have multiple optical fibers housed within the cable. The optical fiber cable comprising the optical fiber or optical fiber ribbon according to this embodiment has excellent microbend resistance and low-temperature characteristics.

[0020] [Details of the embodiments of this disclosure] Specific examples of resin compositions and optical fibers according to this embodiment will be described with reference to the drawings as necessary. This disclosure is not limited to these examples, but is indicated by the claims, and all modifications within the meaning and scope of the claims are intended to be included. In the following description, the same elements as in the drawings are denoted by the same reference numerals, and redundant descriptions are omitted. In this specification, (meth)acrylate means acrylate or its corresponding methacrylate, and the same applies to other similar expressions such as (meth)acryloyl.

[0021] (Resin composition) The resin composition according to this embodiment contains a photopolymerizable compound containing a urethane (meth)acrylate (A) which includes a reaction product of a polypropylene polyol with a number average molecular weight (Mn) of 8,000 to 20,000 and an isocyanate group-containing (meth)acrylate, and a photopolymerization initiator. The urethane (meth)acrylate (A) has an oxypropylene chain derived from the polypropylene polyol with a Mn of 8,000 to 20,000 and a (meth)acryloyl group derived from the isocyanate group-containing (meth)acrylate. By using urethane (meth)acrylate (A), it is possible to achieve both a low Young's modulus and high tensile strength in the primary resin layer.

[0022] The Mn of the polypropylene polyol constituting the urethane (meth)acrylate (A) may be between 9000 and 19500, between 10000 and 19000, or between 11000 and 18500, from the viewpoint of adjusting the balance between the Young's modulus and the tensile strength of the primary resin layer to an appropriate range.

[0023] The polypropylene polyol may be a bifunctional polypropylene polyol (polypropylene glycol) having two hydroxyl groups, a trifunctional polypropylene polyol (polyoxypropylene triol) having three hydroxyl groups, or a mixture of polypropylene glycol and polyoxypropylene triol.

[0024] Examples of isocyanate group-containing (meth)acrylates include 2-acryloyloxyethyl isocyanate, 2-methacryloyloxyethyl isocyanate, 2-(2-isocyanateethoxy)ethyl methacrylate, 1,1-(bisacryloyloxymethyl)ethyl isocyanate, and 1,1-(bismethacryloyloxymethyl)ethyl isocyanate. From the viewpoint of reactivity, 2-acryloyloxyethyl isocyanate is preferred.

[0025] From the viewpoint of improving adhesion between the glass fiber and the primary resin layer, urethane (meth)acrylate (A) may further contain a reaction product of a polypropylene polyol having a Mn of 8,000 to 20,000, an isocyanate group-containing (meth)acrylate, and an isocyanate group-containing silane compound. That is, in addition to the oxypropylene chain and (meth)acryloyl group, urethane (meth)acrylate (A) may also have an alkoxysilyl group derived from the isocyanate group-containing silane compound.

[0026] Examples of isocyanate group-containing silane compounds include 3-(triethoxysilyl)propyl isocyanate and 3-(trimethoxysilyl)propyl isocyanate.

[0027] Urethane (meth)acrylate (A) is obtained by reacting a polypropylene polyol with an isocyanate group-containing (meth)acrylate and, optionally, an isocyanate group-containing silane compound.

[0028] Urethane (meth)acrylate (A) may include mixtures of urethane (meth)acrylates represented by the following formulas (1) to (3). In formulas (1) to (3), AI represents a residue of isocyanate group-containing (meth)acrylate, U represents a urethane bond, PO represents a residue of polypropylene polyol, OH represents a hydroxyl group, and SC represents a residue of an isocyanate group-containing silane compound. AI-U-PO-U-AI (1) AI-U-PO-OH (2) AI-U-PO-SC (3)

[0029] When preparing urethane acrylate (A), if an isocyanate group-containing silane compound is not added, a urethane (meth)acrylate represented by (1), or a mixture of the urethane (meth)acrylate represented by (1) and the urethane (meth)acrylate represented by (2) is produced.

[0030] When reacting a polypropylene polyol with an isocyanate group-containing (meth)acrylate, the molar ratio of NCO to OH (NCO / OH) is preferably 0.4 to 1.1, and more preferably 0.5 to 1.0. When reacting a polypropylene polyol with an isocyanate group-containing silane compound, the molar ratio of NCO to OH (NCO / OH) is preferably 0.01 to 0.5, and more preferably 0.03 to 0.3.

[0031] The Mn content of urethane (meth)acrylate (A) may be between 10,000 and 50,000, between 12,000 and 40,000, or between 14,000 and 30,000, from the viewpoint of obtaining a Young's modulus suitable for the primary resin layer. The Mn content of the urethane (meth)acrylate according to this embodiment can be measured by GPC (gel permeation chromatography).

[0032] Since photopolymerizable compounds easily improve the tensile strength of the primary resin layer, they may also contain urethane (meth)acrylate (B), which is a reaction product of a polypropylene polyol with a manganese content of 2,000 to 20,000, a diisocyanate, and a hydroxyl group-containing (meth)acrylate. Urethane (meth)acrylate (B) has an oxypropylene chain derived from the polypropylene polyol with a manganese content of 2,000 to 20,000 and a (meth)acryloyl group derived from the hydroxyl group-containing (meth)acrylate.

[0033] The Mn content of the polypropylene polyol constituting the urethane (meth)acrylate (B) may be 6,000 to 20,000, 8,000 to 19,000, or 10,000 to 18,500, from the viewpoint of further increasing the tensile strength of the primary resin layer. It is preferable to use polypropylene glycol as the polypropylene polyol because it is easy to adjust the Young's modulus and tensile strength of the primary resin layer.

[0034] Examples of diisocyanates include 2,4-tolylene diisocyanate, 2,6-tolylene diisocyanate, isophorone diisocyanate, dicyclohexylmethane diisocyanate, diphenylmethane diisocyanate, hexamethylene diisocyanate, xylylene diisocyanate, hydrogenated xylylene diisocyanate, 1,5-naphthalene diisocyanate, norbornene diisocyanate, 1,5-pentamethylene diisocyanate, tetramethylxylylene diisocyanate, and trimethylhexamethylene diisocyanate.

[0035] Examples of hydroxyl group-containing (meth)acrylates include 2-hydroxyethyl (meth)acrylate, 2-hydroxypropyl (meth)acrylate, 2-hydroxybutyl (meth)acrylate, caprolactone (meth)acrylate, 2-hydroxy-3-phenoxypropyl (meth)acrylate, 2-(meth)acryloyloxyethyl-2-hydroxyethyl phthalic acid, 2-hydroxy-O-phenylphenolpropyl (meth)acrylate, 2-hydroxy-3-methacrylate, trimethylolpropanedi (meth)acrylate, and pentaerythritol tri(meth)acrylate. From the viewpoint of reactivity, 2-hydroxyethyl acrylate is preferred.

[0036] Methods for preparing urethane (meth)acrylate (B) include, for example, reacting a polypropylene polyol with diisocyanate and then reacting it with a hydroxyl group-containing (meth)acrylate; reacting a diisocyanate with a hydroxyl group-containing (meth)acrylate and then reacting it with a polypropylene polyol; or reacting a polypropylene polyol, diisocyanate, and hydroxyl group-containing (meth)acrylate simultaneously.

[0037] Urethane (meth)acrylate (B) may include urethane (meth)acrylate represented by the following formula (4). In formula (4), AH represents a hydroxyl group-containing (meth)acrylate residue, U represents a urethane bond, I represents a diisocyanate residue, PO represents a polypropylene polyocol residue, and n is an integer of 1 or more. AH-(UIU-PO)nUIU-AH (4)

[0038] Urethane acrylate (B) may contain urethane (meth)acrylate represented by the following formula (5) as a by-product. AH-UIU-AH (5)

[0039] When reacting polypropylene glycol with diisocyanate, the molar ratio of NCO to OH (NCO / OH) is preferably 1.1 to 4.0, more preferably 1.2 to 3.5, and even more preferably 1.4 to 3.0.

[0040] The Mn of urethane (meth)acrylate (B) may be 10,000 to 50,000, 15,000 to 45,000, or 20,000 to 40,000, from the viewpoint of obtaining a Young's modulus suitable for the primary resin layer.

[0041] Since photopolymerizable compounds easily improve tensile strength, they may also contain urethane (meth)acrylate (C), which is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate. Urethane (meth)acrylate (C) is a monofunctional urethane (meth)acrylate having one (meth)acryloyl group.

[0042] Monofunctional urethane (meth)acrylate (C1), which is a reaction product of polyoxyalkylene monoalkyl ether, diisocyanate, and hydroxyl group-containing (meth)acrylate, can be represented by the following formula (6). In formula (6), AH represents a residue of hydroxyl group-containing (meth)acrylate, U represents a urethane bond, I represents a residue of diisocyanate, and P1 represents a residue of polyoxyalkylene monoalkyl ether. Urethane (meth)acrylate (C1) has a (meth)acryloyl group derived from hydroxyl group-containing (meth)acrylate and an alkoxy group derived from polyoxyalkylene monoalkyl ether. AH-UIU-P1 (6)

[0043] Methods for synthesizing urethane (meth)acrylate (C1) include, for example, reacting a polyoxyalkylene monoalkyl ether with a diisocyanate and then reacting it with a hydroxyl group-containing (meth)acrylate; reacting a diisocyanate with a hydroxyl group-containing (meth)acrylate and then reacting it with a polyoxyalkylene monoalkyl ether; and reacting a polyoxyalkylene monoalkyl ether, diisocyanate, and hydroxyl group-containing (meth)acrylate simultaneously.

[0044] Urethane (meth)acrylate (C2), a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate, can be represented by the following formula (7). In formula (7), AI represents a residue of the isocyanate group-containing (meth)acrylate, U represents a urethane bond, and P1 represents a residue of the polyoxyalkylene monoalkyl ether. Urethane (meth)acrylate (C2) has a (meth)acryloyl group derived from the isocyanate group-containing (meth)acrylate and an alkoxy group derived from the polyoxyalkylene monoalkyl ether. AI-U-P1 (7)

[0045] Polyoxyalkylene monoalkyl ethers are compounds having an oxyalkylene group, an alkoxy group, and a hydroxyl group. Examples of polyoxyalkylene monoalkyl ethers according to this embodiment include polyoxyethylene oleyl ether, polyoxyethylene lauryl ether, polyoxyethylene cetyl ether, polyoxyethylene stearyl ether, and polyoxyethylene alkyl(C) 12 ~C 14Examples include ethers, polyoxyethylene tridecyl ether, polyoxyethylene myristyl ether, polyoxyethylene isostearyl ether, polyoxyethylene octyldodecyl ether, polyoxyethylene cholesteryl ether, polyoxypropylene butyl ether, polyoxypropylene myristyl ether, polyoxypropylene cetyl ether, polyoxypropylene stearyl ether, polyoxypropylene lanolin alcohol ether, polyoxyethylene polyoxypropylene butyl ether, polyoxyethylene polyoxypropylene lauryl ether, polyoxyethylene polyoxypropylene cetyl ether, polyoxyethylene polyoxypropylene stearyl ether, and polyoxyethylene polyoxypropylene decyltetradecyl ether.

[0046] From the viewpoint of compatibility with the primary resin composition, the polyoxyalkylene monoalkyl ether is preferably polyoxypropylene monobutyl ether.

[0047] From the viewpoint of obtaining a Young's modulus suitable for the primary resin layer, the number-average molecular weight of the polyoxyalkylene monoalkyl ether is preferably 2000 or more and 10000 or less, but may also be 2100 or more or 2200 or more, or 8000 or less or 7000 or less.

[0048] The manganese (Mn) of polypropylene polyols and polyoxyalkylene monoalkyl ethers can be calculated by measuring their OH value according to JIS K 0070 and using the following formula. Polypropylene polyols have 2 or 3 functional groups, while polyoxyalkylene monoalkyl ethers have 1 functional group. Mn = 56.1 × number of functional groups × 1000 / hydroxyl value

[0049] Because it is easy to improve the tensile strength of the primary resin layer, the polyoxyalkylene monoalkyl ether may contain a high molecular weight component with a molecular weight of 50,000 or more and have an asymmetric molecular weight distribution with a tail on the high molecular weight side. Examples of such polyoxyalkylene monoalkyl ethers include the trade names "Acrobeute MB-90" and "Acrobeute MB-52" manufactured by NOF Corporation. The presence or absence of a high molecular weight component with a molecular weight of 50,000 or more can be confirmed by gel permeation chromatography (GPC) measurement. The molecular weight of the high molecular weight component may be between 100,000 and 1,000,000.

[0050] The Mn content of urethane (meth)acrylate (C) may be between 4000 and 20000, between 5000 and 18000, or between 6000 and 15000.

[0051] An organotin compound or an amine compound is used as a catalyst when synthesizing the urethane (meth)acrylate according to this embodiment. Examples of organotin compounds include dibutyltin dilaurate, dibutyltin diacetate, dibutyltin maleate, dibutyltin bis(2-ethylhexyl mercaptoacetate), dibutyltin bis(isooctyl mercaptoacetate), and dibutyltin oxide. From the viewpoint of readily available materials or catalytic performance, it is preferable to use dibutyltin dilaurate or dibutyltin diacetate as the catalyst.

[0052] From the viewpoint of adjusting the Young's modulus of the primary resin layer, the content of urethane (meth)acrylate (A) is preferably 10 parts by mass or more and 90 parts by mass or less, more preferably 15 parts by mass or more and 85 parts by mass or less, and even more preferably 20 parts by mass or more and 80 parts by mass or less, based on 100 parts by mass of the total amount of the resin composition.

[0053] The content of urethane (meth)acrylate (B) is preferably 0 to 50 parts by mass, more preferably 5 to 45 parts by mass, and even more preferably 10 to 40 parts by mass, based on 100 parts by mass of the total amount of the resin composition.

[0054] The content of urethane (meth)acrylate (C) is preferably 0 to 50 parts by mass, more preferably 5 to 45 parts by mass, and even more preferably 10 to 40 parts by mass, based on 100 parts by mass of the total amount of the resin composition.

[0055] The total content of urethane (meth)acrylate (A), urethane (meth)acrylate (B), and urethane (meth)acrylate (C) may be 50 parts by mass or more and 90 parts by mass or less, based on the total amount of the resin composition.

[0056] The photopolymerizable compound may further contain a photopolymerizable compound that does not have a urethane bond (hereinafter referred to as "monomer"). Examples of monomers include (meth)acrylic acid esters, N-vinyl compounds, and (meth)acrylamide compounds. The monomer may be a monofunctional monomer having one photopolymerizable ethylenically unsaturated group, or a polyfunctional monomer having two or more ethylenically unsaturated groups. Two or more monomers may be used in mixture form.

[0057] Examples of monofunctional (meth)acrylic acid esters include methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, n-butyl (meth)acrylate, s-butyl (meth)acrylate, t-butyl (meth)acrylate, isobutyl (meth)acrylate, n-pentyl (meth)acrylate, isopentyl (meth)acrylate, hexyl (meth)acrylate, heptyl (meth)acrylate, isoamyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, n-octyl (meth)acrylate, isooctyl (meth)acrylate, isodecyl (meth)acrylate, lauryl (meth)acrylate, phenoxyethyl (meth)acrylate, tetrahydrofurfuryl (meth)acrylate, benzyl (meth)acrylate, cyclic trimethylolpropane formal acrylate, and dicyclopene. Examples include tenyl (meth)acrylate, dicyclopentenyloxyethyl (meth)acrylate, dicyclopentanyl (meth)acrylate, nonylphenol polyethylene glycol (meth)acrylate, nonylphenoxy polyethylene glycol (meth)acrylate, isobornyl (meth)acrylate, 3-phenoxybenzyl (meth)acrylate, methylphenoxyethyl (meth)acrylate, phenoxydiethylene glycol (meth)acrylate, phenoxy polyethylene glycol (meth)acrylate, m-phenoxybenzyl (meth)acrylate, 2-(2-ethoxyethoxy)ethyl (meth)acrylate, 2-hydroxy-3-phenoxypropyl acrylate, carboxyethyl (meth)acrylate, carboxypentyl (meth)acrylate, and ω-carboxy-polycaprolactone (meth)acrylate.

[0058] Examples of polyfunctional (meth)acrylic acid esters include ethylene glycol di(meth)acrylate, polyethylene glycol di(meth)acrylate, polypropylene glycol di(meth)acrylate, neopentyl glycol di(meth)acrylate, tripropylene glycol di(meth)acrylate, triethylene glycol di(meth)acrylate, cyclohexanedimethanol di(meth)acrylate, dipropylene glycol di(meth)acrylate, tetraethylene glycol di(meth)acrylate, hydroxypivalate neopentyl glycol di(meth)acrylate, 1,3-butylene glycol di(meth)acrylate, 1,4-butanediol di(meth)acrylate, diethylene glycol di(meth)acrylate, 1,6-hexanediol di(meth)acrylate, and 1,9-nonanediol di(meth)acrylate. , 1,12-dodecanediol di(meth)acrylate, 1,14-tetradecanediol di(meth)acrylate, 1,16-hexadecanediol di(meth)acrylate, 1,20-eicosanediol di(meth)acrylate, isopentyldiol di(meth)acrylate, 3-ethyl-1,8-octanediol di(meth)acrylate, tricyclodecanol di(meth)acrylate, 9,9-bis[4-(2-hydroxyethoxy)phenyl]fulorange (meth)acrylate, bisphenol A epoxy di(meth)acrylate, bisphenol F epoxy di(meth)acrylate, bisphenol A EO adduct di(meth)acrylate, bisphenol F EO adduct di(meth)acrylate, bisphenol A PO adduct di(meth)acrylate, bisphenol F PO adduct di(meth)acrylate, etc., as difunctional monomers;Trimethylolpropane tri(meth)acrylate, trimethyloloctanetri(meth)acrylate, trimethylolpropane polyethoxytri(meth)acrylate, trimethylolpropane polypropoxytri(meth)acrylate, trimethylolpropane polyethoxypolypropoxytri(meth)acrylate, tris[(meth)acryloyloxyethyl]isocyanurate, pentaerythritol tri(meth)acrylate, pentaerythritol polyethoxytetra(meth)acrylate Examples of monomers with three or more functionalities include acrylates, pentaerythritol polypropoxytetra(meth)acrylate, pentaerythritol tetra(meth)acrylate, ditrimethylolpropane tetra(meth)acrylate, dipentaerythritol tetra(meth)acrylate, dipentaerythritol penta(meth)acrylate, dipentaerythritol hexa(meth)acrylate, and caprolactone-modified tris[(meth)acryloyloxyethyl]isocyanurate.

[0059] The Young's modulus of the resin layer can be adjusted by including a (meth)acrylic acid ester in the photopolymerizable compound. The content of the (meth)acrylic acid ester may be 1 to 50 parts by mass, 3 to 45 parts by mass, or 5 to 40 parts by mass, based on 100 parts by mass of the total amount of the resin composition.

[0060] Examples of N-vinyl compounds include N-vinylpyrrolidone, N-vinylcaprolactam, N-vinylmethyloxazolidinone, N-vinylimidazole, and N-vinyl-N-methylacetamide.

[0061] The curing speed of the resin composition can be further improved by including an N-vinyl compound in the photopolymerizable compound. The content of the N-vinyl compound may be 1 to 30 parts by mass, 2 to 20 parts by mass, or 5 to 15 parts by mass, based on 100 parts by mass of the total amount of the resin composition.

[0062] Examples of (meth)acrylamide compounds include dimethyl(meth)acrylamide, diethyl(meth)acrylamide, (meth)acryloylmorpholine, hydroxymethyl(meth)acrylamide, hydroxyethyl(meth)acrylamide, isopropyl(meth)acrylamide, dimethylaminopropyl(meth)acrylamide, dimethylaminopropylacrylamide methyl chloride, diacetone acrylamide, (meth)acryloylpiperidine, (meth)acryloylpyrrolidine, (meth)acrylamide, N-hexyl(meth)acrylamide, N-methyl(meth)acrylamide, N-butyl(meth)acrylamide, N-methylol(meth)acrylamide, and N-methylolpropane(meth)acrylamide.

[0063] The curing speed of the resin composition can be further improved by including a (meth)acrylamide compound in the photopolymerizable compound. The content of the (meth)acrylamide compound may be 1 to 30 parts by mass, 2 to 20 parts by mass, or 3 to 15 parts by mass, based on 100 parts by mass of the total amount of the resin composition.

[0064] The photopolymerization initiator can be appropriately selected from known radical photopolymerization initiators. Examples of photopolymerization initiators include 1-hydroxycyclohexylphenyl ketone (Omnirad 184, IGM Resins), 2,2-dimethoxy-2-phenylacetophenone (Omnirad 651, IGM Resins), 2,4,6-trimethylbenzoyldiphenylphosphine oxide (Omnirad TPO, IGM Resins), ethyl(2,4,6-trimethylbenzoyl)-phenylphosphine (Omnirad TPO-L, IGM Resins), 2-benzoyl-2-dimethylamino-4'-morpholinobutyrophenone (Omnirad 369, IGM Resins), and 2-dimethylamino-2-(4-methylbenzyl)-1-(4-morpholin-4-ylphenyl)-butan-1-one (Omnirad 379, IGM Examples include bis(2,4,6-trimethylbenzoyl)phenylphosphine oxide (Omnirad 819, IGM Resins), and 2-methyl-1-[4-(methylthio)phenyl]-2-morpholinopropan-1-one (Omnirad 907, IGM Resins).

[0065] Two or more photopolymerization initiators may be used in mixture form. It is preferable that the photopolymerization initiator contains 2,4,6-trimethylbenzoyldiphenylphosphine oxide, as this provides excellent rapid curing properties for the resin composition.

[0066] The amount of photopolymerization initiator is preferably 0.2 parts by mass or more and 5 parts by mass or less, more preferably 0.3 parts by mass or more and 4 parts by mass or less, and even more preferably 0.4 parts by mass or more and 3 parts by mass or less, based on the total amount of the resin composition.

[0067] The resin composition according to this embodiment may further contain a photoacid generator, a silane coupling agent, a leveling agent, an antifoaming agent, an antioxidant, an ultraviolet absorber, and the like.

[0068] As a photoacid generator, A + B -Onium salts with the structure shown may also be used. Examples of photoacid generators include sulfonium salts such as CPI-100P, 101A, 110P, 200K, 210S, 310B, 410S (manufactured by Sunapro Co., Ltd.), Omnicat 270, 290 (manufactured by IGM Resins), and iodonium salts such as CPI-IK-1 (manufactured by Sunapro Co., Ltd.), Omnicat 250 (manufactured by IGM Resins), WPI-113, 116, 124, 169, 170 (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.).

[0069] Examples of silane coupling agents include tetramethyl silicate, tetraethyl silicate, mercaptopropyltrimethoxysilane, vinyltrichlorosilane, vinyltriethoxysilane, vinyltris(β-methoxyethoxy)silane, β-(3,4-epoxycyclohexyl)-ethyltrimethoxysilane, dimethoxydimethylsilane, diethoxydimethylsilane, trimethoxymethylsilane, triethoxymethylsilane, trimethoxyphenylsilane, triethoxyphenylsilane, 3-(meth)acryloxypropyltrimethoxysilane, γ-glycidoxypropyltrimethoxysilane, γ-glycidoxypropylmethyldiethoxysilane, and γ-methacryloxypropyl Examples include oxypropyltrimethoxysilane, N-(β-aminoethyl)-γ-aminopropyltrimethoxysilane, N-(β-aminoethyl)-γ-aminopropyltrimethyldimethoxysilane, N-phenyl-γ-aminopropyltrimethoxysilane, γ-chloropropyltrimethoxysilane, γ-mercaptopropyltrimethoxysilane, γ-aminopropyltrimethoxysilane, bis-[3-(triethoxysilyl)propyl]tetrasulfide, bis-[3-(triethoxysilyl)propyl]disulfide, γ-trimethoxysilylpropyldimethylthiocarbamyltetrasulfide, and γ-trimethoxysilylpropylbenzothiazyltetrasulfide.

[0070] The viscosity of the resin composition according to this embodiment at 25°C is preferably 0.5 Pa·s to 20 Pa·s, more preferably 0.8 Pa·s to 18 Pa·s, and even more preferably 1.0 Pa·s to 15 Pa·s, from the viewpoint of coating properties. The viscosity of the resin composition at 25°C can be measured using a B-type viscometer (Brookfield's "Digital Viscometer DV-II") under the conditions of spindle No. 18 and rotation speed of 10 rpm.

[0071] The resin composition according to this embodiment can achieve both a low Young's modulus and high breaking strength, and does not produce defects within the primary resin layer, thus forming a resin layer suitable for primary coating of optical fibers.

[0072] (Optical fiber) Figure 1 is a schematic cross-sectional view showing an example of an optical fiber according to this embodiment. The optical fiber 10 comprises a glass fiber 13 including a core 11 and a cladding 12, and a coating resin layer 16 including a primary resin layer 14 and a secondary resin layer 15 provided on the outer circumference of the glass fiber 13.

[0073] The cladding 12 surrounds the core 11. The core 11 and cladding 12 mainly contain glass such as quartz glass. For example, the core 11 can be made of germanium-added quartz glass or pure quartz glass, and the cladding 12 can be made of pure quartz glass or fluorine-added quartz glass.

[0074] In Figure 1, for example, the outer diameter (D2) of the glass fiber 13 is approximately 100 μm to 125 μm, and the diameter (D1) of the core 11 constituting the glass fiber 13 is approximately 7 μm to 15 μm. The thickness of the coating resin layer 16 is typically approximately 22 μm to 70 μm. The thickness of each layer of the primary resin layer 14 and the secondary resin layer 15 may be approximately 5 μm to 50 μm.

[0075] When the outer diameter of the glass fiber 13 is approximately 125 μm and the thickness of the coating resin layer 16 is 60 μm or more and 70 μm or less, the thickness of each layer of the primary resin layer 14 and the secondary resin layer 15 may be approximately 10 μm to 50 μm. For example, the thickness of the primary resin layer 14 may be 35 μm and the thickness of the secondary resin layer 15 may be 25 μm. The outer diameter of the optical fiber 10 may be approximately 245 μm to 265 μm.

[0076] When the outer diameter of the glass fiber 13 is approximately 125 μm and the thickness of the coating resin layer 16 is between 20 μm and 48 μm, the thickness of each of the primary resin layer 14 and secondary resin layer 15 may be approximately 8 μm to 38 μm. For example, the thickness of the primary resin layer 14 may be 25 μm and the thickness of the secondary resin layer 15 may be 10 μm. The outer diameter of the optical fiber 10 may be approximately 165 μm to 221 μm.

[0077] When the outer diameter of the glass fiber 13 is about 100 μm and the thickness of the coating resin layer 16 is between 22 μm and 37 μm, the thickness of each of the primary resin layer 14 and secondary resin layer 15 may be between 5 μm and 32 μm. For example, the thickness of the primary resin layer 14 may be 25 μm and the thickness of the secondary resin layer 15 may be 10 μm. The outer diameter of the optical fiber 10 may be between 144 μm and 174 μm.

[0078] By applying the resin composition according to this embodiment to a primary resin layer, it is possible to produce optical fibers with excellent microbend resistance and low-temperature properties.

[0079] The method for manufacturing an optical fiber according to this embodiment includes a coating step of applying the resin composition to the outer circumference of a glass fiber including a core and cladding, and a curing step of curing the resin composition by irradiating it with ultraviolet light after the coating step.

[0080] From the viewpoint of improving the microbend resistance of the optical fiber, the Young's modulus of the primary resin layer is preferably 0.8 MPa or less, more preferably 0.7 MPa or less, and even more preferably 0.5 MPa or less at 23°C ± 2°C. If the Young's modulus of the primary resin layer exceeds 0.8 MPa, external forces are more easily transmitted to the glass fiber, which may lead to a greater increase in transmission loss due to microbending.

[0081] The Young's modulus of the primary resin layer can be measured by the Pullout Modulus (POM) method at 23°C. Two points on the optical fiber are fixed with two chuck devices, the portion of the coating resin layer (primary resin layer and secondary resin layer) between the two chuck devices is removed, then one chuck device is fixed, and the other chuck device is slowly moved in the opposite direction to the fixed chuck device. If L is the length of the portion of the optical fiber held between the moving chuck devices, Z is the amount of chuck movement, Dp is the outer diameter of the primary resin layer, Df is the outer diameter of the glass fiber, n is the Poisson's ratio of the primary resin layer, and W is the load when the chuck devices are moved, then the Young's modulus of the primary resin layer can be calculated from the following formula. Young's modulus (MPa) = ((1+n)W / πLZ) × ln(Dp / Df)

[0082] The secondary resin layer 15 can be formed by curing a resin composition containing, for example, a photopolymerizable compound including urethane (meth)acrylate, a photopolymerization initiator, etc. The resin composition forming the secondary resin layer has a different composition from the resin composition for the primary coating. The resin composition for the secondary coating can be prepared using conventionally known techniques.

[0083] From the viewpoint of improving the microbend resistance of the optical fiber, the Young's modulus of the secondary resin layer is preferably 800 MPa or higher at 23°C ± 2°C, more preferably 1000 MPa or higher, and even more preferably 1200 MPa or higher. The upper limit of the Young's modulus of the secondary resin layer is not particularly limited, but from the viewpoint of imparting appropriate toughness to the secondary resin layer, it may be 3000 MPa or less, 2500 MPa or less, or 2000 MPa or less at 23°C ± 2°C.

[0084] The Young's modulus of the secondary resin layer can be measured by the following method. First, the optical fiber is immersed in a mixed solvent of acetone and ethanol, and only the coating resin layer is extracted in a cylindrical shape. At this time, the primary resin layer and the secondary resin layer are integrated, but since the Young's modulus of the primary resin layer is between 1 / 1000 and 1 / 10000 of that of the secondary resin layer, the Young's modulus of the primary resin layer can be ignored. Next, after removing the solvent from the coating resin layer by vacuum drying, a tensile test is performed at 23°C (tensile speed of 1 mm / min), and the Young's modulus can be determined using the secant formula for 2.5% strain.

[0085] The optical fiber manufacturing method according to this embodiment allows for the production of optical fibers with excellent microbend resistance and low-temperature characteristics by using the resin composition according to this embodiment as the primary coating resin composition.

[0086] (Fiber optic ribbon) An optical fiber ribbon can be manufactured using the optical fiber according to this embodiment. The optical fiber ribbon consists of multiple optical fibers arranged in parallel and coated with a ribbon resin.

[0087] Figure 2 is a schematic cross-sectional view showing an optical fiber ribbon according to one embodiment. The optical fiber ribbon 100 has a plurality of optical fibers 10 and a connecting resin layer 40 in which the optical fibers 10 are (integrally) covered and connected with ribbon resin. In Figure 2, four optical fibers 10 are shown as an example, but the number is not particularly limited.

[0088] The optical fibers 10 may be integrated in a parallel arrangement in contact with each other, or some or all of the optical fibers 10 may be integrated in a parallel arrangement with a certain interval between them. The center-to-center distance F between adjacent optical fibers 10 may be 220 μm or more and 280 μm or less. When the center-to-center distance is 220 μm or more and 280 μm or less, it is possible to obtain an optical fiber ribbon that is easy to place in an existing V-groove and has excellent single-piece fusion splicing properties. The thickness T of the optical fiber ribbon 100 may be 164 μm or more and 285 μm or less, depending on the outer diameter of the optical fibers 10.

[0089] Figure 3 is a schematic cross-sectional view showing an example of an optical fiber ribbon in which optical fibers are arranged in parallel at regular intervals and integrated. In the optical fiber ribbon 100A shown in Figure 3, 12 optical fibers 10 are connected at regular intervals by ribbon resin. The ribbon resin forms a connecting resin layer 40.

[0090] As the resin for the ribbon, any resin material generally known as a ribbon material can be used. From the viewpoint of preventing damage to the optical fiber 10 and ease of cutting, the resin for the ribbon may contain thermosetting resins such as silicone resin, epoxy resin, or urethane resin, or ultraviolet curing resins such as epoxy acrylate, urethane acrylate, or polyester acrylate.

[0091] When optical fibers 10 are arranged in parallel at regular intervals, that is, when adjacent optical fibers 10 are joined via ribbon resin without touching, the thickness of the connecting portion in the center of the optical fibers 10 may be 150 μm or more and 220 μm or less. Since optical fiber ribbons are easily deformed when housed in a cable, optical fiber ribbons may have indentations at the connecting portions of the optical fibers. The indentations may be formed in a triangular shape with a narrowing angle on one side of the connecting portion.

[0092] The optical fiber ribbon according to this embodiment may have connecting portions and disconnected portions intermittently in the longitudinal and width directions. Figure 4 is a plan view showing the appearance of an optical fiber ribbon according to one embodiment. The optical fiber ribbon 100B has a plurality of optical fibers, a plurality of connecting portions 20, and disconnected portions (disconnected portions) 21. The disconnected portions 21 are formed intermittently in the longitudinal direction of the optical fiber ribbon. The optical fiber ribbon 100B is an intermittently connected type optical fiber ribbon in which connecting portions 20 and disconnected portions 21 are intermittently provided in the longitudinal direction for every two optical fibers 10A. "Connecting portion" refers to a portion in which adjacent optical fibers are integrated via a connecting resin layer, and "disconnected portion" refers to a portion in which adjacent optical fibers are not integrated via a connecting resin layer and there is a gap between the optical fibers.

[0093] In the optical fiber ribbon having the above configuration, non-connecting portions 21 are intermittently provided at the connecting portions 20 provided every two cores, making the optical fiber ribbon easy to deform. Therefore, when mounting the optical fiber ribbon on an optical fiber cable, it can be easily rolled up and mounted, making it suitable for high-density mounting. In addition, since the connecting portions 20 can be easily torn starting from the non-connecting portions 21, it becomes easy to separate the individual optical fibers 10 in the optical fiber ribbon.

[0094] The optical fiber ribbon according to this embodiment, by using the above-mentioned optical fiber, exhibits excellent microbend resistance and low-temperature characteristics, and can be densely packed inside an optical fiber cable.

[0095] (Fiber optic cable) In this embodiment, the optical fiber cable has the optical fiber ribbon housed inside the cable. An example of the optical fiber cable is a slot-type optical fiber cable having multiple slot grooves. The optical fiber ribbon can be mounted in the slot grooves such that the mounting density in each slot groove is approximately 25% to 65%. Mounting density refers to the ratio of the cross-sectional area of ​​the optical fiber ribbon mounted in the slot grooves to the cross-sectional area of ​​the slot grooves. The optical fiber cable in this embodiment may also be configured such that the multiple optical fibers are housed inside the cable without being coated with ribbon resin.

[0096] An example of an optical fiber cable according to this embodiment will be described with reference to Figures 5 and 6. In Figures 5 and 6, an intermittently connected optical fiber ribbon is housed, but multiple optical fibers that are not coated with ribbon resin may be bundled together and housed.

[0097] Figure 5 is a schematic cross-sectional view of a slotless optical fiber cable 60 using the intermittently connected optical fiber ribbon 100B described above. The optical fiber cable 60 has a cylindrical tube 61 and a plurality of optical fiber ribbons 100B. The plurality of optical fiber ribbons 100B may be bundled together with an intervening 62 such as aramid fiber. Also, each of the plurality of optical fiber ribbons 100B may have different markings. The optical fiber cable 60 has a structure formed by twisting together the bundled plurality of optical fiber ribbons 100B, extruding a resin that will become the tube 61 around it, and covering it with an outer sheath 64 together with a tension member 63. If waterproofing is required, a water-absorbing yarn may be inserted inside the tube 61. The tube 61 can be formed using a resin such as polybutylene terephthalate or high-density polyethylene. A tear cord 65 may be provided on the outside of the tube 61.

[0098] Figure 6 is a schematic cross-sectional view of a slot-type optical fiber cable 70 using the intermittently connected optical fiber ribbon 100B described above. The optical fiber cable 70 has a slot rod 72 having a plurality of slot grooves 71 and a plurality of optical fiber ribbons 100B. The optical fiber cable 70 has a structure in which a plurality of slot grooves 71 are provided radially on a slot rod 72 having a tension member 73 in the center. The plurality of slot grooves 71 may be arranged in a spiral or SZ twisted shape in the longitudinal direction of the optical fiber cable 70. Each slot groove 71 houses a plurality of optical fiber ribbons 100B that have been separated from a parallel state and are in a dense state. Each optical fiber ribbon 100B may be bundled with an identification bundle material. A retaining tape 74 is wound around the slot rod 72, and an outer sheath 75 is formed around the retaining tape 74.

[0099] The optical fiber cable comprising the optical fiber or optical fiber ribbon according to this embodiment exhibits excellent microbend resistance and low-temperature characteristics. [Examples]

[0100] The present disclosure will be further described below by showing the results of evaluation tests using the examples and comparative examples described herein. However, the present invention is not limited to these examples.

[0101] [Synthesis of urethane acrylate (A)] (A-1) Polypropylene glycol with a manganese content of 18,000 and 2-acryloyloxyethyl isocyanate (product name "Kalenz AOI" manufactured by Showa Denko K.K.) were reacted at 60°C for 1 hour with a molar ratio of NCO to OH (NCO / OH) of 1.0 to obtain urethane acrylate (A-1) with a manganese content of 25,100. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0102] (A-2) Polypropylene glycol with Mn 18000 and currant AOI were reacted at 60°C for 1 hour at an NCO / OH ratio of 0.85 to obtain urethane acrylate (A-2) with Mn 25000. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0103] Polypropylene glycol with Mn 18000 and currant AOI were reacted at 60°C for 1 hour at an NCO / OH ratio of 0.5 to obtain urethane acrylate (A-3) with Mn 24900. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0104] (A-4) Polypropylene glycol with a manganese content of 18000, Karenz AOI, and 3-(triethoxysilyl)propyl isocyanate were reacted at 60°C for 1 hour with a molar ratio of NCO of Karenz AOI to OH of polypropylene glycol (NCO / OH) of 0.85 and a molar ratio of NCO of 3-(triethoxysilyl)propyl isocyanate to OH of polypropylene polyol (NCO / OH) of 0.15 to obtain urethane acrylate (A-4) with a manganese content of 25100. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0105] (A-5) Polypropylene glycol with Mn 12000 and currant AOI were reacted at 60°C for 1 hour at an NCO / OH ratio of 1.0 to obtain urethane acrylate (A-5) with Mn 18300. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. (A-6) Polyoxypropylene triol with Mn 10000 and currant AOI were reacted at 60°C for 1 hour at an NCO / OH ratio of 0.6 to obtain urethane acrylate (A-6) with Mn 15000. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0106] [Synthesis of urethane acrylate (B)] (B-1) A polypropylene glycol with a Mn of 18000 and 2,4-tolylene diisocyanate (TDI) were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, 2-hydroxyethyl acrylate (HEA) was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of OH groups of HEA was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain urethane acrylate (B-1) with a Mn of 36700.

[0107] (B-2) A polypropylene glycol with a manganese (Mn) of 12000 and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, HEA was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of HEA's OH groups was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a urethane acrylate (B-2) with a manganese (Mn) of 24500.

[0108] (B-3) A polypropylene glycol with a Mn of 3000 and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 1.5 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, HEA was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of HEA's OH groups was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a urethane acrylate (B-3) with a Mn of 11300.

[0109] [Synthesis of urethane acrylate (C)] (C-1) A polyoxypropylene monobutyl ether with a Mn of 2300 (product name "Unilube MB-370" manufactured by NOF Corporation) and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, HEA was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of HEA's OH groups was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a urethane acrylate (C-1) with a Mn of 6200.

[0110] (C-2) A polyoxypropylene monobutyl ether with a n of 3070 (product name "Newpol LB3000" manufactured by Sanyo Chemical Industries, Ltd.) and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, HEA was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of HEA's OH groups was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a urethane acrylate (C-2) with a n of 8900.

[0111] (C-3) A Mn5000 polyoxypropylene monobutyl ether (product name "Acrobeute MB-90" manufactured by NOF Corporation) and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge. Next, HEA was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of HEA's OH groups was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a Mn10000 urethane acrylate (C-3).

[0112] (C-4) Acrobute MB-90 and Karenz AOI were reacted at 60°C for 1 hour with a molar ratio of NCO to OH (NCO / OH) of 1.0 to obtain Mn8500 urethane acrylate (C-4). Dibutyltin dilaurate was added as a catalyst at a concentration of 200 ppm relative to the final total charge.

[0113] [Synthesis of urethane acrylate (Y)] (Y-1) A Mn3000 polypropylene glycol and TDI were reacted at 60°C for 1 hour at an NCO / OH ratio of 1.5 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at a concentration of 200 ppm relative to the final total charge. Next, methanol was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of OH was 0.4, and HEA was added so that the molar ratio of OH was 0.65. The mixture was reacted at 60°C for 1 hour to obtain a Mn11200 urethane acrylate (Y-1).

[0114] The manganese (Mn) values ​​for polypropylene polyols and polyoxyalkylene monoalkyl ethers were determined from their hydroxyl value and are the values ​​listed in each product catalog. The manganese (Mn) values ​​for urethane acrylates were measured using a Waters ACQUITY APC RI system under the following conditions: sample concentration: 0.2% by mass THF solution, injection volume: 20 μL, sample temperature: 15°C, mobile phase: THF, organic solvent XT column: particle size 2.5 μm, pore size 450 Å, column inner diameter 4.6 × column length 150 mm + particle size 2.5 μm, pore size 125 Å, column inner diameter 4.6 × column length 150 mm + particle size 1.7 μm, pore size 45 Å, column inner diameter 4.6 × column length 150 mm, column temperature: 40°C, flow rate: 0.8 mL / min.

[0115] As monomers, nonylphenol polyethylene glycol acrylate (product name "Aronics M-113" manufactured by Toagosei Co., Ltd.), isobornyl acrylate (IBXA), N-vinylcaprolactam (NVCL), acryloylmorpholine (ACMO), bisphenol A epoxy di(meth)acrylate (product name "Viscote #540" manufactured by Osaka Organic Chemical Industry Co., Ltd.), and tripropylene glycol diacrylate (TPGDA) were prepared. As photopolymerization initiators, 2,4,6-trimethylbenzoyldiphenylphosphine oxide (Omnirad TPO) and 1-hydroxycyclohexylphenyl ketone (Omnirad 184) were prepared. As a silane coupling agent, 3-acryloxypropyltrimethoxysilane (APTMS) was prepared.

[0116] [Resin composition for primary coating] A resin composition for primary coating was prepared for each test example by mixing a photopolymerizable compound, a photopolymerization initiator, and a silane coupling agent in the proportions (parts by mass) shown in Table 1, Table 2, or Table 3. Test Examples 1 to 13 correspond to examples, and Test Examples 14 to 17 correspond to comparative examples.

[0117] (viscosity) The viscosity of the resin composition at 25°C was measured using a B-type viscometer (Brookfield Digital Viscometer DV-II) under the conditions of spindle No. 18 and rotation speed of 10 rpm.

[0118] [Resin film] After applying the resin composition onto a polyethylene terephthalate (PET) film using a spin coater, an electrodeless UV lamp system (D-bulb, Heraeus) was used to apply 10 mJ / cm² of UV radiation. 2 and 100 mW / cm 2 The resin film was cured under the specified conditions to form a 200 μm thick resin film on the PET film. The resin film was then peeled off the PET film to obtain the resin film.

[0119] (Young's modulus) A resin film was punched into a dumbbell shape according to JIS K 7127 Type 5, and subjected to tensile testing at a tensile speed of 1 mm / min and a gauge length of 25 mm under conditions of 23 ± 2°C and 50 ± 10% RH using a tensile testing machine to obtain a stress-strain curve. The Young's modulus of the resin film was determined by dividing the stress, calculated using the secant formula for 2.5% strain, by the cross-sectional area of ​​the resin film.

[0120] (Breaking strength and elongation at breaking) A resin film was punched into a dumbbell shape according to JIS K 7127 Type 5. Under conditions of 23±2℃ and 50±10%RH, it was subjected to tensile testing using a tensile testing machine at a tensile speed of 50 mm / min and a gauge length of 25 mm to obtain stress-strain curves. The breaking strength of the resin film was determined by dividing the stress at fracture by the cross-sectional area of ​​the resin film. Furthermore, the elongation at fracture was determined by dividing the displacement at fracture by the gauge length.

[0121] [Resin composition for secondary coating] A Mn600 polypropylene glycol and TDI were reacted at an NCO / OH ratio of 2.0 to prepare an NCO-terminated prepolymer. Dibutyltin dilaurate was added at a concentration of 200 ppm relative to the final total charge. Next, 2-hydroxyethyl acrylate (HEA) was added to the NCO of the NCO-terminated prepolymer so that the molar ratio of OH groups of HEA was 1.05, and the mixture was reacted at 60°C for 1 hour to obtain a Mn2200 urethane acrylate (Z-1).

[0122] A resin composition for secondary coating was obtained by mixing 25 parts by mass of urethane acrylate (Z-1), 36 parts by mass of TPGTA, 37 parts by mass of Viscoat #540, 1 part by mass of Omnirad TPO, and 1 part by mass of Omnirad 184.

[0123] [fiber optic] A primary coating resin composition and a secondary coating resin composition were applied to the outer surface of a glass fiber 13 with a diameter of 125 μm, respectively. Next, each resin composition was cured by irradiation with ultraviolet light to form a coating resin layer 16 comprising a primary resin layer 14 and a secondary resin layer 15, thereby fabricating an optical fiber 10. The thickness of the primary resin layer 14 was set to 20 μm and the thickness of the secondary resin layer 15 to 15 μm, resulting in an optical fiber with an outer diameter of 195 μm.

[0124] (Microbend resistance) The transmission loss of 1550nm wavelength light when optical fiber 10 was wound in a single layer on a 280mm diameter bobbin with the surface covered with sandpaper was measured using the OTDR (Optical Time Domain Reflectometer) method. Furthermore, the difference in transmission loss of 1550nm wavelength light when optical fiber 10 was wound in a single layer on a 280mm diameter bobbin without sandpaper was evaluated as follows: less than 0.5dB / km for the difference in transmission loss of 1550nm wavelength light, between 0.5dB / km and 1.0dB / km for the difference in the difference in the difference in transmission loss of 1550nm wavelength light, and greater than 1.0dB / km for the difference in the difference in the difference in transmission loss of 1550nm wavelength light when optical fiber 10 was wound in a single layer on a 280mm diameter bobbin with the surface covered with sandpaper was measured using the OTDR (Optical Time Domain Reflectometer) method.

[0125] (Low-temperature characteristics) Optical fibers were wound in a single layer onto a glass bobbin with a tension of 50g. The transmission characteristics of a 1550nm wavelength signal light were measured under temperature conditions of 23°C and -40°C, and the transmission loss at 23°C and -40°C was determined. The difference in transmission loss obtained by subtracting the transmission loss at 23°C from the transmission loss at -40°C was evaluated as follows: less than 0dB was rated as "A", 0dB or more and 0.01dB / km or less was rated as "B", and greater than 0.01dB / km was rated as "C".

[0126] [Table 1]

[0127] [Table 2]

[0128] [Table 3] [Explanation of Symbols]

[0129] 10 Optical Fibers 11 cores 12 clad 13. Glass fiber 14 Primary resin layer 15. Secondary resin layer 16. Coating resin layer 20 Connection part 21 Unconnected part 40 Connecting resin layer 60, 70 Fiber Optic Cables 61 Cylindrical tube 62 Intervention 63,73 Tension Members 64,75 outer covering 65 Tear cord 71 slot grooves 72 Slot Rod 74. Retaining tape 100, 100A, 100B Fiber Optic Ribbons

Claims

1. Glass fiber including core and cladding, A primary resin layer that is in contact with and covers the glass fiber, The system comprises a secondary resin layer covering the primary resin layer, The primary resin layer comprises a cured product of a resin composition containing a polypropylene polyol with a number average molecular weight of 8,000 to 20,000, a urethane (meth)acrylate containing a reaction product of an isocyanate group-containing (meth)acrylate, and a photopolymerization initiator. An optical fiber having a primary resin layer thickness of 5 μm or more and 50 μm or less.

2. The optical fiber according to claim 1, wherein the urethane (meth)acrylate further comprises a reaction product of a polypropylene polyol having a number average molecular weight of 8,000 or more and 20,000 or less, an isocyanate group-containing (meth)acrylate, and an isocyanate group-containing silane compound.

3. The optical fiber according to claim 1 or claim 2, wherein the photopolymerizable compound further comprises a urethane (meth)acrylate which is a reaction product of a polypropylene polyol having a number average molecular weight of 2,000 or more and 20,000 or less, a diisocyanate, and a hydroxyl group-containing (meth)acrylate.

4. The optical fiber according to claim 3, wherein the number average molecular weight of the polypropylene polyol is 6,000 or more and 20,000 or less.

5. The optical fiber according to any one of claims 1 to 4, wherein the photopolymerizable compound further comprises a urethane (meth)acrylate which is a reaction product of a polyoxyalkylene monoalkyl ether, a diisocyanate, and a hydroxyl group-containing (meth)acrylate, or a reaction product of a polyoxyalkylene monoalkyl ether and an isocyanate group-containing (meth)acrylate.

6. The optical fiber according to claim 5, wherein the number-average molecular weight of the polyoxyalkylene monoalkyl ether is 2,000 or more and 10,000 or less.

7. A method for manufacturing an optical fiber according to any one of claims 1 to 6, A coating step of applying the resin composition to the outer periphery of a glass fiber including a core and cladding, A curing step is performed in which the resin composition is cured by irradiating it with ultraviolet light after the coating step to form a primary resin layer. A method for manufacturing optical fibers, comprising the above, wherein the thickness of the primary resin layer is 5 μm or more and 50 μm or less.

8. A fiber optic ribbon comprising a plurality of optical fibers arranged in parallel, each optical fiber having a core and a cladding, a primary resin layer in contact with and covering the glass fiber, and a secondary resin layer covering the primary resin layer, and coated with a ribbon resin, The optical fiber ribbon comprises a primary resin layer which includes a cured product of a resin composition containing a polypropylene polyol having a number average molecular weight of 8,000 to 20,000, a urethane (meth)acrylate containing a reaction product of an isocyanate group-containing (meth)acrylate, and a photopolymerization initiator.

9. An optical fiber cable in which the optical fiber ribbon described in claim 8 is housed inside the cable.

10. An optical fiber cable in which a plurality of optical fibers according to any one of claims 1 to 6 are housed within the cable.

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