JP2010186172A - Plastic optical fiber cable - Google Patents

Plastic optical fiber cable Download PDF

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JP2010186172A
JP2010186172A JP2010005572A JP2010005572A JP2010186172A JP 2010186172 A JP2010186172 A JP 2010186172A JP 2010005572 A JP2010005572 A JP 2010005572A JP 2010005572 A JP2010005572 A JP 2010005572A JP 2010186172 A JP2010186172 A JP 2010186172A
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optical fiber
plastic optical
pof
resin
light leakage
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Takeshi Kimura
剛 木村
Yoshihiro Tsukamoto
好宏 塚本
Yasushi Fujishige
泰志 藤重
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Mitsubishi Rayon Co Ltd
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Mitsubishi Rayon Co Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a POF cable which is suitable for an optical information communication such as a home network and an office network, is excellent in color hue and flexibility, gives small leakage of light even when installed in a curved state, and suitable for use in the information communication in a short or intermediate distance. <P>SOLUTION: The plastic optical fiber cable is composed of a plastic optical fiber and a coating layer coating the plastic optical fiber. The outer diameter of the plastic optical fiber cable is 1 to 3 mm, the coating layer is composed of at least two layers of a light leakage prevention layer containing 0.3 to 2.5 mass% black pigment in a resin and a colored outer layer containing 3 to 10 mass% color pigment other than black in the resin, and the ratio of the thickness of the light leakage prevention layer to that of the colored outer layer is 50:50 to 15:85. <P>COPYRIGHT: (C)2010,JPO&INPIT

Description

本発明は、家庭内ホームネットワークおよびオフィス内ネットワークなどでの光情報通信に好適であり、短・中距離での情報通信の使用に好適なプラスチック光ファイバケーブルに関する。   The present invention relates to a plastic optical fiber cable suitable for optical information communication in a home network in a home, an office network, and the like, and suitable for use in information communication over short and medium distances.

従来、光ファイバとしては、広い波長領域にわたって優れた光伝送が可能な石英系光ファイバが知られており、幹線系を中心に実用化されているが、この石英系光ファイバは高価で加工性が低い。そのため、より安価で、軽量、大口径であり、端面加工や取り扱いが容易である等の長所を有するプラスチック光ファイバ(以下「POF」と略す)が開発され、例えばライティングやセンサー等の分野、FA、OA、LAN等の短・中距離通信用途の配線などの分野で実用化されている。   Conventionally, silica-based optical fibers capable of excellent light transmission over a wide wavelength range are known as optical fibers, and they have been put to practical use mainly in trunk systems, but these silica-based optical fibers are expensive and workable. Is low. Therefore, a plastic optical fiber (hereinafter abbreviated as “POF”) having advantages such as cheaper, lighter, larger diameter, and easy to process and handle end faces has been developed. It has been put to practical use in the field of wiring for short / medium distance communications such as OA and LAN.

POFはLEDなどの可視赤色光源と組み合わせ、信号伝送線として利用されている。POFが屋内配線として用いられる場合、狭い空間に屈曲した状態で敷設されることが一般的である。そのため、POFと受発光素子との結合光量ロスや屈曲による光量ロスの少ないことなどが要求されている。   POF is used as a signal transmission line in combination with a visible red light source such as an LED. When POF is used as an indoor wiring, it is generally laid in a bent state in a narrow space. For this reason, there is a demand for a combined light loss between the POF and the light emitting / receiving element and a small light loss due to bending.

またこのような用途に使用されるPOFは、通常、POF素線に樹脂を被覆したPOFケーブルのような形で使用されることが多い。特に家庭内ホームネットワークやオフィス内ネットワークなどで使用されるPOFケーブルでは、意匠性の観点から白色などの色の薄いケーブルが好まれることが多く、敷設した際に赤色のLED光の曲げによる漏光や、側面からの光が侵入することで光の伝送に悪影響を及ぼすといった問題が生じている。   Further, the POF used for such applications is usually used in the form of a POF cable in which a POF strand is coated with a resin. In particular, for POF cables used in home networks for homes and offices, light-colored cables such as white are often preferred from the viewpoint of design, and light leakage due to bending of red LED light when laid However, there is a problem in that light from the side surface invades the transmission of light.

このような問題を解決する為にPOFの周囲に被覆する樹脂を選定したり、着色外層を設けたりしたPOFケーブルに関する多くの技術が報告されている。   In order to solve such problems, many techniques relating to POF cables in which a resin to be coated around the POF is selected or a colored outer layer is provided have been reported.

例えば特許文献1および特許文献2には、POFの外周に黒色内層と着色外層を設けることで側面からの光の侵入防止に優れたPOFケーブルが提案されている。特許文献1および2にはポリアミド系樹脂を中心とした着色POFケーブルに関する記載があるが、曲げ弾性率が大きく、屈曲した状態で敷設することが多い室内配線などではポリアミド系樹脂を用いたものでは扱いにくいという問題点があった。またPOFケーブルへ側面からの光の侵入を低減する目的で、内層の黒色層を一定以上の厚さにする必要があり、POFケーブルの色調が低下し、所望の薄い色のPOFケーブルが得られないという問題があった。   For example, Patent Document 1 and Patent Document 2 propose a POF cable excellent in preventing light from entering from the side surface by providing a black inner layer and a colored outer layer on the outer periphery of the POF. Patent Documents 1 and 2 describe a colored POF cable centered on a polyamide-based resin. However, in the case of indoor wiring that has a large bending elastic modulus and is often laid in a bent state, a polyamide-based resin is not used. There was a problem that it was difficult to handle. In addition, in order to reduce the penetration of light from the side into the POF cable, it is necessary to make the black layer of the inner layer a certain thickness or more, the color tone of the POF cable is lowered, and a desired light color POF cable is obtained. There was no problem.

特開平11−242142号公報JP 11-242142 A 特開平10−307218号公報JP-A-10-307218

本発明の目的は、色調と柔軟性に優れ、屈曲した状態で敷設されても漏光が少なく、短・中距離での情報通信の使用に好適なPOFケーブルを提供することである。   An object of the present invention is to provide a POF cable that is excellent in color tone and flexibility, has little light leakage even when laid in a bent state, and is suitable for use in information communication over short and medium distances.

本発明者らは、POFの被覆層を黒色顔料を含有する漏光防止層と、黒色以外の着色顔料を含有する着色外層の少なくとも2層を特定の厚みの比率で設けることにより課題を解決できることを見出し本発明を完成させた。   The present inventors can solve the problem by providing at least two layers of a POF coating layer of a light leakage prevention layer containing a black pigment and a colored outer layer containing a color pigment other than black at a specific thickness ratio. Heading The present invention has been completed.

ここに、本発明のプラスチック光ファイバケーブルは、プラスチック光ファイバと前記プラスチック光ファイバを被覆する被覆層からなるプラスチック光ファイバケーブルであって、前記プラスチック光ファイバケーブルの外径が1〜3mmの範囲にあり、前記被覆層が、樹脂中に黒色顔料を0.3〜2.5質量%含有する漏光防止層と、樹脂中に黒色以外の着色顔料を3〜10質量%含有する着色外層の少なくとも2層からなり、前記漏光防止層と前記着色外層の厚さの比が50:50〜15:85の範囲にあることを特徴とするものである。   Here, the plastic optical fiber cable of the present invention is a plastic optical fiber cable comprising a plastic optical fiber and a coating layer covering the plastic optical fiber, and the outer diameter of the plastic optical fiber cable is in the range of 1 to 3 mm. And at least 2 of a light leakage preventing layer containing 0.3 to 2.5% by mass of a black pigment in the resin and a colored outer layer containing 3 to 10% by mass of a color pigment other than black in the resin. It consists of a layer, The ratio of the thickness of the said light leakage prevention layer and the said colored outer layer exists in the range of 50: 50-15: 85, It is characterized by the above-mentioned.

本発明により、意匠性(着色性)等の外観が良好で、屈曲した状態でも漏光が少ない情報通信用のPOFケーブルを提供でき、さらに好適には、薄い色のPOFケーブル、特に白色のPOFケーブルを提供できる。   According to the present invention, it is possible to provide a POF cable for information communication that has a good appearance such as designability (colorability) and has little light leakage even in a bent state, and more preferably, a light color POF cable, particularly a white POF cable. Can provide.

図1はPOFケーブルの断面図である。FIG. 1 is a cross-sectional view of a POF cable. 図2は2芯並行POFケーブルの断面図である。FIG. 2 is a cross-sectional view of a two-core parallel POF cable. 図3は2芯並行POFケーブルの別構造の断面図である。FIG. 3 is a cross-sectional view of another structure of the two-core parallel POF cable.

以下に、図1に基づいて本発明の実施の形態を説明する。   Hereinafter, an embodiment of the present invention will be described with reference to FIG.

図1は、本発明によるPOFケーブルの一実施形態を示す断面図である。芯11Aおよびその外周に形成された鞘11BからなるPOF12の外周に、漏光防止層13が形成され、さらにその外側に着色外層14が形成されている。   FIG. 1 is a cross-sectional view showing an embodiment of a POF cable according to the present invention. A light leakage prevention layer 13 is formed on the outer periphery of the POF 12 including the core 11A and the sheath 11B formed on the outer periphery thereof, and a colored outer layer 14 is formed on the outer side thereof.

ここで、POF12としては、図1記載の構成以外にも公知のものが使用でき、例えば中心から外周に向かって連続的に芯11Aの屈折率が低下するGI型POF、中心から外に向かって芯11Aの屈折率が段階的に低下する多層POF、複数の芯11Aを鞘で取り囲んで一纏めにしたマルチコアPOFなどが挙げられる。なかでもPOFを広帯域化して高速信号伝送を行うには、多層POFを用いることがより好ましい。   Here, as the POF 12, a known one can be used in addition to the configuration shown in FIG. 1, for example, a GI POF in which the refractive index of the core 11A continuously decreases from the center toward the outer periphery, and from the center toward the outside. A multilayer POF in which the refractive index of the core 11A gradually decreases, a multi-core POF in which a plurality of cores 11A are surrounded by a sheath, and the like are listed. In particular, it is more preferable to use a multilayer POF in order to increase the bandwidth of the POF and perform high-speed signal transmission.

芯11Aには、各種の透明性の高い重合体が使用され、特に限定されるものではないが、好ましくはメチルメタクリレート単位を構成単位として含有する重合体が使用される。さらに好ましくは、メチルメタクリレート単独重合体、およびメチルメタクリレート単位を主構成単位とする重合体、またはフッ素化アルキルメタクリレート単位を主構成単位とする重合体であり、これらのなかではメチルメタクリレート単独重合体が、耐熱性と透明性に優れている点から特に好ましい。   For the core 11A, various highly transparent polymers are used, and are not particularly limited, but a polymer containing a methyl methacrylate unit as a constituent unit is preferably used. More preferably, it is a methyl methacrylate homopolymer, a polymer having a methyl methacrylate unit as a main constituent unit, or a polymer having a fluorinated alkyl methacrylate unit as a main constituent unit. Among these, a methyl methacrylate homopolymer is Particularly preferable from the viewpoint of excellent heat resistance and transparency.

芯の外周に形成される鞘は、1層から形成されていても、2層以上の複数層から形成されても良い。鞘を形成する樹脂としては、フッ素化メタクリレート系重合体、フッ化ビニリデン系重合体、テトラフルオロエチレン系重合体等POFの鞘材として公知の材料を適宜選択することができる。特にフッ素化メタクリレート系重合体は、屈折率の調整が容易で、良好な透明性および耐熱性を有しながら屈曲性、加工性に優れる重合体であるため好ましい。   The sheath formed on the outer periphery of the core may be formed from one layer or may be formed from a plurality of layers of two or more layers. As the resin forming the sheath, a known material as a sheath material of POF such as a fluorinated methacrylate polymer, a vinylidene fluoride polymer, a tetrafluoroethylene polymer, or the like can be appropriately selected. In particular, a fluorinated methacrylate polymer is preferable because it is easy to adjust the refractive index and is excellent in flexibility and workability while having good transparency and heat resistance.

このようなPOF12は、溶融紡糸法などの公知の方法で製造できる。また、POF12を温度差の激しい環境で用いる場合には、ピストニングを抑制するため、連続もしくはバッチ処理によってアニール処理を施すとなお良い。
また、本発明によるPOFケーブルは、複数本のプラスチック光ファイバが一定の間隔で並列に配置された多芯並行ケーブルとすることもできる。
POFケーブルを通信用途で使用する際には、POFケーブルの一端を光源システムに接続し、他端を受光システムに接続する必要がある。その際、双方向で通信を行う場合には、このような光源-受光システムが各々揃うように、2本のPOFケーブルを用いることで双方向通信を容易に行うことが出来る。そこで、2本のPOFを用いて、図2および図3のような2芯POFケーブルとしても良い。
図2は、2芯並行POFケーブルの断面図であり、2つのPOFケーブルの着色外層14が結合しているものである。このような構造のPOFケーブルを製造するためには、例えば、POF12の外周にクロスヘッドダイ押出被覆装置を用いて漏光防止層13を形成したあと、バッチ式で2芯用のダイス/ニップルを備えたクロスヘッドで着色外層14を被覆することで得ることができる。
また図3は、2芯並行POFケーブルの別構造の断面図であり、2つのPOFケーブルの漏光防止層13及び着色外層14が結合しているものである。このような構造のPOFケーブルを製造するためには、例えば、2層2芯用のダイス/ニップルを備えたクロスヘッドダイ押出被覆装置を用いてPOF12を被覆することができる。このような装置を用いれば、漏光防止層13および着色外層14を形成する被覆樹脂を、一つのクロスヘッドダイを用いて、POF素線の外周の同時に一括して被覆することが可能となる。
Such POF 12 can be produced by a known method such as a melt spinning method. Further, when the POF 12 is used in an environment having a large temperature difference, it is more preferable to perform an annealing process by continuous or batch processing in order to suppress pistoning.
The POF cable according to the present invention may be a multi-core parallel cable in which a plurality of plastic optical fibers are arranged in parallel at a constant interval.
When the POF cable is used for communication, it is necessary to connect one end of the POF cable to the light source system and connect the other end to the light receiving system. In that case, when performing bidirectional communication, bidirectional communication can be easily performed by using two POF cables so that such a light source-light receiving system is prepared. Therefore, a two-core POF cable as shown in FIGS. 2 and 3 may be used by using two POFs.
FIG. 2 is a cross-sectional view of a two-core parallel POF cable in which the colored outer layers 14 of the two POF cables are joined. In order to manufacture a POF cable having such a structure, for example, a light leakage prevention layer 13 is formed on the outer periphery of the POF 12 using a crosshead die extrusion coating apparatus, and then a batch type two-core die / nipple is provided. It can be obtained by coating the colored outer layer 14 with a crosshead.
FIG. 3 is a cross-sectional view of another structure of the two-core parallel POF cable, in which the light leakage prevention layer 13 and the colored outer layer 14 of the two POF cables are combined. In order to manufacture a POF cable having such a structure, the POF 12 can be coated using, for example, a crosshead die extrusion coating apparatus having a die / nipple for two layers and two cores. If such an apparatus is used, it becomes possible to coat | cover the coating resin which forms the light leakage prevention layer 13 and the colored outer layer 14 simultaneously on the outer periphery of a POF strand simultaneously using one crosshead die.

本発明のPOFケーブルは、POFとそれを被覆する被覆層からなる。被覆層は、漏光防止層と着色外層の少なくとも2層からなる。漏光防止層は、特に制限されないが、被覆層のうちの最も内層、すなわちPOFと接する層であることが好ましい。   The POF cable of the present invention comprises POF and a coating layer covering the POF. The coating layer is composed of at least two layers, a light leakage prevention layer and a colored outer layer. The light leakage prevention layer is not particularly limited, but is preferably the innermost layer of the coating layers, that is, the layer in contact with POF.

漏光防止層および着色外層として用いられる被覆材料は、適度な柔軟性と被覆工程における成形性が良好でかつ適度な融点を有しているものであれば、特に限定されるものではなく、ポリエチレン樹脂、塩化ビニル樹脂、ポリプロピレン樹脂、ウレタン樹脂などが挙げられる。これらの被覆材料は、漏光防止層と着色外層とで同じ樹脂を用いてもよいし、異なる樹脂を用いてもよい。なかでもポリエチレン樹脂や塩化ビニル樹脂は、被覆のしやすさや製造コストなどの点で好適に用いることができ、より好適には、低密度ポリエチレン(例えば、高圧法低密度ポリエチレン)を用いることができる。この低密度ポリエチレンの樹脂密度は、典型的には0.910〜0.930の範囲である(JIS K6748:1995参照)。樹脂密度の測定は、典型的には、JIS K−0061 1992、JIS K−7112 1980に準拠し、密度勾配管法を用い、例えば(株)柴山科学器械製作所製密度勾配管法直読式比重測定装置を用いて測定することができる。   The coating material used as the light leakage preventing layer and the colored outer layer is not particularly limited as long as it has an appropriate flexibility and a good moldability in the coating process and has an appropriate melting point. , Vinyl chloride resin, polypropylene resin, urethane resin and the like. For these coating materials, the same resin may be used for the light leakage prevention layer and the colored outer layer, or different resins may be used. Among these, polyethylene resin and vinyl chloride resin can be preferably used in terms of ease of coating, production cost, and the like, and more preferably, low density polyethylene (for example, high pressure method low density polyethylene) can be used. . The resin density of this low density polyethylene is typically in the range of 0.910 to 0.930 (see JIS K6748: 1995). The measurement of the resin density is typically based on JIS K-0061 1992 and JIS K-7112 1980, using the density gradient tube method, for example, density gradient tube method direct reading specific gravity measurement manufactured by Shibayama Scientific Instruments Co., Ltd. It can be measured using a device.

漏光防止層は、樹脂中に少なくとも黒色顔料を含むものであり、黒色顔料を漏光防止層全量中0.3〜2.5質量%含有する。黒色顔料としては、特に制限されないが、POFから被覆層への漏光を防ぎ、またPOF内部への外光の入射を防止する機能を付与する観点から、カーボンブラックが好ましい。黒色顔料の含有量の下限値は、漏光防止の面から、0.3質量%以上が好ましく、0.4質量%以上がより好ましく、0.45質量%以上が特に好ましい。また、黒色顔料の含有量の上限値は、ケーブル強度の面、POF内部への顔料移行による光学特性低下を抑止する面、およびケーブルの発色性等の意匠面から、2.5質量%以下が好ましく、1.5質量%以下がより好ましく、0.6質量%以下が特に好ましい。   The light leakage prevention layer contains at least a black pigment in the resin, and contains 0.3 to 2.5% by mass of the black pigment in the total amount of the light leakage prevention layer. Although it does not restrict | limit especially as a black pigment, Carbon black is preferable from a viewpoint of providing the function which prevents the light leakage from POF to a coating layer, and prevents the incidence of external light inside POF. The lower limit of the black pigment content is preferably 0.3% by mass or more, more preferably 0.4% by mass or more, and particularly preferably 0.45% by mass or more from the viewpoint of preventing light leakage. In addition, the upper limit of the black pigment content is 2.5% by mass or less from the viewpoint of cable strength, the aspect of suppressing optical property deterioration due to the pigment migration into the POF, and the design aspect of color development of the cable. Preferably, 1.5 mass% or less is more preferable, and 0.6 mass% or less is particularly preferable.

着色外層は、樹脂中に少なくとも黒色以外の着色顔料を含むものであり、黒色以外の着色顔料を着色外層全量中3〜10質量%含有する。着色外層の機能は、POFケーブルに識別性、意匠性等を付与するものである。黒色以外の着色顔料の含有量の下限値は、3%以上が好ましい。着色顔料の量が3%より少ないと、後述する漏光防止層と着色外層の層比の割合を一定の値以下にする際に、下地の黒色が透けて見えてPOFケーブルの色調が悪くなり、好ましくない。黒色以外の着色顔料の含有量の下限値は、4%以上が特に好ましい。また、黒色以外の着色顔料の含有量の上限値は、10質量%以下が好ましい。着色顔料を10質量%を超えて添加すると、ケーブルの強度が低下し、長期に渡り屈曲した状態で敷設する際に、被覆層が割れ光漏れの原因となるため好ましくない。黒色以外の着色顔料の含有量の上限値は、7質量%以下が特に好ましい。   The colored outer layer contains at least a colored pigment other than black in the resin, and contains 3 to 10% by mass of the colored pigment other than black in the total amount of the colored outer layer. The function of the colored outer layer is to impart distinguishability, designability, etc. to the POF cable. The lower limit of the content of the color pigment other than black is preferably 3% or more. If the amount of the color pigment is less than 3%, when the ratio of the layer ratio of the light leakage prevention layer and the colored outer layer described later is set to a certain value or less, the black color of the base can be seen through and the color tone of the POF cable is deteriorated. It is not preferable. The lower limit of the content of the color pigment other than black is particularly preferably 4% or more. Further, the upper limit of the content of the color pigment other than black is preferably 10% by mass or less. If the coloring pigment is added in an amount exceeding 10% by mass, the strength of the cable is lowered, and the coating layer is cracked and leaks when laid in a bent state over a long period of time, which is not preferable. The upper limit of the content of color pigments other than black is particularly preferably 7% by mass or less.

また、通常POFケーブルは信号源である光源や、検知器に組み込まれたユニットのハウジングや、別のPOFケーブル等との接合のために、このケーブル端にプラグを取り付けたプラグ付き光ファイバケーブルとして使用される。このプラグは、プラグ本体と、プラグ本体に装着されてPOFケーブルを固定するためのストッパーとを備えており、1〜3mm、特に一般的には1.50mm程度の穴径を有している。そのためPOFケーブル1本の外径は1〜3mm、特に1.48〜1.52mmであることが好ましく、それ以上になると1.50mm程度の穴径のプラグに接続することが困難になる。そのため一般的なPOFの外径が1.0mmであることを考慮すると、被覆層の厚さは0.24〜0.26mmであることが好ましい。さらに本発明では屈曲敷設した際の漏光を防ぐための漏光防止層と意匠性を持たせるための着色外層を有していることから、この被覆層の厚さ範囲内でその特性を損じることなく、両層の適切な厚み比を決定する必要がある。   In addition, the POF cable is usually a fiber optic cable with a plug in which a plug is attached to the end of the cable for joining a light source as a signal source, a housing of a unit incorporated in a detector, or another POF cable. used. This plug includes a plug main body and a stopper that is attached to the plug main body and fixes the POF cable, and has a hole diameter of about 1 to 3 mm, particularly generally about 1.50 mm. Therefore, the outer diameter of one POF cable is preferably 1 to 3 mm, particularly 1.48 to 1.52 mm, and if it is more than that, it becomes difficult to connect to a plug having a hole diameter of about 1.50 mm. Therefore, considering that the outer diameter of general POF is 1.0 mm, the thickness of the coating layer is preferably 0.24 to 0.26 mm. Furthermore, in the present invention, since it has a light leakage preventing layer for preventing light leakage when bent and laid and a colored outer layer for imparting design properties, the characteristics are not impaired within the thickness range of this coating layer. It is necessary to determine an appropriate thickness ratio of both layers.

そのため十分な漏光効果と良好な意匠性を得るために、漏光防止層と着色外層の厚み比(漏光防止層:着色外層)は、50:50〜15:85の範囲にあることが好ましい。
漏光防止層は37.5〜125μmの範囲にあり、着色外層が125〜212.5μmの範囲にあることが好ましく、また漏光防止層が40〜120μm、着色外層が130〜210μmの範囲にあることが更に好ましく、最も好ましい範囲は漏光防止層が50〜100μm、着色外層が150〜200μmの厚さである。これはPOFの外径が1.0mm、POFケーブルの外径が1.5mmの場合であると、それぞれ、漏光防止層と着色外層の厚み比、50:50〜15:85、48:52〜16:84、40:60〜20:80に相当する。漏光防止層の厚さが37.5μm以下ではPOFを曲げて敷設した際に、十分な光の遮断効果が得られず漏光してしまうだけではなく被覆層として薄すぎるため、被覆が難しく均一な外径のPOFケーブルを得ることが難しくなるため好ましくない。また漏光防止の厚さが125μm以上では光遮断効果はあるものの、POFケーブルの外径を考慮すると、上に被覆する着色外層が薄くなり、下地の黒色が透けて見え、本来の着色ケーブルの意匠性の点から好ましくない。特に家庭内ホームネットワークやオフィス内ネットワークに使用されるようなPOFケーブルでは白色POFケーブルが好まれるため、その影響は顕著である。
Therefore, in order to obtain a sufficient light leakage effect and good design properties, the thickness ratio of the light leakage prevention layer to the colored outer layer (light leakage prevention layer: colored outer layer) is preferably in the range of 50:50 to 15:85.
The light leakage prevention layer is in the range of 37.5 to 125 μm, the colored outer layer is preferably in the range of 125 to 212.5 μm, the light leakage prevention layer is in the range of 40 to 120 μm, and the colored outer layer is in the range of 130 to 210 μm. Is more preferable, and the most preferable range is a thickness of 50 to 100 μm for the light leakage preventing layer and 150 to 200 μm for the colored outer layer. When the outer diameter of the POF is 1.0 mm and the outer diameter of the POF cable is 1.5 mm, the thickness ratio between the light leakage prevention layer and the colored outer layer, 50:50 to 15:85, 48:52 to It corresponds to 16:84, 40:60 to 20:80. When the thickness of the light leakage prevention layer is 37.5 μm or less, when the POF is bent and laid, not only a sufficient light blocking effect is obtained, but also the light is leaked. This is not preferable because it is difficult to obtain an outer diameter POF cable. In addition, although the light leakage prevention thickness is 125 μm or more, there is a light blocking effect, but considering the outer diameter of the POF cable, the colored outer layer to be coated becomes thinner and the underlying black color can be seen through. It is not preferable from the viewpoint of sex. In particular, since the white POF cable is preferred for a POF cable used for a home network in a home or an office network, the influence is remarkable.

さらに黒色以外の着色顔料の平均粒子径は、0.15μm〜5μmの(電子顕微鏡写真法)であることが好ましい。黒色以外の着色顔料の平均粒子径の下限値は、顔料分散性の面、およびPOFケーブル表面への顔料のブリードアウトの面から、0.20μm以上が特に好ましい。また、この平均粒子径の上限値は、隠蔽力の面、着色の面、およびPOFケーブルの表面状態(コブ、ブツ)の面から1μm以下が好ましく、0.5μm以下が特に好ましい。ここで本願の言う顔料の隠蔽力とは、被覆樹脂添加する顔料の量を最少にし、下地の黒色を透過せず、ケーブルの色調を改善できる力と定義する。粒子径が小さければ、同一重量の顔料で比較した場合、比表面積が大きくなるため隠ぺい力が大きくなる。   Furthermore, the average particle diameter of the color pigments other than black is preferably 0.15 μm to 5 μm (electron micrograph). The lower limit of the average particle diameter of the color pigments other than black is particularly preferably 0.20 μm or more from the viewpoint of pigment dispersibility and the bleeding out of the pigment to the POF cable surface. In addition, the upper limit of the average particle diameter is preferably 1 μm or less, particularly preferably 0.5 μm or less, in terms of the hiding power, the colored surface, and the surface state (bumps and bumps) of the POF cable. Here, the pigment hiding power referred to in the present application is defined as a force capable of improving the color tone of the cable without minimizing the amount of the pigment added to the coating resin and transmitting the base black. If the particle diameter is small, when compared with pigments of the same weight, the hiding power increases because the specific surface area increases.

これらの条件を満足する着色顔料としては、黒以外の着色顔料であれば、特に制限されず、無機系顔料や有機系顔料から公知のものを使用できる。例えば、白色顔料としては二酸化チタン、酸化亜鉛など、また黄色顔料としてはアゾ系有機顔料、黄鉛、クロム黄、亜鉛黄など、青色顔料としては群青(ウルトラマリンブルー)やコバルトブルーなど、緑色顔料としては酸化クロムやコバルトグリーンなどが挙げられる。特に、白色顔料としては、二酸化チタンや酸化亜鉛が好ましく、なかでも、隠蔽率や着色力の点から二酸化チタンが特に好ましい。また青色顔料としては群青、緑色顔料としては酸化クロムが、隠蔽率や着色力の点から特に好ましい。
なお、ここで言う無機顔料とは、その構造にさまざまな種類に分けることができるが、いずれを用いてもよい。例えば二酸化チタンに関しては、結晶構造の違いによりルチル型とアナタース型等があるが、いずれの型のものも用いることができる。
The color pigment satisfying these conditions is not particularly limited as long as it is a color pigment other than black, and known ones from inorganic pigments and organic pigments can be used. For example, titanium dioxide, zinc oxide, etc. as white pigments, azo organic pigments, yellow lead, chrome yellow, zinc yellow, etc. as yellow pigments, green pigments such as ultramarine blue and cobalt blue as blue pigments Examples thereof include chromium oxide and cobalt green. In particular, as the white pigment, titanium dioxide and zinc oxide are preferable, and titanium dioxide is particularly preferable from the viewpoint of the concealment rate and coloring power. Further, ultramarine blue is preferable as the blue pigment, and chromium oxide is particularly preferable as the green pigment from the viewpoint of the concealment ratio and coloring power.
In addition, although the inorganic pigment said here can be divided into various kinds in the structure, any may be used. For example, regarding titanium dioxide, there are a rutile type and an anatase type depending on the crystal structure, and any type can be used.

以下、本発明を実施例を挙げて説明するが、本発明の範囲がこれらの実施例に限定されるものではない。実施例における各評価方法は次の通りである。   EXAMPLES Hereinafter, although an Example is given and this invention is demonstrated, the scope of the present invention is not limited to these Examples. Each evaluation method in the examples is as follows.

[伝送損失]
25m−5mカットバック法により伝送損失(dB/km)を測定した。測定波長が650nm、入射光のNA(開口数)が、0.1の光を用いた。なお、測定は光源より3mの位置で曲げ半径25mmの固定治具に固定し測定を行った。
[Transmission loss]
The transmission loss (dB / km) was measured by a 25m-5m cutback method. Light having a measurement wavelength of 650 nm and an incident light NA (numerical aperture) of 0.1 was used. In addition, the measurement was performed by fixing to a fixing jig having a bending radius of 25 mm at a position 3 m from the light source.

[漏光観察(光量相対値)]
電圧5.02V 電流0.1Aの赤色発光LED光源(中心波長630nm)に接続した長さ5mのPOFケーブルを、光源より約18cmの部分を曲げ半径φ=25mmの曲げ治具にセットした。POFケーブルの屈曲部から漏光した光を、屈曲部より3.5mmの位置に浜松ホトニクス社製の分光測光装置PMA-11を固定し漏光量を測定した。漏光した光量は後述する比較例1で作製したPOFケーブルからの漏れ光量を基準値(100%)とし、相対値として算出した。
[Light leakage observation (light intensity relative value)]
A POF cable having a length of 5 m connected to a red light emitting LED light source (center wavelength: 630 nm) having a voltage of 5.02 V and a current of 0.1 A was set on a bending jig having a bending radius of φ = 25 mm at a portion of about 18 cm from the light source. The light leaked from the bent part of the POF cable was fixed with a spectrophotometer PMA-11 manufactured by Hamamatsu Photonics at a position 3.5 mm from the bent part, and the amount of leaked light was measured. The amount of light leaked was calculated as a relative value using the amount of light leaked from the POF cable produced in Comparative Example 1 described later as a reference value (100%).

[漏光観察(目視による判断)]
また、漏光の可否は、3m四方を光線透過率0.0%の遮光シートで覆った暗室内に、曲げ半径20mmおよび30mmの固定治具POFケーブルを固定し、暗室内で目を10分間慣らした後、漏光を目視により判断した。判定は目視により確認されなかったものを○(合格)、目を凝らしてよく見ると漏光が確認できるものを△(不可)、直ぐに漏光が確認できるものを×(不可)とした。漏光の具合に応じて、さらに激しいものは××とした。
[Light leakage observation (visual judgment)]
In order to determine whether or not light leaks, fix fixture POF cables with a bending radius of 20 mm and 30 mm in a dark room with 3m square covered with a light-shielding sheet with a light transmittance of 0.0%, and acclimatize the eyes for 10 minutes in the dark room. After that, light leakage was judged visually. Judgment was evaluated as ◯ (passed) for those that were not visually confirmed, △ (impossible) for light leakage that could be confirmed with close eyes, and X (impossible) for light leakage that could be confirmed immediately. Depending on the degree of light leakage, more severe ones were marked with xx.

[ケーブル色調]
ケーブルの色調は、ドイツの標準色票のRAL DESIGN Systemの色番号のうち最も近いものを記録した。色調は後述する比較例1で作製したPOFケーブルの色調を基準色RAL9003(signal white)とし、白から黒くなる方向の順に、次いでRAL9016(traffic white)、RAL7047(telegrey 4)、RAL7040(window grey)と順位付けを行った。また、ケーブルの色調は、標準色票と対比をしない目視によっても確認した。
[Cable color tone]
The color of the cable recorded the closest color number of the German standard color chart RAL DESIGN System. The color tone of the POF cable produced in Comparative Example 1 described later is the reference color RAL9003 (signal white), and in the order from white to black, then RAL9016 (traffic white), RAL7047 (telegrey 4), RAL7040 (window gray) And ranked. The color tone of the cable was also confirmed by visual inspection without comparing with the standard color chart.

[実施例1]
芯材として、メチルメタクリレート(MMA)の単独重合体(PMMA)、鞘材は2層構造とし、第一鞘層として、2,2,2−トリフルオロエチルメタクリレート(3FM)/1,1,2,2−パーフルオロデシルメタクリレート(17FM)/MMA/メタクリル酸(MAA)=31/50/18/1(重量%)の共重合体、第二鞘層としてフッ化ビニリデン/テトラフルオロエチレン=80/20(mol%)を用い、これらを溶融して同心円状に中心から順次積層して複合紡糸し、芯径970μm、第一鞘層5μm、第二鞘層10μmからなる外径1.0mmのPOFを得た。
[Example 1]
As a core material, a homopolymer (PMMA) of methyl methacrylate (MMA), a sheath material has a two-layer structure, and 2,1,2-trifluoroethyl methacrylate (3FM) / 1,1,2, as a first sheath layer , 2-perfluorodecyl methacrylate (17FM) / MMA / methacrylic acid (MAA) = 31/50/18/1 (wt%) copolymer, vinylidene fluoride / tetrafluoroethylene = 80 / as the second sheath layer 20 (mol%), melted, concentrically stacked in order from the center, and composite-spun, POF having a core diameter of 970 μm, a first sheath layer of 5 μm, and a second sheath layer of 10 μm and an outer diameter of 1.0 mm Got.

次いで、漏光防止層としてポリエチレン(宇部興産社製:UBEポリエチレン UBEC180、樹脂密度0.924g/cm)にカーボンブラック(三菱化学社製:三菱カーボンブラック 汎用カラー(RCF)#45L、平均粒子径24nm)を0.45質量%含有させたものを使用した。また着色外層としてポリエチレン(商標名:UBEポリエチレン UBEC180、宇部興産社製)に平均粒子径が0.21μmの二酸化チタン(石原産業社製:CR-60)を5質量%含有させたものを使用した。これらを樹脂被覆用クロスヘッド型被覆装置に供給して、POFの外周に両被覆材料を順次被覆して、外径1.5mmのPOFケーブルを得た。その際の漏光防止層の厚みは100μm、着色外層の厚みは150μm、であった。こうして得られたPOFケーブルを前記の評価方法により評価し、その結果を表1に示した。表1からわかるように、伝送損失に優れ、屈曲部の漏れ光量も少なく、目視による判断では漏光が確認されなかった。またケーブルの色調も優れたものであった。 Then, the polyethylene as the light leakage prevention layer (manufactured by Ube Industries, Ltd.: UBE Polyethylene UBEC180, resin density of 0.924 g / cm 3) carbon black (manufactured by Mitsubishi Chemical Corporation: Mitsubishi Carbon Black Generic Color (RCF) # 45L, the average particle diameter of 24nm ) Was used in an amount of 0.45% by mass. As the colored outer layer, polyethylene (trade name: UBE polyethylene UBEC180, manufactured by Ube Industries, Ltd.) containing 5% by mass of titanium dioxide (Ishihara Sangyo Co., Ltd .: CR-60) having an average particle size of 0.21 μm was used. . These were supplied to a resin-coated crosshead type coating device, and both coating materials were sequentially coated on the outer periphery of the POF to obtain a POF cable having an outer diameter of 1.5 mm. At this time, the thickness of the light leakage preventing layer was 100 μm, and the thickness of the colored outer layer was 150 μm. The POF cable thus obtained was evaluated by the above evaluation method, and the results are shown in Table 1. As can be seen from Table 1, the transmission loss was excellent, the amount of light leakage at the bent portion was small, and no light leakage was confirmed by visual judgment. Also, the color of the cable was excellent.

[実施例2〜4]
漏光防止層と着色外層に加える顔料の量および厚みを表1に示した条件にした以外は、実施例1と同様の被覆材料を用い、同様の方法でPOFケーブルを作製した。得られたPOFケーブルの各種特性を評価し、その結果を表1に示した。実施例2〜4により得られたPOFケーブルは屈曲部の漏れ光量も少なく、目視による判断では漏光が確認されなかった。またPOFケーブルの色調もきれいな白色であった。結果を表1に示す。
[Examples 2 to 4]
A POF cable was produced in the same manner using the same coating material as in Example 1 except that the amount and thickness of the pigment added to the light leakage prevention layer and the colored outer layer were changed to the conditions shown in Table 1. Various characteristics of the obtained POF cable were evaluated, and the results are shown in Table 1. The POF cables obtained in Examples 2 to 4 had a small amount of light leakage at the bent portion, and no light leakage was confirmed by visual judgment. The color of the POF cable was also beautiful white. The results are shown in Table 1.

[実施例5〜7]
着色外層に用いる二酸化チタンの種類を表2に示すものに変更した以外は実施例3と同様の被覆材料を用い、同様の方法でPOFケーブルを作製した。すなわち、漏光防止層にはカーボンブラックを0.45%添加し、着色外層には表2に示した製造メーカの酸化チタンを5%添加した。漏光防止層と着色外層の厚みは、それぞれ80μm、170μmとした。得られたPOFケーブルは顔料の種類によらず、いずれも目視では分からない程度の漏れ光量で、色調も良好であった。
[Examples 5 to 7]
A POF cable was produced in the same manner using the same coating material as in Example 3 except that the type of titanium dioxide used in the colored outer layer was changed to that shown in Table 2. That is, 0.45% of carbon black was added to the light leakage prevention layer, and 5% of titanium oxide from the manufacturer shown in Table 2 was added to the colored outer layer. The thicknesses of the light leakage prevention layer and the colored outer layer were 80 μm and 170 μm, respectively. The obtained POF cable had a leaking light amount and a good color tone, both of which were not visually recognized, regardless of the type of pigment.

[比較例1]
漏光防止層を設けないこと、二酸化チタンの添加量を表1のように変更すること以外は、実施例1と同様の方法でPOFケーブルを作製した。得られたPOFケーブルは屈曲した際の漏光が激しかった。結果を表1に示す。
[Comparative Example 1]
A POF cable was produced in the same manner as in Example 1 except that the light leakage prevention layer was not provided and the addition amount of titanium dioxide was changed as shown in Table 1. The obtained POF cable was severely leaked when bent. The results are shown in Table 1.

[比較例2〜6]
カーボンブラックおよび二酸化チタンの添加量を表1のように変更し、漏光防止層と着色外層の厚みを表1のように変更した以外は、実施例1と同様の方法でPOFケーブルを得た。
[Comparative Examples 2 to 6]
A POF cable was obtained in the same manner as in Example 1 except that the addition amounts of carbon black and titanium dioxide were changed as shown in Table 1, and the thicknesses of the light leakage prevention layer and the colored outer layer were changed as shown in Table 1.

比較例2、5については、得られたPOFケーブルは屈曲部からの漏光が目立ち、必要とするPOFケーブルは得られなかった。また、比較例3については、得られたPOFケーブルは屈曲部からの漏光はなかったものの、ケーブルの色調が悪く、所望のPOFケーブルは得られなかった。さらに比較例4、6については、得られたPOFケーブルは屈曲部からの漏光は少なかったものの、目視による判断では漏光が確認できた。   In Comparative Examples 2 and 5, the obtained POF cable was conspicuous in light leakage from the bent portion, and the required POF cable could not be obtained. In Comparative Example 3, although the obtained POF cable did not leak light from the bent portion, the color tone of the cable was bad and the desired POF cable could not be obtained. Further, for Comparative Examples 4 and 6, although the obtained POF cable had little light leakage from the bent portion, light leakage could be confirmed by visual judgment.

Figure 2010186172
Figure 2010186172

Figure 2010186172
表1に示したように、実施例1〜4で得られたPOFケーブルは、屈曲部の漏れ光量も少なく、目視による判断では漏光が確認されなかった。またPOFケーブルの色調も白色が発現し良好であった。
Figure 2010186172
As shown in Table 1, the POF cables obtained in Examples 1 to 4 had a small amount of leakage light at the bent portion, and no leakage was confirmed by visual judgment. Also, the color tone of the POF cable was good with white color.

一方、比較例1にあるように漏光防止層を設けずに被覆したPOFケーブルは、ケーブルの色調は白色が発現できたが、屈曲部の漏光が激しく、必要とするPOFケーブルは得られなかった。   On the other hand, the POF cable coated without the light leakage prevention layer as in Comparative Example 1 was able to exhibit white color tone, but the light leakage at the bent portion was intense, and the required POF cable could not be obtained. .

また、比較例2〜6にあるように、漏光防止層と着色外層の厚み比率や着色顔料の含有量を変えて作製したPOFケーブルでは、屈曲部からの漏光が多かったり、ケーブル外観の色調がきれいな白色を発現できなかったりして、良い結果は得られなかった。
さらに表2に示すように着色外層の顔料(二酸化チタン)の平均粒子径や顔料の構造を変えても、所定の範囲内の顔料を用いることで実施例5〜7に示すように、所望のPOFケーブルを得ることが出来た。
In addition, as shown in Comparative Examples 2 to 6, in the POF cable produced by changing the thickness ratio of the light leakage prevention layer and the colored outer layer and the content of the color pigment, there is much light leakage from the bent portion, and the color appearance of the cable appearance is A good white result could not be obtained because a beautiful white color could not be developed.
Furthermore, as shown in Examples 5-7, by using a pigment within a predetermined range even if the average particle diameter of the pigment (titanium dioxide) and the pigment structure of the colored outer layer are changed as shown in Table 2, a desired range can be obtained. I got a POF cable.

11A・・・芯
11B・・・鞘
12 ・・・POF
13 ・・・被覆内層(漏光防止層)
14 ・・・被覆外層(着色外層)
11A ... core 11B ... sheath 12 ... POF
13 ... Inner layer (light leakage prevention layer)
14 ... Outer coating layer (colored outer layer)

Claims (5)

プラスチック光ファイバと前記プラスチック光ファイバを被覆する被覆層からなるプラスチック光ファイバケーブルであって、
前記プラスチック光ファイバケーブルの外径が1〜3mmの範囲にあり、
前記被覆層が、樹脂中に黒色顔料を0.3〜2.5質量%含有する漏光防止層と、樹脂中に黒色以外の着色顔料を3〜10質量%含有する着色外層の少なくとも2層からなり、
前記漏光防止層と前記着色外層の厚さの比が50:50〜15:85の範囲にあることを特徴とするプラスチック光ファイバケーブル。
A plastic optical fiber cable comprising a plastic optical fiber and a coating layer covering the plastic optical fiber,
The outer diameter of the plastic optical fiber cable is in the range of 1 to 3 mm,
The coating layer includes at least two layers of a light leakage preventing layer containing 0.3 to 2.5% by mass of a black pigment in the resin and a colored outer layer containing 3 to 10% by mass of a color pigment other than black in the resin. Become
A plastic optical fiber cable, wherein the thickness ratio between the light leakage preventing layer and the colored outer layer is in the range of 50:50 to 15:85.
前記着色外層に含まれる黒色以外の着色顔料が、白色顔料である請求項1記載のプラスチック光ファイバケーブル。   The plastic optical fiber cable according to claim 1, wherein the colored pigment other than black contained in the colored outer layer is a white pigment. 前記被覆層に用いる樹脂が、ポリエチレン樹脂、塩化ビニル樹脂、ポリプロピレン樹脂、およびウレタン樹脂からなる群より選ばれる少なくとも1種の樹脂である、請求項1又は2に記載のプラスチック光ファイバケーブル。   The plastic optical fiber cable according to claim 1 or 2, wherein the resin used for the coating layer is at least one resin selected from the group consisting of polyethylene resin, vinyl chloride resin, polypropylene resin, and urethane resin. 前記被覆層に用いる樹脂が、低密度ポリエチレンである、請求項3に記載のプラスチック光ファイバケーブル。   The plastic optical fiber cable according to claim 3, wherein the resin used for the coating layer is low-density polyethylene. プラスチック光ファイバケーブルは、複数本のプラスチック光ファイバが一定の間隔で並列に配置された多芯並行ケーブルである、請求項1〜4のいずれか1項に記載のプラスチック光ファイバケーブル。   The plastic optical fiber cable according to any one of claims 1 to 4, wherein the plastic optical fiber cable is a multi-core parallel cable in which a plurality of plastic optical fibers are arranged in parallel at regular intervals.
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