JP4161821B2 - Fusion splicing reinforcement method - Google Patents

Fusion splicing reinforcement method Download PDF

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Publication number
JP4161821B2
JP4161821B2 JP2003190524A JP2003190524A JP4161821B2 JP 4161821 B2 JP4161821 B2 JP 4161821B2 JP 2003190524 A JP2003190524 A JP 2003190524A JP 2003190524 A JP2003190524 A JP 2003190524A JP 4161821 B2 JP4161821 B2 JP 4161821B2
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fusion
fusion splicing
gripping
heat
protective member
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JP2005024921A (en
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龍一郎 佐藤
一成 服部
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Sumitomo Electric Industries Ltd
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Sumitomo Electric Industries Ltd
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Description

【0001】
【発明の属する技術分野】
本発明は、多心の光ファイバテープ心線を融着接続した後、融着接続部を保護部材により補強する融着接続補強方法に関する。
【0002】
【従来の技術】
従来、光ファイバの融着接続は、接続端のファイバ被覆部を除去して、露出されたガラスの裸ファイバ部の突合せ端部を加熱溶融して融着することにより行なわれる。ファイバ被覆部が除去され、融着接続された裸ファイバ部は、機械的な強度が弱いため保護部材により補強される。この保護部材は、通常、加熱により径方向に収縮する熱収縮チューブ内に補強棒を添えて、熱溶融性の接着樹脂からなる熱溶融性チューブを収納して構成されている。
【0003】
図5は、一般的な融着接続部の補強方法を示す図で、図中、1は光ファイバテープ心線(テープ心線)、2は裸ファイバ部、3はファイバ被覆部、4は融着接続部、5は保護部材、6は熱収縮チューブ、7は熱溶融性チューブ、8は補強棒、9は加熱台、10はヒータ、11は加熱機構を示す。
【0004】
図5おいて、複数本の光ファイバを平行に並べて共通被覆で一体化された光ファイバテープ心線1(以下、単にテープ心線という)は、接続端のファイバ被覆部3を除去して裸ファイバ部2を露出させ、先端を突き合わせてアーク放電等により融着接続される。保護部材5は、裸ファイバ部2の両側のファイバ被覆部3の所定範囲を覆う長さを有し、熱収縮チューブ6内に、ホットメルト接着樹脂系の熱溶融性チューブ7とステンレスまたはガラス、セラミック等の補強棒8を収納して構成される。
【0005】
熱溶融性チューブ7は、例えば、楕円状にされて多数の光ファイバが一列に並んで収納されるような形状と大きさを有し、補強棒8は、例えば、半円柱状のものが用いられ、その平坦面に光ファイバが一列に並べられる程度の太さのものが用いられる。そして、融着接続されたテープ心線1は、熱溶融性チューブ7内に、融着接続部4が中央に位置するように挿入され、加熱台9とヒータ10等で構成される加熱機構11により加熱される。この加熱により、熱溶融性チューブ7が軟化溶融されるとともに、熱収縮チューブ6が内径方向に収縮・縮径される。
【0006】
熱収縮チューブ6の収縮・縮径により、加熱溶融された熱溶融性チューブ7は、熱収縮チューブ6内の空間部分を埋めるようにして、裸ファイバ部2の周囲を補強棒8とともに覆う。熱収縮チューブ6および溶融された熱溶融性チューブ7が硬化すると、裸ファイバ部2両側のファイバ被覆部の一部を含めて、融着接続部4を所定の範囲にわたって保護、補強する。
【0007】
また、融着接続された2本のテープ心線を1つの保護部材で同時に補強する方法も知られている(例えば、特許文献1参照)。前記の特許文献1においては、2本の4心テープ心線が断面矩形又は平板状の補強棒を挟んで、テープ心線毎に用意された熱溶融性チューブ内に個別に挿入され、上記と同様に融着接続部を所定の範囲にわたって保護、補強する。また、保護部材5で融着接続部を保護する際に、テープ心線1に一定の張力を加えて加熱することも開示されている。
【0008】
【特許文献1】
特開平9−297243号公報
【0009】
【発明が解決しようとする課題】
融着接続されるテープ心線1が、例えば、24心のように心数が多くなると、互いに融着接続する一方が24心の光ファイバテープ心線で、他方が12心のテープ心線を2本使用することがある。また、互いに融着接続する双方に、12心のテープ心線を2本平行に並べ、24心となるようにして一括融着接続することがある。多心の一括融着接続では、全光ファイバの長さを揃え、一列にしてアーク放電等を用いて同時に融着される。この後、融着接続された状態を維持して、融着接続部を上述のチューブ状の保護部材で覆い、保護・補強が行なわれる。
【0010】
この場合、融着接続された多数の光ファイバは一列に並べられており、特許文献1のように2本のテープ心線を、180°向きを異ならせて保護部材に挿入することは容易でなく、一方の側が1本のテープ心線で形成されている場合は、実質上不可能である。このため、複数本のテープ心線を平行に並べて一括融着接続した後の補強は、図5で説明したように、光ファイバを平行一列に保った状態で保護部材に挿入し加熱処理される。
【0011】
図6は、この場合における問題点を説明する図で、図中、1a〜1dはテープ心線、12a,12bは把持機構を示し、その他の符号は図5で用いたのと同じ符号を用いることにより説明を省略する。テープ心線1a,1bのペアと1c,1dのペアを、互いに平行に並べて融着接続した後、その融着接続部を補強する場合、2本のテープ心線1aと1b、並びに、1cと1dとは、融着時と同様に多数の光ファイバが平行一列に並ぶようにして保護部材5に、挿入されるものとする。
【0012】
2本のテープ心線1aと1bは、図6の左側の把持機構12aにより平行に並べて把持され、これと接続される相手方のテープ心線1cと1dは、右側の把持機構12bにより同様に平行に並べて把持される。平行に並べられたテープ心線1a,1b及び1c,1dは、図6(C−イ)に示すように一列状態で保護部材5内に挿入され、加熱機構11により加熱される。
【0013】
加熱機構11による加熱により、保護部材5が収縮・縮径される。この保護部材5の縮径により、図6(C−ロ)に示すように、保護部材5内では並列状態にある2本のテープ心線1aと1b(1cと1dも同様)は、互いに内側に寄せられて上下に分かれて重なり部分Yを生じる。テープ心線が1本で形成されている場合は、このような重なりは生じないが、テープ心線1aと1bのように並べて使用する場合は、把持機構の把持力は十分でなく、すべりを生じやすいことも原因している。保護部材5内で生じる重なり部分Yは、ファイバ被覆が除去された融着接続部の近傍の裸ファイバ部分が直接接触して、微細な傷を生じ断線を起こす可能性がある。
【0014】
本発明は、上述した実情に鑑みてなされたもので、複数本の光ファイバテープ心線を平行に並べて融着接続された融着接続部を保護部材で補強するに際して、光ファイバ同士に重なりが生じない融着接続補強方法を提供することを課題とする。
【0016】
発明による融着接続補強方法は、光ファイバテープ心線を融着接続した後、融着接続部を保護部材の単一の熱溶融性チューブ内に挿入して覆い、次いで、融着接続部の両側を把持機構で把持し、融着接続部を覆う保護部材を加熱機構により加熱処理する融着接続補強方法である。そして、前記の複数の光ファイバテープ心線を異なる角度で一体形成された2以上の把持面を備える把持機構により把持させて、加熱処理するようにしたものである。なお、異なる角度の把持面は、ハ字状の2面で形成することができる。
【0017】
【発明の実施の形態】
図1及び図2により本発明の実施形態の概略を説明する。図1(A)は本発明による融着接続補強装置の概略を示す平面図、図1(B)は同正面図、図1(C)は同側面図、図2(A),(B)は本発明の作用を説明する図である。図中、1a〜1dはテープ心線、2は裸ファイバ部、3はファイバ被覆部、4は融着接続部、5は保護部材、6は熱収縮チューブ、6’は縮径チューブ、7は熱溶融性チューブ、7’は溶融接着樹脂、8は補強棒、9は加熱台、10はヒータ、11は加熱機構、12a,12bは把持機構、13は加熱機構固定台、14は把持機構固定台、15は係合ピンを示す。
【0018】
本発明の対象とされる融着接続光ファイバは、少なくとも2本の光ファイバテープ心線(以下、単にテープ心線という)を平行一列に並べ、一括融着された状態のものである。なお、互いに接続される一方の側で、2本以上のテープ心線が用いていればよく、相手側は一体化されている1本のテープ心線であってもよく、また、単心線を複数本並べただけのものであってもよい。
【0019】
図1(A)に示すように、融着接続は、テープ心線1a〜1dの端部のファイバ被覆部3を除去して裸ファイバ部2を露出させ、これらの接続端部を突き合せた後、アーク放電等により接続端同士を一括して溶融し融着することにより形成される。融着接続部4は、他の部分と比べて機械的に弱くなっていることから、補強が行なわれる。この補強は、融着接続部4の近傍の裸ファイバ部2とファイバ被覆部3の一部を含めて、スリーブ状の保護部材5で覆い、保護部材5を加熱機構11で従来と同様に加熱収縮させることにより行なわれる。そして、保護部材5は、予めテープ心線上に挿通させておき、融着接続後に融着接続部4が中央になるように位置させ、補強装置の加熱機構11上に載置する。このとき、光ファイバが加熱中に動いたり、曲げられた状態で補強されないように、両側に配置した把持機構12aと12bにより把持固定する。
【0020】
図1(B)に示すように、把持機構12aと12bは、加熱機構11を支持する加熱機構固定台13の両側に設けられた把持機構固定台14上に設置される。なお、把持機構12aと12bの少なくとも一方、あるいは把持機構固定台14と共に、光ファイバの軸方向に移動可能として、従来と同様に融着接続部に所定の張力が付与されるように構成するようにしてもよい。また、把持機構12a,12bは、係合ピン15やねじ等により着脱可能に取付けられ、テープ心線の種別、使用本数の変更等に対応できるように交換可能に構成しておくのが好ましい。
【0021】
本発明では、図1(C)に示すように、テープ心線1a〜1dを把持するに際して、隣り合うテープ心線が互いに異なる方向に傾斜するように把持する。具体的な把持機構12a12bについては後述するが、例えば、融着接続されたテープ心線1aと1b(並びに1cと1d)は、ハの字になるように傾斜させて把持固定する。
【0022】
図2(A―イ)は、融着接続されたテープ心線1aと1b(並びに1cと1d)を、ハの字にして保護部材5に挿入し、加熱収縮させたときの状態を示す。保護部材5は、熱収縮チューブ6内に、ホットメルト接着樹脂系の単一の熱溶融性チューブ7とステンレスまたはガラス、セラミック等の補強棒8を収納して構成される。熱溶融性チューブ7は、例えば、楕円状にされてハ字状に並べられた2本のテープ心線1aと1bが挿入されるような形状と大きさで形成され、補強棒8は、例えば、半円柱状のものが用いられる。融着接続されたテープ心線1aと1b(並びに1cと1d)は、熱溶融性チューブ7内に、融着接続部4が中央に位置するように挿入し、加熱機構11により加熱する。
【0023】
加熱機構11の加熱により、図2(A―ロ)に示すように、熱収縮チューブ6が内径方向に収縮・縮径されて縮径チューブ6’となるとともに、熱溶融性チューブ7は軟化溶融されて、縮径チューブ6’内の隙間部分を埋める溶融接着樹脂7’となる。テープ心線1a,1b(又は1c、1d)は、融着接続部分とともにハの字を維持した状態で、縮径チューブ6’内に溶融接着樹脂7’により接着一体化される。すなわち、図6(C)で説明したような、重なりを生じることなく保護・補強することができる。
【0024】
図2(B)は他の実施例を示す図で、3本のテープ心線を使用する例を説明するものである。この場合、図2(A)の例と同様に、3本のテープ心線は、把持機構での把持面の角度が異なる(この場合台形状に把持)ように把持させ、図2(B―イ)に示すように、この把持状態で保護部材5に挿入する。保護部材5は、熱収縮チューブ6内に、ホットメルト接着樹脂系の単一の熱溶融性チューブ7と補強棒8を収納して構成される。熱溶融性チューブ7は、例えば、楕円状にされて台形状に並べられた3本のテープ心線が挿入されるような形状と大きさで形成され、補強棒8は、例えば、半円柱状のものを用いる。融着接続されたテープ心線は、台形状のまま熱溶融性チューブ7内に、融着接続部4が中央に位置するように挿入し、加熱機構11により加熱する。
【0025】
加熱機構11の加熱により、図2(B―ロ)に示すように、熱収縮チューブ6が内径方向に収縮・縮径されて縮径チューブ6’となるとともに、熱溶融性チューブ7は軟化溶融されて、縮径チューブ6’内の隙間部分を埋める溶融接着樹脂7’となる。テープ心線は、融着接続部分とともに台形状の配列を維持した状態で、縮径チューブ6’内に溶融接着樹脂7’により接着一体化される。すなわち、この場合も、テープ心線間で裸ファイバ同士が重なりを生じることなく保護・補強することができる。
【0026】
図3及び図4は把持機構12a,12bの具体例を説明する図である。図3は把持機構の斜視図、図4(A)はクランプ解放状態の側面図、図4(B)はクランプ閉状態の側面図を示す。図中、20はクランプブロック、20aは凹溝、20bは支持片、20cは軸支孔、20dはガイド片、21はクランプベース、21a,21bはテープ心線の把持面、22はクランプ蓋、22a,22bはクランプ面、23はクランプ軸、24は弾性部材、25a,25bはマグネット、26はクランプレバーを示す。
【0027】
把持機構12a,12bは左右対称で、図には左側の把持機構12aを示してある。把持機構12aは、クランプブロック20にクランプベース21を配置し、クランプ蓋22をクランプ軸23により枢着して構成される。クランプブロック20は、中央にクランプベース21を配置する凹溝20aを有し、該凹溝20aの一方の側には軸支孔20cを形成するための1対の支持片20bを一体に設け、反体側にはガイド片20dを一体に設けて構成される。また、クランプブロック20の上面には、マグネット25a,25bを埋め込んで、クランプ蓋22を吸着により閉じるようにしている。
【0028】
クランプベース21は、クランプブロック20の凹溝20aに、ネジ等の固着手段により組み付けられる。クランプベース21の上面は、テープ心線を固定する把持面とされる部分で、角度の異なる一体形成された把持面、例えば、2つの把持面21aと21bを山形、又は、ハの字形になるように形成される。テープ心線が3本使用される場合は、3つの把持面が得られるように、図2(B)に対応するような台形の把持面で形成される。この把持面21a,21bは、複数本のテープ心線を並べて把持する際に、平面で一列に並ばないように各把持面毎に異なる角度となるように形成される。
【0029】
クランプ蓋22は、クランプベース21の把持面21a,21bに適合するクランプ面22a,22bをV字状、又は、逆ハの字状になるように形成し、クランプ軸23によりクランプブロック20の支持片20b間に枢着される。クランプ面22a,22bには、ゴム等の弾性部材24が貼り付けられ、テープ心線に傷を付けることなくクランプできるようにされる。なお、この弾性部材24は、クランプベース21の把持面21a,21b側に設けてもよく、双方に設けてもよい。
【0030】
以上のような構成で、図4(A)のクランプ蓋22を開いた状態にして、クランプベース21の把持面21a,21bにテープ心線1a,1bを載置する。次いで、図4(B)に示すようにクランプ蓋22を閉じることにより、弾性部材24で把持面21a,21b上のテープ心線1a,1bを押圧して把持固定する。クランプ蓋22は、上面に取付け固定されたL字状のクランプレバー26を掴んで開閉される。クランプ蓋22は、クランプブロック20に埋設されたマグネット25a,25bにより閉状態を保持するが、マグネット25a,25bは、クランプ蓋22側に埋設してもよい。また、マグネットによる固着に代えて、スプリングで付勢された係合手段やネジ等を用いた他の固定手段を用いることもできる。
【0031】
上述の把持機構によれば、テープ心線1a,1bは、互いに反対方向への傾斜角度を有する把持面21a,21bによる楔作用と弾性部材24による摩擦接触も加わって、大きな把持力で把持固定することができる。これにより、テープ心線1a,1bが保護部材の縮径により、内側への応力を受けたとしても、把持面上でテープ心線1a,1bがずれるのを阻止して、裸ファイバ同士が接触するのを防ぐことができる。また、テープ心線1a,1bを把持面21a,21bに倣わせて載置した後、単一構造のクランプ蓋22を閉じるだけの操作により簡単に固定でき、また、取外しもクランプレバー26を引くだけで簡単に行なうことができる。なお、この把持機構は、図1(B)に示したように、把持機構固定台14に交換可能に取付けられ、テープ心線の心数、使用本数等により、適宜変更できるように構成しておくのが好ましい。
【0032】
【発明の効果】
上述したとおり、本発明によれば、複数本の光ファイバテープ心線を平行に並べて融着接続された融着接続部を保護部材で補強するに際して、保護部材の収縮により光ファイバ同士が互いに接触するのを防止することができ、断線発生等が生じないようにすることができる。
【図面の簡単な説明】
【図1】 本発明による融着接続補強方法の概略を説明する図である。
【図2】 本発明による融着接続補強方法の作用を説明する図である。
【図3】 本発明による融着接続補強方法の具体例を説明する図である。
【図4】 本発明による融着接続補強方法の具体例の動作状態を説明する図である。
【図5】 従来の技術を説明する図である。
【図6】 従来の問題点を説明する図である。
【符号の説明】
1,1a〜1d…光ファイバテープ心線(テープ心線)、2…裸ファイバ部、3…ファイバ被覆部、4…融着接続部、5…保護部材、6…熱収縮チューブ、6’…縮径チューブ、7…熱溶融性チューブ、7’…溶融接着樹脂、8…補強棒、9…加熱台、10…ヒータ、11…加熱機構、12a,12b…把持機構、13…加熱機構固定台、14…把持機構固定台、15…係合ピン、20…クランプブロック、20a…凹溝、20b…支持片、20c…軸支孔、20d…ガイド片、21…クランプベース、21a,21b…テープ心線の把持面、22…クランプ蓋、22a,22b…クランプ面、23…クランプ軸、24…弾性部材、25a,25b…マグネット、26…クランプレバー。
[0001]
BACKGROUND OF THE INVENTION
The present invention is, after fusion splicing optical fiber ribbon multifiber relates fused connection reinforcement method for reinforcing the protective member to fusion splice.
[0002]
[Prior art]
Conventionally, fusion splicing of optical fibers is performed by removing the fiber coating portion at the connection end and fusing the fused end of the bare bare fiber portion by heating and fusing. The bare fiber portion, from which the fiber covering portion has been removed and fusion-spliced, has a low mechanical strength and is reinforced by a protective member. This protective member is usually configured by attaching a reinforcing rod to a heat-shrinkable tube that shrinks in the radial direction when heated and housing a heat-meltable tube made of a heat-meltable adhesive resin.
[0003]
FIG. 5 is a diagram showing a general method for reinforcing the fusion splicing portion, in which 1 is an optical fiber ribbon (tape core), 2 is a bare fiber portion, 3 is a fiber coating portion, and 4 is a fusion wire. Incoming connection part, 5 is a protective member, 6 is a heat shrinkable tube, 7 is a heat-meltable tube, 8 is a reinforcing rod, 9 is a heating table, 10 is a heater, and 11 is a heating mechanism.
[0004]
In FIG. 5, an optical fiber tape core wire 1 (hereinafter simply referred to as a tape core wire) in which a plurality of optical fibers are arranged in parallel and integrated with a common coating is removed by removing the fiber coating portion 3 at the connection end. The fiber part 2 is exposed, the ends are butted together, and fusion spliced by arc discharge or the like. The protective member 5 has a length that covers a predetermined range of the fiber coating portion 3 on both sides of the bare fiber portion 2, and a hot-melt adhesive resin-based heat-meltable tube 7 and stainless steel or glass, A reinforcing bar 8 made of ceramic or the like is accommodated.
[0005]
The heat-meltable tube 7 has, for example, an elliptical shape and a size such that a large number of optical fibers are accommodated in a line, and the reinforcing rod 8 is, for example, a semi-cylindrical one The thickness of the optical fiber is such that the optical fibers are arranged in a line on the flat surface. Then, the fusion-bonded tape core wire 1 is inserted into the heat-meltable tube 7 so that the fusion-bonding portion 4 is located in the center, and a heating mechanism 11 including a heating table 9 and a heater 10 is provided. Is heated by. By this heating, the heat-meltable tube 7 is softened and melted, and the heat-shrinkable tube 6 is contracted / reduced in the inner diameter direction.
[0006]
The heat-meltable tube 7 that has been heated and melted by shrinking / reducing the diameter of the heat-shrinkable tube 6 covers the periphery of the bare fiber portion 2 together with the reinforcing rod 8 so as to fill the space in the heat-shrinkable tube 6. When the heat-shrinkable tube 6 and the molten heat-meltable tube 7 are cured, the fusion splicing portion 4 is protected and reinforced over a predetermined range including a part of the fiber coating portions on both sides of the bare fiber portion 2.
[0007]
There is also known a method in which two fusion-bonded tape core wires are simultaneously reinforced with one protective member (see, for example, Patent Document 1). In the above-mentioned Patent Document 1, two 4-core tape core wires are inserted individually into a heat-meltable tube prepared for each tape core wire with a reinforcing bar having a rectangular or flat cross section interposed therebetween, and Similarly, the fusion splicing portion is protected and reinforced over a predetermined range. It is also disclosed that when the fusion spliced portion is protected by the protective member 5, heating is performed by applying a certain tension to the tape core wire 1.
[0008]
[Patent Document 1]
JP-A-9-297243
[Problems to be solved by the invention]
For example, when the number of the cores 1 to be spliced increases, for example, 24 cores, one of the cores to be spliced to each other is a 24-fiber optical fiber core and the other is a 12-core tape core Two may be used. In addition, two 12-core fiber cores may be arranged in parallel and fused together so that there are 24 cores on both sides that are fused together. In the multi-core batch fusion splicing, the lengths of all the optical fibers are aligned, and they are fused simultaneously using arc discharge or the like in a line. Thereafter, the fusion-spliced state is maintained, and the fusion-spliced portion is covered with the above-described tube-shaped protective member to perform protection and reinforcement.
[0010]
In this case, a large number of fusion-spliced optical fibers are arranged in a line, and it is easy to insert two tape core wires into the protective member with different directions by 180 ° as in Patent Document 1. However, when one side is formed by one tape core wire, it is substantially impossible. For this reason, the reinforcement after the plurality of tape core wires are arranged in parallel and fused together is inserted into the protective member and heat-treated with the optical fibers kept in a parallel row as described in FIG. .
[0011]
FIG. 6 is a diagram for explaining the problem in this case. In the figure, 1a to 1d denote tape core wires, 12a and 12b denote gripping mechanisms, and the other symbols are the same as those used in FIG. Therefore, the description is omitted. When a pair of tape cores 1a and 1b and a pair of 1c and 1d are arranged in parallel with each other and fusion-bonded and then the fusion-bonded portion is reinforced, two tape cores 1a and 1b, and 1c and In the case of 1d, it is assumed that many optical fibers are inserted into the protective member 5 so as to be arranged in a parallel line as in the case of fusion.
[0012]
The two tape cores 1a and 1b are held in parallel by the left gripping mechanism 12a in FIG. 6, and the counterpart tape cores 1c and 1d connected thereto are similarly parallel by the right gripping mechanism 12b. Are held side by side. The tape cores 1a, 1b and 1c, 1d arranged in parallel are inserted into the protective member 5 in a single row as shown in FIG.
[0013]
By the heating by the heating mechanism 11, the protective member 5 is contracted / reduced. Due to the reduced diameter of the protective member 5, as shown in FIG. 6 (C-B), the two tape cores 1a and 1b (1c and 1d are also in parallel) in the protective member 5 are mutually inside. Are separated into upper and lower parts and an overlapping portion Y is generated. Such overlap does not occur when the tape core is formed of one piece, but when the tape cores 1a and 1b are used side by side, the gripping force of the gripping mechanism is not sufficient and slipping is not possible. It is also caused by the tendency to occur. The overlapping portion Y generated in the protective member 5 may directly contact a bare fiber portion in the vicinity of the fusion splicing portion from which the fiber coating has been removed, thereby causing a fine flaw and disconnection.
[0014]
The present invention has been made in view of the above-described situation, and when reinforcing a fusion spliced portion that is a fusion spliced by arranging a plurality of optical fiber ribbons in parallel, the optical fibers overlap each other. providing a fused connection reinforcement method that does not cause an object.
[0016]
In the fusion splicing reinforcement method according to the present invention, after the optical fiber ribbon is fused and connected, the fusion splicing portion is inserted and covered in a single heat-meltable tube of the protective member, and then the splicing splicing portion. both sides were grasped by the gripping mechanism, Ru fusion splicing reinforcing method der heat treating the protective member that covers the fusion spliced portion by the heating mechanism. Then, a plurality of optical fiber ribbons of the, by gripping by the gripping mechanism having two or more gripping surfaces which are integrally formed with different angles, but which is adapted to heat treatment. In addition, the gripping surface of a different angle can be formed by two C-shaped surfaces.
[0017]
DETAILED DESCRIPTION OF THE INVENTION
The outline of the embodiment of the present invention will be described with reference to FIGS. 1A is a plan view schematically showing a fusion splicing reinforcement device according to the present invention, FIG. 1B is a front view thereof, FIG. 1C is a side view thereof, and FIGS. These are figures explaining the operation of the present invention. In the figure, 1a to 1d are tape core wires, 2 is a bare fiber part, 3 is a fiber coating part, 4 is a fusion splicing part, 5 is a protective member, 6 is a heat shrinkable tube, 6 'is a reduced diameter tube, and 7 is Heat melting tube, 7 'is melt adhesive resin, 8 is a reinforcing rod, 9 is a heating base, 10 is a heater, 11 is a heating mechanism, 12a and 12b are gripping mechanisms, 13 is a heating mechanism fixing base, and 14 is a gripping mechanism fixing. A base 15 indicates an engaging pin.
[0018]
The fusion spliced optical fiber that is the subject of the present invention is one in which at least two optical fiber ribbons (hereinafter simply referred to as “tape ribbons”) are arranged in parallel and fused together. It should be noted that two or more tape cores may be used on one side connected to each other, and the other side may be one integrated tape core, or a single core It is also possible to simply arrange a plurality of.
[0019]
As shown in FIG. 1A, the fusion splicing is performed by removing the fiber coating portion 3 at the ends of the tape cores 1a to 1d to expose the bare fiber portion 2, and butting the connection ends. Thereafter, the connection ends are melted and fused together by arc discharge or the like. Since the fusion splicing portion 4 is mechanically weaker than other portions, reinforcement is performed. This reinforcement is performed by covering the bare fiber part 2 and part of the fiber coating part 3 in the vicinity of the fusion splicing part 4 with a sleeve-like protective member 5 and heating the protective member 5 with a heating mechanism 11 as in the conventional case. This is done by contracting. Then, the protective member 5 is inserted in advance on the tape core wire, is positioned so that the fusion splicing portion 4 is in the center after the fusion splicing, and is placed on the heating mechanism 11 of the reinforcing device. At this time, the optical fibers are held and fixed by the holding mechanisms 12a and 12b arranged on both sides so that the optical fiber does not move during heating or is not reinforced in a bent state.
[0020]
As shown in FIG. 1B, the gripping mechanisms 12 a and 12 b are installed on a gripping mechanism fixing base 14 provided on both sides of a heating mechanism fixing base 13 that supports the heating mechanism 11. In addition, it is possible to move in the axial direction of the optical fiber together with at least one of the gripping mechanisms 12a and 12b or the gripping mechanism fixing base 14 so that a predetermined tension is applied to the fusion splicing portion as in the prior art. It may be. Moreover, it is preferable that the gripping mechanisms 12a and 12b are detachably attached by the engagement pins 15 and screws or the like, and are configured to be exchangeable so as to be able to cope with a change in the type of the tape core wire, the number of wires used, and the like.
[0021]
In the present invention, as shown in FIG. 1C, when the tape cores 1a to 1d are gripped, the adjacent tape cores are gripped so as to be inclined in different directions. Although the specific gripping mechanism 12a12b will be described later, for example, the fusion-bonded tape cores 1a and 1b (and 1c and 1d) are tilted and fixed so as to form a letter C.
[0022]
FIG. 2 (A-I) shows a state in which the fusion-bonded tape cores 1a and 1b (and 1c and 1d) are inserted into the protective member 5 in a square shape and are heated and shrunk. The protective member 5 is configured by housing a single hot-melt adhesive resin-based heat-meltable tube 7 and a reinforcing rod 8 made of stainless steel, glass, ceramic or the like in a heat-shrinkable tube 6. The heat-meltable tube 7 is formed in a shape and size such that, for example, two tape cores 1a and 1b arranged in an elliptical shape and arranged in a C shape are inserted. A semi-cylindrical one is used. The fusion-bonded tape cores 1 a and 1 b (and 1 c and 1 d) are inserted into the heat-meltable tube 7 so that the fusion-bonding portion 4 is located at the center, and heated by the heating mechanism 11.
[0023]
As shown in FIG. 2 (A-B), the heat shrinkable tube 6 is contracted and contracted in the inner diameter direction by the heating mechanism 11 to become a contracted tube 6 ′, and the heat-meltable tube 7 is softened and melted. Thus, the molten adhesive resin 7 ′ fills the gap portion in the reduced diameter tube 6 ′. The tape cores 1a and 1b (or 1c and 1d) are bonded and integrated into the reduced-diameter tube 6 ′ by a molten adhesive resin 7 ′ in a state of maintaining a square shape together with the fusion spliced portion. That is, as described with reference to FIG. 6C, protection and reinforcement can be performed without causing overlap.
[0024]
FIG. 2B is a diagram illustrating another embodiment, and illustrates an example in which three tape cores are used. In this case, as in the example of FIG. 2A, the three tape core wires are gripped so that the angle of the gripping surface of the gripping mechanism is different (in this case, gripped in a trapezoidal shape), and FIG. As shown in (a), it is inserted into the protective member 5 in this gripping state. The protective member 5 is configured by housing a single hot-melt adhesive resin-based hot-melt tube 7 and a reinforcing rod 8 in a heat-shrinkable tube 6. The heat-meltable tube 7 is formed in a shape and size such that, for example, three tape core wires that are oval and arranged in a trapezoidal shape are inserted, and the reinforcing rod 8 is, for example, a semi-cylindrical shape Use one. The fusion-connected tape core wire is inserted into the heat-meltable tube 7 in a trapezoidal shape so that the fusion-bonding portion 4 is located at the center, and is heated by the heating mechanism 11.
[0025]
As shown in FIG. 2 (B-B), the heat shrinkable tube 6 is contracted / reduced in the inner diameter direction by the heating mechanism 11 to become a reduced diameter tube 6 ′, and the heat-meltable tube 7 is softened and melted. Thus, the molten adhesive resin 7 ′ fills the gap portion in the reduced diameter tube 6 ′. The tape core wire is bonded and integrated into the reduced-diameter tube 6 ′ by the molten adhesive resin 7 ′ while maintaining the trapezoidal arrangement together with the fusion spliced portion. That is, also in this case, it is possible to protect and reinforce the bare fibers without causing overlap between the tape core wires.
[0026]
3 and 4 are diagrams for explaining specific examples of the gripping mechanisms 12a and 12b. 3 is a perspective view of the gripping mechanism, FIG. 4A is a side view of the clamp released state, and FIG. 4B is a side view of the clamp closed state. In the figure, 20 is a clamp block, 20a is a concave groove, 20b is a support piece, 20c is a shaft support hole, 20d is a guide piece, 21 is a clamp base, 21a and 21b are gripping surfaces of the tape core wire, 22 is a clamp lid, 22a and 22b are clamp surfaces, 23 is a clamp shaft, 24 is an elastic member, 25a and 25b are magnets, and 26 is a clamp lever.
[0027]
The gripping mechanisms 12a and 12b are symmetrical, and the left gripping mechanism 12a is shown in the figure. The gripping mechanism 12 a is configured by disposing a clamp base 21 on a clamp block 20 and pivotally attaching a clamp lid 22 by a clamp shaft 23. The clamp block 20 has a concave groove 20a in which the clamp base 21 is disposed in the center, and a pair of support pieces 20b for forming a shaft support hole 20c are integrally provided on one side of the concave groove 20a. A guide piece 20d is integrally provided on the opposite side. Further, magnets 25a and 25b are embedded in the upper surface of the clamp block 20, and the clamp lid 22 is closed by suction.
[0028]
The clamp base 21 is assembled to the concave groove 20a of the clamp block 20 by fixing means such as screws. The upper surface of the clamp base 21 is a portion to be a gripping surface for fixing the tape core wire, and is formed as an integrally formed gripping surface having different angles, for example, two gripping surfaces 21a and 21b are chevron-shaped or C-shaped. Formed as follows. When three tape cores are used, a trapezoidal gripping surface corresponding to FIG. 2B is formed so as to obtain three gripping surfaces. The gripping surfaces 21a and 21b are formed so as to have different angles for each gripping surface so as not to be aligned in a single plane when a plurality of tape cores are gripped side by side.
[0029]
The clamp lid 22 is formed so that the clamp surfaces 22 a and 22 b that fit the grip surfaces 21 a and 21 b of the clamp base 21 have a V shape or a reverse C shape, and the clamp shaft 23 supports the clamp block 20. It is pivotally attached between the pieces 20b. An elastic member 24 such as rubber is affixed to the clamp surfaces 22a and 22b so that the tape can be clamped without scratching. The elastic member 24 may be provided on the holding surfaces 21a and 21b side of the clamp base 21 or may be provided on both sides.
[0030]
With the configuration as described above, with the clamp lid 22 of FIG. 4A opened, the tape cores 1 a and 1 b are placed on the gripping surfaces 21 a and 21 b of the clamp base 21. Next, as shown in FIG. 4B, by closing the clamp lid 22, the elastic members 24 press and hold the tape cores 1a and 1b on the gripping surfaces 21a and 21b. The clamp lid 22 is opened and closed by grasping an L-shaped clamp lever 26 attached and fixed to the upper surface. The clamp lid 22 is kept closed by the magnets 25a and 25b embedded in the clamp block 20, but the magnets 25a and 25b may be embedded on the clamp lid 22 side. Moreover, it can replace with fixation by a magnet and can also use the other fixing means using the engaging means and screw which were urged | biased with the spring.
[0031]
According to the above-described gripping mechanism, the tape cores 1a and 1b are held and fixed with a large gripping force by adding a wedge action by the gripping surfaces 21a and 21b having inclination angles in opposite directions and frictional contact by the elastic member 24. can do. As a result, even if the tape cores 1a and 1b are subjected to inward stress due to the reduced diameter of the protective member, the tape cores 1a and 1b are prevented from shifting on the gripping surface, and the bare fibers contact each other. Can be prevented. Further, after the tape cores 1a and 1b are placed following the gripping surfaces 21a and 21b, they can be easily fixed by simply closing the clamp lid 22 having a single structure, and the clamp lever 26 is pulled for removal. It can be done simply. As shown in FIG. 1 (B), this gripping mechanism is attached to the gripping mechanism fixing base 14 in a replaceable manner, and can be appropriately changed depending on the number of cores of the tape core wire, the number of wires used, and the like. It is preferable to leave.
[0032]
【The invention's effect】
As described above, according to the present invention, when reinforcing a fusion spliced portion where a plurality of optical fiber ribbons are arranged in parallel with each other by a protective member, the optical fibers contact each other by contraction of the protective member. This can prevent the occurrence of disconnection and the like.
[Brief description of the drawings]
FIG. 1 is a diagram for explaining the outline of a fusion splicing reinforcement method according to the present invention.
FIG. 2 is a diagram for explaining the operation of the fusion splicing reinforcement method according to the present invention.
FIG. 3 is a diagram illustrating a specific example of a fusion splicing reinforcement method according to the present invention.
FIG. 4 is a diagram for explaining the operating state of a specific example of the fusion splicing reinforcement method according to the present invention.
FIG. 5 is a diagram illustrating a conventional technique.
FIG. 6 is a diagram for explaining a conventional problem.
[Explanation of symbols]
DESCRIPTION OF SYMBOLS 1,1a-1d ... Optical fiber tape core wire (tape core wire), 2 ... Bare fiber part, 3 ... Fiber coating | coated part, 4 ... Fusion splicing part, 5 ... Protection member, 6 ... Heat-shrinkable tube, 6 '... Reduced diameter tube, 7 ... Heat-meltable tube, 7 '... Melt adhesive resin, 8 ... Reinforcing rod, 9 ... Heating table, 10 ... Heater, 11 ... Heating mechanism, 12a, 12b ... Grip mechanism, 13 ... Heating mechanism fixing table , 14 ... gripping mechanism fixing base, 15 ... engagement pin, 20 ... clamp block, 20a ... concave groove, 20b ... support piece, 20c ... shaft support hole, 20d ... guide piece, 21 ... clamp base, 21a, 21b ... tape Core wire gripping surface, 22: clamp lid, 22a, 22b ... clamping surface, 23 ... clamp shaft, 24 ... elastic member, 25a, 25b ... magnet, 26 ... clamp lever.

Claims (2)

複数の光ファイバテープ心線を融着接続した後、融着接続部を保護部材の単一の熱溶融性チューブ内に挿入して覆い、次いで、前記融着接続部の両側を把持機構で把持し、前記保護部材を加熱機構により加熱処理する融着接続補強方法であって、
前記複数の光ファイバテープ心線を異なる角度で一体形成された2以上の把持面を備える把持機構により把持させて加熱処理することを特徴とする融着接続補強方法。
After fusion splicing of a plurality of optical fiber ribbons, the fusion splicing part is inserted and covered in a single heat-melting tube of a protective member, and then both sides of the fusion splicing part are gripped by a gripping mechanism. and, a fusion splicing reinforcing method of heat treatment of the protective member by the heating mechanism,
Fusion splicing reinforcing method characterized in that said plurality of optical fiber ribbon, to pressurized heat treatment is gripped by the gripping mechanism having two or more gripping surface which is integrally formed at different angles.
前記把持面がハ字状の2面で形成されていることを特徴とする請求項1に記載の融着接続補強方法。The fusion splicing reinforcement method according to claim 1, wherein the gripping surface is formed by two C-shaped surfaces.
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RU2334258C1 (en) 2005-06-09 2008-09-20 Сумитомо Электрик Индастриз, Лтд. Heater of joint protection, reflow fusion unit including heater of joint protection, and method of reflow fusion
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WO2020071166A1 (en) * 2018-10-02 2020-04-09 Seiオプティフロンティア株式会社 Reinforcement device for optical fiber fusion splicing section and fusion splicer provided with same
WO2021065606A1 (en) * 2019-10-01 2021-04-08 古河電気工業株式会社 Reinforcement sleeve, and reinforcement structure and reinforcement method for optical fiber connection part
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