JP2776660B2 - Optical fiber alignment device - Google Patents

Optical fiber alignment device

Info

Publication number
JP2776660B2
JP2776660B2 JP3280710A JP28071091A JP2776660B2 JP 2776660 B2 JP2776660 B2 JP 2776660B2 JP 3280710 A JP3280710 A JP 3280710A JP 28071091 A JP28071091 A JP 28071091A JP 2776660 B2 JP2776660 B2 JP 2776660B2
Authority
JP
Japan
Prior art keywords
optical fiber
movable piece
piezoelectric element
pair
optical
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
JP3280710A
Other languages
Japanese (ja)
Other versions
JPH0593815A (en
Inventor
功 鈴木
幹夫 吉沼
信幸 吉澤
伸一 青島
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Fujikura Ltd
Nippon Telegraph and Telephone Corp
Original Assignee
Fujikura Ltd
Nippon Telegraph and Telephone Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Fujikura Ltd, Nippon Telegraph and Telephone Corp filed Critical Fujikura Ltd
Priority to JP3280710A priority Critical patent/JP2776660B2/en
Publication of JPH0593815A publication Critical patent/JPH0593815A/en
Application granted granted Critical
Publication of JP2776660B2 publication Critical patent/JP2776660B2/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

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Description

【発明の詳細な説明】DETAILED DESCRIPTION OF THE INVENTION

【0001】[0001]

【産業上の利用分野】この発明は、複数の光ファイバが
列状に配設されたもの(以下これを多心テープファイバ
とよぶ)において各光ファイバの正確な軸合せを行うの
に好適な光ファイバの調心装置に関するものである。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention is suitable for accurately aligning optical fibers in a plurality of optical fibers arranged in a row (hereinafter referred to as a multi-core tape fiber). The present invention relates to an optical fiber alignment device.

【0002】[0002]

【従来の技術】多心テープファイバの一括融着接続は、
従来光ファイバを載置・固定するV溝が一直線状に精密
加工された多心用固定V溝台上に光ファイバを挿入して
左右光ファイバの外径軸をほぼ合せておき、押込み量の
制御により左右ファイバ心線のコア軸調心が行なわれて
いた。
2. Description of the Related Art Batch fusion splicing of a multi-core tape fiber is performed as follows.
Conventionally, an optical fiber is inserted into a multi-core fixed V-groove in which the V-groove for mounting and fixing the optical fiber is precisely machined in a straight line, and the outer diameter axes of the left and right optical fibers are almost aligned, and the pushing amount The core axis alignment of the left and right fiber cores was performed by the control.

【0003】[0003]

【発明が解決しようとする課題】ところで、光ファイバ
融着の際に接続損失を低減させるためには、各心線毎の
調心作業が必要である。ところが、融着しようとするフ
ァイバ間隔はごく狭く、ミクロンオーダの微調心を短時
間に、かつ正確に行うことが必要であるが、これは困難
であった。そこで、この発明は、上記した欠点に鑑み、
光ファイバのピッチ間隔の狭い多心テープ光ファイバの
調心を行うことができる光ファイバの調心装置を提供す
ることを目的とするものである。
By the way, in order to reduce the connection loss at the time of fusion of an optical fiber, it is necessary to perform a centering operation for each core. However, the spacing between the fibers to be fused is very narrow, and it is necessary to perform fine alignment on the order of microns in a short time and accurately, but this has been difficult. Therefore, the present invention has been made in view of the above-mentioned drawbacks,
It is an object of the present invention to provide an optical fiber alignment device capable of aligning a multi-core tape optical fiber having a narrow pitch between optical fibers.

【0004】[0004]

【課題を解決するための手段】即ち、この発明は、所定
角度の交差角度を有するように対称的に設けられた一対
の傾斜面上に、光ファイバの外径程度の厚さを有し、端
面が平滑に仕上げられた薄板状の複数の可動片を階段状
に積層配置することにより、一対の鋸歯状に連続する複
数個のV溝を形成し、前記複数個のV溝内に光ファイバ
を一本ずつ配置して、前記光ファイバとこれに対応した
相手側の光ファイバを一対ずつ配置させ、前記可動片に
それぞれ圧電素子を固着し、これらの圧電素子に微小な
伸縮を生じさせることによってそれぞれの光ファイバを
可動片の積層方向と直角方向に微動させ、前記光ファイ
バとこれに対応配置される相手側の光ファイバとを一対
ずつ調心させるように構成したものである。
Means for Solving the Problems] That is, the present invention is given
A pair provided symmetrically so as to have an angle of intersection
On the inclined surface of the optical fiber, the thickness is about the outer diameter of the optical fiber.
Step-like multiple thin plate-shaped movable pieces with smooth surfaces
By arranging them in layers, a pair of sawtooth-shaped continuous
Forming a plurality of V-grooves and an optical fiber in the plurality of V-grooves;
Are arranged one by one, the optical fiber and the corresponding
Arrange the pair of optical fibers on the other side, and
Each optical element is fixed, and these optical elements are slightly expanded and contracted, so that each optical fiber is
Fine movement in the direction perpendicular to the stacking direction of the movable pieces
A pair of fiber and the corresponding optical fiber
Each is obtained by configured to centering.

【0005】[0005]

【作用】この発明の光ファイバの調心装置は、圧電素子
により可動片を微視的に押動させ、この押動力によって
各可動片が微小変位して各可動片の端面に搭載の光ファ
イバの軸ずれを強制的に補正する。
According to the optical fiber centering device of the present invention, the movable piece is microscopically pushed by the piezoelectric element, and each movable piece is minutely displaced by the pushing force, and the optical fiber mounted on the end face of each movable piece. Is forcibly corrected.

【0006】[0006]

【実施例】以下この発明の実施例について添付図面を参
照しながら説明する。図1はこの発明に係る光ファイバ
の調心装置を示すものであり、この調心装置は、基台1
と、可動片2と、圧電素子3とから構成されている。な
お、図中符号4は多心テープファイバを構成する光ファ
イバを示すものであり、この実施例では4心のものが使
用されている。基台1は、90度の交差角度を有するよ
うに対称的に設けられ、45度の傾斜角度を有し可動片
2を配置する一対の傾斜面1aと、これらの傾斜面1a
の下部に連なり形成された可動片2の位置決め用の平面
部1bとから構成されており、中心部分でアーク放電等
を行って光ファイバ4どうしの融着を行う際の影響、つ
まり熱変形や弾性変形等の発生防止を考慮してセラミッ
クス材で形成されている。そして、これらの傾斜面1a
には夫々可動片2が階段状に積層されるようになってお
り(但し図1には一方のみ図示)、これらの可動片2の
各端面等で各光ファイバ4どうしを位置決めするように
構成されている。また平面1bは、夫々傾斜面1aに積
層された可動片2の下端の位置合せを行うようになって
おり、図2に示すように各可動片2の最下端縁部が当接
配置する構成となっている。なお、これらの光ファイバ
4の正確な位置決めを行うため、一対の傾斜面1a及び
平面部1bは高精度の面加工が施されているが、平面部
は特に必要とするものではない。また、現在行なわれて
いる光ファイバの融着に先立って行う調心作業は、融着
しようとする光ファイバの実・虚両像をモニターにて観
察しながらα,βの2方向について行っているので、
α,βの方向について90度直交している場合が調心効
率が最も高い。従ってこの実施例のように両傾斜面を直
交させる都合上、傾斜面1aは斜度45度が最良であ
る。ただし、光ファイバ4のピッチが狭くなれば、傾斜
面を斜度が例えば60度前後に形成し、そのピッチ間隔
に対応させる必要がある。
Embodiments of the present invention will be described below with reference to the accompanying drawings. FIG. 1 shows an optical fiber centering device according to the present invention.
, A movable piece 2 and a piezoelectric element 3. In the drawing, reference numeral 4 denotes an optical fiber constituting a multi-core tape fiber, and in this embodiment, a four-core tape fiber is used. The base 1 is provided symmetrically so as to have a crossing angle of 90 degrees, has a tilt angle of 45 degrees, and has a pair of inclined surfaces 1 a on which the movable piece 2 is arranged, and these inclined surfaces 1 a
And a flat portion 1b for positioning the movable piece 2 formed continuously with the lower portion of the optical fiber 4. The effect of performing an arc discharge or the like at the center portion to fuse the optical fibers 4 together, namely, thermal deformation and It is formed of a ceramic material in consideration of prevention of generation of elastic deformation and the like. And these inclined surfaces 1a
Each of the movable pieces 2 is laminated in a stepwise manner (however, only one of them is shown in FIG. 1), and each optical fiber 4 is positioned at each end face or the like of these movable pieces 2. Have been. The flat surface 1b is adapted to position the lower ends of the movable pieces 2 stacked on the inclined surfaces 1a, and the lowermost edge of each movable piece 2 is abutted and arranged as shown in FIG. It has become. In order to accurately position the optical fiber 4, the pair of inclined surfaces 1a and the flat portion 1b are subjected to high-precision surface processing, but the flat portion is not particularly required. In addition, the centering work performed prior to the fusion of the optical fiber, which is currently performed, is performed in two directions of α and β while observing the real and imaginary images of the optical fiber to be fused on a monitor. Because
The centering efficiency is highest when the directions are orthogonal by 90 degrees in the directions of α and β. Therefore, for the convenience of making both inclined surfaces perpendicular to each other as in this embodiment, the inclined surface 1a has the best inclination of 45 degrees. However, if the pitch of the optical fibers 4 becomes narrower, it is necessary to form the inclined surface at an inclination of, for example, about 60 degrees and correspond to the pitch interval.

【0007】可動片2は、圧電素子3からの押圧力によ
って微小振動を生ずる薄板状のものであり、弾性変形・
熱変形・放電等の影響をできるだけ少なく抑えるためセ
ラミックス材で形成されており、図2に示すように調心
しようとする光ファイバ4の数より1つ多い枚数のもの
が一定量ずつずらした状態で、つまり階段状に積層させ
た構成となっている。即ち、この実施例の可動片2は、
図3に示すように第1〜第5可動片21〜25から構成
されており、これらの第1〜第5可動片には(但し第5
可動片25は図示せず)図4〜図7に示す如く基台1の
傾斜面1aに階段状に搭載される積層部21a〜25a
と、これらの積層部21a〜25aから側方下側に伸び
圧電素子3が固着される取付部21b〜25b(25
a,bは図示せず)とから構成されている。そして、こ
れら各積層部21a〜25aは、夫々各面と端面21c
〜25c(25cは図示せず)とのなす角度とが90度
となるように高精度に面加工されており、これによって
各積層部21a〜25aの面上部とこれに隣合う次位の
可動片の端面とが、図2に示すように90度のV溝を構
成するようになっている。
[0007] The movable piece 2 is a thin plate-like member that generates a minute vibration due to the pressing force from the piezoelectric element 3.
It is made of a ceramic material in order to minimize the influence of thermal deformation, electric discharge, etc., and is shifted one by one by one from the number of optical fibers 4 to be aligned as shown in FIG. In other words, the configuration is such that the layers are stacked stepwise. That is, the movable piece 2 of this embodiment is
As shown in FIG. 3, it is composed of first to fifth movable pieces 21 to 25, and these first to fifth movable pieces (except for
The movable piece 25 is not shown.) As shown in FIGS. 4 to 7, the stacked portions 21a to 25a mounted on the inclined surface 1a of the base 1 in a stepwise manner.
And mounting portions 21b to 25b (25) which extend downward from these stacked portions 21a to 25a and are fixed to the piezoelectric element 3.
a and b are not shown). Each of the laminated portions 21a to 25a has a respective face and an end face 21c.
25c (25c is not shown) is highly accurately surface-processed so that the angle between the upper surface and each of the stacked portions 21a to 25a and the next movable portion adjacent thereto are formed. The end face of the piece forms a 90-degree V-groove as shown in FIG.

【0008】なお、この実施例の可動片にあっては、図
2に示す如く単純な平板形状となっているが、特にこれ
に限定されるものではなく、例えば図8に示すように、
断面略コ字状のもの2′に形成してもよい。即ち、この
ような断面形状とすることにより、互いに他との接触に
伴う摩擦を減じ可動片を独立して効率よく微動させるこ
とができるばかりでなく、ファイバー自動融着時に例え
ばクリーニング用のアルコール等の液体を吹付た場合に
おいて発生する、各可動片間の摺動を妨げる液膜(図
略)の表面張力を減少させるといった機能も発揮させる
ことができるものである。圧電素子3は、各可動片21
〜25の取付部21b〜25bに夫々固着されたスタッ
ク型素子が用いられており、印加する電圧に応じて各々
が独立別個に押動して、図2において、圧電素子の長
手方向に伸縮し、各可動片21〜25が可動片の積層方
向と直角方向(α方向及び対をなしている他方の可動片
においてはβ方向)に微動することにより、所望の光フ
ァイバ4a〜4dの軸ずれを強制的に補正することがで
きるようになっている。従って、この実施例によれば、
各可動片2に夫々独立して設けた圧電素子3の作動によ
り、所望の光ファイバ4のみを正確に微調整することが
できる。
Although the movable piece of this embodiment has a simple flat plate shape as shown in FIG. 2, it is not particularly limited thereto. For example, as shown in FIG.
It may be formed in a substantially U-shaped cross section 2 '. That is, by adopting such a cross-sectional shape, not only can the movable piece be finely moved independently and efficiently by reducing friction caused by contact with each other, but also at the time of automatic fusion of fibers, for example, alcohol for cleaning or the like. The function of reducing the surface tension of a liquid film (not shown), which is generated when the liquid is sprayed and hinders sliding between the movable pieces, can also be exhibited. The piezoelectric element 3 is provided on each movable piece 21.
25 are respectively anchored stacked element is used for the mounting portion 21b~25b of, each independently separately pushed in accordance with the voltage applied, in FIG. 2, stretching in the longitudinal direction of the piezoelectric element 3 And each of the movable pieces 21 to 25 is a movable piece
Direction perpendicular to the direction (α direction and the other movable piece forming a pair)
(In the β direction) , a desired axial deviation of the optical fibers 4a to 4d can be forcibly corrected. Therefore, according to this embodiment,
By operating the piezoelectric element 3 independently provided on each movable piece 2, only the desired optical fiber 4 can be finely adjusted accurately.

【0009】なお、光ファイバの調心を行う場合には、
これに先立って粗調整を行うことが望ましいが、これに
は図9に示す粗動部材10の如き治具を用いる。一方、
上方からは図10に示すように押圧部材14の如き治具
にて押え込んでいる。即ち、この実施例では、各可動片
2″に夫々取付けてある各圧電素子3に対し、その下端
面に粗動部材10が係止していると共に、その上端面に
バネ材11が取付けられて弾性力を付勢するように構成
されている。粗動部材10は、圧電素子3と同一ピッチ
間隔で雌ネジが切られたネジ孔12aを有し基台(図
略)側に固着された支持体12と、この支持体12のネ
ジ孔12aに螺合するネジ13とから構成されている。
そして、この粗動部材10は、下からバネ材11の弾性
力に抗して各ネジ13を押込んでいき、図10に示す如
く押圧部材14の下面14aに各光ファイバ4を係止し
て粗い精度での予調整を行うように構成されている。な
お、押圧部材14の下面14aは高精度の平面加工が施
されている。
When the optical fiber is centered,
Prior to this, it is desirable to perform a coarse adjustment, but a jig such as a coarse moving member 10 shown in FIG. 9 is used for this. on the other hand,
As shown in FIG. 10, it is pressed down from above by a jig such as a pressing member 14. That is, in this embodiment, the coarse moving member 10 is locked to the lower end surface of each piezoelectric element 3 attached to each movable piece 2 ″, and the spring material 11 is attached to the upper end surface. The coarse movement member 10 has a screw hole 12a formed with a female screw at the same pitch as the piezoelectric element 3 and is fixed to a base (not shown) side. And a screw 13 screwed into the screw hole 12a of the support 12.
Then, the coarse moving member 10 pushes each screw 13 from below against the elastic force of the spring material 11, and locks each optical fiber 4 on the lower surface 14 a of the pressing member 14 as shown in FIG. 10. It is configured to perform pre-adjustment with coarse accuracy. The lower surface 14a of the pressing member 14 is subjected to high-precision planar processing.

【0010】[0010]

【発明の効果】以上説明してきたように、この発明に係
る光ファイバの調心装置によれば、多心テープファイバ
の各光ファイバに対し、鋸歯状のV溝に積層させた可動
片を介してそこに固着された圧電素子を独立別個に作動
させることによって、ファイバピッチ間隔が極く狭い光
ファイバ等であっても夫々別個に強制的な微動をおこし
て調心を行うことができるので、多心一括調心の完全自
動化を図ることが可能となる効果がある。
As described above, according to the optical fiber centering apparatus of the present invention, each optical fiber of the multi-core tape fiber is provided with a movable piece laminated in a sawtooth V-groove. By independently operating the piezoelectric elements fixed there, even for optical fibers with extremely narrow fiber pitch intervals, forcible fine movements can be separately performed to perform centering. There is an effect that it is possible to fully automate multi-core batch alignment.

【図面の簡単な説明】[Brief description of the drawings]

【図1】この発明に係る光ファイバの調心装置を示す概
略斜視図である。
FIG. 1 is a schematic perspective view showing an optical fiber centering device according to the present invention.

【図2】この発明に係る光ファイバの調心装置における
可動片の積層状態を示す断面図である。
FIG. 2 is a cross-sectional view showing a stacked state of movable pieces in the optical fiber centering device according to the present invention.

【図3】この発明に係る光ファイバの調心装置における
可動片及び圧電素子の取付け状態を示す概略平面図であ
る。
FIG. 3 is a schematic plan view showing an attached state of a movable piece and a piezoelectric element in the optical fiber centering device according to the present invention.

【図4】この発明に係る光ファイバの調心装置における
第1可動片を示す説明図である。
FIG. 4 is an explanatory view showing a first movable piece in the optical fiber centering device according to the present invention.

【図5】この発明に係る光ファイバの調心装置における
第2可動片を示す説明図である。
FIG. 5 is an explanatory view showing a second movable piece in the optical fiber centering device according to the present invention.

【図6】この発明に係る光ファイバの調心装置における
第3可動片を示す説明図である。
FIG. 6 is an explanatory view showing a third movable piece in the optical fiber centering device according to the present invention.

【図7】この発明に係る光ファイバの調心装置における
第4可動片を示す説明図である。
FIG. 7 is an explanatory view showing a fourth movable piece in the optical fiber centering device according to the present invention.

【図8】この発明に係る光ファイバの調心装置における
可動片の変形例を示す断面図である。
FIG. 8 is a cross-sectional view showing a modification of the movable piece in the optical fiber centering device according to the present invention.

【図9】光ファイバの調心に先立って行う粗調整のため
の治具等を示す概略構成図である。
FIG. 9 is a schematic configuration diagram showing a jig and the like for coarse adjustment performed prior to alignment of an optical fiber.

【図10】図9に示す粗調整の際に用いる押圧部材と可
動片との作用を示す説明図である。
FIG. 10 is an explanatory view showing the action of a pressing member and a movable piece used in the coarse adjustment shown in FIG.

【符号の説明】[Explanation of symbols]

1 基台 1a 傾斜面 2(21,22,23,24,25) 可動片 3 圧電素子 4 光ファイバ Reference Signs List 1 base 1a inclined surface 2 (21, 22, 23, 24, 25) movable piece 3 piezoelectric element 4 optical fiber

───────────────────────────────────────────────────── フロントページの続き (72)発明者 吉澤 信幸 東京都千代田区内幸町1丁目1番6号 日本電信電話株式会社内 (72)発明者 青島 伸一 東京都千代田区内幸町1丁目1番6号 日本電信電話株式会社内 (58)調査した分野(Int.Cl.6,DB名) G02B 6/255 G02B 6/24──────────────────────────────────────────────────続 き Continuing on the front page (72) Nobuyuki Yoshizawa, Inventor 1-1-6 Uchisaiwaicho, Chiyoda-ku, Tokyo Nippon Telegraph and Telephone Corporation (72) Shinichi Aoshima 1-16-1 Uchisaiwaicho, Chiyoda-ku, Tokyo Japan Telegraph and Telephone Co., Ltd. (58) Field surveyed (Int.Cl. 6 , DB name) G02B 6/255 G02B 6/24

Claims (1)

(57)【特許請求の範囲】(57) [Claims] 【請求項1】 所定角度の交差角度を有するように対称
的に設けられた一対の傾斜面(1a)上に、光ファイバ
(4)の外径程度の厚さを有し、端面(21c,22
c,・・・)が平滑に仕上げられた薄板状の複数の可動
片(21,22,・・・)を階段状に積層配置すること
により、一対の鋸歯状に連続する複数個のV溝を形成
し、 前記複数個のV溝内に光ファイバ(4)を一本ずつ配置
して、前記光ファイバ(4)とこれに対応した相手側の
光ファイバ(4)を一対ずつ配置させ、 前記可動片(21,22,・・・)にそれぞれ圧電素子
(3)を固着し、 これらの圧電素子(3)に微小な伸縮を生じさせること
によってそれぞれの光ファイバ(4)を可動片(21,
22,・・・)の積層方向と直角方向に微動させ、前記
光ファイバ(4)とこれに対応配置される相手側の光フ
ァイバ(4)とを一対ずつ調心させるように構成したこ
とを特徴とする光ファイバの調心装置。
1. Symmetry to have a predetermined angle of intersection
Optical fiber on a pair of inclined surfaces (1a) provided
It has a thickness about the outer diameter of (4) and has end faces (21c, 22).
c,...
The pieces (21, 22,...) Are stacked and arranged in a stepwise manner.
Forming a plurality of V-grooves continuous in a pair of sawtooth shapes
The optical fibers (4) are arranged one by one in the plurality of V-grooves.
Then, the optical fiber (4) and the corresponding
A pair of optical fibers (4) are arranged, and a piezoelectric element is provided on each of the movable pieces (21, 22,...).
By fixing the piezoelectric element (3) and causing the piezoelectric element (3) to slightly expand and contract, each of the optical fibers (4) is connected to the movable piece (21,
22,...) In the direction perpendicular to the laminating direction.
Optical fiber (4) and corresponding optical fiber
An optical fiber centering device, wherein the fiber (4) is centered one by one .
JP3280710A 1991-10-01 1991-10-01 Optical fiber alignment device Expired - Fee Related JP2776660B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP3280710A JP2776660B2 (en) 1991-10-01 1991-10-01 Optical fiber alignment device

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP3280710A JP2776660B2 (en) 1991-10-01 1991-10-01 Optical fiber alignment device

Publications (2)

Publication Number Publication Date
JPH0593815A JPH0593815A (en) 1993-04-16
JP2776660B2 true JP2776660B2 (en) 1998-07-16

Family

ID=17628876

Family Applications (1)

Application Number Title Priority Date Filing Date
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Country Link
JP (1) JP2776660B2 (en)

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0627352A (en) * 1992-07-10 1994-02-04 Nippon Telegr & Teleph Corp <Ntt> Multi-optical fiber connector and its manufacturing device
EP0640855B1 (en) * 1993-08-26 1998-03-04 Fujikura Ltd. Apparatus for adjusting alignment of optical fibers
US8756776B1 (en) * 2005-12-09 2014-06-24 Western Digital Technologies, Inc. Method for manufacturing a disk drive microactuator that includes a piezoelectric element and a peripheral encapsulation layer
KR20210049819A (en) 2018-08-29 2021-05-06 스미토모 덴코 옵티프론티어 가부시키가이샤 Optical fiber alignment jig, optical fiber fusion splicer equipped with optical fiber alignment jig, and optical fiber alignment method

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61245112A (en) * 1985-04-22 1986-10-31 Kokusai Denshin Denwa Co Ltd <Kdd> Positioning method for optical fiber fusion splicing device
JPS6243304B2 (en) * 1979-08-31 1987-09-12 Japan Storage Battery Co Ltd
JPS63150603A (en) * 1986-12-16 1988-06-23 Nippon Telegr & Teleph Corp <Ntt> Connecting device for optical fiber core

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS6243304U (en) * 1985-09-05 1987-03-16

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS6243304B2 (en) * 1979-08-31 1987-09-12 Japan Storage Battery Co Ltd
JPS61245112A (en) * 1985-04-22 1986-10-31 Kokusai Denshin Denwa Co Ltd <Kdd> Positioning method for optical fiber fusion splicing device
JPS63150603A (en) * 1986-12-16 1988-06-23 Nippon Telegr & Teleph Corp <Ntt> Connecting device for optical fiber core

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