JP2010199039A - Connection of multi-core extra fine-coaxial cable - Google Patents

Connection of multi-core extra fine-coaxial cable Download PDF

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JP2010199039A
JP2010199039A JP2009045888A JP2009045888A JP2010199039A JP 2010199039 A JP2010199039 A JP 2010199039A JP 2009045888 A JP2009045888 A JP 2009045888A JP 2009045888 A JP2009045888 A JP 2009045888A JP 2010199039 A JP2010199039 A JP 2010199039A
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coaxial cable
shield conductor
conductor
shield
core
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Haruyasu Komano
晴保 駒野
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Hitachi Cable Ltd
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Hitachi Cable Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To provide connections of a multi-core extra-fine coaxial cable that facilitates forming electrically stable connections, without causing defective continuity due to a gap generated between a shield conductor and a grounding bar, or without short circuit caused such that the shield conductor is pressurized and transformed by the grounding bar to break through an internal insulator. <P>SOLUTION: In the connections of the multi-core extra-fine coaxial cable, a plurality of extra-fine coaxial cables 5 having an internal insulator 2, shield conductor 3, and an external insulator 4 sequentially formed on the periphery of a center conductor 1 are arranged in line. Each of the center conductors 1 of the extra-fine coaxial cables 5 is electrically connected to respective conductive patterns 9 formed on a circuit board 8, and each of the shield conductors 3 of the extra-fine coaxial cables 5 is electrically connected to the common grounding bar having alignment grooves for the shield conductors with soldering or a conductive adhesive, further the grounding bar is electrically connected to an earth 12 formed on the circuit board 8. <P>COPYRIGHT: (C)2010,JPO&INPIT

Description

本発明は例えば医療用超音波診断装置のプローブケーブルとして用いられる多芯極細同軸ケーブルの接続部に関するものである。   The present invention relates to a connecting portion of a multi-core ultrafine coaxial cable used as a probe cable of a medical ultrasonic diagnostic apparatus, for example.

一般に、医療用超音波診断装置の本体と探触子を繋ぐプローブケーブルとしては、図3に示されるように、複数本の細線を撚り合わせた中心導体1の周上に内部絶縁体2、シールド導体3、外部絶縁体(ジャケット)4を順次形成した極細同軸ケーブル5の多数本を集合一体化した多芯極細同軸ケーブルが用いられている。   In general, as a probe cable for connecting a main body of a medical ultrasonic diagnostic apparatus and a probe, as shown in FIG. 3, an inner insulator 2 and a shield are provided on the circumference of a central conductor 1 in which a plurality of fine wires are twisted. A multi-core micro coaxial cable is used in which a large number of micro coaxial cables 5 in which a conductor 3 and an external insulator (jacket) 4 are sequentially formed are assembled and integrated.

この多芯極細同軸ケーブルを構成する極細同軸ケーブルについては、医療用超音波診断装置等適用製品の小型化、高性能化に伴い更なる細径化と使用本数の増加が求められており、極細同軸ケーブルの細径化と使用本数の増加に伴い多芯極細同軸ケーブルの接続作業の困難さが増大している。   The ultra-fine coaxial cables that make up this multi-core ultra-fine coaxial cable are required to be further reduced in diameter and used in line with the downsizing and higher performance of medical ultrasonic diagnostic equipment and other products. As the diameter of coaxial cables is reduced and the number of cables used is increased, the difficulty of connecting multicore ultrafine coaxial cables is increasing.

極めて径の細い極細同軸ケーブルの多数本を集合一体化した多芯極細同軸ケーブルを例えば回路基板に接続するにあたっては、端末を段剥ぎして露出させた極細同軸ケーブルの中心導体を回路基板に形成された導体パターン部に電気的に接続すると共にシールド導体を回路基板に形成されたアース部に電気的に接続する接続作業を行う必要がある。   When connecting a multi-core micro-coaxial cable that integrates a large number of ultra-thin micro-coaxial cables to a circuit board, for example, the center conductor of the micro-coaxial cable is formed on the circuit board by stripping the terminals. It is necessary to perform a connection operation for electrically connecting to the conductor pattern portion thus formed and for electrically connecting the shield conductor to the ground portion formed on the circuit board.

このような接続作業には従来から半田付けが多用されており、例えば極細同軸ケーブルの多数本を並列配置した多芯極細同軸ケーブルの接続作業の簡易化を図った特許文献1には、図4に示されるように、外部絶縁体4を剥離して極細同軸ケーブル5のシールド導体3を夫々露出させると共にこれらシールド導体3を2枚の金属箔からなるグランドバー6、7で上下から挟み、両者を一括して半田付けにより接続する方法が記載されている。   Conventionally, soldering has been frequently used for such connection work. For example, Patent Document 1 that simplifies connection work of a multi-core micro-coaxial cable in which a large number of micro-coaxial cables are arranged in parallel is disclosed in FIG. As shown in FIG. 2, the external insulator 4 is peeled off to expose the shield conductors 3 of the micro coaxial cable 5, and the shield conductors 3 are sandwiched from above and below by two ground bars 6 and 7 made of metal foil. A method is described in which these are connected together by soldering.

また、特許文献2には、端末を段剥ぎして露出させた極細同軸ケーブルの中心導体をプリント基板に形成されたストリップラインに半田付けにより接続すると共にシールド導体をプリント基板に形成されたグランドパターンに半田付けにより接続する方法が記載されている。   Patent Document 2 discloses a ground pattern in which a central conductor of an ultrafine coaxial cable exposed by stripping a terminal is connected to a strip line formed on a printed board by soldering and a shield conductor is formed on the printed board. Describes a method of connecting by soldering.

特許第3371797号公報Japanese Patent No. 3371797 特開2003−168499号公報JP 2003-168499 A

しかしながら、上記特許文献1に記載の接続方法によれば、図4に示されるように、各極細同軸ケーブル5のシールド導体3について、これを2枚のグランドバー6、7で上下から挟んで一括接続する方法であるため、各極細同軸ケーブル5のシールド導体3の径のばらつきや上下に配置された2枚のグランドバー6、7の平行間隔のズレにより不具合を生じる問題がある。すなわち、例えば、各シールド導体3の中に径が予定サイズより細いものがあるときあるいは2枚のグランドバー6、7の平行間隔がズレにより広くなったときは、シールド導体3の一部とグランドバー6、7との間に隙間ができ、導通不良が起こりやすくなる。また逆に、各シールド導体3の中に径が予定サイズより太いものがあるときあるいは2枚のグランドバー6、7の平行間隔がズレにより狭くなったときは、シールド導体3の一部がグランドバー6、7により加圧変形されて内部絶縁体2を突き破り、ショートを起こすという問題がある。   However, according to the connection method described in Patent Document 1 above, as shown in FIG. 4, the shield conductor 3 of each micro coaxial cable 5 is collectively sandwiched between the two ground bars 6 and 7 from above and below. Since this is a method of connection, there is a problem that a problem occurs due to a variation in the diameter of the shield conductor 3 of each micro coaxial cable 5 and a shift in the parallel interval between the two ground bars 6 and 7 arranged above and below. That is, for example, when each shield conductor 3 has a diameter smaller than a predetermined size, or when the parallel distance between the two ground bars 6 and 7 becomes wider due to the deviation, a part of the shield conductor 3 and the ground A gap is formed between the bars 6 and 7, and a conduction failure is likely to occur. On the contrary, when each shield conductor 3 has a diameter larger than a predetermined size or when the parallel interval between the two ground bars 6 and 7 is narrowed due to a shift, a part of the shield conductor 3 is grounded. There is a problem that the pressure is deformed by the bars 6 and 7 to break through the internal insulator 2 and cause a short circuit.

これに対し、上記特許文献2の半田付けによる接続方法は、極細同軸ケーブルの多数本を集合一体化した多芯極細同軸ケーブルを対象とするものではなく、各同軸ケーブルのシールド導体をグランドバーを用いて効率的に一括接続するものではないので、このままでは上記問題の解決策とはならない。   On the other hand, the connection method by soldering in the above-mentioned Patent Document 2 is not intended for multi-core micro-coaxial cables in which a large number of micro-coaxial cables are assembled and integrated, and the shield conductor of each coaxial cable is connected to the ground bar. Since it is not used for efficient and collective connection, this is not a solution to the above problem.

したがって、本発明の目的は、シールド導体とグランドバーとの間に隙間ができて導通不良を起こしたり、シールド導体がグランドバーにより加圧変形されて内部絶縁体を突き破りショートを起こす恐れのない、電気的に安定した接続部を容易に形成することができる多芯極細同軸ケーブルの接続部を提供することにある。   Therefore, the object of the present invention is that there is no possibility that a gap is formed between the shield conductor and the ground bar, causing a conduction failure, or the shield conductor is pressure-deformed by the ground bar to break through the internal insulator and cause a short circuit. An object of the present invention is to provide a connection part of a multi-core extra fine coaxial cable that can easily form an electrically stable connection part.

上記目的を達成するために請求項1の発明は、中心導体の周上に内部絶縁体、シールド導体、外部絶縁体を順次形成した極細同軸ケーブルの複数本を並列配置した多芯極細同軸ケーブルの接続部において、前記極細同軸ケーブルの前記中心導体を夫々回路基板に形成された導体パターン部に電気的に接続すると共に前記極細同軸ケーブルの前記シールド導体を夫々シールド導体用配列溝を備えた共通のグランドバーに半田付けもしくは導電性接着剤により電気的に接続し且つ前記グランドバーを前記回路基板に形成されたアース部に電気的に接続してなることを特徴とする多芯極細同軸ケーブルの接続部を提供する。   In order to achieve the above object, the invention of claim 1 is a multi-core micro coaxial cable in which a plurality of micro coaxial cables in which an inner insulator, a shield conductor, and an outer insulator are sequentially formed on the circumference of a central conductor are arranged in parallel. In the connecting portion, the central conductor of the micro coaxial cable is electrically connected to a conductor pattern portion formed on the circuit board, and the shield conductor of the micro coaxial cable is provided with a common shield conductor array groove. A multi-core micro coaxial cable comprising: a ground bar electrically connected by soldering or a conductive adhesive; and the ground bar is electrically connected to an earth portion formed on the circuit board. Provide a connection.

この多芯極細同軸ケーブルの接続部によれば、上記構成の採用により、特に極細同軸ケーブルのシールド導体を夫々シールド導体用配列溝を備えた共通のグランドバーに半田付けもしくは導電性接着剤により電気的に接続することにより、シールド導体を特許文献1のように2枚のグランドバーにより上下から挟んで加圧することなく、シールド導体用配列溝にその位置を定めてグランドバーに確実に接続することができるので、シールド導体の径のばらつきや上下に配置された2枚のグランドバーの平行間隔のズレに起因して、シールド導体とグランドバーとの間に隙間ができて導通不良を起こしたり、シールド導体がグランドバーにより加圧変形されて内部絶縁体を突き破りショートを起こす虞れがなくなり、電気的に安定した接続部を容易に形成することができる。   According to the connection portion of this multi-core micro-coaxial cable, by adopting the above configuration, the shield conductor of the micro-coaxial cable is particularly soldered to a common ground bar having a shield conductor array groove, or electrically connected by a conductive adhesive. By connecting the shield conductors to each other, the position of the shield conductor in the groove for arranging the shield conductors is surely connected to the ground bar without pressing between the two ground bars from above and below as in Patent Document 1. Therefore, due to the variation in the diameter of the shield conductor and the deviation of the parallel spacing between the two ground bars arranged above and below, a gap is formed between the shield conductor and the ground bar, resulting in poor conduction, There is no risk of the shield conductor being pressed and deformed by the ground bar, breaking through the internal insulator and causing a short circuit. It can also be formed to ease.

請求項2の発明は、前記シールド導体用配列溝の断面形状が夫々湾曲形であることを特徴とする請求項1に記載の多芯極細同軸ケーブルの接続部を提供する。   According to a second aspect of the present invention, there is provided the connecting portion of the multi-core extra fine coaxial cable according to the first aspect, wherein each of the shield conductor array grooves has a curved cross section.

この多芯極細同軸ケーブルの接続部によれば、上記効果に加えて、シールド導体用配列溝の断面形状が夫々湾曲形であることにより、通常略断面円形をしたシールド導体の位置決め作業が容易になると共に前記溝から夫々露出したシールド導体への接続用半田もしくは導電性接着剤の供給が容易になり、これにより接続作業が容易になる。この点、特許文献1のようにシールド導体を2枚のグランドバーにより上下から挟む接続構造では、シールド導体への接続用半田もしくは導電性接着剤の供給が容易でないことから、予めグランドバーの内面全体に半田(錫)めっき14を施すなどの工夫が必要である。   According to the connecting portion of the multi-core micro coaxial cable, in addition to the above-described effect, the shield conductor array groove has a curved cross section, so that it is easy to position a shield conductor having a generally circular cross section. In addition, the connection solder or the conductive adhesive can be easily supplied to the shield conductors exposed from the grooves, thereby facilitating the connection work. In this regard, in the connection structure in which the shield conductor is sandwiched from above and below by two ground bars as in Patent Document 1, it is not easy to supply the connection solder or conductive adhesive to the shield conductor. It is necessary to devise such as applying solder (tin) plating 14 to the whole.

請求項3の発明は、前記シールド導体用配列溝の断面形状が夫々凹字形もしくはU字形であることを特徴とする請求項1又は2に記載の多芯極細同軸ケーブルの接続部を提供する。   According to a third aspect of the present invention, there is provided the connecting portion of the multi-core micro-coaxial cable according to the first or second aspect, wherein the cross-sectional shape of the shield conductor array groove is a concave shape or a U shape, respectively.

この多芯極細同軸ケーブルの接続部によれば、シールド導体用配列溝の断面形状が夫々湾曲形の一種である凹字形もしくはU字形であることにより、同上の効果を得ることができる。   According to the connecting portion of the multi-core micro coaxial cable, the cross-sectional shape of the shield conductor array groove is a concave shape or a U shape, which is a kind of curved shape, so that the same effect as described above can be obtained.

本発明の多芯極細同軸ケーブルの接続部によれば、シールド導体とグランドバーとの間に隙間ができて導通不良を起こしたり、シールド導体がグランドバーにより加圧変形されて内部絶縁体を突き破りショートを起こす虞れがなくなり、電気的に安定した接続部を容易に形成することができる。   According to the connecting portion of the multi-core micro-coaxial cable of the present invention, a gap is formed between the shield conductor and the ground bar, resulting in poor conduction, or the shield conductor is pressurized and deformed by the ground bar to break through the internal insulator. There is no possibility of causing a short circuit, and an electrically stable connection portion can be easily formed.

本発明の一実施の形態に係る多芯極細同軸ケーブルの接続部を示す平面図である。It is a top view which shows the connection part of the multi-core extra fine coaxial cable which concerns on one embodiment of this invention. 図1の接続部における各極細同軸ケーブルのシールド導体とグランドバーとの接続状態を示す断面図である。It is sectional drawing which shows the connection state of the shield conductor and ground bar of each micro coaxial cable in the connection part of FIG. 図1及び図2の多芯極細同軸ケーブルを構成する極細同軸ケーブルの断面図である。It is sectional drawing of the micro coaxial cable which comprises the multicore micro coaxial cable of FIG.1 and FIG.2. 従来の接続部における各極細同軸ケーブルのシールド導体とグランドバーとの接続の不具合状態を示す断面図である。It is sectional drawing which shows the malfunctioning state of the connection of the shield conductor and ground bar of each micro coaxial cable in the conventional connection part.

以下、本発明の好適な一実施の形態を添付図面に基づいて詳述する。   A preferred embodiment of the present invention will be described below in detail with reference to the accompanying drawings.

図1は本発明の一実施の形態に係るものであり、図3に示される極細同軸ケーブルの複数本を並列配置した多芯極細同軸ケーブルの接続部を示す平面図、図2は前記接続部における各極細同軸ケーブルのシールド導体とグランドバーとの接続状態を示す断面図、図3は図1及び図2の多芯極細同軸ケーブルを構成する極細同軸ケーブルの断面図である。   FIG. 1 relates to an embodiment of the present invention. FIG. 2 is a plan view showing a connection portion of a multi-core micro coaxial cable in which a plurality of micro coaxial cables shown in FIG. 3 are arranged in parallel. FIG. FIG. 3 is a cross-sectional view showing the connection state between the shield conductor and the ground bar of each of the micro coaxial cables in FIG. 3, and FIG. 3 is a cross-sectional view of the micro coaxial cable constituting the multicore micro coaxial cable of FIGS.

図3の極細同軸ケーブル5は、先に述べたとおり、複数本の細線を撚り合わせた中心導体1の周上に内部絶縁体2、シールド導体3、外部絶縁体(ジャケット)4を順次形成して構成された、耐屈曲性に優れたケーブルである。なお、シールド導体3は、内部絶縁体2の周上に複数本の細線を螺旋巻きして構成される。   In the micro coaxial cable 5 of FIG. 3, as described above, the inner insulator 2, the shield conductor 3, and the outer insulator (jacket) 4 are sequentially formed on the circumference of the central conductor 1 in which a plurality of fine wires are twisted together. The cable is excellent in bending resistance. The shield conductor 3 is configured by spirally winding a plurality of thin wires on the circumference of the internal insulator 2.

図1の多芯極細同軸ケーブルの接続部は、図3の極細同軸ケーブル5の32本を0.3mmの狭ピッチで並列配置してなり、各極細同軸ケーブル5の端末を段剥ぎすることによって露出された中心導体1を夫々回路基板8に形成された導体パターン部9に半田付けにより電気的に接続すると共に、シールド導体3を夫々シールド導体用配列溝10を備えた薄い導電性金属プレートからなる共通のグランドバー11に一括して半田付けにより電気的に接続し、且つ、前記グランドバー11を前記回路基板8に形成されたアース部12に半田付けにより電気的に接続(アース接続)して構成される。因みに、このような接続部もしくは接続アセンブリを形成した多芯極細同軸ケーブルは、医療用超音波診断装置のプローブケーブルとして用いられる。なお、極細同軸ケーブル5の端末の段剥ぎは、必要によりレーザー光を用いるなどの公知の方法により行うことができる。   The connection portion of the multi-core micro coaxial cable of FIG. 1 is formed by arranging 32 micro coaxial cables 5 of FIG. 3 in parallel at a narrow pitch of 0.3 mm, and stripping the ends of each micro coaxial cable 5 The exposed center conductor 1 is electrically connected to the conductor pattern portion 9 formed on the circuit board 8 by soldering, and the shield conductor 3 is made of a thin conductive metal plate having the shield conductor array grooves 10 respectively. The ground bar 11 is electrically connected to the common ground bar 11 by soldering, and the ground bar 11 is electrically connected to the ground portion 12 formed on the circuit board 8 by soldering (ground connection). Configured. Incidentally, the multi-core micro coaxial cable in which such a connection part or connection assembly is formed is used as a probe cable of a medical ultrasonic diagnostic apparatus. Note that the stripping of the end of the micro coaxial cable 5 can be performed by a known method such as using a laser beam if necessary.

この接続部において、平型の多芯極細同軸ケーブルと接続される回路基板8には、各極細同軸ケーブル5の中心導体1に対応して夫々導体パターン部9が0.3mmのピッチで形成されており、また、シールド導体3を夫々一括接続したグランドバー11に対応してアース部12が形成されている。   In this connection portion, on the circuit board 8 connected to the flat multi-core micro coaxial cable, conductor pattern portions 9 are formed at a pitch of 0.3 mm corresponding to the center conductor 1 of each micro coaxial cable 5. In addition, an earth portion 12 is formed corresponding to the ground bar 11 in which the shield conductors 3 are collectively connected.

薄い導電性金属プレートからなるグランドバー11には、図2に示されるように、シールド導体3に対応してプレス加工により断面U字形に成形加工されたシールド導体用配列溝10が0.3mmの狭ピッチで形成されており、シールド導体3とグランドバー11との接続は、断面U字形に成形加工されたシールド導体用配列溝10に夫々シールド導体3を整列配置した後、シールド導体3の露出面側から接続用半田13を供給してシールド導体3を夫々グランドバー11に半田付けすることにより行うことができる。なお、シールド導体用配列溝10の断面形状は、U字形の代わりに同じ湾曲形の凹字形としてもよい。   As shown in FIG. 2, the ground bar 11 made of a thin conductive metal plate has a shield conductor array groove 10 formed into a U-shaped section by press working corresponding to the shield conductor 3 having a 0.3 mm. The shield conductors 3 and the ground bar 11 are formed with a narrow pitch. The shield conductors 3 are exposed after the shield conductors 3 are aligned and arranged in the shield conductor array grooves 10 formed in a U-shaped cross section. This can be done by supplying the connecting solder 13 from the surface side and soldering the shield conductor 3 to the ground bar 11. The cross-sectional shape of the shield conductor array groove 10 may be the same curved concave shape instead of the U shape.

この多芯極細同軸ケーブルの接続部によれば、極細同軸ケーブル5のシールド導体3を夫々シールド導体用配列溝10を備えた共通のグランドバー11の前記配列溝10に夫々整列配置して半田付けにより電気的に接続することにより、シールド導体3を特許文献1のように2枚のグランドバーにより上下から挟んで加圧することなく、シールド導体用配列溝10にその位置を定めてグランドバー11に確実に接続することができるので、シールド導体の径のばらつきや上下に配置された2枚のグランドバーの平行間隔のズレに起因して、シールド導体とグランドバーとの間に隙間ができて導通不良を起こしたり、シールド導体がグランドバーにより加圧変形されて内部絶縁体を突き破りショートを起こす虞れがなくなり、電気的に安定した接続部を容易に形成することができる。   According to the connecting portion of the multi-core extra fine coaxial cable, the shield conductor 3 of the extra fine coaxial cable 5 is aligned and soldered to the arrangement groove 10 of the common ground bar 11 provided with the arrangement groove 10 for the shield conductor. By connecting the shield conductor 3 to the ground bar 11 without positioning and pressing the shield conductor 3 from above and below with two ground bars as in Patent Document 1, Since the connection can be made reliably, there is a gap between the shield conductor and the ground bar due to variations in the diameter of the shield conductor and the parallel gap between the two ground bars arranged above and below. There is no risk of failure or the shield conductor is deformed under pressure by the ground bar, breaking through the internal insulator and causing a short circuit. It is possible to easily form a connection part.

上記実施例では、シールド導体3とグランドバー11との接続を半田付けにより接続しているが、導電性接着剤を用いて接続することももちろん可能である。   In the above embodiment, the shield conductor 3 and the ground bar 11 are connected by soldering, but it is of course possible to connect using a conductive adhesive.

1 中心導体
2 内部絶縁体
3 シールド導体
4 外部絶縁体
5 極細同軸ケーブル
6、7 グランドバー
8 回路基板
9 導体パターン部
10 シールド導体用配列溝
11 グランドバー
12 アース部
13 接続用半田
DESCRIPTION OF SYMBOLS 1 Center conductor 2 Internal insulator 3 Shield conductor 4 External insulator 5 Micro coaxial cable 6, 7 Ground bar 8 Circuit board 9 Conductor pattern part 10 Shield conductor arrangement groove 11 Ground bar 12 Ground part 13 Solder for connection

Claims (3)

中心導体の周上に内部絶縁体、シールド導体、外部絶縁体を順次形成した極細同軸ケーブルの複数本を並列配置した多芯極細同軸ケーブルの接続部において、前記極細同軸ケーブルの前記中心導体を夫々回路基板に形成された導体パターン部に電気的に接続すると共に前記極細同軸ケーブルの前記シールド導体を夫々シールド導体用配列溝を備えた共通のグランドバーに半田付けもしくは導電性接着剤により電気的に接続し且つ前記グランドバーを前記回路基板に形成されたアース部に電気的に接続してなることを特徴とする多芯極細同軸ケーブルの接続部。   In the connection portion of the multi-core micro coaxial cable in which a plurality of micro coaxial cables in which an inner insulator, a shield conductor, and an outer insulator are sequentially formed on the circumference of the center conductor are arranged in parallel, the center conductor of the micro coaxial cable is respectively connected It is electrically connected to a conductor pattern portion formed on the circuit board, and the shield conductor of the micro coaxial cable is electrically soldered to a common ground bar provided with an array groove for shield conductor or electrically conductive adhesive. A connecting portion of a multi-core extra fine coaxial cable, wherein the connecting portion and the ground bar are electrically connected to an earth portion formed on the circuit board. 前記シールド導体用配列溝の断面形状が夫々湾曲形であることを特徴とする請求項1に記載の多芯極細同軸ケーブルの接続部。   The connection part of the multi-core extra fine coaxial cable according to claim 1, wherein each of the shield conductor array grooves has a curved cross-sectional shape. 前記シールド導体用配列溝の断面形状が夫々凹字形もしくはU字形であることを特徴とする請求項1又は2に記載の多芯極細同軸ケーブルの接続部。   The connection part of the multi-core micro coaxial cable according to claim 1 or 2, wherein a cross-sectional shape of the shield conductor array groove is a concave shape or a U shape, respectively.
JP2009045888A 2009-02-27 2009-02-27 Connection of multi-core extra fine-coaxial cable Pending JP2010199039A (en)

Priority Applications (1)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108988074A (en) * 2018-07-02 2018-12-11 上海微小卫星工程中心 One kind, which has, shields successional cable connection
CN116754814A (en) * 2023-08-11 2023-09-15 杭州朗迅科技股份有限公司 High-density probe card, preparation method and test method

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108988074A (en) * 2018-07-02 2018-12-11 上海微小卫星工程中心 One kind, which has, shields successional cable connection
CN108988074B (en) * 2018-07-02 2019-08-30 上海微小卫星工程中心 One kind, which has, shields successional cable connection
CN116754814A (en) * 2023-08-11 2023-09-15 杭州朗迅科技股份有限公司 High-density probe card, preparation method and test method
CN116754814B (en) * 2023-08-11 2023-10-24 杭州朗迅科技股份有限公司 High-density probe card, preparation method and test method

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