JP4579084B2 - Bus duct connection structure and wind power generation system using the bus duct connection structure - Google Patents

Bus duct connection structure and wind power generation system using the bus duct connection structure Download PDF

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JP4579084B2
JP4579084B2 JP2005222273A JP2005222273A JP4579084B2 JP 4579084 B2 JP4579084 B2 JP 4579084B2 JP 2005222273 A JP2005222273 A JP 2005222273A JP 2005222273 A JP2005222273 A JP 2005222273A JP 4579084 B2 JP4579084 B2 JP 4579084B2
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bus duct
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connection structure
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JP2007043766A (en
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幸彦 山田
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Kyodo Ky Tec Corp
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
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Description

本発明は、バスダクト同士を接続するバスダクト接続構造、このバスダクト接続を通電ラインとして用いた風力発電システムに関するものである。   The present invention relates to a bus duct connection structure for connecting bus ducts to each other and a wind power generation system using the bus duct connection as an energization line.

バスダクトは通常、複数接続され長い距離に亘って設置される。したがって、その全体に亘って内部に装填された導体の伸縮に対する対策が必要となる。例えば、特許文献1はこの様な設置されたバスダクトの導体の伸縮を吸収するための構造が開示されている。特許文献1の技術は、導体の伸縮を許容するエキスパンション部を改良し、エキスパンション部と隣接のバスダクトとの接触を回避できるようにしたものである。これによって、並設される別系統のバスダクト間の距離の縮小を達成している。   A plurality of bus ducts are usually connected over a long distance. Therefore, it is necessary to take measures against the expansion and contraction of the conductor loaded in the whole. For example, Patent Document 1 discloses a structure for absorbing expansion and contraction of a conductor of a bus duct installed in this way. The technique of patent document 1 improves the expansion part which accepts expansion / contraction of a conductor, and can avoid a contact with an expansion part and an adjacent bus duct. As a result, the distance between the bus ducts of different systems arranged in parallel is reduced.

実公昭43−11876号公報Japanese Utility Model Publication No. 43-11876

しかしながら、上記バスダクト接続装置のエキスパンション部の構成は、内部の導体を伸縮性導体で接続し、それを伸縮性函体で覆うことで構成している。具体的な組み立て構造は開示されていないが、伸縮性函体とバスダクトとはボルトなどの締結部材にて結合固定されているものと考えられる。また、この伸縮性函体の構成もバスダクトの伸長方向、即ち伸縮方向についてのみその変形を許容できるように構成されているものと考えられる。   However, the configuration of the expansion portion of the bus duct connecting device is configured by connecting the inner conductor with a stretchable conductor and covering it with a stretchable box. Although a specific assembly structure is not disclosed, it is considered that the stretchable box and the bus duct are coupled and fixed by a fastening member such as a bolt. In addition, it is considered that the stretchable box is configured to allow deformation only in the extension direction of the bus duct, that is, in the stretch direction.

したがって、地震等でバスダクト自体にその伸長方向とは直交する方向のベクトル成分を含む揺れが生じた場合には、エキスパンション部はバスダクトに固定された状態にあるため、その揺れを許容することができず、接続部に過大な応力が発生するという問題がある。   Therefore, when a vibration including a vector component in a direction orthogonal to the extension direction occurs in the bus duct itself due to an earthquake or the like, the expansion portion is in a state fixed to the bus duct, so that the swing can be allowed. However, there is a problem that excessive stress is generated in the connecting portion.

例えば、風力発電システムのタワーに設置される電力用配線については、タワーが数十メートルに及ぶ高さを有するため、電線をタワー頂上まで配線する作業は電線の重量も嵩みクレーンなどを用いて引き上げるという煩雑な作業が行われている。したがって、この様な風力発電システムのタワー内の配線をバスダクトを用いて行うことが望まれるが、タワーは地震や強風等で揺れる場合があり、通常のバスダクト幹線では揺れによる曲げの応力が加わった場合に十分な対応ができないという事情がある。   For example, for power wiring installed in a tower of a wind power generation system, the tower has a height of several tens of meters. Therefore, the work of wiring the wires to the top of the tower is heavy and the weight of the wires is heavy. The complicated work of pulling up is performed. Therefore, it is desirable to use the bus duct for wiring in the tower of such a wind power generation system, but the tower may be shaken by an earthquake or strong wind, etc., and bending stress due to shaking was added to the normal bus duct main line There is a situation that it is not possible to respond sufficiently in some cases.

本発明は、上述した種々の事情に鑑みてなされたものであり、その目的は、接続されて伸長するバスダクトの伸長方向に直交する方向のベクトル成分を含む揺れを十分に許容することのできるバスダクト接続構造、及びこのバスダクト接続構造を備えた風力発電システムを提供することにある。   The present invention has been made in view of the above-described various circumstances, and an object of the present invention is to provide a bus duct that can sufficiently tolerate a swing including a vector component in a direction orthogonal to the extending direction of the connected and extending bus duct. It is to provide a connection structure and a wind power generation system including the bus duct connection structure.

上記課題を解決するため、請求項1に係るバスダクト接続構造は、
送電用の導体を内部に収容可能なハウジング構造を有し、相互に接続されて所望長さに設置されるバスダクト接続構造において、バスダクト相互の接続部を収容する接続部ハウジングと、該接続部ハウジング内で同相導体同士を電気的に接続する可撓性導体と、を有し、前記接続部ハウジングは、複数のハウジング部材から構成され、各ハウジング部材の取り付けは、前記可撓性導体の撓みを許容する範囲で遊びを持った状態での取り付け構造とされ、各接続部ハウジングは、前記可撓性導体を覆うカバー部材と、前記可撓性導体の両端部とバスダクトの導体との各接続部分をそれぞれ覆う連結カバー部材と、を有し、前記カバー部材と連結カバー部材との間の結合を前記遊びを持った状態での取り付け構造としたことを特徴とする。請求項2に係るバスダクト接続構造は、送電用の導体を内部に収容可能なハウジング構造を有し、相互に接続されて所望長さに設置されるバスダクト接続構造において、バスダクト相互の接続部を収容する接続部ハウジングと、該接続部ハウジング内で同相導体同士を電気的に接続する可撓性導体と、を有し、前記接続部ハウジングは、複数のハウジング部材から構成され、各ハウジング部材の取り付けは、該各ハウジング部材相互を前記可撓性導体の撓みを許容する範囲で遊びを持った状態で結合した取り付け構造とされ、前記遊びを持った状態で結合した取り付け構造は、前記バスダクトの伸長方向に直交する方向の遊びを含む構造であることを特徴とする。
In order to solve the above problem, a bus duct connection structure according to claim 1 is:
A bus duct connection structure having a housing structure capable of accommodating a power transmission conductor therein and connected to each other to have a desired length, a connection portion housing for accommodating a connection portion between bus ducts, and the connection portion housing A flexible conductor that electrically connects the in-phase conductors, and the connection portion housing is composed of a plurality of housing members, and each housing member is attached by bending the flexible conductors. is the extent permitted a mounting structure in a state in which with play, each connection housing includes a cover member covering the flexible conductors, each connecting portion between the conductor of the end portions and the bus duct the flexible conductor And a connecting cover member that covers each of the cover members, and the connection between the cover member and the connecting cover member is an attachment structure having the play. The bus duct connection structure according to claim 2 has a housing structure in which a power transmission conductor can be accommodated, and is connected to each other to be installed at a desired length. A connecting portion housing, and a flexible conductor that electrically connects the in-phase conductors in the connecting portion housing. The connecting portion housing includes a plurality of housing members, and each housing member is attached to the housing. Is a mounting structure in which the housing members are coupled together with a play in a range that allows the flexible conductor to bend, and the mounting structure coupled with the play is an extension of the bus duct. The structure includes play in a direction orthogonal to the direction.

これにより、接続部の構成をことさら大型化することなく、接続されたバスダクトの伸長方向に直交する方向のベクトル成分を有する揺れを許容することができる。すなわち、可撓性導体の撓み動作を接続部ハウジングの遊び取り付け構造により許容することで、ハウジングの破壊を伴うことなくバスダクト相互の位置ずれを許容することができる。これにより、地震などによる揺れにより接続部に生じる応力を可撓性導体の撓みと接続部ハウジングの部材のあそびで吸収することができるものである。   Accordingly, it is possible to allow a swing having a vector component in a direction orthogonal to the extension direction of the connected bus duct without further increasing the size of the connection portion. That is, by allowing the flexible conductor to bend by the play mounting structure of the connecting portion housing, it is possible to allow the positional displacement between the bus ducts without causing the housing to be destroyed. Thereby, the stress which arises in a connection part by the shake by an earthquake etc. can be absorbed with the bending of a flexible conductor, and the play of the member of a connection part housing.

請求項に係るバスダクト接続構造は、前記遊びを持った状態の結合部は、前記バスダクトの伸長方向における前記可撓性導体が撓む部分の近傍に形成されていることを特徴とする。請求項4に係るバスダクト接続構造は、前記遊びを持った状態の結合部は、前記可撓性導体の両端部側に設けられたことを特徴とする。請求項5に係るバスダクト接続構造は、前記接続部ハウジングは、前記可撓性導体を覆うカバー部材と、前記可撓性導体の端部とバスダクト導体との各接続部分を覆う連結カバー部材と、を有し、前記カバー部材と連結カバー部材との間の結合を遊びを持った状態での取り付け構造としたことを特徴とする。 The bus duct connection structure according to claim 3 is characterized in that the coupling portion having the play is formed in the vicinity of a portion where the flexible conductor bends in the extending direction of the bus duct. The bus duct connection structure according to claim 4 is characterized in that the coupling portion having the play is provided on both end sides of the flexible conductor. In the bus duct connection structure according to claim 5, the connection housing includes a cover member that covers the flexible conductor, a connection cover member that covers each connection portion between the end of the flexible conductor and the bus duct conductor, And the attachment between the cover member and the connecting cover member is a mounting structure with play.

請求項に係るバスダクト接続構造は、
前記カバー部材は、前記可撓性導体の側面部を覆う側板と、上下面部を覆う蓋板と、を含み、前記連結カバー部材は、前記可撓性導体の端部とバスダクトの導体との接続部分の側面部を覆う連結部側板と、上下面部を覆う連結部蓋板と、を含み、前記遊びを持った取り付け構造は、前記カバー部材の側板と前記連結部側板との間、又は、前記カバー部材の蓋板と前記連結部蓋板との間の少なくとも一方に形成されたことを特徴とする。
The bus duct connection structure according to claim 6 is:
The cover member includes a side plate that covers a side surface portion of the flexible conductor and a lid plate that covers an upper and lower surface portion, and the connection cover member connects the end portion of the flexible conductor and the conductor of the bus duct. A connecting portion side plate that covers the side surface portion of the portion, and a connecting portion cover plate that covers the upper and lower surface portions, and the attachment structure having play is between the side plate of the cover member and the connecting portion side plate, or It is formed in at least one between the cover member cover plate and the connecting portion cover plate.

請求項に係るバスダクト接続構造は、
前記遊びを持った取り付け構造は、前記カバー部材又は前記連結カバー部材の何れか一方にバスダクト伸長方向に伸びる長孔を設け、他方にこの長孔に余裕を持って挿通可能な締結部材及び該締結部材の締め付け方向に遊びを持たせるためのスペーサを設けることによって構成されたことを特徴とする。
The bus duct connection structure according to claim 7 is:
The mounting structure with play is provided with a long hole extending in the bus duct extending direction in one of the cover member or the connecting cover member, and the fastening member that can be inserted into the long hole with a margin, and the fastening It is characterized in that it is configured by providing a spacer for providing play in the tightening direction of the member.

請求項に係るバスダクト接続構造は、
前記カバー部材と前記連結カバー部材には、最終設置状態において相互に重なる重なり部分を有し、該重なり部分に、弾性部材を介在させたことを特徴とする。
The bus duct connection structure according to claim 8 is:
The cover member and the connecting cover member have overlapping portions that overlap each other in a final installation state, and an elastic member is interposed in the overlapping portion.

請求項に係る風力発電システムは、
タワーの頂部に風力発電装置を備え、前記風力発電装置にて発電された電力を下方に送電する風力発電システムにおいて、
前記送電のルートを請求項1から8のいずれか1項に記載のバスダクト接続構造にて接続した接続部を有するバスダクト幹線にて構成したことを特徴とする風力発電システム。
A wind power generation system according to claim 9 is:
In the wind power generation system comprising a wind power generator at the top of the tower and transmitting the power generated by the wind power generator downward,
A wind power generation system comprising: a bus duct main line having a connection portion connected to the power transmission route by the bus duct connection structure according to any one of claims 1 to 8 .

本発明によれば、バスダクト接続部の可撓性導体の撓みとそれを許容する接続部ハウジングのあそび構造によって、バスダクトの伸長方向に直交する方向のベクトルを含む揺れによってバスダクトに生じる応力を吸収することができ、上記揺れを許容することができる。これにより、揺れに強いバスダクトの設置を行うことができ、バスダクトの設置の広範化を達成することができる。特に、風力発電システムのタワー内へのバスダクトの的確な設置を可能とすることができる。   According to the present invention, the flexure of the flexible conductor of the bus duct connecting portion and the play structure of the connecting portion housing that allows it absorb the stress generated in the bus duct due to the swing including the vector in the direction perpendicular to the extending direction of the bus duct. And the shaking can be tolerated. Thereby, it is possible to install a bus duct that is resistant to shaking, and to achieve a wide range of installation of the bus duct. In particular, it is possible to accurately install the bus duct in the tower of the wind power generation system.

以下、本発明の実施形態について図面に基づき詳細に説明する。図1は、第1の実施形態を示しており、本発明に係るバスダクトの接続構造を用いて接続したバスダクトを備えた風力発電システムの説明図である。   Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. FIG. 1 shows a first embodiment, and is an explanatory diagram of a wind power generation system including bus ducts connected using a bus duct connection structure according to the present invention.

図示のように、風力発電システム10は、タワー12の頂部に風力発電装置14を備えた構造を有しており、風力発電装置14は風を受けて回転するブレード16を含むロータ系、更に、発電機やそれに付随する電力機器を含む電気系を備えており、それらの主要部がナセル18に収納されている。   As shown in the figure, the wind power generation system 10 has a structure including a wind power generation device 14 at the top of a tower 12, and the wind power generation device 14 includes a rotor system including blades 16 that rotate by receiving wind. An electric system including a generator and power equipment associated therewith is provided, and a main part thereof is housed in the nacelle 18.

タワー12内の下部には、発電された電力について必要な変換を行う電力変換装置20が設置され、上記ナセル18に設置された電気系とこの電力変換装置20との間をバスダクト幹線22によって電気的に接続し送電を行っている。バスダクト幹線22は複数(本実施の形態では13本)のバスダクト24で構成されており、それぞれ接続部26にて接続されている。   In the lower part of the tower 12, a power conversion device 20 that performs necessary conversion of the generated power is installed, and an electric system installed in the nacelle 18 and the power conversion device 20 are electrically connected by a bus duct main line 22. Connected and transmitting power. The bus duct main line 22 is composed of a plurality (13 in this embodiment) of bus ducts 24, and each is connected by a connection portion 26.

バスダクト幹線22は、図示のようにタワー12内に略垂直に配置されており、タワー内壁に略等間隔に設けられた複数のサポート部28にて支持されている。これらサポート部28は、タワー内壁からバスダクト幹線22に向かって略水平に延出してアーム部を設け、このアーム部の端部で各バスダクト24を保持するように構成されている。なお、各バスダクト24は、略同一の長さに形成されており、したがって、バスダクト接続部26は、ほぼ等間隔に配設されている。   The bus duct main line 22 is arranged substantially vertically in the tower 12 as shown in the figure, and is supported by a plurality of support portions 28 provided at substantially equal intervals on the inner wall of the tower. These support portions 28 extend substantially horizontally from the inner wall of the tower toward the bus duct main line 22 to provide arm portions, and are configured to hold the bus ducts 24 at the end portions of the arm portions. In addition, each bus duct 24 is formed in substantially the same length, therefore, the bus duct connection part 26 is arrange | positioned at substantially equal intervals.

バスダクト幹線22の上下両端には、ケーブル接続部30,32が設けられ、上部ケーブル接続部30を介してナセル18に設置された電気系と接続され、下部ケーブル接続部32を介して電力変換装置20に接続されている。   Cable connection portions 30 and 32 are provided at both upper and lower ends of the bus duct main line 22, connected to the electrical system installed in the nacelle 18 via the upper cable connection portion 30, and connected to the power converter via the lower cable connection portion 32. 20 is connected.

本発明の特徴的なことは、この様な構成の風力発電システム10において、数十メートルの高さを有するタワー12が風や地震等で揺れることに対応するための構成を有することであり、本第1実施形態では、複数のバスダクト接続部26の内、所定数の接続部(本第1実施形態では3つ)を揺れを許容するための構造を有する応力吸収接続構造部36として構成したことである。本実施の形態では、バスダクト幹線22の上部位置、すなわち、揺れ幅の大きい領域にバスダクト24の1個置きの3カ所に設けているが、設置数についてはタワー12の高さに応じて種々選択することができ、タワー12が低い場合には複数設置に限らず1カ所の設置でも十分に機能するものである。   The characteristic of the present invention is that the wind power generation system 10 having such a configuration has a configuration for responding to the tower 12 having a height of several tens of meters being swayed by a wind or an earthquake, In the first embodiment, a predetermined number of connection portions (three in the first embodiment) among the plurality of bus duct connection portions 26 are configured as the stress absorbing connection structure portion 36 having a structure for allowing shaking. That is. In the present embodiment, the bus duct 24 is provided at every other three locations of the bus duct 24 in the upper position of the bus duct main line 22, that is, in the region where the swing width is large, but the number of installations is variously selected according to the height of the tower 12. If the tower 12 is low, not only a plurality of installations but also a single installation can function sufficiently.

この応力吸収接続構造部36について、図面に基づいて説明する。図2は第1の実施の形態に係る応力吸収接続構造部36の平面視説明図、図3は同じく正面視説明図、図4は各構成部材を分離して示した分解図である。また、図5は通常のバスダクト相互の接続部構造を参考として示すための説明図である。   The stress absorbing connection structure 36 will be described with reference to the drawings. FIG. 2 is a plan view explanatory view of the stress absorbing connection structure 36 according to the first embodiment, FIG. 3 is a front view explanatory view thereof, and FIG. 4 is an exploded view showing each component member separately. Moreover, FIG. 5 is explanatory drawing for showing the connection structure of a normal bus duct as a reference.

なお、通常のバスダクト24相互の接続の場合、図5に示した様に、1個の接続ユニット40を用い、バスダクト24の同相導体38(例えば、3相3線)の端部同士を例えば突き合わせて締結具42で絶縁手段を介在させて一括締結するように構成されている。   In the case of connection between the normal bus ducts 24, as shown in FIG. 5, one connection unit 40 is used, and the ends of the in-phase conductors 38 (for example, three-phase three-wires) of the bus duct 24 are butted together, for example. The fasteners 42 are configured to be fastened together with an insulating means interposed therebetween.

一方、本発明の特徴的構成である応力吸収接続構造部36は、図2,図3に示したように、両側のバスダクト24の3相3線式の略平板状の導体38の端部間に可撓性導体50をそれぞれ接続する基本構成を有している。この接続のため2つの接続ユニット40−1,40−2が設けられ、それぞれ各相に対応して複数設けられた可撓性を有する可撓性導体50を導体38と電気的に接続している。すなわち、それぞれの可撓性導体50の両端部にバスダクト24から突出した絶縁被覆導体38の端部を接続している。   On the other hand, as shown in FIGS. 2 and 3, the stress-absorbing connection structure portion 36, which is a characteristic configuration of the present invention, is provided between the ends of the three-phase three-wire substantially flat conductor 38 of the bus duct 24 on both sides. And the flexible conductor 50 are connected to each other. For this connection, two connection units 40-1 and 40-2 are provided, and a plurality of flexible conductors 50 having flexibility corresponding to each phase are electrically connected to the conductor 38. Yes. That is, the end portions of the insulation-coated conductors 38 protruding from the bus duct 24 are connected to both end portions of the respective flexible conductors 50.

なお、バスダクト24に装填された3枚の導体38の各々は絶縁被覆され密着した状態で並列に並べられており、上記接続される端部は絶縁被覆を除かれて導体38が露出した状態となっており、各可撓性導体50も絶縁被覆されており、両端部は絶縁被覆が除かれて露出している。また、上記実施の形態では、図3から理解されるように、各相における可撓性導体50は、導体38の幅方向に2つに分けて2段に配置しているが、これに限定されるものではなく、可撓性導体50のサイズや個数はバスダクトに装填される導体38の各相に流れる電流に対応して設定されるものである。   Each of the three conductors 38 loaded in the bus duct 24 is arranged in parallel with insulation coating and in close contact with each other, and the end portions to be connected are removed from the insulation coating and the conductor 38 is exposed. Each of the flexible conductors 50 is also covered with insulation, and both end portions are exposed with the insulation coating removed. Moreover, in the said embodiment, as understood from FIG. 3, the flexible conductor 50 in each phase is divided into two in the width direction of the conductor 38 and arranged in two stages, but this is not limitative. Instead, the size and number of the flexible conductors 50 are set corresponding to the current flowing in each phase of the conductor 38 loaded in the bus duct.

上述の応力吸収接続構造部36は接続部ハウジング52を有しており、この接続部ハウジング52は、可撓性導体50の側面を覆う側板56及び上下面を覆う蓋板58部分を有するカバー部材54と、接続ユニット40において可撓性導体50と導体38の接続部分を覆う連結カバー部材とを備え、この連結カバー部材は、可撓性導体50と導体38との接続部分の両側面を覆う(連結部側板である)ダクト側板継ぎ板60と、可撓性導体50と導体38との接続部分の上下面を覆う(連結部蓋板である)ユニット蓋板62とから構成されている。   The above-described stress absorbing connection structure portion 36 includes a connection portion housing 52, and the connection portion housing 52 includes a side plate 56 that covers the side surface of the flexible conductor 50 and a cover plate 58 that covers the upper and lower surfaces. 54 and a connection cover member that covers the connection portion of the flexible conductor 50 and the conductor 38 in the connection unit 40, and this connection cover member covers both side surfaces of the connection portion of the flexible conductor 50 and the conductor 38. It is composed of a duct side plate joint plate 60 (which is a connecting portion side plate) and a unit cover plate 62 (which is a connecting portion cover plate) which covers the upper and lower surfaces of the connecting portion between the flexible conductor 50 and the conductor 38.

本実施の形態において特徴的なことは、これらの部材を有する接続部ハウジング52の各部材の固定構造が可撓性導体50の撓みを許容するあそびを持った構造となっていることであるが、以下に接続部ハウジング52の各部材の構成について説明する。   What is characteristic in the present embodiment is that the fixing structure of each member of the connecting portion housing 52 having these members has a structure that allows play of the flexible conductor 50. Hereinafter, the configuration of each member of the connection portion housing 52 will be described.

各接続ユニット40−1、40−2の構成要素としてのダクト側板継ぎ板60は、バスダクト24のダクト側板64にボルト66で固定されている(図2参照乞)。なお、各接続ユニット40−1、40−2は、これら両側のダクト側板継ぎ板60間で、導体38の端部及び可撓性導体50の端部を挿入することでそれらを接続することができるように導電性接続部材68と略平板状の絶縁セパレータ70とを挿入空間を形成するように設置している。   The duct side plate joint plate 60 as a component of each connection unit 40-1 and 40-2 is fixed to the duct side plate 64 of the bus duct 24 with bolts 66 (see FIG. 2). In addition, each connection unit 40-1 and 40-2 can connect them by inserting the edge part of the conductor 38 and the edge part of the flexible conductor 50 between the duct side board joint plates 60 of these both sides. The conductive connecting member 68 and the substantially flat insulating separator 70 are installed so as to form an insertion space so that the insertion space can be formed.

なお、この各接続ユニット40−1、40−2の接続部の固定は、可撓性導体50の端部及びバスダクトの導体38の端部を導電性接続部材で挟み込んだ状態で締結具により一括締結して行っている。ここで、締結具は、図3及び図4に示したように、導体幅方向に2段に配列された可撓性導体50のそれぞれに対応して2つ設けられており、図2から理解されるようにボルト72、ナット74及び皿ばね76を備えている。   The connection portions of the connection units 40-1 and 40-2 are fixed together by a fastener in a state where the end portion of the flexible conductor 50 and the end portion of the conductor 38 of the bus duct are sandwiched between conductive connection members. It is concluded. Here, as shown in FIG. 3 and FIG. 4, two fasteners are provided corresponding to each of the flexible conductors 50 arranged in two stages in the conductor width direction. As shown, a bolt 72, a nut 74, and a disc spring 76 are provided.

次に、各接続ユニット40−1、40−2の構成要素としてのユニット蓋板62は、導体38の上下面、すなわち幅方向の両端にその開口を塞ぐために設けられている。このユニット蓋板62のバスダクト24側の取り付けは、図2に示すように、バスダクト24のハウジング80と平面視重なるように形成され、重なり部分で、バスダクトハウジング80にボルト及びナット等の固定具で固定されている。   Next, the unit cover plate 62 as a constituent element of each connection unit 40-1 and 40-2 is provided to close the opening at the upper and lower surfaces of the conductor 38, that is, both ends in the width direction. As shown in FIG. 2, the unit cover plate 62 is attached on the bus duct 24 side so as to overlap the housing 80 of the bus duct 24 in plan view, and is attached to the bus duct housing 80 with a fixture such as a bolt and a nut. It is fixed.

次に、接続部ハウジング52の可撓性導体50の側面を覆う側板56及び上下面を覆う蓋板58部分を有するカバー部材54は、容易に変形しないように剛性を有する構成とされている。このカバー部材54の具体的構成は、一対の側板56と、側板56の上下部に固定される一対の蓋板58であり、側板56は図3に示すように、接続ユニット40のダクト側板継ぎ板60に重なる重なり部分を有するように設置され、蓋板58は図2に示すように、接続ユニット40のユニット蓋板62に重なる重なり部分を有するように設置される。すなわち、カバー部材54は、可撓性導体50と各接続ユニット40−1、40−2の可撓性導体50側端部とを覆うように設置されている。なお、これら側板56及び蓋板58は、板金で形成されている。また、連結カバー部材であるダクト側板継ぎ板60及びユニット蓋板62についても剛性を有する構成とされていることは同様である。   Next, the cover member 54 having the side plate 56 that covers the side surface of the flexible conductor 50 of the connection portion housing 52 and the cover plate 58 that covers the upper and lower surfaces is configured to have rigidity so as not to be easily deformed. A specific configuration of the cover member 54 is a pair of side plates 56 and a pair of lid plates 58 fixed to the upper and lower portions of the side plates 56. The side plates 56 are connected to the duct side plate joint of the connection unit 40 as shown in FIG. As shown in FIG. 2, the cover plate 58 is installed so as to have an overlapping portion that overlaps the unit cover plate 62 of the connection unit 40. That is, the cover member 54 is installed so as to cover the flexible conductor 50 and the ends of the connection units 40-1 and 40-2 on the flexible conductor 50 side. The side plate 56 and the cover plate 58 are made of sheet metal. Further, the duct side plate joint plate 60 and the unit cover plate 62 that are the connecting cover members are also configured to have rigidity.

側板56と蓋板58の取り付けは、図2に示すように、側板56の幅方向端部に蓋板58を固定するための固定部56aを内側に屈曲形成し、図3に示すように、この固定部56aにてボルト84によって行っている。   As shown in FIG. 2, the side plate 56 and the lid plate 58 are attached by bending inwardly a fixing portion 56 a for fixing the lid plate 58 to the end portion in the width direction of the side plate 56, as shown in FIG. 3. The fixing portion 56a is used with a bolt 84.

本実施の形態では、上記カバー部材54の蓋板58と接続ユニット40のユニット蓋板62の重なり部分には、弾性部材86(例えば、ゴム等で形成されたパッキン)が介挿されている。すなわち、圧縮された状態で重なり部分の隙間を埋めるように導体38の厚さ方向のほぼ全体に亘って設けられている。すなわち、蓋板58は、圧縮された状態の弾性部材の厚さ分だけユニット蓋板62から離間させて側板56に固定されている。この弾性部材86は、蓋板58に両面テープや接着剤等で接着されている。この弾性部材86の設置のためボルト84による側板56と蓋板58の締結は、蓋板58を弾性部材86の分だけユニット蓋板62から離間させるスペーサとして、蓋板58と側板56との間にナット88を介在させて行われている。   In the present embodiment, an elastic member 86 (for example, a packing formed of rubber or the like) is inserted in an overlapping portion of the cover plate 58 of the cover member 54 and the unit cover plate 62 of the connection unit 40. In other words, the conductor 38 is provided over almost the entire thickness in the thickness direction so as to fill the gap in the overlapping portion. That is, the cover plate 58 is fixed to the side plate 56 while being separated from the unit cover plate 62 by the thickness of the compressed elastic member. The elastic member 86 is bonded to the lid plate 58 with a double-sided tape or an adhesive. For the installation of the elastic member 86, the side plate 56 and the cover plate 58 are fastened by the bolts 84 as spacers for separating the cover plate 58 from the unit cover plate 62 by the amount of the elastic member 86. And the nut 88 is interposed.

なお、図示は省略するが、更に、接続ユニット40のダクト側板継ぎ板60とカバー部材54の側板56との間にも弾性部材を設けてもよい。   Although not shown, an elastic member may also be provided between the duct side plate joint plate 60 of the connection unit 40 and the side plate 56 of the cover member 54.

次に、カバー部材54の側板56と接続ユニット40のダクト側板継ぎ板60の結合部分、すなわち支持部100の構造について説明する。まず、図4に示されているように、側板56の中央部の両端近傍位置には長孔90が形成されている。一方、ダクト側板継ぎ板60の中央部の端部近傍位置には螺合孔92が形成されており、側板56とダクト側板継ぎ板60の端部相互が設置状態において重なった状態の時にこれらの孔同士が重なるように長孔90と螺合孔92が形成されている。   Next, the joint portion of the side plate 56 of the cover member 54 and the duct side plate joint plate 60 of the connection unit 40, that is, the structure of the support portion 100 will be described. First, as shown in FIG. 4, elongated holes 90 are formed at positions near both ends of the central portion of the side plate 56. On the other hand, a screwing hole 92 is formed in the vicinity of the end of the central portion of the duct side plate joint plate 60, and these end portions of the side plate 56 and the duct side plate joint plate 60 overlap each other in the installed state. A long hole 90 and a screw hole 92 are formed so that the holes overlap each other.

図6は、支持部100、すなわち、長孔90と螺合孔92の部分の結合構造を拡大して示している。図示のように、ダクト側板継ぎ板60に設けられた螺合孔92にはボルト94が螺合されており、このボルト94のボルト軸には外径が螺合孔92より大径のスペーサ96が嵌合され、このスペーサ96を挟んでボルト軸にナット98が螺合されている。カバー部材54の側板56の長孔90は、スペーサ96が余裕をもって挿通される様に形成されている。この長孔90は、バスダクトの伸長方向に長く開口するように形成されている。すなわち、接続部ハウジング52の構成要素であるカバー部材54は、この長孔90を介して同じく接続部ハウジング52の構成要素であり、接続ユニット40の側面を覆うダクト側板継ぎ板60に連結結合されている。   FIG. 6 shows an enlarged view of the coupling structure of the support portion 100, that is, the portion of the long hole 90 and the screw hole 92. As shown in the drawing, a bolt 94 is screwed into a screw hole 92 provided in the duct side plate joint plate 60, and a spacer 96 having an outer diameter larger than that of the screw hole 92 on the bolt shaft of the bolt 94. And a nut 98 is screwed onto the bolt shaft with the spacer 96 interposed therebetween. The long hole 90 of the side plate 56 of the cover member 54 is formed so that the spacer 96 is inserted with a margin. The long hole 90 is formed to open long in the extending direction of the bus duct. That is, the cover member 54, which is a component of the connection portion housing 52, is also a component of the connection portion housing 52 through the elongated hole 90, and is coupled and coupled to the duct side plate joint plate 60 that covers the side surface of the connection unit 40. ing.

従って、側板56は、ダクト側板継ぎ板60に連結された状態で、スペーサ96の長さの範囲内で導体厚さ方向に移動することができ、且つ側板56に設けた長孔90の開口範囲において導体厚さ方向に傾動・移動することができる。この側板56の移動範囲は、可撓性導体50の種々の要因による撓みを許容することのできる範囲で確保されるものであり、これにより、ハウジングの破壊を伴うことなく、バスダクト24の揺れをこの応力吸収接続構造部36にて吸収することができるものである。   Therefore, the side plate 56 can move in the conductor thickness direction within the range of the length of the spacer 96 while being connected to the duct side plate joint plate 60, and the opening range of the long hole 90 provided in the side plate 56. Can be tilted and moved in the conductor thickness direction. The movement range of the side plate 56 is ensured within a range in which the flexure due to various factors of the flexible conductor 50 can be allowed, and thereby the bus duct 24 can be shaken without breaking the housing. The stress absorbing connection structure 36 can absorb the stress.

なお、本第1の実施の形態では、支持部100は、接地線102の端子を接続する端子台を兼ねており、接続ユニット40のダクト側板継ぎ板60同士を接地線102で電気的に接続している。具体的には、接地線102の端子を、ナット98(ワッシャ)とスペーサ96との間に挟み込んで、支持部100を介してダクト側板継ぎ板60に電気的に接続しているものである。   In the first embodiment, the support unit 100 also serves as a terminal block for connecting the terminal of the ground wire 102, and the duct side plate joint plates 60 of the connection unit 40 are electrically connected by the ground wire 102. is doing. Specifically, the terminal of the ground wire 102 is sandwiched between a nut 98 (washer) and a spacer 96 and is electrically connected to the duct side plate joint plate 60 via the support portion 100.

つまり、本実施の形態では、バスダクト幹線22のアースラインとしてバスダクト24のハウジング80を用いており、ハウジング80のダクト側体64同士がダクト側板継ぎ板60、支持部100のボルト94及びナット98(ワッシャ)を介して接地線102で電気的に接続されている。   That is, in this embodiment, the housing 80 of the bus duct 24 is used as the ground line of the bus duct trunk line 22, and the duct side bodies 64 of the housing 80 are connected to the duct side plate joint plate 60, the bolt 94 and the nut 98 ( The ground wire 102 is electrically connected via a washer.

このように、カバー部材と連結カバー部材とを遊びを持った状態で取り付けても、ダクト側板継ぎ板60に固定される支持部100同士を接地線102で接続するだけで容易にアースラインを形成することができる。   Thus, even if the cover member and the connecting cover member are attached with play, an earth line can be easily formed by simply connecting the support portions 100 fixed to the duct side plate joint plate 60 with the ground wire 102. can do.

上記実施の形態における、応力吸収接続構造部36の構成サイズについては、まず、図3から理解されるように、ダクト側板継ぎ板60が導体幅方向におけるバスダクトハウジング80の幅とほぼ同一の幅に形成されている。従って、接続ユニット40による接続がなされた場合、接続ユニット40の部分が、バスダクト24のハウジング80と幅方向においてほぼ面一の状態を構成し、接続ユニット40の部分が導体幅方向に張り出すことがない。また、ダクト側板継ぎ板60には、そのほぼ中央の領域をダクト内側に屈曲させた凹部ダクト側板継ぎ板60aとし、その部分で上記締結部材による締結を行っている。したがって、接続ユニット40の部分の厚さ方向のサイズも大型化することが回避されている。   Regarding the configuration size of the stress absorbing connection structure portion 36 in the above embodiment, first, as understood from FIG. 3, the duct side plate joint plate 60 has a width substantially the same as the width of the bus duct housing 80 in the conductor width direction. Is formed. Therefore, when the connection unit 40 is connected, the connection unit 40 portion is substantially flush with the housing 80 of the bus duct 24 in the width direction, and the connection unit 40 portion projects in the conductor width direction. There is no. The duct side plate joint plate 60 is formed as a recessed duct side plate joint plate 60a having a substantially central region bent toward the inside of the duct, and the portion is fastened by the fastening member. Therefore, an increase in the size of the connection unit 40 in the thickness direction is avoided.

一方、上記側板56の中央部領域には、図2に示すように、可撓性導体50の撓み動作の際にこれを妨げないように僅かに外方に突出する凸部領域56bが形成されているが、この凸部領域56bの外側面は、バスダクトのハウジング80の面に略面一となるように形成されている。これにより、カバー部材54の部分は平面視において、他のバスダクトハウジング80の外側面よりもことさら大きく突出することはない。したがって、本実施の形態では、側面視においても平面視においても応力吸収接続構造部36がバスダクトハウジング80の外側面よりことさら外方に突出することがない。これにより、バスダクト幹線を複数条並列に配設するとき、たとえ応力吸収接続構造部を設けた場合でもバスダクト幹線同士が応力吸収接続構造部で干渉することを防止することができる。   On the other hand, as shown in FIG. 2, a convex region 56b that protrudes slightly outward is formed in the central region of the side plate 56 so as not to interfere with the bending operation of the flexible conductor 50. However, the outer surface of the convex region 56b is formed to be substantially flush with the surface of the housing 80 of the bus duct. Thus, the cover member 54 does not protrude much larger than the outer surface of the other bus duct housing 80 in plan view. Therefore, in the present embodiment, the stress absorbing connection structure portion 36 does not protrude further outward from the outer surface of the bus duct housing 80 in both side view and plan view. Thereby, when arranging a plurality of bus duct trunk lines in parallel, even if a stress absorbing connection structure is provided, the bus duct trunks can be prevented from interfering with each other at the stress absorbing connection structure.

次に、上記実施の形態に係るバスダクト接続構造を用いたバスダクト同士の接続のための構成及び接続工程について、図4及び図7を参照しつつ説明する。図4に示されているように接続ユニット40のダクト側板継ぎ板60及びカバー部材54の側板56には、接続工程における仮止め作業において必要となるねじ止め或いはボルト止め用の螺合孔が穿設されている。   Next, a configuration and a connection process for connecting bus ducts using the bus duct connection structure according to the above embodiment will be described with reference to FIGS. 4 and 7. As shown in FIG. 4, the duct side plate joint plate 60 of the connection unit 40 and the side plate 56 of the cover member 54 have screwing holes for screwing or bolting that are necessary in the temporary fixing operation in the connection process. It is installed.

ダクト側板継ぎ板60には、側板56と重なり合う部分の上下2カ所に螺合孔104が設けられている。一方、側板56にはダクト側板継ぎ板60と重なり合う部分で且つ設置状態において螺合孔104と対向する位置にねじ孔106が設けられている。これら螺合孔104及びねじ孔106に仮止め用のねじ107が挿通され、カバー部材54が接続ユニット40に仮止めされる。仮止め用のねじ107は、工具がなくても取り付け及び取り外しが可能となる部材(例えば、蝶ねじ等)が好適である。ここで、ダクト側板継ぎ板の螺合孔104及びねじ孔106は、仮固定した際に、バスダクト24同士がほぼ直線上に揃う様に位置決めされて形成される。そして、この仮止めした状態では、カバー部材54は接続ユニット40に固定された状態となり、可撓性導体50の撓み動作は規制されている状態が保たれる。なお、螺合孔104及びねじ孔106の数は、本実施の形態では2個ずつとしたが仮止めの機能を奏するためには最低1個形成すれば足りる。   The duct side plate joint plate 60 is provided with screw holes 104 at two places above and below the portion overlapping the side plate 56. On the other hand, the side plate 56 is provided with a screw hole 106 at a position overlapping the duct side plate joint plate 60 and at a position facing the screwing hole 104 in the installed state. A screw 107 for temporary fixing is inserted into the screw hole 104 and the screw hole 106, and the cover member 54 is temporarily fixed to the connection unit 40. The temporary fixing screw 107 is preferably a member that can be attached and removed without a tool (for example, a thumbscrew). Here, the screw hole 104 and the screw hole 106 of the duct side plate joint plate are formed so as to be positioned so that the bus ducts 24 are substantially aligned on a straight line when temporarily fixed. In this temporarily fixed state, the cover member 54 is fixed to the connection unit 40, and the bending operation of the flexible conductor 50 is maintained. Although the number of the screw holes 104 and the screw holes 106 is two in this embodiment, it is sufficient to form at least one to achieve the function of temporary fixing.

次に、接続工程としては、まず、図7(a)に示すように、可撓性導体50の両端部にユニット蓋板62を取り付けていない状態の接続ユニット40を配設し、カバー部材54の側板56と接続ユニット40のダクト側板継ぎ板60を蝶ねじ等の仮止め用のねじ107で仮止めした状態とする。次いで、各接続ユニット40−1、40−2の締結具のボルト72及びナット74を緩めておき、両側の接続すべきバスダクト24を所定寸法離して対向配置する。つまり、応力吸収接続構造部36が、全体としてユニット化された状態となっている。   Next, as a connection process, first, as shown in FIG. 7A, the connection unit 40 in a state in which the unit cover plate 62 is not attached is disposed at both ends of the flexible conductor 50, and the cover member 54 is provided. The side plate 56 and the duct side plate joint plate 60 of the connection unit 40 are temporarily fixed with a temporary fixing screw 107 such as a thumbscrew. Next, the bolts 72 and nuts 74 of the fasteners of the connection units 40-1 and 40-2 are loosened, and the bus ducts 24 to be connected on both sides are arranged to face each other with a predetermined distance. That is, the stress absorbing connection structure 36 is in a unitized state as a whole.

そして、図7(b)に示すように、各バスダクト24の端部から突出する導体38の端部を、接続ユニット40の絶縁セパレータ70間の導電性接続部材68間に挿入し、ダクト側板64を最外側の絶縁セパレータ70とダクト側板継ぎ板60との間の間隙に挿入する。このとき、各接続ユニット40−1、40−2には、接続すべきバスダクト24のダクト側板64の端縁を、ダクト側板継ぎ板60に形成された凹部ダクト側板継ぎ板60aの段差側部に当接するまで挿入し、ダクト側板継ぎ板60及びダクト側板64に形成されたボルト締め或いはねじ止めのための孔を用いてボルトやねじ等で固定する。   Then, as shown in FIG. 7B, the end portions of the conductors 38 protruding from the end portions of the respective bus ducts 24 are inserted between the conductive connection members 68 between the insulating separators 70 of the connection unit 40, and the duct side plate 64. Is inserted into the gap between the outermost insulating separator 70 and the duct side plate joint plate 60. At this time, in each of the connection units 40-1 and 40-2, the edge of the duct side plate 64 of the bus duct 24 to be connected is placed on the step side portion of the recessed duct side plate joint plate 60 a formed on the duct side plate joint plate 60. It inserts until it contact | abuts, and it fixes with a volt | bolt, a screw, etc. using the hole for the bolt fastening or screwing formed in the duct side board joint plate 60 and the duct side board 64.

次に、各バスダクト24に接続ユニット40のユニット蓋板62をボルト108で固定した後、カバー部材54の蓋板58を側板56にボルト84にて固定する。次に、各接続ユニット40の締結具のボルト72を締め付ける。この状態では、カバー部材54は接続ユニット40に蝶ねじ等の仮止め用のねじ107で固定され、可撓性導体50の撓み動作は規制されている。すなわち、この状態では上記バスダクト接続部に形成された応力吸収接続構造部36の両側のバスダクト24は、バスダクトの軸方向に直交する直交方向への移動が規制されている。従って、バスダクト幹線の布設作業においては、応力吸収接続構造部でのバスダクト24のバスダクトの軸方向に直交する直交方向へのズレを防止することができ、施工作業の容易化が図られる。   Next, after fixing the unit cover plate 62 of the connection unit 40 to each bus duct 24 with the bolt 108, the cover plate 58 of the cover member 54 is fixed to the side plate 56 with the bolt 84. Next, the bolt 72 of the fastener of each connection unit 40 is tightened. In this state, the cover member 54 is fixed to the connection unit 40 with a temporary fixing screw 107 such as a thumbscrew, and the bending operation of the flexible conductor 50 is restricted. That is, in this state, the bus duct 24 on both sides of the stress absorbing connection structure portion 36 formed in the bus duct connection portion is restricted from moving in the orthogonal direction orthogonal to the axial direction of the bus duct. Therefore, in the laying operation of the bus duct main line, the displacement of the bus duct 24 in the stress absorbing connection structure portion in the orthogonal direction orthogonal to the axial direction of the bus duct can be prevented, and the construction operation can be facilitated.

バスダクト幹線の布設完了後、図7(c)に示すように、蝶ねじ等の仮止め用のねじ107を取外す。これにより、応力吸収接続構造部は開放され、その機能を発揮しうる状態となる。すなわち、側板56とダクト側板継ぎ板60の連結構造によるカバー部材54と接続ユニット40との遊びを持った結合構造により、可撓性導体50の撓み動作を許容することができるようになる。これにより、バスダクト24の揺れによるバスダクト伸長方向と直交する方向のベクトル成分を含むバスダクト相互のズレをこの応力吸収接続構造部36にて吸収することが可能となる。   After the installation of the bus duct main line is completed, as shown in FIG. 7C, the temporary fixing screw 107 such as a thumbscrew is removed. As a result, the stress-absorbing connection structure portion is opened, and the function can be exhibited. That is, the flexible conductor 50 can be allowed to bend by the coupling structure having play between the cover member 54 and the connection unit 40 by the coupling structure of the side plate 56 and the duct side plate joint plate 60. As a result, it is possible for the stress absorbing connection structure 36 to absorb a shift between bus ducts including a vector component in a direction orthogonal to the bus duct extension direction due to the shaking of the bus duct 24.

図8は、上記実施の形態に係るバスダクト接続構造について、導体厚さ方向に位置ずれした状態を示している。カバー部材54の側板56は、接続ユニット40のダクト側板継ぎ板60に連結された状態で、上述のスペーサ96の長さ及び長孔90の範囲内で移動しながら導体38の厚さ方向に傾動できるので、応力吸収接続構造部36の両側に配置されるバスダクト24が相対的にバスダクト伸長方向に直交する方向に位置ずれした場合(図上X1及び/又はX2方向にずれた場合)、例えば、風力発電システムのタワーが揺れたような場合でもこれを許容することができる。   FIG. 8 shows a state where the bus duct connection structure according to the above embodiment is displaced in the conductor thickness direction. The side plate 56 of the cover member 54 is tilted in the thickness direction of the conductor 38 while moving within the range of the length of the spacer 96 and the long hole 90 described above while being connected to the duct side plate joint plate 60 of the connection unit 40. Since the bus ducts 24 arranged on both sides of the stress absorbing connection structure portion 36 are displaced relative to each other in the direction perpendicular to the bus duct extension direction (when displaced in the X1 and / or X2 direction in the figure), for example, This can be tolerated even when the tower of the wind power generation system is shaken.

すなわち、可撓性導体50の撓み動作とこれを許容する接続部ハウジング52の遊びを持った結合構造による各構成部材のズレ動作によって、ハウジングの破壊を生じることなく上記相対的位置ずれを吸収することができる。特に、側板56は、バスダクト伸長方向に長い長孔90を有しているので、揺れのない状態でのバスダクト24の位置ずれを防止しつつ上記機能を奏することができ、また、この長孔90の長さ分だけバスダクト24の伸長方向の導体38の伸縮を吸収するという機能も有している。   That is, the relative displacement is absorbed without causing the housing to be destroyed by the bending operation of the flexible conductor 50 and the displacement operation of each component member by the coupling structure having the play of the connecting portion housing 52 allowing the bending. be able to. In particular, since the side plate 56 has a long hole 90 that is long in the bus duct extending direction, the above function can be achieved while preventing the displacement of the bus duct 24 in a state without shaking. It also has a function of absorbing the expansion and contraction of the conductor 38 in the extending direction of the bus duct 24 by the length of.

次に、図9は、2つのバスダクト24が相対的に導体38の幅方向に位置ずれした状態を示している。同図において、カバー部材54の側板56と、接続ユニット40のダクト側板継ぎ板60とは、唯一の連結部である支持部100を支点として、すなわち、長孔90内でのスペーサ96の移動により、側板56のダクト側板継ぎ板60に対する相対的回動を許容することができる。これにより、両側のバスダクト24のY1方向及び/又はY2方向の位置ずれをハウジングの破壊を伴うことなく許容することができる。また、上述のバスダクト24相互の位置ずれが生じたような場合でも、接続部ハウジング52の構成部材は互いに重なり部を有していることから、可撓性導体50が外部に露出されることはない。   Next, FIG. 9 shows a state where the two bus ducts 24 are relatively displaced in the width direction of the conductor 38. In the figure, the side plate 56 of the cover member 54 and the duct side plate joint plate 60 of the connection unit 40 are supported by the support portion 100 which is the only connecting portion, that is, by the movement of the spacer 96 in the long hole 90. The relative rotation of the side plate 56 with respect to the duct side plate joint plate 60 can be allowed. Thereby, the position shift of the bus duct 24 on both sides in the Y1 direction and / or the Y2 direction can be allowed without breaking the housing. Further, even when the above-described misalignment between the bus ducts 24 occurs, the constituent members of the connection portion housing 52 have overlapping portions, so that the flexible conductor 50 is not exposed to the outside. Absent.

ここで、カバー部材54の蓋板58の両端部には弾性部材86が圧縮された状態で配置されているので、蓋板58がユニット蓋体62に衝突することを防止することができる。更に、一方の弾性部材86が、さらに圧縮されて板に密着した状態でも他方の弾性部材86は、圧縮状態から開放されて拡張するので、隙間が開くことも有効に防止され、粉塵等の侵入を未然に防止することができる。   Here, since the elastic member 86 is disposed in a compressed state at both ends of the cover plate 58 of the cover member 54, the cover plate 58 can be prevented from colliding with the unit cover body 62. Further, even when one elastic member 86 is further compressed and is in close contact with the plate, the other elastic member 86 is released from the compressed state and expands. Can be prevented in advance.

以上説明したように、上記第1の実施の形態によれば、複雑な構成を伴わない接続部ハウジングの各部材結合構造により、可撓性導体50の撓み動作を有効に許容することができ、且つ大型化を引き起こすことなく、可撓性導体50によるバスダクト幹線の揺れ動作の吸収を効果的に達成することができる。   As described above, according to the first embodiment, the bending operation of the flexible conductor 50 can be effectively allowed by each member coupling structure of the connection portion housing without a complicated configuration. In addition, absorption of the shaking operation of the bus duct main line by the flexible conductor 50 can be effectively achieved without causing an increase in size.

次に、図10に基づいて第2の実施の形態について説明する。本実施の形態において、上記第1の実施の形態と異なる構成は、可撓性導体とバスダクト導体との接続を付き合わせ形式ではなく重ね合わせ形式にした構造に対応した接続構造としたことである。同図は、第2の実施の形態に基づきバスダクト24相互を接続している接続状態を示す平面視で示しており、同じく図11は、その正面視構造を示している。なお、図において、上述の実施に形態と同様の要素には同一の符号を示し、その説明を省略する。   Next, a second embodiment will be described based on FIG. In the present embodiment, the configuration different from that of the first embodiment is that the connection structure corresponding to the structure in which the connection between the flexible conductor and the bus duct conductor is not the mating type but the overlapping type. . FIG. 11 is a plan view showing a connection state in which the bus ducts 24 are connected to each other based on the second embodiment, and FIG. 11 also shows a front view structure thereof. In the figure, elements similar to those in the above-described embodiment are denoted by the same reference numerals, and description thereof is omitted.

同図に示したように、バスダクトの導体38と可撓性導体50との接続は、第1の実施の形態における付き合わせ式とは異なりいわゆる重ね合わせ式で行っている。すなわち、導体38と可撓性導体50の端部を絶縁セパレータで挟み込んでおり、これらをダクト側板で挟んで、締結具で一括締結しているものである。この構成の場合、比較的バスダクト厚さ方向のサイズが大きくなることから上記第1の実施の形態で側板56に形成した凸部領域56bは形成されていない。他の遊びを持った各部の結合構造については、上記実施の形態と同様の構成を有しており、その機能も同様である。なお、図上、仮止めのための構成要素を取り付けた状態が示されている。   As shown in the figure, the connection between the conductor 38 of the bus duct and the flexible conductor 50 is performed by a so-called superposition method, which is different from the associating method in the first embodiment. That is, the end portions of the conductor 38 and the flexible conductor 50 are sandwiched between insulating separators, which are sandwiched between duct side plates and collectively fastened with a fastener. In the case of this configuration, since the size in the bus duct thickness direction is relatively large, the convex region 56b formed on the side plate 56 in the first embodiment is not formed. About the connection structure of each part with other play, it has the structure similar to the said embodiment, The function is also the same. In addition, the state which attached the component for temporary fix | stop is shown on the figure.

図12及び図13は、第3の実施の形態を示しており、図12はバスダクト接続構造を平面視で示しており、図13は、同じくバスダクト接続構造を正面視で示している。なお、図において、上述の実施に形態と同様の要素には同一の符号を示し、その説明を省略する。また、図12において、絶縁被覆導体、可撓導体、絶縁セパレータ、導電性接続部材等は、図面簡略化のため図示を省略している。   12 and 13 show a third embodiment, FIG. 12 shows the bus duct connection structure in a plan view, and FIG. 13 also shows the bus duct connection structure in a front view. In the figure, elements similar to those in the above-described embodiment are denoted by the same reference numerals, and description thereof is omitted. Further, in FIG. 12, the illustration of the insulating coated conductor, the flexible conductor, the insulating separator, the conductive connecting member, etc. is omitted for the sake of simplification of the drawing.

上記第1の実施形態では、支持部100を接続ユニット40のダクト側板継ぎ板60に設ける場合について説明したが、本第3の実施形態では、支持部100を接続ユニット40のユニット蓋板62とカバー部材54の蓋板58に設けたものである。弾性部材110は、接続ユニット40のダクト側板継ぎ板60と、カバー部材54の側板56との間に設けている。なお、蓋板58に設けられる長孔90やスペーサ96等の構成は、上記実施の形態と同様である。この様な構成の第3の実施の形態においても、上記第1実施形態と同様にバスダクト24の幅方向、厚さ方向の何れの方向へのバスダクトの揺れも許容することが可能である。なお、本第3の実施の形態においても、弾性部材を更に接続ユニットのユニット蓋板62とカバー部材の蓋板58との間に設けてもよい。   In the first embodiment, the case where the support portion 100 is provided on the duct side plate joint plate 60 of the connection unit 40 has been described. However, in the third embodiment, the support portion 100 is connected to the unit cover plate 62 of the connection unit 40. This is provided on the cover plate 58 of the cover member 54. The elastic member 110 is provided between the duct side plate joint plate 60 of the connection unit 40 and the side plate 56 of the cover member 54. The configuration of the long holes 90, the spacers 96, and the like provided in the lid plate 58 are the same as in the above embodiment. Also in the third embodiment having such a configuration, the bus duct can be allowed to swing in either the width direction or the thickness direction of the bus duct 24 as in the first embodiment. Also in the third embodiment, an elastic member may be further provided between the unit cover plate 62 of the connection unit and the cover plate 58 of the cover member.

図14は、第4の実施の形態として、本発明に係るバスダクト接続構造を風力発電システムに応用したものを示している。なお、図1に示した要素と同様の要素には同一の符号を示している。図1に示した風力発電システムについての実施の形態では、本発明に係るバスダクト接続構造である応力吸収接続構造部36を略等間隔に設ける場合について説明したが、本第4の実施の形態では、その応力吸収接続構造部36の設置間隔を異ならせている。   FIG. 14 shows a fourth embodiment in which the bus duct connection structure according to the present invention is applied to a wind power generation system. In addition, the same code | symbol is shown to the element similar to the element shown in FIG. In the embodiment of the wind power generation system shown in FIG. 1, the case where the stress absorbing connection structure portions 36 that are bus duct connection structures according to the present invention are provided at substantially equal intervals has been described, but in the fourth embodiment, The installation interval of the stress absorbing connection structure 36 is varied.

風力発電システムのタワー12は、上方に向かう程、揺れる量が大きい。従って、本実施の形態では、図示のように、タワー12の上方領域で、且つ下方から上方に向かう程、間隔D1、D2、D3がD1>D2>D3となるように配設されている。すなわち、タワー12上方に向かう程、応力吸収接続構造部36の設置間隔を狭くしている。これにより、揺れる量の大きい上方の部分においてより大きな揺れ動作吸収機能を発揮させようとするものである。この構成により、より効果的にバスダクト幹線の揺れからの保護が達成される。   The amount of shaking of the tower 12 of the wind power generation system increases as it goes upward. Therefore, in the present embodiment, as shown in the drawing, the distances D1, D2, and D3 are arranged such that D1> D2> D3 in the upper region of the tower 12 and from the lower side toward the upper side. That is, the installation interval of the stress absorbing connection structure portion 36 is narrowed toward the top of the tower 12. Accordingly, a larger shaking motion absorbing function is intended to be exhibited in the upper portion where the shaking amount is large. With this configuration, protection from shaking of the bus duct main line is more effectively achieved.

図15は、第5の実施の形態を示している。上記第4の実施の形態では、タワー12の上方に向かう程、本発明に係るバスダクト接続構造の設置間隔を狭くする場合について説明したが、本実施の形態では、応力吸収接続構造部の構成要素である可撓性導体の長さをタワー12の上方に向かう程、長くしてその撓み範囲を広く設定したものである。   FIG. 15 shows a fifth embodiment. In the fourth embodiment, the case has been described in which the installation interval of the bus duct connection structure according to the present invention is narrowed toward the upper side of the tower 12, but in this embodiment, the constituent elements of the stress absorption connection structure portion are described. The length of the flexible conductor is longer as it goes upward of the tower 12, and the bending range is set wider.

同図(a)に示された応力吸収接続構造部36の可撓性導体50の長さL1は、同図(b)に示された可撓性導体50の長さL2よりも短い。可撓性導体50の長さを長くする程、撓み動作による接続バスダクト24相互の位置ずれの許容範囲は広がる。したがって、上下方向に接続配置されるバスダクトの接続構造のうち、揺れの小さい下方側に同図(a)の応力吸収接続構造部36を配置し、揺れの大きな上方側に同図(b)の応力吸収接続構造部36を配置するものである。なお、可撓性導体50の長さに対応させてカバー部材54の長さも設定されている。   The length L1 of the flexible conductor 50 of the stress absorbing connection structure portion 36 shown in FIG. 11A is shorter than the length L2 of the flexible conductor 50 shown in FIG. As the length of the flexible conductor 50 is increased, the allowable range of misalignment between the connection bus ducts 24 due to the bending operation is increased. Therefore, among the bus duct connection structures connected in the vertical direction, the stress absorbing connection structure portion 36 of FIG. 10A is arranged on the lower side with small fluctuation, and the upper side of FIG. The stress absorbing connection structure 36 is arranged. Note that the length of the cover member 54 is also set corresponding to the length of the flexible conductor 50.

これにより、上方に向かう程、可撓性導体50の長さを長くすることにより、上記第4の実施の形態と同様に、タワー12の揺れ幅が大きい個所におけるバスダクト24の許容移動範囲が広くなり、バスダクト24に応力が加わるのをより的確に回避することができ、効果的なバスダクト幹線の保護が可能となる。この様な場合、この可撓性導体50の撓み範囲の相違に対応して、接続ハウジングにおける遊び範囲も調整する必要があり、タワー12の上方に向かう程、支持部100のスペーサの高さや長孔の長さ等を大きく設定する必要がある。   Accordingly, by extending the length of the flexible conductor 50 toward the upper side, the allowable movement range of the bus duct 24 at a portion where the swing width of the tower 12 is large is widened, as in the fourth embodiment. Thus, it is possible to more accurately avoid the stress applied to the bus duct 24 and to effectively protect the bus duct main line. In such a case, it is necessary to adjust the play range in the connection housing corresponding to the difference in the flex range of the flexible conductor 50. The height and length of the spacer of the support portion 100 are increased toward the upper side of the tower 12. It is necessary to set a large hole length.

図16は、本発明に係るバスダクト接続構造を屈曲したバスダクト幹線に適用する場合の例を示している。上記各実施の形態では、バスダクト幹線が直線状に垂直布設される場合について説明したが、本実施の形態では、バスダクト幹線において、垂直の部分と水平の部分とが混在する場合である。   FIG. 16 shows an example in which the bus duct connection structure according to the present invention is applied to a bent bus duct main line. In each of the above embodiments, the case where the bus duct main line is laid in a straight line has been described. However, in the present embodiment, a vertical portion and a horizontal portion are mixed in the bus duct main line.

同図は、屈曲型バスダクト幹線の接続構造部の正面視説明図であり、この構造に上記第1の実施の形態に係るバスダクト接続構造が適用された例を示している。図示のように、バスダクト幹線200は、L字型のバスダクト25により途中位置でL字型に屈曲している。このL字型のバスダクト25の導体38の端部と、直線型のバスダクト24の導体38の端部との間に応力吸収接続構造部36が配置されている。すなわち、バスダクト幹線200は、垂直部分と水平部分とを有し、水平部分にバスダクト接続構造が配設されている。   This figure is a front view explanatory view of a connection structure portion of a bent bus duct main line, and shows an example in which the bus duct connection structure according to the first embodiment is applied to this structure. As illustrated, the bus duct main line 200 is bent in an L shape at an intermediate position by an L-shaped bus duct 25. A stress absorbing connection structure 36 is disposed between the end of the conductor 38 of the L-shaped bus duct 25 and the end of the conductor 38 of the linear bus duct 24. That is, the bus duct trunk line 200 has a vertical portion and a horizontal portion, and a bus duct connection structure is disposed in the horizontal portion.

このバスダクト幹線200の垂直部分が矢印Z方向に移動する場合、例えば、バスダクト幹線200の垂直部分の導体38が矢印Z方向に熱により伸縮する場合、応力吸収接続構造部36は、上記第1の実施の形態の図9に示した状態と同様に、可撓性導体50が撓み、これを接続ハウジング52が許容し、バスダクト24相互の位置ずれを吸収することができる。したがって、この様な屈曲部を有するバスダクト幹線の場合においてもバスダクト24に過大な応力が加わることを回避することができ、バスダクト幹線の保護が可能である。なお、バスダクト幹線の垂直部分にバスダクト接続構造を配置して、バスダクト幹線の水平部分の水平方向の移動を吸収することも可能である。   When the vertical part of the bus duct main line 200 moves in the arrow Z direction, for example, when the conductor 38 in the vertical part of the bus duct main line 200 expands and contracts due to heat in the arrow Z direction, the stress absorbing connection structure 36 is Similarly to the state shown in FIG. 9 of the embodiment, the flexible conductor 50 bends, and this is allowed by the connection housing 52, and the misalignment between the bus ducts 24 can be absorbed. Therefore, even in the case of the bus duct main line having such a bent portion, it is possible to avoid applying excessive stress to the bus duct 24, and it is possible to protect the bus duct main line. It is also possible to arrange the bus duct connection structure in the vertical part of the bus duct main line to absorb the horizontal movement of the horizontal part of the bus duct main line.

以上、実施形態に基づいて本発明を説明したが、本発明は、これらの構成に限定されるものではなく、発明の要旨の範囲内で種々の変形が可能である。例えば、カバー部材54と接続ユニット40との遊びを持たせた結合構造は、相対的に両者に遊びが存在すれば足り、その具体的構造は種々選択することができる。   Although the present invention has been described based on the embodiments, the present invention is not limited to these configurations, and various modifications can be made within the scope of the gist of the invention. For example, it is sufficient for the coupling structure having the play between the cover member 54 and the connection unit 40 to have a play in both of them, and the specific structure can be variously selected.

また、遊びを持たせた結合構造は、必ずしもハウジング部材相互間に設ける必要はなく、接続部ハウジングとバスダクトのハウジング部との結合に設けてもよい。   Further, the coupling structure having play is not necessarily provided between the housing members, and may be provided for coupling the connection portion housing and the housing portion of the bus duct.

また、上記実施の形態では、可撓性導体50を絶縁被覆した例を示したが、これに限るものではなく、各可撓性導体50間に可撓性を有する絶縁部材を介在させ、異相となる可撓性導体50同士を絶縁を保つように構成しても良い。   In the above embodiment, an example in which the flexible conductor 50 is covered with insulation has been shown. However, the present invention is not limited to this, and an insulating member having flexibility is interposed between the flexible conductors 50 to provide different phases. Alternatively, the flexible conductors 50 may be configured to maintain insulation.

また、上記各実施の形態では、バスダクト24の接続部において、応力吸収接続構造部36を設ける構成を取ったが、バスダクト24相互の接続位置とは異なる箇所に応力吸収接続構造部36を別途形成することも可能である。   In each of the above embodiments, the stress absorption connection structure 36 is provided at the connection portion of the bus duct 24. However, the stress absorption connection structure 36 is separately formed at a location different from the connection position between the bus ducts 24. It is also possible to do.

なお、本発明のバスダクト接続構造は、風力発電システムのみに適用されるものではなく、バスダクト幹線の設置される場であれば、如何なる状況においても適用できることは勿論である。   It should be noted that the bus duct connection structure of the present invention is not applied only to the wind power generation system, but can be applied to any situation as long as the bus duct main line is installed.

本発明に係るバスダクト接続構造を適用した風力発電システムの説明図である。It is explanatory drawing of the wind power generation system to which the bus duct connection structure concerning this invention is applied. 第1の実施の形態に係るバスダクト接続構造を示す平面視説明図である。It is plane view explanatory drawing which shows the bus duct connection structure which concerns on 1st Embodiment. 第1の実施の形態に係るバスダクト接続構造を示す正面視説明図である。It is front view explanatory drawing which shows the bus duct connection structure which concerns on 1st Embodiment. 第1の実施の形態に係るバスダクト接続構造の概略分解正面図である。It is a schematic exploded front view of the bus duct connection structure concerning a 1st embodiment. 接続ユニットを用いてバスダクト同士を接続している通常の接続状態を示す正面視説明図である。It is front view explanatory drawing which shows the normal connection state which has connected bus ducts using the connection unit. 図2の説明図に示された支持部の拡大平面視説明図である。FIG. 3 is an enlarged plan view explanatory view of a support portion shown in the explanatory view of FIG. 2. 本発明に係るバスダクト接続構造を用いたバスダクト同士の接続工程を示す説明図である。It is explanatory drawing which shows the connection process of the bus ducts using the bus duct connection structure which concerns on this invention. バスダクトが導体厚さ方向に位置ずれしたときのバスダクト接続構造の状態説明図である。It is a state explanatory view of the bus duct connection structure when the bus duct is displaced in the conductor thickness direction. バスダクトが導体幅方向に位置ずれしたときのバスダクト接続構造の状態説明図である。It is a state explanatory view of the bus duct connection structure when the bus duct is displaced in the conductor width direction. 第2の実施の形態に係るバスダクト接続構造でバスダクト同士を接続した接続状態を示す平面視説明図である。It is planar view explanatory drawing which shows the connection state which connected bus ducts by the bus duct connection structure which concerns on 2nd Embodiment. 第2の実施の形態のバスダクト接続構造でバスダクト同士を接続していた接続状態を示す正面視説明図である。It is front view explanatory drawing which shows the connection state which connected bus ducts by the bus duct connection structure of 2nd Embodiment. 第3の実施の形態のバスダクト接続構造でバスダクト同士を接続した接続状態を示す平面視説明図である。It is planar view explanatory drawing which shows the connection state which connected bus ducts with the bus duct connection structure of 3rd Embodiment. 第3の実施の形態のバスダクト接続構造でバスダクト同士を接続した接続状態を示す正面視説明図である。It is front view explanatory drawing which shows the connection state which connected bus ducts by the bus duct connection structure of 3rd Embodiment. 第4の実施の形態に係る風力発電システムの説明図である。It is explanatory drawing of the wind power generation system which concerns on 4th Embodiment. 第5の実施の形態のバスダクト接続構造でバスダクト同士を接続た接続状態を示す説明図である。It is explanatory drawing which shows the connection state which connected bus ducts by the bus duct connection structure of 5th Embodiment. 本発明に係るバスダクト接続構造を屈曲したバスダクト幹線に適用した構成を示す正面視説明図である。It is front view explanatory drawing which shows the structure applied to the bus duct trunk line which bent the bus duct connection structure which concerns on this invention.

符号の説明Explanation of symbols

10 風力発電システム
12 タワー
14 風力発電装置
20 電力変換装置
24 バスダクト
36 応力吸収接続構造部
40 接続ユニット
50 可撓性導体
52 接続部ハウジング
54 カバー部材
56 側板
58 蓋板
60 ダクト側板継ぎ板
62 ユニット蓋板
80 バスダクトハウジング
86 弾性部材
90 長孔
96 スペーサ
DESCRIPTION OF SYMBOLS 10 Wind power generation system 12 Tower 14 Wind power generator 20 Power converter 24 Bus duct 36 Stress absorption connection structure part 40 Connection unit 50 Flexible conductor 52 Connection part housing 54 Cover member 56 Side plate 58 Cover plate 60 Duct side plate joint plate 62 Unit cover Plate 80 Bus duct housing 86 Elastic member 90 Long hole 96 Spacer

Claims (9)

送電用の導体を内部に収容可能なハウジング構造を有し、相互に接続されて所望長さに設置されるバスダクト接続構造において、
バスダクト相互の接続部を収容する接続部ハウジングと、
該接続部ハウジング内で同相導体同士を電気的に接続する可撓性導体と、
を有し、
前記接続部ハウジングは、複数のハウジング部材から構成され、
各ハウジング部材の取り付けは、前記可撓性導体の撓みを許容する範囲で遊びを持った状態での取り付け構造とされ
各接続部ハウジングは、前記可撓性導体を覆うカバー部材と、前記可撓性導体の両端部とバスダクトの導体との各接続部分をそれぞれ覆う連結カバー部材と、を有し、
前記カバー部材と連結カバー部材との間の結合を前記遊びを持った状態での取り付け構造としたことを特徴とするバスダクト接続構造。
In a bus duct connection structure that has a housing structure that can accommodate a conductor for power transmission inside and is connected to each other and installed at a desired length,
A connection part housing for accommodating the connection part between the bus ducts;
A flexible conductor that electrically connects the in-phase conductors in the connection portion housing;
Have
The connection portion housing is composed of a plurality of housing members,
The attachment of each housing member is an attachment structure with play in a range that allows the flexible conductor to bend ,
Each connection portion housing has a cover member that covers the flexible conductor, and a connection cover member that covers each connection portion between both ends of the flexible conductor and the conductor of the bus duct,
A bus duct connection structure characterized in that the connection between the cover member and the connecting cover member is an attachment structure with the play.
送電用の導体を内部に収容可能なハウジング構造を有し、相互に接続されて所望長さに設置されるバスダクト接続構造において、  In a bus duct connection structure that has a housing structure that can accommodate a conductor for power transmission inside and is connected to each other and installed at a desired length,
バスダクト相互の接続部を収容する接続部ハウジングと、  A connection part housing for accommodating the connection part between the bus ducts;
該接続部ハウジング内で同相導体同士を電気的に接続する可撓性導体と、  A flexible conductor that electrically connects the in-phase conductors in the connection portion housing;
を有し、  Have
前記接続部ハウジングは、複数のハウジング部材から構成され、  The connection portion housing is composed of a plurality of housing members,
各ハウジング部材の取り付けは、該各ハウジング部材相互を前記可撓性導体の撓みを許容する範囲で遊びを持った状態で結合した取り付け構造とされ、  The mounting of each housing member is a mounting structure in which the housing members are coupled with each other with play in a range allowing the flexible conductor to bend,
前記遊びを持った状態で結合した取り付け構造は、前記バスダクトの伸長方向に直交する方向の遊びを含む構造であることを特徴とするバスダクト接続構造。  The bus duct connection structure according to claim 1, wherein the attachment structure coupled with the play includes a play in a direction perpendicular to an extension direction of the bus duct.
前記遊びを持った状態の結合部は、前記バスダクトの伸長方向における前記可撓性導体が撓む部分の近傍に形成されていることを特徴とする請求項2に記載のバスダクト接続構造。  The bus duct connection structure according to claim 2, wherein the coupling portion having the play is formed in the vicinity of a portion where the flexible conductor bends in the extending direction of the bus duct. 前記遊びを持った状態の結合部は、前記可撓性導体の両端部側に設けられたことを特徴とする請求項2又は3に記載のバスダクト接続構造。4. The bus duct connection structure according to claim 2, wherein the coupling portion having the play is provided on both ends of the flexible conductor. 5. 前記接続部ハウジングは、The connection portion housing is
前記可撓性導体を覆うカバー部材と、A cover member covering the flexible conductor;
前記可撓性導体の端部とバスダクト導体との各接続部分を覆う連結カバー部材と、A connecting cover member covering each connection portion between the end portion of the flexible conductor and the bus duct conductor;
を有し、前記カバー部材と連結カバー部材との間の結合を遊びを持った状態での取り付け構造としたことを特徴とする請求項2から4の何れか1項に記載のバスダクト接続構造。The bus duct connection structure according to any one of claims 2 to 4, wherein the connection structure between the cover member and the connecting cover member is an attachment structure with play.
前記カバー部材は、
前記可撓性導体の側面部を覆う側板と、上下面部を覆う蓋板と、を含み、
前記連結カバー部材は、
前記可撓性導体の端部とバスダクトの導体との接続部分の側面部を覆う連結部側板と、上下面部を覆う連結部蓋板と、を含み、
前記遊びを持った状態での取り付け構造は、
前記カバー部材の側板と前記連結部側板との間、又は、前記カバー部材の蓋板と前記連結部蓋板との間の少なくとも一方に形成されたことを特徴とする請求項1又は5に記載のバスダクト接続構造。
The cover member is
A side plate covering the side surface portion of the flexible conductor, and a lid plate covering the upper and lower surface portions,
The connecting cover member is
A connecting portion side plate that covers the side surface portion of the connection portion between the end portion of the flexible conductor and the conductor of the bus duct, and a connecting portion cover plate that covers the upper and lower surface portions,
The mounting structure with the play is
Between the side plate and the connecting portion side plate of the cover member, or, according to claim 1 or 5, characterized in that formed on at least one between the connecting portion cover plate and cover plate of said cover member Bus duct connection structure.
前記遊びを持った状態での取り付け構造は、
前記カバー部材又は前記連結カバー部材の何れか一方にバスダクト伸長方向に伸びる長孔を設け、他方にこの長孔に余裕を持って挿通可能な締結部材及び該締結部材の締め付け方向に遊びを持たせるためのスペーサを設けることによって構成されたことを特徴とする請求項1、5又は6の何れか1項に記載のバスダクト接続構造。
The mounting structure with the play is
Either one of the cover member or the connecting cover member is provided with a long hole extending in the bus duct extending direction, and the other is provided with a fastening member that can be inserted with a margin into the long hole and with a play in the tightening direction of the fastening member. bus duct connection structure according to any one of claims 1, 5 or 6, characterized in that it is constituted by providing a spacer for.
前記カバー部材と前記連結カバー部材には、最終設置状態において相互に重なる重なり部分を有し、該重なり部分に、弾性部材を介在させたことを特徴とする請求項1、5、6又は7の何れか1項に記載のバスダクト接続構造。 The connection cover member and the cover member is in the final installed condition has a overlapping portion overlapping each other, the heavy Nari portion of claim 1, 5, 6 or 7, characterized in that by interposing an elastic member The bus duct connection structure according to any one of the above. タワーの頂部に風力発電装置を備え、前記風力発電装置にて発電された電力を下方に送電する風力発電システムにおいて、
前記送電のルートを請求項1から8のいずれか1項に記載のバスダクト接続構造にて接続した接続部を有するバスダクト幹線にて構成したことを特徴とする風力発電システム。
In the wind power generation system comprising a wind power generator at the top of the tower and transmitting the power generated by the wind power generator downward,
A wind power generation system comprising: a bus duct main line having a connection portion connected to the power transmission route by the bus duct connection structure according to any one of claims 1 to 8 .
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CN103474928B (en) * 2013-09-11 2016-08-24 黄吉祥 A kind of novel wind generator group bus duct

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