JP2011032718A - Equipotentiality of important room in building and structure grounding mechanism - Google Patents

Equipotentiality of important room in building and structure grounding mechanism Download PDF

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JP2011032718A
JP2011032718A JP2009179649A JP2009179649A JP2011032718A JP 2011032718 A JP2011032718 A JP 2011032718A JP 2009179649 A JP2009179649 A JP 2009179649A JP 2009179649 A JP2009179649 A JP 2009179649A JP 2011032718 A JP2011032718 A JP 2011032718A
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floor slab
partition wall
metal body
steel frame
building
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JP5260437B2 (en
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Yoshiaki Mori
義明 森
Hajime Uchida
元 内田
Shinji Yanai
伸司 箭内
Shingo Kobayashi
信郷 小林
Tetsuo Endo
哲夫 遠藤
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Taisei Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To impart shielding effects to an electromagnetic field generated in a thunder current flowing in a building structure and to prevent indoor equipment from being greatly influenced by a potential difference generated between upper and lower floor slabs caused by a thunder current. <P>SOLUTION: In the equipotentiality of an important room in a building and a structure grounding mechanism, a metal body 6 is buried in a floor slab 1, and is connected electrically to a reinforcement 5 arranged in a mesh state with a connection line 7. A partition wall 3 has a backing light-weight steel frame 9 in a mesh structure, and the backing light-weight steel frame is electrically connected to the metal body with a fixing pin 8 driven into the metal body from a lower side runner 10, and grounded to the reinforcement of the floor slab through the connection line, thereby performing insulation while interposing an insulating material 13 between a partition wall, upper floor slab 2 and a stud 12. <P>COPYRIGHT: (C)2011,JPO&INPIT

Description

本発明は、鉄筋コンクリート造、鉄骨造建築物等の建物への落雷時において、例えば病院の手術室や事務所のサーバー室などの保護区画である重要室内に設置された機器への影響を軽減するための等電位及び構造体接地機構に関するものである。   The present invention reduces the influence on equipment installed in an important room, such as a hospital operating room or office server room, during a lightning strike to a building such as a reinforced concrete structure or a steel structure building. For the equipotential and structure grounding mechanism.

鉄筋コンクリート造、鉄骨造建築物等の建物への落雷時において、建物には、建物構造体としての柱、梁、床などに雷電流が流れる。避雷針など、建物の一個所への雷撃においても、雷電流は建物全体に拡散しながら流れるため、建物構造体の横方向部材である梁や床にも雷電流の分流成分が流れる。   During lightning strikes on buildings such as reinforced concrete structures and steel structures, lightning currents flow through the buildings such as columns, beams, and floors. Even in a lightning strike to one part of a building such as a lightning rod, the lightning current flows while diffusing throughout the building, so that a shunt component of the lightning current also flows in the beams and floors which are lateral members of the building structure.

このような雷電流によって生じる電磁界は室内に設置された機器に対して影響を与えるが、病院の手術室や事務所のサーバー室などの重要室内に設置された機器に影響を与えた場合には、磁気ディスクや磁気テープなどの磁気記録媒体による記録データの消失、機器の誤動作、システムダウンなどの多大なる被害が生じる可能性がある。   The electromagnetic field generated by such lightning currents affects equipment installed in the room, but it affects equipment installed in critical rooms such as hospital operating rooms and office server rooms. May cause a great deal of damage such as loss of recorded data by a magnetic recording medium such as a magnetic disk or a magnetic tape, malfunction of a device, or system down.

建物への落雷時における影響の軽減を図る従来技術の例としては下記の文献に示されるものがある。
まず特許文献1には、重要室の内装部材としての天井、間仕切壁及び床を建物構造体と絶縁すると共に、重要室の金属部と電気設備は接地線を介して建物構造体に一点で接地した構成が記載されている。
Examples of conventional techniques for reducing the effects of lightning strikes on buildings are shown in the following literature.
First, in Patent Document 1, the ceiling, partition walls, and floor as interior members of an important room are insulated from the building structure, and the metal part and electrical equipment of the important room are grounded to the building structure through a ground wire at one point. The configuration is described.

このような構成では、雷電流の経路となる建物構造体と、重要室の内装部材の間には、落雷時に電位差が生じるため、接地が必要な重要室内の金属部、盤及び電源用接地などは内装部材と絶縁する必要があるが、雷電流は高周波であって、高い絶縁性能を有する部材であってもそれを隔てて電磁誘導が生じるため、絶縁のために距離的に離隔することが必要である。しかしながら、このような離隔距離の決定には高度な解析を要し、また離隔スペースを確保することも現実的には困難である。   In such a configuration, there is a potential difference between the building structure that is the lightning current path and the interior members of the critical room during lightning strikes. It is necessary to insulate from the interior member, but lightning current is high frequency, and even if it has high insulation performance, electromagnetic induction occurs across it, so it may be separated by distance for insulation is necessary. However, determination of such a separation distance requires advanced analysis, and it is practically difficult to secure a separation space.

次に特許文献2には、床スラブを構成するデッキプレート、鉄筋あるいはメッシュ筋などに、接地ケーブルを接続するためのケーブル取出し用ボルトを、そのねじ部を上方にして立設すると共に、このケーブル取出し用ボルトに接地ケーブル接続金物を固着した構成で、接地を必要とする機器と、室内の床側において非常に短い長さの接地ケーブルで接続可能なスラブ構造躯体が記載されている。   Next, in Patent Document 2, a cable extraction bolt for connecting a grounding cable to a deck plate, a reinforcing bar or a mesh bar constituting the floor slab is erected with its threaded portion facing upward, and this cable. It describes a device that requires grounding and a slab structure housing that can be connected to the indoor floor by a very short length of grounding cable in a configuration in which a grounding cable connection hardware is fixed to an extraction bolt.

更に特許文献3には、デッキプレートと、その上方に配置されてスラブコンクリート中に埋設されるグリッド状の主筋とを有する床スラブにおいて、T字型吊りボルトの横ボルト部を主筋に接続固定すると共に、縦ボルト部をデッキプレートを通して下方に垂下させ、この縦ボルト部に接地ケーブルを接続したケーブルラックを固定した構成であり、従っての接地を必要とする機器を、室内の天井側において接地ケーブルで上階スラブに接続可能な躯体接地構造が記載されている。   Furthermore, in Patent Document 3, in a floor slab having a deck plate and a grid-shaped main bar disposed above the deck plate, a horizontal bolt portion of a T-shaped suspension bolt is connected and fixed to the main bar. In addition, the vertical bolt part is suspended downward through the deck plate, and a cable rack in which a grounding cable is connected to the vertical bolt part is fixed, and thus equipment requiring grounding is connected to the grounding cable on the indoor ceiling side. The frame grounding structure that can be connected to the upper floor slab is described.

上記の2つの特許文献は、夫々、室内の床側、天井側において床スラブに接地を行うための技術を開示しているに過ぎず、落雷時に建物構造体を流れる雷電流により発生する電磁界から室内を遮蔽するための技術的手段は記載されていない。   The above two patent documents only disclose a technique for grounding the floor slab on the indoor floor side and the ceiling side, respectively, and an electromagnetic field generated by a lightning current flowing through the building structure during a lightning strike. No technical means for shielding the interior from the interior are described.

また上記の2つの特許文献に記載されている構成によって接地を行った場合には、建物構造体に沿った雷電流の進行に伴う電位差が上下階に生じるため、重要室内の接地は床スラブ又は上階スラブのいずれかに統一する必要があり、実用上非常に困難であるが、2つの特許文献には、その解決策は示されていない。   In addition, when grounding is performed according to the configuration described in the above two patent documents, a potential difference due to the progress of lightning current along the building structure is generated on the upper and lower floors. Although it is necessary to unify it to one of the upper floor slabs and it is very difficult in practice, the solution is not shown in two patent documents.

特開2005−273328号公報JP 2005-273328 A 特開2004−183426号公報JP 2004-183426 A 特開2005−56594号公報JP 2005-56594 A

本発明が解決しようとする問題点は、従来技術においては、建物構造体に流れる雷電流によって発生する電磁界に対する遮蔽効果がない点と、雷電流により上下階のスラブ間に生じる電位差により室内の機器に大きな影響を与えるという点である。   The problem to be solved by the present invention is that, in the prior art, there is no shielding effect against the electromagnetic field generated by the lightning current flowing in the building structure and the potential difference generated between the upper and lower floor slabs by the lightning current. It has a great influence on the equipment.

上述した課題を解決するために本発明では、建物構造体の空間に、間仕切壁により囲んだ重要室を構成するものにおいて、床スラブには、間仕切壁の設置位置に対応して金属体を埋設し、この金属体から、メッシュ状に配設された鉄筋に接続線により電気的接続を行う構成とし、間仕切壁は、下地用軽量鉄骨をメッシュ構造とすると共に、この下地用軽量鉄骨は、下側ランナーにおいて前記金属体に打ち込んだ導電性の固定用ピンにより前記金属体に電気的接続を行って、前記接続線を介して床スラブの鉄筋に接地し、間仕切壁と、上階の床スラブ及び間柱との間には絶縁材を介装して絶縁を行うこととした建物における重要室の等電位及び構造体接地機構を提案する。   In order to solve the above-described problems, in the present invention, in the building structure body, an important room surrounded by a partition wall is configured. In the floor slab, a metal body is embedded corresponding to the installation position of the partition wall. The metal body is electrically connected to the reinforcing bars arranged in a mesh shape by connecting wires, and the partition wall has a mesh structure of a lightweight steel frame for groundwork. Electrical connection is made to the metal body by means of conductive fixing pins driven into the metal body in the side runner, and grounded to the reinforcing bar of the floor slab via the connection line, the partition wall, and the floor slab of the upper floor We propose an equipotential and structural grounding mechanism for important rooms in buildings where insulation is interposed between the pillars and insulation.

また本発明では、上記の構成において、間仕切壁の下側ランナーの一部と床スラブとの間に絶縁材を介装して絶縁を行うことを提案する。   Moreover, in this invention, in said structure, it proposes insulating by interposing an insulating material between a part of lower runner of a partition wall, and a floor slab.

また本発明では、建物構造体の空間に、間仕切壁により囲んだ重要室を構成するものにおいて、床スラブには、間仕切壁の設置位置に対応して金属体を埋設し、この金属体から、メッシュ状に配設された鉄筋に接続線により電気的接続を行う構成とし、間仕切壁は、下地用軽量鉄骨をメッシュ構造とすると共に、ランナーを介して床スラブと上階の床スラブ間に固定した間柱によって支持し、この下地用軽量鉄骨は、下側ランナーにおいて前記金属体に打ち込んだ導電性の固定用ピンから金属体及び前記接続線を介して床スラブの鉄筋に打ち込んだ導電性の固定用ピンにより前記金属体に電気的接続を行って、前記接続線を介して床スラブの鉄筋に接地し、間柱の上側ランナーと上階の床スラブ間に絶縁材を介装した建物における重要室の等電位及び構造体接地機構を提案する。   In the present invention, in the space of the building structure that constitutes an important room surrounded by the partition wall, the floor slab is embedded with a metal body corresponding to the installation position of the partition wall, from this metal body, It is configured to electrically connect to the reinforcing bars arranged in a mesh shape by connecting wires, and the partition wall is made of a lightweight steel frame for groundwork with a mesh structure and fixed between the floor slab and the upper floor slab via a runner This lightweight steel frame for the base is supported by a fixed spacer, and is fixed to the floor slab by means of a conductive fixing pin driven into the metal body in the lower runner through the metal body and the connecting wire. An important room in a building in which an electrical connection is made to the metal body by a working pin, grounded to the reinforcing bar of the floor slab via the connecting wire, and an insulating material is interposed between the upper runner of the stud and the floor slab of the upper floor Etc. To propose a position and structure ground mechanism.

そして本発明では、後者の構成において、重要室に、上階の床スラブと柱から距離を隔ててメッシュ構造の下地用軽量鉄骨を有する内装天井を設け、内装天井と間仕切壁の下地用軽量鉄骨を電気的に接続した建物における重要室の等電位及び構造体接地機構を提案する。   In the present invention, in the latter configuration, the important room is provided with an interior ceiling having a lightweight steel frame for the groundwork in the mesh structure at a distance from the floor slab and the column on the upper floor, and the lightweight ceiling steel frame for the interior ceiling and partition walls This paper proposes equipotential and structural grounding mechanisms for important rooms in buildings that are electrically connected.

本発明では、建物構造体としての床スラブのメッシュ状に配設された鉄筋、重要室を構成する間仕切壁のメッシュ構造の下地用軽量鉄骨、そしてメッシュ構造の下地用軽量鉄骨を有する内装天井により電磁シールド構造を構成し、落雷に伴って発生する重要室内の電磁界パルスを低減することができる。   According to the present invention, the reinforcing bars arranged in a mesh shape of a floor slab as a building structure, the lightweight steel frame for the ground structure of the partition wall constituting the important room, and the interior ceiling having the lightweight steel frame for the ground structure of the mesh structure An electromagnetic shield structure can be configured to reduce the electromagnetic field pulses generated in the important room due to lightning strikes.

そして間仕切壁と、上階の床スラブ及び間柱との間には絶縁材を介装して絶縁を行うことにより、床の電位変動の少ない個所において、重要室の等電位化と、間仕切壁の電磁シールド用のメッシュ構造の下地用軽量鉄骨の接地が同じ個所で可能となる。   Insulation is performed between the partition wall and the floor slabs and columns on the upper floor to insulate the potential of the important room at the location where the potential fluctuation of the floor is small. The grounding of the lightweight steel frame with the mesh structure for electromagnetic shielding is possible at the same location.

間仕切壁の下地用軽量鉄骨と、床スラブの鉄筋との接続は、間仕切壁の施工に際して下側ランナーから床スラブに埋設した金属体に導電性の固定用ピンを打ち込むことにより同時に行うことができ、建築工事と、電気工事である接地工事の同時施工が可能である。   The lightweight steel frame for the base of the partition wall and the reinforcing bar of the floor slab can be connected at the same time by driving a conductive fixing pin into the metal body embedded in the floor slab from the lower runner when constructing the partition wall. Construction work and grounding work that is electrical work can be performed simultaneously.

このようにして本発明では、等電位面を床スラブのメッシュ状の鉄筋とし、そして重要室の内装部材を等電位化して、その等電位面に重要室内の金属体、盤、電源用接地を容易に行うことができ、こうして落雷時の機器の破損や誤動作を防止することができる。
建物構造体としての床スラブに流れる雷電流によって発生する電磁界は、場所により大小があるため、電磁界の発生が大きいと想定される床スラブの個所と間仕切壁の下側ランナーの一部との間に絶縁材を介装して絶縁を行へば床スラブからの電磁界の影響を更に低減することができる。
In this way, in the present invention, the equipotential surface is made of a mesh rebar of the floor slab, and the interior member of the important room is made equipotential, and the metal body in the important chamber, the panel, and the ground for the power source are connected to the equipotential surface. This can be done easily, thus preventing damage or malfunction of the device during a lightning strike.
The electromagnetic field generated by the lightning current that flows through the floor slab as a building structure varies depending on the location.Therefore, the location of the floor slab where the generation of the electromagnetic field is assumed to be large and a part of the lower runner of the partition wall If an insulating material is interposed between the two, the influence of the electromagnetic field from the floor slab can be further reduced.

また本発明においては、間仕切壁はランナーを介して床スラブと上階の床スラブ間に固定した間柱によって支持する構成とし、間柱の上側ランナーと上階の床スラブ間に絶縁材を介装した構成とすることにより、重要室の間仕切壁は、床スラブと等電位となり、また電位の異なる上階の床スラブとは絶縁されるので、電磁界を発生する原因となる電流は発生しない。   In the present invention, the partition wall is supported by a spacer fixed between the floor slab and the upper floor slab via a runner, and an insulating material is interposed between the upper runner of the pillar and the upper floor slab. With this configuration, the partition wall of the important room is equipotential with the floor slab, and is insulated from the upper floor slab having a different potential, so that no current that causes an electromagnetic field is generated.

そして上階の床スラブと柱から距離を隔ててメッシュ構造の下地用軽量鉄骨を有する内装天井を設ければ、距離が近いと生じる上階の床スラブとの電磁結合を抑えることができ、この内装天井と間仕切壁の下地用軽量鉄骨を電気的に接続することにより、上階の床スラブを流れる雷電流により発生する電磁界に対する効果的な電磁シールドとすることができる。   And by providing an interior ceiling with a lightweight steel frame with a mesh structure at a distance from the upper floor slab and the pillar, electromagnetic coupling with the upper floor slab, which occurs when the distance is short, can be suppressed. By electrically connecting the interior lightweight ceiling and the lightweight steel frame for the partition wall, it is possible to provide an effective electromagnetic shield against the electromagnetic field generated by the lightning current flowing through the floor slab on the upper floor.

図1は本発明の建物における重要室の等電位及び構造体接地機構の実施の形態を示す模式的断面図である。FIG. 1 is a schematic cross-sectional view showing an embodiment of an equipotential of an important room and a structure grounding mechanism in a building of the present invention. 図2は本発明の建物における重要室の等電位及び構造体接地機構の実施の形態を図1とは異なった方向から見た模式的断面図である。FIG. 2 is a schematic cross-sectional view of an embodiment of an equipotential of an important room and a structure grounding mechanism in a building according to the present invention as viewed from a direction different from FIG. 図3は本発明の建物における重要室の等電位及び構造体接地機構の他の実施の形態を示す模式的断面図である。FIG. 3 is a schematic cross-sectional view showing another embodiment of the equipotential of the important room and the structure grounding mechanism in the building of the present invention.

次に本発明の実施の形態を添付図面を参照して説明する。
まず図1、図2に示す実施の形態において、符号1は床スラブ、2は上階の床スラブであり、3は間仕切壁であり、重要室4はこれらの要素により構成される。符号5は床スラブ2内にメッシュ状に配設されて電気的接続がされた鉄筋であり、本発明における床スラブ1では、間仕切壁3の設置位置に対応して金属体6を埋設し、この金属体6から鉄筋5に接続線7により電気的接続を行っている。ここで金属体6は、後述するように間仕切壁3の施工に際して導電性の固定用ピン8を打ち込むものであり、例えば金属板や発泡金属などを用いることができる。
Next, embodiments of the present invention will be described with reference to the accompanying drawings.
In the embodiment shown in FIGS. 1 and 2, reference numeral 1 is a floor slab, 2 is a floor slab on the upper floor, 3 is a partition wall, and the important chamber 4 is constituted by these elements. Reference numeral 5 is a reinforcing bar arranged in a mesh shape in the floor slab 2 and electrically connected thereto. In the floor slab 1 according to the present invention, a metal body 6 is embedded corresponding to the installation position of the partition wall 3, Electrical connection is made from the metal body 6 to the reinforcing bar 5 by a connecting wire 7. Here, the metal body 6 is a member in which a conductive fixing pin 8 is driven when the partition wall 3 is constructed as will be described later. For example, a metal plate or a foam metal can be used.

間仕切壁3は図2に示されるように下地用軽量鉄骨9をメッシュ構造としており、夫々下側ランナー10、上側ランナー11を介して床スラブ1、上階の床スラブ2間に支持する構成としている。   As shown in FIG. 2, the partition wall 3 has a base lightweight steel frame 9 having a mesh structure and is supported between the floor slab 1 and the upper floor slab 2 via the lower runner 10 and the upper runner 11, respectively. Yes.

以上の構成において、間仕切壁3の施工に際して、下側ランナー10から床スラブ1に埋設した金属体6に導電性の固定用ピン8を打ち込んで間仕切壁3を支持すると、間仕切壁3の下地用軽量鉄骨9は、固定用ピン8から金属体6、そして接続線7を経て床スラブ1の鉄筋5に接地することができる。即ち、建築工事と、電気工事である接地工事の同時施工が可能である。   In the above configuration, when the partition wall 3 is constructed, when the conductive fixing pin 8 is driven into the metal body 6 embedded in the floor slab 1 from the lower runner 10 to support the partition wall 3, the base wall of the partition wall 3 is used. The lightweight steel frame 9 can be grounded to the reinforcing bar 5 of the floor slab 1 from the fixing pin 8 through the metal body 6 and the connecting wire 7. That is, it is possible to perform construction work simultaneously with grounding work, which is electrical work.

一方、図に示すように、間仕切壁3と、上階の床スラブ2及び間柱12との間には絶縁材13を介装して絶縁を行う。この場合、絶縁材13としては、絶縁材料で構成された汎用品の防振用緩衝体を利用することができ、このように絶縁を行うことにより、重要室4の等電位化と、間仕切壁3の電磁シールド用のメッシュ構造の下地用軽量鉄骨9の接地が、床スラブ2の電位変動の少ない個所において可能となる。尚、図1に示されるように、間仕切壁3の上側は、上側ランナー11から上階の床スラブ2に固定用ピン14を打ち込んで支持するが、上階の床スラブ2の対応個所には床スラブ1のような金属体6を埋設していないため、上階の床スラブ2の鉄筋15と電気的接続がされてしまうことはない。
尚、上述したように建物構造体としての床スラブに流れる雷電流によって発生する電磁界は場所により大小があるため、図2に示す実施の形態においては、電磁界の発生が大きいと想定される床スラブ1の個所と間仕切壁3の下側ランナー10の一部との間に絶縁材13を介装して絶縁を行っており、この構成においては、床スラブ1からの電磁界の影響を更に低減することができる。
On the other hand, as shown in the drawing, an insulating material 13 is interposed between the partition wall 3 and the floor slab 2 and the stud 12 on the upper floor for insulation. In this case, as the insulating material 13, a general-purpose vibration isolating buffer made of an insulating material can be used, and by isolating in this way, the equipotential of the important chamber 4 and the partition wall can be obtained. The grounding lightweight steel frame 9 having the mesh structure for electromagnetic shielding 3 can be grounded at a place where the potential fluctuation of the floor slab 2 is small. As shown in FIG. 1, the upper side of the partition wall 3 is supported by driving a fixing pin 14 from the upper runner 11 to the upper floor slab 2. Since the metal body 6 such as the floor slab 1 is not embedded, it is not electrically connected to the reinforcing bar 15 of the floor slab 2 on the upper floor.
As described above, since the electromagnetic field generated by the lightning current flowing in the floor slab as the building structure is large depending on the location, it is assumed that the generation of the electromagnetic field is large in the embodiment shown in FIG. Insulation is performed by interposing an insulating material 13 between the location of the floor slab 1 and a part of the lower runner 10 of the partition wall 3. In this configuration, the influence of the electromagnetic field from the floor slab 1 is reduced. Further reduction can be achieved.

次に図3は本発明の他の実施の形態を示すもので、この実施の形態は、重要室4を、建物構造体としての上階の床スラブと柱から距離を隔てて設置することができる。   Next, FIG. 3 shows another embodiment of the present invention. In this embodiment, the important room 4 is installed at a distance from the floor slab and the pillar on the upper floor as a building structure. it can.

即ち、図3において、符号101は床スラブ、102は上階の床スラブ、103は柱、104は梁を示すものであり、重要室4を構成する間仕切壁105は、ランナー(図示省略)を介して床スラブ101と上階の床スラブ102間に固定した間柱106によって支持する構成としている。間柱106の上側は、上側ランナーと上階の床スラブ102間に絶縁材107を介装している。尚、床スラブ101及び間仕切壁105の構成並びに絶縁材は図1、図2に示す実施の形態と同様である。   3, reference numeral 101 denotes a floor slab, 102 denotes an upper floor slab, 103 denotes a pillar, and 104 denotes a beam. The partition wall 105 constituting the important room 4 is a runner (not shown). It is set as the structure supported by the stud 106 fixed between the floor slab 101 and the floor slab 102 of the upper floor through. On the upper side of the stud 106, an insulating material 107 is interposed between the upper runner and the floor slab 102 on the upper floor. The construction of the floor slab 101 and the partition wall 105 and the insulating material are the same as those in the embodiment shown in FIGS.

更にこの実施の形態では、重要室4に、上階の床スラブ102から距離を隔ててメッシュ構造の下地用軽量鉄骨を有する内装天井108を設けており、この内装天井108と間仕切壁105の下地用軽量鉄骨(図示省略)を電気的に接続している。   Further, in this embodiment, an interior ceiling 108 having a lightweight steel frame with a mesh structure is provided in the important room 4 at a distance from the floor slab 102 on the upper floor, and the interior ceiling 108 and the base of the partition wall 105 are provided. A lightweight steel frame (not shown) is electrically connected.

以上の実施の形態において、重要室4は、上述したように、建物構造体としての床スラブ101のメッシュ状に配設された鉄筋109、重要室4を構成する間仕切壁105のメッシュ構造の下地用軽量鉄骨、そして内装天井108のメッシュ構造の下地用軽量鉄骨による電磁シールド構造により遮蔽することができる。このようなことから本発明では、上述した構成により間仕切壁105の下地用軽量鉄骨の接地を行う床スラブ101を除いて、他の建物構造体である上階の床スラブ102や柱103から距離を隔てて構成することができるので、建物内で外壁に近いゾーンであっても、落雷時に図中2点鎖線110で示す雷電流により発生する電磁界の影響を抑えることができる室を構成することができる。   In the above embodiment, the important room 4 is the base of the mesh structure of the rebar 109 arranged in the mesh shape of the floor slab 101 as the building structure and the partition wall 105 constituting the important room 4 as described above. It can be shielded by an electromagnetic shielding structure using a lightweight steel frame for the interior and a lightweight steel frame for the groundwork of the mesh structure of the interior ceiling 108. For this reason, in the present invention, the floor slab 101 for grounding the base lightweight steel frame of the partition wall 105 with the above-described configuration is excluded from the floor slab 102 and the pillar 103 on the upper floor, which are other building structures. Therefore, even in a zone close to the outer wall in a building, a room that can suppress the influence of an electromagnetic field generated by a lightning current indicated by a two-dot chain line 110 in the figure at the time of a lightning strike is configured. be able to.

間仕切壁の下地用軽量鉄骨は、例えば、接合部を電気的に導通を取った30cm間隔のメッシュ構造とすることで、それを通して侵入する電磁界を1/5以上低減する効果を有する。これは、銅製の棒材によって同間隔のメッシュ構造を構成した電磁シールド(ファラデーケージ)構造と同等の性能である。
建物に落雷が起こった場合、建物内であっても最も高い磁界の強さは瞬間的に4000A/m以上(雷ピーク電流を100kAと想定し、避雷針を建物最上階の角部の柱に接続した場合に、接続した柱から1m以内の範囲)に達する。4000A/mはJEITA(登録商標) IT-1004の直流磁界class S4(特別な環境)に相当し、『磁気ディスク、磁気テープ等の磁気媒体による記録保存の限界(この環境では記録データが消失)であり、(…中略…)記録媒体の保管を含め、周到な注意が必要である。』(以上、JEITA(登録商標) IT-1004より抜粋)と考えられる磁界の強度である。
これに対して、本発明の機構を適用すると、4000A/m以上の磁界の強度となる範囲は、上記に示した柱から40cm以内にまで減ずることができる。同様に、「保護された環境。保護接地導体等から大きく離れた一般家庭、事務所、病院等の保護区画」に相当するJEITA(登録商標) IT-1004の直流磁界400A/mは上述した柱から1.4m未満の範囲で実現できる(一般的建物は3.6m以内)。
本実施例では柱1本について言及したが、建物内にはこのように避雷針と直結する柱が各所に存在するため、通常の構造では建物内の各所の柱から1m以内の範囲では強い磁界に機器が曝されることになるため、保護区画を構成することはきわめて困難である。本発明機構では、範囲を1/2以上縮めることが可能になり、重要機器の配置レイアウトの自由度が向上する。
For example, the lightweight steel frame for the base of the partition wall has an effect of reducing the electromagnetic field penetrating therethrough by 1/5 or more by forming a mesh structure with an interval of 30 cm in which the joint portion is electrically connected. This is the same performance as an electromagnetic shield (Faraday cage) structure in which a mesh structure with the same interval is formed by a copper bar.
When a lightning strike occurs in a building, the highest magnetic field strength is instantaneously greater than 4000 A / m even within the building (assuming a lightning peak current of 100 kA, connect a lightning rod to the corner column on the top floor of the building) If it does, it will reach within 1m from the connected pillar). 4000A / m corresponds to the DC magnetic field class S4 (special environment) of JEITA (registered trademark) IT-1004. “Limit of record storage by magnetic media such as magnetic disk and magnetic tape (recorded data is lost in this environment) (... Omitted ...) Careful attention is required, including storage of recording media. (The above is an extract from JEITA (registered trademark) IT-1004).
On the other hand, when the mechanism of the present invention is applied, the range in which the magnetic field strength is 4000 A / m or more can be reduced to within 40 cm from the above-described pillar. Similarly, JEITA (registered trademark) IT-1004's DC magnetic field 400A / m, which corresponds to “Protected environment. Protected area of general households, offices, hospitals, etc. far away from protective earth conductors” To less than 1.4m (general buildings are within 3.6m).
In this example, one pillar was mentioned, but there are pillars that are directly connected to lightning rods in the building in this way. Therefore, in a normal structure, a strong magnetic field is generated within 1 m from the pillars in each place in the building. Because the equipment will be exposed, it is very difficult to construct a protective compartment. In the mechanism according to the present invention, the range can be reduced by more than 1/2, and the degree of freedom in the layout of important devices is improved.

間仕切壁の下地用軽量鉄骨は、例えば、接合部を電気的に導通を取った45cm間隔のメッシュ構造とすることで、それを通して侵入する電磁界の強度を1/2以上低減する効果を有する。これは、銅製の棒材によって同間隔のメッシュ構造を構成した電磁シールド(ファラデーケージ)構造と同等の性能である。このメッシュ構造では、上述した試算において、4000A/m以上(JEITA(登録商標) IT-1004 Class S4相当)の範囲は80cm以内、400A/m以上(JEITA(登録商標) IT-1004 Class B相当)の範囲は、2.6m以内にまで減衰する。   The lightweight steel frame for the base of the partition wall has, for example, an effect of reducing the strength of the electromagnetic field penetrating therethrough by 1/2 or more by forming a mesh structure with a 45 cm interval in which the joint portion is electrically connected. This is the same performance as an electromagnetic shield (Faraday cage) structure in which a mesh structure with the same interval is formed by a copper bar. In this mesh structure, in the above calculation, the range of 4000 A / m or more (equivalent to JEITA (registered trademark) IT-1004 Class S4) is within 80 cm, 400 A / m or more (equivalent to JEITA (registered trademark) IT-1004 Class B) The range is attenuated to within 2.6m.

1 床スラブ
2 上階の床スラブ
3 間仕切壁
4 重要室
5 鉄筋
6 金属体
7 接続線
8 固定用ピン
9 下地用軽量鉄骨
10 下側ランナー
11 上側ランナー
12 間柱
13 絶縁材
14 固定用ピン
15 鉄筋
101 床スラブ
102 上階の床スラブ
103 柱
104 梁
105 間仕切壁
106 間柱
107 絶縁材
108 内装天井
109 鉄筋
110 雷電流
DESCRIPTION OF SYMBOLS 1 Floor slab 2 Upper floor slab 3 Partition wall 4 Important room 5 Reinforcing bar 6 Metal body 7 Connection line 8 Fixing pin 9 Lightweight steel frame 10 Lower runner 11 Upper runner 12 Pillar 13 Insulation material 14 Fixing pin 15 Reinforcing bar 101 Floor Slab 102 Upper Floor Slab 103 Column 104 Beam 105 Partition Wall 106 Partition 107 Insulation Material 108 Interior Ceiling 109 Reinforcement 110 Lightning Current

Claims (4)

建物構造体の空間に、間仕切壁により囲んだ重要室を構成するものにおいて、床スラブには、間仕切壁の設置位置に対応して金属体を埋設し、この金属体から、メッシュ状に配設された鉄筋に接続線により電気的接続を行う構成とし、間仕切壁は、下地用軽量鉄骨をメッシュ構造とすると共に、この下地用軽量鉄骨は、下側ランナーにおいて前記金属体に打ち込んだ導電性の固定用ピンにより前記金属体に電気的接続を行って、前記接続線を介して床スラブの鉄筋に接地し、間仕切壁と、上階の床スラブ及び間柱との間には絶縁材を介装して絶縁を行うことを特徴とする建物における重要室の等電位及び構造体接地機構。 In the building structure space, which constitutes an important room surrounded by a partition wall, a metal body is embedded in the floor slab corresponding to the installation position of the partition wall, and the mesh is arranged from this metal body. The partition wall has a mesh structure of a lightweight steel frame for groundwork, and the lightweight steel frame for groundwork is electrically conductive that is driven into the metal body in the lower runner. An electrical connection is made to the metal body by a fixing pin, grounded to the reinforcing bar of the floor slab via the connection line, and an insulating material is interposed between the partition wall and the upper floor slab and the stud. Equipotential and structural grounding mechanism for important rooms in buildings characterized by insulation. 間仕切壁の下側ランナーの一部と床スラブとの間に絶縁材を介装して絶縁を行うことを特徴とする請求項1に記載の建物における重要室の等電位及び構造体接地機構。 2. The equipotential and structure grounding mechanism of an important room in a building according to claim 1, wherein insulation is performed by interposing an insulating material between a part of the lower runner of the partition wall and the floor slab. 建物構造体の空間に、間仕切壁により囲んだ重要室を構成するものにおいて、床スラブには、間仕切壁の設置位置に対応して金属体を埋設し、この金属体から、メッシュ状に配設された鉄筋に接続線により電気的接続を行う構成とし、間仕切壁は、下地用軽量鉄骨をメッシュ構造とすると共に、ランナーを介して床スラブと上階の床スラブ間に固定した間柱によって支持し、この下地用軽量鉄骨は、下側ランナーにおいて前記金属体に打ち込んだ導電性の固定用ピンから金属体及び前記接続線を介して床スラブの鉄筋に打ち込んだ導電性の固定用ピンにより前記金属体に電気的接続を行って、前記接続線を介して床スラブの鉄筋に接地し、間柱の上側ランナーと上階の床スラブ間に絶縁材を介装したことを特徴とする建物における重要室の等電位及び構造体接地機構。 In the building structure space, which constitutes an important room surrounded by a partition wall, a metal body is embedded in the floor slab corresponding to the installation position of the partition wall, and the mesh is arranged from this metal body. The partition wall has a mesh structure with a lightweight steel frame for foundation and is supported by a stud fixed between the floor slab and the floor slab on the upper floor via a runner. The lightweight steel frame for groundwork is formed by the conductive fixing pin driven into the reinforcing bar of the floor slab through the metal body and the connecting wire from the conductive fixing pin driven into the metal body in the lower runner. An important room in a building characterized in that an electrical connection is made to the body, grounded to the reinforcing bar of the floor slab via the connecting line, and an insulating material is interposed between the upper runner of the stud and the floor slab of the upper floor Etc. Position and structure ground mechanism. 重要室に、上階の床スラブと柱から距離を隔ててメッシュ構造の下地用軽量鉄骨を有する内装天井を設け、内装天井と間仕切壁の下地用軽量鉄骨を電気的に接続したことを特徴とする請求項3に記載の建物における重要室の等電位及び構造体接地機構。 The important room is equipped with an interior ceiling with a lightweight steel frame for the groundwork of the mesh structure separated from the floor slab and pillar of the upper floor, and the interior ceiling and the lightweight steel frame for the groundwork of the partition wall are electrically connected The equipotential and structure grounding mechanism of the important room in the building according to claim 3.
JP2009179649A 2009-07-31 2009-07-31 Equipotential and structural grounding mechanism of important rooms in buildings Expired - Fee Related JP5260437B2 (en)

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JPH07212949A (en) * 1994-01-13 1995-08-11 Taisei Corp Joint structure of column
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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106251911A (en) * 2016-07-22 2016-12-21 葛加君 The method of building intelligence system multidigit pre-control electromagnetism Leibo interference
CN106251911B (en) * 2016-07-22 2018-07-27 葛加君 The method of building intelligence system multidigit pre-control electromagnetism Leibo interference

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