JP4567493B2 - Seismic isolation system for buildings over railway tracks - Google Patents
Seismic isolation system for buildings over railway tracks Download PDFInfo
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Description
本発明は、線路上空建築物の免震防振構造システムに関するものである。 The present invention relates to a seismic isolation and vibration isolation structure system for buildings over railway tracks.
線路上空を利用した建築物は、鉄道事業者の関連事業展開や都市再開発の面で今後ますます必要性が高まることが予想される。そのような建築物は、軌道を跨ぐことから一般建築物より耐震性能を高める必要がある。
従来、免震機能を有すると共に、建物周辺の鉄道や道路から伝搬してくる微振動や固体伝搬音を遮断する機能を合わせ持つ免震・防振構法建物についての提案が、下記非特許文献1,2としてなされている。
Conventionally, a proposal for a seismic isolation / vibration isolation building having a seismic isolation function and a function of blocking fine vibration and solid propagation sound propagating from railways and roads around the building has been disclosed in Non-Patent Document 1 below. , 2.
しかしながら、鉄道線路上空の建築物の構築に当たって、耐震性能を高めるためには免震構造が有利であるが、軌道を跨ぐために基礎同士を繋ぐ剛強な地中梁を設けることは施工上難しく、一般建築物のように基礎に免震層を設けることは難しい。
さらに、列車走行時に発生する振動が建物内を伝搬するため、一般的な構造ではホテル等の騒音・振動の少ない高い品質が求められる空間を確保することは難しい。
However, seismic isolation structure is advantageous to improve the seismic performance when building buildings over railway tracks, but it is difficult to construct a rigid underground beam that connects the foundations to straddle the track. It is difficult to install a seismic isolation layer on the foundation like a building.
Furthermore, since vibration generated during train traveling propagates through the building, it is difficult to secure a space that requires high quality with low noise and vibration, such as a hotel, in a general structure.
本発明は、上記状況に鑑みて、耐震性能を向上させるとともに、免震層の鉛直方向の剛性を柔らかくすることにより列車振動に対する防振効果を高めることができる線路上空建築物の免震防振構造システムを提供することを目的とする。 In view of the above circumstances, the present invention improves the seismic performance and improves the vibration isolation effect against train vibration by softening the vertical rigidity of the base isolation layer. The object is to provide a structural system.
本発明は、上記目的を達成するために、
〔1〕建築物の基礎の下部に線路が敷設される線路上空建築物の免震防振構造システムにおいて、鉄道車両の通路として供するための、地中梁を設けない基礎杭に連結して配置される基礎柱と、駅施設を含む前記基礎柱上に構築され、かつ線路上空に構築される多層の建築物の基礎部の柱に配置される鉛直方向の剛性を柔らかくした積層ゴムを配置した免震層と、前記積層ゴムを配置した免震層の上下の梁の間に配置され、かつ滑り支承機構が組み込まれた粘弾性ダンパーとを具備することを特徴とする。
In order to achieve the above object, the present invention provides
[1] In a seismic isolation system for a building over the track where the track is laid at the bottom of the building foundation, it is connected to a foundation pile without an underground beam to serve as a passage for a railway vehicle. And a laminated rubber that is built on the foundation pillar including the station facility and is placed on the pillar of the foundation of the multi-layered building built above the railroad track and has a soft vertical rigidity. and isolation layer is disposed between the upper and lower beams seismic isolation layer arranged the laminated rubber, and characterized by comprising a viscoelastic dampers sliding bearing mechanism is incorporated.
〔2〕上記〔1〕記載の線路上空建築物の免震防振構造システムにおいて、前記粘弾性ダンパーを前記免震層の中央部に配置することを特徴とする。 [2] In the seismic isolation system for buildings above the railway line according to [1], the viscoelastic damper is disposed in a central portion of the seismic isolation layer.
本発明によれば、次のような効果を奏することができる。
(1)基礎柱上に構築される建築物の基礎部に積層ゴムを配置した免震層を設けるようにしたので、耐震性能を向上させることができるとともに、積層ゴムを配置した免震層の鉛直方向の剛性を柔らかくすることで列車振動に対する防振効果を高めることができる。
(2)免震層の鉛直方向の剛性を柔らかくすることにより生じる免震層より上部の構築物の振動増幅を低減させるための粘弾性ダンパーを免震層に設置することにより、防振効果を高めることができる。
According to the present invention, the following effects can be achieved.
(1) Since the seismic isolation layer with laminated rubber was provided on the foundation of the building constructed on the foundation pillar, the seismic performance could be improved and the seismic isolation layer with laminated rubber Anti-vibration effect against train vibration can be enhanced by softening the rigidity in the vertical direction.
(2) Improve the vibration isolation effect by installing a viscoelastic damper in the base isolation layer to reduce the vibration amplification of the structure above the base isolation layer generated by softening the vertical rigidity of the base isolation layer be able to.
(3)建築物が駅施設を含む場合には、隣接してペデストリアンデッキ(歩行者専用の広場や通路)等の構造物が併設されている場合が多く、基礎免震構造の場合には隣接した構造物との境界部において地震時の相対変形を考慮した大規模な伸縮継ぎ目(エキスパンションジョイント)が必要となる。一方、中間層免震構造の場合、免震層より下部の変位は隣接構造物の変位と同程度のため小規模な伸縮継ぎ目で十分である点を考慮して、合理的な免震・除震手段を講じることができる。 (3) When a building includes a station facility, there are many cases where a structure such as a pedestrian deck (a pedestrian plaza or passage) is adjacent to the building. Large scale expansion joints (expansion joints) that take into account the relative deformation at the time of an earthquake are required at the boundary with the structure. On the other hand, in the case of an intermediate layer seismic isolation structure, considering that the displacement below the seismic isolation layer is the same as the displacement of the adjacent structure, a small expansion joint is sufficient. You can take tremors.
本発明の線路上空建築物の免震防振構造システムは、鉄道車両の通路として供するための、地中梁を設けない基礎杭に連結して配置される基礎柱と、駅施設を含む前記基礎柱上に構築され、かつ線路上空に構築される多層の建築物の基礎部の柱に配置される鉛直方向の剛性を柔らかくした積層ゴムを配置した免震層と、前記積層ゴムを配置した免震層の上下の梁の間に配置され、かつ滑り支承機構が組み込まれた粘弾性ダンパーとを具備する。よって、耐震性能を向上させるとともに、積層ゴムを配置した免震層の鉛直方向の剛性を柔らかくすることで、列車振動に対する防振効果を高める。また、免震層より上部の建築物の振動増幅を抑えるための粘弾性ダンパーを免震層に設置する。 The seismic isolation / vibration isolation system for a building above a railway track according to the present invention includes a foundation column connected to a foundation pile not provided with an underground beam and provided as a passage for a railway vehicle, and the foundation including a station facility. Base is built on the pillars, and arranged with the seismic isolation layer arranged the laminated rubber to soften the vertical stiffness disposed pillars of foundation of multilayer building is built over-track, the laminated rubber A viscoelastic damper disposed between the upper and lower beams of the seismic layer and incorporating a sliding bearing mechanism . Therefore, while improving seismic performance, the vibration isolation effect with respect to train vibration is enhanced by softening the vertical rigidity of the seismic isolation layer in which the laminated rubber is arranged. In addition, a viscoelastic damper is installed in the seismic isolation layer to suppress vibration amplification of the building above the seismic isolation layer.
以下、本発明の実施の形態について詳細に説明する。
図1は本発明の基本的な線路上空建築物の免震防振構造システムの原理を示す模式図である。
この図において、1は地中に設けられる基礎杭、2はこの基礎杭1に連結され地中から立ち上げられる基礎柱、3は列車4が通過する空間である。上記したように、地中に設けられる基礎杭1の間には地中梁は設けることができない。このような基礎上に例えば、多層の建築物5が構築される。ここでは、列車の通過に伴う振動を抑制するために、厚肉型積層ゴム6を建築物5の基部に配置した免震層を設けるようにしている。このように積層ゴム6を配置することにより、鉛直方向の剛性を柔らかくし、防振効果を高めることができる。
Hereinafter, embodiments of the present invention will be described in detail.
FIG. 1 is a schematic view showing the principle of a basic seismic isolation system for a building over a track according to the present invention.
In this figure, 1 is a foundation pile provided in the ground, 2 is a foundation pillar connected to the foundation pile 1 and raised from the ground, and 3 is a space through which a
図2はかかる積層ゴムによる防振効果(実験結果)を示す図であり、列車走行時の基礎からの建築物の梁中央への振動伝導度を示している。この図において、横軸は1/3オクターブバンド中心周波数(Hz)、縦軸は振動加速度レベル差(dB)を表し、■は本発明にかかる免震層(積層ゴム)を設けていない場合(非免震)、□は本発明にかかる免震層(積層ゴム)を設けた場合(免震)を示している。特に、鉄道による振動の主成分が63〜125Hzであるため、その周波数帯域での免震効果が著しくなるように構成している。 FIG. 2 is a diagram showing the vibration isolation effect (experimental result) of such a laminated rubber, and shows the vibration conductivity from the foundation to the center of the building beam during train travel. In this figure, the horizontal axis represents the 1/3 octave band center frequency (Hz), the vertical axis represents the vibration acceleration level difference (dB), and ■ indicates the case where the seismic isolation layer (laminated rubber) according to the present invention is not provided ( (Non-Seismic Isolation), □ indicates the case where a seismic isolation layer (laminated rubber) according to the present invention is provided (seismic isolation). In particular, since the main component of railway vibration is 63 to 125 Hz, the seismic isolation effect in the frequency band is remarkable.
図3は本発明の第1実施例を示す線路上空建築物の免震防振構造システムの模式図である。
この図において、11は地中に設けられる基礎杭、12は基礎杭11に連結された地中から立ち上げられる基礎柱、13は列車などが通過する空間であり、上記したように、地中に設けられる基礎杭11の間には地中梁は設けることができない。このような基礎の構造体上に例えば、建築物14が構築される。ここでは、列車の通過に伴う振動を抑制するために積層ゴム15を建築物14の基部に配置するとともに、建築物14の梁16と梁17との間の中央部には粘弾性ダンパー18を配置するようにしている。
FIG. 3 is a schematic diagram of a seismic isolation system for a building over a track showing the first embodiment of the present invention.
In this figure, 11 is a foundation pile provided in the ground, 12 is a foundation pillar raised from the ground connected to the
このように構成することにより、特に、基礎杭11の間隔が大きくなる場合に、上下の梁16,17の上下振動を有効に抑えることができる。
図4はこの第1実施例を施工した場合の粘弾性ダンパーによる防振効果(実験結果)を示す図であり、建築物の梁中央に粘弾性ダンパーを設けた場合を示している。この図において、横軸は1/3オクターブバンド中心周波数(Hz)、縦軸は振動加速度レベル差(dB)を表し、□は本発明にかかる粘弾性ダンパーを設けていない場合、■は本発明にかかる粘弾性ダンパーを設けた場合を示している。
By comprising in this way, especially when the space | interval of the
FIG. 4 is a diagram showing a vibration isolation effect (experimental result) by the viscoelastic damper when the first embodiment is constructed, and shows a case where a viscoelastic damper is provided at the center of the beam of the building. In this figure, the horizontal axis represents 1/3 octave band center frequency (Hz), the vertical axis represents vibration acceleration level difference (dB), □ indicates that the viscoelastic damper according to the present invention is not provided, and ■ indicates the present invention. The case where the viscoelastic damper concerning this is provided is shown.
図2と図4によって本発明の作用効果を明らかにすることができる。すなわち、図2と図4の縦軸は、基礎部(杭頭)と免震層上部梁中央部との振動加速度レベル差を示したもので、正が増幅、負が減衰を意味する。図2では一般的な鉄道振動で振動が最も大きくなる周波数帯の63〜125Hzにおいて、積層ゴムを設けた免震(本発明)のほうが積層ゴムを設けない非免震より減衰量が大きくなっており、本発明を実施することにより、防振の効果が顕著であることが示されている。ここで、本発明に用いられる積層ゴムの組成、構造および機能について述べると、通常の積層ゴムに比べて一層あたりのゴム厚を大きくして鉛直方向の剛性を低めることにより、建物の鉛直方向の固有振動数を下げて鉄道振動が卓越する周波数帯(概ね63〜125Hz)の振動を低減させる(上記非特許文献2参照)。 The operational effects of the present invention can be clarified with reference to FIGS. That is, the vertical axis of FIG. 2 and FIG. 4 shows the vibration acceleration level difference between the foundation (pile head) and the central part of the base isolation layer upper beam, and positive means amplification and negative means attenuation. In FIG. 2, in a frequency band of 63 to 125 Hz where the vibration is the largest in general railway vibration, the seismic isolation with the laminated rubber (the present invention) has a greater attenuation than the non-seismic isolation without the laminated rubber. Thus, it is shown that the effect of vibration isolation is remarkable by carrying out the present invention. Here, the composition, structure and function of the laminated rubber used in the present invention will be described. By increasing the rubber thickness per layer and lowering the vertical rigidity as compared with ordinary laminated rubber, The natural frequency is lowered to reduce the vibration in the frequency band (approximately 63 to 125 Hz) where the railway vibration is dominant (see Non-Patent Document 2 above).
一方、図4は本発明にかかるダンパーの効果を示したものであり、鉛直方向の振動が卓越する固有振動数における振動増幅を低減している。
本発明の粘弾性ダンパーの組成、構造および機能について述べると、粘弾性材料とは、粘性と弾性を有する高分子材料である(ここではジエン系粘弾性材料を使用)。粘弾性ダンパーは、粘弾性材料と金属を交互に積層して接着した構造を有し、粘弾性材料をせん断変形させることにより、振動エネルギーを熱エネルギーに変換して吸収する。
On the other hand, FIG. 4 shows the effect of the damper according to the present invention, in which the vibration amplification at the natural frequency where the vibration in the vertical direction is dominant is reduced.
The composition, structure and function of the viscoelastic damper of the present invention will be described. The viscoelastic material is a polymer material having viscosity and elasticity (here, a diene viscoelastic material is used). The viscoelastic damper has a structure in which a viscoelastic material and a metal are alternately laminated and bonded, and the vibrational energy is converted into thermal energy and absorbed by shear deformation of the viscoelastic material.
このような粘弾性ダンパーを用いることにより、特に、体感振動で問題となる10Hz付近の振動増幅の低減を図ることができる。
図5は本発明の第2実施例を示す線路上空建築物の免震防振構造システムの模式図である。
この実施例では、粘弾性ダンパー21は滑り支承22を組み込むようにしている。
By using such a viscoelastic damper, it is possible to reduce vibration amplification in the vicinity of 10 Hz, which is a problem particularly in body vibration.
FIG. 5 is a schematic diagram of a seismic isolation system for a building over a track showing a second embodiment of the present invention.
In this embodiment, the
図6は本発明にかかる滑り支承機構の例を示す図である。
この図において、31は梁、32はその梁31の表面に配置される滑り板(SUS板)、33は取付板、34は取付板33に固定される滑り材取付板、35はその滑り材取付板34の中央の下面に設けられる滑り材、36は滑り板(SUS板)32と滑り材取付板34との隙間である。
FIG. 6 is a view showing an example of a sliding support mechanism according to the present invention.
In this figure, 31 is a beam, 32 is a sliding plate (SUS plate) disposed on the surface of the
図6に示される滑り支承機構を参照しながら、滑り支承の具体的機構とその機能について説明する。
滑り支承は滑り材35と滑り板32により構成され〔ここでは滑り材35に四フッ化エチレン樹脂(PTFE)、滑り板32にSUS(ステンレス鋼板)を使用〕、大地震時に免震層が水平方向に変形すると、滑り材35が滑り板32上を摺動する。このように滑り支承を鉛直振動(列車振動)用の粘弾性ダンパーの下部または上部に設置することにより、大地震時に生ずる免震層の水平変形により粘弾性ダンパーを損傷させないようにし、また、粘弾性ダンパーが積層ゴムの水平挙動に影響を与えないようにする。
A specific mechanism and function of the sliding bearing will be described with reference to the sliding bearing mechanism shown in FIG.
The sliding bearing is composed of a sliding
建築物が駅施設を含む場合には、隣接してペデストリアンデッキ等の構造物が併設されている場合が多く、基礎免震構造の場合には隣接した構造物との境界部において地震時の相対変形を考慮した大規模な伸縮継ぎ目が必要となる。一方、中間層免震構造の場合、免震層より下部の変位は隣接構造物の変位と同程度のため小規模な伸縮継ぎ目で十分である点を考慮して、本発明は、上記したように、合理的な免震・除震手段を講じることができる。 When a building includes a station facility, there are many cases where a structure such as a pedestrian deck is adjacent to the building. A large-scale expansion seam considering deformation is required. On the other hand, in the case of an intermediate layer seismic isolation structure, the present invention is as described above in consideration that a small expansion joint is sufficient because the displacement below the base isolation layer is the same as the displacement of the adjacent structure. In addition, rational seismic isolation and seismic removal measures can be taken.
なお、本発明は上記実施例に限定されるものではなく、本発明の趣旨に基づき種々の変形が可能であり、これらを本発明の範囲から排除するものではない。 In addition, this invention is not limited to the said Example, Based on the meaning of this invention, a various deformation | transformation is possible and these are not excluded from the scope of the present invention.
本発明の線路上空建築物の免震防振構造システムは、線路上空に構築される高層のオフィスビルやマンションなどの免震防振機構として利用可能である。 The seismic isolation / vibration isolation system for buildings over railways according to the present invention can be used as a seismic isolation system for high-rise office buildings and apartments constructed over railways.
1,11 地中に設けられる基礎杭
2,12 地中から立ち上げられる基礎柱
3,13 列車が通過する空間
4 列車
5 多層の建築物
6,15 積層ゴム
14 建築物
16,17,31 梁
18,21 粘弾性ダンパー
22 滑り支承
32 滑り板(SUS板)
33 取付板
34 滑り材取付板
35 滑り材
36 隙間
DESCRIPTION OF
33
Claims (2)
(a)鉄道車両の通路として供するための、地中梁を設けない基礎杭に連結して配置される基礎柱と、
(b)駅施設を含む前記基礎柱上に構築され、かつ線路上空に構築される多層の建築物の基礎部の柱に配置される鉛直方向の剛性を柔らかくした積層ゴムを配置した免震層と、
(c)前記積層ゴムを配置した免震層の上下の梁の間に配置され、かつ滑り支承機構が組み込まれた粘弾性ダンパーとを具備することを特徴とする線路上空建築物の免震防振構造システム。 In the seismic isolation and vibration isolation structure system for buildings over the track where the track is laid at the bottom of the foundation of the building,
(A) a foundation pillar connected to a foundation pile not provided with underground beams to serve as a passage for a railway vehicle;
(B) Seismic isolation layer in which laminated rubber with softened vertical rigidity is arranged on the pillar of the foundation of a multi-layer building constructed on the foundation pillar including the station facility and constructed above the railway When,
(C) MenShinbo of the disposed between the upper and lower beams seismic isolation layer disposed laminated rubber, and over-track building, characterized in that it comprises a viscoelastic dampers sliding bearing mechanism is incorporated Vibration structure system.
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CN103174234A (en) * | 2013-03-11 | 2013-06-26 | 浙江海天建设集团有限公司 | Construction method of construction damping device |
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JP5377890B2 (en) * | 2007-06-26 | 2013-12-25 | 旭化成ホームズ株式会社 | Seismic isolation structure |
JP2011102530A (en) * | 2009-10-15 | 2011-05-26 | Ohbayashi Corp | Vibration control building |
JP2012127140A (en) * | 2010-12-16 | 2012-07-05 | Ohbayashi Corp | Base isolation structure of railroad station, construction method thereof, and replacement method of base isolation device at railroad station |
JP7009725B2 (en) * | 2017-02-08 | 2022-01-26 | 株式会社竹中工務店 | Construction method of seismic isolation structure |
JP7066944B2 (en) * | 2017-04-03 | 2022-05-16 | 株式会社竹中工務店 | Structure |
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JPH01169022A (en) * | 1987-12-25 | 1989-07-04 | Mitsui Constr Co Ltd | Support structure of artificial ground on traffic facility means |
JPH0363361A (en) * | 1989-07-31 | 1991-03-19 | Ohbayashi Corp | Response control device |
JP2000220316A (en) * | 1999-02-01 | 2000-08-08 | East Japan Railway Co | Building vibration-control device and vibrastion-control method for building |
JP2002235454A (en) * | 2001-02-07 | 2002-08-23 | Toyo Tire & Rubber Co Ltd | Vibration damper device |
JP2003328585A (en) * | 2002-05-08 | 2003-11-19 | Takenaka Komuten Co Ltd | Vibration control structure for building having piloti |
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JPH01169022A (en) * | 1987-12-25 | 1989-07-04 | Mitsui Constr Co Ltd | Support structure of artificial ground on traffic facility means |
JPH0363361A (en) * | 1989-07-31 | 1991-03-19 | Ohbayashi Corp | Response control device |
JP2000220316A (en) * | 1999-02-01 | 2000-08-08 | East Japan Railway Co | Building vibration-control device and vibrastion-control method for building |
JP2002235454A (en) * | 2001-02-07 | 2002-08-23 | Toyo Tire & Rubber Co Ltd | Vibration damper device |
JP2003328585A (en) * | 2002-05-08 | 2003-11-19 | Takenaka Komuten Co Ltd | Vibration control structure for building having piloti |
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CN103174234A (en) * | 2013-03-11 | 2013-06-26 | 浙江海天建设集团有限公司 | Construction method of construction damping device |
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