JP4600144B2 - Complex seismic isolation bearing - Google Patents
Complex seismic isolation bearing Download PDFInfo
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- JP4600144B2 JP4600144B2 JP2005142316A JP2005142316A JP4600144B2 JP 4600144 B2 JP4600144 B2 JP 4600144B2 JP 2005142316 A JP2005142316 A JP 2005142316A JP 2005142316 A JP2005142316 A JP 2005142316A JP 4600144 B2 JP4600144 B2 JP 4600144B2
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- rubber
- viscoelastic
- seismic isolation
- laminate
- isolation bearing
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- Buildings Adapted To Withstand Abnormal External Influences (AREA)
- Vibration Prevention Devices (AREA)
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Description
この発明は複合免震支承体に関し、さらに詳しくは、変形後の歪みの回復を早めると共に、振動の速度に応じて減衰効果を向上させるようにした複合免震支承体に関する。 The present invention relates to a composite seismic isolation bearing, and more particularly to a composite seismic isolation bearing that accelerates the recovery of distortion after deformation and improves the damping effect in accordance with the speed of vibration.
地震発生時の建物等の構造物の揺れや倒壊などによる被害を最小限に抑えるための免震支承体として、複数のゴム層と鋼板とを上下方向に交互に積層させたゴム積層体の中央に設けられた穴に鉛の棒を挿入して、塑性変形による減衰機能を付与した弾性支承体が知られている。しかしながら、このような形態の弾性支承体では、大地震の際にゴム積層体内の鋼板が鉛棒を損傷させ、繰り返しの変形によって破断し易くなるという欠点があった。 The center of a rubber laminate in which multiple rubber layers and steel plates are alternately laminated in the vertical direction as a seismic isolation bearing to minimize damage caused by shaking or collapse of structures such as buildings during an earthquake. 2. Description of the Related Art An elastic bearing body is known in which a lead rod is inserted into a hole provided in a metal plate to provide a damping function by plastic deformation. However, the elastic bearing body having such a configuration has a drawback that the steel plate in the rubber laminate damages the lead bar during a large earthquake and is easily broken by repeated deformation.
このような観点から、ゴム積層体の中央に設けられた穴に粘性体を充填させて、水平方向の振動に対する減衰機能を付与するようにした提案が幾つかある(例えば、特許文献1、2参照)。しかしながら、何れの提案にあっても、変形後の歪みの回復機能が充分に得られず、かつ減衰特性の速度依存性が低いことから、大地震に対する免震支承体としては、未だ満足し得るものではなかった。
この発明の目的は、上述する問題点を解消するもので、変形後の歪みの回復を早めると共に、振動の速度に応じて減衰効果を向上させるようにした複合免震支承体を提供することにある。 An object of the present invention is to solve the above-mentioned problems, and to provide a composite seismic isolation support body that accelerates recovery of distortion after deformation and improves the damping effect according to the speed of vibration. is there.
上記目的を達成するためのこの発明の複合免震支承体は、複数のゴム層と鋼板とを上下方向に交互に積層させたゴム積層体と、粘弾性ゴムとを同一平面上に並列に配置すると共に、前記ゴム積層体と前記粘弾性ゴムとの上下面を支承板により挟持した複合免震支承体において、前記ゴム積層体を構成するゴム層に等価粘性減衰定数が0.03〜0.05のゴムを使用し、前記粘弾性ゴムに等価粘性減衰定数が0.3〜0.5のゴムを使用すると共に、前記粘弾性ゴムの全容積が前記ゴム積層体の全容積に対して占める割合を120%以上、200%以下にしたことを要旨とする。 In order to achieve the above object, the composite seismic isolation bearing of the present invention comprises a rubber laminate in which a plurality of rubber layers and steel plates are alternately laminated in the vertical direction and a viscoelastic rubber arranged in parallel on the same plane. In addition, in the composite seismic isolation bearing body in which the upper and lower surfaces of the rubber laminate and the viscoelastic rubber are sandwiched by a bearing plate, the equivalent viscous damping constant of the rubber layer constituting the rubber laminate is 0.03 to 0. 05 , rubber having an equivalent viscosity damping constant of 0.3 to 0.5 is used for the viscoelastic rubber, and the total volume of the viscoelastic rubber occupies the total volume of the rubber laminate. The gist is that the ratio is 120% or more and 200% or less .
この発明によれば、免震支承体をゴム積層体と粘弾性ゴムとを同一の平面上に並列に配置したので、縦方向には高いばね定数が、横方向には低いばね定数が備わるようになり、地震による建造物の振動を効率よく吸収することができる。さらに、ゴム積層体を構成するゴムの等価粘性減衰定数を0.03〜0.05とし、粘弾性ゴムの等価粘性減衰定数を0.3〜0.5とし、かつ粘弾性ゴムの全容積がゴム積層体の全容積に対して占める割合を120%以上、200%以下にしたので、変形後の歪みの回復を早めると共に、減衰特性の速度依存性を高めて、振動の速度に応じて減衰効果を向上させることができる。 According to this invention, since the seismic isolation bearing body has the rubber laminate and the viscoelastic rubber arranged in parallel on the same plane, a high spring constant is provided in the vertical direction and a low spring constant is provided in the horizontal direction. Therefore, the vibration of the building due to the earthquake can be efficiently absorbed. Further, the equivalent viscous damping constant of the rubber constituting the rubber laminate is 0.03 to 0.05 , the equivalent viscous damping constant of the viscoelastic rubber is 0.3 to 0.5 , and the total volume of the viscoelastic rubber is Occupies 120% or more and 200% or less of the total volume of the rubber laminate, thereby speeding up the recovery of distortion after deformation and increasing the speed dependency of the damping characteristics, depending on the vibration speed. The attenuation effect can be improved.
以下、この発明の構成につき添付の図面を参照しながら詳細に説明する。 Hereinafter, the configuration of the present invention will be described in detail with reference to the accompanying drawings.
図1はこの発明の実施形態による複合免震支承体の一例を示す断面図、図2は図1のX−X矢視断面図である。 1 is a cross-sectional view showing an example of a composite seismic isolation bearing according to an embodiment of the present invention, and FIG. 2 is a cross-sectional view taken along the line XX of FIG.
図1及び図2において複合免震支承体1は、複数のゴム層2と鋼板3とを上下方向に交互に積層させたゴム積層体4と粘弾性ゴム5とを同一平面上に並列に配置すると共に、これらゴム積層体4と粘弾性ゴム5との上下面を支承板6a、6bにより挟持している。なお、図中7は粘弾性ゴム5の周囲を被覆するカバ−ゴム層を示している。そして、ゴム積層体4を構成するゴム層2には等価粘性減衰定数が0.03〜0.05のゴムが使用され、粘弾性ゴム5には等価粘性減衰定数が0.3〜0.5のゴムが使用されている。
1 and 2, the composite seismic isolation bearing body 1 includes a
このようにゴム積層体4と粘弾性ゴム5とを同一平面上に並列に配置したので、複合免震支承体1の縦方向にはゴム積層体4により高いばね定数が備えられ、横方向には粘弾性ゴム5により低いばね定数が備わるようになり、地震による建造物の振動を効率よく吸収することができる。さらに、ゴム積層体4を構成するゴムの等価粘性減衰定数を0.03〜0.05とし、粘弾性ゴム5の等価粘性減衰定数を0.3〜0.5としたので、変形後の歪みの回復を早めると共に、減衰特性の速度依存性を高めて、振動の速度に応じて減衰効果を向上させることができる。
Thus, since the
なお、この発明において、ゴムの等価粘性減衰定数とは、ゴムの非線形復元力特性を、等価な線形復元力と減衰に置き換えたときの減衰定数をいい、この減衰定数は、出願人の開示に係る特開2002−20546号公報に記載のせん断特性値(Heq)と同等にして求めることができ、せん断試験機にて、ゴム積層体及び粘弾性ゴムへの鉛直荷重をそれぞれ10MPa、0MPa、変形周波数0.5Hz、100%歪みとして求めた等価粘性減衰定数をいう。 In the present invention, the equivalent viscous damping constant of rubber refers to a damping constant obtained by replacing the nonlinear restoring force characteristic of rubber with an equivalent linear restoring force and damping. This damping constant is disclosed in the applicant's disclosure. It can be obtained in the same manner as the shear characteristic value (Heq) described in JP-A-2002-20546, and the vertical load on the rubber laminate and the viscoelastic rubber is 10 MPa and 0 MPa, respectively, with a shear tester. Equivalent viscous damping constant obtained with a frequency of 0.5 Hz and 100% strain.
ゴム積層体4を構成するゴムの等価粘性減衰定数が0.05超ではゴム積層体としての力学特性や温度依存性を得ることが難しくなる。また、粘弾性ゴム5の等価粘性減衰定数が0.3未満では複合免震支承体としての減衰性を充分に確保することが難しくなる。
If the equivalent viscosity damping constant of the rubber constituting the
図1及び図2では、複合免震支承体1の中央に円筒状に形成したゴム積層体4を配置し、このゴム積層体4の周囲に粘弾性ゴム5を配置した場合を示したが、ゴム積層体4の形態及び粘弾性ゴム5との配置関係はこれに限られることなく、複合免震支承体1の中央に粘弾性ゴム5を配置し、粘弾性ゴム5の周囲にゴム積層体4を配置することができる。
1 and 2, the rubber laminated
この発明の複合免震支承体1において、粘弾性ゴム5の複合免震支承体1の中に占める割合は、複合免震支承体1の変形歪みの回復速度及び減衰特性の速度依存性を支配することになる。したがって、この発明では、粘弾性ゴム5の全容積がゴム積層体4の全容積に対して占める割合を120%以上、200%以下となるように調整している。
In the composite seismic isolation bearing 1 of the present invention, the proportion of the
この発明において、上述するゴム積層体4を構成するゴム層には天然ゴムを使用し、粘弾性ゴム5には熱可塑ゴム又はジエン系ゴムをベースとしたカーボンブラック充填ゴムを使用するとよい。なお、カバ−ゴム層7には耐候性及び耐摩耗性に優れたクロロプレンゴムを使用するとよい。
In the present invention, natural rubber may be used for the rubber layer constituting the
上述するように、この発明の複合免震支承体は、免震支承体をゴム積層体と粘弾性ゴムとを同一平面上に並列に配置すると共に、ゴム積層体を構成するゴムと粘弾性ゴムの等価粘性減衰定数をそれぞれ特定し、かつ粘弾性ゴムの全容積がゴム積層体の全容積に対して占める割合を特定することにより、変形後の歪みの回復を早めると共に、減衰特性の速度依存性を高めるようにしたもので、振動の速度に応じて減衰効果が向上することから、大地震に対する建造物の免震支承体として好ましく適用することができる。 As described above, the composite seismic isolation bearing according to the present invention includes a rubber laminate and a viscoelastic rubber arranged in parallel on the same plane, and the rubber and the viscoelastic rubber constituting the rubber laminate. By specifying the equivalent viscous damping constant of each and specifying the ratio of the total volume of the viscoelastic rubber to the total volume of the rubber laminate , the strain recovery after deformation is accelerated and the speed dependence of the damping characteristics Since the damping effect is improved according to the speed of vibration, it can be preferably applied as a seismic isolation support for a building against a large earthquake.
1 複合免震支承体
2 ゴム層
3 鋼板
4 ゴム積層体
5 粘弾性ゴム
6a、6b 支承板
7 カバ−ゴム層
DESCRIPTION OF SYMBOLS 1 Composite seismic isolation bearing body 2 Rubber layer 3
Claims (2)
前記ゴム積層体を構成するゴム層に等価粘性減衰定数が0.03〜0.05のゴムを使用し、前記粘弾性ゴムに等価粘性減衰定数が0.3〜0.5のゴムを使用すると共に、前記粘弾性ゴムの全容積が前記ゴム積層体の全容積に対して占める割合を120%以上、200%以下にした複合免震支承体。 A rubber laminate in which a plurality of rubber layers and steel plates are alternately laminated in the vertical direction and a viscoelastic rubber are arranged in parallel on the same plane, and upper and lower surfaces of the rubber laminate and the viscoelastic rubber are arranged In a composite seismic isolation bearing sandwiched between bearing plates,
The rubber layer equivalent viscous damping constant constituting a rubber laminate using the rubber 0.03-0.05, equivalent viscous damping constant to the viscoelastic rubber to use rubber 0.3 to 0.5 In addition, a composite seismic isolation bearing in which the ratio of the total volume of the viscoelastic rubber to the total volume of the rubber laminate is 120% or more and 200% or less .
The composite seismic isolation bearing according to claim 1, wherein the rubber layer constituting the rubber laminate is made of natural rubber, and the viscoelastic rubber is made of carbon black-filled rubber based on thermoplastic rubber or diene rubber.
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JP2005142316A JP4600144B2 (en) | 2005-05-16 | 2005-05-16 | Complex seismic isolation bearing |
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JP4600144B2 true JP4600144B2 (en) | 2010-12-15 |
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Families Citing this family (6)
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JP5333099B2 (en) * | 2009-09-11 | 2013-11-06 | 横浜ゴム株式会社 | Laminated rubber bearing |
CN105421225B (en) * | 2015-11-20 | 2017-03-22 | 刘策 | Bridge damping support |
CN106436562B (en) * | 2016-11-07 | 2017-12-15 | 济南大学 | Annulus damper vibration absorption and isolation support |
CN109113408A (en) * | 2018-10-10 | 2019-01-01 | 徐赵东 | It is a kind of with multi-direction anti-pulling, the multidimensional of pretightning force function every vibration absorber and its every oscillation damping method |
CN109629405B (en) * | 2018-12-28 | 2021-02-12 | 同济大学 | Large-deformation rubber support with combined cross section and reduced shear rigidity |
CN109629404B (en) * | 2018-12-28 | 2021-02-12 | 同济大学 | Large-deformation rubber support with inhaul cable limiting combined section and reduced shear rigidity |
Citations (7)
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JPS641843A (en) * | 1987-06-24 | 1989-01-06 | Bridgestone Corp | Base isolation structure |
JPH03204420A (en) * | 1989-12-28 | 1991-09-06 | Sumitomo Rubber Ind Ltd | Laminated rubber supporter |
WO1993004301A1 (en) * | 1991-08-23 | 1993-03-04 | Sumitomo Rubber Industries Ltd. | Laminated rubber support and method of designing the same |
JPH0530586U (en) * | 1991-09-26 | 1993-04-23 | 昭和電線電纜株式会社 | Seismic isolation isolators |
JP2002061706A (en) * | 2000-08-21 | 2002-02-28 | Showa Electric Wire & Cable Co Ltd | Damper |
JP2002340089A (en) * | 2001-05-18 | 2002-11-27 | Bridgestone Corp | Rubber composition for base isolation and base isolating structure |
JP2004035648A (en) * | 2002-07-01 | 2004-02-05 | Yokohama Rubber Co Ltd:The | Vibration damping elastomer composition for building |
Family Cites Families (2)
Publication number | Priority date | Publication date | Assignee | Title |
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JP2570341B2 (en) * | 1987-04-06 | 1997-01-08 | 株式会社ブリヂストン | Seismic isolation structure |
JP2615639B2 (en) * | 1987-07-27 | 1997-06-04 | 株式会社ブリヂストン | Seismic isolation structure |
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Patent Citations (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS641843A (en) * | 1987-06-24 | 1989-01-06 | Bridgestone Corp | Base isolation structure |
JPH03204420A (en) * | 1989-12-28 | 1991-09-06 | Sumitomo Rubber Ind Ltd | Laminated rubber supporter |
WO1993004301A1 (en) * | 1991-08-23 | 1993-03-04 | Sumitomo Rubber Industries Ltd. | Laminated rubber support and method of designing the same |
JPH0530586U (en) * | 1991-09-26 | 1993-04-23 | 昭和電線電纜株式会社 | Seismic isolation isolators |
JP2002061706A (en) * | 2000-08-21 | 2002-02-28 | Showa Electric Wire & Cable Co Ltd | Damper |
JP2002340089A (en) * | 2001-05-18 | 2002-11-27 | Bridgestone Corp | Rubber composition for base isolation and base isolating structure |
JP2004035648A (en) * | 2002-07-01 | 2004-02-05 | Yokohama Rubber Co Ltd:The | Vibration damping elastomer composition for building |
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