JP2008031789A - Structure of column leg portion having energy absorbing effect - Google Patents

Structure of column leg portion having energy absorbing effect Download PDF

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JP2008031789A
JP2008031789A JP2006208796A JP2006208796A JP2008031789A JP 2008031789 A JP2008031789 A JP 2008031789A JP 2006208796 A JP2006208796 A JP 2006208796A JP 2006208796 A JP2006208796 A JP 2006208796A JP 2008031789 A JP2008031789 A JP 2008031789A
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base
foundation
column
pillar
cylindrical body
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JP4971714B2 (en
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Takeshi Hiramatsu
平松  剛
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Daiwa House Industry Co Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a structure of a column leg portion capable of effectively restricting any increase in a deformation between layers of a building. <P>SOLUTION: In the structure having the column leg portion of a column 4 erected on a sill 3 comprising a long member placed through a pieced foundation packing 2, an outer cylindrical body 7 is directed in an up and down direction and then installed underneath the column 4 and integrally combined with the sill. An axial member 6 is arranged in an axial state within the outer cylindrical body and is installed integrally with the sill 1. A viscoelastic substance 8 is filled in an annular space between a core portion of the outer cylindrical body 7 and a peripheral portion of the axial member 6; and the viscoelastic substance 8 is deformed by a shear by means of a relative displacement in upper and lower directions between the outer cylindrical body 7 and the axial member 6, thereby absorbing its energy by the relative displacement. <P>COPYRIGHT: (C)2008,JPO&INPIT

Description

本発明は、エネルギー吸収作用を行う柱脚部の構造に関する。   The present invention relates to a structure of a column base portion that performs an energy absorbing action.

例えば木造建物において、図4(イ)(ロ)に示すように、コンクリート布基礎51の上に、弾力性を有する樹脂製のピース状をした基礎パッキン52…を介して長物からなる木製土台53を設置し、該土台53の上に木製柱54…を立設した柱脚部の構造は、従来より知られている。
特開2003−147992号公報
For example, in a wooden building, as shown in FIGS. 4 (A) and 4 (B), a wooden base 53 made of a long material is provided on a concrete cloth foundation 51 via a base packing 52 made of a resin piece having elasticity. A structure of a column base portion in which a wooden column 54 is erected on the base 53 is conventionally known.
Japanese Patent Laid-Open No. 2003-147992

しかしながら、この構造では、地震等により水平力が作用すると、柱脚部に引抜き力と圧縮力とが交互に作用し、引抜き力の作用で土台53に上に凸の曲げ変形を生じたり、また、圧縮力の作用で図4(ロ)に示すように柱下の基礎パッキン52が圧潰変形をして土台53に下に凸の曲げ変形を生じたりして、それが、建物の層間変形を増大させてしまう要因になるという問題がある。   However, in this structure, when a horizontal force is applied due to an earthquake or the like, a pulling force and a compressive force are alternately applied to the column base, and the base 53 is bent upwardly due to the pulling force. As shown in FIG. 4 (b), the base packing 52 under the column is crushed and deformed downward on the base 53 by the action of the compressive force, which causes the interlayer deformation of the building. There is a problem that it becomes an increase factor.

一方、柱下の基礎パッキン52として、エネルギー吸収作用を行う制振基礎パッキンを用いたものもあるが(特開2003−147992号公報)、この基礎パッキンは、水平方向の振動に対してせん断変形をしてエネルギーを吸収するものであり、上下方向の動きに対しては、せん断変形をすることができず、エネルギーの有効的な吸収を期待できず、そのため、このような基礎パッキンを用いても、建物の層間変形の増大を抑制することは難しい。   On the other hand, as the foundation packing 52 under the pillar, there is one using a damping foundation packing that performs energy absorption (Japanese Patent Laid-Open No. 2003-147992). However, this foundation packing is subjected to shear deformation against horizontal vibration. It absorbs energy by moving it up and down, and it can not be sheared for vertical movement, so it can not expect effective absorption of energy. Therefore, using such a basic packing, However, it is difficult to suppress the increase in interlayer deformation of the building.

本発明は、上記のような問題点に鑑み、建物の層間変形の増大を効果的に抑制することができる柱脚部の構造を提供することを課題とする。   This invention makes it a subject to provide the structure of the column base part which can suppress the increase in the interlayer deformation | transformation of a building effectively in view of the above problems.

上記の課題は、基礎の上に、ピース状の基礎パッキンを介して長物からなる土台が設置され、該土台の上に柱が立設された柱脚部の構造において、
前記柱下の土台部に、外筒体と該外筒体の内部に突出する軸体とのいずれか一方が上下方向に向けられて土台と一体化されて備えられると共に、もう一方が基礎と一体化されて備えられ、かつ、前記外筒体の内周部と軸体の外周部との間の環状空間部に粘弾性体が設置され、外筒体と軸体との上下方向の相対変位により前記粘弾性体がせん断変形をしてエネルギーを吸収するようになされていることを特徴とする柱脚部の構造(第1発明)によって解決される。
In the structure of the column base in which the above-mentioned problem is provided on a foundation, a base made of a long material is installed via a piece-shaped foundation packing, and a column is erected on the foundation.
The base part under the pillar is provided with either one of the outer cylinder and the shaft projecting inside the outer cylinder oriented in the vertical direction and integrated with the base, and the other is the foundation. A viscoelastic body is provided in an annular space between the inner peripheral portion of the outer cylindrical body and the outer peripheral portion of the shaft body, and the vertical relationship between the outer cylindrical body and the shaft body is provided. This is solved by the structure of the column base (first invention), wherein the viscoelastic body is subjected to shear deformation to absorb energy by displacement.

この構造では、地震等により水平力が作用して柱脚部に引抜き力と圧縮力とが交互に作用し、引抜き力によって土台に上に凸の曲げ変形を生じようとすると、粘弾性体がせん断変形をしてエネルギーを吸収し、建物の層間変形の増大を効果的に抑制することができる。   In this structure, when a horizontal force is applied due to an earthquake or the like, a pulling force and a compressive force are alternately applied to the column base, and if an upward bending deformation is generated on the base by the pulling force, the viscoelastic body is Shear deformation can be absorbed and energy can be absorbed, and an increase in interlayer deformation of the building can be effectively suppressed.

また、柱下の土台部の下に弾力性を有する基礎パッキンが備えられていたり、あるいは、柱下の土台の下が空隙部であったりして、圧縮力によって土台に下に凸の曲げ変形を生じようとする場合には、粘弾性体がせん断変形をしてエネルギーを吸収し、建物の層間変形の増大を効果的に抑制することができる。   In addition, elastic foundation packing is provided under the base part under the pillar, or there is a gap under the base under the pillar, and the bending deformation that protrudes downward on the base by compressive force When it is going to produce, a viscoelastic body carries out a shear deformation | transformation and absorbs energy, and can suppress the increase in the interlayer deformation | transformation of a building effectively.

第1発明において、前記軸体と外筒体のいずれか一方に、柱と土台を連結する連結手段が備えられ、該連結手段によって土台と柱とを連結することにより、該一方が土台と一体化される構造になっているのもよい(第2発明)。   In the first invention, either one of the shaft body and the outer cylindrical body is provided with a connecting means for connecting the pillar and the base, and the base is integrated with the base by connecting the base and the pillar by the connecting means. It is also possible to have a structure that can be realized (second invention).

この構造では、土台に対する軸体と外筒体のいずれか一方の一体化を、連結手段により土台と柱とを連結するだけで実現することができ、土台に対する該一方の一体化と、土台と柱の連結とを、施工能率良く行うことができる。   In this structure, the integration of either the shaft body or the outer cylindrical body with respect to the base can be realized simply by connecting the base and the pillar by the connecting means. The columns can be connected with good construction efficiency.

第1、第2発明において、前記基礎パッキンが、弾力性のない硬質材からなり、柱直下の土台部と基礎との間に介設されているのもよい(第3発明)。   In the first and second inventions, the foundation packing may be made of a hard material having no elasticity, and may be interposed between a base portion and a foundation directly under a pillar (third invention).

この場合は、地震等により水平力が作用して柱脚部に引抜き力と圧縮力とが交互に作用し、圧縮力によって土台に下に凸の曲げ変形を生じようとすると、それを基礎パッキンが阻止するように働き、それによって、建物の層間変形の増大を効果的に抑制することができる。もちろん、引抜き力によって土台に上に凸の曲げ変形を生じようとすると、粘弾性体がせん断変形をしてエネルギーを吸収し、建物の層間変形の増大を効果的に抑制することができる。   In this case, if a horizontal force is applied due to an earthquake or the like and a pulling force and a compressive force are alternately applied to the column base, and an attempt is made to cause a downward bending deformation on the base due to the compressive force, it is applied to the foundation packing. Can prevent the increase in the interlayer deformation of the building. Of course, if an upwardly convex bending deformation is generated on the base by the pulling force, the viscoelastic body shears and absorbs energy, and the increase in interlayer deformation of the building can be effectively suppressed.

また、上記の課題は、基礎の上に、ピース状の基礎パッキンを介して長物からなる土台が設置され、該土台の上に柱が立設された柱脚部の構造において、
上下方向に相対変位に対してエネルギーを有効的に吸収するエネルギー吸収手段が備えられ、該エネルギー吸収手段の一方の継ぎ手が前記柱下の土台部と一体化されて備えられると共に、もう一方の継ぎ手が基礎と一体化されていることを特徴とする柱脚部の構造(第4発明)によっても、同様に解決される。
In addition, in the structure of the column base in which the above-described problem is set up on a foundation, a base made of a long material is provided via a piece-like foundation packing, and a column is erected on the foundation.
Energy absorbing means for effectively absorbing energy relative to a relative displacement in the vertical direction is provided, and one joint of the energy absorbing means is provided integrally with the base portion under the pillar, and the other joint This is similarly solved by the structure of the column base (fourth invention) characterized in that is integrated with the foundation.

即ち、上下方向エネルギー吸収手段は、軸体と外筒体と粘弾性体とからなるものに限られるものではなく、縦向きに備えさせたシリンダー型などの粘性体ダンパーであってもよいし、摩擦式のダンパーであってもよいし、上下方向に相対変位に対してエネルギーを有効的に吸収することができる各種エネルギー吸収手段が用いられてよい。   That is, the vertical energy absorbing means is not limited to a shaft, outer cylinder, and viscoelastic body, and may be a viscous damper such as a cylinder type provided in a vertical orientation, A friction-type damper may be used, and various energy absorbing means capable of effectively absorbing energy with respect to relative displacement in the vertical direction may be used.

なお、第4発明において、エネルギー吸収手段の継ぎ手のいずれか一方に、柱と土台を連結する連結手段が備えられ、該連結手段によって土台と柱とを連結することにより、該一方が土台と一体化される構造になっている場合(第5発明)は、土台に対する前記一方の一体化を、連結手段により土台と柱とを連結するだけで実現することができ、土台に対する該一方の一体化と、土台と柱の連結とを、施工能率良く行うことができる。   In the fourth invention, either one of the joints of the energy absorbing means is provided with a connecting means for connecting the pillar and the base, and the base is integrated with the base by connecting the base and the pillar by the connecting means. (5th invention), the one integration with the base can be realized by simply connecting the base and the pillar by the connecting means, and the one integration with the base. And the connection between the foundation and the pillar can be performed efficiently.

また、第4、第5発明において、前記基礎パッキンが、弾力性のない硬質材からなり、柱直下の土台部と基礎との間に介設されている場合(第6発明)は、地震等により水平力が作用して柱脚部に引抜き力と圧縮力とが交互に作用した場合に、土台に下に凸の曲げ変形を生じさせようとするのを基礎パッキンが阻止するように働き、それによって、建物の層間変形の増大を効果的に抑制することができる。もちろん、引抜き力によって土台に上に凸の曲げ変形を生じようとすると、エネルギー吸収手段がエネルギーを吸収し、建物の層間変形の増大を効果的に抑制することができる。   Further, in the fourth and fifth inventions, when the foundation packing is made of a hard material having no elasticity and is interposed between the base portion and the foundation directly under the pillar (sixth invention), an earthquake or the like When the horizontal force acts and the pulling force and compressive force act alternately on the column base, it works to prevent the foundation packing from trying to cause a convex bending deformation downward on the base, Thereby, an increase in the interlayer deformation of the building can be effectively suppressed. Of course, if an upward convex bending deformation is generated on the base by the pulling force, the energy absorbing means absorbs the energy, and the increase in the interlayer deformation of the building can be effectively suppressed.

本発明は、以上のとおりのものであるから、建物の層間変形の増大を効果的に抑制することができる。   Since the present invention is as described above, an increase in interlayer deformation of a building can be effectively suppressed.

次に、本発明の実施最良形態を図面に基づいて説明する。   Next, the best mode for carrying out the present invention will be described with reference to the drawings.

図1に示す第1実施形態の柱脚部の構造において、1はコンクリート布基礎、2はピース状の基礎パッキン、3は長物からなる木製土台、4は木製柱、5は上下方向エネルギー吸収手段である。   In the structure of the column base part of the first embodiment shown in FIG. 1, 1 is a concrete cloth foundation, 2 is a piece-shaped foundation packing, 3 is a long wooden base, 4 is a wooden column, 5 is a vertical energy absorbing means It is.

基礎パッキン2は、弾力性のない硬質材、例えば鉄系金属材などからなっていて、柱4の直下位置において土台3と基礎1との間に介設されている。   The foundation packing 2 is made of a hard material having no elasticity, such as an iron-based metal material, and is interposed between the base 3 and the foundation 1 at a position directly below the pillar 4.

上下方向エネルギー吸収手段5は、軸体6と外筒体7とを備え、軸体6は外筒体7の内部に同軸状に配置され、軸体6の外周部と外筒体7の内周部との間の環状空間部に粘弾性体8が環状に設置されて、外筒体7と軸体6とが軸線方向に相対変位をすると、粘弾性体8がせん断変形をしてエネルギーの吸収を行うようになされたものからなっている。   The vertical energy absorbing means 5 includes a shaft body 6 and an outer cylinder body 7. The shaft body 6 is coaxially disposed inside the outer cylinder body 7, and the outer peripheral portion of the shaft body 6 and the inner cylinder body 7 are arranged inside the outer cylinder body 7. When the viscoelastic body 8 is annularly installed in the annular space between the circumference and the outer cylindrical body 7 and the shaft body 6 are relatively displaced in the axial direction, the viscoelastic body 8 undergoes shear deformation and energy. It is made up of what was made to absorb.

本実施形態では、軸体6はエネルギー吸収手段5の一方の継ぎ手を構成するものとして、上下方向に向けられ、基礎1側に、基礎コンクリートの打設時に埋込み状態にされることなどで一体化されている。   In the present embodiment, the shaft body 6 constitutes one joint of the energy absorbing means 5 and is oriented in the vertical direction, and is integrated by being embedded in the foundation 1 side when the foundation concrete is placed. Has been.

また、外筒体7は、同じく上下方向に向けられて、土台3と一体化されるが、そのための手段として、次のような構造が採用されている。即ち、外筒体7は、上端を閉じられた有天の筒体からなっており、天部中心部には、外筒体の外周サイズよりも外周サイズの小さい、連結手段としてのホゾパイプ9が、エネルギー吸収手段のもう一方の継ぎ手を構成するものとして一体的に備えられており、該ホゾパイプ9には、土台3を連結する第1ドリフトピン通孔11と、柱4を連結する第2ドリフトピン通孔12とが、高さ位置を互いに異ならせて備えられている。   Further, the outer cylinder body 7 is also oriented in the vertical direction and integrated with the base 3. The following structure is adopted as means for that purpose. In other words, the outer cylinder 7 is a celestial cylinder whose upper end is closed, and a hozo pipe 9 as a connecting means having a smaller outer peripheral size than the outer cylindrical size is provided at the center of the top. And a second drift for connecting the pillar 4 and the first drift pin through hole 11 for connecting the base 3 to the hozo pipe 9. The pin through holes 12 are provided at different height positions.

また、土台3には、上下方向に貫通の下向き段13a付きの孔13が設けられ、該段付き孔13は、段13aを挟む下側の径大孔部13bを外筒体収容孔部とし、段13aを挟む上側の径小孔部13cをホゾパイプ通孔部とし、段13aを外筒体当接部としたものからなっていて、ホゾパイプ9付きの外筒体7を下にし、上方から土台3を降ろしていくことで、ホゾパイプ9が段付き孔13を貫通して土台3の上方に突出し、外筒体7が段付き孔13の外筒体収容孔部13b内に収容され、外筒体7の上端部が段13aに当接して上下方向において位置決めされるようになされている。   Further, the base 3 is provided with a hole 13 with a downward step 13a penetrating in the vertical direction, and the stepped hole 13 has a lower large-diameter hole 13b sandwiching the step 13a as an outer cylinder housing hole. The upper small-diameter hole portion 13c sandwiching the step 13a is a hozo pipe through-hole portion, and the step 13a is an outer cylinder abutting portion, with the outer cylinder body 7 with the hozo pipe 9 facing downward, By lowering the base 3, the hozo pipe 9 penetrates the stepped hole 13 and protrudes above the base 3, and the outer cylindrical body 7 is received in the outer cylindrical body receiving hole 13 b of the stepped hole 13. The upper end portion of the cylindrical body 7 is in contact with the step 13a so as to be positioned in the vertical direction.

また、柱4には、下面中央部に開口するホゾパイプ通孔14が設けられ、上記のようにして土台3を貫通して上方に突出したホゾパイプ9の上方より、柱4を降ろしていくことで、ホゾパイプ9が柱4のホゾパイプ通孔14に差し込まれて、柱4の下端部が土台3の上面に当接するようになされている。   Further, the pillar 4 is provided with a hozo-pipe through-hole 14 that opens at the center of the lower surface, and the pillar 4 is lowered from above the hozo-pipe 9 that protrudes upward through the base 3 as described above. The hoso-pipe 9 is inserted into the hoso-pipe through hole 14 of the column 4 so that the lower end of the column 4 is in contact with the upper surface of the base 3.

そして、そのような組付け状態において、側方より、ホゾパイプ9の第1,第2の各ドリフトピン通孔11,12にドリフトピン15…を打ち込むことによって、柱4と土台3とが連結され、それにより、同時に、外筒体7も土台3と一体化された構造になっている。   In such an assembled state, the pillar 4 and the base 3 are connected by driving the drift pins 15... Into the first and second drift pin through holes 11 and 12 of the hozo pipe 9 from the side. Thereby, at the same time, the outer cylindrical body 7 has a structure integrated with the base 3.

上記の柱脚部構造では、地震等により建物に水平力が作用して柱脚部に引抜き力と圧縮力とが交互に作用し、図2(イ)に示すように、引抜き力によって土台3に上に凸の曲げ変形を生じようとすると、粘弾性体8がせん断変形をしてエネルギーを吸収し、また、図2(ロ)に示すように、圧縮力によって土台3に下に凸の曲げ変形を生じようとすると、それを基礎パッキン2が阻止するように働き、それらによって、建物の層間変形の増大を効果的に抑制することができる。   In the above column base structure, a horizontal force acts on the building due to an earthquake or the like, and a pulling force and a compressive force act alternately on the column base. As shown in FIG. If an upward convex bending deformation occurs, the viscoelastic body 8 shears and absorbs energy, and, as shown in FIG. 2 (b), the compressive force causes the base 3 to protrude downward. If it is going to produce a bending deformation, it will work so that the foundation packing 2 may prevent it, and it can suppress effectively the increase in the interlayer deformation of a building by them.

しかも、上記の実施形態では、土台3に対する外筒体7の一体化を、柱4と土台3の連結のためのドリフトピン15…の打込みによって同時に達成することができる構造になっているので、土台3に対する外筒体7の一体化と、柱4と土台3の連結とを、施工容易に遂行することができる。   Moreover, in the above embodiment, the integration of the outer cylindrical body 7 with the base 3 has a structure that can be achieved simultaneously by driving in the drift pins 15 for connecting the pillar 4 and the base 3. The integration of the outer cylinder 7 with the base 3 and the connection between the pillar 4 and the base 3 can be easily performed.

図3(イ)に示す第2実施形態の柱脚部の構造は、基礎パッキン2が、弾力性を有する樹脂製等のものからなっている。その他は第1実施形態と同様である。この場合は、地震等により建物に水平力が作用して柱脚部に引抜き力と圧縮力とが交互に作用し、図3(ロ)に示すように、引抜き力によって土台3に上に凸の曲げ変形を生じようとすると、粘弾性体8がせん断変形をしてエネルギーを吸収し、また、図3(ハ)に示すように、圧縮力によって土台3に下に凸の曲げ変形を生じようとする場合も、粘弾性体8がせん断変形をしてエネルギーを吸収し、それによって、建物の層間変形の増大を効果的に抑制することができる。   The structure of the column base portion of the second embodiment shown in FIG. 3 (a) is such that the base packing 2 is made of a resin having elasticity. Others are the same as in the first embodiment. In this case, a horizontal force acts on the building due to an earthquake or the like, and a pulling force and a compressive force act alternately on the column base, and as shown in FIG. When the bending deformation is caused, the viscoelastic body 8 shears and absorbs energy, and as shown in FIG. 3 (c), the base 3 is bent downward and has a convex bending deformation. Even when trying to do so, the viscoelastic body 8 shears and absorbs energy, thereby effectively suppressing an increase in interlayer deformation of the building.

以上に、本発明の実施形態を示したが、本発明はこれに限られるものではなく、発明思想を逸脱しない範囲で各種の変更が可能である。例えば、上記の実施形態では、基礎パッキン2が、柱直下の土台部と基礎との間に介設されている場合を示したが、第1,第2,第4発明では、柱直下の土台部と基礎との間の基礎パッキンを省略してそこを空隙部とし、土台部と基礎との間のその他の部位に基礎パッキンが介設されている構造であってもよい。   Although the embodiment of the present invention has been described above, the present invention is not limited to this, and various modifications can be made without departing from the spirit of the invention. For example, in the above embodiment, the case has been shown in which the foundation packing 2 is interposed between the foundation portion directly below the pillar and the foundation. However, in the first, second and fourth inventions, the foundation directly below the pillar is provided. The structure which abbreviate | omits the foundation packing between a part and a foundation, makes it a space | gap part, and the foundation packing is interposed in the other site | part between a base part and a foundation may be sufficient.

また、上記の実施形態では、外筒体7を土台3と一体化させるために、外筒体7にホゾパイプ9を一体的に備えさせ、ホゾパイプ9とドリフトピン15…で柱4と土台3とを連結することで同時に外筒体7を土台3と一体化させる構造を示したが、ホゾパイプ9以外の方法で、それを実現する構造が採用されてもよいし、また、柱4と土台3の連結、及び、土台3と外筒体7の一体化をそれぞれ個別に行うようになされた構造が採用されてもよい。また、柱4と土台3の連結の構造、及び、土台3と外筒体7の一体化の構造に制限はなく、各種構造が採用されてよい。更に、上記の実施形態では、外筒体7を土台3と一体化させ、軸体6を基礎1と一体化させた場合を示したが、外筒体7を基礎1の側と一体化させ、軸体6を土台3の側と一体化させた構造であってもよい。   In the above embodiment, in order to integrate the outer cylinder 7 with the base 3, the outer cylinder 7 is integrally provided with the hozo pipe 9. The hozo pipe 9 and the drift pin 15. Although the structure in which the outer cylindrical body 7 is integrated with the base 3 at the same time by connecting the two is shown, a structure for realizing it by a method other than the hozo pipe 9 may be adopted, or the pillar 4 and the base 3 may be adopted. A structure may be employed in which the connection of the base 3 and the integration of the base 3 and the outer cylinder 7 are performed individually. Moreover, there is no restriction | limiting in the connection structure of the pillar 4 and the base 3, and the structure of integration of the base 3 and the outer cylinder 7, and various structures may be employ | adopted. Furthermore, in the above embodiment, the case where the outer cylinder 7 is integrated with the base 3 and the shaft body 6 is integrated with the foundation 1 is shown. However, the outer cylinder 7 is integrated with the foundation 1 side. The shaft body 6 may be integrated with the base 3 side.

また、上記の実施形態では、上下方向エネルギー吸収手段として、軸体と外筒体と粘弾性体とからなるものを示したが、第4発明では、縦向きに備えさせたシリンダー型などの粘性体ダンパーであってもよいし、摩擦式のダンパーであってもよいし、上下方向に相対変位に対してエネルギーを有効的に吸収する各種エネルギー吸収手段が用いられてよいことは、上述したとおりである。   In the above embodiment, the vertical energy absorbing means is composed of a shaft body, an outer cylinder body, and a viscoelastic body. However, in the fourth invention, the viscosity of a cylinder type or the like provided in the vertical direction is shown. As described above, it may be a body damper, a friction damper, or various energy absorbing means that effectively absorb energy with respect to relative displacement in the vertical direction. It is.

また、上記の実施形態では、土台や柱が木製である場合を示したが、それらが鋼製などの金属製である柱脚部の構造に用いることも可能であり、適用する建物は木造であってもよいし、軽量鉄骨造などであってもよい。   In the above embodiment, the base and the pillar are made of wood. However, they can be used for the structure of the column base made of metal such as steel, and the building to be applied is made of wood. It may be a lightweight steel structure or the like.

第1実施形態の柱脚部の構造を示すもので、図(イ)は一部断面正面図、図(ロ)は図(イ)のI−I線断面図、図(ハ)は図(イ)のII−II線断面図である。The structure of the column base part of 1st Embodiment is shown, A figure (I) is a partial cross section front view, A figure (B) is II sectional view taken on the line of FIG. It is II-II sectional view taken on the line of a). 図(イ)及び図(ロ)はそれぞれ、同柱脚部における層間変形増大抑制作動状態を示す一部断面正面図である。FIGS. 1A and 1B are partial cross-sectional front views illustrating the inter-layer deformation increase suppressing operation state in the column base. 図(イ)は第2実施形態の柱脚部の構造を示す一部断面正面図、図(ロ)及び図(ハ)はそれぞれ、同柱脚部における層間変形増大抑制作動状態を示す一部断面正面図である。Fig. (A) is a partial cross-sectional front view showing the structure of the column base part of the second embodiment, and Figs. (B) and (c) are parts showing the interlayer deformation increase suppressing operation state in the column base part. It is a cross-sectional front view. 図(イ)は従来の柱脚部の構造を示す正面図、図(ロ)は層間変形増大の作動状態を示す要部拡大正面図である。FIG. 1 (a) is a front view showing a structure of a conventional column base, and FIG. 2 (b) is an enlarged front view of a main part showing an operation state of increasing interlayer deformation.

符号の説明Explanation of symbols

1…基礎
2…基礎パッキン
3…土台
4…柱
5…上下方向エネルギー吸収手段
6…軸体
7…外筒体
8…粘弾性体
9…ホゾパイプ(連結手段)
DESCRIPTION OF SYMBOLS 1 ... Foundation 2 ... Foundation packing 3 ... Base 4 ... Pillar 5 ... Vertical energy absorption means 6 ... Shaft body 7 ... Outer cylinder body 8 ... Viscoelastic body 9 ... Hozo pipe (connection means)

Claims (4)

基礎の上に、ピース状の基礎パッキンを介して長物からなる土台が設置され、該土台の上に柱が立設された柱脚部の構造において、
前記柱下の土台部に、外筒体と該外筒体の内部に突出する軸体とのいずれか一方が上下方向に向けられて土台と一体化されて備えられると共に、もう一方が基礎と一体化されて備えられ、かつ、前記外筒体の内周部と軸体の外周部との間の環状空間部に粘弾性体が設置され、外筒体と軸体との上下方向の相対変位により前記粘弾性体がせん断変形をしてエネルギーを吸収するようになされていることを特徴とする柱脚部の構造。
On the foundation, a base made of a long material is installed via a piece-like foundation packing, and in the structure of the column base in which a column is erected on the foundation,
The base part under the pillar is provided with either one of the outer cylinder and the shaft projecting inside the outer cylinder oriented in the vertical direction and integrated with the base, and the other is the foundation. A viscoelastic body is provided in an annular space between the inner peripheral portion of the outer cylindrical body and the outer peripheral portion of the shaft body, and the vertical relationship between the outer cylindrical body and the shaft body is provided. A structure of a column base, wherein the viscoelastic body is subjected to shear deformation by displacement to absorb energy.
前記軸体と外筒体のいずれか一方に、柱と土台を連結する連結手段が備えられ、該連結手段によって土台と柱とを連結することにより、該一方が土台と一体化される構造になっている請求項1に記載の柱脚部の構造。   Either one of the shaft body and the outer cylindrical body is provided with a connecting means for connecting the pillar and the base, and by connecting the base and the pillar by the connecting means, the one is integrated with the base. The structure of the column base part of Claim 1 which has become. 前記基礎パッキンが、弾力性のない硬質材からなり、柱直下の土台部と基礎との間に介設されている請求項1又は2に記載の柱脚部の構造。   The structure of the column base part according to claim 1 or 2, wherein the foundation packing is made of a hard material having no elasticity, and is interposed between the foundation part and the foundation directly under the column. 基礎の上に、ピース状の基礎パッキンを介して長物からなる土台が設置され、該土台の上に柱が立設された柱脚部の構造において、
上下方向に相対変位に対してエネルギーを有効的に吸収するエネルギー吸収手段が備えられ、該エネルギー吸収手段の一方の継ぎ手が前記柱下の土台部と一体化されて備えられると共に、もう一方の継ぎ手が基礎と一体化されていることを特徴とする柱脚部の構造。
On the foundation, a base made of a long material is installed via a piece-like foundation packing, and in the structure of the column base in which a column is erected on the foundation,
Energy absorbing means for effectively absorbing energy relative to a relative displacement in the vertical direction is provided, and one joint of the energy absorbing means is provided integrally with the base portion under the pillar, and the other joint Column base structure characterized in that is integrated with the foundation.
JP2006208796A 2006-07-31 2006-07-31 Column base structure that absorbs energy Active JP4971714B2 (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2013217113A (en) * 2012-04-10 2013-10-24 Asahi Kasei Homes Co Column support structure and fixture

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2001173108A (en) * 1999-10-06 2001-06-26 Takaaki Sugawara Earthquake-resistant reinforcing device
JP2002220875A (en) * 2001-01-25 2002-08-09 Sanko Techno Co Ltd Foundation-column binding hardware

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2001173108A (en) * 1999-10-06 2001-06-26 Takaaki Sugawara Earthquake-resistant reinforcing device
JP2002220875A (en) * 2001-01-25 2002-08-09 Sanko Techno Co Ltd Foundation-column binding hardware

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2013217113A (en) * 2012-04-10 2013-10-24 Asahi Kasei Homes Co Column support structure and fixture

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