JP6589477B2 - Shaped steel connection structure - Google Patents

Shaped steel connection structure Download PDF

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JP6589477B2
JP6589477B2 JP2015179118A JP2015179118A JP6589477B2 JP 6589477 B2 JP6589477 B2 JP 6589477B2 JP 2015179118 A JP2015179118 A JP 2015179118A JP 2015179118 A JP2015179118 A JP 2015179118A JP 6589477 B2 JP6589477 B2 JP 6589477B2
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flange
steel
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connection structure
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JP2017053168A (en
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佐藤 圭一
圭一 佐藤
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Nippon Steel Corp
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本発明は、複数の形鋼が連結された形鋼連結構造に関する。   The present invention relates to a structural steel connecting structure in which a plurality of structural steels are connected.

従来から、大型のH形鋼の柱を用いる必要がないものとすることを目的として、例えば、特許文献1に開示される鉄骨柱が提案されている。また、標準的な納まり範囲内に適応できる外形断面サイズでありながら、横剛性を向上させることを目的として、特許文献2に開示される増強梁、及び、特許文献3に開示される横座屈補剛構造が提案されている。   Conventionally, for example, a steel column disclosed in Patent Document 1 has been proposed in order to eliminate the need to use a large H-shaped steel column. In addition, for the purpose of improving the lateral rigidity while having an outer cross-sectional size that can be accommodated within a standard range, the reinforcing beam disclosed in Patent Document 2 and the lateral buckling compensation disclosed in Patent Document 3 are used. A rigid structure has been proposed.

特許文献1に開示された鉄骨柱は、H形鋼からなる一対の柱部材が、それらのウェブがほぼ同一直線状となるようにして互いに並列される。特許文献1に開示された鉄骨柱は、それら両柱部材のフランジに対応してそれら柱部材に跨って固着した同一の接合プレートで、各柱部材を相互に接合することで、耐力の大きい柱が構成される。   In the steel column disclosed in Patent Document 1, a pair of column members made of H-shaped steel are arranged in parallel so that their webs are substantially in the same straight line. The steel column disclosed in Patent Document 1 is a column having a high yield strength by joining the respective column members to each other with the same joining plate that is fixed across the column members corresponding to the flanges of the both column members. Is configured.

特許文献2に開示された増強梁は、標準的な納まり範囲内に適応できる外形断面サイズの規定原梁の溝空間内に、補強用添接部材を合着して増強梁が形成される。特許文献3に開示された横座屈補剛構造は、チャンネルからなる補剛部材が、H形鋼梁の塑性化が想定される材端近傍の所定区間に添接されて、つなぎ梁等の横座屈止めを減らすものとなる。   The reinforcing beam disclosed in Patent Document 2 is formed by joining a reinforcing attachment member in a groove space of a defined original beam having an outer cross-sectional size that can be accommodated within a standard range. The lateral buckling stiffening structure disclosed in Patent Document 3 is such that a stiffening member made of a channel is attached to a predetermined section in the vicinity of a material end where plasticization of an H-shaped steel beam is assumed, and a transverse seat such as a connecting beam It will reduce buckling.

実全平4−55922号公報Jisseng Hei 4-55922 特開昭59−61645号公報JP 59-61645 A 特開平5−331963号公報JP-A-5-331963

特許文献1に開示された鉄骨柱は、一対の柱部材となるH形鋼のウェブが互いに同一直線状に配置されることで、耐力の大きい柱が構成されている。しかし、特許文献1に開示された鉄骨柱は、一対のH形鋼を相互に接合することで、相互に接合された一対の柱部材の部材成が大きくなるため、柱部材の横座屈を誘発するおそれがあった。   The steel column disclosed in Patent Document 1 is a column having a high yield strength by arranging H-shaped steel webs, which are a pair of column members, in the same straight line. However, the steel column disclosed in Patent Document 1 induces lateral buckling of the column member because the pair of column members joined to each other increases by joining the pair of H-shaped steels to each other. There was a risk.

また、特許文献2、3に開示された増強梁等は、規定原梁の溝空間内に補強用添接部材を合着することが必要となり、又は、H形鋼梁の所定区間にチャンネルからなる補剛部材を添接することが必要となる。このため、特許文献2、3に開示された増強梁等は、複数の形状の補強用添接部材又はチャンネルをH形鋼とともに用意したうえで、これらを溶接で接合させるため、増強梁等の製造の効率性、建築現場での施工性の向上が困難となる。   In addition, the reinforcing beams disclosed in Patent Documents 2 and 3 require that a reinforcing attachment member be attached in the groove space of the prescribed original beam, or from a channel to a predetermined section of the H-shaped steel beam. It is necessary to attach a stiffening member. For this reason, the reinforcing beams and the like disclosed in Patent Documents 2 and 3 are provided with a plurality of reinforcing attachment members or channels together with the H-shaped steel and then joined together by welding. It becomes difficult to improve the efficiency of manufacturing and workability at the construction site.

そこで、本発明は、上述した問題点に鑑みて案出されたものであって、その目的とするところは、ウェブを偏心させて配置された複数のH形鋼を接合することで、横座屈耐力及び局部座屈耐力の向上と製造の効率性等の向上とを両立することのできる形鋼連結構造を提供することにある。   Therefore, the present invention has been devised in view of the above-described problems, and the object of the present invention is lateral buckling by joining a plurality of H-shaped steels arranged with the web eccentric. An object of the present invention is to provide a structural steel connecting structure capable of achieving both improvement in yield strength and local buckling strength and improvement in production efficiency.

第1発明に係る形鋼連結構造は、複数の形鋼が連結された形鋼連結構造であって、断面方向で幅方向に延びる一対のフランジと、一対の前記フランジまで延伸するウェブとを有して、前記ウェブの延伸方向に連結される複数のH形鋼を備え、互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記フランジは、何れか他方の前記H形鋼の前記フランジと接合されて、前記ウェブは、前記フランジに接続される接続部の位置が、前記フランジの幅方向の一端から前記接続部までの一端側離間距離と、前記フランジの幅方向の他端から前記接続部までの他端側離間距離とを異ならせて、前記フランジの幅方向の中央よりも偏心させて配置されていることを特徴とする。 The structural steel connection structure according to the first invention is a structural steel connection structure in which a plurality of structural steels are connected, and has a pair of flanges extending in the width direction in the cross-sectional direction and a web extending to the pair of flanges. The flange of any one of the H-section steels includes a plurality of H-section steels connected in the extending direction of the web, and the plurality of H-section steels connected adjacent to each other. the other of the is joined to the flange of the H-shaped steel, the web, the position of the connecting portion connected to the flange, and one end side distance from the width direction of the one end of the flange to the connecting part, said the width direction of the other end flange made different from the other end distance to said connecting portion, is made eccentric than the center in the width direction of the flange, characterized in Tei Rukoto arranged.

第2発明に係る形鋼連結構造は、第1発明において、前記ウェブは、前記一端側離間距離が前記他端側離間距離より大きい場合に、前記一端側離間距離と前記他端側離間距離との延長比を5/5超7/3以下とし、前記一端側離間距離が前記他端側離間距離より小さい場合に、前記延長比を3/7以上5/5未満として、前記フランジの幅方向の中央よりも偏心させて配置されることを特徴とする。 In the shape-steel connection structure according to a second aspect of the present invention, in the first aspect, the web has the one end side separation distance and the other end side separation distance when the one end side separation distance is larger than the other end side separation distance. When the extension ratio is 5/5 and 7/3 or less , and the one end side separation distance is smaller than the other end side separation distance, the extension ratio is set to 3/7 or more and less than 5/5, and the flange width direction It is characterized by being arranged more eccentric than the center.

第3発明に係る形鋼連結構造は、第1発明又は第2発明において、互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記ウェブは、何れか他方の前記H形鋼の前記ウェブと、前記フランジの幅方向の中央よりも偏心させた位置を互いに異ならせて配置されることを特徴とする。   In the first invention or the second invention, the structural steel connection structure according to the third invention is the one of the plurality of H-section steels connected adjacent to each other, and the web of any one of the H-section steels is The web of the other H-shaped steel and the position eccentric from the center in the width direction of the flange are arranged different from each other.

第4発明に係る形鋼連結構造は、第1発明〜第3発明の何れかにおいて、互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記フランジは、何れか他方の前記H形鋼の前記フランジと当接されて、断面方向で前記ウェブの近傍の2箇所以上で乾式接合されることを特徴とする。   The section steel connection structure according to a fourth aspect of the present invention is the flange of any one of the H-section steels of the plurality of H-section steels connected to each other in any one of the first to third aspects of the invention. Is in contact with the flange of the other H-shaped steel and is dry-bonded at two or more locations near the web in the cross-sectional direction.

第5発明に係る形鋼連結構造は、第1発明〜第4発明の何れかにおいて、前記ウェブの延伸方向に連結される3本以上の前記H形鋼を備え、前記ウェブの延伸方向で両側部の前記H形鋼は、前記ウェブの延伸方向で中間部の前記H形鋼よりも、断面方向で前記ウェブが延伸する延伸長を小さいものとすることを特徴とする。   A structural steel connecting structure according to a fifth aspect of the present invention includes the three or more H-shaped steels connected in the extending direction of the web in any one of the first to fourth aspects, and both sides in the extending direction of the web. The H-section steel of the part is characterized in that the stretch length of the web extending in the cross-sectional direction is smaller than that of the H-section steel in the intermediate part in the stretching direction of the web.

第6発明に係る形鋼連結構造は、第1発明〜第5発明の何れかにおいて、前記H形鋼は、一対の前記フランジと前記ウェブとをコイルから高周波抵抗溶接で接合した溶接軽量H形鋼が用いられることを特徴とする。   The shaped steel connection structure according to a sixth aspect of the present invention is the light weight H-shaped welded structure according to any one of the first to fifth aspects, wherein the H-shaped steel is formed by joining a pair of the flange and the web by high-frequency resistance welding from a coil. It is characterized in that steel is used.

第1発明〜第6発明によれば、ウェブを偏心させた複数のH形鋼が互いに連結されて、フランジと直交する方向の軸回り(弱軸回り)の断面二次モーメント及び材軸回りの捩じり抵抗が増大することで、複数のH形鋼の全体の横座屈耐力を向上させることが可能となる。   According to the first to sixth inventions, a plurality of H-section steels having eccentric webs are connected to each other, and the sectional secondary moment around the axis in the direction perpendicular to the flange (about the weak axis) and around the material axis By increasing the torsional resistance, it is possible to improve the overall lateral buckling strength of the plurality of H-section steels.

第1発明〜第6発明によれば、補強用添接部材又はチャンネル等の追加や大断面部材を用いずに、同一のコイルから製作することのできるH形鋼のみを用いて横座屈耐力を向上させることができるため、形鋼連結構造の製造の効率性、建築現場での施工性の向上を実現することが可能となる。   According to the first to sixth inventions, the lateral buckling strength is increased by using only the H-shaped steel that can be manufactured from the same coil without using a reinforcing attachment member or a channel or using a large cross-section member. Since it can improve, it becomes possible to implement | achieve the improvement of the efficiency of manufacture of a shape-steel connection structure, and the construction property in a construction site.

第1発明〜第6発明によれば、互いに接合されたフランジで拘束力を発揮させて、この拘束力がウェブに伝達されるととともに、互いに接合されていないフランジにも拘束力が伝達されることで、フランジ、ウェブの相互拘束効果を増大させて、フランジの板要素の局部座屈耐力の低下を抑制することが可能となる。   According to the first to sixth inventions, the restraining force is exerted by the flanges joined to each other, and this restraining force is transmitted to the web, and the restraining force is also transmitted to the flanges that are not joined to each other. Thus, it is possible to increase the mutual restraining effect of the flange and the web, and to suppress the decrease in the local buckling strength of the plate element of the flange.

特に、第2発明によれば、一端側離間距離と他端側離間距離との幅方向の延長比を3/7〜7/3とすることで、フランジの板要素の局部座屈耐力の低下を確実に抑制すると同時に、複数のH形鋼の全体の横座屈耐力を向上させることが可能となる。   Particularly, according to the second invention, the local buckling strength of the plate element of the flange is reduced by setting the extension ratio in the width direction of the one end side separation distance and the other end side separation distance to 3/7 to 7/3. It is possible to improve the overall lateral buckling strength of the plurality of H-section steels at the same time.

特に、第3発明によれば、何れか一方のH形鋼のウェブと、何れか他方のH形鋼のウェブとで、フランジの幅方向の中央に対して偏心させる位置を互いに異ならせて配置することで、フランジに直交する方向の軸回り(弱軸回り)の断面二次モーメントを強化し易くなり、複数のH形鋼の全体の横座屈耐力をより効率的に向上させることが可能となる。   In particular, according to the third aspect of the invention, any one of the H-shaped steel webs and the other H-shaped steel webs are arranged at different positions to be eccentric with respect to the center in the width direction of the flange. By doing so, it becomes easier to strengthen the secondary moment of inertia around the axis in the direction perpendicular to the flange (around the weak axis), and the overall lateral buckling strength of multiple H-section steels can be improved more efficiently. Become.

特に、第4発明によれば、フランジの接合を乾式接合とすることで、組立及び解体が容易となり、製造性及び施工性を向上させることが可能となる。さらに、第4発明によれば、断面方向でウェブの近傍の2箇所以上で接合することで、フランジの接合箇所における応力伝達がより効率的となり、期待する構造性能が発揮され易くなる。   In particular, according to the fourth aspect of the invention, the flange is joined by dry joining, so that assembly and disassembly can be facilitated, and manufacturability and workability can be improved. Furthermore, according to the fourth invention, by joining at two or more locations in the vicinity of the web in the cross-sectional direction, stress transmission at the joint location of the flange becomes more efficient, and the expected structural performance is easily exhibited.

特に、第5発明によれば、3本以上のH形鋼が連結される場合に、両側部のウェブの延伸長を、中間部のウェブの延伸長よりも小さくすることで、中間部のフランジが両側部に寄せて配置されるため、複数のH形鋼の総鋼材量を増加させることなく、3本以上のH形鋼の強軸回りの断面二次モーメント及び断面係数を増大させて、複数のH形鋼の全体の耐力及び剛性を経済的に向上させることが可能となる。   In particular, according to the fifth invention, when three or more H-shaped steels are connected, the extension length of the webs on both sides is made smaller than the extension length of the intermediate webs, so that the intermediate flanges Are arranged close to both sides, and without increasing the total steel amount of the plurality of H-section steels, increase the sectional moment and the section modulus around the strong axis of three or more H-section steels, It becomes possible to economically improve the overall proof stress and rigidity of the plurality of H-section steels.

特に、第6発明によれば、H形鋼に溶接軽量H形鋼が用いられることで、部材成寸法の許容差が小さいH形鋼が用いられるものとなり、複数のH形鋼をウェブの延伸方向に連続させて連結させるものであるにもかかわらず、組立時の製作誤差を極小化することができるため、製作効率及び施工精度を向上させることが可能となる。第6発明によれば、さらに、H形鋼として用いられる溶接軽量H形鋼が、ウェブとフランジとを高周波抵抗溶接するものであることから、アーク溶接で製作された通常の溶接H形鋼よりも溶接熱影響が小さく、ウェブやフランジの母材の熱影響による材質変化が狭い範囲で済むものとなるため、設計上想定した通りの所期する構造性能をH形鋼に発揮させることがより容易に可能となる。   In particular, according to the sixth invention, a welded lightweight H-section steel is used as the H-section steel, so that an H-section steel having a small tolerance of the component dimensions is used, and a plurality of H-section steels are stretched in the web. In spite of the continuous connection in the direction, the manufacturing error at the time of assembly can be minimized, so that the manufacturing efficiency and construction accuracy can be improved. According to the sixth aspect of the present invention, since the welded light H-section steel used as the H-section steel is for high-frequency resistance welding of the web and the flange, the conventional welded H-section steel manufactured by arc welding is used. In addition, the effect of welding heat is small, and the material change due to the heat effect of the web and flange base material is limited, so it is better to make the H-shaped steel exhibit the expected structural performance as designed. Easy to do.

本発明を適用した形鋼連結構造を用いた柱又は梁等の構造部材を示す斜視図である。It is a perspective view which shows structural members, such as a column or a beam, using the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造の各々のH形鋼を示す断面方向の正面図である。It is a front view of the section direction showing each H section steel of the section steel connection structure to which the present invention is applied. (a)は、ウェブが偏心する延長比を7/3、(b)は、延長比を6/4、(c)は、延長比を5.5/4.5、(d)は、延長比を8/2、(e)は、延長比を9/1とした各々のH形鋼を示す正面図である。(A) is an extension ratio at which the web is eccentric, 7/3, (b) is an extension ratio of 6/4, (c) is an extension ratio of 5.5 / 4.5, and (d) is an extension. The ratio is 8/2, and (e) is a front view showing each H-section steel with an extension ratio of 9/1. (a)は、ウェブが偏心する延長比を3/7、(b)は、延長比を4/6、(c)は、延長比を4.5/5.5、(d)は、延長比を2/8、(e)は、延長比を1/9とした各々のH形鋼を示す正面図である。(A) is the extension ratio at which the web is eccentric 3/7, (b) is the extension ratio 4/6, (c) is the extension ratio 4.5 / 5.5, (d) is the extension The ratio is 2/8 and (e) is a front view showing each H-section steel with an extension ratio of 1/9. 本発明を適用した形鋼連結構造で互いに幅方向に反転させて連結される2本のH形鋼を示す正面図である。It is a front view which shows two H-section steels reversed and connected mutually in the width direction by the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造でウェブが偏心する延長比を互いに異ならせた2本のH形鋼を示す正面図である。It is a front view which shows two H-section steels which made the extension ratio which a web eccentric | decenters mutually differ in the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造でウェブが偏心する位置を略同一にして配置される2本のH形鋼を示す正面図である。It is a front view which shows two H-section steels arrange | positioned by making the position where a web eccentric | decenters substantially in the shape steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造で互いに幅方向に反転させて連結される3本のH形鋼を示す正面図である。It is a front view which shows three H-section steels connected mutually reversed in the width direction by the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造でウェブが偏心する位置を略同一にして配置される3本のH形鋼を示す正面図である。It is a front view which shows three H-section steels arrange | positioned by making the position where a web eccentric | decentered substantially the same with the structural steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造で両側部のH形鋼のウェブの延伸長を中間部のH形鋼のウェブの延伸長よりも小さくした3本のH形鋼を示す正面図である。It is a front view which shows three H-section steel which made the stretch length of the web of the H-section steel of both sides part smaller than the stretch length of the web of the H-section steel of an intermediate part with the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造でウェブの近傍の2箇所以上でボルト又はビス等を用いて乾式接合されるH形鋼のフランジを示す正面図である。It is a front view which shows the flange of the H-section steel dry-joined using a volt | bolt or a screw | thread etc. in two or more places of the vicinity of a web with the structural steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造で2本のH形鋼が連結される場合の有限帯板法解析の結果を示すグラフ及び表である。It is a graph and a table | surface which show the result of a finite strip method analysis in case two H-section steel is connected by the shape steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造で3本のH形鋼が連結される場合の有限帯板法解析の結果を示すグラフ及び表である。It is the graph and table | surface which show the result of the finite strip method analysis in case the three H-section steels are connected by the shape-steel connection structure to which this invention is applied. 本発明を適用した形鋼連結構造で中間部のウェブの延伸長を両側部のウェブの延伸長で除した延伸比率と座屈耐力比との関係を示すグラフである。It is a graph which shows the relationship between the draw ratio and the buckling strength ratio which remove | divided the extending length of the web of the intermediate part by the extending length of the web of both sides by the shape-steel connection structure to which this invention is applied.

以下、本発明を適用した形鋼連結構造1を実施するための形態について、図面を参照しながら詳細に説明する。   Hereinafter, the form for implementing the shape-steel connection structure 1 to which this invention is applied is demonstrated in detail, referring drawings.

本発明を適用した形鋼連結構造1は、図1に示すように、例えば、住宅、学校、事務所、病院施設等の建築物において、複数の形鋼が連結された構造部材等として用いられる。   As shown in FIG. 1, the structural steel connection structure 1 to which the present invention is applied is used as a structural member or the like in which a plurality of structural steels are connected in a building such as a house, a school, an office, or a hospital facility. .

本発明を適用した形鋼連結構造1は、各々の形鋼としてH形鋼2が用いられる。本発明を適用した形鋼連結構造1は、建築物を支持するための骨組みとなる構造部材等において、複数のH形鋼2が連結された柱部材7又は梁部材8等として用いられるものとなる。   In the structural steel connecting structure 1 to which the present invention is applied, an H-shaped steel 2 is used as each structural steel. The structural steel connecting structure 1 to which the present invention is applied is used as a column member 7 or a beam member 8 or the like in which a plurality of H-shaped steels 2 are connected in a structural member or the like that serves as a framework for supporting a building. Become.

本発明を適用した形鋼連結構造1は、柱部材7として用いられる場合に、例えば、2本のH形鋼2が連結されて用いられる。また、本発明を適用した形鋼連結構造1は、梁部材8として用いられる場合に、例えば、3本のH形鋼2が連結されて用いられる。   When the shape steel connection structure 1 to which the present invention is applied is used as the column member 7, for example, two H-section steels 2 are connected and used. Further, when the structural steel connection structure 1 to which the present invention is applied is used as the beam member 8, for example, three H-section steels 2 are connected and used.

本発明を適用した形鋼連結構造1は、梁部材8として用いられる場合に、複数のH形鋼2の長手方向の端部に、溶接接合等によりエンドプレート70が取り付けられて、エンドプレート70がボルト接合等により柱部材7に取り付けられて用いられる。また、柱部材7には、梁部材8が取り付く位置にスチフナ9等の補剛材が適宜設置される。   When the structural steel connection structure 1 to which the present invention is applied is used as the beam member 8, an end plate 70 is attached to end portions in the longitudinal direction of the plurality of H-section steels 2 by welding or the like. Are attached to the column member 7 by bolting or the like. Further, a stiffener such as a stiffener 9 is appropriately installed on the column member 7 at a position where the beam member 8 is attached.

本発明を適用した形鋼連結構造1は、H形鋼2の長手方向に直交する断面方向で、2本以上のH形鋼2が断面方向に並べられて、ボルト6又はビス等を用いた乾式接合等により接合されることで、互いに隣り合って連結される複数のH形鋼2を備えるものとなる。   In the structural steel connecting structure 1 to which the present invention is applied, two or more H-shaped steels 2 are arranged in the cross-sectional direction in a cross-sectional direction orthogonal to the longitudinal direction of the H-shaped steel 2 and bolts 6 or screws are used. By being joined by dry joining or the like, a plurality of H-section steels 2 that are connected adjacent to each other are provided.

本発明を適用した形鋼連結構造1は、2本以上の如何なる数量のH形鋼2が連結されてもよい。本発明を適用した形鋼連結構造1は、特に、3本又は4本程度のH形鋼2が連結されることで、互いに隣り合って連結される3本以上のH形鋼2を備えるものとなる。   In the section steel connection structure 1 to which the present invention is applied, two or more H-section steels 2 may be connected. The structural steel connection structure 1 to which the present invention is applied particularly includes three or more H-shaped steels 2 that are connected adjacent to each other by connecting three or four H-shaped steels 2 to each other. It becomes.

H形鋼2は、図2に示すように、断面方向で幅方向Xに延びる一対のフランジ20と、一対のフランジ20まで延伸するウェブ23とを有する。H形鋼2は、断面方向でウェブ23の延伸方向Yの両端に一対のフランジ20が配置される。   As shown in FIG. 2, the H-section steel 2 has a pair of flanges 20 extending in the width direction X in the cross-sectional direction, and a web 23 extending to the pair of flanges 20. In the H-section steel 2, a pair of flanges 20 are disposed at both ends in the extending direction Y of the web 23 in the cross-sectional direction.

H形鋼2は、例えば、フランジ20の幅方向Xの一端20aから他端20bまで、フランジ20の幅寸法Bが100〜150mm程度となる。また、H形鋼2は、例えば、延伸方向Yの両端のフランジ20まで、H形鋼2の部材成Hが150mm〜250mm程度となる。   In the H-section steel 2, for example, the width dimension B of the flange 20 is about 100 to 150 mm from one end 20 a to the other end 20 b in the width direction X of the flange 20. Moreover, as for the H-section steel 2, the member composition H of the H-section steel 2 will be about 150 mm-250 mm to the flange 20 of the both ends of the extending | stretching direction Y, for example.

H形鋼2は、特に、一対のフランジ20とウェブ23とを、粗圧延機と仕上げ圧延機とで帯状に圧延してコイル状に巻き取った熱延又は冷延等のコイルから、高周波抵抗溶接等の溶接接合により接合することで、断面略H形状に形成された溶接軽量H形鋼が用いられるものとなる。なお、H形鋼2には、サブマージアーク溶接等の高周波抵抗溶接以外の溶接方法にて組み立てられた溶接H形鋼、圧延により製造されたH形鋼等が用いられてもよい。   The H-section steel 2 has a high frequency resistance particularly from a coil such as hot rolling or cold rolling in which a pair of flanges 20 and a web 23 are rolled into a strip shape by a rough rolling mill and a finishing rolling mill and wound into a coil shape. By joining by welding joining such as welding, a welded lightweight H-section steel having a substantially H-shaped cross section is used. The H-section steel 2 may be a welded H-section steel assembled by a welding method other than high-frequency resistance welding such as submerged arc welding, an H-section steel manufactured by rolling, or the like.

ウェブ23は、フランジ20の幅方向Xの一端20a及び他端20bから、幅方向Xに所定の距離で離間させて、接続部Wでフランジ20に溶接接合により接合される。ウェブ23は、延伸方向Yの両端の各々が一対のフランジ20の各々に接続部Wで接続される。   The web 23 is separated from the one end 20a and the other end 20b in the width direction X of the flange 20 by a predetermined distance in the width direction X, and is joined to the flange 20 at the connection portion W by welding. Each end of the web 23 in the extending direction Y is connected to each of the pair of flanges 20 by connecting portions W.

ここで、ウェブ23は、フランジ20の一端20aから接続部Wまでの幅方向Xの離間距離を一端側離間距離b1とする。また、ウェブ23は、フランジ20の他端20bから接続部Wまでの幅方向Xの離間距離を他端側離間距離b2とする。このとき、ウェブ23は、一端側離間距離b1と他端側離間距離b2とを異ならせたものとする。   Here, in the web 23, the separation distance in the width direction X from the one end 20a of the flange 20 to the connection portion W is defined as one end side separation distance b1. Further, the web 23 has a separation distance in the width direction X from the other end 20b of the flange 20 to the connection portion W as the other end side separation distance b2. At this time, the web 23 is assumed to have different one end side separation distance b1 and other end side separation distance b2.

ウェブ23は、一端側離間距離b1と他端側離間距離b2とを異ならせて、フランジ20の幅方向Xの中央よりも偏心させて配置されるものとなる。ウェブ23は、一対のフランジ20の各々で、接続部Wの幅方向Xの位置を互いに略同一として、幅方向Xの中央よりも偏心させたウェブ23が、フランジ20と略直交して延伸するものとなる。   The web 23 is arranged such that the one end side separation distance b1 and the other end side separation distance b2 are different from each other and more eccentric than the center of the flange 20 in the width direction X. In the web 23, the web 23, which is eccentric from the center of the width direction X, extends substantially orthogonally to the flange 20, with the positions of the connection portions W in the width direction X being substantially the same. It will be a thing.

ウェブ23は、フランジ20の幅方向Xの中央よりも偏心させて配置されて、例えば、図3(a)に示すように、一端側離間距離b1と他端側離間距離b2との幅方向Xの延長比R(=b1/b2)を7/3とする(b1:b2=7:3)。ウェブ23は、一端側離間距離b1と他端側離間距離b2との幅方向Xの延長比R(=b1/b2)を如何なる値に設定してもよい。   The web 23 is arranged eccentrically with respect to the center of the flange 20 in the width direction X. For example, as shown in FIG. 3A, the width direction X between the one end side separation distance b1 and the other end side separation distance b2 is set. The extension ratio R (= b1 / b2) is 7/3 (b1: b2 = 7: 3). The web 23 may set the extension ratio R (= b1 / b2) in the width direction X between the one end side separation distance b1 and the other end side separation distance b2 to any value.

ウェブ23は、図3(b)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを6/4として、図3(c)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを5.5/4.5とすることもできる。また、ウェブ23は、図3(d)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを8/2として、図3(e)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを9/1とすることもできる。   As shown in FIG. 3 (b), the web 23 has an extension ratio R between the one end side separation distance b1 and the other end side separation distance b2 of 6/4, and as shown in FIG. The extension ratio R between the distance b1 and the other end side separation distance b2 may be 5.5 / 4.5. Further, as shown in FIG. 3D, the web 23 has an extension ratio R between the one end side separation distance b1 and the other end side separation distance b2 of 8/2, as shown in FIG. The extension ratio R between the side separation distance b1 and the other end side separation distance b2 can be 9/1.

ウェブ23は、図3に示すH形鋼2を幅方向Xに反転させたとき、例えば、図4(a)に示すように、一端側離間距離b1と他端側離間距離b2との幅方向Xの延長比R(=b1/b2)が3/7となる(b1:b2=3:7)。このとき、ウェブ23は、図4(b)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを4/6として、図4(c)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを4.5/5.5とすることもできる。また、ウェブ23は、図4(d)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを2/8として、図4(e)に示すように、一端側離間距離b1と他端側離間距離b2との延長比Rを1/9とすることもできる。   When the H-shaped steel 2 shown in FIG. 3 is reversed in the width direction X, the web 23 is, for example, as shown in FIG. 4A, the width direction between the one end side separation distance b1 and the other end side separation distance b2. The extension ratio R (= b1 / b2) of X is 3/7 (b1: b2 = 3: 7). At this time, as shown in FIG. 4B, the web 23 has an extension ratio R between the one end side separation distance b1 and the other end side separation distance b2 of 4/6 as shown in FIG. The extension ratio R between the one end side separation distance b1 and the other end side separation distance b2 may be 4.5 / 5.5. Further, as shown in FIG. 4D, the web 23 has an extension ratio R between the one end side separation distance b1 and the other end side separation distance b2 of 2/8, as shown in FIG. The extension ratio R between the side separation distance b1 and the other end side separation distance b2 may be 1/9.

ウェブ23は、フランジ20の幅方向Xの中央よりも少なからず偏心させて配置されていればよく、特に、一端側離間距離b1と他端側離間距離b2との幅方向Xの延長比Rを3/7〜7/3とすることが望ましい。このとき、ウェブ23は、図3(a)〜図3(c)に示すように、一端側離間距離b1が他端側離間距離b2よりも大きい場合に、一端側離間距離b1が延長比Rで5/5超、7/3以下の連続する範囲における任意の大きさとなり、また、図4(a)〜図4(c)に示すように、一端側離間距離b1が他端側離間距離b2よりも小さい場合に、一端側離間距離b1が延長比Rで3/7以上、5/5未満の連続する範囲における任意の大きさとなる。   The web 23 only needs to be arranged eccentrically rather than the center of the flange 20 in the width direction X. In particular, the extension ratio R in the width direction X between the one end side separation distance b1 and the other end side separation distance b2 is set. It is desirable to set to 3/7 to 7/3. At this time, as shown in FIGS. 3A to 3C, the web 23 has an extension ratio R of the one end side separation distance b1 when the one end side separation distance b1 is larger than the other end side separation distance b2. 4/5 and 7/3 or less, and as shown in FIGS. 4A to 4C, the one end side separation distance b1 is the other end side separation distance. When it is smaller than b2, the one end side separation distance b1 becomes an arbitrary size in a continuous range of 3/7 or more and less than 5/5 in extension ratio R.

本発明を適用した形鋼連結構造1は、図5に示すように、互いに隣り合ってウェブ23の延伸方向Yに連結される複数のH形鋼2を備えて、複数のH形鋼2が各々のウェブ23の延伸方向Yに並べられて、各々のフランジ20で互いに連結されるものとなる。   As shown in FIG. 5, the structural steel connection structure 1 to which the present invention is applied includes a plurality of H-section steels 2 adjacent to each other and connected in the extending direction Y of the web 23, and the plurality of H-section steels 2 are The webs 23 are arranged in the extending direction Y of the webs 23 and are connected to each other by the flanges 20.

本発明を適用した形鋼連結構造1は、互いに隣り合った複数のH形鋼2のうち、何れか一方のH形鋼3のウェブ33が、何れか他方のH形鋼4のウェブ43と、フランジ20の幅方向Xの中央よりも偏心させた位置を互いに異ならせて配置される。   In the structural steel connection structure 1 to which the present invention is applied, the web 33 of any one of the H-section steels 3 and the web 43 of the other H-section steel 4 are connected to each other among the plurality of H-section steels 2 adjacent to each other. The positions eccentric from the center of the width direction X of the flange 20 are different from each other.

このとき、本発明を適用した形鋼連結構造1は、例えば、互いに幅方向Xに反転させた複数のH形鋼2が連結されて、一方のH形鋼3のウェブ33が偏心する延長比Rを7/3とするとともに、他方のH形鋼4のウェブ43が偏心する延長比Rを3/7とする。   At this time, in the structural steel connection structure 1 to which the present invention is applied, for example, a plurality of H-section steels 2 reversed in the width direction X are connected to each other, and the web 33 of one H-section steel 3 is eccentric. R is 7/3, and the extension ratio R at which the web 43 of the other H-section steel 4 is eccentric is 3/7.

また、本発明を適用した形鋼連結構造1は、互いに幅方向Xに反転させた複数のH形鋼2が連結されなくてもよい。このとき、本発明を適用した形鋼連結構造1は、図6に示すように、例えば、一方のH形鋼3のウェブ33が偏心する延長比Rを7/3として、他方のH形鋼4のウェブ43が偏心する延長比Rを4/6とする。   Moreover, in the structural steel connection structure 1 to which the present invention is applied, a plurality of H-section steels 2 reversed in the width direction X may not be connected. At this time, as shown in FIG. 6, the structural steel connecting structure 1 to which the present invention is applied has, for example, an extension ratio R at which the web 33 of one H-shaped steel 3 is eccentric as 7/3, and the other H-shaped steel. The extension ratio R at which the four webs 43 are eccentric is set to 4/6.

また、本発明を適用した形鋼連結構造1は、図7に示すように、互いに隣り合って連結される複数のH形鋼2の各々で、ウェブ23が偏心する延長比Rを互いに略同一としてもよい。このとき、本発明を適用した形鋼連結構造1は、一方のH形鋼3のウェブ33と、他方のH形鋼4のウェブ43とが、フランジ20の幅方向Xの中央よりも偏心させた位置を略同一にして、略同一直線状に配置されるものとなる。   In addition, as shown in FIG. 7, the structural steel connecting structure 1 to which the present invention is applied has an extension ratio R at which the web 23 is eccentric in each of a plurality of H-section steels 2 connected adjacent to each other. It is good. At this time, in the structural steel connection structure 1 to which the present invention is applied, the web 33 of the one H-section steel 3 and the web 43 of the other H-section steel 4 are eccentric from the center in the width direction X of the flange 20. The positions are substantially the same and are arranged in substantially the same straight line.

本発明を適用した形鋼連結構造1は、図5〜図7に示すように、ウェブ23の延伸方向Yに連結される2本のH形鋼2を備えるものとなる。本発明を適用した形鋼連結構造1は、これに限らず、ウェブ23の延伸方向Yに連結される3本以上のH形鋼2を備えるものとして、例えば、図8、図9に示すように、3本のH形鋼2が連結されてされてもよい。   As shown in FIGS. 5 to 7, the structural steel connection structure 1 to which the present invention is applied includes two H-sections 2 connected in the extending direction Y of the web 23. The shape steel connecting structure 1 to which the present invention is applied is not limited to this, and includes three or more H-shaped steels 2 connected in the extending direction Y of the web 23. For example, as shown in FIGS. Three H-section steels 2 may be connected to each other.

このとき、本発明を適用した形鋼連結構造1は、ウェブ23の延伸方向Yに連結される複数のH形鋼2として、ウェブ23の延伸方向Yで両側部Sに配置される2本のH形鋼3と、ウェブ23の延伸方向Yで中間部Cに配置される1本のH形鋼4とを備える。   At this time, the structural steel connecting structure 1 to which the present invention is applied includes two H-shaped steels 2 that are connected in the extending direction Y of the web 23, and are arranged on both sides S in the extending direction Y of the web 23. The H-section steel 3 and one H-section steel 4 disposed in the intermediate portion C in the extending direction Y of the web 23 are provided.

本発明を適用した形鋼連結構造1は、図8に示すように、両側部SのH形鋼3のウェブ33と中間部CのH形鋼4のウェブ43とが、フランジ20の中央よりも偏心させた位置を互いに異ならせて配置されてもよい。また、本発明を適用した形鋼連結構造1は、図9に示すように、両側部SのH形鋼3のウェブ33と中間部CのH形鋼4のウェブ43とが、フランジ20の中央よりも偏心させた位置を略同一にして配置されてもよい。   As shown in FIG. 8, in the structural steel connecting structure 1 to which the present invention is applied, the web 33 of the H-section steel 3 on both sides S and the web 43 of the H-section steel 4 on the intermediate section C are from the center of the flange 20. Alternatively, the eccentric positions may be different from each other. In addition, as shown in FIG. 9, the structural steel connection structure 1 to which the present invention is applied has a web 33 of the H-section steel 3 on both sides S and a web 43 of the H-section steel 4 on the intermediate portion C. You may arrange | position with the position made eccentric from the center substantially the same.

本発明を適用した形鋼連結構造1は、図10に示すように、ウェブ23の延伸方向Yに連結される3本以上のH形鋼2を備えて、ウェブ23の延伸方向Yで両側部SのH形鋼3のウェブ33が延伸する断面方向の延伸長h1を、ウェブ23の延伸方向Yで中間部CのH形鋼4のウェブ43が延伸する断面方向の延伸長h2よりも小さくしてもよい。   As shown in FIG. 10, the structural steel connecting structure 1 to which the present invention is applied includes three or more H-shaped steels 2 connected in the extending direction Y of the web 23, and both side portions in the extending direction Y of the web 23. The stretch length h1 in the cross-sectional direction in which the web 33 of the H-shaped steel 3 of S is stretched is smaller than the stretch length h2 in the cross-sectional direction in which the web 43 of the H-shaped steel 4 in the intermediate portion C is stretched in the stretch direction Y of the web 23. May be.

ここで、本発明を適用した形鋼連結構造1は、図5〜図10に示すように、互いに隣り合って連結される複数のH形鋼2のうち、何れか一方のH形鋼3のフランジ30が、何れか他方のH形鋼4のフランジ40と接合されるものとなる。   Here, as shown in FIGS. 5 to 10, the structural steel connecting structure 1 to which the present invention is applied is one of the H-shaped steels 3 among the plurality of H-shaped steels 2 that are connected adjacent to each other. The flange 30 is joined to the flange 40 of the other H-section steel 4.

このとき、フランジ20は、互いに隣り合って連結される複数のH形鋼2のうち、何れか一方のH形鋼3のフランジ30と、何れか他方のH形鋼4のフランジ40とが、互いに対向するように配置されて当接されるものとなる。   At this time, the flange 20 includes a flange 30 of any one of the H-section steels 3 and a flange 40 of any other H-section steel 4 among the plurality of H-section steels 2 adjacent to each other. They are arranged so as to face each other and come into contact with each other.

フランジ20は、一方のH形鋼3のフランジ30が、他方のH形鋼4のフランジ40と当接されて、断面方向でウェブ23の近傍の2箇所以上で、ボルト6又はビス等を用いたボルト接合等により乾式接合される。なお、フランジ20は、一方のH形鋼3のフランジ30と、他方のH形鋼4のフランジ40とが、溶接接合等により湿式接合されてもよい。   As for the flange 20, the flange 30 of one H-section steel 3 is brought into contact with the flange 40 of the other H-section steel 4, and bolts 6 or screws are used at two or more locations near the web 23 in the cross-sectional direction. It is dry-type joined by bolting etc. In addition, as for the flange 20, the flange 30 of one H-section steel 3 and the flange 40 of the other H-section steel 4 may be wet-joined by welding joining etc.

フランジ20には、ウェブ23と干渉させないものとしながら、ウェブ23にできるだけ接近させて、断面方向でウェブ23の近傍で、一方のH形鋼3のフランジ30から他方のH形鋼4のフランジ40まで貫通するようにボルト6又はビス等が設けられる。   The flange 20 is made as close as possible to the web 23 while not interfering with the web 23, and in the vicinity of the web 23 in the cross-sectional direction, from the flange 30 of one H-section steel 3 to the flange 40 of the other H-section steel 4. Bolts 6 or screws or the like are provided so as to penetrate to the end.

フランジ20には、例えば、図5、図8に示すように、一方のH形鋼3のウェブ33の両側方、及び、他方のH形鋼4のウェブ43の両側方にボルト6又はビス等が設けられて、断面方向でウェブ23の近傍の4箇所で、ボルト6又はビス等を用いて乾式接合される。   For example, as shown in FIGS. 5 and 8, the flange 20 has bolts 6 or screws or the like on both sides of the web 33 of one H-section steel 3 and on both sides of the web 43 of the other H-section steel 4. Are provided and are dry-bonded using bolts 6 or screws at four locations near the web 23 in the cross-sectional direction.

また、フランジ20は、一方のH形鋼3のウェブ33と他方のH形鋼4のウェブ43とが幅方向Xで接近して配置される場合に、図11(a)に示すように、ウェブ23の近傍の3箇所で、ボルト6又はビス等を用いて乾式接合されてもよく、さらに、図11(b)に示すように、ウェブ23の近傍の2箇所で、ボルト6又はビス等を用いて乾式接合されてもよい。フランジ20は、一方のH形鋼3のウェブ33及び他方のH形鋼4のウェブ43が大きく偏心して配置される場合にも、図11(c)に示すように、ウェブ23の近傍の2箇所で、ボルト6又はビス等を用いて乾式接合されるものとなる。   When the flange 20 is disposed so that the web 33 of one H-section steel 3 and the web 43 of the other H-section steel 4 are close to each other in the width direction X, as shown in FIG. It may be dry-bonded using bolts 6 or screws at three locations in the vicinity of the web 23. Furthermore, as shown in FIG. 11 (b), the bolts 6 or screws or the like at two locations in the vicinity of the web 23. May be used for dry bonding. Even when the web 33 of one H-section steel 3 and the web 43 of the other H-section steel 4 are arranged so as to be greatly decentered, the flange 20 has a 2 in the vicinity of the web 23 as shown in FIG. In this place, dry bonding is performed using bolts 6 or screws.

本発明を適用した形鋼連結構造1は、ウェブ23を偏心させた複数のH形鋼2を互いに連結することで、複数のH形鋼2全体の横座屈耐力を向上させることを目的とする。ここでは、本発明を適用した形鋼連結構造1が弾性変形する範囲で、ウェブ23を偏心させることによる弾性座屈耐力の変化を検討するために、有限帯板法解析を実施した。   The structural steel connection structure 1 to which the present invention is applied aims to improve the lateral buckling strength of the entire plurality of H-section steels 2 by connecting the plurality of H-section steels 2 with the webs 23 eccentric to each other. . Here, in order to examine the change in the elastic buckling strength due to the eccentricity of the web 23 within the range in which the structural steel connection structure 1 to which the present invention is applied is elastically deformed, a finite strip method analysis was performed.

この有限帯板法解析では、図2に示すように、フランジ20の幅寸法Bを100mmとして、フランジ20の板厚tfを9mm、ウェブ23の板厚twを6mmとした。また、この有限帯板法解析では、2本のH形鋼2が連結される場合に、各々のH形鋼2の部材成Hを250mmとし、3本のH形鋼2が連結される場合に、各々のH形鋼2の部材成Hを200mmとして、H形鋼2の長手方向の両端部に等曲げ荷重を負荷させるものとした。   In this finite strip method analysis, as shown in FIG. 2, the width B of the flange 20 was 100 mm, the plate thickness tf of the flange 20 was 9 mm, and the plate thickness tw of the web 23 was 6 mm. Further, in this finite strip method analysis, when two H-section steels 2 are connected, the component H of each H-section steel 2 is 250 mm, and three H-section steels 2 are connected. Further, the member H of each H-section steel 2 is set to 200 mm, and an equal bending load is applied to both ends in the longitudinal direction of the H-section steel 2.

この有限帯板法解析の結果は、2本のH形鋼2が連結される場合が、図12に示されるとともに、3本のH形鋼2が連結される場合が、図13に示される。ここでは、ウェブを偏心させていない従来技術の解析結果を「無偏心」と表記して、横座屈耐力及び局部座屈耐力の基準とする(横座屈耐力比=1.00、局部座屈耐力比=1.00)。   As a result of the finite strip method analysis, FIG. 12 shows a case where two H-section steels 2 are connected, and FIG. 13 shows a case where three H-section steels 2 are connected. . Here, the analysis result of the prior art in which the web is not eccentric is expressed as “no eccentricity” and is used as a reference for lateral buckling strength and local buckling strength (lateral buckling strength ratio = 1.00, local buckling strength) Ratio = 1.00).

本発明を適用した形鋼連結構造1の解析結果では、図5、図8に示される互いに幅方向Xに反転させた複数のH形鋼2が連結される場合を「逆方向に偏心」と表記するとともに、図7、図9に示される複数のH形鋼2の各々でウェブ23が偏心する延長比Rを略同一とした場合を「同方向に偏心」と表記する。   In the analysis result of the structural steel connecting structure 1 to which the present invention is applied, the case where a plurality of H-section steels 2 reversed in the width direction X shown in FIGS. 5 and 8 are connected is referred to as “eccentric in the reverse direction”. In addition, the case where the extension ratio R at which the web 23 is eccentric in each of the plurality of H-section steels 2 shown in FIGS. 7 and 9 is substantially the same is expressed as “eccentric in the same direction”.

このとき、本発明を適用した形鋼連結構造1は、「逆方向に偏心」及び「同方向に偏心」の何れの場合においても、ウェブを偏心させていない従来技術と比較して、図12、図13に示すように、「無偏心」の横座屈耐力比=1.00を基準に、本発明は横座屈耐力比=1.01〜2.23となり、横座屈耐力の座屈耐力比が向上することがわかる。   At this time, the structural steel connecting structure 1 to which the present invention is applied is compared with the prior art in which the web is not eccentric in any of the cases of “eccentric in the opposite direction” and “eccentric in the same direction” as shown in FIG. As shown in FIG. 13, the lateral buckling strength ratio of the present invention is 1.01 to 2.23 based on the “no eccentric” lateral buckling strength ratio = 1.00, and the buckling strength ratio of the lateral buckling strength. Can be seen to improve.

本発明を適用した形鋼連結構造1は、2本のH形鋼2が連結される場合に、ウェブ23が偏心する延長比Rを5.5/4.5、6/4、7/3として、「逆方向に偏心」させるものとしたときに、特に、「無偏心」の局部座屈耐力比=1.00を基準に、本発明は局部座屈耐力比=1.03〜1.07となり、また、「無偏心」の横座屈耐力比=1.00を基準に、本発明は横座屈耐力比=1.06〜1.35となって、局部座屈耐力の座屈耐力比を向上させると同時に、横座屈耐力の座屈耐力比が向上することがわかる。   In the structural steel connecting structure 1 to which the present invention is applied, when the two H-shaped steels 2 are connected, the extension ratio R at which the web 23 is eccentric is 5.5 / 4.5, 6/4, 7/3. In the present invention, the local buckling strength ratio of 1.03-1 to 1.3 is particularly determined based on the local buckling strength ratio of “no eccentricity” = 1.00. On the basis of “no eccentric” lateral buckling strength ratio = 1.00, the present invention has a lateral buckling strength ratio = 1.6-1.35, and the buckling strength ratio of the local buckling strength It can be seen that the buckling strength ratio of the lateral buckling strength is improved at the same time.

また、本発明を適用した形鋼連結構造1は、ウェブ23が偏心する延長比Rを5.5/4.5、6/4、7/3として、2本のH形鋼2が連結される場合に、「同方向に偏心」させて、又は、3本のH形鋼2が連結される場合に、「逆方向に偏心」、「同方向に偏心」させるときでも、局部座屈耐力の座屈耐力比をあまり低下させることなく、横座屈耐力の座屈耐力比が向上することがわかる。なお、このとき、H形鋼2を幅方向Xに反転させた場合の延長比Rは、4.5/5.5、4/6、3/7となり、本発明でウェブ23が偏心する延長比Rを3/7〜7/3としたものとなる。   Further, in the structural steel connecting structure 1 to which the present invention is applied, the two H-section steels 2 are connected by setting the extension ratio R at which the web 23 is eccentric to 5.5 / 4.5, 6/4, 7/3. When the three H-sections 2 are connected, even if they are “eccentric in the opposite direction” and “eccentric in the same direction”, the local buckling strength It can be seen that the buckling strength ratio of the lateral buckling strength is improved without significantly reducing the buckling strength ratio of. At this time, the extension ratio R when the H-section steel 2 is inverted in the width direction X is 4.5 / 5.5, 4/6, 3/7, and the extension in which the web 23 is eccentric in the present invention. The ratio R is 3/7 to 7/3.

さらに、本発明を適用した形鋼連結構造1は、特に、ウェブ23が偏心する延長比Rを8/2、9/1として、「逆方向に偏心」させるものとしたときに、「無偏心」の横座屈耐力比=1.00を基準に、「逆方向に偏心」は横座屈耐力比=1.62〜2.23となり、横座屈耐力の座屈耐力比が著しく向上することがわかる。なお、このとき、H形鋼2を幅方向Xに反転させた場合の延長比Rは、2/8、1/9となる。   Furthermore, the structural steel connecting structure 1 to which the present invention is applied is particularly suitable when the extension ratio R at which the web 23 is eccentric is set to 8/2 and 9/1 and "eccentric in the reverse direction". The lateral buckling strength ratio is 1.02 to 2.33, and the buckling strength ratio of the lateral buckling strength is remarkably improved. . At this time, the extension ratio R when the H-section steel 2 is inverted in the width direction X is 2/8, 1/9.

このように、本発明を適用した形鋼連結構造1は、図5〜図10に示すように、ウェブ23を偏心させた複数のH形鋼2を互いに連結して、フランジ20と直交する方向の軸回り(弱軸回り)の断面二次モーメント及び材軸回りの捩じり抵抗を増大させることで、複数のH形鋼2の全体の横座屈耐力を向上させることが可能となる。   As described above, in the structural steel connecting structure 1 to which the present invention is applied, as shown in FIGS. 5 to 10, a plurality of H-shaped steels 2 with the webs 23 eccentric are connected to each other and perpendicular to the flange 20. It is possible to improve the overall lateral buckling strength of the plurality of H-section steels 2 by increasing the cross-sectional secondary moment around the axis (weak axis) and the torsional resistance around the material axis.

本発明を適用した形鋼連結構造1は、H形鋼2と断面形状等の異なる補強用添接部材やチャンネルからなる補剛部材を用意することを必要としないで、また、H形鋼2そのものの大断面化を必要とすることなく、ウェブ23を偏心させた略同一断面形状のH形鋼2が連結されて、複数のH形鋼2の全体の横座屈耐力を向上させることができる。   The structural steel connection structure 1 to which the present invention is applied does not require the preparation of a reinforcing attachment member or a reinforcing attachment member or a channel having a different cross-sectional shape from the H-shaped steel 2, and the H-shaped steel 2 The H-section steel 2 having substantially the same cross-sectional shape in which the web 23 is eccentric can be connected without requiring an increase in the cross-section of the web itself, and the overall lateral buckling strength of the plurality of H-section steels 2 can be improved. .

これにより、本発明を適用した形鋼連結構造1は、補強用添接部材又はチャンネル等の追加や大断面部材を用いずに、同一のコイルから製作することのできるH形鋼2のみを用いて横座屈耐力を向上させることができるため、本発明を適用した形鋼連結構造1の製造の効率性、建築現場での施工性の向上を実現することが可能となる。   As a result, the structural steel connection structure 1 to which the present invention is applied uses only the H-section steel 2 that can be manufactured from the same coil without adding reinforcing attachment members or channels or using a large cross-section member. Since the lateral buckling strength can be improved, it is possible to improve the manufacturing efficiency of the structural steel connection structure 1 to which the present invention is applied and improve the workability at the construction site.

ここで、本発明を適用した形鋼連結構造1は、ウェブ23が偏心して配置されることで、図2に示すように、フランジ20の一端20aから接続部Wまでの一端側離間距離b1、又は、フランジ20の他端20bから接続部Wまでの他端側離間距離b2の何れかが、ウェブを偏心させていない従来技術と比較して大きくなり、フランジ20の幅厚比(bf/tf=b1/tf、又は、bf/tf=b2/tf)が大きいものとなる。   Here, in the structural steel connecting structure 1 to which the present invention is applied, the web 23 is arranged eccentrically, so that as shown in FIG. 2, one end side separation distance b1 from one end 20a of the flange 20 to the connecting portion W, Alternatively, any one of the other end side separation distances b2 from the other end 20b of the flange 20 to the connecting portion W is larger than that in the conventional technique in which the web is not eccentric, and the width-thickness ratio (bf / tf) of the flange 20 is increased. = B1 / tf or bf / tf = b2 / tf).

このとき、本発明を適用した形鋼連結構造1は、フランジ20の幅厚比が従来技術よりも大きくなるため、フランジ20の板要素の局部座屈耐力の低下が懸念される。しかし、本発明を適用した形鋼連結構造1は、図5〜図10に示すように、互いに隣り合った複数のH形鋼2がフランジ20で接合されるため、ボルト6又はビス等を用いた乾式接合等により接合されたフランジ20で拘束力を発揮するものとなる。   At this time, in the structural steel connection structure 1 to which the present invention is applied, the width-thickness ratio of the flange 20 becomes larger than that of the prior art, so there is a concern that the local buckling strength of the plate element of the flange 20 is lowered. However, the structural steel connecting structure 1 to which the present invention is applied has a structure in which a plurality of H-section steels 2 adjacent to each other are joined by a flange 20 as shown in FIGS. The flange 20 bonded by dry bonding or the like exhibits a binding force.

そして、本発明を適用した形鋼連結構造1は、互いに接合されたフランジ20で拘束力を発揮することで、この拘束力がウェブ23に伝達されるととともに、接合されていないフランジ20にも拘束力が伝達されて、フランジ20、ウェブ23の相互拘束効果を増大させて、フランジ20の板要素の局部座屈耐力の低下を抑制することが可能となる。   And the shape-steel connection structure 1 to which this invention is applied demonstrates restraint force in the flange 20 joined mutually, and this restraint force is transmitted to the web 23, and also to the flange 20 which is not joined. The restraining force is transmitted to increase the mutual restraining effect of the flange 20 and the web 23, and it is possible to suppress a decrease in the local buckling strength of the plate element of the flange 20.

本発明を適用した形鋼連結構造1は、特に、一端側離間距離b1と他端側離間距離b2との幅方向Xの延長比Rを3/7〜7/3とすることで、図12、図13に示すように、フランジ20の板要素の局部座屈耐力の低下を確実に抑制すると同時に、複数のH形鋼2の全体の横座屈耐力を向上させることが可能となる。   In the structural steel connecting structure 1 to which the present invention is applied, in particular, the extension ratio R in the width direction X between the one end side separation distance b1 and the other end side separation distance b2 is set to 3/7 to 7/3. As shown in FIG. 13, it is possible to reliably suppress a decrease in the local buckling strength of the plate element of the flange 20 and to improve the overall lateral buckling strength of the plurality of H-section steels 2.

本発明を適用した形鋼連結構造1は、図5、図8に示すように、何れか一方のH形鋼3のウェブ33と、何れか他方のH形鋼4のウェブ43とで、フランジ20の中央よりも偏心させた位置を互いに異ならせて配置されることで、フランジ20に直交する方向の軸回り(弱軸回り)の断面二次モーメントを強化し易くなり、複数のH形鋼2の全体の横座屈耐力をより効率的に向上させることが可能となる。   As shown in FIG. 5 and FIG. 8, the structural steel connection structure 1 to which the present invention is applied includes a web 33 of one H-section steel 3 and a web 43 of either H-section steel 4. Since the positions eccentric from the center of 20 are different from each other, it becomes easy to reinforce the cross-sectional secondary moment about the axis in the direction orthogonal to the flange 20 (about the weak axis), and a plurality of H-section steels Thus, the overall lateral buckling strength of 2 can be improved more efficiently.

本発明を適用した形鋼連結構造1は、図5〜図10に示すように、複数のH形鋼2のフランジ20の接合を乾式接合とすることで、形鋼連結構造1の組立及び解体が容易となり、製造性及び施工性を向上させることが可能となる。本発明を適用した形鋼連結構造1は、さらに、断面方向でウェブ23の近傍の2箇所以上で乾式接合することで、フランジ20の接合箇所における応力伝達がより効率的となり、期待する構造性能が発揮され易くなる。   As shown in FIG. 5 to FIG. 10, the structural steel connecting structure 1 to which the present invention is applied is an assembly and disassembly of the structural steel connecting structure 1 by making the joining of the flanges 20 of the plurality of H-section steels 2 dry. It becomes easy, and it becomes possible to improve manufacturability and workability. The structural steel connecting structure 1 to which the present invention is applied is further dry-bonded at two or more locations in the vicinity of the web 23 in the cross-sectional direction, so that stress transmission at the joint location of the flange 20 becomes more efficient and expected structural performance. Is easily exhibited.

また、本発明を適用した形鋼連結構造1は、図10に示すように、特に、3本のH形鋼2が連結される場合に、両側部SのH形鋼3におけるウェブ33の延伸長h1を、中間部CのH形鋼4におけるウェブ43の延伸長h2よりも小さくすることもできる。このとき、本発明を適用した形鋼連結構造1は、中間部Cのウェブ43の延伸長h2を、両側部Sのウェブ33の延伸長h1で除した値を、延伸比率n(=h2/h1)として表記すると、有限帯板法解析の結果から延伸比率nと座屈耐力比との関係が図14に示される。   In addition, as shown in FIG. 10, in the structural steel connection structure 1 to which the present invention is applied, particularly when three H-section steels 2 are coupled, the web 33 is stretched in the H-section steel 3 on both sides S. The length h1 can be made smaller than the stretch length h2 of the web 43 in the H-section steel 4 of the intermediate part C. At this time, in the structural steel connection structure 1 to which the present invention is applied, a value obtained by dividing the stretch length h2 of the web 43 in the intermediate portion C by the stretch length h1 of the web 33 in the both side portions S is expressed as a stretch ratio n (= h2 / When expressed as h1), the relationship between the stretch ratio n and the buckling strength ratio is shown in FIG. 14 from the results of the finite strip method analysis.

本発明を適用した形鋼連結構造1は、特に、3本のH形鋼2が連結される場合に、両側部Sのウェブ33の延伸長h1を、中間部Cのウェブ43の延伸長h2よりも小さくすることで、中間部CのH形鋼4のフランジ40が両側部Sに寄せて配置されるものとなる。これにより、本発明を適用した形鋼連結構造1は、中間部Cのフランジ40が両側部Sに寄せて配置されるため、複数のH形鋼2の総鋼材量を増加させることなく、3本のH形鋼2の強軸回りの断面二次モーメント及び断面係数を増大させて、複数のH形鋼2の全体の耐力及び剛性を経済的に向上させることが可能となる。   In the structural steel connection structure 1 to which the present invention is applied, particularly when three H-sections 2 are connected, the stretch length h1 of the web 33 on both sides S is set to the stretch length h2 of the web 43 on the intermediate portion C. By making it smaller, the flange 40 of the H-section steel 4 of the intermediate part C is arranged close to both side parts S. Thereby, in the structural steel connection structure 1 to which the present invention is applied, since the flange 40 of the intermediate part C is arranged close to the both side parts S, the total steel material amount of the plurality of H-section steels 2 is increased without increasing the amount of steel 3. It is possible to economically improve the overall proof stress and rigidity of the plurality of H-section steels 2 by increasing the sectional secondary moment and section modulus around the strong axis of the H-section steel 2.

本発明を適用した形鋼連結構造1は、図14に示すように、延伸比率nが1〜4の範囲で、延伸比率nが増加するほど、両側部SのH形鋼3における接合されていないフランジ30に対する両側部Sのウェブ33による拘束効果が増大し、両側部SのH形鋼3における接合されていないフランジ30の局部座屈耐力が向上するものとなる。また、本発明を適用した形鋼連結構造1は、延伸比率nが4より大きい範囲で、両側部SのH形鋼3における接合されていないフランジ30の局部座屈よりも、中間部CのH形鋼4におけるウェブ43の局部座屈が相対的に生じ易くなり、延伸比率nが増加しても板要素の局部座屈耐力は延伸比率nの増加に応じて単純に向上するものとならない。   As shown in FIG. 14, the structural steel connection structure 1 to which the present invention is applied is joined in the H-section steel 3 of the side portions S as the stretching ratio n increases in the range of the stretching ratio n of 1 to 4. The restraining effect by the web 33 of the both side portions S with respect to the non-flange 30 is increased, and the local buckling strength of the unjoined flange 30 in the H-shaped steel 3 of the both side portions S is improved. In addition, in the structural steel connecting structure 1 to which the present invention is applied, in the range where the stretch ratio n is larger than 4, the intermediate portion C is more than the local buckling of the unjoined flange 30 in the H-shaped steel 3 of the side portions S. The local buckling of the web 43 in the H-shaped steel 4 is relatively likely to occur, and even if the stretching ratio n increases, the local buckling strength of the plate element does not simply improve as the stretching ratio n increases. .

このため、本発明を適用した形鋼連結構造1は、中間部Cのウェブ43の延伸長h2を、両側部Sのウェブ33の延伸長h1の4倍以下とすることで(延伸比率n≦4)、フランジ20のみを局部座屈の評価対象として設計を容易なものとすると同時に、フランジ20の板要素の局部座屈耐力を大幅に向上させることが可能となる。   For this reason, in the structural steel connecting structure 1 to which the present invention is applied, the stretch length h2 of the web 43 in the intermediate portion C is set to be not more than 4 times the stretch length h1 of the web 33 in the both side portions S (stretch ratio n ≦ 4) Only the flange 20 is evaluated as the local buckling evaluation target, and at the same time, the local buckling strength of the plate element of the flange 20 can be greatly improved.

本発明を適用した形鋼連結構造1は、図2に示すように、ウェブ23の延伸長hが下記(1)式から算出されるものであり、ウェブ23の幅厚比がh/twとなる。ウェブ23の幅厚比(h/tw)を、下記(2)式で規定される値とすることで、複数のH形鋼2の全体の横座屈耐力と板要素の局部座屈耐力とを、より確実に向上させることが可能となる。ここで、F:鋼材の種類及び品質に応じて国土交通大臣が指定する基準強度(N/mm2)とする。 In the structural steel connection structure 1 to which the present invention is applied, as shown in FIG. 2, the stretch length h of the web 23 is calculated from the following equation (1), and the width-thickness ratio of the web 23 is h / tw. Become. By setting the width-thickness ratio (h / tw) of the web 23 to a value defined by the following equation (2), the overall lateral buckling strength of the plurality of H-section steels 2 and the local buckling strength of the plate element are obtained. It becomes possible to improve more reliably. Here, F: the standard strength (N / mm 2 ) specified by the Minister of Land, Infrastructure, Transport and Tourism according to the type and quality of the steel material.

Figure 0006589477
Figure 0006589477

Figure 0006589477
Figure 0006589477

ここで、圧延H形鋼の製作精度における延伸方向Yの部材成寸法の許容差は、2.0mm〜3.0mm以内(JIS G 3192)であるのに対して、溶接軽量H形鋼の製作精度における延伸方向Yの部材成寸法の許容差は、1.0mm以内(JIS G 3353)であるものと規定されている。   Here, the tolerance of the component dimension in the drawing direction Y in the manufacturing accuracy of the rolled H-section steel is within 2.0 mm to 3.0 mm (JIS G 3192), whereas the manufacture of the welded lightweight H-section steel. The tolerance of the component dimension in the stretching direction Y in accuracy is specified to be within 1.0 mm (JIS G 3353).

本発明を適用した形鋼連結構造1は、特に、H形鋼2に溶接軽量H形鋼が用いられることで、延伸方向Yの部材成寸法の許容差が小さいH形鋼2が用いられるものとなり、複数のH形鋼2を延伸方向Yに連続させて連結させるものであるにもかかわらず、形鋼連結構造1全体における寸法の製作誤差を極小化することができるため、製作、施工精度を向上させることが可能となる。   In the structural steel connecting structure 1 to which the present invention is applied, in particular, a welded lightweight H-section steel is used for the H-section steel 2, and the H-section steel 2 having a small tolerance in the component dimension in the drawing direction Y is used. Even though a plurality of H-sections 2 are connected continuously in the drawing direction Y, the manufacturing error of the dimensions of the entire section-connecting structure 1 can be minimized, so that the manufacturing and construction accuracy can be minimized. Can be improved.

本発明を適用した形鋼連結構造1は、さらに、H形鋼2として用いられる溶接軽量H形鋼が、ウェブ23とフランジ20とを高周波抵抗溶接するものであることから、アーク溶接で製作された通常の溶接H形鋼よりも溶接熱影響が小さく、ウェブ23やフランジ20の母材の熱影響による材質変化が狭い範囲で済むものとなるため、設計上想定した通りの所期する構造性能をH形鋼2に発揮させることがより容易に可能となる。   The section-steel connection structure 1 to which the present invention is applied is manufactured by arc welding because the welded light-weight H-section steel used as the H-section steel 2 welds the web 23 and the flange 20 with high-frequency resistance. In addition, since the effect of welding heat is smaller than that of normal welded H-shaped steel, and the material change due to the heat effect of the base material of the web 23 and the flange 20 is limited, the expected structural performance as designed. Can be more easily exhibited in the H-section steel 2.

以上、本発明の実施形態の例について詳細に説明したが、上述した実施形態は、何れも本発明を実施するにあたっての具体化の例を示したものに過ぎず、これらによって本発明の技術的範囲が限定的に解釈されてはならない。   As mentioned above, although the example of embodiment of this invention was demonstrated in detail, all the embodiment mentioned above showed only the example of actualization in implementing this invention, These are the technical aspects of this invention. The range should not be interpreted in a limited way.

1 :形鋼連結構造
2 :H形鋼
20 :フランジ
20a :一端
20b :他端
23 :ウェブ
3 :一方のH形鋼
30 :フランジ
33 :ウェブ
4 :他方のH形鋼
40 :フランジ
43 :ウェブ
6 :ボルト
7 :柱部材
70 :エンドプレート
8 :梁部材
9 :スチフナ
W :接続部
b1 :一端側離間距離
b2 :他端側離間距離
C :中間部
S :両側部
X :幅方向
Y :延伸方向
1: Shape steel connecting structure 2: H shape steel 20: Flange 20a: One end 20b: The other end 23: Web 3: One H shape steel 30: Flange 33: Web 4: The other H shape steel 40: Flange 43: Web 6: Bolt 7: Column member 70: End plate 8: Beam member 9: Stiffener W: Connection portion b1: One end side separation distance b2: Other end side separation distance C: Intermediate portion S: Both side portions X: Width direction Y: Extension direction

Claims (6)

複数の形鋼が連結された形鋼連結構造であって、
断面方向で幅方向に延びる一対のフランジと、一対の前記フランジまで延伸するウェブとを有して、前記ウェブの延伸方向に連結される複数のH形鋼を備え、
互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記フランジは、何れか他方の前記H形鋼の前記フランジと接合されて、
前記ウェブは、前記フランジに接続される接続部の位置が、前記フランジの幅方向の一端から前記接続部までの一端側離間距離と、前記フランジの幅方向の他端から前記接続部までの他端側離間距離とを異ならせて、前記フランジの幅方向の中央よりも偏心させて配置されていること
を特徴とする形鋼連結構造。
A structure connection structure in which a plurality of sections is connected,
A pair of flanges extending in the width direction in the cross-sectional direction, and a web extending to the pair of flanges, and a plurality of H-section steels connected in the extending direction of the web,
Among the plurality of H-section steels connected to each other, the flange of any one of the H-section steels is joined to the flange of any other H-section steel,
The web, the other position of the connecting portion connected to the flange, and one end side distance from the width direction of the one end of the flange to the connecting portion, the width direction of the other end of said flange to said connecting portion by varying the end-side distance, shaped steel connection structure is decentered than the center in the width direction, characterized in Tei Rukoto disposed of the flange.
前記ウェブは、前記一端側離間距離が前記他端側離間距離より大きい場合に、前記一端側離間距離と前記他端側離間距離との延長比を5/5超7/3以下とし、前記一端側離間距離が前記他端側離間距離より小さい場合に、前記延長比を3/7以上5/5未満として、前記フランジの幅方向の中央よりも偏心させて配置されること
を特徴とする請求項1記載の形鋼連結構造。
The web, when the one end distance is greater than the other end distance, the extension ratio of the one end a distance between the other end distance 5/5 a super 7/3 or less, the one end When the side separation distance is smaller than the other end side separation distance, the extension ratio is set to be 3/7 or more and less than 5/5, and the eccentricity is arranged more eccentric than the center in the width direction of the flange. Item 1. The structural steel connection structure according to Item 1.
互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記ウェブは、何れか他方の前記H形鋼の前記ウェブと、前記フランジの幅方向の中央よりも偏心させた位置を互いに異ならせて配置されること
を特徴とする請求項1又は2記載の形鋼連結構造。
Of the plurality of H-section steels connected to each other, the web of any one of the H-section steels is from the other web of the H-section steel and the center in the width direction of the flange. The structural steel connecting structure according to claim 1, wherein the eccentric positions are different from each other.
互いに隣り合って連結される複数の前記H形鋼のうち、何れか一方の前記H形鋼の前記フランジは、何れか他方の前記H形鋼の前記フランジと当接されて、断面方向で前記ウェブの近傍の2箇所以上で乾式接合されること
を特徴とする請求項1〜3の何れか1項記載の形鋼連結構造。
Among the plurality of H-section steels connected to each other, the flange of any one of the H-section steels is in contact with the flange of any other H-section steel, and the cross-section direction The shape-steel connection structure according to any one of claims 1 to 3, wherein dry joining is performed at two or more locations in the vicinity of the web.
前記ウェブの延伸方向に連結される3本以上の前記H形鋼を備え、
前記ウェブの延伸方向で両側部の前記H形鋼は、前記ウェブの延伸方向で中間部の前記H形鋼よりも、断面方向で前記ウェブが延伸する延伸長を小さいものとすること
を特徴とする請求項1〜4の何れか1項記載の形鋼連結構造。
Comprising three or more H-shaped steels connected in the extending direction of the web;
The H-section steel on both sides of the web in the drawing direction has a smaller drawing length in which the web extends in the cross-sectional direction than the H-section steel in the middle in the drawing direction of the web. The shaped steel connection structure according to any one of claims 1 to 4.
前記H形鋼は、一対の前記フランジと前記ウェブとをコイルから高周波抵抗溶接で接合した溶接軽量H形鋼が用いられること
を特徴とする請求項1〜5の何れか1項記載の形鋼連結構造。
The shape steel according to any one of claims 1 to 5, wherein the H-section steel is a welded lightweight H-section steel in which a pair of the flange and the web are joined from a coil by high-frequency resistance welding. Connected structure.
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