JP6332505B1 - Fire resistance performance test body and fire resistance performance test method for floor beam structure - Google Patents

Fire resistance performance test body and fire resistance performance test method for floor beam structure Download PDF

Info

Publication number
JP6332505B1
JP6332505B1 JP2017046150A JP2017046150A JP6332505B1 JP 6332505 B1 JP6332505 B1 JP 6332505B1 JP 2017046150 A JP2017046150 A JP 2017046150A JP 2017046150 A JP2017046150 A JP 2017046150A JP 6332505 B1 JP6332505 B1 JP 6332505B1
Authority
JP
Japan
Prior art keywords
floor
floor beam
frame
suspension
ceiling
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
JP2017046150A
Other languages
Japanese (ja)
Other versions
JP2018151198A (en
Inventor
優 横林
優 横林
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Sekisui House Ltd
Original Assignee
Sekisui House Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sekisui House Ltd filed Critical Sekisui House Ltd
Priority to JP2017046150A priority Critical patent/JP6332505B1/en
Application granted granted Critical
Publication of JP6332505B1 publication Critical patent/JP6332505B1/en
Publication of JP2018151198A publication Critical patent/JP2018151198A/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Building Environments (AREA)
  • Investigating Strength Of Materials By Application Of Mechanical Stress (AREA)

Abstract

【課題】メンブレン耐火工法に係る床梁構造体の載荷加熱試験に際し、床梁の下方および上方に天井材および床版等を支持する架構体に、床梁の変形に抵抗する応力が生じないようにして、床梁の変形量を適切に把握し得る試験体と試験方法を提供する。【解決手段】 床梁2の中間部を囲むように設けられる架構体5は、床梁2の上方に配置されて床梁2の上に載架される吊りフレーム6と、吊りフレーム6に吊持されて床梁2の側方に配置される床組みフレーム7とを具備する。床梁2と床組みフレーム7との間に床版4が載架され、床組みフレーム7の下側に天井材3が張設されて、架構体5、床版4および天井材3等の重量が全て床梁2に載荷される。吊りフレーム6は床梁2に対して床梁2のたわみ方向の変位を許容する節点を介して接合され、床組みフレーム7は、その長手方向中間部で分割されて床梁2のたわみ変形に追従して変位し得るように保持される。【選択図】 図10[PROBLEMS] In a loading heating test of a floor beam structure according to a membrane refractory construction method, a structure that supports ceiling materials and floor slabs below and above the floor beam is not subjected to stress that resists deformation of the floor beam. Thus, a test body and a test method capable of appropriately grasping the deformation amount of the floor beam are provided. SOLUTION: A frame body 5 provided so as to surround an intermediate portion of a floor beam 2 is suspended above the suspension beam 6 and a suspension frame 6 that is disposed above the floor beam 2 and mounted on the floor beam 2. And a floor assembly frame 7 that is held and arranged on the side of the floor beam 2. The floor slab 4 is mounted between the floor beam 2 and the floor frame 7, and the ceiling material 3 is stretched below the floor frame 7, so that the frame 5, the floor slab 4, the ceiling material 3, etc. All the weight is loaded on the floor beam 2. The suspension frame 6 is joined to the floor beam 2 through a node that allows displacement in the deflection direction of the floor beam 2, and the floor frame 7 is divided at the middle portion in the longitudinal direction to cause deformation of the floor beam 2. It is held so that it can follow and be displaced. [Selection] Figure 10

Description

本発明は、床梁構造体の耐火性能試験に供される試験体と、該試験体を用いた耐火性能試験方法に関する。   The present invention relates to a test body used for a fire resistance performance test of a floor beam structure and a fire resistance performance test method using the test body.

建築基準法および同法施行令には、建築物の用途、規模、立地等に応じて必要な防耐火上の技術的基準が規定されており、一定の条件に該当する建築物は耐火建築物とするように定められている。それらのうち、住宅としての用途に供される建築物については、都市計画法で指定された防火地域に建築される一定規模以上の戸建住宅や、防火地域または準防火地域に建築される3階建て以上の共同住宅を耐火建築物とすることとされている。   The Building Standard Law and the Ordinance for Enforcement of the Law stipulate necessary technical standards for fire and fire resistance depending on the use, scale, location, etc. of the building. It is stipulated that Of these, buildings that are used for residential purposes are constructed in detached houses of a certain size or larger in the fire prevention area specified by the City Planning Act, and in fire prevention areas or semi-fire prevention areas. It is said that a multi-storey apartment building will be a fireproof building.

建築基準法上の耐火建築物とは、主要構造部が耐火構造であるか、または火災の火熱に耐える性能に関して所定の技術的基準に適合するか、のいずれかに該当する建築物である。そして、主要構造部を耐火構造とするには、当該部分の構造を、建築基準法関連告示(平成12年建設省告示第1399号)に例示された構造方法とするか、または国土交通大臣の認定を取得した仕様(一般に認定仕様という)とすることとされている。また、前記の構造方法や認定仕様以外の新規な構造・工法によって耐火性能が必要な建築物を建築する場合には、国土交通省が指定した性能評価機関で要求性能が満足することを試験等の結果から確認し、個別に国土交通大臣の認定を取得する必要がある。   A fire-resistant building under the Building Standard Law is a building whose main structural part is a fire-resistant structure or meets a predetermined technical standard regarding the ability to withstand the fire heat of a fire. And, in order to make the main structure part into a fireproof structure, the structure of the part is made the structural method exemplified in the Building Standards Law-related notice (Ministry of Construction Notification No. 1399 in 2000) or by the Minister of Land, Infrastructure, Transport and Tourism. It is supposed to be a certified specification (generally called a certified specification). In addition, when building a building that requires fireproof performance by a new structure / construction method other than the above-mentioned structural methods or certified specifications, testing that the required performance is satisfied by a performance evaluation organization designated by the Ministry of Land, Infrastructure, Transport and Tourism, etc. It is necessary to obtain the approval of the Minister of Land, Infrastructure, Transport and Tourism individually from the results of the above.

主要構造部が鉄骨造からなる建築物については、耐火建築物として要求される技術的基準を満たすために、鉄骨材からなる柱や梁にロックウール等の耐火被覆材を吹き付けたり巻きつけたりして、火災時における鉄骨材の強度低下を防ぐのが従来の一般的な工法であった。しかし、その種の耐火工法には、耐火被覆材等を吹き付ける際の施工性や、耐火被覆材の飛散による環境汚染問題、耐火被覆材の厚みによって生じる周辺部材の納まりの制約、といった諸問題があった。そこで、個々の鉄骨材に耐火被覆を施すのではなく、耐火性を有する天井材、壁材、床版等で鉄骨造の躯体を包囲することにより、躯体全体を一体的に火熱から保護する、いわゆる鉄骨メンブレン耐火工法が開発され、実用化されている(例えば、特許文献1、2等)。   For buildings whose main structural parts are steel structures, fire-resistant coating materials such as rock wool are blown or wrapped around pillars and beams made of steel frames to meet the technical standards required for fire-resistant buildings. The conventional general construction method is to prevent the strength of the steel frame from being reduced during a fire. However, this type of refractory construction method has various problems such as workability when spraying refractory coating, etc., environmental pollution problems due to scattering of refractory coating, and restrictions on the storage of peripheral members caused by the thickness of the refractory coating. there were. Therefore, instead of applying a fireproof coating to individual steel frames, by surrounding the steel frame with a fireproof ceiling material, wall material, floor slab, etc., the entire frame is integrally protected from fire heat, A so-called steel membrane fireproof method has been developed and put into practical use (for example, Patent Documents 1 and 2).

特開平10−325204号公報(積水ハウス)JP 10-325204 A (Sekisui House) 特開2000−282598号公報(積水化学工業)JP 2000-282598 A (Sekisui Chemical Co., Ltd.)

個々に耐火被覆を施した鉄骨材については、その耐火性能を評価するための試験方法が、性能評価機関の間で標準化されている。例えば、床梁として用いられる鉄骨梁の試験では、図11および図12に示すように、上方が開口した略箱型の加熱炉90の上部に耐火被覆を施した鉄骨梁(試験体)91を架け渡して、その中央部分を下方からバーナー92で加熱する。このとき、鉄骨梁91の両端部は、耐火被覆を施さない状態で加熱炉90の外側まで延出させ、炉外に設けたピンローラー支承93を介して支持する。両支承間のスパンは4,000mm以上、加熱範囲は3,000mm以上と定められている。加熱時には、反力フレーム94に取り付けた油圧ジャッキ等の加力装置95を介して、鉄骨梁91の中間部2か所に上方から、鉄骨梁91の長期許容応力度に相当する応力度を生じさせる鉛直荷重を載荷する。そして、加熱炉90内が規定の条件に達してから規定時間を経過するまでの間、鉄骨梁91のたわみ変形量が規定値以下に納まること、が合格条件となる。   For steel frames that have been individually fire-resistant coated, test methods for evaluating their fire resistance performance have been standardized among performance evaluation organizations. For example, in the test of a steel beam used as a floor beam, as shown in FIGS. 11 and 12, a steel beam (test body) 91 having a fireproof coating on the upper portion of a substantially box-shaped heating furnace 90 having an upper opening is provided. It is bridged and its central part is heated by a burner 92 from below. At this time, both ends of the steel beam 91 are extended to the outside of the heating furnace 90 in a state where no fireproof coating is applied, and are supported via pin roller supports 93 provided outside the furnace. The span between both supports is set to 4,000 mm or more, and the heating range is set to 3,000 mm or more. At the time of heating, a degree of stress corresponding to the long-term allowable stress degree of the steel beam 91 is generated from above at the two intermediate portions of the steel beam 91 through a force device 95 such as a hydraulic jack attached to the reaction force frame 94. The vertical load to be loaded is loaded. The pass condition is that the bending deformation amount of the steel beam 91 falls within the specified value until the specified time elapses after the inside of the heating furnace 90 reaches the specified condition.

鉄骨梁を耐火性の天井材や床版で包囲したメンブレン耐火工法に係る床梁構造体についても、基本的には前述した鉄骨梁単体の試験方法に準じて、載荷加熱状態における鉄骨梁自体の変形量を測定する方法で、鉄骨梁を含む床梁構造体全体の耐火性能を評価することが求められる。そのためには、鉄骨梁の下側に実際と同様の天井下地を組んで石膏ボード等の天井材を張設するとともに、鉄骨梁の上面にはALCパネル等の床版を敷設した試験体を準備する必要がある。それらの天井材や床版は、鉄骨梁を囲むように設けた鋼製の架構体を介して、天井材の周囲に配置することになる。鉄骨梁の両端近傍は架構体の外側まで延出させ、その延出部分を、耐火被覆がない状態で、加熱炉の外側に設けたピンローラー支承を介して支持する。このとき、架構体自体の重量、および架構体を介して組み付けられる天井材や床版等の重量は鉄骨梁が負担することになるが、鉄骨梁には、それらの総重量を含めて、長期許容応力度に相当する鉛直荷重を上方から加力装置によって載荷する。その状態で、架構体や天井材、床版等を含む試験体全体を下方から加熱し、所定の条件下で鉄骨梁自体のたわみ変形量を測定することになる。   The floor beam structure related to the membrane refractory construction method, in which the steel beam is surrounded by a fireproof ceiling material and floor slab, is basically in accordance with the test method for the steel beam itself as described above. It is required to evaluate the fire resistance performance of the entire floor beam structure including the steel beam by the method of measuring the deformation amount. To do so, prepare a specimen with a ceiling base material such as gypsum board, and a floor slab such as an ALC panel on the upper surface of the steel beam. There is a need to. Those ceiling materials and floor slabs are arranged around the ceiling material via a steel frame provided so as to surround the steel beam. The vicinity of both ends of the steel beam is extended to the outside of the frame body, and the extended portion is supported via a pin roller support provided outside the heating furnace in a state without a fireproof coating. At this time, the steel beam bears the weight of the frame itself and the weight of the ceiling materials and floor slabs assembled via the frame. A vertical load corresponding to the allowable stress level is loaded from above by a force device. In this state, the entire test body including the frame body, ceiling material, floor slab, etc. is heated from below, and the amount of deflection deformation of the steel beam itself is measured under predetermined conditions.

かかる試験を実施する際に問題になるのは、鉄骨梁の周囲に天井材や床版を保持する架構体の構造である。つまり、鉄骨梁に載荷すべき鉛直荷重の一部が、鉄骨梁を囲むように設けられる架構体等に伝わって、架構体を構成する部材に内部応力が生じると、その応力が鉄骨梁のたわみ変形に抵抗する作用をなす。すると、載荷した荷重に対する鉄骨梁の変形量を正確に測定することが困難になり、床梁構造体の耐火性能を適正に評価できなくなってしまう。   A problem in carrying out such a test is the structure of the frame structure that holds the ceiling material and the floor slab around the steel beam. In other words, when a part of the vertical load to be loaded on the steel beam is transmitted to the frame body, etc., provided so as to surround the steel beam, and internal stress is generated in the members constituting the frame body, the stress is deflected by the steel beam. It acts to resist deformation. Then, it becomes difficult to accurately measure the deformation amount of the steel beam with respect to the loaded load, and the fire resistance performance of the floor beam structure cannot be properly evaluated.

本発明は、かかる問題に着目してなされたものであり、耐火性を有する天井材や床版で床梁を包囲したメンブレン耐火工法に係る床梁構造体の耐火性能を載荷加熱試験によって評価するに際し、天井材や床版等を支持する架構体に、床梁の変形に抵抗する応力が生じないようにして、床梁の変形量を適切に把握することのできる耐火性能試験体と、該試験体を用いた耐火性能試験方法を提供するものである。   The present invention has been made paying attention to such problems, and evaluates the fire resistance performance of the floor beam structure according to the membrane fireproof method in which the floor beam is surrounded by a ceiling material or floor slab having fire resistance by a loading heating test. At the time, the fireproof performance test body capable of appropriately grasping the deformation amount of the floor beam without causing stress to resist the deformation of the floor beam in the frame structure supporting the ceiling material, the floor slab, etc. A fire resistance test method using a test body is provided.

前述の目的を達成するため、本発明の床梁構造体の耐火性能試験体は、床梁の下側が天井材によって被覆されるとともに、前記床梁の上側が床版によって被覆される床梁構造体について、前記床梁に鉛直荷重を載荷した状態で前記床梁構造体を下方から加熱したときの前記床梁のたわみ変形量を測定することにより、前記床梁構造体の耐火性能を評価するための試験体であって、前記床梁の下側および上側に天井材および床版をそれぞれ組み付けるための架構体が、前記床梁の両端近傍を除いた中間部を囲むようにして、前記床梁の材心を長軸とする平面視矩形の領域にわたって設けられ、前記架構体は、前記床梁の上方に配置されて前記床梁の上に載架される吊りフレームと、前記吊りフレームに吊持されて前記床梁の側方に配置される床組みフレームと、を具備して、前記床梁と前記床組みフレームとの間に前記床版が載架され、前記床組みフレームの内側または下側に、適宜の天井下地材および断熱材を介して天井材が張設されることにより、前記架構体、前記床版および前記天井材等の重量を含む鉛直荷重が前記床梁に載荷されるとともに、前記吊りフレームは前記床梁に対して床梁のたわみ方向の変位を許容する節点を介して接合され、前記床組みフレームは、その長手方向中間部で構造的に分割され、前記床梁のたわみ変形に追従して下方に変位し得るように保持された、との構成を採用する。   In order to achieve the above-mentioned object, a fireproof performance test body for a floor beam structure according to the present invention includes a floor beam structure in which a lower side of a floor beam is covered with a ceiling material and an upper side of the floor beam is covered with a floor slab. The fire resistance performance of the floor beam structure is evaluated by measuring the amount of deformation of the floor beam when the floor beam structure is heated from below with a vertical load applied to the floor beam. A frame for assembling a ceiling material and a floor slab respectively on the lower side and upper side of the floor beam so as to surround an intermediate portion excluding the vicinity of both ends of the floor beam, The frame is provided over a rectangular region in plan view with the timber as the long axis, and the frame body is disposed above the floor beam and mounted on the floor beam, and is suspended from the suspension frame. The floor being placed on the side of the floor beam And the floor slab is mounted between the floor beam and the floor frame, and an appropriate ceiling base material and a heat insulating material are interposed inside or below the floor frame. As the ceiling material is stretched, a vertical load including the weight of the frame body, the floor slab, and the ceiling material is loaded on the floor beam, and the suspension frame is placed on the floor beam with respect to the floor beam. It is joined through a node that allows displacement in the deflection direction of the beam, and the floor frame is structurally divided at the middle part in the longitudinal direction so that it can be displaced downward following the deflection deformation of the floor beam. The structure with which it was hold | maintained is employ | adopted.

この構成によれば、床梁を囲む架構体と、その架構体によって保持される床版および天井の全重量を合わせた鉛直荷重が全て床梁に載荷され、かつ、その荷重による床梁の変形に抵抗する応力が前記架構体等に生じることを回避することができるので、架構体の外方まで延び出した床梁の両端近傍部分を耐火被覆がない状態で炉外の支点間に架け渡すことにより、単独梁と同様の方法で載荷加熱条件下での曲げ試験を行うことが可能になる。   According to this configuration, the frame structure surrounding the floor beam and the vertical load including the total weight of the floor slab and ceiling held by the frame structure are all loaded on the floor beam, and the floor beam is deformed by the load. It is possible to avoid the stress that resists the frame from being generated on the frame body, so that the portions near both ends of the floor beam extending to the outside of the frame body are bridged between the fulcrum outside the furnace without the fireproof coating. As a result, it becomes possible to perform a bending test under the load heating condition in the same manner as that for a single beam.

さらに、本発明は、前記耐火性能試験体の具体的態様として、前記吊りフレームは、前記平面視矩形の領域の両長辺に沿って前記床梁と平行に配置され互いに対向する一対の吊りレールと、前記吊りレールと交差するようにして前記吊りレールの両端部の下側に接合され前記一対の吊りレールの両端部同士を連結する一対の端部連結ビームと、前記吊りレールと交差するようにして前記吊りレールの中間部の下側に接合され前記一対の吊りレールの中間部同士を連結する一対の中間部連結ビームと、を含んで構成され、前記端部連結ビームは、その中央部がピンローラー支承を介して前記床梁の上に載架され、前記中間部連結ビームは、その両端部が前記吊りレールの中間部に下方への変位を許容する形態で接合されるとともに、その中央部が前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記床梁の上面に接合され、前記床組みフレームは、前記床梁と互いの天面の高さを揃えて前記吊りレールの直下に配置される一対の床支持レールを具備し、前記床支持レールの両端部は、前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記端部連結ビームの両端部から吊持され、前記床支持レールの中央部が分割されて、該分割箇所の近傍が、前記床梁に直交する梁つなぎを介して前記床梁の側面にそれぞれ連結されるとともに、前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記中間部連結ビームに接合され、前記床梁と前記両床支持レールとの間に、平面視矩形の床版が、その長辺を前記床梁の材心に直交させる向きで複数枚ずつ載架され、前記床支持レールの下側に、前記平面視矩形の領域の四辺に沿って天井支持枠材が接合され、前記天井支持枠材は、両長辺の中央部が分割され、前記天井支持枠材の枠内に野縁が組み付けられ、前記野縁の下面に前記天井材が張設された、との構成を採用する。   Further, according to the present invention, as a specific aspect of the fireproof performance test body, the suspension frame is disposed in parallel with the floor beam along both long sides of the rectangular region in plan view and is opposed to each other. A pair of end connection beams that are joined to the lower side of both ends of the suspension rail so as to intersect with the suspension rail and connect both ends of the pair of suspension rails, and intersect the suspension rail A pair of intermediate portion connecting beams that are joined to the lower side of the intermediate portion of the suspension rail and connect the intermediate portions of the pair of suspension rails, and the end portion connection beam has a central portion thereof Is mounted on the floor beam via a pin roller support, and the intermediate portion connection beam is joined to the intermediate portion of the suspension rail in a form allowing downward displacement, Center Joined to the upper surface of the floor beam via a strip-shaped connecting strip arranged in a direction in which the core of the floor beam is in the direction of the weak axis, the floor frame is formed between the floor beam and the top surface of each other A strip having a pair of floor support rails that are arranged directly below the suspension rail with the same height, and that both ends of the floor support rail are arranged in a direction in which the core of the floor beam is in the direction of the weak axis Is suspended from both ends of the end connection beam via a connecting band plate, the center portion of the floor support rail is divided, and the vicinity of the divided portion is connected via a beam link orthogonal to the floor beam. Are connected to the side surfaces of the floor beams and joined to the intermediate connection beams via strip-shaped connection strips arranged in a direction in which the center of the floor beam is a weak axis direction, Between the beam and the two floor support rails, a floor slab having a rectangular shape in plan view has a long side extending along the floor beam. A plurality of pieces are mounted in a direction orthogonal to the material center, and a ceiling support frame member is joined to the lower side of the floor support rail along the four sides of the rectangular region in plan view. A configuration is adopted in which the central part of the long side is divided, a field edge is assembled in the frame of the ceiling support frame material, and the ceiling material is stretched on the lower surface of the field edge.

この構成によれば、前述の構成に係る耐火性能試験体を、簡素かつ合理的な構造で経済的に製作することができる。   According to this structure, the fireproof performance test body which concerns on the above-mentioned structure can be manufactured economically with a simple and rational structure.

さらに、前述の構成態様では、前記中間部連結ビームの両端部を前記吊りレールの中間部に、下方への変位を許容する形態で接合する手段として、前記中間部連結ビームおよび前記吊りレールに上下方向に挿通した長寸ボルトをナット綴着する、という手段を採用することができる。   Furthermore, in the above-described configuration aspect, as means for joining the both end portions of the intermediate portion connection beam to the intermediate portion of the suspension rail in a form that allows downward displacement, the intermediate portion connection beam and the suspension rail are vertically moved. A long bolt inserted in the direction can be fastened with a nut.

また、本発明の床梁構造体の耐火性能試験方法は、前述のように構成される耐火性能試験体を用いて、前記架構体の外方まで延び出した前記床梁の両端近傍部分を加熱炉の外側に設けたピンローラー支承間に架け渡し、前記床梁の中間部に所定の鉛直荷重を載荷した状態で、前記耐火性能試験体の下方から該試験体を加熱したときの前記床梁のたわみ変形量を測定することにより、前記床梁構造体の耐火性能を評価する、ものとして特徴づけられる。   Further, the fire resistance test method for a floor beam structure according to the present invention uses the fire resistance test body configured as described above to heat the vicinity of both ends of the floor beam extending to the outside of the frame. The floor beam when the test body is heated from below the fireproof performance test specimen in a state where it is bridged between pin roller supports provided outside the furnace and a predetermined vertical load is loaded on an intermediate portion of the floor beam. By measuring the amount of deflection deformation, the fire resistance performance of the floor beam structure is evaluated.

この試験方法により、メンブレン耐火被覆を採用した床梁構造体の耐火性能を、単独梁と同様の方法で評価することが可能になる。   This test method makes it possible to evaluate the fire resistance performance of a floor beam structure employing a membrane fireproof coating in the same manner as a single beam.

前述のように構成される本発明の床梁構造体の耐火性能試験体は、床梁を囲む架構体と、その架構体によって保持される床版および天井の全重量を合わせた鉛直荷重が床梁に載荷され、かつ、その荷重によって生じる床梁の変形に抵抗する応力が架構体等に生じないように構成されているので、床梁に載荷される荷重に対する床梁の変形量を適切に把握することができる。   The fire resistance performance test body of the floor beam structure of the present invention configured as described above has a vertical load that combines the total weight of the frame surrounding the floor beam and the floor slab and ceiling held by the frame. Since it is configured so that stress that is loaded on the beam and resists deformation of the floor beam caused by the load is not generated in the frame, etc., the amount of deformation of the floor beam with respect to the load loaded on the floor beam is appropriately I can grasp it.

また、本発明の床梁構造体の耐火性能試験方法は、前述の耐火性能試験体を用いて、架構体の外方まで延び出した床梁の両端近傍部分を炉外の支点間に架け渡することにより、単独梁と同様の方法で載荷加熱条件下での床梁の曲げ試験を行うことができるので、メンブレン耐火方式の床梁構造体の耐火性能を適切に評価することが可能になる。   Further, the fire resistance test method for a floor beam structure according to the present invention uses the above-mentioned fire resistance performance test body to bridge the vicinity of both ends of the floor beam extending to the outside of the frame structure between fulcrums outside the furnace. By doing so, it is possible to perform a floor beam bending test under the load heating condition in the same way as a single beam, so that it becomes possible to appropriately evaluate the fire resistance performance of the membrane fire-resistant floor beam structure .

本発明の実施の形態に係る床梁構造体の耐火性能試験体の一部分解上面図である。It is a partially exploded top view of the fireproof performance test body of the floor beam structure according to the embodiment of the present invention. 同試験体の長辺側の側面図である。It is a side view by the side of the long side of the test body. 同試験体の短辺側の側面図である。It is a side view by the side of the short side of the test body. 同試験体の一部分解底面図である。It is a partially exploded bottom view of the test body. 同試験体のA−A断面図である。It is AA sectional drawing of the test body. 同試験体のB−B断面図である。It is BB sectional drawing of the test body. 同試験体のA−A断面における主要な構成部材の分解説明図である。It is a decomposition explanatory view of the main components in the AA section of the test body. 同試験体のB−B断面における主要な構成部材の分解説明図である。It is a decomposition explanatory view of the main components in the BB section of the test body. 同試験体の載荷加熱時における変形状態(変形前)を示す側面図であって、(a)は床梁、(b)は架構体の長辺部分の状態を示す図である。It is a side view which shows the deformation | transformation state (before a deformation | transformation) at the time of the load heating of the test body, (a) is a floor beam, (b) is a figure which shows the state of the long side part of a frame. 同試験体の載荷加熱時における変形状態(変形後)を示す側面図であって、(a)は床梁、(b)は架構体の長辺部分の状態を示す図である。It is a side view which shows the deformation | transformation state (after a deformation | transformation) at the time of the load heating of the test body, (a) is a floor beam, (b) is a figure which shows the state of the long side part of a frame. 床梁の耐火性能試験に用いられる試験装置の長手方向断面図である。It is longitudinal direction sectional drawing of the test apparatus used for the fireproof performance test of a floor beam. 同試験装置の短手方向断面図である。It is a transversal direction sectional view of the test device.

以下、本発明の実施の形態について、図面を参照しつつ説明する。   Embodiments of the present invention will be described below with reference to the drawings.

図1〜図8は、本発明の実施の形態に係る床梁構造体の耐火性能試験体の各部の構成を示している。この耐火性能試験体(以下、単に「試験体」と称す。)1は、鉄骨梁からなる床梁2の下側が耐火性を有する天井材3によって被覆されるとともに、前記床梁2の上側が耐火性を有する床版4によって被覆される鉄骨メンブレン耐火方式の床梁構造体について、床梁2に所定の鉛直荷重を載荷した状態で床梁構造体全体を下方から加熱し、そのときの床梁2のたわみ変形量を測定することで、床梁構造体としての耐火性能を評価するためのものである。   1-8 has shown the structure of each part of the fireproof performance test body of the floor beam structure which concerns on embodiment of this invention. The fireproof performance test body (hereinafter simply referred to as “test body”) 1 has a floor beam 2 made of a steel beam covered with a ceiling material 3 having fire resistance, and an upper side of the floor beam 2 is covered. With respect to the steel membrane fireproof floor beam structure covered by the floor slab 4 having fire resistance, the entire floor beam structure is heated from below while a predetermined vertical load is loaded on the floor beam 2, and the floor at that time This is for evaluating the fire resistance performance of the floor beam structure by measuring the deflection amount of the beam 2.

例示形態では、たわみ変形量の測定対象となる床梁2として、それ自体には特別な耐火被覆を施していないH形鋼を用いている。図示したH形鋼の断面寸法は、フランジ幅125mm、ウェブ高さ250mmである。床梁2の全長は、例えば約5,500mmで、これが図11および図12に示したような加熱炉90の上部に架け渡され、加熱炉90の外側まで延び出した両端部が炉外に設けたピンローラー支承93を介して、例えば5,100mmのスパンで支持される。ピンローラー支承93は、その基台部と床梁2との間に丸鋼棒を挟んで、床梁2の上下方向の回転を許容するとともに、基台部には複数個の転がりローラーを介装して、床梁2の水平方向の移動も許容するように構成された支持機構である。   In the illustrated embodiment, an H-section steel that is not provided with a special fireproof coating is used as the floor beam 2 to be measured for the deflection amount. The cross-sectional dimensions of the H-shaped steel shown are a flange width of 125 mm and a web height of 250 mm. The total length of the floor beam 2 is, for example, about 5,500 mm. This is spanned on the upper part of the heating furnace 90 as shown in FIGS. 11 and 12, and both ends extending to the outside of the heating furnace 90 are outside the furnace. For example, a span of 5,100 mm is supported through the provided pin roller support 93. The pin roller support 93 sandwiches a round steel bar between the base portion and the floor beam 2 to allow the floor beam 2 to rotate in the vertical direction, and the base portion has a plurality of rolling rollers. And a support mechanism configured to allow horizontal movement of the floor beam 2.

床梁2の天面の中央部に近接する2か所には、所定の間隔を設けて、加力用治具21が取付けられている。この加力用治具21には、上方から油圧ジャッキ等の加力装置95を介して、所定の鉛直荷重が載荷される。所定の鉛直荷重とは、床梁2の主たる断面に、床梁2の長期許容応力度に相当する応力度を生じさせる鉛直荷重であり、その総量は、後述する架構体、天井材3、床版4その他の部材の総重量を含めて算定される。そして、床梁2の長さ方向における中央部と、加力用治具21の位置を含む複数か所、加熱時のたわみ量が計測されることとなる。   At two locations close to the center of the top surface of the floor beam 2, a pressing jig 21 is attached with a predetermined interval. A predetermined vertical load is loaded on the applying jig 21 from above via an applying device 95 such as a hydraulic jack. The predetermined vertical load is a vertical load that causes a stress level corresponding to the long-term allowable stress level of the floor beam 2 to be generated in the main cross section of the floor beam 2, and the total amount is a frame, ceiling material 3, floor, which will be described later. Calculated including the total weight of plate 4 and other components. And the center part in the length direction of the floor beam 2, the several places including the position of the jig 21 for a force, and the deflection amount at the time of a heating will be measured.

また、床梁2の両端部の天面には、この試験体1を加熱炉90に据え付ける際にクレーン等で吊り上げるための吊掛プレート22が溶接されている。   In addition, a suspension plate 22 for lifting the test body 1 with a crane or the like when the test body 1 is installed in the heating furnace 90 is welded to the top surfaces of both ends of the floor beam 2.

床梁2は、その下側および上側の一定の範囲を天井材3および床版4で被覆した状態で、加熱炉90の上部開口に載架される。それらの天井材3や床版4を床梁2の周囲に保持するため、床梁2の両端近傍を除いた中間部を囲むようにして、鋼材からなる架構体5が、床梁2の材心を長軸とする平面視矩形の領域にわたるように組み付けられる。その領域の長辺および短辺の寸法は加熱炉90の上部開口の大きさに対応しており、例示形態では4,250mm×1,900mmである。   The floor beam 2 is mounted on the upper opening of the heating furnace 90 in a state where a certain range of the lower side and the upper side thereof is covered with the ceiling material 3 and the floor slab 4. In order to hold the ceiling material 3 and the floor slab 4 around the floor beam 2, the frame 5 made of steel surrounds the middle part except for the vicinity of both ends of the floor beam 2, and the core of the floor beam 2 is The long axis is assembled so as to cover a rectangular area in plan view. The dimensions of the long side and the short side of the region correspond to the size of the upper opening of the heating furnace 90, and are 4,250 mm × 1,900 mm in the illustrated embodiment.

架構体5は、床梁2の上方に配置されて床梁2の上に載架される吊りフレーム6と、吊りフレーム6に吊持されて前記床梁2の側方に配置される床組みフレーム7と、を具備する。   The frame body 5 is arranged above the floor beam 2 and suspended on the floor beam 2, and the floor assembly suspended on the suspension frame 6 and disposed on the side of the floor beam 2. And a frame 7.

吊りフレーム6は、前述した平面視矩形の領域の両長辺に沿って床梁2と平行に配置され、互いに対向する一対の吊りレール61と、吊りレール61と交差するようにして吊りレール61の両端部の下側に接合され、一対の吊りレール61の両端部同士を連結する一対の端部連結ビーム62と、吊りレール61と交差するようにして吊りレール61の中間部の下側に接合され、一対の吊りレール61の中間部同士を連結する一対の中間部連結ビーム63と、を組み合わせて構成される。   The suspension frame 6 is disposed in parallel with the floor beam 2 along both long sides of the above-described rectangular area in plan view, and a pair of suspension rails 61 facing each other and the suspension rail 61 so as to intersect the suspension rail 61. A pair of end connection beams 62 that are joined to the lower side of both ends of the pair of suspension rails 61 to connect the ends of the pair of suspension rails 61, and below the intermediate portion of the suspension rail 61 so as to intersect the suspension rail 61. A pair of intermediate part connection beams 63 that are joined and connect the intermediate parts of the pair of suspension rails 61 are combined.

これら吊りレール61、端部連結ビーム62、中間部連結ビーム63は、いずれも同程度の断面の溝形鋼を用いて形成され、互いに交差する箇所のフランジ同士を上下方向にボルト・ナット綴着して接合されている。ただし、中間部連結ビーム63の両端部と吊りレール61の中間部との接合箇所については、それぞれのフランジを挿通させるボルトに、十分な長さを有する寸切りボルトが用いられており、その長寸ボルト64に螺装したナットを試験時には緩めることで、中間部連結ビーム63と吊りレール61とを一定の範囲内で接離させることができるようになっている。   The suspension rail 61, the end connection beam 62, and the intermediate connection beam 63 are all formed using grooved steel having the same cross section, and bolts and nuts are fastened in the vertical direction by connecting the flanges at the intersecting points. Are joined together. However, as for the joint portion between the both end portions of the intermediate portion connecting beam 63 and the intermediate portion of the suspension rail 61, a dimensioned bolt having a sufficient length is used as a bolt for inserting each flange. By loosening the nut screwed to the dimension bolt 64 at the time of the test, the intermediate portion connecting beam 63 and the suspension rail 61 can be brought into and out of contact within a certain range.

端部連結ビーム62の中央部は、ピンローラー支承65を介して床梁2の上に載架されている。このピンローラー支承65は、床梁2の両端部を支持する炉外のピンローラー支承93と同様に、節点の回転と水平移動を許容するように構成された支持機構であり、炉外のピンローラー支承93とは上下を反転させた形態で床梁2と端部連結ビーム62との間に組み付けられている。なお、試験体1をクレーンで吊上げて加熱炉90に据え付けるまでの準備段階では、端部連結ビーム62と床梁2とが離れてしまわないように、互いを適宜の補助部材(図示略)等で連結しておいてもよい。   A central portion of the end connecting beam 62 is placed on the floor beam 2 via a pin roller support 65. The pin roller bearing 65 is a support mechanism configured to allow the rotation and horizontal movement of the nodes as in the case of the outside pin roller bearing 93 that supports both ends of the floor beam 2. The roller bearing 93 is assembled between the floor beam 2 and the end connecting beam 62 in a vertically inverted form. It should be noted that in the preparation stage from the time when the test body 1 is lifted by a crane and installed in the heating furnace 90, appropriate auxiliary members (not shown) or the like are connected to each other so that the end connection beam 62 and the floor beam 2 are not separated. You may connect with.

中間部連結ビーム63の中央部は、平鋼からなる短冊状の連結帯板A23を介して床梁2の上面に接合されている。この連結帯板A23は、床梁2の材心に直交する姿勢で床梁2の上面に立ち上がるように溶接され、その上部が中間部連結ビーム63のウェブにボルト・ナット綴着されている。この接合形態によれば、連結帯板A23が、その弱軸方向(平鋼の厚み方向)を床梁2の材心方向(曲げ方向)に向けて取り付けられるので、床梁2に曲げ変形が生じたとき、連結帯板A23も床梁2の変形に抵抗せず容易に変形することとなる。   The center part of the intermediate part connection beam 63 is joined to the upper surface of the floor beam 2 via a strip-like connection strip A23 made of flat steel. The connection strip A23 is welded so as to rise on the upper surface of the floor beam 2 in a posture orthogonal to the material center of the floor beam 2, and the upper portion thereof is fastened to the web of the intermediate connection beam 63 with bolts and nuts. According to this joining mode, the connecting strip A23 is attached with its weak axis direction (thickness direction of the flat steel) directed toward the material center direction (bending direction) of the floor beam 2, so that the floor beam 2 undergoes bending deformation. When this occurs, the connecting strip A23 will also easily deform without resisting deformation of the floor beam 2.

床組みフレーム7は、床梁2と互いの天面の高さを揃えて吊りレール61の直下に配置される一対の床支持レール71を具備する。床支持レール71は、床梁2と同程度のウェブ高さを有する溝形鋼を用いて形成されている。床支持レール71の両端部は、平鋼からなる短冊状の連結帯板B72を介して端部連結ビーム62の両端部から吊持されている。この連結帯板B72は、床支持レール71の材心に直交する姿勢で床支持レール71の端面に溶接されて上方に延出され、その上部が端部連結ビーム62のウェブにボルト・ナット綴着されている。   The floor assembly frame 7 includes a pair of floor support rails 71 that are arranged directly below the suspension rail 61 with the height of the top surfaces of the floor beam 2 and each other being aligned. The floor support rail 71 is formed using channel steel having a web height comparable to that of the floor beam 2. Both ends of the floor support rail 71 are suspended from both ends of the end connection beam 62 via a strip-shaped connection strip B72 made of flat steel. This connection strip B72 is welded to the end surface of the floor support rail 71 in a posture perpendicular to the core of the floor support rail 71 and extends upward, and the upper part thereof is connected to the web of the end connection beam 62 by bolts and nuts. It is worn.

床支持レール71は、その長さ方向における中央部で分割されており、該分割箇所の近傍が、床梁2と、吊りフレーム6の中間部連結ビーム63とに対して連結されている。床梁2に対しては、床梁2に直交するように配置された梁つなぎ73を介して連結されている。梁つなぎ73にはリップ付き溝形鋼が用いられており、そのウェブの両端部に添設された連結プレート74が、床梁2および床支持レール71の側面にそれぞれ添設されたスチフナ24、75にそれぞれボルト・ナット綴着されている。また、中間部連結ビーム63に対しては、平鋼からなる短冊状の連結帯板C76が、床支持レール71の材心に直交する姿勢で床支持レール71の上面に立ち上がるように溶接されており、その上部が中間部連結ビーム63のウェブにボルト・ナット綴着されている。   The floor support rail 71 is divided at the center in the length direction, and the vicinity of the divided portion is connected to the floor beam 2 and the intermediate portion connection beam 63 of the suspension frame 6. The floor beam 2 is connected to the floor beam 2 via a beam link 73 arranged so as to be orthogonal to the floor beam 2. A lip-shaped channel steel is used for the beam tether 73, and connecting plates 74 attached to both ends of the web are stiffeners 24 attached to the side surfaces of the floor beam 2 and the floor support rail 71, respectively. Bolts and nuts are respectively attached to 75. Further, a strip-shaped connection strip C76 made of flat steel is welded to the intermediate connection beam 63 so as to rise on the upper surface of the floor support rail 71 in a posture orthogonal to the core of the floor support rail 71. The upper part of the intermediate part connecting beam 63 is fastened to the web of the intermediate part connecting beam 63 by bolts and nuts.

床梁2と両床支持レール71との間には、複数枚の床版4が載架されている。例示形態に係る床版4はALC(発泡軽量コンクリート)パネルである。床版4は、長矩形の平面形状を有し、その長辺を床梁2の材心に直交させ、隣接箇所には若干の隙間を開けて配置される。床版4の両端部は、例えば床梁2および床支持レール71の上フランジを挟着し得る床版取付金具41等を介して、床梁2および床支持レール71に取り付けられる。   A plurality of floor slabs 4 are mounted between the floor beam 2 and both floor support rails 71. The floor slab 4 according to the exemplary embodiment is an ALC (foamed lightweight concrete) panel. The floor slab 4 has a long rectangular planar shape, and its long side is perpendicular to the material center of the floor beam 2 and is arranged with a slight gap between adjacent portions. Both ends of the floor slab 4 are attached to the floor beam 2 and the floor support rail 71 via, for example, a floor slab mounting bracket 41 that can sandwich the upper flange of the floor beam 2 and the floor support rail 71.

床支持レール71の下側には、床梁2の下方に天井を構成するための外周下地となる天井支持枠材77が、前述した平面視矩形の領域を囲むように接合されている。天井支持枠材77は、例えば不等辺山形鋼を用いて形成されており、その広幅片を下向きにして、狭幅片が床支持レール71の下面に溶接されている。天井支持枠材77を構成する長短四辺のうち、床支持レール71の下側に沿って取り付けられる長辺の中央部は、床支持レール71と同様に、長さ方向における中央部で分割されている。   Below the floor support rail 71, a ceiling support frame member 77 serving as an outer peripheral base for forming a ceiling below the floor beam 2 is joined so as to surround the above-described rectangular region in plan view. The ceiling support frame member 77 is formed using, for example, unequal side angle steel, and the narrow piece is welded to the lower surface of the floor support rail 71 with the wide piece facing downward. Among the long and short four sides constituting the ceiling support frame member 77, the central part of the long side attached along the lower side of the floor support rail 71 is divided at the central part in the length direction, like the floor support rail 71. Yes.

天井支持枠材77によって四辺を囲まれた領域の内側には、天井支持枠材77の広幅片の内側面に添設した天井ランナー31、梁つなぎ73に係着した野縁受け吊り金具32、野縁受け吊り金具32に取り付けられて梁つなぎ73と平行に吊持される野縁受け33、等を介して、数本の野縁34が組み付けられる。また、それらの野縁34と交差するようにして、野縁34の上面に野縁防振部材35が取り付けられてもよい。これらの天井ランナー31、野縁受け33、野縁34、野縁防振部材35には、床梁2の変形に伴って容易に変形しうる薄肉の軽量形鋼材が用いられる。   On the inner side of the area surrounded by the ceiling support frame member 77, there are a ceiling runner 31 attached to the inner side surface of the wide piece of the ceiling support frame member 77, a field edge receiving bracket 32 attached to the beam tether 73, Several field edges 34 are assembled via a field edge receiver 33 attached to the field edge receiving bracket 32 and suspended in parallel with the beam tether 73. Further, a field edge vibration isolating member 35 may be attached to the upper surface of the field edge 34 so as to intersect with the field edges 34. The ceiling runner 31, the field edge receiver 33, the field edge 34, and the field edge vibration isolating member 35 are made of thin lightweight steel materials that can be easily deformed with the deformation of the floor beam 2.

そして、野縁34の上に、例えば無機質繊維系断熱マット等からなる断熱材36(あるいは吸音材)が、天井支持枠材77によって囲まれた矩形領域の全面にわたって敷設される。また、野縁34の下側には、防湿シート37等を挟んで、強化石膏ボード等からなる天井材3が前記矩形領域の全面にわたって張設される。   Then, a heat insulating material 36 (or a sound absorbing material) made of, for example, an inorganic fiber-based heat insulating mat or the like is laid on the entire surface of the rectangular region surrounded by the ceiling support frame material 77 on the field edge 34. In addition, a ceiling material 3 made of a reinforced gypsum board or the like is stretched over the entire surface of the rectangular region with a moisture-proof sheet 37 and the like interposed therebetween.

このように構成された試験体1によれば、吊りフレーム6と床組みフレーム7とによって構成される架構体5の重量は、吊りフレーム6の端部連結ビーム62および中間部連結ビーム63と床梁2との各接合箇所を介して床梁2に載荷される。また、床梁2と床組みフレーム7との間に載架される床版4の重量は、その略半分が直接、床梁2に載荷され、その他の略半分が架構体5を介して間接的に床梁2に載荷される。床組みフレーム7の下方に組み付けられる野縁受け33や野縁34等の天井下地材、断熱材36等を含めた天井全体の重量も、架構体5を介して間接的に床梁2に載荷される。よって、床梁2を囲む架構体5と、その架構体5によって保持される床版4および天井の全重量を合わせた鉛直荷重を全て床梁2に載荷した状態で、架構体5の外方まで延び出した床梁2の両端近傍部分を耐火被覆がない状態で炉外の支点間に架け渡すことにより、単独梁と同様の方法で載荷加熱条件下での曲げ試験を行うことができる。   According to the test body 1 configured as described above, the weight of the frame body 5 constituted by the suspension frame 6 and the floor frame 7 is such that the end connection beam 62 and the intermediate connection beam 63 of the suspension frame 6 are connected to the floor. It is loaded on the floor beam 2 via each joint with the beam 2. Further, the weight of the floor slab 4 mounted between the floor beam 2 and the floor frame 7 is approximately half directly loaded on the floor beam 2 and the other approximately half is indirectly via the frame 5. In particular, it is loaded on the floor beam 2. The weight of the entire ceiling including the ceiling base material such as the field edge receiver 33 and the field edge 34 assembled below the floor frame 7 and the heat insulating material 36 is also loaded on the floor beam 2 indirectly via the frame 5. Is done. Accordingly, the frame 5 surrounding the floor beam 2 and the vertical load including the total weight of the floor slab 4 and the ceiling held by the frame 5 are all loaded on the floor beam 2 and the outside of the frame 5 By bending the portion near the both ends of the floor beam 2 extended to between the fulcrums outside the furnace without the fireproof coating, the bending test under the loading heating condition can be performed in the same manner as the single beam.

床梁2および架構体5の載荷加熱時における変形前後の状態を、図9と図10に対比して示す。各図において(a)は床梁2、(b)は架構体5の長辺部分をそれぞれ示している。   The state before and after deformation of the floor beam 2 and the frame 5 during loading heating is shown in comparison with FIG. 9 and FIG. In each figure, (a) shows the floor beam 2 and (b) shows the long side portion of the frame 5.

床梁2自体は、その両端近傍が節点の回転および水平移動を許容するピンローラー支承93によって支持された状態で、その中間部に、中間部連結ビーム63を接合する2か所の連結帯板A23と、2か所の加力用治具21とを介して所定の荷重が載荷されることにより、下向きの曲げ変形を生じる。このとき、吊りフレーム6の端部に配置された端部連結ビーム62はピンローラー支承65を介して床梁2の上に載荷されているので、吊りフレーム6の端部は床梁2の曲げ変形を拘束しない。   The floor beam 2 itself is supported at two ends by pin roller supports 93 that allow rotation and horizontal movement of the nodes, and two connecting strips that join the intermediate connecting beam 63 to the intermediate portion thereof. When a predetermined load is loaded via A23 and the two jigs 21 for applying force, downward bending deformation occurs. At this time, since the end connecting beam 62 disposed at the end of the suspension frame 6 is loaded on the floor beam 2 via the pin roller support 65, the end of the suspension frame 6 is bent by the floor beam 2. Does not constrain deformation.

一方、架構体5の外側の長辺に沿う部分では、中間部連結ビーム63の両端部と吊りレール61とを連結する長寸ボルト64のナットが緩められて、中間部連結ビーム63と吊りレール61とが接離可能に連結される。これにより、中間部連結ビーム63は床梁2の曲げ変形に追従して下方に変位し得る状態に保持されるので、吊りフレーム6の吊りレール61は床梁2に載荷される荷重を負担しなくなる。   On the other hand, in the portion along the outer long side of the frame 5, the nuts of the long bolts 64 that connect the both ends of the intermediate connection beam 63 and the suspension rail 61 are loosened, and the intermediate connection beam 63 and the suspension rail are loosened. 61 is connected so that contact and separation are possible. As a result, the intermediate connection beam 63 is held in a state where it can be displaced downward following the bending deformation of the floor beam 2, so that the suspension rail 61 of the suspension frame 6 bears the load loaded on the floor beam 2. Disappear.

また、中間部連結ビーム63の両端部は、連結帯板B72を介して床組みフレーム7を構成する床支持レール71に接合されているが、床支持レール71は中央部で分割されているため、中間部連結ビーム63の下方変位に伴って床支持レール71が側面視V字形に屈曲する。このとき、中間部連結ビーム63の中央部を床梁2に接合する連結帯板A23、中間部連結ビーム63の両端部を床支持レール71に接合する連結帯板C76、および床支持レール71の両端部を吊りフレーム6に接合する連結帯板B72はいずれも、床梁2の曲げ変形や床支持レール71の屈曲に抵抗しないように、各帯板の弱軸方向を架構体5の長辺方向(床梁2の材心方向)に向けて取り付けられている。したがって、これらの連結帯板A23,B72,C76には、床梁2の曲げ変形に抵抗するような応力が生じない。   Further, both end portions of the intermediate connection beam 63 are joined to the floor support rail 71 constituting the floor assembly frame 7 via the connection strip B72, but the floor support rail 71 is divided at the central portion. The floor support rail 71 bends in a V shape in a side view as the intermediate portion connecting beam 63 is displaced downward. At this time, the connection strip A23 that joins the center portion of the intermediate connection beam 63 to the floor beam 2, the connection strip C76 that joins both ends of the intermediate connection beam 63 to the floor support rail 71, and the floor support rail 71 Any of the connecting strips B72 that join both ends to the suspension frame 6 does not resist bending deformation of the floor beam 2 or bending of the floor support rail 71, so that the weak axis direction of each strip is the long side of the frame 5 It is attached toward the direction (the direction of the core of the floor beam 2). Therefore, no stress that resists bending deformation of the floor beam 2 is generated in the connecting strips A23, B72, and C76.

また、床支持レール71が屈曲する際には、床支持レール71と床梁2とを連結する梁つなぎ73も一緒に下方に変位する。このとき、梁つなぎ73の両端部に添設された連結プレート74に若干の捻り変形が生じるが、その剛性は床梁2の曲げ剛性に比べて遥かに小さいので、これらの連結プレート74が床梁2の曲げ変形に対して負担する荷重も微少である。   Further, when the floor support rail 71 is bent, the beam joint 73 connecting the floor support rail 71 and the floor beam 2 is also displaced downward together. At this time, the torsional deformation is slightly generated in the connecting plates 74 attached to both ends of the beam joint 73, but the rigidity thereof is far smaller than the bending rigidity of the floor beam 2, so that these connecting plates 74 are connected to the floor. The load borne for the bending deformation of the beam 2 is also very small.

さらに、床梁2と床支持レール71との間に載架される床版4も、その長辺を床梁2の材心に直交させ、かつ、互いに若干の隙間を開けるように配置されるので、床梁2の曲げ変形に抵抗するような応力を生じない。天井を構成する下地部材や断熱材36、天井材3等も、床梁2の曲げ変形に抵抗するほどの剛性を有さないので、それらの荷重負担も無視できる。   Further, the floor slab 4 mounted between the floor beam 2 and the floor support rail 71 is also arranged such that its long side is orthogonal to the material center of the floor beam 2 and a slight gap is formed between them. Therefore, no stress that resists bending deformation of the floor beam 2 is generated. Since the base member, the heat insulating material 36, the ceiling material 3 and the like constituting the ceiling do not have rigidity enough to resist bending deformation of the floor beam 2, their load burden can be ignored.

これらの構成により、床梁2を囲む架構体5や床版4、天井等には床梁2の曲げ変形に抵抗する応力が発生せず、床梁2には載荷荷重に応じた単純曲げによるたわみが生じて、メンブレン耐火方式を採用した床梁構造体としての耐火性能を適切に測定、評価することが可能になる。   With these configurations, no stress that resists bending deformation of the floor beam 2 is generated on the frame 5, the floor slab 4, the ceiling, etc. surrounding the floor beam 2, and the floor beam 2 is subjected to simple bending according to the loaded load. Deflection occurs, and it becomes possible to appropriately measure and evaluate the fire resistance performance of the floor beam structure employing the membrane fire resistance method.

なお、試験時に床梁2や架構体5が大きく変形し過ぎて損壊したり、その一部が脱落したりすると、試験体1を安全に炉外へ撤去できなくなるおそれがある。そこで、床組みフレーム7の変形(床支持レール71の屈曲)が一定の限度を超えると、吊りフレーム6に荷重がかかるように、中間部連結ビーム63の両端部と吊りレール61とを連結する長寸ボルト64のナット螺装位置をあらかじめ調整しておくことで、この長寸ボルト64を床組みフレーム7の過大な変形に対するストッパーとして作用させることができる。   Note that if the floor beam 2 or the frame body 5 is greatly deformed and damaged during the test, or a part of the floor beam 2 or the frame body 5 falls off, the test body 1 may not be safely removed from the furnace. Therefore, when the deformation of the floor frame 7 (bending of the floor support rail 71) exceeds a certain limit, both ends of the intermediate connection beam 63 and the suspension rail 61 are connected so that a load is applied to the suspension frame 6. By adjusting the nut screwing position of the long bolt 64 in advance, the long bolt 64 can act as a stopper against excessive deformation of the floor frame 7.

本発明の技術的範囲は、例示した実施の形態によって限定的に解釈されるべきものではなく、特許請求の範囲の記載に基づいて概念的に解釈されるべきものである。本発明の実施に際しては、例示の形態と実質的に同様の作用効果が得られる範囲において、構成部材の形状や配置、構成部材同士の接合形態等を多少、改変して実施することはもちろん可能である。   The technical scope of the present invention should not be construed as being limited by the illustrated embodiments, but should be conceptually interpreted based on the description of the claims. In carrying out the present invention, it is of course possible to modify the shape and arrangement of the component members and the form of joining of the component members to some extent as long as substantially the same effects as the exemplary embodiments can be obtained. It is.

また、本発明は、鉄骨梁を天井材3や床版4で包囲した、いわゆる鉄骨メンブレン耐火工法に係る床梁構造体の性能評価を主たる目的として想起されたものであるが、例えば、耐火塗料等を用いて個別に耐火被覆を施した鉄骨梁に耐火性を有する天井材、床版を組み合わせた複合的な床梁構造体や、耐火性を有する木造梁あるいは木材と鉄骨材との複合梁に天井材・床版を組み合わせた木造系のメンブレン耐火工法に係る床梁構造体等の耐火性能試験にも適用することができる。   The present invention has been conceived mainly for the purpose of evaluating the performance of a floor beam structure according to a so-called steel membrane fireproofing method in which a steel beam is surrounded by a ceiling material 3 and a floor slab 4. Steel beams with fireproof coatings individually, etc., fire-resistant ceiling materials, composite floor beam structures combining floor slabs, fire-resistant wooden beams or composite beams of wood and steel frames It can also be applied to fire resistance test of floor beam structures etc. related to wooden membrane fireproof construction method combining ceiling material and floor slab.

1 試験体
2 床梁
21 加力用治具
22 吊掛プレート
23 連結帯板A
24 スチフナ
3 天井材
31 天井ランナー
32 野縁受け吊り金具
33 野縁受け
34 野縁
35 野縁防振部材
36 断熱材
37 防湿シート
4 床版
41 床版取付金具
5 架構体
6 吊りフレーム
61吊りレール
62 端部連結ビーム
63 中間部連結ビーム
64 長寸ボルト
65 ピンローラー支承
7 床組みフレーム
71 床支持レール
72 連結帯板B
73 梁つなぎ
74 連結プレート
75 スチフナ
76 連結帯板C
77 天井支持枠材
90 加熱炉
91 鉄骨梁(試験体)
92 バーナー
93 ピンローラー支承
94 反力フレーム
95 加力装置
DESCRIPTION OF SYMBOLS 1 Specimen 2 Floor beam 21 Force jig 22 Suspension plate 23 Connection strip A
24 Stiffener 3 Ceiling material 31 Ceiling runner 32 Field edge receiving suspension bracket 33 Field edge receiving 34 Field edge 35 Field edge vibration isolating member 36 Heat insulating material 4 Moisture proof sheet 4 Floor slab 41 Floor slab mounting bracket 5 Frame 6 Suspension frame 61 Suspension rail 62 End Connection Beam 63 Intermediate Connection Beam 64 Long Bolt 65 Pin Roller Bearing 7 Floor Assembly Frame 71 Floor Support Rail 72 Connection Band B
73 Beam connection 74 Connection plate 75 Stiffener 76 Connection strip C
77 Ceiling support frame 90 Heating furnace 91 Steel beam (test body)
92 Burner 93 Pin roller support 94 Reaction force frame 95 Force device

Claims (4)

床梁の下側が天井材によって被覆されるとともに、前記床梁の上側が床版によって被覆される床梁構造体について、前記床梁に鉛直荷重を載荷した状態で前記床梁構造体を下方から加熱したときの前記床梁のたわみ変形量を測定することにより、前記床梁構造体の耐火性能を評価するための試験体であって、
前記床梁の下側および上側に天井材および床版をそれぞれ組み付けるための架構体が、前記床梁の両端近傍を除いた中間部を囲むようにして、前記床梁の材心を長軸とする平面視矩形の領域にわたって設けられ、
前記架構体は、前記床梁の上方に配置されて前記床梁の上に載架される吊りフレームと、前記吊りフレームに吊持されて前記床梁の側方に配置される床組みフレームと、を具備して、
前記床梁と前記床組みフレームとの間に前記床版が載架され、前記床組みフレームの内側または下側に、適宜の天井下地材および断熱材を介して天井材が張設されることにより、前記架構体、前記床版および前記天井材等の重量を含む鉛直荷重が前記床梁に載荷されるとともに、
前記吊りフレームは前記床梁に対して床梁のたわみ方向の変位を許容する節点を介して接合され、
前記床組みフレームは、その長手方向中間部で構造的に分割され、前記床梁のたわみ変形に追従して下方に変位し得るように保持された
ことを特徴とする床梁構造体の耐火性能試験体。
With respect to a floor beam structure in which a lower side of the floor beam is covered with a ceiling material and an upper side of the floor beam is covered with a floor slab, the floor beam structure is viewed from below in a state where a vertical load is loaded on the floor beam. By measuring the amount of deflection deformation of the floor beam when heated, it is a test body for evaluating the fire resistance performance of the floor beam structure,
A plane for assembling a ceiling material and a floor slab on the lower side and the upper side of the floor beam so as to surround an intermediate portion excluding the vicinity of both ends of the floor beam, and a plane having the longitudinal axis of the core of the floor beam Provided over a rectangular area,
The frame body is a suspension frame disposed above the floor beam and mounted on the floor beam, and a floor assembly frame suspended on the suspension frame and disposed on the side of the floor beam. And comprising
The floor slab is mounted between the floor beam and the floor frame, and a ceiling material is stretched on the inner side or the lower side of the floor frame through an appropriate ceiling base material and heat insulating material. A vertical load including the weight of the frame body, the floor slab and the ceiling material is loaded on the floor beam,
The suspension frame is joined to the floor beam via a node that allows displacement in the deflection direction of the floor beam,
The floor frame structure is structurally divided at the middle part in the longitudinal direction, and is held so that it can be displaced downward following the flexural deformation of the floor beam. Test specimen.
請求項1に記載された床梁構造体の耐火性能試験体において、
前記吊りフレームは、前記平面視矩形の領域の両長辺に沿って前記床梁と平行に配置され互いに対向する一対の吊りレールと、前記吊りレールと交差するようにして前記吊りレールの両端部の下側に接合され前記一対の吊りレールの両端部同士を連結する一対の端部連結ビームと、前記吊りレールと交差するようにして前記吊りレールの中間部の下側に接合され前記一対の吊りレールの中間部同士を連結する一対の中間部連結ビームと、を含んで構成され、
前記端部連結ビームは、その中央部がピンローラー支承を介して前記床梁の上に載架され、
前記中間部連結ビームは、その両端部が前記吊りレールの中間部に下方への変位を許容する形態で接合されるとともに、その中央部が前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記床梁の上面に接合され、
前記床組みフレームは、前記床梁と互いの天面の高さを揃えて前記吊りレールの直下に配置される一対の床支持レールを具備し、
前記床支持レールの両端部は、前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記端部連結ビームの両端部から吊持され、
前記床支持レールの中央部が分割されて、該分割箇所の近傍が、前記床梁に直交する梁つなぎを介して前記床梁の側面にそれぞれ連結されるとともに、前記床梁の材心を弱軸方向とする向きに配置された短冊状の連結帯板を介して前記中間部連結ビームに接合され、
前記床梁と前記両床支持レールとの間に、平面視矩形の床版が、その長辺を前記床梁の材心に直交させる向きで複数枚ずつ載架され、
前記床支持レールの下側に、前記平面視矩形の領域の四辺に沿って天井支持枠材が接合され、
前記天井支持枠材は、両長辺の中央部が分割され、
前記天井支持枠材の枠内に野縁が組み付けられ、
前記野縁の下面に前記天井材が張設された
ことを特徴とする床梁構造体の耐火性能試験体。
In the fireproof performance test body of the floor beam structure according to claim 1,
The suspension frame includes a pair of suspension rails arranged parallel to the floor beam along both long sides of the rectangular region in plan view, and opposite ends of the suspension rail so as to cross the suspension rail. A pair of end connection beams which are joined to the lower side and connect both ends of the pair of suspension rails, and are joined to the lower side of the intermediate portion of the suspension rail so as to intersect the suspension rails. A pair of intermediate part connecting beams for connecting the intermediate parts of the suspension rails,
The center of the end connection beam is mounted on the floor beam via a pin roller support,
The both ends of the intermediate portion connecting beam are joined to the intermediate portion of the suspension rail in a form that allows downward displacement, and the center portion thereof is oriented so that the material center of the floor beam is the weak axis direction. It is joined to the upper surface of the floor beam via a strip-shaped connecting strip disposed,
The floor frame includes a pair of floor support rails arranged directly below the suspension rail with the floor beams and the height of each top surface aligned.
Both ends of the floor support rail are suspended from both ends of the end connection beam via a strip-shaped connection strip arranged in a direction in which the center of the floor beam is a weak axis direction,
The center portion of the floor support rail is divided, and the vicinity of the divided portion is connected to the side surface of the floor beam via a beam link orthogonal to the floor beam, and the center of the floor beam is weakened. Joined to the intermediate connection beam through a strip-shaped connection strip arranged in the axial direction,
Between the floor beam and the both floor support rails, a floor slab having a rectangular shape in plan view is mounted in a plurality of pieces in a direction in which the long side is orthogonal to the material center of the floor beam,
A ceiling support frame member is joined to the lower side of the floor support rail along the four sides of the rectangular region in plan view,
The ceiling support frame material is divided at the center of both long sides,
A field edge is assembled in the frame of the ceiling support frame member,
The flooring structure fireproof performance test body, wherein the ceiling material is stretched on the lower surface of the field edge.
請求項2に記載された床梁構造体の耐火性能試験体において、
前記中間部連結ビームの両端部を前記吊りレールの中間部に、下方への変位を許容する形態で接合する手段は、前記中間部連結ビームおよび前記吊りレールに上下方向に挿通した長寸ボルトのナット綴着によるものである
ことを特徴とする床梁構造体の耐火性能試験体。
In the fireproof performance test body of the floor beam structure according to claim 2,
Means for joining both ends of the intermediate connection beam to the intermediate portion of the suspension rail in a form that allows downward displacement is a long bolt inserted vertically into the intermediate connection beam and the suspension rail. A fireproof performance test piece for a floor beam structure, characterized by being attached by nuts.
床梁の下側が天井材によって被覆されるとともに、前記床梁の上側が床版によって被覆される床梁構造体の耐火性能を評価する試験方法であって、
前記試験方法に用いる耐火性能試験体は、
前記床梁の下側および上側に天井材および床版をそれぞれ組み付けるための架構体が、前記床梁の両端近傍を除いた中間部を囲むようにして、前記床梁の材心を長軸とする平面視矩形の領域にわたって設けられたものであり、
前記架構体は、前記床梁の上方に配置されて前記床梁の上に載架される吊りフレームと、前記吊りフレームに吊持されて前記床梁の側方に配置される床組みフレームと、を具備して、
前記床梁と前記床組みフレームとの間に前記床版が載架され、前記床組みフレームの内側または下側に、適宜の天井下地材および断熱材を介して天井材が張設されることにより、前記架構体、前記床版および前記天井材等の重量を含む鉛直荷重が前記床梁に載荷されるとともに、
前記吊りフレームは前記床梁に対して床梁のたわみ方向の変位を許容する節点を介して接合され、
前記床組みフレームは、その長手方向中間部で構造的に分割されて、前記床梁のたわみ変形に追従して下方に変位し得るように保持されるように構成され、
前記架構体の外方まで延び出した前記床梁の両端近傍部分を加熱炉の外側に設けたピンローラー支承間に架け渡し、前記床梁の中間部に所定の鉛直荷重を載荷した状態で、前記耐火性能試験体の下方から該試験体を加熱したときの前記床梁のたわみ変形量を測定することにより、前記床梁構造体の耐火性能を評価する
ことを特徴とする床梁構造体の耐火性能試験方法。
A test method for evaluating fire resistance performance of a floor beam structure in which a lower side of a floor beam is covered with a ceiling material and an upper side of the floor beam is covered with a floor slab,
The fireproof performance test body used in the test method is:
A plane for assembling a ceiling material and a floor slab on the lower side and the upper side of the floor beam so as to surround an intermediate portion excluding the vicinity of both ends of the floor beam, and a plane having the longitudinal axis of the core of the floor beam Provided over a rectangular area,
The frame body is a suspension frame disposed above the floor beam and mounted on the floor beam, and a floor assembly frame suspended on the suspension frame and disposed on the side of the floor beam. And comprising
The floor slab is mounted between the floor beam and the floor frame, and a ceiling material is stretched on the inner side or the lower side of the floor frame through an appropriate ceiling base material and heat insulating material. A vertical load including the weight of the frame body, the floor slab and the ceiling material is loaded on the floor beam,
The suspension frame is joined to the floor beam via a node that allows displacement in the deflection direction of the floor beam,
The floor frame is structured to be structurally divided at the middle in the longitudinal direction, and held so that it can be displaced downward following the flexural deformation of the floor beam,
In the state where a portion near the both ends of the floor beam extending to the outside of the frame is bridged between pin roller supports provided outside the heating furnace, and a predetermined vertical load is loaded on the middle portion of the floor beam, The fire resistance performance of the floor beam structure is evaluated by measuring the deflection deformation amount of the floor beam when the test body is heated from below the fire resistance performance test body. Fire resistance test method.
JP2017046150A 2017-03-10 2017-03-10 Fire resistance performance test body and fire resistance performance test method for floor beam structure Active JP6332505B1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2017046150A JP6332505B1 (en) 2017-03-10 2017-03-10 Fire resistance performance test body and fire resistance performance test method for floor beam structure

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2017046150A JP6332505B1 (en) 2017-03-10 2017-03-10 Fire resistance performance test body and fire resistance performance test method for floor beam structure

Publications (2)

Publication Number Publication Date
JP6332505B1 true JP6332505B1 (en) 2018-05-30
JP2018151198A JP2018151198A (en) 2018-09-27

Family

ID=62236393

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2017046150A Active JP6332505B1 (en) 2017-03-10 2017-03-10 Fire resistance performance test body and fire resistance performance test method for floor beam structure

Country Status (1)

Country Link
JP (1) JP6332505B1 (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111855407A (en) * 2020-07-20 2020-10-30 中国建筑科学研究院有限公司 Be suitable for experimental device of building curtain fire prevention tectonic property
CN112710568A (en) * 2020-12-17 2021-04-27 哈尔滨汽轮机厂有限责任公司 Method for detecting strength of centering beam of steam turbine
CN114076809A (en) * 2021-10-13 2022-02-22 中国联合工程有限公司 Building structure cross node fire resistance test device and working method thereof
CN117491129A (en) * 2023-10-11 2024-02-02 中国矿业大学 Load-bearing fire-resistant test device and test method for long-span suspension bridge steel truss girder

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR102428380B1 (en) * 2020-08-28 2022-08-03 명지대학교산학협력단 Method for testing loading for loading structure using movable and variable loading apparatus

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2977918B2 (en) * 1991-02-20 1999-11-15 積水ハウス株式会社 Fire resistance test equipment for building structural members
JP2002039930A (en) * 2000-07-19 2002-02-06 Takenaka Komuten Co Ltd Evaluation method for fireproof performance
JP3516571B2 (en) * 1997-05-27 2004-04-05 積水ハウス株式会社 Ceiling finish structure
JP5006227B2 (en) * 2008-02-20 2012-08-22 大成建設株式会社 Method for evaluating fire resistance of composite members

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2977918B2 (en) * 1991-02-20 1999-11-15 積水ハウス株式会社 Fire resistance test equipment for building structural members
JP3516571B2 (en) * 1997-05-27 2004-04-05 積水ハウス株式会社 Ceiling finish structure
JP2002039930A (en) * 2000-07-19 2002-02-06 Takenaka Komuten Co Ltd Evaluation method for fireproof performance
JP5006227B2 (en) * 2008-02-20 2012-08-22 大成建設株式会社 Method for evaluating fire resistance of composite members

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111855407A (en) * 2020-07-20 2020-10-30 中国建筑科学研究院有限公司 Be suitable for experimental device of building curtain fire prevention tectonic property
CN111855407B (en) * 2020-07-20 2023-05-05 中国建筑科学研究院有限公司 Device suitable for performance test of fireproof construction of building curtain wall
CN112710568A (en) * 2020-12-17 2021-04-27 哈尔滨汽轮机厂有限责任公司 Method for detecting strength of centering beam of steam turbine
CN112710568B (en) * 2020-12-17 2024-05-28 哈尔滨汽轮机厂有限责任公司 Method for detecting strength of centering beam of steam turbine
CN114076809A (en) * 2021-10-13 2022-02-22 中国联合工程有限公司 Building structure cross node fire resistance test device and working method thereof
CN114076809B (en) * 2021-10-13 2024-06-04 中国联合工程有限公司 Fire resistance test device for cross joint of building structure and working method thereof
CN117491129A (en) * 2023-10-11 2024-02-02 中国矿业大学 Load-bearing fire-resistant test device and test method for long-span suspension bridge steel truss girder

Also Published As

Publication number Publication date
JP2018151198A (en) 2018-09-27

Similar Documents

Publication Publication Date Title
JP6332505B1 (en) Fire resistance performance test body and fire resistance performance test method for floor beam structure
JP5330621B1 (en) Wooden building pillar-beam joint hardware
Cheng et al. Experimental dynamic collapse response of post-and-beam mass timber frames under a sudden column removal scenario
JP2009287231A (en) Vibration control device for house
JP2014111864A (en) Beam reinforcing member and installation structure of stud in existing building
JP2015175119A (en) Column-beam joint structure
JP7174514B2 (en) Wooden fireproof member
Liew et al. The influence of plasterboard clad walls on the structural behaviour of low rise residential buildings
JP6079464B2 (en) Bearing walls and houses
JP2019218713A (en) Bearing wall
TWI689654B (en) Damping wall
JP2022167555A (en) Floor structure and construction method of floor structure
JP7194634B2 (en) Fiber-reinforced plastic members and fiber-reinforced plastic composite structures
JP6269242B2 (en) Building reinforcement structure
JP2018009366A (en) Connection structure between wall panels
JP5320220B2 (en) Column omission joint structure, column omission building unit, and unit building
Zhang et al. Connection and performance of two-way CLT plates
JP7152788B2 (en) Fire-resistant structure construction method
JP7010466B2 (en) Fireproof structure of steel beam
JP7503396B2 (en) Frame structure
JP6580240B1 (en) Composite structure and stiffening method
JP4824979B2 (en) building
JP2010265619A (en) Floor structure, building unit, and unit building
JP2016166530A (en) Installation structure for installing stud to existing building
JP6029722B1 (en) Ceiling floor member and building having ceiling floor member

Legal Events

Date Code Title Description
TRDD Decision of grant or rejection written
A01 Written decision to grant a patent or to grant a registration (utility model)

Free format text: JAPANESE INTERMEDIATE CODE: A01

Effective date: 20180403

A61 First payment of annual fees (during grant procedure)

Free format text: JAPANESE INTERMEDIATE CODE: A61

Effective date: 20180416

R150 Certificate of patent or registration of utility model

Ref document number: 6332505

Country of ref document: JP

Free format text: JAPANESE INTERMEDIATE CODE: R150

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250

R250 Receipt of annual fees

Free format text: JAPANESE INTERMEDIATE CODE: R250