• 제목/요약/키워드: shear behavior and performance

검색결과 661건 처리시간 0.022초

Seismic behavior of steel truss reinforced concrete L-shaped columns under combined loading

  • Ning, Fan;Chen, Zongping;Zhou, Ji;Xu, Dingyi
    • Steel and Composite Structures
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    • 제43권2호
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    • pp.139-152
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    • 2022
  • Steel-reinforced concrete (SRC) L-shaped column is the vertical load-bearing member with high spatial adaptability. The seismic behavior of SRC L-shaped column is complex because of their irregular cross sections. In this study, the hysteretic performance of six steel truss reinforced concrete L-shaped columns specimens under the combined loading of compression, bending, shear, and torsion was tested. There were two parameters, i.e., the moment ratio of torsion to bending (γ) and the aspect ratio (column length-to-depth ratio (φ)). The failure process, torsion-displacement hysteresis curves, and bending-displacement hysteresis curves of specimens were obtained, and the failure patterns, hysteresis curves, rigidity degradation, ductility, and energy dissipation were analyzed. The experimental research indicates that the failure mode of the specimen changes from bending failure to bending-shear failure and finally bending-torsion failure with the increase of γ. The torsion-displacement hysteresis curves were pinched in the middle, formed a slip platform, and the phenomenon of "load drop" occurred after the peak load. The bending-displacement hysteresis curves were plump, which shows that the bending capacity of the specimen is better than torsion capacity. The results show that the steel truss reinforced concrete L-shaped columns have good collapse resistance, and the ultimate interstory drift ratio more than that of the Chinese Code of Seismic Design of Building (GB50011-2014), which is sufficient. The average value of displacement ductility coefficient is larger than rotation angle ductility coefficient, indicating that the specimen has a better bending deformation resistance. The specimen that has a more regular section with a small φ has better potential to bear bending moment and torsion evenly and consume more energy under a combined action.

앵글을 전단연결재로 사용하는 합성보의 휨성능 (Flexural Capacity of the Composite Beam using Angle as a Shear Connector)

  • 김영주;배재훈;안태상;최종권
    • 한국강구조학회 논문집
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    • 제27권1호
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    • pp.63-75
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    • 2015
  • 본 연구에서는 앵글을 전단연결재로 사용하여 합성보의 휨성능을 실험적으로 조사하였다. 실험의 주요변수는 앵글의 크기와 간격 및 콘크리트가 합성 전과 합성 후의 휨에 대한 전체적인 거동을 실험적으로 검증하였다. 또한 중공PC슬래브와 일반RC슬래브와 같이 사용하였을 때의 휨성능을 비교하였다. 이를 종합적으로 판단하면, 앵글을 전단연결재로 사용한 합성보의 휨성능은 앵글의 간격을 적절하게 배치시키면 예상내력보다 25-55% 이상의 공칭내력을 보유하고 있음을 확인할 수 있었다. 예상한 바와 같이, 합성보의 내력에 미치는 앵글의 변수를 살펴보면 앵글의 크기가 클수록 앵글의 간격이 좁을수록 합성보의 내력이 상승함을 확인할 수 있었다. 또한 중공PC슬래브에서도 앵글을 사용한 합성보의 성능이 잘 발휘됨을 실험적으로 검증하였다.

부착전단 실험에 의한 보강재료의 부착거동 실험 연구 (Experimental Study on Bond Behavior of Retrofit Materials by Bond-Shear Test)

  • 하주형;이나현;조윤구;김장호
    • 콘크리트학회논문집
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    • 제24권1호
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    • pp.45-52
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    • 2012
  • 최근에 콘크리트 구조물의 보강에 섬유복합재(FRP), 폴리우레아(PolyUrea), 그리고 이들을 함께 적층하여 사용하는 다중혼합 보강재료를 사용한 외부 보강공법에 대한 연구가 활발히 진행되고 있다. 이와 같은 외부부착에 의한 보강공법들은 콘크리트와 보강재료 사이의 경계면 거동이 전체 보강된 구조물의 성능을 좌우하게 된다. 그러므로, 이 연구에서는 보강재료의 종류와 보강순서에 따른 콘크리트와 보강재료 사이의 부착전단 거동을 실험적으로 평가하였다. 부착전단 실험을 위하여 콘크리트 부재에 탄소섬유복합재(CFRP), 폴리우레아(PolyUrea, PU), 탄소섬유복합재 보강 후 폴리우레아(CPU), 폴리우레아 보강 후 탄소섬유복합재(PUC)의 보강재료로 부착하였으며, 콘크리트와 보강재료의 부착전단력 이외 발생할 수 있는 하중발생을 최소화하기 위하여 부착전단 시편고정장치를 개발하여 실험을 수행하였다. 이 실험 결과를 통해 탄소섬유복합재와 폴리우레아를 혼합한 복합재료가 높은 부착전단강도와 에너지 흡수성능이 뛰어남을 검증하였다.

비탄성 정적해석을 이용한 격자강판 전단벽 보강 RC구조물의 내진성능평가 (Seismic Performance Evaluation of RC Structure Strengthened by Steel Grid Shear Wall using Nonlinear Static Analysis)

  • 박정우;이재욱;박진영;이영학;김희철
    • 한국전산구조공학회논문집
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    • 제26권6호
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    • pp.455-462
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    • 2013
  • 최근에 지어진 건축물의 경우 지진에 대한 안전성을 확보하고 있지만, 내진설계 도입 이전의 건축물은 지진에 대해 매우 취약하다. 본 연구에서는 내진성능이 부족한 기존 저층 RC구조물의 지진 발생 시 안전성 확보를 위한 내진보강 방안으로 격자강판 전단벽을 제안하고 내진성능평가를 수행하였다. 횡력저항요소로 사용된 격자강판 전단벽의 탄소성 이력특성값은 실험결과를 토대로 횡력저항 기여도등을 평가하여 작성된 이선형곡선을 적용하였다. 비탄성 정적해석을 통해 대상구조물의 성능점을 찾아내어 적용 지진하중에 대한 응답과 성능수준을 평가하였다. 격자강판 전단벽을 적용한 경우, 보강 전에 비하여 응답변위가 약 42% 저감되는 것을 확인할 수 있었으며, 성능점에서 거의 탄성거동을 보여주고 있어 목표성능인 인명안전수준을 만족시켰다. 또한 반응수정계수를 산정하여 내진보강 효과를 검증하였으며, 보강 전과 후에 각각 2.17에서 3.25로 증가하여 설계기준을 초과하였다. 따라서 격자강판 전단벽에 의해 대상 구조물의 강도 및 강성보강이 적절히 수행된 것으로 판단된다.

철근콘크리트 프레임 및 전단벽체의 경계기둥 띠철근비 변화에 따른 구조성능 평가 (Structural Performance Evaluation of Reinforced Concrete Frame and Shear Wall with Various Hoop Ratios of Boundary Column)

  • 신종학;하기주;전찬목
    • 콘크리트학회지
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    • 제10권6호
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    • pp.303-311
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    • 1998
  • 본 연구는 수직하중과 정.부 수평하중이 동시에 작용하는 순수강접 프레임과 완전강접 바벨형 철근콘크리트 전단벽 시험체의 경계기둥 띠철근비를 주요변수로 하여 총 10개의시험체를 실물 크기의 약 1/3로 축소 모델화하여 제작한 후, 구조성능 평가를 위한 실험을 실시하여 이력거동 특성, 수평강성 및 최대내력,파괴형태, 연성능력등을 비교 고찰하여 다음과 같은 결론을 얻었다. 순수강접 프레임 및 완전강접 바벨형 전단벽 시헴체의 경우, 각 시험체의 실험을 통하여 구한 이력거동곡선을 비교 고찰한 결과 기둥의 띠철근비가 클수록 최대하중에 도달한 후 강도저하 현상이 서서히 진행되었고, 연성적인 파괴형태를 나타내었다. 완전강접 바벨형 전단벽 시험체의 경우, 좌우기둥의 띠철근비가 적은 시험체는 비교적 띠철근비가 큰 시험체에 비하여 최종 파괴시의 파괴형태는 사인장 균열에 의해 지배됨을 규명할 수 있었다. 완전강접 바벨형 전단벽 시험체의 초대수평내력은 순수강접 프레임 시험체의최대수평내력보다 약 5.47~7.95배 증가하였다.

Analysis of mechanical performance of continuous steel beams with variable section bonded by a prestressed composite plate

  • Tahar Hassaine Daouadji;Rabahi Abderezak;Benferhat Rabia
    • Steel and Composite Structures
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    • 제50권2호
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    • pp.183-199
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    • 2024
  • In this paper, a closed-form rigorous solution for interfacial stress in continuous steel beam with variable section strengthened with bonded prestressed FRP plates and subjected to a uniformly distributed load is developed using linear elastic theory and including the variation of fiber volume fractions with a longitudinal orientation of the fibers of the FRP plates. The results show that there exists a high concentration of both shear and normal stress at the ends of the laminate, which might result in premature failure of the strengthening scheme at these locations. The theoretical predictions are compared with other existing solutions. Overall, the predictions of the different solutions agree closely with each other. A parametric study has been conducted to investigate the sensitivity of interface behavior to parameters such as laminate and adhesive stiffness, the thickness of the laminate and the fiber volume fractions where all were found to have a marked effect on the magnitude of maximum shear and normal stress in the composite member. This research gives a numerical precision in relating to the others studies which neglect the effect of prestressed plate and the shear lag impact. The physical and geometric properties of materials are taken into account, and that may play an important role in reducing the interfacial stresses magnitude.

비대칭 벽식구조의 최적 비틀림 설계 (An optimized torsional design of asymmetric wall structures)

  • 조봉호;홍성걸
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2002년도 춘계 학술발표회 논문집
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    • pp.327-334
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    • 2002
  • This paper develops an optimized torsional design method of asymmetric wall structures considering deformation capacities of walls. Contrary to the current torsional provisions, a deformation based torsional design is based on the assumption that stiffness and strength are dependent. Current torsional provisions specify two design eccentricity of stiffness to calculate the design forces of members. But such a methodology leads to an excessive over-strength of some members and an optimal torsional behavior is not ensured. Deformation-based torsional design uses displacement and rotation angle as design parameters and calculates base shear for inelastic torsional response directly. Because optimal torsional behavior can be defined based on the deformation of members, deformation based torsional design procedure can be applied to the optimal and performance-based torsional design. To consider the effect of accidental eccentricity, an over-strength factor is defined. The over-strength factor is determined from performance level, torsional resistance and arrangement of walls.

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팽창성 암석절리의 개별요소 모델링에 관한 연구 (A Study on Distinct Element Modelling of Dilatant Rock Joints)

  • 장석부;문현구
    • 터널과지하공간
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    • 제5권1호
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    • pp.1-10
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    • 1995
  • The behavior of a jointed rock mass depends mainly on the geometrical and mechanical properties of joints. The failure mode of a rock mass and kinematics of rock blocks are governed by the orientation, spacing, and persistence of joints. The mechanical properties such as dilation angle, shear strength, maximum closure, strength of asperities and friction coeffiient play important roles on the stability and deformation of the rock mass. The normal and shear behaviour of a joint are coupled due to dilation, and the joint deformation depends also on the boundary conditions such as stiffness conditons. In this paper, the joint constitutive law including the dilatant behaviour of a joint is numerically modelled using the edge-to-edge contact logic in distinct element method. Also, presented is the method to quantify the input parameters used in the joint law. The results from uniaxial compression and direct shear tests using the numeical model of the single joint were compared to the analytic results from them. The boundary effect on the behaviour of a joint is verified by comparing the results of direct shear test under constant stress boundary condition with those under constant stiffness boundary condition. The numerical model developed is applied to a complex jointed rock mass to examine its performance and to evaluate the effect of joint dilation on tunnel stability.

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조적조 비내력벽을 가진 기존 학교 구조물의 내진 성능평가 (Evaluation of Performance of Korean Existing School Buildings with Masonry Infilled Walls Against Earthquakes)

  • 문기훈;전용률;이창석;한상환
    • 한국지진공학회논문집
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    • 제16권6호
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    • pp.37-46
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    • 2012
  • In Korea, most existing school buildings have been constructed with moment frames with un-reinforced infill walls designed only considering gravity loads. Thus, the buildings may not perform satisfactorily during earthquakes expected in Korea. In exterior frames of the building, un-reinforced masonry infill walls with window openings are commonly placed, which may alter the structural behavior of adjacent columns due to the interaction between the wall and column. The objective of this study is to evaluate the seismic performance of existing school buildings according to the procedure specified in ATC 63. Analytical models are proposed to simulate the structural behavior of columns, infill walls and their interaction. The accuracy of the proposed model is verified by comparing the analytical results with the experimental test results for one bay frames with and without infill walls with openings. For seismic performance evaluation, three story buildings are considered as model frames located at sites having different soil conditions ($S_A$, $S_B$, $S_C$, $S_D$, $S_E$) in Korea. It is observed that columns behaves as a short columns governed by shear due to infill masonry walls with openings. The collapse probabilities of the frames under maximum considered earthquake ranges from 62.9 to 99.5 %, which far exceed the allowable value specified in ATC 63.

등가 기둥 모델을 이용한 철근콘크리트 전단벽-골조 구조물의 푸쉬오버 해석 (Pushover Analysis of Reinforced Concrete Wall-Frame Structures Using Equivalent Column Model)

  • 김용준;한아름;김승남;유은종
    • 한국지진공학회논문집
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    • 제18권1호
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    • pp.53-61
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    • 2014
  • RC shear wall sections which have irregular shapes such as T, ㄱ, ㄷ sections are typically used in low-rise buildings in Korea. Pushover analysis of building containing such members costs a lot of computation time and needs professional knowledge since it requires complicated modeling and, sometimes, fails to converge. In this study, a method using an equivalent column element for the shear wall is proposed. The equivalent column element consists of an elastic column, an inelastic rotational spring, and rigid beams. The inelastic properties of the rotational spring represent the nonlinear behavior of the shearwall and are obtained from the section analysis results and moment distribution for the member. The use of an axial force to compensate the difference in the axial deformation between the equivalent column element and the actual shear wall is also proposed. The proposed method is applied for the pushover analysis of a 5- story shear wall-frame building and the results are compared with ones using the fiber elements. The comparison shows that the inelastic behavior at the same drift was comparable. However, the performance points estimated using the pushover curves showed some deviations, which seem to be caused by the differences of estimated yield point and damping ratios.