• 제목/요약/키워드: monotonic pushover test

검색결과 3건 처리시간 0.017초

단조하중을 받는 SC 전단벽의 휨강도 평가 (Flexural Strength Evaluation of Steel Plate Concrete Shear wall subject to Monotonic Loading)

  • 권민호;김진섭;서현수;임정희
    • 복합신소재구조학회 논문집
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    • 제4권4호
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    • pp.9-14
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    • 2013
  • In this study, flexural strength properties of SC shear walls were investigated through static pushover test. Failure modes and stiffness characteristics of SC shear walls under lateral loads were inspected by analyzing the experimental results. Main failures of unstiffened SC shear walls were found to be the type of bending shear failure due to the unbonding of the steel plate at the concrete interface. The ductility capacity of SC structures was also confirmed to be improved, which is considered to be a confining effect on steel plates in the longitudinal behavior of SC shear walls.

비내진 상세를 가진 1:12축소 10층 R.C.골조의 비선형 거동에 관한 실험 연구 (Experimental Study on Nonlinear Behaviors of A 1:12 Scale 10-Story Reinforced Concrete Frame with Nonseismic Details)

  • 이한선;강귀용
    • 콘크리트학회지
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    • 제11권1호
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    • pp.255-266
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    • 1999
  • 본 연구의 목적은 비내진 상세를 가진 고층 R.C골조의 탄성 및 비탄성 거동을 실험적으로 살펴보는 것이다. 따라서, 국내의 내진 설계규준에 따라 설계 및 시공된 건축물이 선정되었으며, 상사법칙에 따라 1:12의 축소율의 평면 골조모델이 제작되었다. 실험방법은 옥상층의 변위제어에 의해 반전횡하중 실험과 일방향 가력 실험을 수행하였다. 지진효과를 나타내기 위하여, 횡력은 휘플트리를 이용하여 각층에 역삼각형 형태로 분포되었다. 실험으로부터 밑면전단력, 균열양상, 주요부재 단부에서의 국부 회전각 및 층간변위와 층전단력과의 관계를 얻을 수 있었다. 실험결과로부터 비내진 상세를 가진 고층 철근콘크리트 골조의 탄성 및 비탄성 거동에 대해 살펴보았다.

Applied element method simulation of experimental failure modes in RC shear walls

  • Cismasiu, Corneliu;Ramos, Antonio Pinho;Moldovan, Ionut D.;Ferreira, Diogo F.;Filho, Jorge B.
    • Computers and Concrete
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    • 제19권4호
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    • pp.365-374
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    • 2017
  • With the continuous evolution of the numerical methods and the availability of advanced constitutive models, it became a common practice to use complex physical and geometrical nonlinear numerical analyses to estimate the structural behavior of reinforced concrete elements. Such simulations may yield the complete time history of the structural behavior, from the first moment the load is applied until the total collapse of the structure. However, the evolution of the cracking pattern in geometrical discontinuous zones of reinforced concrete elements and the associated failure modes are relatively complex phenomena and their numerical simulation is considerably challenging. The objective of the present paper is to assess the applicability of the Applied Element Method in simulating the development of distinct failure modes in reinforced concrete walls subjected to monotonic loading obtained in experimental tests. A pushover test was simulated numerically on three distinct RC shear walls, all presenting an opening that guarantee a geometrical discontinuity zone and, consequently, a relatively complex cracking pattern. The presence of different reinforcement solutions in each wall enables the assessment of the reliability of the computational model for distinct failure modes. Comparison with available experimental tests allows concluding on the advantages and the limitations of the Applied Element Method when used to estimate the behavior of reinforced concrete elements subjected to monotonic loading.