• 제목/요약/키워드: shear wall ductility

검색결과 149건 처리시간 0.027초

프리캐스트 병렬 전단벽의 내진 설계에 관한 연구 (A Simplified Seismic Design Method of Precast Coupled Shear Wall)

  • 홍성걸
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 1998년도 추계 학술발표회 논문집 Proceedings of EESK Conference-Spring 1998
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    • pp.65-74
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    • 1998
  • In seismic design procedure of precast concrete structure, it is important to assign ductility requirement on the connection element for a favorable failure mechanism. The purpose of this paper is to propose a simplified procedure to determine the required ductility of coupling beam in coupled precast shear wall for a lateral displacement ductility at the top of a structure. This study shows that an equation for ductility of cloupling beam is introduced on the basis of several basic assumption.

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Seismic behavior of SFRC shear wall with CFST columns

  • Gao, Dan-Ying;You, Pei-Bo;Zhang, Li-Juan;Yan, Huan-Huan
    • Steel and Composite Structures
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    • 제28권5호
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    • pp.527-539
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    • 2018
  • The use of reinforced concrete (RC) shear wall with concrete filled steel tube (CFST) columns and steel fiber reinforced concrete (SFRC) shear wall has aroused widespread attention in recent years. A new shear wall, named SFRC shear wall with CFST columns, is proposed in this paper, which makes use of CFST column and SFRC shear wall. Six SFRC shear wall with CFST columns specimens were tested under cyclic loading. The effects of test parameters including steel fiber volume fraction and concrete strength on the failure mode, strength, ductility, rigidity and dissipated energy of shear wall specimens were investigated. The results showed that all tested shear wall specimens exhibited a distinct shear failure mode. Steel fibers could effectively control the crack width and improve the distribution of cracks. The load carrying and energy dissipation capacities of specimens increased with the increase of steel fiber volume fraction and concrete strength, whilst the ductility of specimens increased with the increase of steel fiber volume fraction and the decrease of concrete strength.

단부 횡보강이 없는 세장한 전단벽의 내진성능 (Earthquake-Resistance of Slender Shear Wall with No Boundary Confinement)

  • 박홍근;강수민;조봉호;홍성걸
    • 콘크리트학회논문집
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    • 제12권5호
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    • pp.47-57
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    • 2000
  • Experimental and numerical studies were done to investigate seismic performance of slender shear walls with no boundary confinement that are principal structural members of high0rise bearing wall buildings. 1/3 scale specimens that model the plastic region of long slender shear walls subjected to combined axial load and bending moment were tested to investigate strength, ductility, capacity of energy dissipation, and strain distribution, The experimental results show that the slender shear walls fail due to early crushing in the compressive boundary, and then have very low ductility. The measured maximum compressive strain is 0.0021, much less than 0.004 being commonly used for estimation of ductility. This result indicates that the maximum compressive strain is not a fixed value but is affected by moment gradient along the shear wall height and distance from the neutral axis to the extreme compressive fiber.

철근콘크리트 전단벽의 접합방식과 대각보강에 따른 내진성능 평가 및 개선 (Improvement and Evaluation for Seismic Resistant Capacity of Reinforced Concrete Shear wall with Connection Types and Diagonal Reinforcement)

  • 신종학;하기주;안준석;주정준
    • 한국구조물진단유지관리공학회 논문집
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    • 제3권3호
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    • pp.139-147
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    • 1999
  • Six reinforced concrete shear wall, constructured with fully rigid, slit, and infilled types, were tested under both vertical and cyclic loadings. Experimental programs were carried out to evaluate the seismic performance of such test specimens, such as the hysteretic behavior, the maximum horizontal strength, crack propagation, and ductility, under load reversals. All the specimens were modeled in one-third scale size. Based on the test results, the following conclusions can be made. For the diagonal reinforced slit and infilled shear wall specimens, it was found that the failure mode shows very effective crack control and crushing due to slippage prevention of boundary region and reduction of diagonal tension rathar than the brittle shear and diagonal tension failure. The ductility of specimens designed by the diagonal reinforcement for the slit and infilled shear wall was increased 1.72~1.81 times in comparison with the fully rigid shear wall frame. Maximum horizontal load-carrying capacity of specimens designed by the diagonal reinforcement ratio the slit and infilled shear wall was increased respectively by l.14 times and l.49 times in comparison with the standard fully rigid shear wall frame.

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장방형 철근 콘크리트 전단벽의 연성 보강 (Ductility Confinement of RC Rectangular Shear Wall)

  • 강수민;박홍근
    • 콘크리트학회논문집
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    • 제14권4호
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    • pp.530-539
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    • 2002
  • 전단벽의 연성도 확보를 위한 단부횡보강 설계에 있어서, 현재 설계기준들은 경험적이며 강제적이다. 즉, 현재 설계기준은 연성도 요구량에 관계없이 단부횡보강영역과 상세를 정해 놓고 있으며, 따라서 성능기초설계에 부적합하다. 본 연구의 목적은 성능기초설계에 적합한 전단벽의 연성도 설계방법을 개발하는 것이다. 단부횡보강영역에 따른 전단벽의 연성도변화를 조사하기 위하여 실험연구를 수행하였으며 압축대를 모델링하기 위하여 각기 다른 횡보강영역을 갖는 시험체에 편심축하중을 가력하였다. 실험연구를 통하여 횡보강된 벽체 압축대의 강도, 연성도, 파괴모드 등을 연구하였으며, 벽체 단면 전체에서 단부 횡보강으로 인하여 발생하는 연성도 및 파괴시점을 조사하기 위하여 비선형 수치해석을 수행하였다. 실험과 해석연구 결과를 기반으로 하여 전단벽의 연성도 설계방법을 개발하였다. 제안된 설계방법을 이용하여, 주어진 연성도 요구량에 맞게 단부횡보강영역과 횡보강량을 정확히 결정할 수 있으며, 따라서 벽체의 연성거동을 보장하는 동시에 경제적인 벽체설계가 가능하게 되었다.

프리캐스트 병렬 전단벽의 연성도 해석 (Ductility Demand of Precast Coupled Shear Wall)

  • 홍성걸;김영욱
    • 한국지진공학회논문집
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    • 제3권2호
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    • pp.29-40
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    • 1999
  • 본 연구는 초기 내진설계단에서 프리캐스트 병렬전단벽의 연결보의 필요한 연성도의 간단한 계산방법을 제시한다 프리캐스트 병렬 전단벽의 최상층 변위는 연속체 접근 방법으로 구한 부부과 구한 부분과 분절적으로 나타나는 수평접합부의 개폐로 인한 소성변위의 합으로 나타난다. 이러한 계산을 통해 시스템 레벨의 연성도와 부재 레벨의 연성도의 관계를 구한다 여기서 제안되 연성도 관계식으로부터 연결보의 강성이 증가하거나 강도가 벽체에 비해 작은 경우에는 연결보의 과다한 연성도가 필요하 것으로 나타난다 또한 이러한 연성도는 해당 층의 수평접합부의 개폐정도에 비례함을 보여준다 그러나 고층부의 연결보는 수평접합부 개폐정도에 관계가 적음을 보여준다.

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병렬 전단벽의 커플링 정도에 관한 연구 (The Study on Degree of Coupling in Coupled Shear Wall System)

  • 박완신;윤현도;황선경;김선우;한민기;이원석
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 봄학술 발표회 논문집(I)
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    • pp.135-138
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    • 2005
  • Since a ductile coupled shear wall system is the primary seismic load resisting systems of many structures, a coupling beams of these system must exhibit excellent ductility and energy absorption capacity. In this paper, the seismic response of coupled shear wall system is discussed. It includes that the evaluation of the degree of coupling between the shear walls and the coupling beams. It is demonstrated through a review of experimental investigations of coupling beam behavior that often the coupling beam ductility demand exceeds the expected available ductility. As a result, it is possible that coupled shear wall system will not behave as desired in the course of a significant seismic event. Limits to the allowable degree of coupling are proposed as a remedy to this apparent deficiency.

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철근콘크리트 내진벽의 구조성능 평가 및 개선 (Evaluation and Improvement of Structural Performance of Reinforced Shear Walls Under Load Reversals)

  • 신종학;하기주;안준석;주정준
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 봄 학술발표회 논문집(I)
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    • pp.683-688
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    • 1999
  • The purpose of this study is to develop and evaluate the structural performance of various shear walls, such as the hysteretic behavior, the maximum horizontal strength, crack propagation, and ductility etc. under load reversals. For the diagonal reinforced slit and infilled shear wall specimens, it was found that the failure mode shows very effective crack control and crashing due to slippage prevention of boundary region and reduction of diagonal tension rather than the brittle shear and diagonal tension failure. The ductility of specimens designed by the diagonal reinforcement for the slit and infilled shear wall was increased 1.72~1.81 times in comparison with the fully rigid shear wall frame. Maximum horizontal load-carrying capacity of specimens designed by the diagonal reinforcement ratio the slit and infilled shear wall was increased respectively by 1.14 times and 1.49 times in comparison with the standard fully rigid shear wall frame.

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ECC (Engineered Cementitious Composite)의 연성이 전단벽의 사인장 거동에 미치는 영향 (Influence of ECC ductility on the diagonal tension behavior (shear capacity) of shear-wall panel)

  • 하기주;신종학;김윤용;김정수;김진근
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 봄학술 발표회 논문집(II)
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    • pp.321-324
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    • 2005
  • This paper presents a preliminary study on the influence of material ductility on diagonal tension behavior of shear-wall panels. There have been a number of previous studies, which suggest that the use of high ductile material such as ECC (Engineered Cementitious Composite) significantly enhanced shear capacity of structural elements even without shear reinforcements involved. The present study emphasizes increased shear capacity of shear-wall panels by employing a unique strain-hardening ECC reinforced with poly(vinyl alcohol) (PVA) short random fibers. Normal concrete was adopted as the reference material. Experimental investigation was performed to assess the failure mode of shear-wall panels subjected to knife-edge loading. The results from experiments show that ECC panels exhibit a more ductile failure mode and higher shear capacity when compared to ordinary concrete panels. The superior ductility of ECC was clearly reflected by micro-crack development, suppressing the localized drastic fracture typically observed in concrete specimen. This enhanced structural performance indicates that the application of ECC for a in-filled frame panel can be effective in enhancing seismic resistance of an existing frame in service.

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A numerical study on the seismic behavior of a composite shear wall

  • Naseri, Reza;Behfarnia, Kiachehr
    • Computers and Concrete
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    • 제22권3호
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    • pp.279-289
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    • 2018
  • Shear walls are one of the important structural elements for bearing loads imposed on buildings due to winds and earthquakes. Composite shear walls with high lateral resistance, and high energy dissipation capacity are considered as a lateral load system in such buildings. In this paper, a composite shear wall consisting of steel faceplates, infill concrete and tie bars which tied steel faceplates together, and concrete filled steel tubular (CFST) as boundary columns, was modeled numerically. Test results were compared with the existing experimental results in order to validate the proposed numerical model. Then, the effects of some parameters on the behavior of the composite shear wall were studied; so, the diameter and spacing of tie bars, thickness and compressive strength of infill concrete, thickness of steel faceplates, and the effect of strengthening the bottom region of the wall were considered. The seismic behavior of the modeled composite shear wall was evaluated in terms of stiffness, ductility, lateral strength, and energy dissipation capacity. The results of the study showed that the diameter of tie bars had a trivial effect on the performance of the composite shear wall, but increasing the tie bars spacing decreased ductility. Studying the effect of infill concrete thickness, concrete compressive strength, and thickness of steel faceplates also showed that the main role of infill concrete was to prevent buckling of steel faceplates. Also, by strengthening the bottom region of the wall, as long as the strengthened part did not provide a support performance for the upper part, the behavior of the composite shear wall was improved; otherwise, ductility of the wall could be reduced severely.