• Title/Summary/Keyword: Frame-Shear Wall Structure

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초고층 전단벽-골조 아웃리거 구조시스템의 지진하중에 대한 시간이력해석 (Transient Analysis of High-rise Wall-Frame Structures with Outriggers under Seismic Load)

  • 김진만;최은희;박대규;이재홍
    • 한국강구조학회 논문집
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    • 제20권2호
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    • pp.303-312
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    • 2008
  • 본 논문에서는 초고층 전단벽-골조 아웃리거 구조시스템의 지진하중에 대한 시간이력해석을 수행하였다. 전단벽과 골조를 전단변형과 휨변형이 모두 고려된 (티모센코) 보 이론을 기본으로 하여 개발되었으며, 개발된 해석모델은 일차원 유한요소로 정식화되어 다양한 수치해석 예제들의 거동 분석을 하였다. 해석모델은 아웃리거 트러스의 강성을 회전 스프링 강성으로 치환하여 적용한 것으로 아웃리거 트러스의 형태나 위치에 의한 구조물의 거동 효과를 쉽게 알 수 있다. 앞선 연구를 바탕으로 전단벽-골조 시스템과 전단벽-골조에 아웃리거 시스템을 결합한 건물의 지진해석모델을 개발하고자 하였다. 전단벽-골조 구조는 전단벽과 골조의 전단변형과 휨병형을 동시에 고려한 해석모델을 기반으로 하였으며, 아웃리거 트러스의 강성 해석 역시 전단변형과 휨변형을 모두 고려한 해석 모델을 기반으로 지진해석모델을 개발하였다. 개발되어진 해석 모델의 정확성을 입증하기 위해서 3차원 해석 프로그램인 MIDAS GEN을 이용하여 그 해석결과를 비교하였다. 그 결과 초고층건물의 초기설계단계에서 많은 시간이 소요되는 지진하중에 대한 시간이력해석을 효율적이며 또한 비교적 정확히 수행할 수 있을 것으로 기대된다.

Seismic response of dual structures comprised by Buckling-Restrained Braces (BRB) and RC walls

  • Beiraghi, Hamid
    • Structural Engineering and Mechanics
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    • 제72권4호
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    • pp.443-454
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    • 2019
  • In order to reduce the residual drift of a structure in structural engineering field, a combined structural system (dual) consisting of steel buckling-restrained braced frame (BRBF) along with shear wall is proposed. In this paper, BRBFs are used with special reinforced concrete shear walls as combined systems. Some prototype models of the proposed combined systems as well as steel BRBF-only systems (without walls) are designed according to the code recommendations. Then, the nonlinear model of the systems is prepared using fiber elements for the reinforced concrete wall and appropriate elements for the BRBs. Seismic responses of the combined systems subjected to ground motions at maximum considered earthquake level are investigated and compared to those obtained from BRBFs. Results showed that the maximum residual inter-story drift from the combined systems is, on average, less than half of the corresponding value of the BRBFs. In this research, mean of absolute values of the maximum inter-story drift ratio demand obtained from combined systems is less than the 3% limitation, while this criterion has not been fulfilled by BRBF systems.

Analytical model for hybrid RC frame-steel wall systems

  • Mo, Y.L.;Perng, S.F.
    • Structural Engineering and Mechanics
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    • 제16권2호
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    • pp.127-139
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    • 2003
  • Reinforced concrete buildings with shearwalls are very efficient to resist earthquake disturbances. In general, reinforced concrete frames are governed by flexure and shearwalls are governed by shear. If a structure included both frames and shearwalls, it is generally governed by shearwalls. However, the ductility of ordinary reinforced concrete is very limited. To improve the ductility, a series of tests on framed shearwalls made of corrugated steel was performed previously and the experimental results were compared with ordinary reinforced concrete frames and shearwalls. It was found that ductility of framed shearwalls could be greatly improved if the thickness of the corrugated steel wall is appropriate to the surrounding reinforced concrete frame. In this paper, an analytical model is developed to predict the horizontal load-displacement relationship of hybrid reinforced concrete frame-steel wall systems according to the analogy of truss models. This analytical model is based on equilibrium and compatibility conditions as well as constitutive laws of corrugated steel. The analytical predictions are compared with the results of tests reported in the previous paper. It is found that proposed analytical model can predict the test results with acceptable accuracy.

Displacement-based design method for an energy-dissipation self-centering wall panel structure

  • Sisi Chao;Guanqi Lan;Hua Huang;Huiping Liu;Chenghua Li
    • Steel and Composite Structures
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    • 제51권3호
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    • pp.289-304
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    • 2024
  • The seismic performance of traditional steel frame-shear wall structures was significantly improved by the application of self-centering steel-reinforced concrete (SRC) wall-panel structures in the steel frames. This novel resilience functionality can rapidly restore the structure after an earthquake. The presented steel frame with steel-reinforced concrete self-centering wall-panel structures (SF-SCW) was validated, indicating its excellent seismic performance. The seismic design method based on bear capacity cannot correctly predict the elastic-plastic performance of the structure, especially certain weak floors that might be caused by a major fracture. A four-level seismic performance index, including intact function, continued utilization, life safety, and near-collapse, was established to achieve the ideal failure mode. The seismic design method, based on structural displacement, was proposed by considering performance objectives of the different seismic action levels. The pushover analysis of a six-floor SF-SCW structure was carried out under the proposed design method and the results showed that this six-floor structure could achieve the predicted failure mode.

입체 복합구조물의 하부골조 층수 변화에 따른 비선형 거동특성 (The Nonlinear Behavior Characteristics of the 3D Mixed Building Structures with Variations in the Lower Stories)

  • 강병두;전대한;김재웅
    • 한국지진공학회논문집
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    • 제6권1호
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    • pp.55-62
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    • 2002
  • 상부벽식-하부골조 구조(복합구조)는 일반적으로 전이층을 중심으로 상부는 주거공간의 전단벽식의 고층아파트이고 하부는 상업공간의 보-기등의 골조구조이다. 이러한 구조물은 구조형식의 특성상 강성비정형, 질량비정형, 기하학적 비정형 등 비정형 형태의 특징을 갖고 있다. 본 연구에서는 하부골조 구조물의 층수가 변화할 경우에 대해 복합 구조물의 비선형 거동특성과 내진성능을 파악하였다. 비선형 해석결과로부터 얻은 결론은 다음과 같다. 1) 비선형 정적해석의 최상층변위각과 밑면전 단력계수로부터 하부구조의 층수가 증가할 경우 구조물의 밑면전단력계수는 감소하였으나 최상층변위각은 증가하였다. 2) 하부구조의 층수가 증가할 경우 상부벽식구조의 층간변위각과 소성율은 감소하였으며, 상부벽식은 탄성상태에 가까운 거동을 하였다. 3) 하부구조의 층수가 증가할 경우 하부구조에서 층간변위각이 집중적으로 증가하였다.

The significance of removing shear walls in existing low-rise RC frame buildings - Sustainable approach

  • Keihani, Reza;Bahadori-Jahromi, Ali;Goodchild, Charles
    • Structural Engineering and Mechanics
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    • 제71권5호
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    • pp.563-576
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    • 2019
  • According to The Concrete Centre, in the UK shear walls have become an inseparable part of almost every reinforced concrete frame building. Recently, the construction industry has questioned the need for shear walls in low to mid-rise RC frame buildings. This study tried to address the issue in two stages: The first stage, the feasibility of removing shear walls in an existing design for a residential building where ETABS and CONCEPT software were used to investigate the structural performance and cost-effectiveness respectively. The second stage, the same structure was examined in various locations in the UK to investigate regional effects. This study demonstrated that the building without shear wall could provide adequate serviceability and strength within the safe range defined by Eurocodes. As a result, construction time, overall cost and required concrete volume are reduced which in turn enhance the sustainability of concrete construction.

X, Y 방향에 따른 상부벽식-하부골조의 비선형 정적응답특성 (The Response Characteristics of Nonlinear Pushover Analysis of Upper Wall-Lower Frame System with X and Y-Directions)

  • 강병두;전대한;김재웅
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2003년도 가을 학술발표회 논문집
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    • pp.209-216
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    • 2003
  • The purpose of this study is to investigate the response characteristics of pushover analysis of upper wall-lower frame system with X and Y-directions' lateral load Pushover analysis estimates initial elastic stiffness, post-yielding stiffness, and plastic hinges on each story of structures through three-dimensional nonlinear analysis program. The conclusions of this study are as follows; (1) As a result of pushover analysis, the magnitude of nonlinear response and distribution of yield hinge in lower structure are similar with both X and Y directions, but not in upper structure because of different relative stiffness. (2) The maximum drift ratio of roof is larger for X-direction than for Y-direction with respect to magnitude of shear wall areas in upper structure.

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Performance-based framework for soil-structure systems using simplified rocking foundation models

  • Smith-Pardo, J. Paul
    • Structural Engineering and Mechanics
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    • 제40권6호
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    • pp.763-782
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    • 2011
  • Results from nonlinear time-history analyses of wall-frame structural models indicate that the condition of vulnerable foundations -for which uplifting and reaching the bearing capacity of the supporting soil can occur before yielding at the base of the shear walls- may not be necessarily detrimental to the drift response of buildings under strong ground motions. Analyses also show that a soil-foundation system can inherently have deformation capacity well in excess of the demand and thus act as a source of energy dissipation that protects the structural integrity of the shear walls.

Research on hysteretic characteristics of EBIMFCW under different axial compression ratios

  • Li, Sheng-cai;Lin, Qiang
    • Earthquakes and Structures
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    • 제22권5호
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    • pp.461-473
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    • 2022
  • Energy-saving block and invisible multiribbed frame composite wall (EBIMFCW) is an important shear wall, which is composed of energy-saving blocks, steel bars and concrete. This paper conducted seismic performance tests on six 1/2-scale EBIMFCW specimens, analyzed their failure process under horizontal reciprocating load, and studied the effect of axial compression ratio on the wall's hysteresis curve and skeleton curve, ductility, energy dissipation capacity, stiffness degradation, bearing capacity degradation. A formula for calculating the peak bearing capacity of such walls was proposed. Results showed that the EBIMFCW had experienced a long time deformation from cracking to failure and exhibited signs of failure. The three seismic fortification lines of the energy-saving block, internal multiribbed frame, and outer multiribbed frame sequentially played important roles. With the increase in axial compression ratio, the peak bearing capacity and ductility of the wall increased, whereas the initial stiffness decreased. The change in axial compression ratio had a small effect on the energy dissipation capacity of the wall. In the early stage of loading, the influence of axial compression ratio on wall stiffness and strength degradation was unremarkable. In the later stage of loading, the stiffness and strength degradation of walls with high axial compression ratio were low. The displacement ductility coefficients of the wall under vertical pressure were more than 3.0 indicating that this wall type has good deformation ability. The limit values of elastic displacement angle under weak earthquake and elastic-plastic displacement angle under strong earthquake of the EBIMFCW were1/800 and 1/80, respectively.

초고층 오프셋 아웃리거 구조의 최적 위치에 대한 수정제안 (Modified Proposal for Optimal Location of Offset Outrigger System in High-rise Building)

  • 김형기
    • 한국구조물진단유지관리공학회 논문집
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    • 제24권5호
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    • pp.37-44
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    • 2020
  • 본 연구는 오프셋 아웃리거 구조의 최적위치를 예측하는 대표적인 기존식보다 적절한 식을 제안하는데 목적이 있다. 이 연구에서는 79개 기존 오프셋 아웃리거 구조의 해석모델을 검토하였다. 그리고 기존 오프셋 아웃리거 모델에서의 주요한 변수는 전단벽과 오프셋 아웃리거의 강성, 오프셋 아웃리거에 연결된 외곽기둥의 강성, 프레임의 강성, 전단벽-프레임 구조에서 프레임의 수평강성비 등이다. 본 논문은 오프셋 아웃리거 구조의 최적위치를 예측하는 방법을 수정하여 제안하였다. 또한 본 연구의 결과는 초고층 오프셋 아웃리거 구조의 최적위치에 대한 중요한 구조공학자료를 제공한다.