• 제목/요약/키워드: inelastic seismic response

검색결과 222건 처리시간 0.025초

Effect of soil in controlling the seismic response of three-dimensional PBPD high-rise concrete structures

  • Mortezaie, Hamid;Rezaie, Freydoon
    • Structural Engineering and Mechanics
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    • 제66권2호
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    • pp.217-227
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    • 2018
  • In the last decades, valuable results have been reported regarding conventional passive, active, semi-active, and hybrid structural control systems on two-dimensional and a few three-dimensional shear buildings. In this research, using a three-dimensional finite element model of high-rise concrete structures, designed by performance based plastic design method, it was attempted to construct a relatively close to reality model of concrete structures equipped with Tuned Mass Damper (TMD) by considering the effect of soil-structure interaction (SSI), torsion effect, hysteresis behavior and cracking effect of concrete. In contrast to previous studies which have focused mainly on linearly designed structures, in this study, using performance-based plastic design (PBPD) design approach, nonlinear behavior of the structures was considered from the beginning of the design stage. Inelastic time history analysis on a detailed model of twenty-story concrete structure was performed under a far-field ground motion record set. The seismic responses of the structure by considering SSI effect are studied by eight main objective functions that are related to the performance of the structure, containing: lateral displacement, acceleration, inter-story drift, plastic energy dissipation, shear force, number of plastic hinges, local plastic energy and rotation of plastic hinges. The tuning problem of TMD based on tuned mass spectra is set by considering five of the eight previously described functions. Results reveal that the structural damage distribution range is retracted and inter-story drift distribution in height of the structure is more uniform. It is strongly suggested to consider the effect of SSI in structural design and analysis.

Experimental and analytical investigation on seismic behavior of RC framed structure by pushover method

  • Sharma, Akanshu;Reddy, G.R.;Eligehausen, R.;Vaze, K.K.
    • Structural Engineering and Mechanics
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    • 제39권1호
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    • pp.125-145
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    • 2011
  • Pushover analysis has gained significant popularity as an analytical tool for realistic determination of the inelastic behaviour of RC structures. Though significant work has been done to evaluate the demands realistically, the evaluation of capacity and realistic failure modes has taken a back seat. In order to throw light on the inelastic behaviour and capacity evaluation for the RC framed structures, a 3D Reinforced concrete frame structure was tested under monotonically increasing lateral pushover loads, in a parabolic pattern, till failure. The structure consisted of three storeys and had 2 bays along the two orthogonal directions. The structure was gradually pushed in small increments of load and the corresponding displacements were monitored continuously, leading to a pushover curve for the structure as a result of the test along with other relevant information such as strains on reinforcement bars at critical locations, failure modes etc. The major failure modes were observed as flexural failure of beams and columns, torsional failure of transverse beams and joint shear failure. The analysis of the structure was by considering all these failure modes. In order to have a comparison, the analysis was performed as three different cases. In one case, only the flexural hinges were modelled for critical locations in beams and columns; in second the torsional hinges for transverse beams were included in the analysis and in the third case, joint shear hinges were also included in the analysis. It is shown that modelling and capturing all the failure modes is practically possible and such an analysis can provide the realistic insight into the behaviour of the structure.

Ductility-based design approach of tall buildings under wind loads

  • Elezaby, Fouad;Damatty, Ashraf El
    • Wind and Structures
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    • 제31권2호
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    • pp.143-152
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    • 2020
  • The wind design of buildings is typically based on strength provisions under ultimate loads. This is unlike the ductility-based approach used in seismic design, which allows inelastic actions to take place in the structure under extreme seismic events. This research investigates the application of a similar concept in wind engineering. In seismic design, the elastic forces resulting from an extreme event of high return period are reduced by a load reduction factor chosen by the designer and accordingly a certain ductility capacity needs to be achieved by the structure. Two reasons have triggered the investigation of this ductility-based concept under wind loads. Firstly, there is a trend in the design codes to increase the return period used in wind design approaching the large return period used in seismic design. Secondly, the structure always possesses a certain level of ductility that the wind design does not benefit from. Many technical issues arise when applying a ductility-based approach under wind loads. The use of reduced design loads will lead to the design of a more flexible structure with larger natural periods. While this might be beneficial for seismic response, it is not necessarily the case for the wind response, where increasing the flexibility is expected to increase the fluctuating response. This particular issue is examined by considering a case study of a sixty-five-story high-rise building previously tested at the Boundary Layer Wind Tunnel Laboratory at the University of Western Ontario using a pressure model. A three-dimensional finite element model is developed for the building. The wind pressures from the tested rigid model are applied to the finite element model and a time history dynamic analysis is conducted. The time history variation of the straining actions on various structure elements of the building are evaluated and decomposed into mean, background and fluctuating components. A reduction factor is applied to the fluctuating components and a modified time history response of the straining actions is calculated. The building components are redesigned under this set of reduced straining actions and its fundamental period is then evaluated. A new set of loads is calculated based on the modified period and is compared to the set of loads associated with the original structure. This is followed by non-linear static pushover analysis conducted individually on each shear wall module after redesigning these walls. The ductility demand of shear walls with reduced cross sections is assessed to justify the application of the load reduction factor "R".

Seismic response and energy dissipation in partially restrained and fully restrained steel frames: An analytical study

  • Reyes-Salazar, Alfredo;Haldar, Achintya
    • Steel and Composite Structures
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    • 제1권4호
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    • pp.459-480
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    • 2001
  • The damage suffered by steel structures during the Northridge (1994) and Kobe (1995) earthquakes indicates that the fully restrained (FR) connections in steel frames did not behave as expected. Consequently, researchers began studying other possibilities, including making the connections more flexible, to reduce the risk of damage from seismic loading. Recent experimental and analytical investigations pointed out that the seismic response of steel frames with partially restrained (PR) connections might be superior to that of similar frames with FR connections since the energy dissipation at PR connections could be significant. This beneficial effect has not yet been fully quantified analytically. Thus, the dissipation of energy at PR connections needs to be considered in analytical evaluations, in addition to the dissipation of energy due to viscous damping and at plastic hinges (if they form). An algorithm is developed and verified by the authors to estimate the nonlinear time-domain dynamic response of steel frames with PR connections. The verified algorithm is then used to quantify the major sources of energy dissipation and their effect on the overall structural response in terms of the maximum base shear and the maximum top displacement. The results indicate that the dissipation of energy at PR connections is comparable to that dissipated by viscous damping and at plastic hinges. In general, the maximum total base shear significantly increases with an increase in the connection stiffness. On the other hand, the maximum top lateral displacement $U_{max}$ does not always increase as the connection stiffness decreases. Energy dissipation is considerably influenced by the stiffness of a connection, defined in terms of the T ratio, i.e., the ratio of the moment the connection would have to carry according to beam line theory (Disque 1964) and the fixed end moment of the girder. A connection with a T ratio of at least 0.9 is considered to be fully restrained. The energy dissipation behavior may be quite different for a frame with FR connections with a T ratio of 1.0 compared to when the T ratio is 0.9. Thus, for nonlinear seismic analysis, a T ratio of at least 0.9 should not be considered to be an FR connection. The study quantitatively confirms the general observations made in experimental results for frames with PR connections. Proper consideration of the PR connection stiffness and other dynamic properties are essential to predict dynamic behavior, no matter how difficult the analysis procedure becomes. Any simplified approach may need to be calibrated using this type of detailed analytical study.

지진 하중을 받는 평면 비정형 건물의 편심과 손상도의 상관관계에 대한 연구 (A Study on the Relationship between the Eccentricity and the Level of Damage in the Seismic Response of Buildings with Plan Irregularities)

  • 정성훈;이광호
    • 한국지진공학회논문집
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    • 제14권3호
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    • pp.49-57
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    • 2010
  • 비정형 평면을 가진 건물의 추가적인 손상의 원인이 되는 비틀림과 비정형성의 척도인 편심과의 관계에 대한 많은 연구들이 진행되어 왔으나 손상도와 편심의 직접적인 관계에 대한 연구는 수행된 적이 거의 없다. 본 연구에서는 비정형 평면을 가진 건물의 복잡한 지진 응답에 적용할 수 있는 3차원 손상도 계수를 이용하여 건물의 손상도와 편심에 대한 정량적인 관계를 분석하였다. 이를 통해 건물의 편심이 커지면 최대변위는 줄어들지만 비틀림 거동이 증가하여, 손상의 집중으로 인해 전반적인 손상도 계수가 증가함이 관찰되었다. 또한, 2차원 주기가 비슷한 경우에는, 건물의 길이가 최대변위와 최대 비틀림에 미치는 영향이 작으며 이로 인해 전체 손상도 계수에도 그 영향이 미미한 것으로 관찰되었다. 해석 결과를 바탕으로 중약진 지역에서 편심의 크기가 10%, 20%, 30%인 단층 건물은 편심이 없는 건물에 비해서 각각 평균 3~5%, 13~18%, 33~47% 정도의 손상도 증가가 있을 것으로 분석하였다. 이와 같은 편심-손상도 관계는비정형 평면을 가진 건물의 내진 설계에 있어서 기본 구조 계획 수립과 내진 성능 평가에 유용한 자료가 될 것으로 생각된다.

지진에 대비한 기초분리 교량의 설계법에 관한 연구(II) (A Study of Seismic Resistant Design for Base-Isolated Bridges(II))

  • 이상수;유철수
    • 한국강구조학회 논문집
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    • 제9권4호통권33호
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    • pp.637-647
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    • 1997
  • 제1편에서 언급한 바와 같이 기초분리 장치의 사용은 지진의 위험으로부터 구조물의 안전을 유지시키고, 지진 응답 감소에 필요한 비선형 거동은 교체가 용이한 분리장치에 국한 함으로써 구조물의 중요 부재들은 탄성 거동을 확보할 수 있다. 본 연구는 강재 Damper를 사용한 교량의 지진 응답에 대하여 연구하였다. 강재 Damper의 특성에 따른 응답을 분리 장치의 매개 변수 영향 별로 분리하여 검토 함으로써 지진시 거동을 파악하고, 적정한 분리 장치를 선정 할 수 있는 기준과 단순화된 설계 방법을 제시하였다. 제시된 시방서 형식의 설계 방법은 비선형 스펙트럼에 의한 모드 해석법으로, 관성력 또는 기초 분리 장치를 포함한 연결부 및 하부 구조의 높이별 설계력을 비교적 정확하게 평가될 수 있다. 따라서 제시된 설계 방법은 기초 분리된 교량의 기본 또는 최종 설계용으로 사용될 수 있을 것이다. 또한, 설계 방법의 타당성 검증을 위해 bilinear 이력의 강재 Damper를 사용한 P.C 교량에 대해 인공 지진파를 이용한 비선형 시간 이력 해석과 설계 응답 스펙트럼에 의한 탄성 수치 해석을 수행하여 단순 설계 방법과 비교 검토하였다.

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변형에 기초한 비대칭 벽식 주초의 내진설계 (Deformation Based Seismic Design of Asymmetric Wall Structures)

  • 홍성걸;조봉호
    • 한국지진공학회논문집
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    • 제6권1호
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    • pp.43-53
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    • 2002
  • 기존의 비틀림 설계법은 구조 벽체의 강성은 강도에 무관하게 결정된다는 기본 가정하에 강성을 설계 변수로 비대칭 벽식 구조의 비틀림 효과를 최소화 하기 위한 각 부재의 강도를 결정한다. 이와는 달리 최근의 연구에 의하면 구조 벽체의 강성과 강도는 상호 연관성을 갖는 것으로 알려졌다. 이 경우 벽체의 실제 강성은 비틀림설계를 모두 마친 후에야 결정되므로 강성에 기초하여 비틀림 설계를 수행한다는 것은 모순이다. 이와 같은 문제점을 해결하기 위해 본 논문은 강성이 아닌 변형에 기초한 비대칭 벽식 구조의 비틀림 설계법을 제안한다. 기존의 비틀림 설계법은 탄성 비틀림 응답과 반응수정계수를 이용하여 비탄성 응답에 대한 설계 하중을 간접적으로 계산하지만 변형에 기초한 비틀림 설계법은 변위와 비틀림 회전각을 설계 변수로 비탄성 응답에 대한 설계 하중을 직접적으로 계산한다. 기존의 비틀림 설계법이 비틀림 효과를 최소화하는 것을 목적으로 하는 데 비하여, 변형에 기초한 비틀림 설계법은 내진역량설계법의 기본 개념에 의거하여 설계자가 의도한 비틀림 미케니즘을 발휘하는 데 그 목적을 둔다. 변위와 회전각은 비대칭 구조의 성능수준을 직접적으로 나타내는 성능 지표이므로 본 설계법은 성능기초 내진설계에 효과적으로 사용될 수 있다.

재료의 구성모델에 따른 철근콘크리트 골조의 비선형 동적거동 특성 차이에 관한 연구 (Nonlinear Dynamic Analysis of RC Frames Based on Constitutive Models of Constituent Materials)

  • 허영애;강현구
    • 한국구조물진단유지관리공학회 논문집
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    • 제17권4호
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    • pp.1-8
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    • 2013
  • 철근콘크리트 구성요소에 대한 비탄성 거동 모델 개발은 철근콘크리트 구조물에 대한 성능기반 내진평가의 정밀도 향상에 있어 매우 중요한 요소로 본 연구에서는 지진과 같은 불규칙 반복 하중에 대한 철근콘크리트 구조물의 비선형 동적응답을 예측함에 있어 콘크리트 구성모델의 특성에 따른 민감도를 고찰하고자 하였다. 해석결과에 따르면 구속된 코어 콘크리트 모델과 일반 콘크리트의 구성모델은 동적응답에 큰 영향을 끼치지 않았으나 철근의 경우에 층간변위와 관련하여 구성모델에 따른 동적거동은 매우 민감하게 응답하는 것으로 나타났으며, 몇 개 층에서의 층간변위는 그 차이가 철근 구성모델 선택에 따라 2배 이상 차이 나는 것으로 나타났다. 따라서 Non-ductile과 Ductile 골조 공히 비선형 동적해석을 수행하는데 있어 정밀한 철근 구성모델의 선택은 매우 중요한 것으로 사료된다.

Investigation of shear effects on the capacity and demand estimation of RC buildings

  • Palanci, Mehmet;Kalkan, Ali;Sene, Sevket Murat
    • Structural Engineering and Mechanics
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    • 제60권6호
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    • pp.1021-1038
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    • 2016
  • Considerable part of reinforced concrete building has suffered from destructive earthquakes in Turkey. This situation makes necessary to determine nonlinear behavior and seismic performance of existing RC buildings. Inelastic response of buildings to static and dynamic actions should be determined by considering both flexural plastic hinges and brittle shear hinges. However, shear capacities of members are generally neglected due to time saving issues and convergence problems and only flexural response of buildings are considered in performance assessment studies. On the other hand, recent earthquakes showed that the performance of older buildings is mostly controlled by shear capacities of members rather than flexure. Demand estimation is as important as capacity estimation for the reliable performance prediction in existing RC buildings. Demand estimation methods based on strength reduction factor (R), ductility (${\mu}$), and period (T) parameters ($R-{\mu}-T$) and damping dependent demand formulations are widely discussed and studied by various researchers. Adopted form of $R-{\mu}-T$ based demand estimation method presented in Eurocode 8 and Turkish Earthquake Code-2007 and damping based Capacity Spectrum Method presented in ATC-40 document are the typical examples of these two different approaches. In this study, eight different existing RC buildings, constructed before and after Turkish Earthquake Code-1998, are selected. Capacity curves of selected buildings are obtained with and without considering the brittle shear capacities of members. Seismic drift demands occurred in buildings are determined by using both $R-{\mu}-T$ and damping based estimation methods. Results have shown that not only capacity estimation methods but also demand estimation approaches affect the performance of buildings notably. It is concluded that including or excluding the shear capacity of members in nonlinear modeling of existing buildings significantly affects the strength and deformation capacities and hence the performance of buildings.

박스형 터널의 지진 취약도 평가 (Seismic Fragility Evaluation of Cut-and-cover Tunnel)

  • 박두희;듀이-두안 응;이태형;반-쾅 응
    • 한국지반공학회논문집
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    • 제34권11호
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    • pp.71-80
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    • 2018
  • 본 연구에서는 박스형 개착식 철도 터널의 지진 응답을 유사정적 프레임 해석으로부터 평가하였으며 취약도 곡선을 도출하였다. 지반의 영향을 평가하기 위하여 다양한 이상화된 주상도를 사용하였으며 20개의 계측지진기록을 적용하였다. 기존 연구에서 제시된 탄성 모멘트와 항복 모멘트 비로 정의된 손상지수를 사용하여 Minor, Moderate, Extensive 손상상태에 대한 취약도 곡선을 각각 최대지반가속도의 함수로 적용하였다. 연구 결과, 지반 조건은 취약도에 큰 영향을 미치는 것으로 나타났으며 이를 고려하는 곡선의 개발이 중요한 것으로 나타났다. 개발된 취약도 곡선은 기존의 연구에서 도출된 곡선들과 비교하였다. 기존에 제시된 경험적 취약도 곡선은 지반조건의 영향을 고려할 수 없으며 특히 연약 지반에서는 취약도를 과소예측하는 것으로 나타났다.