• 제목/요약/키워드: dynamic seismic analysis

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내진설계를 위한 지진 입력하중 조정 방법 (Method of the Calibration of earthquake Ground Motions for Seismic Design)

  • 공도환
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 1998년도 추계 학술발표회 논문집 Proceedings of EESK Conference-Spring 1998
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    • pp.20-27
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    • 1998
  • In the current seismic design codes design earthquake is usually defined as the earthquake with the 90 percent probability of not being exceeded in the life time of a structure which is assumed as 50 years equivalent to the earthquake with 475 year recurrence period. However the life time of tall building structures may be much longer than 50 yers. The current seismic design code requires the modal analysis or dynamic time history analysis for the buildings with the height exceeding a certain height limit. The objective of this study is to collect the earthquake ground motion(EQGM) which can be used for dynamic time history analysis for tall buildings. For this purpose linear elastic design response spectrum (LEDRS) in the code is scaled to account for the recurrence period of the design earthquake. The earthquake ground motions which has been recorded are calibrated to fit the scaled LEDRS. The set of calibrated EQGM can be treated as design EQGM for the design of tall building with longer lifetime than ordinary building.

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Evaluation of energy response of space steel frames subjected to seismic loads

  • Ozakgul, Kadir
    • Structural Engineering and Mechanics
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    • 제54권4호
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    • pp.809-827
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    • 2015
  • In this paper, seismic energy response of inelastic steel structures under earthquake excitations is investigated. For this purpose, a numerical procedure based on nonlinear dynamic analysis is developed by considering material, geometric and connection nonlinearities. Material nonlinearity is modeled by the inversion of Ramberg-Osgood equation. Nonlinearity caused by the interaction between the axial force and bending moment is also defined considering stability functions, while the geometric nonlinearity caused by axial forces is described using geometric stiffness matrix. Cyclic behaviour of steel connections is taken into account by employing independent hardening model. Dynamic equation of motion is solved by Newmark's constant acceleration method in the time history domain. Energy response analysis of space frames is performed by using this proposed numerical method. Finally, for the first time, the distribution of the different energy types versus time at the duration of the earthquake ground motion is obtained where in addition error analysis for the numerical solutions is carried out and plotted depending on the relative error calculated as a function of energy balance versus time.

지진시 저층건물 면진구조의 비선형 동적 거동 (Dynamic Stability Analysis of Base-Isolated Low-level Nonlinear Structure Under Earthquake Excitation)

  • 문병영;강경주;강범수;김계수
    • 대한기계학회논문집A
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    • 제25권11호
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    • pp.1743-1750
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    • 2001
  • This paper presents an analysis of nonlinear response of the seismically isolated structure against earthquake excitation to evaluate isolation performances of a rubber bearing. In the analysis of the vibration of building, the building is modeled by lumped mass system where the restoring force is considered as linear, bilinear and trilinear. Fundamental equations of motion are derived for the base isolated structure, and hysteretic and nonlinear-elastic characteristics are considered for a numerical calculation. The excitation levels are magnified fur the recorded strong earthquake motions in order to examine dynamic stability of the structure. Seismic responses (of the building are compared fur the each restoring force type. As a result, it is shown that the effect of the motion by the nonlinear response of the building is comparatively not so large from a seismic design standpoint. The responses of the isolated structures reduce sufficiently and controled the motion of the building well in a practical range. By increasing the acceleration of the earthquake, the yielding of the farce was occurred in the concrete and steel frame, which shows the necessity of the exact nonlinear dynamic analysis.

격간벽 구조의 취약도 해석 (Fragility Analysis of Staggered Wall Structures)

  • 백동걸;권광호;김진구
    • 한국전산구조공학회논문집
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    • 제25권5호
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    • pp.397-404
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    • 2012
  • 지진취약도 곡선은 구조물의 피해를 지반가속도에 따른 확률로 나타낸 것으로, 이를 이용하여 구조물의 지진에 대한 손상확률을 추정할 수 있다. 본 연구에서는 6층, 12층 중복도형 격간벽 구조 시스템에 대한 취약도 곡선을 산출하기 위해 22쌍의 지반가속도를 이용하여 증분동적해석(Incremental dynamic analysis)을 수행하고, 다양한 지진강도에 대한 파괴확률을 구하였다. 정형의 격간벽 구조의 해석결과와 1층의 격간벽을 기둥으로 대체한 구조물, 중앙 복도에 기둥이 추가된 구조물의 해석결과를 비교하였다. 취약도 해석결과에 따르면 동일한 수준의 지진하중에 대하여 중앙 복도에 기둥을 추가한 모델이 가장 높은 내진 안전성을 갖는 것으로 나타났다.

건축물에 설치된 물탱크의 지진응답해석을 통한 설계하중 평가 (Evaluation of Seismic Design Force by Earthquake Response Analysis of Water Tanks Installed in RC Buildings)

  • 백은림;오지현;최형석;이상호
    • 한국지진공학회논문집
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    • 제23권4호
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    • pp.221-229
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    • 2019
  • Several water tanks installed in the building were damaged during the Gyeongju earthquake (2016) and the Pohang earthquake (2017). Since a water tank for fire protection is very important component, seismic safety should be ensured. In this study, an interaction between a water tank and a building was studied by the dynamic analysis of the RC building with the water tank. In case the water tank was installed on the roof of the RC building, it was confirmed that it did not significantly affect the response of the building. Based on the result, dynamic response characteristics of the water tank in the building were studied using two SDOF models represented dynamic behavior of the water tanks under earthquake. An earthquake time-history analysis was carried out with variables of aspect ratio of the tank, story of the building, and installed location in the building using three kinds of earthquakes.

Seismic response and damage development analyses of an RC structural wall building using macro-element

  • Hemsas, Miloud;Elachachi, Sidi-Mohammed;Breysse, Denys
    • Structural Engineering and Mechanics
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    • 제51권3호
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    • pp.447-470
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    • 2014
  • Numerical simulation of the non-linear behavior of (RC) structural walls subjected to severe earthquake ground motions requires a reliable modeling approach that includes important material characteristics and behavioral response features. The objective of this paper is to optimize a simplified method for the assessment of the seismic response and damage development analyses of an RC structural wall building using macro-element model. The first stage of this study investigates effectiveness and ability of the macro-element model in predicting the flexural nonlinear response of the specimen based on previous experimental test results conducted in UCLA. The sensitivity of the predicted wall responses to changes in model parameters is also assessed. The macro-element model is next used to examine the dynamic behavior of the structural wall building-all the way from elastic behavior to global instability, by applying an approximate Incremental Dynamic Analysis (IDA), based on Uncoupled Modal Response History Analysis (UMRHA), setting up nonlinear single degree of freedom systems. Finally, the identification of the global stiffness decrease as a function of a damage variable is carried out by means of this simplified methodology. Responses are compared at various locations on the structural wall by conducting static and dynamic pushover analyses for accurate estimation of seismic performance of the structure using macro-element model. Results obtained with the numerical model for rectangular wall cross sections compare favorably with experimental responses for flexural capacity, stiffness, and deformability. Overall, the model is qualified for safety assessment and design of earthquake resistant structures with structural walls.

Seismic collapse safety of high-rise RC moment frames supported on two ground levels

  • Wu, Yun-Tian;Zhou, Qing;Wang, Bin;Yang, Yeong-Bin;Lan, Tian-Qing
    • Earthquakes and Structures
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    • 제14권4호
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    • pp.349-360
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    • 2018
  • Reinforced concrete (RC) moment frames supported on two ground levels have been widely constructed in mountainous areas with medium to high seismicity in China. In order to investigate the seismic collapse behavior and risk, a scaled frame model was tested under constant axial load and reversed cyclic lateral load. Test results show that the failure can be induced by the development of story yielding at the first story above the upper ground. The strong column and weak beam mechanism can be well realized at stories below the upper ground. Numerical analysis model was developed and calibrated with the test results. Three pairs of six case study buildings considering various structural configurations were designed and analyzed, showing similar dynamic characteristics between frames on two ground levels and flat ground of each pair. Incremental dynamic analyses (IDA) were then conducted to obtain the seismic collapse fragility curves and collapse margin ratios of nine analysis cases designated based on the case study buildings, considering amplification of earthquake effect and strengthening measures. Analysis results indicate that the seismic collapse safety is mainly determined by the stories above the upper ground. The most probable collapse mechanism may be induced by the story yielding of the bottom story on the upper ground level. The use of tie beam and column strengthening can effectively enhance the seismic collapse safety of frames on two ground levels.

비선형 응답이력해석을 통한 사면의 동적 안전계수 계산 (Dynamic Factor of Safety Calculation of Slope by Nonlinear Response History Analysis)

  • 이용희;김학성;주영태;김대현;박헌준;박두희
    • 한국지반공학회논문집
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    • 제37권9호
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    • pp.5-12
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    • 2021
  • 유사정적해석법은 실무에서 지진 시 사면의 안전계수를 구하기 위하여 널리 사용되고 있다. 반면에 동적해석은 지진 시 지반의 응력-변형관계를 가장 잘 모사할 수 있다는 장점에도 불구하고 설계기준에서 요구되는 안전계수를 산정하기 어려워 실무적으로 그 활용이 많지 않았다. 본 연구에서는 비선형 응답이력해석으로 사면의 동적 안전계수를 산정하는 기법을 구축하였다. 이 방법은 최대가속도를 인위적으로 조절해서 지진계수를 산정하는 유사정적해석법의 문제점을 극복하며 사면 고유의 증폭 특성을 고려할 수 있다. 제안된 방법은 단일 사면에 대해서 적용하였으며 해석 결과를 유사정적해석법과 비교하였다. 본 연구에서 사용한 사면 사례에서는 동적해석결과로부터 계산된 사면의 최소 안전계수는 유사정적해석결과와 유사하게 평가되었으며, 수평방향 지진계수와 활동 토체의 평균 가속도가 최대가 되는 시점에서 동적 안전계수는 최소가 됨을 확인하였다.

내진 설계용 스펙트럼에 적합한 인공지진파의 작성과 응답 특성 (Simulation of Artificial Earthquake Wave Compatible with Seismic Design Spectrum and Its Response Characteristics)

  • 전대한;강병두;김재웅
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2006년도 학술발표회 논문집
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    • pp.141-148
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    • 2006
  • This study describes a generation of artificial earthquake wane compatible with seismic design spectrum. In seismic response analysis of building structures, the input ground accelerations have considerable effect on dynamic characteristics of structures. Therefore, it is important to properly select input ground motions for seismic response analysis. In this paper, the artificial earthquake wave are generated according to previously recorded earthquake waves in past earthquake events. The artificial wave have identical phase angles to the recorded earthquake wane, and their overall response spectra are compatible with seismic design spectrum with 5% of critical viscous damping. Each simulated earthquake wave has a identical phase angles to the original recorded ground acceleration, and match to design response spectra in the range of period from 0.02 to 10.0 seconds. It is concluded that the artificial earthquake waves simulated in this paper ate applicable as input ground motions for a seismic response analysis of building structures.

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Seismic response of a monorail bridge incorporating train-bridge interaction

  • Kim, Chul-Woo;Kawatani, Mitsuo;Lee, Chang-Hun;Nishimura, Nobuo
    • Structural Engineering and Mechanics
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    • 제26권2호
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    • pp.111-126
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    • 2007
  • Dynamic responses of the bridge for a straddle-type monorail subjected to the ground motion of high probability to occur are investigated by means of a three-dimensional traffic-induced vibration analysis to clarify the effect of a train's dynamic system on seismic responses of a monorail bridge. A 15DOFs model is assumed for a car in the monorail train. The validity of developed equations of motion for a monorail train-bridge interaction system is verified by comparison with the field-test data. The inertia effect due to a ground motion is combined with the monorail train-bridge interaction system to investigate the seismic response of the monorail bridge under a moving train. An interesting result is that the dynamic system of the train on monorail bridges can act as a damper during earthquakes. The observation of numerical results also points out that the damper effect due to the dynamic system of the monorail train tends to decrease with increasing speed of the train.