• 제목/요약/키워드: RC structure

검색결과 943건 처리시간 0.026초

유한요소법을 이용한 철근콘크리트 지하철 정거장 구조물의 내진 해석 (Seismic Analysis of RC Subway Station Structures Using Finite Element Method)

  • 남상혁;송하원;변근주
    • 콘크리트학회논문집
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    • 제15권2호
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    • pp.225-233
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    • 2003
  • 지진하중을 받는 철근콘크리트(이하 RC) 구조물의 해석, 설계 및 성능 평가 등에 대해서는 많은 연구가 진행되어 왔으나, 지반에 둘러싸여 있는 지하 RE 구조물의 지진 해석에 대해서는 상대적으로 연구가 부족하였다. 지중의 지하 구조물은 지상 구조물과는 달리 지반과 상호작용을 하며 거동을 하기 때문에 지반내에서 하중을 받는 RC 구조물의 거동을 해석하기 위해서는 지진하중 하에서의 지반층의 거동을 예측할 수 있는 지반의 경로의존적 구성모델이 반드시 필요하다. 또한 RC 구조물과 지반 사이의 상호작용은 매체의 경계면을 통해 전달되기 때문에 보다 정확한 RC 구조물의 내진성능을 해석하기 위해서는 경계구역의 거동이 해석시에 반드시 고려되어야 한다. 이에 따라 본 논문에서는 지하 RC 구조물의 내진성능을 해석적으로 예측하기 위해 RC구조물에 대해서는 철근과 콘크리트의 평균화된 구성모델을 적용하였고, 지반에 대해서는 경로의존적 Ohsaki 모델을 적용하였으며, 두께를 갖는 탄소성 경계면 모델을 제안하였다. 또한 지진하중을 받는 지하 RC 정거장 구조물에 대한 내진 해석을 수행하여 지진시의 지하 RC 구조물의 파괴 기구를 해석적으로 구하였고, RC 구조물에 대한 상대적인 배근 설계에 따른 파괴 모드의 변화와 구조물의 손상 정도의 변화를 해석적으로 구하였다.

철근콘크리트 지하철 정거장 구조물의 내진 성능 해석 (Seismic Performance Analysis of RC Subway Station Structures)

  • 남상혁;송하원;변근주
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 가을 학술발표회 논문집
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    • pp.123-128
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    • 2002
  • In this paper, an averaged constitutive model of concrete and reinforcing bars for RC structure and path-dependent Ohsaki's model for soil are applied, and an elasto-plastic interface model having thickness is preposed for seismic analysis of underground RC subway station structure. A finite element analysis technique is developed by applying aforementioned constitutive equations and verified through seismic analysis of underground RC subway station. Then, failure mechanisms of the RC subway station structure under seismic action are numerically derived. Then, failure modes and damage levels of the station are also analytically evaluated for the cases of several designs of the underground RC station.

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Large-scale cyclic test on frame-supported-transfer-slab reinforced concrete structure retrofitted by sector lead rubber dampers

  • Xin Xu;Yun Zhou;Zhang Yan Chen;Da yang Wang;Ke Jiang;Song Wang
    • Earthquakes and Structures
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    • 제26권5호
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    • pp.383-400
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    • 2024
  • For a conventionally repaired frame-supported-transfer-slab (FSTS) reinforced concrete (RC) structure, both the transfer slab and the beam-to-column and transfer slab-to-column joints remain vulnerable to secondary earthquakes. Aimed at improving the seismic performance of a damaged FSTS RC structure, an innovative retrofitting scheme is proposed, which adopts the sector lead rubber dampers (SLRDs) at joints after the damaged FSTS RC structure is repaired by conventional approaches. In this paper, a series of quasi-static cyclic tests was conducted on a large-scale retrofitted FSTS RC structure. The seismic performance was evaluated and the key test results, including deformation characteristics, damage pattern, hysteretic behaviour, bearing capacity and strains on key components, were reported in detail. The test results indicated that the SLRDs started to dissipate energy under the service level earthquake, and thus prevented damages on the beam-to-column and transfer slab-to-column joints during the secondary earthquakes and shifted the plastic hinges away from the beam ends. The retrofitting scheme of using SLRDs also achieved the seismic design concept of 'strong joint, weak component'. The FSTS RC structure retrofitted by the SLRDs could recover more than 85% bearing capacity of its undamaged counterpart. The hysteresis curves were featured by the inverse "S" shape, indicating good bearing capacity and hysteresis performance. The deformation capacity of the damaged FSTS RC structure retrofitted by the SLRDs met the corresponding codified requirements for the case of the maximum considered earthquake, as set out in the Chinese seismic design code. The stability of the FSTS RC structure retrofitted by the SLRDs, which was revealed by the developed stains of the RC frame and transfer slab, was improved compared with the undamaged FSTS RC structure.

측정변형률을 이용한 RC 구조물의 균열검출에 관한 실험적 연구 (An Experimental Study on Crack Detection of RC Structure using Measured Strain)

  • 박기태;박흥석;이규완
    • 한국구조물진단유지관리공학회 논문집
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    • 제6권3호
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    • pp.193-199
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    • 2002
  • 콘크리트 구조물에 발생하는 구조적인 균열은 재하하중에 의하여 콘크리트가 저항할 수 있는 인장강도보다 더 큰 인장강도가 가해졌을 때 콘크리트의 인장영역에서 발생하며, 이는 구조물의 노후화 또는 재하하중에 대한 저항능력이 감소되었음을 의미한다. 그러므로 콘크리트에 발생한 구조적 균열은 구조물에 치명적인 손상을 유발시킬 수 있으며, 구조물의 안전성 확보와 효과적인 유지관리를 위해서는 이를 검출하는 기법에 대한 연구가 반드시 필요한 실정이다. 본 연구에서는 토목계측 분야에서 가장 널리 활용되고 있는 변형률 센서를 철근콘크리트 보에 부착하여 보의 인장부와 압축부의 변형률을 측정하는 실내실험을 수행하였으며, 하중 재하에 따른 변형률의 변화, 측정부위의 탄성계수 변화, 그리고 중립축의 변화 등을 비교 분석하였다. 분석 결과로부터, 측정된 변형률을 이용하여 중립축의 변화 추이를 추정하므로써 가장 효과적으로 균열을 검출할 수 있는 알고리즘을 제시하였다.

지중 RC 도시지하철고 구조물의 내진설계 (A Seismic Design of RC Underground Subway Structure)

  • 정제평;임동원;이성로;김우
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 봄 학술발표회 논문집
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    • pp.357-362
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    • 2000
  • This Paper presents dynamic analysis of underground R/C Subway Structure, subjected to seismic actions. Earthquakes brought serious damage to RC subway Structure. Foe studying the collapse mechanism of underground RC Subway, seismic of a subway station is simulated in using FEM program ASP2000 of two-dimension based on the path dependent RC elastic model, soil foundation and interfacial models. The shear failure of intermediate vertical columns is founds to be the major cause of the structural collapse. According to FEM simulation of the failure mechanism, it is considered that the RC column would lose axial load carrying capacity after the occurrence of the localized diagonal shear cracks , and sudden failure of the outer frame would be followed. Specially, the shear stress in the middle slab reaches maximum shear capacity. So, the Structure would fail in the middle slab as a result of erasing the vertical ground motion computation.

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Plastic hinge length of RC columns considering soil-structure interaction

  • Mortezaei, Alireza
    • Earthquakes and Structures
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    • 제5권6호
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    • pp.679-702
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    • 2013
  • During an earthquake, soils filter and send out the shaking to the building and simultaneously it has the role of bearing the building vibrations and transmitting them back to the ground. In other words, the ground and the building interact with each other. Hence, soil-structure interaction (SSI) is a key parameter that affects the performance of buildings during the earthquakes and is worth to be taken into consideration. Columns are one of the most crucial elements in RC buildings that play an important role in stability of the building and must be able to dissipate energy under seismic loads. Recent earthquakes showed that formation of plastic hinges in columns is still possible as a result of strong ground motion, despite the application of strong column-weak beam concept, as recommended by various design codes. Energy is dissipated through the plastic deformation of specific zones at the end of a member without affecting the rest of the structure. The formation of a plastic hinge in an RC column in regions that experience inelastic actions depends on the column details as well as soil-structure interaction (SSI). In this paper, 854 different scenarios have been analyzed by inelastic time-history analyses to predict the nonlinear behavior of RC columns considering soil-structure interaction (SSI). The effects of axial load, height over depth ratio, main period of soil and structure as well as different characteristics of earthquakes, are evaluated analytically by finite element methods and the results are compared with corresponding experimental data. Findings from this study provide a simple expression to estimate plastic hinge length of RC columns including soil-structure interaction.

시공하중의 영향을 받는 플랫플레이트의 장기처짐 (Long Term Deflection of Flat Plate Affected by Construction Load)

  • 강수민;이지웅;오재근;김욱종;이도범;박홍근
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2006년도 추계 학술발표회 논문집
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    • pp.149-152
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    • 2006
  • Serviceability of reinforced concrete building is affected dominantly by long term deflection of slab. And in case of reinforced concrete building with flat plate slab, severe long term deflection was expected because it has no beams which have large flexural stiffness. Therefore it is important to calculate exactly long term deflection of RC flat plate structure to assure its serviceability. However, current codes couldn't calculate exactly long term deflection of RC flat plate structure because they don't consider effects of boundary condition and construction load. By the way, recently the method to calculate long term deflection of RC flat plate structure was proposed by considering these effects. In the present study, long term deflection of RC flat plate structure was analyzed by comparing this method with recent experimental results. In conclusion, long term deflection of RC flat plate structure was affected considerably by effects of boundary condition, construction load and tensile strength of concrete. And recently proposed method considers these effects reasonably but it should be modified to reflect creep effect of RC flat plate slab reasonably.

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비선형 동적해석을 통한 입체라멘 교각의 파괴 메카니즘 모사 (Numerical Simulation of Failure Mechanism of Space Frame Structure by Nonlinear Dynamic Analysis)

  • 김익현
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2000년도 추계 학술발표회 논문집 Proceedings of EESK Conference-Fall 2000
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    • pp.348-355
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    • 2000
  • The characteristics on non linear behavior and the failure mechanism of RC space frame structure serving railway under seismic action have been investigated by numerical analysis in time domain. The structure concerned is modeled in 3 dimensional extent and RC frame elements with fibers are employed. Fibers are characterized as RC one and PL one to distinguish different energy release after cracking. Due to deviation of mass center and stiffness center of entire structure the complex behavior under seismic action is shown. The excessive shear force is concentrated on the pier beside flexible one relatively, which leads to failure of bridge concerned.

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경계면 요소를 고려한 지하 철근콘크리트 구조물의 지진해석 (Seismic Analysis of Underground RC Structures considering Interface between Structure and Soil)

  • 남상혁;변근주;송하원;박성민
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 가을 학술발표회논문집(I)
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    • pp.87-92
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    • 2000
  • The real situation of an underground reinforced concrete(RC) structure with the surrounding soil medium subjected to seismic load is quite difficult to be simulated through an expensive work and, even if it is possible to arrange such an experiment, it will be too expensive. So development of analytical method can be applied usefully to seismic design and seismic retrofit through an analysis of seismic behavior and seismic performance evaluation. A path-dependent constitutive model for soil that can estimate the response of soil layer is indispensible for dealing with kinematic interaction of RC/soil entire system under seismic loads. And interface model which deals with the dynamic interaction of RC/soil entire system is also necessary. In this study, finite element analysis program that can consider path-dependent behavior of RC and soil, and interfacial behavior between RC and soil is developed for rational seismic analysis of RC/soil entire system. Using this program, nonlinear behavior of interface between RC and soil is analyzed, and the effect of interfacial behavior to entire system is investigated.

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Comparative assessment of seismic rehabilitation techniques on a full scale 3-story RC moment frame structure

  • Di Ludovico, M.;Balsamo, A.;Prota, A.;Manfredi, G.
    • Structural Engineering and Mechanics
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    • 제28권6호
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    • pp.727-747
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    • 2008
  • In the framework of the SPEAR (Seismic PErformance Assessment and Rehabilitation) research Project, an under-designed three storey RC frame structure, designed to sustain only gravity loads, was subjected, in three different configurations 'as-built', Fiber Reinforced Polymer (FRP) retrofitted and rehabilitated by reinforced concrete (RC) jacketing, to a series of bi-directional pseudodynamic (PsD) tests under different values of peak ground acceleration (PGA) (from a minimum of 0.20g to a maximum of 0.30g). The seismic deficiencies exhibited by the 'as-built' structure after the test at PGA level of 0.20g were confirmed by a post - test assessment of the structural seismic capacity performed by a nonlinear static pushover analysis implemented on the structure lumped plasticity model. To improve the seismic performance of the 'as-built' structure', two rehabilitation interventions by using either FRP laminates or RC jacketing were designed. Assumptions for the analytical modeling, design criteria and calculation procedures along with local and global intervention measures and their installation details are herein presented and discussed. Nonlinear static pushover analyses for the assessment of the theoretical seismic capacity of the structure in each retrofitted configuration were performed and compared with the experimental outcomes.