• 제목/요약/키워드: concrete plasticity

검색결과 258건 처리시간 0.027초

Investigation of effects of twin excavations effects on stability of a 20-storey building in sand: 3D finite element approach

  • Hemu Karira;Dildar Ali Mangnejo;Aneel Kumar;Tauha Hussain Ali;Syed Naveed Raza Shah
    • Geomechanics and Engineering
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    • 제32권4호
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    • pp.427-443
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    • 2023
  • Across the globe, rapid urbanization demands the construction of basements for car parking and sub way station within the vicinity of high-rise buildings supported on piled raft foundations. As a consequence, ground movements caused by such excavations could interfere with the serviceability of the building and the piled raft as well. Hence, the prediction of the building responses to the adjacent excavations is of utmost importance. This study used three-dimensional numerical modelling to capture the effects of twin excavations (final depth of each excavation, He=24 m) on a 20-storey building resting on (4×4) piled raft. Because the considered structure, pile foundation, and soil deposit are three-dimensional in nature, the adopted three-dimensional numerical modelling can provide a more realistic simulation to capture responses of the system. The hypoplastic constitutive model was used to capture soil behaviour. The concrete damaged plasticity (CDP) model was used to capture the cracking behaviour in the concrete beams, columns and piles. The computed results revealed that the first excavation- induced substantial differential settlement (i.e., tilting) in the adjacent high-rise building while second excavation caused the building tilt back with smaller rate. As a result, the building remains tilted towards the first excavation with final value of tilting of 0.28%. Consequently, the most severe tensile cracking damage at the bottom of two middle columns. At the end of twin excavations, the building load resisted by the raft reduced to half of that the load before the excavations. The reduced load transferred to the piles resulting in increment of the axial load along the entire length of piles.

철근콘크리트 연속 깊은 보의 전단 거동에 대한 개구부 경사 보강근의 영향 (Influence of Inclined Reinforcement around Openings on the Shear Behavior of Reinforced Concrete Continuous Deep Beams)

  • 정헌수;심재일;양근혁
    • 콘크리트학회논문집
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    • 제19권2호
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    • pp.171-178
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    • 2007
  • 경사 보강근이 철근콘크리트 연속 깊은 보의 구조적 거동에 미치는 영향을 파악하기 위하여 내부 전단경간에 개구부를 갖는 연속 깊은 보 12개가 실험되었다. 주요 변수는 개구부 크기와 경사 보강근 양이다. 개구부 주위의 경사 보강근 양과 개구부 크기의 영향을 동시에 고려하기 위한 유효 경사 보강근 계수가 제시되었다. 실험 결과 개구부를 갖는 연속 깊은 보의 하중 분배, 경사균열 폭 및 치대 내력은 유효 경사 보강근 계수에 의해 결정되었다. 유효 경사 보강근 계수가 클수록 경사균열 폭 및 이들의 진전 속도는 낮았다. 특히 유효 경사 보강근 계수가 0.077 이상인 보의 최대 내력은 동일 개구부 없는 보의 것에 비해 높았다. 내부 전단경간에 개구부를 갖는 연속 깊은 보의 최대 내력을 평가하기 위하여 상계치 이론을 이용한 수치해석 모델이 제시되었다. 제시된 모델로부터 얻은 최대 내력은 실험 결과와 잘 일치하였다.

확폭플랜지를 갖는 U형 프리스트레스 거더의 유사정적거동 (Pseudo-Static Behaviors of U-shaped PSC Girder with Wide Flanges)

  • 이인규;이주범;김이현;박주남;곽종원
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 2008년도 추계학술대회 논문집
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    • pp.993-999
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    • 2008
  • 인구밀집지역인 도심부나 주거지역 인근에서 이루어지는 철도교량 신축에 있어서 급속시공은 매우 의미가 있다. 이러한 신속한 시공과 더불어 교량 거더의 형고의 유동적 조절도 중요하다. 기존 I형 거더는 단면에서 수직방향으로 중립축으로부터 떨어진 모멘트 팔 길이와 긴장력을 이용한 평형을 근간으로 하는 까닭에 형고 조절에 있어 다소 어려움이 있었다. 이에 기존 단일 박스거더의 축소형인 확폭플랜지를 갖는 U형 프리캐스트 보는 긴장력 조절과 콘크리트 압축강도에 따라 경간길이 및 형고 변화가 상대적으로 I형보에 비해 용이하다. 확폭플랜지를 갖는 U형 프리캐스트 거더의 철도교 적용성을 확인하기 위해 지간 30m, 형고 1.7m, 폭 3.63m의 실물크기 거더를 제작하였고 하중재하/변위재하를 이용하여 총 6,200kN의 하중을 유사정적으로 가력하였다. 실험은 4점재하시험으로 하중-변위곡선, 하중-변형율을 이용하여 휨성능을 기본적으로 확인하였고 1차 하중제거와 재재하를 통해 긴장재의 역할을 확인 하였다. 유사정적거동을 본질적으로 확인하기 위해 쉘요소를 이용한 3차원 재료비선형해석을 통하여 실험결과와 평행하게 비교하였다. 콘크리트의 비선형성은 손상-소성모델(Lee & Fenves,1998)을 이용하여 콘크리트 인장/압축 소성연화거동, 인장강화거동을 묘사하였다. 실제 균열패턴과 해석 손상패턴을 비교검토 하였고 하중-변위, 단면에 따른 하중-변형율 관계를 실제 실험결과와 비교검토 하였다. 비선형 해석에 사용된 재료물성치와 해석모델의 보유 탄성에너지 조율은 실제 거더에 가진실험을 통해 획득한 고유주파수를 통하여 확인하였다.

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72m 초고강도 콘크리트 프리스트레스트 박스 거더의 수치 해석 (Numerical Simulation of 72m-Long Ultra High Performance Concrete Pre-Stressed Box Girder)

  • 비엣 징 마이;한상묵
    • 한국전산구조공학회논문집
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    • 제35권2호
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    • pp.73-82
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    • 2022
  • 이 논문은 72m 초고강도 콘크리트 섬유보강 콘크리트 프리스트레스트 박스거더의 비선형 거동을 해석하는 3차원 해석방법을 제시하였다. UHPC재료의 비선형 거동을 나타내기 위해 콘크리트 손상소성(CDP)모델을 채택하였다. 제시된 응력-변형률 관계 곡선에 근거한 수치해석 모델은 50m UHPC 프리스트레스트 박스 거더 휨실험결과로 검증하였다. 검증된 해석모델을 사용하여 72m UHPC 프리스트레스트 박스거더의 휨거동을 파악하는데 적용하였다. 각 하중단계에 따른 하중 변위관계, 응력상태 및 연결부분 상세를 해석하였다. 하중-변위관계 곡선과 설계하중 및 극한하중 비교 결과는 UHPC 박스거더 휨거동을 해석하는 적절한 수단으로써 비선형 유한요소법의 적용성을 입증하고 있다.

Modeling of cyclic bond deterioration in RC beam-column connections

  • Picon-Rodriguez, Ricardo;Quintero-Febres, Carlos;Florez-Lopez, Julio
    • Structural Engineering and Mechanics
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    • 제26권5호
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    • pp.569-589
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    • 2007
  • This paper presents an analytical model for RC beam-column connections that takes into account bond deterioration between reinforcing steel and concrete. The model is based on the Lumped Damage Mechanics (LDM) theory which allows for the characterization of cracking, degradation and yielding, and is extended in this paper by the inclusion of the slip effect as observed in those connections. Slip is assumed to be lumped at inelastic hinges. Thus, the concept of "slip hinge", based on the Coulomb friction plasticity theory, is formulated. The influence of cracking on the slip behavior is taken into account by using two concepts of LDM: the effective moment on an inelastic hinge and the strain equivalence hypothesis. The model is particularly suitable for wide beam-column connections for which bond deterioration dominates the hysteretic response. The model was evaluated by the numerical simulation of five tests reported in the literature. It is found that the model reproduces closely the observed behavior.

타틀린의 공간구축 실험 연구 - ‘반-부조’ 작업(1913-1917)을 중심으로 - (A Study on the Investigation of Space-Construction by Tatlin)

  • 한귀진
    • 한국실내디자인학회논문집
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    • 제13권5호
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    • pp.66-73
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    • 2004
  • If we consider the origins of new architectural language in Russian, as opposed to its social dimensions, then we are looking at quite another area of pre-Revolutionary activity: art. It was Tatlin's early ‘counter-reliefs’ which first explored the way new materials might generate new artistic form. The Basis of his art is collage and the reality of materials. In 1915, he exhibited the first of his ‘counter-reliefs’, casual montages of pieces of metal that invade the space around them, making the decomposition of the forms three-dimensional. What is not in doubt is the primacy of materials in Tatlin's art. He was a key figure in the transition from art towards design and ‘construction’, the last was accomplished with ‘real materials in real space.’After the October Revolution, one of the central myths of avant-garde was the realization of a total work of art. The progress has developed in the directions to an unprecedented creative realm, situated somewhere between painting and architecture in the post-revolutionary period. Paramount among such pioneer works was Tatlin's design for a monument to the Third International in 1919. Here In an artistic form, his investigation of ‘material, volume and construction’ was clearly embodied. In the comtemporary architecture, Tatlin's concept has been a great influence on the various tendencies of spatial expressions. For example, the architecture with concept of ex-formality has many varied aspects of space composition - dynamic forms with plasticity of concrete, ex-cubic composition with free walls, disposal composition by geometric collision and superimposition, and etc.

FRP로 보강된 RC보의 휨거동 예측을 위한 해석모델 (Analysis Model for Predicting the Flexural Behavior of RC Beam Strengthened with FRP)

  • 홍기남;이봉노;한상훈
    • 한국안전학회지
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    • 제26권2호
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    • pp.62-69
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    • 2011
  • This paper presents a new simple two-dimensional frame finite element able to accurately estimate the load-carrying capacity of reinforced concrete beams flexurally strengthened externally bonded fiber reinforced polymer (FRP) strips and plates. The proposed analysis model considers distributed plasticity with layer-discretization of the cross-sections and the bond-slip behavior of epoxy layer. The proposed model is used to predict the load-carrying capacity and the applied load-midspan deflection response of RC beams subjected to bending loading. Numerical simulations and experimental measurements are compared based on numerous tests available in the literature and published by different authors. The numerically simulated response agree remarkably well with the corresponding experimental results. Thus, the proposed model is suitable for efficient and accurate modeling and analysis of flexural strengthening of RC beams with externally bonded FRP sheets/plates and for practical use in design-oriented parametric studies.

Out-of-plane seismic failure assessment of spandrel walls in long-span masonry stone arch bridges using cohesive interface

  • Bayraktar, Alemdar;Hokelekli, Emin;Halifeoglu, Meral;Halifeoglu, Zulfikar;Ashour, Ashraf
    • Earthquakes and Structures
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    • 제18권1호
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    • pp.83-96
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    • 2020
  • The main structural elements of historical masonry arch bridges are arches, spandrel walls, piers and foundations. The most vulnerable structural elements of masonry arch bridges under transverse seismic loads, particularly in the case of out-of-plane actions, are spandrel wall. The vulnerability of spandrel walls under transverse loads increases with the increasing of their length and height. This paper computationally investigates the out-of-plane nonlinear seismic response of spandrel walls of long-span and high masonry stone arch bridges. The Malabadi Bridge with a main arch span of 40.86m and rise of 23.45m built in 1147 in Diyarbakır, Turkey, is selected as an example. The Concrete Damage Plasticity (CDP) material model adjusted to masonry structures, and cohesive interface interaction between the infill and the spandrel walls and the arch are considered in the 3D finite element model of the selected bridge. Firstly, mode shapes with and without cohesive interfaces are evaluated, and then out-of-plane seismic failure responses of the spandrel walls with and without the cohesive interfaces are determined and compared with respect to the displacements, strains and stresses.

니켈-수소 2차 전지용 고세장비의 직사각 컵에 대한 성형공정 설계 및 유한요소해석 (Process Design and Finite Element Analysis of Rectangular Cup used for Ni-MH Battery with High Aspect Ratio)

  • 구태완;김화영;송우진;강범수
    • 소성∙가공
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    • 제17권3호
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    • pp.170-181
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    • 2008
  • The shape of rectangular cup used for Ni-MH(Nickel-coated Metal Hydrogen) battery for hybrid car looks quite simple, but the forming process of extruding and setting up process design are highly difficult. Furthermore, there are few concrete reports on the rectangular deep drawn cup as part of hybrid vehicles till now. In this study, process design for rectangular cup in the multi-stage deep drawing process is carried out, and FE analysis is also preformed based on the result of the process design. From the simulation result, some unexpected problems such as earing, wrinkling and excessive thickness changes of the intermediate blank occurred. To overcome these failures, a series of modification for punch shape in the forming process design are completed and applied. Considering the modified punch shape in the multi-stage deep drawing process, additional FE analysis is also carried out and the simulation result is verified in view of the deformed shape, thickness change and effective strain distribution. The result of FE analysis with the improved process design confirmed not only reducing thinning of wall and possibilities of failure but also improving the quality of drawing product through the modification of punch shape.

A constitutive model for fiber-reinforced extrudable fresh cementitious paste

  • Zhou, Xiangming;Li, Zongjin
    • Computers and Concrete
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    • 제8권4호
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    • pp.371-388
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    • 2011
  • In this paper, time-continuous constitutive equations for strain rate-dependent materials are presented first, among which those for the overstress and the consistency viscoplastic models are considered. By allowing the stress states to be outside the yield surface, the overstress viscoplastic model directly defines the flow rule for viscoplastic strain rate. In comparison, a rate-dependent yield surface is defined in the consistency viscoplastic model, so that the standard Kuhn-Tucker loading/unloading condition still remains true for rate-dependent plasticity. Based on the formulation of the consistency viscoplasticity, a computational elasto-viscoplastic constitutive model is proposed for the short fiber-reinforced fresh cementitious paste for extrusion purpose. The proposed constitutive model adopts the von-Mises yield criterion, the associated flow rule and nonlinear strain rate-hardening law. It is found that the predicted flow stresses of the extrudable fresh cementitious paste agree well with experimental results. The rate-form constitutive equations are then integrated into an incremental formulation, which is implemented into a numerical framework based on ANSYS/LS-DYNA finite element code. Then, a series of upsetting and ram extrusion processes are simulated. It is found that the predicted forming load-time data are in good agreement with experimental results, suggesting that the proposed constitutive model could describe the elasto-viscoplastic behavior of the short fiber-reinforced extrudable fresh cementitious paste.