• 제목/요약/키워드: Full composite action

검색결과 44건 처리시간 0.024초

프리스트레스트 콘크리트-강 혼합거더의 휨 실험 및 경계면 수평계수 분석 (Flexural Experiment of PSC-Steel Mixed Girders and Evaluation for Analyses on Tangentional Stiffness of Connection)

  • 김광수;정광회;심정욱;유성원
    • 콘크리트학회논문집
    • /
    • 제20권2호
    • /
    • pp.231-237
    • /
    • 2008
  • 복합 구조 형식인 PSC-강 혼합 거더는 신형식 구조로서 비대칭 경간 구조물이나 장대교량에 적용될 수 있다. 본 연구에서는 매입길이, 보강철근, 스터드, 프리스트레스 힘 등을 변수로 총 14개의 실험체를 제작하여 혼합 거더의 접합부 거동을 분석하고자 하였다. 모든 실험체는 보강철근, 스터드, 강판 등의 순서로 기능을 손실하면서 파괴되었다. 실험 결과에 의하면 접합부의 성능에는 스터드 배치와 보강철근에 비해 프리스트레싱 힘이 상대적으로 큰 영향을 미치는 것으로 분석되었다. 이와 함께 매입길이에 비하여 스터드의 배치가 접합부 성능에 보다 중요한 역할을 하는 것으로 평가되었다. 실험적 연구와 함께 슬립을 고려한 3차원 비선형해석을 수행하였다. 경계면의 거동은 인터페이스 요소와 슬립 물성을 통하여 완전 합성, 부분합성, 비합성으로 분석할 수 있는데 혼합 거더의 접합부 설계에 따른 경계면 거동을 해석과 실험 결과를 통하여 분석하였다. 특히, 스터드 전단연결재가 적용된 혼합 거더는 극한하중 단계에서 부분합성 거동을 나타내며 보강 철근 또한 혼합 거더의 극한강도 증진에 기여하는 것으로 분석되었다.

콘크리트 보강용 FRP 보강근의 표면형상 변화에 따른 부착 특성 (Bond Performance of FRP Reinforcing Bar by Geometric Surface Change)

  • 박찬기;원종필
    • 한국농공학회논문집
    • /
    • 제46권5호
    • /
    • pp.69-77
    • /
    • 2004
  • FRP rebar has low bond performance than steel rebar. Usually, FRP rebar has about 60% of bond strength of steel rebar. Without adequate bond to concrete, the full composite action between reinforcement and concrete matrix can not be achieved. Therefore, FRP rebars must also have surface deformations that provide good bond to concrete. The purpose of this research was decided an optimum surface deformation patterns through bond test of FRP rebar. Eighteen surface deformation patterns of FRP rebar with widely different geometries were investigated. Based on the test results, we established optimum surfale deformation pattern. Bond tests were performed for three types of surface deformation patterns of FRP rebar including sand coated rebar, ribbed rebar, and wrapped and sand coated rebar that commercially available, and two types of FRP rebar including CFRP, GFRP rebars that optimum surface deformation pattern is applied. According to bond test results, FRP rebars that optimum surface deformation pattern is applied were found to have better bond strength with concrete than currently using FRP rebar.

Strengthening of hollow brick infill walls with expanded steel plates

  • Cumhur, Alper;Altundal, Adil;Aykac, Sabahattin;Aykac, Bengi
    • Earthquakes and Structures
    • /
    • 제11권5호
    • /
    • pp.887-904
    • /
    • 2016
  • An efficient, economical and practical strengthening method for hollow brick infill walls was proposed and investigated in the present study, experimentally and numerically. This method aims at increasing the overall lateral strength and stiffness of the structure by increasing the contribution of the infill walls and providing the non-bearing components of the structure with the capability of absorbing earthquake-induced energy to minimize structural damage during seismic excitations. A total of eleven full-scale infill walls strengthened with expanded mild steel plates were tested under diagonal monotonic loading to simulate the loading condition of the non-bearing walls during an earthquake. The contact surface between the plates and the wall was increased with the help of plaster. Thickness of the plates bonded to both faces of the wall and the spacing of the bolts were adopted as test parameters. The experiments indicated that the plates were able to carry a major portion of the tensile stresses induced by the diagonal loads and provided the walls walls with a considerable confining effect. The composite action attained by the plates and the wall until yielding of the bolts increased the load capacities, rigidities, ductilities and energy-absorption capacities of the walls, considerably.

Research on anti-seismic property of new end plate bolt connections - Wave web girder-column joint

  • Jiang, Haotian;Li, Qingning;Yan, Lei;Han, Chun;Lu, Wei;Jiang, Weishan
    • Steel and Composite Structures
    • /
    • 제22권1호
    • /
    • pp.45-61
    • /
    • 2016
  • The domestic and foreign scholars conducted many studies on mechanical properties of wave web steel beam and high-strength spiral stirrups confined concrete columns. Based on the previous research work, studies were conducted on the anti-seismic property of the end plate bolt connected wave web steel beam and high-strength spiral stirrups confined concrete column nodes applied with pre-tightening force. Four full-size node test models in two groups were designed for low-cycle repeated loading quasi-static test. Through observation of the stress, distortion, failure process and failure mode of node models, analysis was made on its load-carrying capacity, deformation performance and energy dissipation capacity, and the reliability of the new node was verified. The results showed that: under action of the beam-end stiffener, the plastic hinges on the end of wave web steel beam are displaced outward and played its role of energy dissipation capacity. The study results provided reliable theoretical basis for the engineering application of the new types of nodes.

Conceptual configuration and seismic performance of high-rise steel braced frame

  • Qiao, Shengfang;Han, Xiaolei;Zhou, Kemin;Li, Weichen
    • Steel and Composite Structures
    • /
    • 제23권2호
    • /
    • pp.173-186
    • /
    • 2017
  • Conceptual configuration and seismic performance of high-rise steel frame-brace structure are studied. First, the topology optimization problem of minimum volume based on truss-like material model under earthquake action is presented, which is solved by full-stress method. Further, conceptual configurations of 20-storey and 40-storey steel frame-brace structure are formed. Next, the 40-storeystructure model is developed in Opensees. Two common configurations are utilized for comparison. Last, seismic performance of 40-storey structure is derived using nonlinear static analysis and nonlinear dynamic analysis. Results indicate that structural lateral stiffness and maximum roof displacement can be improved using brace. Meanwhile seismic damage can also be decreased. Moreover, frame-brace structure using topology optimization is most favorable to enhance lateral stiffness and mitigate seismic damage. Thus, topology optimization is an available way to form initial conceptual configuration in high-rise steel frame-brace structure.

A Situation Simulation Method for Achieving Situation Variability and Authoring Scalability based on Dynamic Event Coupling

  • Choi, Jun Seong;Park, Jong Hee
    • International Journal of Contents
    • /
    • 제16권1호
    • /
    • pp.25-33
    • /
    • 2020
  • We develop a simulation method that affords very high variability of virtual pedagogical situations involving many independent plans, still achieves authoring (or implementation) scalability. While each individual plan would be coherently drawn up by an agent for its respective goal, those independently-made plans might be coincidentally intertwined in their execution. The inevitable non-determinism involved in this multi-event plan encompassing pre-planned and unforeseen events is resolved by (multi-phase) dynamic planning and articulated sequencing of events in contrast to static planning and monolithic authoring in conventional narrative systems. Connections between events are dictated by their associated rules and their actual connections are dynamically determined in execution time by current conditions of background-world. This unified connection scheme across pre-planned and unforeseen events allows a multi-plan, multi-agent situation to be coherently planned and executed in a global scale. To further the variability of a situation, the inter-event coupling is made in a fine level of action along with a limited episteme of each agent involved. We confirm analytically the viability of our approach with respect to the situation variability and authoring scalability, and demonstrate its practicality with an implementation of a composite situation.

압축강도 수준을 고려한 강섬유 보강 UHPC와 역T형 강재 합성보의 휨거동 실험 연구 (A Study on the Experiment of Flexural Behavior of Composite Beam with Steel Fiber Reinforced UHPC and Inverted-T Steel Considering Compressive Strength Level)

  • 유성원;서정인
    • 콘크리트학회논문집
    • /
    • 제27권6호
    • /
    • pp.677-685
    • /
    • 2015
  • 최근 일반적인 콘크리트의 단점인 낮은 인장강도 및 휨강도와 취성파괴를 극복하기 위하여 초고성능 콘크리트에 강섬유를 혼입한 강섬유 보강 초고성능 콘크리트(UHPC)에 대한 연구가 주목받고 있다. 본 논문에서는 UHPC의 장점을 극대화하기 위하여 합성보 구성 시에 강재 거더의 상부 플랜지를 없앤 역T형 거더를 적용하여, 콘크리트 압축강도, 섬유 혼입률, 전단연결재 간격 및 바닥판 두께 등의 변수를 가지는 역T형 거더와 UHPC 바닥판을 합성한 합성보를 16 개 제작하고 전단연결재의 거동, 휨거동 특성 등을 실험적으로 파악하고자 하였다. 실험결과를 기준으로 볼 때, 향후 UHPC의 경우 스터의 간격은 100 mm에서 바닥판 두께의 2 또는 4 배 사이로 규정함이 적절할 것으로 예상된다. 또한 대부분 실험 부재의 특성 상대변위는 Eurocode-4의 기준을 만족하므로 연성 거동을 확보하는 것으로 판정되었으며, 전단연결재 간격이 넓은 부재는 설계식의 값보다 실험값이 크게 나와, 비합성 거동 후 UHPC와 강재로 전단연결재 예상저항하중보다 더 큰 극한강도를 발휘하며, 전단연결재 간격이 좁은 부재는 전단연결재가 스스로의 능력에 도달하기 전에 UHPC 상연에서 압축파괴가 급격히 발생됨을 알 수 있었다.

Impact response of a novel flat steel-concrete-corrugated steel panel

  • Lu, Jingyi;Wang, Yonghui;Zhai, Ximei;Zhou, Hongyuan
    • Steel and Composite Structures
    • /
    • 제42권2호
    • /
    • pp.277-288
    • /
    • 2022
  • A novel flat steel plate-concrete-corrugated steel plate (FS-C-CS) sandwich panel was proposed for resisting impact load. The failure mode, impact force and displacement response of the FS-C-CS panel under impact loading were studied via drop-weight impact tests. The combined global flexure and local indentation deformation mode of the FS-C-CS panel was observed, and three stages of impact process were identified. Moreover, the effects of corrugated plate height and steel plate thickness on the impact responses of the FS-C-CS panels were quantitatively analysed, and the impact resistant performance of the FS-C-CS panel was found to be generally improved on increasing corrugated plate height and thickness in terms of smaller deformation as well as larger impact force and post-peak mean force. The Finite Element (FE) model of the FS-C-CS panel under impact loading was established to predict its dynamic response and further reveal its failure mode and impact energy dissipation mechanism. The numerical results indicated that the concrete core and corrugated steel plate dissipated the majority of impact energy. In addition, employing end plates and high strength bolts as shear connectors could prevent the slip between steel plates and concrete core and assure the full composite action of the FS-C-CS panel.

Static and Fatigue Behavior of RC Beams Strengthened with Steel Plates

  • Oh, Byung-Hwan;Cho, Jae-Yeol;Cha, Soo-Won
    • KCI Concrete Journal
    • /
    • 제14권1호
    • /
    • pp.51-60
    • /
    • 2002
  • Strengthening of existing concrete structures is a major concern in recent years as the number of degraded structures increases. The purpose of this paper is to investigate the static and fatigue behavior of reinforced concrete (RC) beams strengthened with steel plates. To this end, a comprehensive test program has been set up and many series of strengthened beams have been tested. The major test variables include the plate thickness, adhesive thickness, and the shear-span to depth ratio. The test results indicate that the separation of plates is the dominant failure mechanism even for the full-span-length strengthened beams with steel plate. The theoretical ultimate load capacities for strengthened beams based on the full composite action of concrete beam and steel plate are found to be larger than the actual measured load capacities. The strengthened beams exhibit more dominant shear cracking as the shear-span to depth ratio decreases. The ultimate capacity of strengthened beams increases slightly with the increase of adhesive thickness, which may be caused by the late initiation of plate separation in the beams with thicker adhesive. A realistic concept of ductility for plate-strengthened beams is proposed in this study. It is seen that the strengthened beams show relatively low ductility compared with unstrengthened beams. The present study indicates that the strengthened beams exhibit much higher fatigue resistance than the unstrengthened beams. The increase of deflections of strengthened beams according to the number of load cycles is much smaller than that of unstrengthened beams. The present study provides very useful results for the realistic application of plate-strengthening method in reinforced concrete structures.

  • PDF

콘크리트채움 U형합성보-H형강기둥 십자형 합성접합부의 내진성능 (Cyclic Seismic Testing of Cruciform Concrete-Filled U-Shape Steel Beam-to-H Column Composite Connections)

  • 박창희;이철호;박홍근;황현종;이창남;김형섭;김성배
    • 한국강구조학회 논문집
    • /
    • 제23권4호
    • /
    • pp.503-514
    • /
    • 2011
  • 본 연구에서는 콘크리트채움 U형 합성보와 H형강 기둥 십자형 합성접합부의 내진상세를 제시하고, 2개의 실물대 실험체를 설계/제작하여 강구조내진기준의 표준실험절차에 따라 내진성능을 평가하였다. 주요 실험체 구성요소는 춤 450mm(실험체 A) 및 550mm(실험체 B) U형 강재보, 두께 165mm의 골데크플레이트 위에 타설된 콘크리트 바닥슬래브, U형보의 완전합성작용을 하기 위한 전단스터드, 부모멘트 전달을 위한 4개의 주철근 및 H형강 기둥에 정착을 위한 용접커플러 그리고 접합부 보강을 위한 보강판으로 구성된다. 순수 강재 보-기둥 접합부와 상이한 U형 합성접합부의 독특한 특성을 고려하여, 지진하중 하에서 내진성능에 결정적 영향을 미치는 보-기둥 접합부의 용접부 취성파단, 강판의 국부좌굴, 주철근의 휨좌굴, 콘크리트 압괴 등의 한계상태가 적절히 제어되도록 실험체를 설계하였다. 강구조내진기준의 지진하중 가력프로그램에 따른 실험결과, 설계에서 의도한 바와 같이 여러 한계상태가 적절히 제어되어 실험체 A 및 B는 각각 6% 및 6.8% 라디안에 이르는 매우 뛰어난 층간변형능력을 발휘하였다. 이는 특수모멘트골조에 요구되는 4% 라디안 수준을 충분히 상회하는 만족스런 층간변형능력이다. 특히 접합부 강화전략에 의해 제안된 합성접합부 상세는 설계에서 의도한 것과 같이 소성힌지를 보강단부로서 밀어냄으로서 취약할 수 있는 보-기둥 용접접합부를 효과적으로 보호하였다. 실험체 A의 최종 파괴모드는 6.0% 층간변위에서 발생한 보강단부에 인접한 냉간성형 코너부의 점진적 저사이클피로에 의한 하부플랜지의 파단에 의해 발생하였다. 한편, 실험체 B는 8.0%의 높은 수준의 층간변위에서 발생한 볼트이음부 파단에 의해 내력을 상실하였다.