• 제목/요약/키워드: ultimate shear

검색결과 706건 처리시간 0.023초

전단스터드의 변형특성에 관한 유한요소해석 -고강도 콘크리트를 사용한 합성보- (Finite Element Analysis of Deformation Characteristics of the Shear Studs embedded in High Strength Concrete Slab of the Composite Beam)

  • 신현섭
    • 한국강구조학회 논문집
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    • 제19권5호
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    • pp.473-482
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    • 2007
  • 합성보가 구조적으로 안전하게 거동하고, 합성단면이 고유의 극한모멘트를 발휘하기 위해서는 전단연결재의 강도뿐만아니라 연성적 거동이 전제조건으로 작용한다. 본 연구에서는 고강도 콘크리트가 사용된 합성보에서 하중형태, 합성율 및 전단스터드의 배치를 달리 하였을 때 일반강도 콘크리트가 사용된 경우에 비해 비교적 적은 스터드의 변형능력이 구조거동 및 설계조건에 미치는 영향을 유한요소해석을 통해 분석하여 보았다. 해석결과에 따르면 고강도 콘크리트를 사용한 합성보의 부분합성 설계에서는 스터드 자체의 강도와 상대변위로 평가되어지는 변형능력이 함께 고려되어야 한다. 특히, 스터드가 등간격으로 배치된 합성보에 등분포 또는 유사 형태의 하중이 작용할 경우 스터드의 변형능력이 합성설계에 대한 제약조건으로 작용하며 이러한 경우 스터드는 외부하중에 대한 전단력의 분포를 고려하여 배치되어야 한다.

Seismic behavior of thin cold-formed steel plate shear walls with different perforation patterns

  • Monsef Ahmadi, H.;Sheidaii, M.R.;Tariverdilo, S.;Formisano, A.;De Matteis, G.
    • Earthquakes and Structures
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    • 제20권4호
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    • pp.377-388
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    • 2021
  • Thin perforated Steel Plate Shear Walls (SPSWs) are among the most common types of seismic energy dissipation systems to protect the main boundary components of SPSWs from fatal fractures in the high-risk zones. In this paper, the cyclic behavior of the different circular hole patterns under cyclic loading is reported. Based on the experimental results, it can be concluded that a change in the perforation pattern of the circular holes leads to a change in the locations of the fracture tendency over the web plate, especially at the plate-frame interactions. Accordingly, the cyclic responses of the tested specimens were simulated by finite element method using the ABAQUS package. Likewise, perforated shear panels with a new perforation pattern obtained by implementing Topology Optimization (TO) were proposed. It was found that the ultimate shear strength of the specimen with the proposed TO perforation pattern was higher than that of the other specimens. In addition, theoretical equations using the Plate-Frame Interaction (PFI) method were used to predict the shear strength and initial stiffness of the considered specimens. The theoretical results showed that the proposed reduced coefficients relationships cannot accurately predict the shear strength and initial stiffness of the considered perforated shear panels. Therefore, the reduced coefficients should be adopted in the theoretical equations based on the obtained experimental and numerical results. Finally, with the results of this study, the shear strength and initial stiffness of these types of perforated shear panels can be predicted by PFI method.

고강도 콘크리트 강합성 거더의 극한휨강도 실험 평가 (Evaluation for Ultimate Flexural Strength of Steel Composite Girder with High Strength Concrete)

  • 김운학;이주원;이석민
    • 한국재난정보학회 논문집
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    • 제16권4호
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    • pp.796-805
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    • 2020
  • 연구목적: I형 강거더의 압축플랜지에 80MPa급의 고강도 콘크리트가 합성된 거더의 극한휨강도 평가를 위하여 정적재하시험을 수행하였다. 연구방법: 본 실험은 전단연결 상세가 다른 2종류의 실험체를 설계 및 제작하여 극한한계상태 도달까지 극한휨거동을 평가하였다. 또 실험 결과와 변형률적합법 결과 비교를 통해 극한강도를 평가하였다. 연구결과: 상대슬립 측정 결과 0.02mm 이내 변위를 확인함으로서 두 실험체가 완전결합을 담보한다는 것을 검증하였다. 따라서 전단상세의 차이는 강성에 큰 영향을 미치지 않으며 완전합성 된다면 극한한계상태까지의 거동에도 차이가 없다. 결론:실험 대상이 되는 거더는 사용하중이 탄성범위 내 있고, 허용처짐에 대한 사용성 요구조건을 충족시킨다. 따라서 케이싱 일부가 균열이 발생하는 수준의 인장력을 받더라도 철근의 역할로 인해 바닥판이 압축 파괴에 먼저 도달한다.

Interfacial mechanical behaviors of RC beams strengthened with FRP

  • Deng, Jiangdong;Liu, Airong;Huang, Peiyan;Zheng, Xiaohong
    • Structural Engineering and Mechanics
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    • 제58권3호
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    • pp.577-596
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    • 2016
  • FRP-concrete interfacial mechanical properties determine the strengthening effect of RC beams strengthened with FRP. In this paper, the model experiments were carried out with eight specimens to study the failure modes and the strengthening effect of RC beams strengthened with FRP. Then a theoretical model based on interfacial performances was proposed and interfacial mechanical behaviors were studied. Finite element analysis confirmed the theoretical results. The results showed that RC beams strengthened with FRP had three loading stages and that the FRP strengthening effects were mainly exerted in the Stage III after the yielding of steel bars, including the improvement of the bearing capacity, the decreased ultimate deformation due to the sudden failure of FRP and the improvement of stiffness in this stage. The mechanical formulae of the interfacial shear stress and FRP stress were established and the key influence factors included FRP length, interfacial bond-slip parameter, FRP thickness, etc. According to the theoretical analysis and experimental data, the calculation methods of interfacial shear stress at FRP end and FRP strain at midspan were proposed. When FRP bonding length was shorter, interfacial shear stress at FRP end was larger that led to concrete cover peeling failure. When FRP was longer, FRP reached the ultimate strain and the fracture failure of FRP occurred. The theoretical results were well consistent with the experimental data.

Static and Fatigue Behavior of RC Beams Strengthened with Steel Plates

  • Oh, Byung-Hwan;Cho, Jae-Yeol;Cha, Soo-Won
    • KCI Concrete Journal
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    • 제14권1호
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    • pp.51-60
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    • 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.

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Perfobond Rib을 적용한 강-PSC 혼합구조 연결부의 거동 평가 (Behaviors of Joints with Perfobond Rib Shear Connectors in Steel-PSC Hybrid System)

  • 김상효;이찬구;윤지현;원정훈
    • 한국강구조학회 논문집
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    • 제21권6호
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    • pp.647-657
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    • 2009
  • 본 연구는 강-프리스트레스 콘크리트(PSC) 혼합구조 보를 분절형 교량에 적용하기 위해 필수적으로 요구되는 이종 부재간의 연결에 대한 기초연구로써, 연결부 거동과 시공성을 향상시키기 위해 연결부 상․하부 플레이트에 perfobond rib 전단연결재를 설치한 강-PSC 연결부를 제안하였다. 제안된 연결부가 설치된 보 실험체들을 제작하여 하중재하실험을 통해 연결부의 성능을 확인한 결과, 모든 실험체에서 연결부의 파괴 없이 연결부 인접 PSC부에서 실험체의 파괴와 극한강도가 나타났다. 합성 작용에 의하여 실험체의 초기 강성은 우수한 것으로 나타났으며, 균열의 진전 형상도 전형적인 휨 균열 형상을 나타내었다. 또한, 기존 스터드를 적용한 실험체 이상의 강도를 얻을 수 있는 것으로 나타났다. 그러므로 제안된 연결부는 혼합구조 연결부에 효과적으로 적용 가능하다고 판단된다.

Seismic behavior of full-scale square concrete filled steel tubular columns under high and varied axial compressions

  • Phan, Hao D.;Lin, Ker-Chun
    • Earthquakes and Structures
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    • 제18권6호
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    • pp.677-689
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    • 2020
  • A building structural system of moment resisting frame (MRF) with concrete filled steel tubular (CFST) columns and wide flange H beams, is one of the most conveniently constructed structural systems. However, there were few studies on evaluating seismic performance of full-scale CFST columns under high axial compression. In addition, some existing famous design codes propose various limits of width-to-thickness ratio (B/t) for steel tubes of the ductile CFST composite members. This study was intended to investigate the seismic behavior of CFST columns under high axial load compression. Four full-scale square CFST column specimens with a B/t of 42 were carried out that were subjected to horizontal cyclic-reversal loads combined with constantly light, medium and high axial loads and with a linearly varied axial load, respectively. Test results revealed that shear strength and deformation capacity of the columns significantly decreased when the axial compression exceeded 0.35 times the nominal compression strength of a CFST column, P0. It was obvious that the higher the axial compression, the lower both the shear strength and deformation capacities were, and the earlier and faster the shear strength degradation occurred. It was found as well that higher axial compressions resulted in larger initial lateral stiffness and faster degradation of post-yield lateral stiffness. Meanwhile, the lower axial compressions led to better energy dissipation capacities with larger cumulative energy. Moreover, the study implied that under axial compressions greater than 0.35P0, the CFST column specimens with B/t limits recommended by AISC 360 (2016), ACI 318 (2014), AIJ (2008) and EC4 (2004) codes do not provide ultimate interstory drift ratio of more than 3% radian, and only the limit in ACI 318 (2014) code satisfies this requirement when axial compression does not exceed 0.35P0.

Behavior of lightweight aggregate concrete voided slabs

  • Adel A. Al-Azzawi;Ali O, AL-Khaleel
    • Computers and Concrete
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    • 제32권4호
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    • pp.351-363
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    • 2023
  • Reducing the self-weight of reinforced concrete structures problem is discussed in this paper by using two types of self-weight reduction, the first is by using lightweight coarse aggregate (crushed brick) and the second is by using styropor block. Experimental and Numerical studies are conducted on (LWAC) lightweight aggregate reinforced concrete slabs, having styropor blocks with various sizes of blocks and the ratio of shear span to the effective depth (a/d). The experimental part included testing eleven lightweight concrete one-way simply supported slabs, comprising three as reference slabs (solid slabs) and eight as styropor block slabs (SBS) with a total reduction in cross-sectional area of (43.3% and 49.7%) were considered. The holes were formed by placing styropor at the ineffective concrete zones in resisting the tensile stresses. The length, width, and thickness of specimen dimensions were 1.1 m, 0.6 m, and 0.12 m respectively, except one specimen had a depth of 85 mm (which has a cross-sectional area equal to styropor block slab with a weight reduction of 49.7%). Two shear spans to effective depth ratios (a/d) of (3.125) for load case (A) and (a/d) of (2) for load case (B), (two-line monotonic loads) are considered. The test results showed under loading cases A and B (using minimum shear reinforcement and the reduction in cross-sectional area of styropor block slab by 29.1%) caused an increase in strength capacity by 60.4% and 54.6 % compared to the lightweight reference slab. Also, the best percentage of reduction in cross-sectional area is found to be 49.7%. Numerically, the computer program named (ANSYS) was used to study the behavior of these reinforced concrete slabs by using the finite element method. The results show acceptable agreement with the experimental test results. The average difference between experimental and numerical results is found to be (11.06%) in ultimate strength and (5.33%) in ultimate deflection.

고강도 대형 프리스트레스트 콘크리트 보의 전단거동과 경사진 프리스트레싱 긴장재의 영향 (Shear Behavior of Large Prestressed Concrete Beams Cast with High Strength Concrete and the Effect of Draped Tendon on their Shear Behavior)

  • 김강수
    • 콘크리트학회논문집
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    • 제17권6호
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    • pp.963-974
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    • 2005
  • 본 논문은 고강도 콘크리트로 타설된 2개의 대형 프리스트레스트 콘크리트 보로부터 얻어진 4개의 전단실험 결과를 고찰하였다. 특히 경사진 프리스트레싱 긴장재가 부재의 전단거동에 미치는 영향을 세밀히 분석하였다. 본 실험에서 경사진 프리스트레싱 긴장재를 사용한 부재는 직선 프리스트레싱 긴장재를 사용한 부재에 비해 높은 초기전단균열강도와 전단강도를 가졌다. 또한 실험 결과는 경사진 프리스트레싱 긴장재의 사용이 부재 단부에서 긴장재의 미끄러짐을 감소시켜주는 것으로 관찰되어 부재 단부에서 크게 요구되는 단부 정착력을 분산시키는데 효과적임을 보여주었다. 실험 결과로부터 얻어진 부재의 전단강도는 ACI 318-02와 AASHTO LRFD의 전단설계기준에 의하여 계산된 값과 비교 분석되었다. 두 전단설계기준은 모든 시험체에 대해 안정적인 전단강도를 제공하였으며, 특히 경사진 프리스트레싱 긴장재를 가진 부재들에 대해서 실험결과에 비해 매우 낮은 전단강도를 제공하였다.

프리캐스트 콘크리트 부유식 구조물의 모듈 접합부 강도 (Strength of Joint in Floating Structures Constructed with Precast Concrete Modules)

  • 양인환;김경철
    • 한국항해항만학회지
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    • 제36권3호
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    • pp.197-204
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    • 2012
  • 프리캐스트 콘크리트 모듈 단위로 시공되는 플로팅 구조물의 거동은 콘크리트 모듈 접합부의 거동과 밀접한 연관성을 갖는다. 극한하중조건에서의 플로팅 구조물의 구조적 거동을 정확히 예측하기 위해서 모듈 접합부의 구조거동 실험연구를 수행하였다. 모듈 접합부 전단키의 전단거동, 전단강도 및 균열 패턴을 파악하였다. 실험결과는 전단키의 경사각도가 증가함에 따라 전단강도가 증가하는 것을 나타낸다. 또한, 구속응력이 증가함에 따라 전단키의 전단강도가 증가한다. 실험결과와 AASHTO 제안식에 의한 예측값을 비교하였으며, AASHTO 제안식은 실험값을 과소평가하고 있다.