• 제목/요약/키워드: longitudinal reinforcing steel

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An innovative system to increase the longitudinal shear capacity of composite slabs

  • Simoes, Rui;Pereira, Miguel
    • Steel and Composite Structures
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    • 제35권4호
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    • pp.509-525
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    • 2020
  • Steel-concrete composite slabs with profiled steel sheeting are widely used in the execution of floors in steel and composite buildings. The rapid construction process, the elimination of conventional replaceable shuttering and the reduction of temporary support are, in general, considered the main advantages of this structural system. In slabs with the spans currently used, the longitudinal shear resistance commonly provided by the embossments along the steel sheet tends to be the governing design mode. This paper presents an innovative reinforcing system that increases the longitudinal shear capacity of composite slabs. The system is constituted by a set of transversal reinforcing bars crossing longitudinal stiffeners executed along the upper flanges of the steel sheet profiles. This type of reinforcement takes advantage of the high bending resistance of the composite slabs and increases the slab's ductility. Two experimental programmes were carried out: a small-scale test programme - to study the resistance provided by the reinforcing system in detail - and a full-scale test programme to test simply supported and continuous composite slabs - to assess the efficacy of the proposed reinforcing system on the global behaviour of the slabs. Based on the results of the small-scale tests, an equation to predict the resistance provided by the proposed reinforcing system was established. The present study concludes that the resistance and the ductility of composite slabs using the reinforcing system proposed here are significantly increased.

강섬유와 철근집합체 조합에 의한 초고강도 섬유보강 콘크리트 직사각형보의 연성거동에 대한 실험 (The Ductile Behavior Test of Ultra High Performance Fiber Reinforced Concrete Rectangular Beam by the Combination of the Fiber and Group of Reinforcing Bars)

  • 한상묵;안진우
    • 한국구조물진단유지관리공학회 논문집
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    • 제19권3호
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    • pp.139-148
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    • 2015
  • 본 논문은 강섬유 대신 철근집합체를 사용하여 초고강도 섬유보강 콘크리트 부재의 최대하중 이후 연성거동을 유도하는 것을 목적으로 한다. 강섬유와 철근집합체의 조합을 가진 직사각형 콘크리트 보에 대한 휨거동 실험을 수행하였다. 강섬유의 혼입률은 0%, 0.7%, 1%, 1.5%, 2%이고, 연성거동을 유도하기 위한 종방향 철근 집합체의 철근비는 0.0036, 0.016, 0.028 그리고 0.036이다. 이러한 실험 요소의 조합으로 15개의 초고강도 콘크리트보가 제작되었다. 강섬유 뿐만 아니라 종방향의 철근 집합체도 초고강도 콘크리트보의 연성거동을 유도하는데 효과를 가지고 있다. 강섬유 혼입률 0.7%와 철근비 0.028인 철근집합체를 사용할 경우 가장 경제적인 조합임을 볼 수 있다. 하중과 처짐관계, 콘크리트 응력의 변화 및 균열양상 등이 좁은 간격을 가진 작은 직경의 종방향 철근 집합체의 유용성을 나타내고 있다.

Experimental studies of circular composite bridge piers for seismic loading

  • Chen, Sheng-Jin;Yang, Kuo-Chen;Lin, K.M.;Wang, C.C.
    • Steel and Composite Structures
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    • 제12권3호
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    • pp.261-273
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    • 2012
  • This study proposes and examines a circular composite bridge pier for seismic resistance. The axial and flexural strengths of the proposed bridge pier are provided by the longitudinal reinforcing bars and the concrete, while the transverse reinforcements used in the conventional reinforced concrete pier are replaced by the steel tube. The shear strength of this composite pier relies on the steel tube and the concrete. This system is similar to the steel jacketing method which strengthens the existing reinforced concrete bridge piers. However, no transverse shear reinforcing bar is used in the proposed composite bridge pier. A series of experimental studies is conducted to investigate the seismic resistant characteristics of the proposed circular composite pier. The effects of the longitudinal reinforcing bars, the shear span-to-diameter ratio, and the thickness of the steel tube on the performance of strength, ductility, and energy dissipation of the proposed pier are discussed. The experimental results show that the strength of the proposed circular composite bridge pier can be predicted accurately by the similar method used in the reinforced concrete piers with minor modification. From these experimental studies, it is found that the proposed circular composite bridge pier not only simplifies the construction work greatly but also provides excellent ductility and energy dissipation capacity under seismic lateral force.

축방향철근의 저주파 피로 모델 (Low Cycle Fatigue Model for Longitudinal Reinforcement)

  • 고성현;이재훈
    • 콘크리트학회논문집
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    • 제22권2호
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    • pp.273-282
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    • 2010
  • 이 연구는 기존 모델에 대한 검증 및 국내에서 생산되고 있는 철근이 반복하중을 받는 경우의 파괴특성에 대한 적합한 모델을 제시하는 것을 목적으로 한다. 이 논문은 철근콘크리트 하부구조(파일과 교각)에 배근된 축방향철근에 대한 저주파 피로 거동에 대한 모델링을 다루었고, 전체 81개의 저주파 피로 실험 데이터에 기초하여 저주파 피로 모델을 제안하였다. 제안된 저주파 피로 모델을 적용하여 비선형해석 프로그램을 개발하였고 원형 기둥 실험체에 대한 6개의 실험 결과를 대상으로 비선형 해석을 적용하고 제안모델의 정확성을 평가하였다.

Damage Analysis of Reinforced Concrete Columns under Cyclic Loading

  • Lee, Jee-Ho
    • KCI Concrete Journal
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    • 제13권2호
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    • pp.67-74
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    • 2001
  • In this study, a numerical model for the simulation of reinforced concrete columns subject to cyclic loading is presented. The model consists of three separate models representing concrete, reinforcing steel bars and bond-slip between a reinforcing bar and ambient concrete. The concrete model is represented by the plane stress plastic-damage model and quadrilateral finite elements. The nonlinear steel bar model embedded in truss elements is used for longitudinal and transverse reinforcing bars. Bond-slip mechanism between a reinforcing bar and ambient concrete is discretized using connection elements in which the hysteretic bond-slip link model defines the bond stress and slip displacement relation. The three models are connected in finite element mesh to represent a reinforced concrete structure. From the numerical simulation, it is shown that the proposed model effectively and realistically represents the overall cyclic behavior of a reinforced concrete column. The present plastic-damage concrete model is observed to work appropriately with the steel bar and bond-slip link models in representing the complicated localization behavior.

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Experimental investigation of SRHSC columns under biaxial loading

  • Wang, Peng;Shi, Qing X.;Wang, Feng;Wang, Qiu W.
    • Earthquakes and Structures
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    • 제13권5호
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    • pp.485-496
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    • 2017
  • The behavior of 8 steel reinforced high-strength concrete (SRHSC) columns, which comprised of four identical columns with cross-shaped steel and other four identical columns with square steel tube, was investigated experimentally under cyclic uniaxial and biaxial loading independently. The influence of steel configuration and loading path on the global behavior of SRHSC columns in terms of failure process, hysteretic characteristics, stiffness degradation and ductility were investigated and discussed, as well as stress level of the longitudinal and transverse reinforcing bars and steel. The research results indicate that with a same steel ratio deformation capacity of steel reinforced concrete columns with a square steel tube is better than the one with a cross-shaped steel. Loading path affects hysteretic characteristics of the specimens significantly. Under asymmetrical loading path, hysteretic characteristics of the specimens are also asymmetry. Compared with specimens under unidirectional loading, specimens subjected to bidirectional loading have poor carrying capacity, fast stiffness degradation, small yielding displacement, poor ductility and small ultimate failure drift. It also demonstrates that loading paths affect the deformation capacity or deformation performance significantly. Longitudinal reinforcement yielding occurs before the peak load is attained, while steel yielding occurs at the peak load. During later displacement loading, strain of longitudinal and transverse reinforcing bars and steel of specimens under biaxial loading increased faster than those of specimens subjected to unidirectional loading. Therefore, the bidirectional loading path has great influence on the seismic performance such as carrying capacity and deformation performance, which should be paid more attentions in structure design.

주철근 겹침이음된 실물 비내진 원형 교각의 내진성능평가 (Seismic Performance Evaluation of Full-size Non-seismic Circular RC Bridge Piers with Longitudinal Steel Lap splice)

  • 정영수;이대형;고성현;이재훈
    • 콘크리트학회논문집
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    • 제16권5호
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    • pp.697-707
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    • 2004
  • 내진설계편이 제정된 1992년 이전의 설계규정에 따라 설계$\cdot$시공된 교량은 내진상세가 적용되지 않아 지진에 취약할 것으로 예상된다. 특히, 주철근의 겹침이음은 교각의 상당한 내진성능저하를 야기하는 것으로 보고되고있다. 하지만, 이들 교량에 대한 내진성능평가 및 내진보강에 관한 연구는 아직 체계적으로 이루어지지 않고 있는 실정이다. 따라서, 이에 대한 대책마련이 시급한 것으로 사료된다. 본 연구에서는 이러한 비내진 교각의 내진성능을 평가하고자 형상비 4.0인 실물크기의 철근콘크리트 교각시험체를 제작하여 준정적실험을 수행하였다. 실험결과를 통하여 주철근 겹침이음된 비내진교각은 띠철근 형태와 상관없이 현행 도로교설계기준의 요구성능을 만족하지 못하는 것으로 조사되어 시급히 보강을 하여야 할 것으로 판단된다. 또한 주철근 겹침이음에 대한 내진규정의 보완이 요구된다.

Seismic performance of RC bridge piers reinforced with varying yield strength steel

  • Su, Junsheng;Dhakal, Rajesh Prasad;Wang, Junjie;Wang, Wenbiao
    • Earthquakes and Structures
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    • 제12권2호
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    • pp.201-211
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    • 2017
  • This paper experimentally investigates the effect of yield strength of reinforcing bars and stirrups on the seismic performance of reinforced concrete (RC) circular piers. Reversed cyclic loading tests of nine-large scale specimens with longitudinal and transverse reinforcement of different yield strengths (varying between HRB335, HRB500E and HRB600 rebars) were conducted. The test parameters include the yield strength and amount of longitudinal and transverse reinforcement. The results indicate that the adoption of high-strength steel (HSS) reinforcement HRB500E and HRB600 (to replace HRB335) as longitudinal bars without reducing the steel area (i.e., equal volume replacement) is found to increase the moment resistance (as expected) and the total deformation capacity while reducing the residual displacement, ductility and energy dissipation capacity to some extent. Higher strength stirrups enhance the ductility and energy dissipation capacity of RC bridge piers. While the product of steel yield strength and reinforcement ratio ($f_y{\rho}_s$) is kept constant (i.e., equal strength replacement), the piers with higher yield strength longitudinal bars are found to achieve as good seismic performance as when lower strength bars are used. When higher yield strength transverse reinforcement is to be used to maintain equal strength, reducing bar diameter is found to be a better approach than increasing the tie spacing.

이축반복하중을 받는 2주형 철근콘크리트 교각의 내진성능과 보강 (Seismic Performance and Retrofit of Reinforced Concrete Two-Column Piers Subjected to Bi-directional Cyclic Loadings)

  • 정영수;박창규;이호율
    • 한국지진공학회논문집
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    • 제10권3호
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    • pp.47-55
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    • 2006
  • 본 연구는 도로교의 교각으로 널리 사용되고 있는 2주형 철근 콘크리트 교각의 내진성능과 보강방안을 실험적으로 수행하였다. 실험체는 지름 400mm, 높이 2,000mm인 2주형 원형교각 10기를 제작하였으며, 하중은 $0.1f_{ck}A_g$ 크기의 축방향하중하에서 교축방향과 교축직각방향의 이축 횡방향하중을 교번 반복재하하였다. 실험변수는 심부구속철근비, 주하중방향, 주철근 겹침이음 그리고 보강방안을 선택하였다. 주철근 겹침이음이 있는 교각에 대한 보강방안으로 steel band, steel jacket, 그리고 prestress 강선을 이용하였다. 실험 결과 주하중방향이 교축직각인 실험체가 소성힌지구간이 교각의 상 하부 양측에 발생하면서 주하중 방향이 교축방향인 실험체보다 연성 능력이 우수한 것으로 나타났다. 프리스트레스 강선으로 보강한 실험체는 과보강으로 인한 소성힌지구간의 이동으로 연성도 저하가 나타났으나, steel jacket 및 steel band로 보강한 실험체는 모두 요구연성도를 만족하는 것으로 나타났다. 특히, steel band에 의한 보강방안은 시공성 등을 감안하여 바람직한 철근 콘크리트 교각의 내진 보강방안으로 고려될 수 있다.

Residual strength capacity of fire-exposed circular concrete-filled steel tube stub columns

  • Alhatmey, Ihssan A.;Ekmekyapar, Talha;Alrebeh, Salih K.
    • Advances in concrete construction
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    • 제6권5호
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    • pp.485-507
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    • 2018
  • Concrete-Filled Steel Tube (CFST) columns are an increasingly popular means to support great compressive loads in buildings. The residual strength capacity of CFST stub columns may be utilized to assess the potential damage caused by fire and calculate the structural fire protection for least post-fire repair. Ten specimens under room conditions and 10 specimens under fire exposure to the Eurocode smouldering slow-growth fire were tested to examine the effects of diameter to thickness D/t ratio and reinforcing bars on residual strength capacity, ductility and stiffness of CFST stub columns. On the other hand, in sixteen among the twenty specimens, three or six reinforcing bars were welded inside the steel tube. The longitudinal strains in the steel tube and load-displacement relationships were recorded throughout the subsequent compressive tests. Corresponding values of residual strength capacity calculated using AISC 360-10 and EC4 standards are presented for comparison purposes with the experimental results of this study. The test results showed that after exposure to $750^{\circ}C$, the residual strength capacity increased for all specimens, while the ductility and stiffness were slightly decreased. The comparison results showed that the predicted residual strength using EC4 were close to those obtained experimentally in this research.