• 제목/요약/키워드: Tension stiffening

검색결과 152건 처리시간 0.021초

다항식 변형률 분포함수를 이용한 철근콘크리트 인장부재의 균열 해석 (Cracking Analysis of RC Tension Members Using Polynomial Strain Distribution Function)

  • 곽효경;송종영;김한수
    • 한국전산구조공학회논문집
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    • 제15권1호
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    • pp.69-84
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    • 2002
  • 본 논문에서는 축방향 인장 부재의 균열거동과 철근콘크리트 부재의 인장강화현상을 고려하기 위한 새로운 해석적 기법을 제시하였다 균열 후 거동 규명을 위하여 부착응력-슬립의 관계나 부탁 응력의 분포를 가정하는 기존의 해석방법과는 달리, 철근과 콘크리트의 변형률 분포 함수를 다항식으로 가정하여, 이를 바탕으로 일축 인장부재의 균열 해석 기법을 구성하였다. 제시한 균열 해석모델은 기존의 해석기법과 비교하여, 철근콘크리트 구조물의 유한요소해석을 위한 균열 후의 평균 응력-변형률 관계를 정의하거나, 부재의 길이방향으로 철근과 콘크리트가 분담하는 하중 및 슬립량 산정시 매우 효율적이다. 제안된 모델을 이용하여 얻어진 균열하중과 보강철근의 신장률 값을 다른 해석기법 및 실험값과 비교한 결과 만족할만한 정확도를 보여주었다.

A numerical tension-stiffening model for ultra high strength fiber-reinforced concrete beams

  • Na, Chaekuk;Kwak, Hyo-Gyoung
    • Computers and Concrete
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    • 제8권1호
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    • pp.1-22
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    • 2011
  • A numerical model that can simulate the nonlinear behavior of ultra high strength fiber-reinforced concrete (UHSFRC) structures subject to monotonic loadings is introduced. Since engineering material properties of UHSFRC are remarkably different from those of normal strength concrete and engineered cementitious composite, classification of the mechanical characteristics related to the biaxial behavior of UHSFRC, from the designation of the basic material properties such as the uniaxial stress-strain relationship of UHSFRC to consideration of the bond stress-slip between the reinforcement and surrounding concrete with fiber, is conducted in this paper in order to make possible accurate simulation of the cracking behavior in UHSFRC structures. Based on the concept of the equivalent uniaxial strain, constitutive relationships of UHSFRC are presented in the axes of orthotropy which coincide with the principal axes of the total strain and rotate according to the loading history. This paper introduces a criterion to simulate the tension-stiffening effect on the basis of the force equilibriums, compatibility conditions, and bond stress-slip relationship in an idealized axial member and its efficiency is validated by comparison with available experimental data. Finally, the applicability of the proposed numerical model is established through correlation studies between analytical and experimental results for idealized UHSFRC beams.

철근 보강 고성능 섬유보강 콘크리트의 인장 강성 (Tension Stiffening of Reinforced High Performance Fiber Reinforced Cementitious Composites (HPFRCC))

  • 이성철;김재화;조재열;신경준
    • 콘크리트학회논문집
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    • 제22권6호
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    • pp.859-866
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    • 2010
  • 콘크리트의 취성적인 인장 거동을 보완하기 위해 섬유를 혼입한 섬유보강 콘크리트에 대한 연구가 진행되어 왔으며, 그 중 인장균열 이후 변형 경화 거동(strain hardening behavior)을 보이는 고인성 섬유보강 콘크리트(HPFRCC)에 대하여 활발히 연구되고 있다. 하지만, 철근이 없는 HPFRCC의 인장 및 휨거동에 대해 주로 연구가 계속되어온 반면 철근이 배근된 HPFRCC 부재의 인장 거동에 대한 자료는 미흡한 실정이다. 따라서 이 연구에서는 HPFRCC의 인장거동에 대한 철근의 효과를 분석하기 위해 철근이 배근된 HPFRCC 부재를 제작하여 인장 강성(tension stiffening)에 대한 실험을 수행하였고, 인장 강성 실험 결과에서 HPFRCC의 인장 응력-변형률 관계를 도출하였다. HPFRCC는 균열발생 이후에서 항복에 이르기까지 인장 성능을 균일하게 유지하는 것으로 나타났다. 철근이 배근된 HPFRCC의 인장 강도는 철근이 없는 부재에서 측정된 인장강도에 비해 낮아지는 것으로 나타났으며, 이는 HPFRCC의 높은 건조수축량과 철근의 구속효과에 의한 것으로 사료된다. 이 연구에서 확인된 인장강성 실험 결과 및 분석 자료는 HPFRCC를 철근과 함께 적용할 경우 유용하게 활용될 것으로 기대된다.

Direct Tensile Test of GFRP Bar Reinforced Concrete Prisms

  • Choi Dong-Uk;Lee Chang-Ho;Ha Sang-Su
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 봄학술 발표회 논문집(I)
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    • pp.323-326
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    • 2005
  • Uniaxial tension test of Glass Fiber Reinforced Polymer (GFRP) bar reinforced concrete prisms was performed. The objective was to investigate the adequate cover thickness of the GFRP rebars. The tension stiffening effect of GFRP bar reinforced concrete was also studied. The test variables included rebar types (conventional steel rebar and two different GFRP rebars) and cover thicknesses (five different cover thicknesses ranging between 1-3db). Normal strength concrete was used. Cracking patterns on concrete surface and cracking loads were careful1y observed during the direct tensile test. The test results indicated that the adequate cover thickness of the GFRP rebars may even be larger than that of the steel rebars and that the cover thickness of 2db commonly specified for the GFRP rebars may not be large enough. The tension stiffening effect of the GFRP rebars was also quantified and documented from the test results.

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Post-yielding tension stiffening of reinforced concrete members using an image analysis method with a consideration of steel ratios

  • Lee, Jong-Han;Jung, Chi-Young;Woo, Tae-Ryeon;Cheung, Jin-Hwan
    • Advances in concrete construction
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    • 제7권2호
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    • pp.117-126
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    • 2019
  • When designing reinforced concrete (RC) members, the rebar is assumed to resist all tensile forces, but the resistance of the concrete in the tension area is neglected. However, concrete can also resist tensile forces and increase the tensile stiffness of RC members, which is called the tension stiffening effect (TSE). Therefore, this study assessed the TSE, particularly after yielding of the steel bars and the effects of the steel ratio on the TSE. For this purpose, RC member specimens with steel ratios of 2.87%, 0.99%, and 0.59% were fabricated for uniaxial tensile tests. A vision-based non-contact measurement system was used to measure the behavior of the specimens. The cracks on the specimen at the stabilized cracking stage and the fracture stage were measured with the image analysis method. The results show that the number of cracks increases as the steel ratio increases. The reductions of the limit state and fracture strains were dependent on the ratio of the rebar. As the steel ratio decreased, the strain after yielding of the RC members significantly decreased. Therefore, the overall ductility of the RC member is reduced with decreasing steel ratio. The yielding plateau and ultimate load of the RC members obtained from the proposed equations showed very good agreement with those of the experiments. Finally, the image analysis method was possible to allow flexibility in expand the measurement points and targets to determine the strains and crack widths of the specimens.

초고강도 강섬유보강 철근콘크리트의 인장강화 모델 및 적용 (Tension-Stiffening Model and Application of Ultra High Strength Fiber Reinforced Concrete)

  • 곽효경;나채국;김성욱;강수태
    • 대한토목학회논문집
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    • 제29권4A호
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    • pp.267-279
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    • 2009
  • 이 논문에서는 초고강도 강섬유보강 철근콘크리트 구조물의 단조증가 하중에서 비선형 해석모델을 소개하고 있다. 일반콘크리트에 비해 압축강도와 인장강도가 증가한 초고강도 강섬유보강 콘크리트는 그 거동이 일반콘크리트와 다른 특성을 가지고 있다. 초고강도 강섬유보강 철근콘크리트 구조물에 대한 비선형 해석을 하기에 앞서 실험결과를 이용하여 압축영역에서 응력-변형률, 관계를 회귀분석을 통하여 유추하였고, 초고강도 강섬유보강 철근콘크리트 구조물 거동의 정확한 예측을 위하여 등가일축 응력-변형률 관계를 이용하였다. 또한 균열의 진전에 따른 균열각을 모사하기 위해 평면응력 요소를 이용하였고, 분산철근모델을 이용하여 해석에 적용하였다. 한편, 초고강도 강섬유보강 철근콘크리트의 인장영역에서 응력-변형률 관계를 정의하기 위해 철근과 콘크리트의 부착응력-부착슬립 관계와 강섬유의 영향 등을 고려한 새로운 인장강화 모델을 제안하고 있다. 끝으로 제안된 알고리즘과 응력-변형률 관계 및 인장강화 모델을 한국건설기술연구원에서 실험한 초고강도 강섬유보강 철근콘크리트 부재에 대한 수치해석을 수행하여 실험결과와 비교, 평가하였다.

실리카 흄 대체재로 SFFB를 사용한 고강도 콘크리트의 인장강성 (Tension Stiffening Behavior of High Strength Concrete Utilizing Silica Fume Free Binder)

  • 윤현도;박완신;이영오;김선우;이상수;윤길호
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2010년도 춘계 학술대회 제22권1호
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    • pp.107-108
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    • 2010
  • 본 연구에서는 실리캬 흄 대체재로써 SFFB를 사용한 고강도 콘크리트 인장부재의 인장강성 특성에 대한 실험결과를 제시한다. 본 연구는 60 및 80MPa의 압축강도를 갖는 고강도 콘크리트에서 고가의 실리캬 흄을 SFFB로 대체 가능성을 평가하는데 목적이 있다. 실험결과, 60 및 80MPa의 고강도 콘크리트 배합에서 실리캬 흄을 대체한 SFFB를 사용한 인장부재의 균열 및 하중거동 특성은 실리캬 흄을 사용한 인장 부재와 대등한 성능을 보였다.

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CONTAINMENT PERFORMANCE EVALUATION OF PRESTRESSED CONCRETE CONTAINMENT VESSELS WITH FIBER REINFORCEMENT

  • CHOUN, YOUNG-SUN;PARK, HYUNG-KUI
    • Nuclear Engineering and Technology
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    • 제47권7호
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    • pp.884-894
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    • 2015
  • Background: Fibers in concrete resist the growth of cracks and enhance the postcracking behavior of structures. The addition of fibers into a conventional reinforced concrete can improve the structural and functional performance of safety-related concrete structures in nuclear power plants. Methods: The influence of fibers on the ultimate internal pressure capacity of a prestressed concrete containment vessel (PCCV) was investigated through a comparison of the ultimate pressure capacities between conventional and fiber-reinforced PCCVs. Steel and polyamide fibers were used. The tension behaviors of conventional concrete and fiber-reinforced concrete specimens were investigated through uniaxial tension tests and their tension-stiffening models were obtained. Results: For a PCCV reinforced with 1% volume hooked-end steel fiber, the ultimate pressure capacity increased by approximately 12% in comparison with that for a conventional PCCV. For a PCCV reinforced with 1.5% volume polyamide fiber, an increase of approximately 3% was estimated for the ultimate pressure capacity. Conclusion: The ultimate pressure capacity can be greatly improved by introducing steel and polyamide fibers in a conventional reinforced concrete. Steel fibers are more effective at enhancing the containment performance of a PCCV than polyamide fibers. The fiber reinforcementwas shown to bemore effective at a high pressure loading and a lowprestress level.

철근콘크리트 구조물의 유한요소 해석을 위한 균열모델 (Cracking Models in Finite Element Analysis of Reinforced Concrete Structure)

  • 최창근;정성훈
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 1991년도 가을 학술발표회 논문집
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    • pp.23-28
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    • 1991
  • A simple, yet effective, material model of concrete is presented in this paper. Based on the orthotropic model in which the assumption of orthogonal principal strain axes is used, the incremental stress-strain relation of concrete is defined in the biaxial stress condition and the rotating crack model is adopted to represent realistically the change of the crack direction according to the different loading pad after cracking. Numerical results obtained from the finite element analysis are compared favourably with the available experimental data. By the parametric study, moreover, it was found that He most important factor in the structural behavior when the reinforced concrete structure is subjected to the dominent shear forces is the tension stiffening effect. The influences of the tension stiffening effect remarkably appears as the steel ratio decreases.

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콘크리트의 비틀림강도를 포함한 RC보의 공칭비틀림강도 (Nominal Torsional Moment Strength of RC Beam with Torsional Moment Strength of Concrete)

  • 박창규
    • 한국농공학회지
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    • 제44권3호
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    • pp.73-84
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    • 2002
  • Nominal shear strength of concrete beam is the combined strength of concrete shear strength and steel shear strength in current design code. But Torsional moment strength of concrete is neglected in calculation of the nominal torsional moment strength of reinforced concrete beam in current revised code. Tensile stress of concrete strut between cracks is still in effect due to tension stiffening effect. But the tensile stresses of concrete after cracking are neglected in bending and torsion in design. The torsional behavior is similar to the shear behavior in mechanics. Therefore the torsional moment strength of concrete should be concluded to the nominal torsional moment strength of reinforced concrete beam. To verify the validity of the proposed model, the nominal torsional moment strengths according to CEB, two ACI codes(89, 99) and proposed model are compared to experimental torsional strengths of 55 test specimens found in literature. The nominal torsional moment strengths by the proposed model show the best results.