• 제목/요약/키워드: stiffening member

검색결과 37건 처리시간 0.026초

철근콘크리트 인장부재의 인장강성 및 파괴거동에 관한 연구 (Failure Behavior and Tension Stiffening of RC Tension Members)

  • 박제선;이봉학;윤경구;홍창우;이주형
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1998년도 봄 학술발표회논문집(II)
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    • pp.737-742
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    • 1998
  • The tension stiffening effect is defined as the increase in stiffness in reinforced concrete member due to the stiffness provided by concrete between cracks. If this is disregarded in analysis of reinforced concrete members, especially at the level of service loads, member stiffnesses may be underestimated considerably. This paper presents on the failure behavior and tension stiffening of RC tension test with main variables such as concrete strength, rebar diameter and strength. The tension stiffening was analyzed from the load-displacement relationship by ACI code and the proposed by Collins & Mitchell. In summary, the effect of tension stiffening decrease rapidly as the rebar diameter increase, rebar strength increase, and concrete strength increase. The effect of tension stiffening on RC member is the biggest near the behavior of concrete cracking and decrease as the load close to the breaking point. Thus, the tension stiffening should be considered for the precise analysis near the load of concrete cracking.

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Investigating the negative tension stiffening effect of reinforced concrete

  • Zanuy, Carlos
    • Structural Engineering and Mechanics
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    • 제34권2호
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    • pp.189-211
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    • 2010
  • The behaviour of a reinforced concrete tension member is governed by the contribution of concrete between cracks, tension stiffening effect. Under highly repeated loading, this contribution is progressively reduced and the member response approximates that given by the fully cracked member. When focusing on the unloaded state, experiments show deformations larger than those of the naked reinforcement. This has been referred to as negative tension stiffening and is due to the fact that concrete carries compressive stresses along the crack spacing, even thought the tie is subjected to an external tensile force. In this paper a cycle-dependent approach is presented to reproduce the behaviour of the axially loaded tension member, paying attention to the negative tension stiffening contribution. The interaction of cyclic bond degradation and time-dependent effects of concrete is investigated. Finally, some practical diagrams are given to account for the negative tension stiffening effect in reinforced concrete elements.

철근콘크리트 인장부재의 인장강성에 관한 실험적 연구 (Experimental Study on Tension Stiffening of RC Tension Members)

  • 이봉학;윤경구;장동일
    • 한국농공학회지
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    • 제40권4호
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    • pp.120-129
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    • 1998
  • The tension stiffening in reinforced concrete member means increase of stiffness caused by the effective tensile stress between cracks and the tension softening behavior of concrete. This paper presents on the tensile behavior and tension stiffening of RC tension members. Direct tension tests were performed with a main experimental variables such as concrete strength, rebar diameter and strength. The tension stiffening was analyzed from the load-displacement relationship and was compared with ACI code, CEB model and the proposed by Collins & Mitchell. The results are as follows : The tension behaviors of RC members were quite different from those of bare bar and were characterized by loading and concrete cracking steps. The effect of tension stiffening decreased rapidly as the rebar diameter and strength increased, and the concrete strength increased. The proposed by Collins & Mitchell described well the experimental results, regardless of rebar types and concrete. But, ACI code and CEB model described a little differently, depending on the types. The effect of tension stiffening in RC member was the biggest near at concrete cracking step and decreased gradually to the bare bar's behavior as loading closed to the breaking point. Thus, tension stiffening in RC members should be taken into account when the load-deflection characteristics of a member are required or a precise analysis near the load of concrete clacking is needed.

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Curvature-based analysis of concrete beams reinforced with steel bars and fibres

  • Kaklauskas, Gintaris;Sokolov, Aleksandr;Shakeri, Ashkan;Ng, Pui-Lam;Barros, Joaquim A.O.
    • Structural Engineering and Mechanics
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    • 제81권3호
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    • pp.349-365
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    • 2022
  • Steel fibre-reinforced concrete (SFRC) is an emerging class of composite for construction. However, a reliable method to assess the flexural behaviour of SFRC structural member is in lack. An analytical technique is proposed for determining the moment-curvature response of concrete beams reinforced with steel fibres and longitudinal bars (R/SFRC members). The behaviour of the tensile zone of such members is highly complex due to the interaction between the residual (tension softening) stresses of SFRC and the tension stiffening stresses. The current study suggests a transparent and mechanically sound method to combine these two stress concepts. Tension stiffening is modelled by the reinforcement-related approach assuming that the corresponding stresses act in the area of tensile reinforcement. The effect is quantified based on the analogy between the R/SFRC member and the equivalent RC member having identical geometry and materials except fibres. It is assumed that the resultant tension stiffening force for the R/SFRC member can be calculated as for the equivalent RC member providing that the reinforcement strain in the cracked section of these members is the same. The resultant tension stiffening force can be defined from the moment-curvature relation of the equivalent RC member using an inverse technique. The residual stress is calculated using an existing model that eliminates the need for dedicated mechanical testing. The proposed analytical technique was validated against test data of R/SFRC beams and slabs.

철근 콘크리트 부재의 인장강성 효과에 관한 연구 (Tension Stiffening Effect for Reinforced Concrete Members)

  • 이봉학;윤경구;홍창우
    • 콘크리트학회논문집
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    • 제11권4호
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    • pp.83-93
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    • 1999
  • This paper presents tension stiffening effect of Reinforced concrete members obtained from experimental results on direct tension and bending. From the direct tension test program, crack patterns were investigated with tension softening behaviors of concrete. Tension stiffening effects and losses of strain energy were, also, analyzed from the load-deflection curve with the main experimental variables such as concrete strength, yielding stress and reinforcement ratio of rebar. Tension stiffening effect of RC members increase linearly until the first crack initiate, decrease inversely with number of cracks, and then decrease rapidly when splitting cracks are happened. The tension stiffening effect is shown to be more important at the member of lower reinforcement than that of higher. Therefore, it necessitates to consider the tension stiffening effects at a nonlinear analysis. From the above analysis, a tension stiffening model of concrete is proposed and verified by applying it to bending members. From the numerical analysis by finite element approach, it is shown that the proposed model evaluates a little higher in analyzing at nonlinear region of high strength concrete, but, perform satisfactorily in general.

콘크리트 인장강성이 철근콘크리트 보의 거동에 미치는 영향 (Effect of Tension Stiffering on the Behavior of Reinforced Concrete Beam)

  • 이봉학
    • 한국농공학회지
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    • 제41권4호
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    • pp.104-112
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    • 1999
  • Tensile behavior in concrete has been neglected until recently. However, the effect of tensile stresses in concrete must be considered where the member primarily carries tensile forces or when ultimate strength is affected by the cracking history. In this paper, a series of experiments were performed with a reinforced rectangular beams of 15 specimens in order to investigate the effect of tension stiffening into the nonlinear analysis and cracking behavior. The experimental results were analyzed in terms of load-deflection curves and strain fracture energy with respect to the main experimental variables such as types of specimen, strength of concrete and steel ration. The results from experiments and finite element analysis were compared in terms of load-deflection relationship and cracking pattern. The results are as follows ; The tension stffening effects of reinforced concrete beams were observedc up to yielding of members after cracking showing strain energy difference of 35 % at the beam of 0.57% steel ratio compared with that of beam ignoring the tension stiffening effect. The tension stiffening of concrete strength 400kgf/$\textrm{cm}^2$ and 600kgf/$\textrm{cm}^2$ increased by 8% and 13%, respectively, compared with that of concrete strength 200kgf/$\textrm{cm}^2$. The tension stiffening effects were greater at a ductile member rather than a brittle one. The load-deflection results of finite element analysis showed very similar results from experiment. The crack growth and pattern might be predicted from the nonlinear finite element analysis considering concrete stiffening.

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축방향 인장을 받는 콘크리트 부재의 FRP 보강근의 인장강화 효과 (Tension Stiffening Effect in Axially loaded Concrete Member Oncrete Member)

  • 장낙섭;노치훈;오홍섭
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권6호
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    • pp.47-54
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    • 2023
  • 본 연구에서는 GFRP, BFRP와 CFRP 보강근으로 보강된 콘크리트 시험체의 인장 거동 특성을 실험적으로 분석하였다. FRP 보강근의 인장강도는 설계강도와 유사하게 나타났으나, 탄성계수는 다소 낮게 측정되었다. 또한 인장강화 시험체는 OPC와 SFRC를 사용하여 150(W)×150(B)×1000(H) mm의 크기로 제작하였다. 균열간격은 탄성계수가 낮고 표면이 보다 매끄러운 GFRP 보강근이 가장 크게 나타났으며, 표면이 다소 거친 BFRP와 탄성계수가 높은 CFRP 보강근의 균열간격은 비슷하게 분석되었다. 하중-변형률관계에서도 GFRP보강근은 균열후 다소 급격한 거동을 보인것에 반하여 BFRP와 CFRP 보강근은 균열발생시 다소 안정적인 거동후 일정수준은 인장강화 효과를 유지하였다. 인장강화지수의 경우 직경이 증가할수록 인장강화지수는 다소 작게 분석되었으며, BFRP보다 GFRP의 경우가 인장강화지수는 높게 분석되었다.

인장강성 모델을 고려한 고강도 철근콘크리트 부재의 비선형 해석 (Nonlinear Analysis of High Strength Reinforced Concrete Members Considering the Tension Stiffening Model)

  • 홍창우;윤경구;김경진;박제선
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 학회창립 10주년 기념 1999년도 가을 학술발표회 논문집
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    • pp.479-482
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    • 1999
  • The tension stiffening effect, which means the maintaining a part of stiffness after cracking of concrete in tensile, exists at a reinforced concrete member because of the concrete softening and bonding stress between cracks. It is required to consider it for precise analysis and evaluation o structural behavior, due to the possibility of discrepancy between the actual behavior and the analysis without considering the tension stiffening effect. Making and adopting a tension stiffening model is the most simple and effective way for considering it at nonlinear analysis which indicated the estimation from models and experimental results were similar each others. The comparisons on RC beam were, also performed in order to analyzed the influence of concrete strength and steel ratio into the structural behavior. They indicated that the results from analysis estimated quite closely to the test results at low steel ratio, however, overestimated at high steel ratio. The overestimation increase linearly as concrete strength or steel ratio increased.

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강섬유보강콘크리트의 균열 이후의 인장거동에관한 실험적 연구 -강섬유보강콘크리트의 인장강성 증대효과를 중심으로- (An Experimental Study on Post-Cracking Tension Behavior of Steel Fiber Reinforced Concrete -Focused on Tension Stiffening Effect of Steel Fiber Reinforced Concrete-)

  • 서상교
    • 콘크리트학회지
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    • 제3권1호
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    • pp.79-85
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    • 1991
  • 강섬유를 보강한 철근 콘크리트 프리즘에, 인장하중을 철근에 가하여 강섬유 보강콘크리트가 인장강도에 달한직후 균열이 발생한 다음에는 강섬유의 연결작용에 의해 철근의 인장강성이 보강되는 현상을 실험적으로 밝혔다. 균열이후에 강섬유보강콘크리트가 발휘하는 철근의 인장강성보강 효과를 평균변형도와의 관계로 나타내고, 그 관계를 근거로 인장강성증가 효과를 평균변형돠와 관련시켜 정양적으로 평가하여 강섬유보강 철근콘크리트의 설계에 기초적인 자료를 제공하고 있다.

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

  • 곽효경;송종영
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2001년도 봄 학술발표회 논문집
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    • pp.267-274
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    • 2001
  • In this paper, a analytical model which can simulate the post-cracking behavior and tension stiffening effect in a reinforced concrete(RC) tension member is proposed. Unlike the classical approaches using the bond stress-slip relationship or the assumed bond stress distribution, the tension stiffening effect at post-cracking stage is quantified on the basis of polynomial strain distribution functions of steel and concrete, and its contribution is implemented into the reinforcing steel. The introduced model can be effectively used in constructing the stress-strain curve of concrete at post-cracking stage, and the loads carried by concrete and by reinforcing steel along the member axis can be directly evaluated on the basis of the introduced model. In advance, the prediction of cracking loads and elongations of reinforced steel using the introduced model shows good agreements with results from previous analytical studies and experimental data.

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