• 제목/요약/키워드: Reinforcement cracking

검색결과 365건 처리시간 0.025초

프리캐스트 프리스트레스트 콘크리트 교량 구조물의 정착부 설계에 관한 연구 (Anchorage Zone Design of Precast Prestressed Concrete Bridges)

  • 임동환;오병환;김수석
    • 콘크리트학회지
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    • 제8권3호
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    • pp.209-218
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    • 1996
  • 프리캐스트 프리스트레스트 콘크리트 구조물의 정착부에 프리스트레스트 힘이 도입되면, 과다한 국부 집중 하중으로 인하여 균열이 발생할 수 있으며, 최근 이러한 구조물 건설시 텐던을 따라가며 심각한 균열이 발생한 경우가 있다. 본 논문은 프리캐스트 프리스트레스트 콘크리트 구조물의 정착부에 발생하는 국부집중응력의 분포 특성을 규명하고, 정착부 보강 형태에 따른 국부응력 효과를 규명하여 합리적인 정착부 설계 개념을 제시함에 목적이 있다. 이를 위하여 정착부 형태에 따른 역학적 거동 실험 및 해석연구가 수행되었다. 위의 연구 결과 나선형 보강철근이 극한 및 균열하중에 대한 저항능력이 가장 우수함이 집중응력 분포 특성을 고찰함으로서 나타났으며, 정착부의 파괴기구, 정착부 보강설계를 위한 기본 개념 및 그 방법이 제시되었다.

Tension Stiffening Effect of High-Strength Concrete in Axially Loaded Members

  • Kim, Woo;Lee, Ki-Yeol;Yum, Hwan-Seok
    • 콘크리트학회논문집
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    • 제15권6호
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    • pp.915-923
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    • 2003
  • This paper presents the test results of total 35 direct tensile specimens to investigate the effect of high-strength concrete on the tension stiffening effect in axially loaded reinforced concrete tensile members. Three kinds of concrete strength 25, 60, and 80 MPa were included as a major experimental parameter together with six concrete cover thickness ratios. The results showed that as higher strength concrete was employed, not only more extensive split cracking along the reinforcement was formed, but also the transverse crack space became smaller. Thereby, the effective tensile stiffness of the high-strength concrete specimens at the stabilized cracking stage was much smaller than those of normal-strength concrete specimens. This observation is contrary to the current design provisions, and the significance in reduction of tension stiffening effect by employment of high-strength concrete is much higher than that would be expected. Based on the present results, a modification factor is proposed for accounting the effect of the cover thickness and the concrete strength.

Seismic behavior of T-shaped steel reinforced high strength concrete short-limb shear walls under low cyclic reversed loading

  • Chen, Zongping;Xu, Jinjun;Chen, Yuliang;Su, Yisheng
    • Structural Engineering and Mechanics
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    • 제57권4호
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    • pp.681-701
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    • 2016
  • This paper presents an experimental study of six steel reinforced high strength concrete T-shaped short-limb shear walls configured with T-shaped steel truss under low cyclic reversed loading. Considering different categories of ratios of wall limb height to thickness, shear/span ratios, axial compression ratios and stirrup reinforcement ratios were selected to investigate the seismic behavior (strength, stiffness, energy dissipation capacity, ductility and deformation characteristics) of all the specimens. Two different failure modes were observed during the tests, including the flexural-shear failure for specimens with large shear/span ratio and the shear-diagonal compressive failure for specimens with small shear/span ratio. On the basis of requirement of Chinese seismic code, the deformation performance for all the specimens could not meet the level of 'three' fortification goals. Recommendations for improving the structural deformation capacity of T-shaped steel reinforced high strength concrete short-limb shear wall were proposed. Based on the experimental observations, the mechanical analysis models for concrete cracking strength and shear strength were derived using the equivalence principle and superposition theory, respectively. As a result, the proposed method in this paper was verified by the test results, and the experimental results agreed well with the proposed model.

철근(鐵筋)콘크리트 보의 부착거동(附着擧動)에 관한 연구(硏究) (A Study on the Bond Behavior of Reinforced Concrete Beam)

  • 이봉학;홍창우;이주형;김동호
    • 산업기술연구
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    • 제18권
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    • pp.87-95
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    • 1998
  • Cracking is considered to be one of the important factors in determining the durability of reinforced concrete structures. When the bending stress exceeds the modulus of rupture of the concrete, cracking form along the length of members. The total load is transferred across these cracks by the reinforcement, but the concrete between cracks is still capable of carrying stresses due to the bond between steel and concrete. This phenomenon is called the tension stiffening effect. The tension stiffening effect is affected by many variables, such as the bond stress, strength of concrete, interrocking of aggregate, type of steel, and dowel action of steel. Also, this tension stiffening effect is usually quite significant in beams under service loading, and must be taken into account in the calculation of deflection and crack widths. In this study, the experiment was carried out on types of specimen, strength of concrete, and steel ratio and finite element analysis were compared in terms of load-deflection relationship, crack pattern.

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휠트래킹 시험을 통한 토목섬유시트 보강 아스팔트포장의 소성변형 거동특성 평가 (Evaluation of the Permanent Deformation Behavior on Geosynthetics-Reinforced Asphalt Pavement by using the Wheel Tracking Tests)

  • 조삼덕;이대영;김진환;김남호
    • 한국지반신소재학회논문집
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    • 제2권3호
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    • pp.39-46
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    • 2003
  • 국내 도로포장의 주요 파손형태는 주변환경 및 반복교통하중 조건에 의한 소성변형, 피로균열, 반사균열, 온도균열 등이 있는데, 포장이 설계수명에 도달하기 이전에 주로 발생하며 이로 인한 도로포장의 유리관리에 막대한 국가예산이 낭비되고 있는 실정이다. 본 연구는 토목섬유를 보강한 아스팔트 포장 시스템을 평가하는 것으로 이를 위해 아스팔트 포장 소성변형에 대한 토목섬유의 보강효과를 분석하고자 휠트래킹 시험을 수행하였으며, 토목섬유 보강에 따른 토목섬유와 아스팔트 혼합물의 거동특성을 고찰하였다.

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Shear performance of an innovative UHPFRC deck of composite bridge with coarse aggregate

  • Qi, Jianan;Wanga, Jingquan;Feng, Yu
    • Advances in concrete construction
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    • 제7권4호
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    • pp.219-229
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    • 2019
  • This paper presents an experimental study on the structural performance of an innovative ultra-high performance fiber reinforced concrete (UHPFRC) deck with coarse aggregate of composite bridge under shear force. Test parameters included curing method and shear span-to-height ratio. Test results indicated that more short fine cracks developed beside the existing cracks due to the randomly dispersed fibers, resulting in re-distributing and homogenizing of the concrete stress beside cracks and allowing for the occurrence of more cracks with small spacing compared to normal strength concrete beams. Curing methods, incorporating steam curing and natural curing, did not have obvious effect on the nominal bending cracking strength and the ultimate strength of the test specimens. Shear reinforcement need not be provided for UHPFRC decks with a fiber volume fraction of 2%. UHPFRC decks showed superior load resistance ability after the appearance of cracks and excellent post-cracking deformability. Lastly, the current shear provisions were evaluated by the test results.

Shrinkage and crack characteristics of filling materials for precast member joint under various restraint conditions

  • Lim, Dong-Kyu;Choi, Myoung-Sung
    • Advances in concrete construction
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    • 제14권2호
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    • pp.139-151
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    • 2022
  • Filling materials poured into precast member joint are subjected to restraint stress by the precast member and joint reinforcement. The induced stress will likely cause cracks at early ages and performance degradation of the entire structure. To prevent these issues and design reasonable joints, it is very important to analyze and evaluate the restrained shrinkage cracks of filling materials at various restraint conditions. In this study, a new time zero-that defines the shrinkage development time of a filling material-is proposed to calculate the accurate amount of shrinkage. The tensile stresses and strengths at different ages were compared through the ring test (AASHTO PP34) to evaluate the crack potential of the restrained filling materials at various restraint conditions. The mixture which contained an expansive additive and a shrinkage reducing agent exhibited high resistance to shrinkage cracking owing to the high-drying shrinkage compensation effect. The high-performance, fiber-reinforced cement composite, and ultra-high-performance, fiber-reinforced cement composite yielded very high resistance to shrinkage and cracking owing to the pull-out property of steel fibers. To this end, multiple nonlinear regression analyses were conducted based on the test results. Accordingly, a modified tensile stress equation that considered both the geometric shape of the specimen and the intrinsic properties of the material is proposed.

Energy equivalent lumped damage model for reinforced concrete structures

  • Neto, Renerio Pereira;Teles, Daniel V.C.;Vieira, Camila S.;Amorim, David L.N.F.
    • Structural Engineering and Mechanics
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    • 제84권2호
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    • pp.285-293
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    • 2022
  • Lumped damage mechanics (LDM) is a recent nonlinear theory with several applications to civil engineering structures, such as reinforced concrete and steel buildings. LDM apply key concepts of classic fracture and damage mechanics on plastic hinges. Therefore, the lumped damage models are quite successful in reproduce actual structural behaviour using concepts well-known by engineers in practice, such as ultimate moment and first cracking moment of reinforced concrete elements. So far, lumped damage models are based in the strain energy equivalence hypothesis, which is one of the fictitious states where the intact material behaviour depends on a damage variable. However, there are other possibilities, such as the energy equivalence hypothesis. Such possibilities should be explored, in order to pursue unique advantages as well as extend the LDM framework. Therewith, a lumped damage model based on the energy equivalence hypothesis is proposed in this paper. The proposed model was idealised for reinforced concrete structures, where a damage variable accounts for concrete cracking and the plastic rotation represents reinforcement yielding. The obtained results show that the proposed model is quite accurate compared to experimental responses.

Flexural behavior and flexural capacity prediction of precast prestressed composite beams

  • Hu, Manxin;Yang, Yong;Yu, Yunlong;Xue, Yicong
    • Structural Engineering and Mechanics
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    • 제84권2호
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    • pp.225-238
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    • 2022
  • In order to improve the cracking resistance of reinforced concrete and give full play to the advantages of prefabricated assembly structure in construction, prestressed reinforced concrete composite beam (PRCC) is proposed. Through the bending static test of seven I-shaped beam specimens, the bending failure modes and bearing capacity of PRCC and reinforced concrete composite beam are compared and analyzed, and the effects of prestress size, prestressed reinforcement layout and prestress application sequence on the flexural behavior of PRCC beams are studied. The results show that the cracking load and ultimate load of PRCC beams significantly increased after prestressing, and prestressed tendons can effectively control the crack development. With the increase of prestressing degree, the deformation resistance and bending stiffness of PRCC beams are increased. The application sequence of prestress has little influence on the mechanical properties of PRCC beams. The crack width, stiffness and normal section bearing capacity of PRCC beam are analyzed, and the calculated results are in good agreement with the experimental results.

균열손상 후 동결융해를 경험한 철근콘크리트 보의 휨거동 (Effect of Freeze-Thaw Cycles after Cracking Damage on the Flexural Behavior of Reinforced Concrete Beams)

  • 김선우;최기봉;윤현도
    • 콘크리트학회논문집
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    • 제22권3호
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    • pp.399-407
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    • 2010
  • 이 연구에서는 동결융해 사이클을 경험한 2가지 종류의 휨부재의 거동특성을 평가하였다. 이 연구의 목적은 동결융해에 따른 철근콘크리트 보의 거동특성을 검토하는 것이다. 이를 위해 일부 실험체는 동결융해를 경험하기 전, 인장철근이 항복되기까지 손상을 입도록 계획되었다. 또한 반복하중 재하시 강성저하 특성을 평가하기 위하여 단조 및 반복재하 실험을 실시하였다. 재료 실험 결과, 동결융해 300사이클을 경험한 콘크리트의 상대동탄성계수는 86.8%까지 감소되었으나 내동해저항성은 충분히 가지고 있는 것으로 평가되었다. 단조재하 실험 결과, 동결융해 사이클에 따른 휨 강도, 연성 및 강성은 상대적으로 감소하는 것으로 나타났다. 특히, 인위적 균열손상을 경험한 BDF13 시리즈는 현행 콘크리트설계기준에서 요구하는 공칭모멘트를 만족하지 못하는 것으로 나타났다. 반복재하시 BF75 시리즈에서 동결융해를 경험함에 따라 10% 이상의 반복강성 저하를 나타내었다. 따라서 내진부재와 같이 반복하중을 받게 되는 부재를 설계할 경우, 동결융해로 인한 압축측 콘크리트의 변형 특성도 고려되어야 할 것으로 판단된다.