• 제목/요약/키워드: Carbon fiber reinforced plastic sheet

검색결과 34건 처리시간 0.017초

보강된 노후 구조물 파괴거동 예측을 위한 수치해석기법 개발 (Numerical Analysis of Fracture Behavior in Aged RC Structures)

  • 신승교;고태호;김문겸;임윤묵
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2000년도 가을 학술발표회 논문집(II)
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    • pp.1031-1036
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    • 2000
  • In this study, a numerical simulation that can effectively predict the strengthening effect of repaired aged RC structures is developed using the axial deformation link elements. In repaired structures, concrete and interface are modeled as quasi-brittle materials. An elastic-perfectly plastic constitutive relationship is introduced for reinforcing bars. Also, a linear-elastic relationship for repair materials such as FRP or CFS. Structural deterioration in terms of corrosion of steel rebar is considered. The interfacial property between steel and concrete which is reduced by corrosion of steel rebar is obtained by comparing numerical results with experimental results of pull out tests. Obtained values are used in repaired reinforced concrete structures under flexural loading conditions. To investigate strengthening effect of the structures repaired with carbon fiber sheet(CFS), repaired and unrepaired RC structures are analyzed numerically. From analysis, rip-off, debonding and rupture failure mechanisms of interface between substrate and CFS can be determined. Finally, strengthening effect according to the variation of interfacial material properties is investigated, and it is shown that interfacial material properties have influence on the mechanical behavior of repaired structure systems Therefore, the developed numerical method using axial deformation link elements can use for determining the strengthening effects and failure mechanism of repaired aged RC structure.

Interfacial stress assessment at the cracked zones in CFRP retrofitted RC beams

  • Hojatkashani, Ata;Kabir, Mohammad Zaman
    • Structural Engineering and Mechanics
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    • 제44권6호
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    • pp.705-733
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    • 2012
  • In this work, an experimental examination was carried out to study interfacial stresses developed at the junction zones between carbon fiber reinforced plastic (CFRP) fabrics (~1 mm thickness) and tensile concrete portion in CFRP retrofitted RC beams. In this respect, initially six similar RC beams of $150{\times}150{\times}1000mm$ dimensions were prepared. Three of which were strengthened with CFRP fabrics at the tensile side of the beams. Furthermore, a notch was cut at the center of the bottom surface for all of the studied beams. The notch was 15 mm deep and ran across the full width of tension side of the beams. The mentioned interfacial stresses could be calculated from strains measured using strain gauges mounted on the interface zone of the tensile concrete and the CFRP sheet. Based on the results obtained, it is shown that interfacial stresses developed between CFRP fabrics and RC beam had a noticeable effect on debonding failure mode of the latter. The load carrying capacity of CFRP strengthened RC specimens increased ~75% compared to that of the control RC beams. This was attributed to the enhancement of flexural mode of the former. Finally, finite element analysis was also utilized to verify the measured experimental results.

탄소섬유판으로 보강된 철근콘크리트 보의 보강성능에 관한 연구 (A Study on Structural Performance Evaluation of RC Beams Strengthened with CFRP Plate)

  • 김중구
    • 한국건설관리학회논문집
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    • 제5권6호
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    • pp.212-217
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    • 2004
  • 이 연구는 같은 위치에 힘모멘트와 전단력이 최대가 되는 철근콘크리트 보에 대하여 휨모멘트 보강을 실시하는 경우, 탄소 섬유판의 두께와 하중점 부위 및 탄소섬유판의 끝부분을 감싸는 탄소섬유쉬트의 겹수를 변수로 하여 보의 구조적 거동을 실험하였다. 탄소섬유판의 두께의 증가에 따라 내력이 증가하였으나 선형적으로 비례하지 않았으며, 하중점에 감싼 탄소섬유쉬트의 영향은 뚜렷하게 나타나지 않았다 이 는 보강시험의 주된 파괴가 탄소섬유판의 파단이 아닌 하중점 주위에서의 휭-전단균열에서부터 층분리가 시작되었고 하중점을 탄소섬유쉬트로 감싼 경우 휭-전단균열 탄소섬유쉬트의 바깥 부분으로 이동하기 때문이다. 또한 탄소섬유판 단부에 정착용으로 시공한 탄소섬유쉬트는 하중점에서 발생한 취성파괴로 인하여 큰 효과를 나타내지 못하였다. 그러므로 재하상태에 따른 설계방법을 다르게 할 필요가 있으며, 특히 같은 위치에서 휨모멘트와 전단력이 최대가 되는 경우 탄소섬유판의 유효 두께는 최대 0.6mm로 하고 무보강보의 휨모멘트에 대한 보강된 보의 휨모멘트 비는 1.5-2.0으로 제한하는 것이 바람직하며, 0.6mm이상의 탄소섬유판을 사용하기 위하여 탄소섬유쉬트로 하중점을 보강하는 경우 무보강보 휨모멘트의 1.5 배가 되는 위치이상 탄소섬유쉬트를 연장하는 것이 바람직하다.

Finite element development of a Beam-column connection with CFRP sheets subjected to monotonic and cyclic loading

  • Rahimipour, Arash;Hejazi, Farzad;Vaghei, Ramin;Jaafar, Mohd Saleh
    • Computers and Concrete
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    • 제18권6호
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    • pp.1083-1096
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    • 2016
  • Beam-column joints are recognized as the weak points of reinforcement concrete frames. The ductility of reinforced concrete (RC) frames during severe earthquakes can be measured through the dissipation of large energy in beam-column joint. Retrofitting and rehabilitating structures through proper methods, such as carbon fiber reinforced polymer (CFRP), are required to prevent casualties that result from the collapse of earthquake-damaged structures. The main challenge of this issue is identifying the effect of CFRP on the occurrence of failure in the joint of a cross section with normal ductility. The present study evaluates the retrofitting method for a normal ductile beam-column joint using CFRP under monotonic and cyclic loads. Thus, the finite element model of a cross section with normal ductility and made of RC is developed, and CFRP is used to retrofit the joints. This study considers three beam-column joints: one with partial CFRP wrapping, one with full CFRP wrapping, and one with normal ductility. The two cases with partial and full CFRP wrapping in the beam-column joints are used to determine the effect of retrofitting with CFRP wrapping sheets on the behavior of the beam-column joint confined by such sheets. All the models are subjected to monotonic and cyclic loading. The final capacity and hysteretic results of the dynamic analysis are investigated. A comparison of the dissipation energy graphs of the three connections shows significant enhancement in the models with partial and full CFRP wrapping. An analysis of the load-displacement curves indicates that the stiffness of the specimens is enhanced by CFRP sheets. However, the models with both partial and full CFRP wrapping exhibited no considerable improvement in terms of energy dissipation and stiffness.