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Shear Behavior of Slender HSC Beams Reinforced with Stirrups using Headed Bars, High Strength Steels, and CFRP Bars

헤디드 바, 고장력 철근 및 CFRP 바로 전단보강된 세장 고강도콘크리트 보의 전단 거동 평가

  • Yang, Jun-Mo (Dept. of Civil, Environmental and Architectural Engineering, Korea University) ;
  • Kwon, Ki-Yeon (Dept. of Civil, Environmental and Architectural Engineering, Korea University) ;
  • Choi, Hong-Shik (Dept. of Civil & Transportation Engineering, Chung Cheong University) ;
  • Yoon, Young-Soo (Dept. of Civil, Environmental and Architectural Engineering, Korea University)
  • 양준모 (고려대학교 건축.사회환경공학과) ;
  • 권기연 (고려대학교 건축.사회환경공학과) ;
  • 최홍식 (충청대학 건설교통과) ;
  • 윤영수 (고려대학교 건축.사회환경공학과)
  • Published : 2007.12.31

Abstract

If conventional reinforcements are used for high-strength concrete (HSC) structures, a large amount of the reinforcement must be required to compensate for the brittleness of HSC and make the best use of HSC. This raises some structural problems such as steel congestion and an increase in self-weight. Therefore, alternative reinforcing materials and methods for HSC structures are needed. In this study, four full-scale beam specimens constructed with HSC (100 MPa) were tested to investigate the effect of the different shear reinforcements on the shear behavior. These four specimens were reinforced for shear stirrups with normal and high strength steels, headed bars, and carbon fiber-reinforced polymer (CFRP) bars, respectively. In addition, steel fibers were added to the HSC in the two of the specimens to observe their beneficial effects. The use of high strength steels resulted in the improvement of the shear capacity since the shear resistance provided by the shear reinforcements and the bond strength were increased. The specimen reinforced with headed bars also showed a superior performance to the conventional steel reinforced specimen due to the considerably high anchorage strength of headed bar. CFRP bars used in this research, however, seemed to be inadequate for shear reinforcement because of the inferior bond capacity. The presence of the steel fibers in concrete led to remarkable improvement in the ductility of the specimens as well as in the overall cracks control capability.

일반 강도의 철근을 고강도콘크리트 구조물에 사용하는 경우, 고강도콘크리트의 취성을 보완하고 그 성능을 십분 활용하기 위해서는 많은 양의 철근이 요구된다. 이는 곧 철근의 과밀 배근이나 자중의 증가와 같은 구조, 시공상의 문제를 야기할 수 있다. 따라서 고강도콘크리트 부재에 적합한 새로운 보강 재료 혹은 공법이 필요한 것이다. 이에 본 연구에서는 100 MPa의 고강도콘크리트를 사용하여 4개의 실물크기 보 시험체를 제작하고, 전단보강재를 달리하여 전단 거동에 대한 효과를 관찰하기 위해 실험을 수행하였다. 4개의 시험체는 각각 일반 철근, 고장력 철근, 헤디드 바, CFRP 바를 전단 스터럽으로 사용하였으며, 이 중 2개의 시험체에는 강섬유를 콘크리트에 혼입하여 그 효과를 관찰하였다. 고장력 철근의 사용은 전단철근에 의한 전단력과 부착력의 증가로 인해 전반적인 전단 성능의 향상을 가져왔다. 헤디드 바로 전단 보강된 부재의 경우에도 헤디드 바의 상당히 높은 정착강도로 인해서 우수한 전단 거동을 보였다. 하지만 본 실험에서 사용된 CFRP 바의 경우, 부착력이 매우 떨어져 전단보강재로서 적합하지 못한 것으로 나타났다. 강섬유 보강 콘크리트를 통해 부재의 연성 및 균열 제어 능력이 향상되었다.

Keywords

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