An Experimental Study on the Fatigue Behaviors Strengthened by Ventilation-Glass Fiber Plate of Reinforced Concrete Beams

철근콘크리트 보의 통기성 유리섬유판 보강에 따른 피로거동에 관한 실험적 연구

  • Kim, Woonhak (Department of Civil Safety Environment Engineering, Hankyong National University) ;
  • Kang, Seokwon (Laboratory chief of Zedigm Co., Ltd.) ;
  • Shin, Chunsik (Directort of SSangYong Engineering & Construction Co., Ltd.)
  • Published : 2012.12.30

Abstract

Recently, the construction industry commonly uses FRP as a reinforcement material because of its material advantages. FRP attached reinforcement has various advantages such as high strength, stiffness, excellent durability and construction practicability comparing to its weight. However, external attachment of FRP is water-tighted with low water permeable material, not draining water, probably causing damages on a permanent structure. The study manufactured it through pultrusion and examined GP(glass fiber panel) of which material-mechanical properties are almost same as the existing FRP but durability and attachment performance are better by stationary experiments, testing load-deflection curve, destruction types and load-deflection relation under repetitive loading test. As a result of 2,000,000 fatigue tests, it did not result in the destruction and showed excellent permanent attachment and durability as it displays significantly low compressive strain of concrete.

최근 건설 산업에서 FRP는 재료적 장점들 때문에 구조물의 보강 재료로서 많이 사용되어지고 있다. FRP 외부부착보강은 중량에 비하여 높은 강도 및 강성, 우수한 내구성과 시공성 등 여러 가지 장점을 가지는 공법이다. 그러나 외부부착보강은 구조물이 투수성이 낮은 보강재로 밀폐되고 수분이 외부로 배출되지 못함으로 인하여, 장기적인 구조물의 손상을 발생시키는 문제점이 있다. 본 연구에서는 인발성형으로 제작되었으며, 기존의 FRP와 재료역학적 성질은 동등하면서 투수성을 지녀 구조물의 내구성, 부착성능에 유리한 유리섬유패널(GP)에 대해서 정적실험을 통해 실험체의 반복하중 하에서의 하중-처짐 선도, 파괴형태, 하중-변형율 관계 등을 조사하였다. 실험결과 2,000,000회 피로실험 후에도 파괴에 도달하지 않았으며, 보의 처짐이나 콘크리트 압축변형률이 기준 콘크리트 시험체보다 현저히 낮은 것으로 측정되어 장기 부착력 및 장기 내구성능이 우수함을 알수 있었다.

Keywords

References

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