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철근콘크리트 합성 H-Pile의 휨성능

Flexural Capacity of RC Composited H-Pile

  • 김민준 (호남대학교 토목환경공학과) ;
  • 신근옥 (호남대학교 토목환경공학과) ;
  • 정제평 (호남대학교 토목환경공학과)
  • Kim, Min-June (Dept. of Civil Environmental Engineering, Honam University) ;
  • Shin, Geun-Ock (Dept. of Civil Environmental Engineering, Honam University) ;
  • Jeong, Je-Pyong (Dept. of Civil Environmental Engineering, Honam University)
  • 투고 : 2016.04.01
  • 심사 : 2016.08.29
  • 발행 : 2016.10.30

초록

서로 다른 응력-변형률 구성관계를 갖는 2가지 이상의 재료로 구성된 합성구조부재의 사용이 크게 증가하고 있다. 본 연구에서는 철근 및 콘크리트로 보강한 합성 H-Pile의 휨성능을 평가하고자 8개의 실험체를 제작하여 휨실험을 실시하였다. 실험결과 합성H-Pile의 휨성능이 무보강 H-Pile보다 10~30%정도 크게 나타났고, 연성능력은 2배 이상, 에너지소산능력은 3배 이상 증가하였다. 한계상태해석 결과는 실험보다 보수적인 강도예측을 하였다.

The composited structural member in which two or more materials having different stress-strain relationships (steel & concrete) has increased greatly in recent years. This paper presents the experimental results of flexural capacity of the composited H-Pile subjected to bending moment. Eight composited beams were tested under direct loading condition using the frame tester. Based on the experimental results it is noted that flexural capacity of composited H-Pile increased about 20~30% and ductility ratio significantly increased. Limit state analysis of the specimens was conducted and the result shows that flexural strength by limit state analysis is conservative.

키워드

참고문헌

  1. Cho, K. J., Jun, S. H., Suh, J. W., Yoo, N. J., and Park, B. S., "Numerical Study for Application of Sheet Pile Retaining Wall Reinforced with H-pile", Journal of the Korea Geoenvironmental Society, Vol.16, No.7, 2015, pp.23-33. https://doi.org/10.14481/jkges.2015.16.7.23
  2. Park, S. E., Park, M. H., and Kim, J. K., "Discrete Optimum Design of the Strut Supported Temporary Structures", Journal of the Korea Society of Industrial Application, Vol.11, No.3, 2008, pp.127-134.
  3. Kim, M. J., Lee, C. S., Ma, J. H., and Jeong, J. P., "Flexural Analysis of H-Pile Composite with RC for Excavation", Korea Concrete Institute Conference, 2015, pp.155-156.
  4. Temporary Work Standard Specification, Ministry of Land, 2014, pp.98-120.
  5. Yoo, S. W., and Suh, J. I., "A Study on the Experiment of Flexural Behavior of Composite Beamwith Steel Fiber Reinforced UHPC and Inverted-T Steel Considering Compressive Strength Level", Journal of the Korea Concrete Institute, Vol.27, No.6, 2015, pp.677-685. https://doi.org/10.4334/JKCI.2015.27.6.677
  6. Ministry of Land, Transport and Maritime Affairs highway bridge design standards 2012, pp.180-240.
  7. K, W., "Limit state design of concrete structures", donghwa technique, 2014, pp.10-60.
  8. Korea Institute of Steel Construction. Steel Structure Design Criteria, Goomibook, 2007, pp.15-200 (in Korean).
  9. Yang, I. H., and Kim, K. C., "An Experimental Study on Flexural Behavior of Beams Reinforced with Zinc-Coated Rebar", Journal of the Korea Concrete Institute, Vol.26, No.3, 2014, pp.299-306. https://doi.org/10.4334/JKCI.2014.26.3.299
  10. Wilam, and T. Tanbe., Finite Element Analysis of Reinforced Concrete Structures, ACI SP-205, 2001, pp.2-30 (in USA).
  11. Pan, A. D., and Moehle, J. P., "Lateral Displacement Ductility of Reinforced Concrete Flat Plate", ACI Structural Journal, Vol.86, No.3 1989, pp.250-258.
  12. Oh, Y. H., Nam, Y, G., and Kim, J. H., "Strength and Ductility of Steel Fiber Reinforced Composite Beams without Shear Reinforcements", Journal of the Korea Concrete Institute, Vol.19, No.1, 2007, pp.103-111. https://doi.org/10.4334/JKCI.2007.19.1.103