DOI QR코드

DOI QR Code

강섬유 혼입률에 따른 고강도 철근콘크리트 기둥의 전단강도에 대한 실험적 연구

An Experimental Study on the Shear Strength of High Strength Reinforced Concrete Columns according to Volume Fraction of Steel Fiber

  • 최지웅 (한양대학교 대학원 건축공학과) ;
  • 배백일 (한양대학교 산업과학연구소) ;
  • 최창식 (한양대학교 건축공학부)
  • 투고 : 2016.12.19
  • 심사 : 2017.03.24
  • 발행 : 2017.04.30

초록

The purpose of this study is to evaluate the shear strength of steel fiber reinforced concrete columns quantitatively through the experimental program. For this purpose, the volume fraction of steel fiber is determined to main parameter (0%, 1%, 2%), and the cyclic lateral loading tests of columns were performed with constant axial loads. According to the test results, the shear strength of the column with 1% of steel fiber increased 1.61 times and shear strength of the column with 2% of steel fiber increased 1.67 times compared to RC column. Also, it was investigated that the cracks are distributed and angle of cracks is reduced in specimens with steel fiber. This resulted in an increase of the number of transverse reinforcement located on the crack face. Therefore, the shear strength of columns was evaluated by dividing the shear strength contribution by the concrete, transverse reinforcement, and the shear strength increase by the steel fiber. As a result, the shear strength contributions of concrete increased about 29% with 1% of steel fiber and increased about 36% with 2%. Also, the shear strength contributions of transverse reinforcement increased when steel fiber is mixed.

키워드

과제정보

연구 과제 주관 기관 : 한국연구재단

참고문헌

  1. ACI 318-14. (2014). Building code requirement for structural concrete and commentary, ACI Committee 318, American Concrete Institute.
  2. ACI 374-2R-13. (2013). Guide for testing reinforced concrete structural elements under slowly applied simulated seismic load, ACI Committee 374, American Concrete Institute, 18.
  3. ACI 544.4R-88. (2009). Design considerations for steel fiber reinforced concrete, ACI Committee 544, American Concrete Institute.
  4. ASCE/SEI 41-13. (2014). Seismic evaluation and retrofit of existing building, American Society of Civil Engineering, 411.
  5. Ashour, S. A., Hasanain, G. S., & Wafa, F. F. (1992). Shear behavior of high-strength fiber-reinforced concrete beams, ACI Structural Journal, 89(2), 176-184.
  6. Chang, K. K., Lee, H. H., & Moon, S. D. (2002). Shear characteristics of high strength RC columns strengthened by steel fiber, Journal of the Architectural Institute of Korea, 18(9), 45-52. (in Korean)
  7. Japan Concrete Institute Standard. (2003). Method of test for fracture energy of concrete by use of notched beam, JCI-S-001-2003.
  8. Korean Agency for Technology and Standards. (2013). Method of tensile test for metallic materials, KS B 0802, 1-7. (in Korean)
  9. Korean Agency for Technology and Standards. (2010). Standard test method for compressive strength of concrete, KS F 2405, 1-6. (in Korean)
  10. Korea Concrete Institute. (2012). Code requirement and commentary for reinforced concrete structure, Korea Concrete Institute, 172. (in Korean)
  11. Korean Standards Association. (2006). Method of test for splitting tensile strength of concrete, KS F 2423, 1-12. (in Korean)
  12. Lee, H. H. (2007). Shear strength and behavior of steel fiber reinforced concrete columns under seismic loading, Engineering Structures, 29, 1253-1262. https://doi.org/10.1016/j.engstruct.2006.08.016
  13. Nagasaka, T. (1984). Effectiveness of steel fiber reinforcement on improving carrying capacities and deformation characteristics of reinforced concrete columns, Proceedings of Eighth World Conference on Earthquake Engineering, San Francisco, 6, 553-560.
  14. Nagasaka, T. (1988). Estimation of shear capacity of reinforced concrete column with steel fibers, Proceedings of Ninth World Conference on Earthquake Engineering, Tokyo-Kyoto, 4, 419-424.
  15. Narayan, R., & Darwish, I. Y. S. (1987). Use of steel fibers as shear reinforcement, ACI Structural Journal, 84(3), 216-227.
  16. Priestley, M. J. N., Verma, R., & Xiao, Y. (1994). Seismic shear strength of reinforced concrete columns, Journal of Structural Engineering, 120(8), 2310-2329. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:8(2310)
  17. Sezen, H. (2002). Seismic response and modeling of lightly reinforced concrete building columns, Ph.D. dissertation, Department of Civil and Environmental Engineering, University of California, Berkeley.
  18. Sezen, H., & Moehle, J. P. (2004). Shear strength model of lightly reinforced concrete columns, Journal of Structural Engineering, 130(11), 1692-1703. https://doi.org/10.1061/(ASCE)0733-9445(2004)130:11(1692)
  19. Sharma, A. K. (1986). Shear strength of steel fiber reinforced concrete beams, ACI Journal, Proceeding 83(4), 624-628.
  20. Swamy, R. N., & Bahia, H. M. (1985). The effectiveness of steel fibers as shear reinforcement, Concrete International, 7(3), 35-40
  21. Swamy, R. N., Jones, R., & Chiam, T. P. (1993). Influence of steel fibers on the shear resistance of lightweight concrete I-beams, ACI Structural Journal, 90(1), 103-114
  22. Zsutty, T. (1971). Shear strength prediction for seperate categories of simple beam tests, ACI Structural Journal, 68(2), 138-143 (Received Dec. 19 2016 Revised Jan. 26 2017 Accepted Mar. 24 2017)