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Strength of Reinforced Concrete Beam-Column Assembles Subjected to Seismic Loading

지진하중을 받는 철근콘크리트 접합부의 강도

  • 이정윤 (성균관대학교 건축공학과) ;
  • 채희대 (성균관대학교 철근콘크리트공학연구실)
  • Published : 2006.10.30

Abstract

This paper provides a method to predict the ductile capacity of reinforced concrete beam-column joints that fail in shear after the plastic hinges occur at both ends of the adjacent beams. After the plastic hinges occur at both ends of the beams, the longitudinal axial strain at the center of the beam section in the plastic hinge region abruptly increases because the neutral axis continues to move upward toward the extreme compressive fiber and the residual strain of the longitudinal bars continues to increase with each cycle of inelastic loading. An increase in the axial strain of the beam section after flexural yielding widens the cracks in the beam-column joints, thus leading to an decrease of the shear strength of the beam-column joints. The proposed method takes into account shear strength deterioration in the beam-column joints. In order to verify the shear strength and the corresponding ductility of the proposed method, test results of 52 RC beam-column assembles were compared. Comparisons between the observed and calculated shear strengths and their corresponding ductilities of the tested assembles, showed reasonable agreement.

본 논문에서는 지진하중을 받는 내부 및 외부 철근콘크리트 보-기둥 접합부의 강도 및 연성능력을 평가하였다. 접합부에 인접한 보에 소성힌지가 발생한 이후 접합부가 파괴할 경우 접합부 내력은 보의 소성힌지의 영향을 받아 감소하게 된다. 보에 소성힌지가 발생하면 보의 부재축방향 변형률은 급격하게 증가하게 되며, 증가된 부재축방향 변형률은 접합부의 변형에 영향을 주어 접합부의 강도를 저감시킨다. 이 논문에서는 보에 소성힌지가 발생하기 이전에 파괴하는 접합부의 내력과 보에 소성힌지가 발생한 이후에 파괴하는 접합부의 연성능력을 접합부의 변형능력 및 스트럿의 강도저감을 이용하여 평가하였다. 제시한 평가법은 52개의 접합부 실험체를 이용하여 검증하였다.

Keywords

References

  1. Paulay, T. and Priestley, M. J. N., Seismic Design of Reinforced Concrete and Masonry Buildings, A Wiley Interscience Publication, 1992, 744pp
  2. ACI Committee 3 I 8, Building code and Requirements for Structural Concrete(318-02) and Commentary(318-02), American Concrete Institute, Farmington hilIs, Michigan, 2002, 389pp
  3. 박기철, '고강도 철근콘크리트 보-기둥 접합부의 전단 거동에 관한 실험', 한국콘크리트학회논문집, 제 17권 4호,2005, pp. 535-542
  4. 차병기, 고동우, 우성우, 이한선, '비내진 상세를 가진 RC 외부접합부의 반복 횡하중 실험', 한국콘크리트학회논문집, 제15권 1호,2003, pp. 11-16 https://doi.org/10.4334/JKCI.2003.15.1.011
  5. Vecchio, F. J. and Collins, M. P., 'The Modified Compression Field Theory for Reinforced Concrete Elements Subjected to Shear,' ACI Structural Journal, Vol. 83, No. 2, 1986, pp. 219-231
  6. Belarbi, A. and Hsu, T. T. C., 'Constitutive Laws of Softened Concrete in Biaxial Tension-compression,' ACI Structural Journal, Vol. 92, No.5, 1995, pp. 562-573
  7. Zhang, L. and Jirsa, J. O., 'A Study of Shear Behavior of Reinforced Concrete Beam-Column Joints,' PMFSEL Report No. 82-1, Department of Civil Engineering, University of Texas at Austin, Feb. 1982, 118pp
  8. Lee, J.-Y. and Watanabe, F., 'Predicting the Longitudinal Axial Strain in the Plastic Hinge Regions of Reinforced Concrete Beams Subjected to Reversed Cyclic Loading,' Engineering Structures, Vol. 25. No.7, June, 2003, pp. 927-939 https://doi.org/10.1016/S0141-0296(03)00026-9
  9. Japan Concrete Institute, JCI Colloquium on Ductility of Concrete Structures and Its Evaluation, 1988, 466pp
  10. Shiohara, H., 'New Model for Shear Failure of RC Interior Beam-Column Connections,' Journal of Structural Engineering, Vol. 127, No.2, Feb. 2001, pp. 152-160 https://doi.org/10.1061/(ASCE)0733-9445(2001)127:2(152)
  11. Teraoka, T., Sasaki, S., and Hayashi, K., 'Evaluation of Bond Behavior of Beam Reinforcement before Yielding Passing Through Reinforced Concrete Interior Beam-Column Joint,' J Soc. Mat. Sci., Japan, Vol. 48, No.8, Aug. 1999, pp. 927-933 https://doi.org/10.2472/jsms.48.927
  12. Meinheit, D. F. and Jirsa, J. O., 'Shear Strength of RC Beam-Column Connections,' Journal of Structural Division, Proceedings of the American Society of Civil Engineers, Vol. 107, No. STl1, Nov. 1981, pp. 2227-2244
  13. Fujji, S. and Morita, S., 'Comparison between Interior and Exterior RC Beam-Column Joint Behavior,' Design of Beam-Column Joints for Seismic Resistance, SP-I23, American Concrete Institute, Farmington hills, Michigan, 1991. pp. 145-165
  14. Ehsani, M. R.and Alameddine, F., 'Design Recommendations for Type 2 High-Strength Reinforced Concrete Connections,' ACI Structural Journal, Vol. 88, No.3, May-June. 1991, pp. 277-291
  15. Tsonos, A. G., Tegos, I. A. and Penelis, G. G., 'Seismic Resistance of Type 2 Exterior Beam-Column Joints Reinforced With Inclined Bars,' ACI Structural Journal, Vol. 89, No. I, Jan.-Feb. 1992, pp. 3-12
  16. Teraoka, M., 'Study on Earthquake-Resistant Design Methods for Beam-Column Joints in High-rise Moment-Resisting Frames,' Fusita Corporation, 1997, pp. 124-135
  17. Kaku, T. and Asakusa, H., 'Ductility Estimation of Exterior Beam-Column Subassemblages in Reinforced Concrete Frames,' Design of Beam-Column Joints for Seismic Resistance, SPI23-7, ACI, Detroit, 1991, pp. 167-185

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  1. Structural Capacity Evaluation of Hybrid Precast Concrete Beam-Column Connections Subjected to Cyclic Loading vol.22, pp.3, 2010, https://doi.org/10.4334/JKCI.2010.22.3.325