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Experimental research on the propagation of plastic hinge length for multi-scale reinforced concrete columns under cyclic loading

  • Tang, Zhenyun (The Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology) ;
  • Ma, Hua (The Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology) ;
  • Guo, Jun (The Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology) ;
  • Xie, Yongping (The Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology) ;
  • Li, Zhenbao (The Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology)
  • Received : 2015.05.01
  • Accepted : 2016.02.24
  • Published : 2016.11.25

Abstract

The plastic hinge lengths of beams and columns are a critical demand parameter in the nonlinear analysis of structures using the finite element method. The numerical model of a plastic hinge plays an important role in evaluating the response and damage of a structure to earthquakes or other loads causing the formation of plastic hinges. Previous research demonstrates that the plastic hinge length of reinforced concrete (RC) columns is closely related to section size, reinforcement ratio, reinforcement strength, concrete strength, axial compression ratio, and so on. However, because of the limitations of testing facilities, there is a lack of experimental data on columns with large section sizes and high axial compression ratios. In this work, we conducted a series of quasi-static tests for columns with large section sizes (up to 700 mm) and high axial compression ratios (up to 0.6) to explore the propagation of plastic hinge length during the whole loading process. The experimental results show that besides these parameters mentioned in previous work, the plastic hinge of RC columns is also affected by loading amplitude and size effect. Therefore, an approach toward considering the effect of these two parameters is discussed in this work.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China, National Natural Science Foundation of China

References

  1. Agnieszka, B.V. and Walraven, J.C. (2002), "Size effects in plastic hinges of reinforced concrete members", Heron, 47(1), 53-75.
  2. Bae, S. (2005), "Seismic performance of full-Scale reinforced concrete columns", Ph.D. Dissertation, University of Texas, Austin.
  3. Bae, S. and Bayrak, O. (2008), "Plastic hinge length of reinforced concrete columns", ACI Struct. J., 105(2), 123-133.
  4. Baker, A.L.L. (1956), Ultimate Load Theory Applied to the Design of Reinforced and Prestressed Concrete Frames, Concrete Publications, London, UK.
  5. Ban, S.Z. and Yamada, M. (1958), "Rotation limit of plastic hinge in reinforced concrete construction", Trans. Architec. Inst. Japan, 58, 42-48. https://doi.org/10.3130/aijsaxx.58.0_42
  6. Bazant, Z.P. (1984), "Size effect in blunt fracture: concrete, rock, metal", J. Eng. Mech., 110(4), 518-535. https://doi.org/10.1061/(ASCE)0733-9399(1984)110:4(518)
  7. Berry, M.P., Lehman, D.E. and Lowes, L.N. (2008), "Lumped-plasticity models for performance simulation of bridge columns", ACI Struct. J., 105(3), 270-279.
  8. Che, Y., Zheng, X.F., Wang, J.J. and Song, Y.P. (2012), "Size effect on flexural behavior of reinforced high-strength concrete beams subjected to monotonic loading", J. Build. Struct., 33(6), 96-102. (in Chinese)
  9. Chen, Z.H., Zhu, B.L. and Niu, H. (1984), "Nonlinear analysis of R.C. biaxial flexural-compression members", China Civ. Eng. J., 17(4), 67-78. (in Chinese)
  10. CMC. (2010), Code for Design of Concrete Structures (GB 50010-2010), China Ministry of Construction: Beijing, 19-20. (in Chinese)
  11. Gao, Z.S. and Pang, T.H. (1987), "Ductility and plastic hinge of the reinforced concrete frames", J. Nanjing Inst. Technol., 17(1), 106-117. (in Chinese)
  12. Han, Q., Zhou, Y.L., Du, X.L., Huang, C., George and Lee, C. (2014), "Experimental and numerical studies on seismic performance of hollow RC bridge columns", Earthq. Struct., 3(7), 251-269.
  13. Inel, M. and Ozmen, H.B. (2006), "Effects of plastic hinge properties in nonlinear analysis of reinforced concrete buildings", Eng. Struct., 28(11), 1494-1502. https://doi.org/10.1016/j.engstruct.2006.01.017
  14. Kim, J.K. and Yi, S.T. (2002), "Application of size effect to compressive strength of concrete members", Academy Proc. Eng. Sci., 27(4), 467-484.
  15. Li, G.Q. (2010), "Experimental study and numerical analysis on seismic performance of reinforced concrete bridge columns", Ph.D. Dissertation, Chongqing Jiaotong University, China. (in Chinese)
  16. Mander, J.B., Priestley, M.J.N. and Park, R. (1988), "Theoretical stress-strain model for confined concrete", J. Struct. Eng., 114(8), 1804-1826. https://doi.org/10.1061/(ASCE)0733-9445(1988)114:8(1804)
  17. Mendis, P. (2001), "Plastic hinge lengths of normal and high-strength concrete in flexure", Adv. Struct. Eng., 4(4), 189-195. https://doi.org/10.1260/136943301320896651
  18. Mortezaei, A. (2013), "Plastic hinge length of RC columns considering soil-structure interaction", Earthq. Struct., 6(5), 679-702.
  19. Ou, Y.C., Kurniawan, R.A., Kurniawan, D.P. and Nguyen, N.D. (2012), "plastic hinge length of circular reinforced concrete columns", Comput. Concrete, 10(6), 663-681. https://doi.org/10.12989/cac.2012.10.6.663
  20. Park, R., Priestley, M.J.N. and Gill, W.D. (1982), "Ductility of square-confined concrete columns", J. Struct. Div., 108(ST4), 929-950.
  21. Paulay, T. and Priestley, M.J.N. (1992), Seismic Design of Reinforced Concrete and Masonry Buildings, Wiley-Interscience, New York, USA.
  22. Priestley, M.J.N. and Park, R. (1987), "Strength and ductility of concrete bridge columns under seismic loading", ACI Struct. J., 84(1), 61-76.
  23. Sakai, J. and Hoshikuma, S. (2014), "Evaluation of plastic hinge length of reinforced concrete bridge columns based on buckling behavior of longitudinal reinforcement", Symposium Constr. Eng., 60A, 782-795.
  24. Scott, M.H. and Fenves, G.L. (2006), "Plastic hinge integration methods for force-based beam-column elements", J. Struct. Eng., 132(2), 244-252. https://doi.org/10.1061/(ASCE)0733-9445(2006)132:2(244)
  25. Sheikh, S.A. and Khoury, S.S. (1993), "Confined concrete columns with stubs", ACI Struct. J., 90(4), 414-431.
  26. Shen, J.M. and Weng, Y.J. (1980), "The deformation and ductility of the reinforced concrete members", J. Build. Struct., 1(2), 47-58. (in Chinese)
  27. Sun, Z.G., Wang, D.S., Guo, X. and Li, X.L. (2011), "Research on equivalent plastic hinge length of reinforced concrete bridge column", China J. Highway Trans., 24(5), 56-64. (in Chinese)
  28. Wang, F.M., Zeng, J.M. and Duan, L. (1989), "An experimental study of plastic hinge for reinforced concrete members with flexure and axial force", J. Taiyuan Univ. Technol., 20(4), 21-30. (in Chinese)
  29. Watson, S. and Park, R. (1994), "Simulated seismic load tests on reinforced concrete columns", J. Struct. Eng., 120(6), 1825-1849. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:6(1825)
  30. Yang, K., Shi, Q.X. and Zhao, J.H. (2013), "Plastic hinge length of high-strength concrete columns confined by high-strength stirrups", Eng. Mech., 30(2), 254-259. (in Chinese)
  31. Zahn, F.A. (1985), "Design of reinforced concrete bridge columns for strength and ductility", Ph.D. Dissertation, University of Canterbury, Christchurch.

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