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Comparison of displacement capacity of reinforced concrete columns with seismic codes

  • Cansiz, Sinan (Department of Construction Technology, Istanbul Aydin University) ;
  • Aydemir, Cem (Department of Civil Engineering, Istanbul Aydin University) ;
  • Arslan, Guray (Department of Civil Engineering, Yildiz Technical University)
  • 투고 : 2018.04.18
  • 심사 : 2019.10.11
  • 발행 : 2019.12.25

초록

The lateral displacement or drift may be the cause of the damage in the reinforced concrete (RC) columns under the seismic load. In many regulations, lateral displacement was limited according to the properties of columns. The design displacement limits may be represented indirectly through the material strain limits and the mechanical properties of columns. EUROCODE-8 and FEMA356 calculate displacement limits by taking into account the mechanical properties of columns. However, Turkey Building Earthquake Code (TBEC) determine displacement limits by taking into account the material strain limits. The aim of this study is to assess the seismic design codes for RC columns through an experimental study. The estimates of seismic design codes have been compared with the experimental results. It is observed that the lateral displacement capacities of columns estimated according to some seismic codes are not in agreement with the experimental results. Also, it is observed that TBEC is conservative in the context of the performance indicator of RC columns, compared to EUROCODE-8 and FEMA356. Moreover, in this study, plastic hinge length and effective stiffness of test elements were investigated.

키워드

과제정보

연구 과제 주관 기관 : Yildiz Technical University, Istanbul Aydin University

참고문헌

  1. Abadi, H., Paton-Cole, V., Patel, V. and Thai, H. (2019), "Axial strength and elastic stiffness behaviour of partially confined concrete columns", Constr. Build. Mater., 196, 727-741. https://doi.org/10.1016/j.conbuildmat.2018.11.104
  2. Abdullah, S. and Wallace, J. (2019), "Drift capacity of RC structural walls with special boundary elements", ACI Struct. J., 116(1), 183.
  3. ACI 318 (2011), Building Code Requirements for Structural Concrete and Commentary, American Concrete Institute, Farmington Hills, MI, USA.
  4. Arslan, G., Hacisalihoglu, M., Balci, M. and Borekci, M. (2013), "An investigation on seismic design indicators of RC columns using finite element analyses", Int. J. Civil Eng., 12(2), 237-243.
  5. Aschheim, M. (2002), "Seismic design based on the yield displacement", Earthq. Spectra, 18(4), 581-600. https://doi.org/10.1193/1.1516754
  6. Au, F. and Bai, Z. (2006), "Effect of axial load on flexural behaviour of cyclically loaded RC columns", Comput. Concrete, 3(4), 261-284. https://doi.org/10.12989/cac.2006.3.4.261
  7. Bae, S., Mieses, A. and Bayrak, O. (2005), "Inelastic buckling of reinforcing bars", J. Struct. Eng., 131(2), 314-321. https://doi.org/10.1061/(asce)0733-9445(2005)131:2(314)
  8. Bae, S. and Bayrak, O. (2008), "Plastic hinge length of reinforced concrete columns", ACI Struct. J., 105(3), 290-300.
  9. Behnam, B. and Shojaei, F. (2018), "A risk index for mitigating earthquake damage in urban structures", Integrating Disaster Science and Management, Elsevier.
  10. Berry, M. and Eberhard, M. (2005), "Practical performance model for bar buckling", J. Struct. Eng., 131(7), 1060-1070. https://doi.org/10.1061/(asce)0733-9445(2005)131:7(1060)
  11. Bhosale, A., Davis, R. and Sarkar, P. (2017), "Vertical irregularity of buildings: Regularity index versus seismic risk", ASCE-ASME J. Risk Uncert. Eng. Syst. Part A: Civil Eng., 3(3), 04017001. https://doi.org/10.1061/ajrua6.0000900
  12. Brachmann, I., Browning, J. and Matamoros, A. (2004), "Drift dependent confinement requirements for reinforced concrete columns under cyclic loading", ACI Struct. J., 5(101), 669-677.
  13. Cao, V., Ronagh, H. and Baji, H. (2014), "Seismic risk assessment of deficient reinforced concrete frames in near-fault regions", Adv. Concrete Constr., 2(4), 261-280. https://doi.org/10.12989/acc.2014.2.4.261
  14. Cansiz, S., Aydemir, C. and Arslan, G. (2019), "A new damage index model dependent displacement ductility for reinforced concrete columns", Struct. Eng. Mech. (under Review).
  15. Cansiz, S., Aydemir, C. and Arslan, G. (2019), "A new damage index for reinforced concrete columns", Earthq. Struct. (under Review).
  16. Cao, V. and Ronagh, H. (2013), "A model for damage analysis of concrete", Adv. Concrete Constr., 1(2), 187-200. https://doi.org/10.12989/acc.2013.01.2.187
  17. CEN (2003), Eurocode 8: Design of Structures for Earthquake Resistance-Part 3, Comite Europeen de Normalisation, Brussels.
  18. Elwood, K. and Moehle, J. (2005), "Drift capacity of reinforced concrete columns with light transverse reinforcement", Earthq. Spectra, 21(1), 71-89. https://doi.org/10.1193/1.1849774
  19. FEMA-356 (2000), "Prestandard and commentary for the seismic rehabilitation of buildings", Report No. FEMA-356, Federal Emergency Management Agency, Washington, D.C.
  20. Gharehbaghi, S., Moustafa, A. and Salajegheh, E. (2016), "Optimum seismic design of reinforced concrete frame structures", Comput. Concrete, 17(6), 761-786. https://doi.org/10.12989/cac.2016.17.6.761
  21. Kang, J. and Lee, J. (2016), "A new damage index for seismic fragility analysis of reinforced concrete columns", Struct. Eng. Mech., 60(5), 875-890. https://doi.org/10.12989/sem.2016.60.5.875
  22. Lehman, D.E. and Moehle, J.P. (2000), "Seismic performance of well-confined concrete bridge columns", PEER-1998/01. Pacific Earthquake Engineering Research Center, University of California, Berkeley.
  23. Mander, J.B., Priestley, M.J.N. and Park, R. (1988), "Theoretical stress-strain model for confined concrete", J. Struct. Eng., ASCE, 114(8), 1804-1826. https://doi.org/10.1061/(ASCE)0733-9445(1988)114:8(1804)
  24. Nishitani, A., Matsui, C., Hara, Y., Xiang, P., Nitta, Y., Hatada, T., Katamura, R., Matsuya, I. and Tanii, T. (2015), "Drift displacement data based estimation of cumulative plastic deformation ratios for buildings", Smart Struct. Syst., 15(3), 881-896. https://doi.org/10.12989/sss.2015.15.3.881
  25. NZSEE (2017), The Seismic Assessment of Existing Buildings. Technical Guidelines for Engineering Assessments. Part C - Detailed Seismic Assessment. Section C5 - Concrete Buildings, New Zealand Society for Earthquake Engineering.
  26. Panagiotakos, T.B. and Fardis, M.N. (2001), "Deformation of reinforced concrete members at yielding and ultimate", ACI Struct. J., 98(2), 135-148.
  27. Park, R. and Paulay, T. (1975), Reinforced Concrete Structures, John Wiley and Sons, New York.
  28. Paulay, T. and Priestley, M.J.N. (1992), Seismic Design of Reinforced Concrete and Masonry Buildings, John Wiley and Sons, New York.
  29. 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.
  30. Priestley, MJN. and Kowalsky, MJ. (1998), "Aspects of drift and ductility capacity of cantilever structural walls", Bull. NZ Nat. Soc. Earthq. Eng., 2(31), 73-85.
  31. Priestley, M.J.N., Calvi, G.M. and Kowalsky, M.J. (2007), Displacement-Based Seismic Design of Structures, IUSS Press, Foundazione EUCENTRE, Pavia.
  32. Pujol, S., Sozen, M.A. and Ramirez, J.A. (2006), "Displacement history effects on drift capacity of reinforced concrete columns", ACI Struct. J., 103(2), 253-262.
  33. Puranam, A., Wang, Y. and Pujol, S. (2018), "Estimating drift capacity of reinforced concrete structural walls", ACI Struct. J., 115(6), 1563-1574.
  34. Sezen, H. (2008), "Shear deformation model for reinforced concrete columns", Struct. Eng. Mech., 28(1), 39-52. https://doi.org/10.12989/sem.2008.28.1.039
  35. Shojaei, F. and Behnam, B. (2017), "Seismic vulnerability assessment of low-rise irregular reinforced concrete structures using cumulative damage index", Adv. Concrete Constr., 5(4), 407-422. https://doi.org/10.12989/acc.2017.5.4.407
  36. TBEC (2018), Turkey Building Earthquake Code, Specifications for Structures to be Built in Disaster Areas, Ankara.
  37. Wibowo, A., Wilson, J., Lam, N. and Gad, E. (2014), "Drift capacity of lightly reinforced concrete columns", Aust. J. Struct. Eng., 15(2), 131-150.
  38. Zhou, X., Tu, X., Chen, A. and Wang, Y. (2019), "Numerical simulation approach for structural capacity of corroded reinforced concrete bridge", Adv. Concrete Constr., 7(1), 11-22. https://doi.org/10.12989/ACC.2019.7.1.011

피인용 문헌

  1. SSI effects on the redistribution of seismic forces in one-storey R/C buildings vol.20, pp.3, 2021, https://doi.org/10.12989/eas.2021.20.3.261