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Seismic behaviour of repaired superelastic shape memory alloy reinforced concrete beam-column joint

  • Nehdi, Moncef (Department of Civil and Environmental Engineering, The University of Western Ontario) ;
  • Alam, M. Shahria (School of Engineering, The University of British Columbia) ;
  • Youssef, Maged A. (Department of Civil and Environmental Engineering, The University of Western Ontario)
  • Received : 2009.10.07
  • Accepted : 2010.12.13
  • Published : 2011.05.25

Abstract

Large-scale earthquakes pose serious threats to infrastructure causing substantial damage and large residual deformations. Superelastic (SE) Shape-Memory-Alloys (SMAs) are unique alloys with the ability to undergo large deformations, but can recover its original shape upon stress removal. The purpose of this research is to exploit this characteristic of SMAs such that concrete Beam-Column Joints (BCJs) reinforced with SMA bars at the plastic hinge region experience reduced residual deformation at the end of earthquakes. Another objective is to evaluate the seismic performance of SMA Reinforced Concrete BCJs repaired with flowable Structural-Repair-Concrete (SRC). A $\frac{3}{4}$-scale BCJ reinforced with SMA rebars in the plastic-hinge zone was tested under reversed cyclic loading, and subsequently repaired and retested. The joint was selected from an RC building located in the seismic region of western Canada. It was designed and detailed according to the NBCC 2005 and CSA A23.3-04 recommendations. The behaviour under reversed cyclic loading of the original and repaired joints, their load-storey drift, and energy dissipation ability were compared. The results demonstrate that SMA-RC BCJs are able to recover nearly all of their post-yield deformation, requiring a minimum amount of repair, even after a large earthquake, proving to be smart structural elements. It was also shown that the use of SRC to repair damaged BCJs can restore its full capacity.

Keywords

References

  1. Alam, M.S., Youssef, M.A. and Nehdi, M. (2008), "Analytical prediction of the seismic behaviour of superelastic shape memory alloy reinforced concrete elements", Eng. Struct., Elsevier, 30(12), 3399-3411. https://doi.org/10.1016/j.engstruct.2008.05.025
  2. Alam, M.S., Youssef, M.A. and Nehdi, M. (2007a), "Utilizing shape memory alloys to enhance the performance and safety of civil infrastructure: a review", Can. J. Civil Eng., 34(9), 1075-1086. https://doi.org/10.1139/l07-038
  3. Alam, M.S., Nehdi, M. and Youssef, M.A. (2007b), "Shape memory alloy-based smart RC bridge: overview of state-of-the-art", Smart Struct. Syst., 4(3), 367-389.
  4. Alam, M.S., Youssef, M.A. and Nehdi, M. (2007c), "Seismic behaviour of concrete beam-column joints reinforced with superelastic shape memory alloys", Proceedings of the 9th Canadian Conference on Earthquake Engineering, Canada, June.
  5. Alam, M.S., Nehdi, M. and Youssef, M.A. (2007d), "applications of shape memory alloys in earthquake engineering", Proceedings of the 9th Canadian Conference on Earthquake Engineering, Canada, June.
  6. Alam, M.S., Youssef, M.A. and Nehdi, M. (2005), "Shape memory alloys as a new construction material", Proceedings of the Cansmart 2005 - the 8th International Workshop on Smart Materials and Structures, Toronto, Canada, October.
  7. Barsplice Products Inc., 2006, "Zap screwlok (R) mechanical splices and connectors for reinforcing bars - review", accessed on April 08, 2006, available at: http://www.barsplice.com/BPI_Scans/Zap_Data-Sheet_ RevA.pdf.
  8. CSA A23.3-04, 2004, Design of Concrete Structures, Canadian Standards Association, Rexdale, ON, Canada.
  9. Elnashai, A.S. and Broderick, B.M. (1994), "Seismic resistance of composite beam-columns in multi-storey structures. Part 1: experimental studies", J. Const. Steel Res., 30(3), 201-229. https://doi.org/10.1016/0143-974X(94)90001-9
  10. Elnashai, A.S., Papanikolaou, V. and Lee, D.H. (2008), ZEUS-NL Version 1.8.1, User Manual, Mid-America EarthquakeCenter (MAE) Report.
  11. Engindeniz, M., Kahn, L.F. and Zureick, A.H. (2005), "Repair and strengthening of reinforced concrete beam-column joints: state of the art", ACI Struct. J., 102(2), 1-14.
  12. Hall, P.C. (2003), "Laser welding nitinol to stainless steel", Proceedings of the International Conference on Shape Memory and Superelastic Technologies, California.
  13. 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)
  14. NBCC 2005, National Building Code of Canada, 2005, National Research Council, Canada.
  15. Park, R. and Paulay, T. (1975), Reinforced Concrete Structures, John Wiley & Sons Inc, New York, 769p.
  16. Paulay, T. and Priestley, M.N.J. (1992), Seismic Design of Reinforced Concrete and Masonry Buildings, John Wiley & Sons, Inc., New York.
  17. Parra-Montesinos, G.J., Peterfreund, S.W. and Chao, S.H. (2005), "Highly damage-tolerant beam-column joints through use of high-performance fiber-reinforced cement composites", ACI Struct. J., 102(3), 487-495.
  18. Saatcioglu, M., Mitchell, D., Tinawi, R., Gardner, N.J., Gillies, A.G., Ghobarah, A., Anderson, D.L. and Lau, D. (2001), "The August 17, 1999, Kocaeli (Turkey) earthquake-damage to structures", Can. J.Civil Eng., 28(4), 715-737.
  19. Said, A.M. (2009), "Damage characterization of beam-column joints reinforced with GFRP under reversed cyclic loading", Smart Struct.Syst., 5(4), 443-455. https://doi.org/10.12989/sss.2009.5.4.443
  20. Saiidi, M.S. and Wang, H. (2006), "Exploratory study of seismic response of concrete columns with shape memory alloy reinforcement", ACI Struct. J., 103(3), 436-443.
  21. Wilson, J.C. and Wesolowsky, M.J. (2005), "Shape memory alloys for seismic response modification: a state-of-the-art review", Earthq. Spectra, 21(2), 569-601. https://doi.org/10.1193/1.1897384
  22. Youssef, M.A., Alam, M.S. and Nehdi, M. (2008), "Experimental investigation on the seismic behaviour of beam-column joints reinforced with superelastic shape memory alloys", J. Earthq. Eng., 12(7), 1205-1222. https://doi.org/10.1080/13632460802003082
  23. Uma, S.R. and Jain, S.K. (2006), "Seismic design of beam-column joints in RC moment resisting frames - Review of codes", Struct. Eng. Mech., 23(5), 579-597. https://doi.org/10.12989/sem.2006.23.5.579

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