DOI QR코드

DOI QR Code

Behavior of exterior concrete beam-column joints reinforced with Shape Memory Alloy (SMA) bars

  • Azariani, Hossein Rezaee (Department of Civil Engineering, Ferdowsi University of Mashhad) ;
  • Esfahani, M. Reza (Department of Civil Engineering, Ferdowsi University of Mashhad) ;
  • Shariatmadar, Hashem (Department of Civil Engineering, Ferdowsi University of Mashhad)
  • Received : 2018.02.18
  • Accepted : 2018.04.24
  • Published : 2018.07.10

Abstract

This research was conducted to study the behavior of exterior concrete beam-column joints with reinforced shape memory alloy (SMA) bars tested under cyclic loading. These bars benefit from superelastic behavior and can stand high loads without residual strains. The experimental part of the study, 8 specimens of exterior concrete beam-column joints were made and tested. Two different types of concrete with 30 and 45 MPa were used. Four specimens contained SMA bars and 4 specimens contained steel bars in beam-column joints. Furthermore, different transverse reinforcements were used in beams investigate the effects of concrete confinement. Specimens were tested under cyclic loading. Results show that SMA bars are capable of recentering to their original shape after standing large displacements. Due to the superelastic behavior of SMA bars, cracks at the joint core vanish under cyclic loading. As the cyclic loading increased, bending failure occurred in the beam outside the joint core. In the analytical parts of the study, specimens were simulated using the SeismoStruct software. Experimental and analytical results showed a satisfactory correlation. Plastic hinge length at the beam joint for specimens with SMA and steel bars was calculated by empirical equations, experimental and analytical results. It was shown that Paulay's and Priestley's equations are appropriate for concrete beam-column joints in both types of bars.

Keywords

References

  1. Abdel-Fattah, B. and Wight, J.K. (1987), "Study of moving beam plastic hinging zones for earthquake-resistant design of RC buildings", Struct. J., 84(1), 31-39.
  2. ACI Committee (2005), Acceptance criteria for moment frames based on structural testing and commentary (ACI 374.1-05); American Concrete Institute, Farmington Hills, MI, USA.
  3. Alam, M.S., Nehdi, M. and Youssef, M.A. (2007), "Applications of shape memory alloys in earthquake engineering", Proceedings of the 9th Canadian Conference on Earthquake Engineering, Ontario, Canada, June.
  4. Alam, M.S., Youssef, M.A. and Nehdi, M. (2008), "Analytical prediction of the seismic behavior of superelastic shape memory alloy reinforced concrete elements", Eng. Struct., 30(12), 3399-3411. https://doi.org/10.1016/j.engstruct.2008.05.025
  5. Alam, M.S., Youssef, M.A. and Nehdi, M.A. (2009), "Seismic performance of concrete frame structures reinforced with superelastic shape memory alloys", Smart Struct Syst., Int. J., 5(5), 565-585. https://doi.org/10.12989/sss.2009.5.5.565
  6. Alam, M.S., Moni, M. and Tesfamariam, S. (2012), "Seismic overstrength and ductility of concrete buildings reinforced with superelastic shape memory alloy rebar", Eng. Struct., 34, 8-20. https://doi.org/10.1016/j.engstruct.2011.08.030
  7. Alameddine, F. and Ehsani, M.R. (1991), "High-Strength RC connections subjected to inelastic cyclic loading", J. Struct. Eng., 117(3), 829-850. https://doi.org/10.1061/(ASCE)0733-9445(1991)117:3(829)
  8. Auricchio, F. and Sacco, E. (1997), "A superelastic shapememory-alloy beam model", J. Intel. Mater. Syst. Struct., 8(6), 489-501. https://doi.org/10.1177/1045389X9700800602
  9. Barbhuiya, S. and Choudhury, A.M. (2015), "A study on the size effect of RC beam-column connections under cyclic loading", Eng. Struct., 95, 1-7. https://doi.org/10.1016/j.engstruct.2015.03.052
  10. Chang, L.C. and Read, T.A. (1951), "Plastic deformation and diffusionless phase changes in metals-the gold-cadmium beta phase", JOM, 3(1), 47-52. https://doi.org/10.1007/BF03398954
  11. Corley, W. (1966), "Rotational capacity of reinforced concrete beams", J. Struct. Div., 92(5), 121-126.
  12. Elfeki, M.A. and Youssef, M.A. (2017), "Shape memory alloy reinforced concrete frames vulnerable to strong vertical excitations", J. Build. Eng., 13, 272-290. https://doi.org/10.1016/j.jobe.2017.08.011
  13. Ghobarah, A. and El-Amoury, T. (2005), "Seismic rehabilitation of deficient exterior concrete frame joints", J. Compos. Constr., 9(5), 408-416. https://doi.org/10.1061/(ASCE)1090-0268(2005)9:5(408)
  14. Gholampour, A. and Ozbakkaloglu, T. (2018), "Confinement of normal-and high-strength concrete by Shape Memory Alloy (SMA) Spirals", IOP Conference Series: Materials Science and Engineering, 301(1), 012056. https://doi.org/10.1088/1757-899X/301/1/012056
  15. Hakuto, S., Park, R. and Tanaka, H. (2000), "Seismic load tests on interior and exterior beam-column join with substandard reinforcing details", Struct. J., 97(1), 11-25.
  16. Mander, J.B., Priestley, M.J.N. and Park, R. (1988), "Observed the stress-strain behavior of confined concrete", J. Struct. Eng., 114(8), 1827-1849. https://doi.org/10.1061/(ASCE)0733-9445(1988)114:8(1827)
  17. Mattock, A.H. (1967), "Discussion of rotational capacity of reinforced concrete beams by W. Gene Corley", J. Struct. Div., 93(2), 519-522.
  18. Menegotto, M. and Pinto, P.E. (1973), "Method of analysis for cyclically loaded RC plane frames including changes in geometry and non-elastic behavior of elements under combined normal force and bending", Preliminary Report; IABSE, Zurich, Switzerland.
  19. Mirtaheri, M., Amini, M. and Khorshidi, H. (2017), "Incremental dynamic analyses of concrete buildings reinforced with shape memory alloy", Steel Compos. Struct., Int. J., 23(1), 95-105. https://doi.org/10.12989/scs.2017.23.1.095
  20. Moehle, J., Hooper, J. and Lubke, C. (2008), "NEHRP Seismic Design Technical Brief No. 1-Seismic Design of Reinforced Concrete Special Moment Frames: A Guide for Practicing Engineers", No. Grant/Contract Reports (NISTGCR)-08-917-1; U.S. Department of Commerce.
  21. Murty, C.V.R., Rai, D.C., Bajpai, K.K. and Jain, S.K. (2003), "Effectiveness of reinforcement details in exterior reinforced concrete beam-column joints for earthquake resistance", ACI Struct. J., 100(2), 149-156.
  22. Nehdi, M., Alam, M.S. and Youssef, M.A. (2012), "Seismic behavior of repaired superelastic shape memory alloy reinforced concrete beam-column joint", Smart Struct. Syst., Int. J., 7(5), 329-348.
  23. Olander, A. (1932), "The crystal structure of AuCd", Zeitschrift fur Kristallographie-Crystalline Materials, 83(1-6), 145-148.
  24. Paulay, T. and Priestley, M.N. (1992), Seismic Design of Reinforced Concrete and Masonry Buildings, John Wiley & Sons, Inc., New York, NY, USA.
  25. Sawyer, H.A. (1964), "Design of concrete frames for two failure stages", Special Publication, 12, 405-431.
  26. SeismoStruct Help File (2016), Version 7.0.4., Piazza Castello, Italy. URL: http://www.seismosoft.com
  27. Seo, J., Hu, J.W. and Kim, K.H. (2017), "Analytical investigation of the cyclic behavior of smart recentering t-stub components with superelastic SMA bolts", Metals, 7(10), 386. https://doi.org/10.3390/met7100386
  28. Shiravand, M.R., Nashtaee, M.A. and Veismoradi, S. (2017), "Seismic assessment of concrete buildings reinforced with shape memory alloy materials in different stories", Struct. Des. Tall Special Build., 26(15).
  29. Song, G., Ma, N. and Li, H.N. (2006), "Applications of shape memory alloys in civil structures", Eng. Struct., 28(9), 1266-1274. https://doi.org/10.1016/j.engstruct.2005.12.010
  30. Youssef, M.A. and Elfeki, M.A. (2012), "Seismic performance of concrete frames reinforced with superelastic shape memory alloys", Smart Struct. Syst., Int. J., 9(4), 313-333. https://doi.org/10.12989/sss.2012.9.4.313
  31. Youssef, M.A., Alam, M.S. and Nehdi, M. (2008), "Experimental investigation on the seismic behavior of beam-column joints reinforced with superelastic shape memory alloys", J. Earthq. Eng., 12(7), 1205-1222. https://doi.org/10.1080/13632460802003082
  32. Yu, W. (2006), "Inelastic modeling of reinforcing bars and blind analysis of the benchmark tests on beam column joints under cyclic loading", Ph.D. Dissertation; Rose School-European School for Advanced Studies in Reduction of Seismic Risk, University of Pavia, Italy.

Cited by

  1. Cyclic performance of RC beam-column joints enhanced with superelastic SMA rebars vol.25, pp.4, 2018, https://doi.org/10.12989/cac.2020.25.4.293