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Numerical comparison of the seismic performance of steel rings in off-centre bracing system and diagonal bracing system

  • Received : 2014.04.24
  • Accepted : 2015.03.20
  • Published : 2015.10.25

Abstract

During a seismic event, a considerable amount of energy is input into a structure. The law of energy conservation imposes the restriction that energy must either be absorbed or dissipated by the structure. Recent earthquakes have shown that the use of concentric bracing system with their low ductility and low energy dissipation capacity, causes permanent damage to structures during intense earthquakes. Hence, engineers are looking at bracing system with higher ductility, such as chevron and eccentric braces. However, braced frame would not be easily repaired if serious damage has occured during a strong earthquake. In order to solve this problem, a new bracing system an off-centre bracing system with higher ductility and higher energy dissipation capacity, is considered. In this paper, some numerical studies have been performed using ANSYS software on a frame with off-centre bracing system with optimum eccentricity and circular element created, called OBS_C_O model. In addition, other steel frame with diagonal bracing system and the same circular element is created, called DBS_C model. Furthermore, linear and nonlinear behavior of these steel frames are compared in order to introduce a new way of optimum performance for these dissipating elements. The obtained results revealed that using a ductile element or circular dissipater for increasing the ductility of off-centre bracing system and centric bracing system is useful. Finally, higher ductility and more energy dissipation led to more appropriate behavior in the OBS_C_O model compared to DBS_C model.

Keywords

Acknowledgement

Supported by : Semnan University

References

  1. Abbasnia, R., Vetr, M.G.H., Ahmadi, R. and Kafi, M.A. (2008), "Experimental and analytical investigation on the steel ring ductility", Sharif J. Sci. Technol., 52, 41-48.
  2. Amadio, C., Clemente, I., Macorini, L. and Fragiacomo, M. (2008), "Seismic behaviour of hybrid systems made of PR composite frames coupled with dissipative bracings", Earthq. Eng. Struct. Dyn., 37(6), 861-879. https://doi.org/10.1002/eqe.790
  3. American Institute of Steel Construction (AISC) (2005), Specification for structural steel buildings, Chicago, IL, USA.
  4. Andalib, Z., Kafi, M.A. and Bazzaz, M. (2010), "Using hyper elastic material for increasing ductility of bracing", Proceedings of the 1st Conference of Steel & Structures and 2nd Conference on Application of High-Strength Steels in Structural Industry, Tehran, Iran, December.
  5. Andalib, Z., Kafi, M.A., Kheyroddin, A. and Bazzaz, M. (2014), "Experimental investigation of the ductility and performance of steel rings constructed from plates", J. Construct. Steel Res., 103, 77-88. https://doi.org/10.1016/j.jcsr.2014.07.016
  6. Annan, C.D., Youssef, M.A. and El Naggar, M.H. (2009), "Experimental evaluation of the seismic performance of modular steel-braced frames", J. Eng. Struct., 31(7), 1435-1446. https://doi.org/10.1016/j.engstruct.2009.02.024
  7. Applied Technology Council (ATC-24) (1996), Guidelines for cyclic seismic testing of components of steel structures; ATC, Redwood City, CA, USA.
  8. Bazzaz, M., Kheyroddin, A., Kafi, M.A. and Andalib, Z. (2011), "Evaluating the performance of steel ring in special bracing frame", Proceedings of the 6th International Conference of Seismology and Earthquake Engineering, Tehran, Iran, May.
  9. Bazzaz, M., Kheyroddin, A., Kafi, M.A. and Andalib, Z. (2012), "Evaluation of the seismic performance of off-centre bracing system with ductile element in steel frames", Steel Compos. Struct., Int. J., 12(5), 445-464. https://doi.org/10.12989/scs.2012.12.5.445
  10. Bazzaz, M., Kheyroddin, A., Kafi, M.A., Andalib, Z. and Esmaeili, H. (2014), "Evaluating the seismic performance of off-centre bracing system with circular element in optimum place", Int. J. Steel Struct., 14(2), 293-304. https://doi.org/10.1007/s13296-014-2009-x
  11. Bazzaz, M., Andalib, Z., Kafi, M.A. and Kheyroddin, A. (2015), "Evaluating the performance of OBS-C-O in steel frames under monotonic load", Earthq. Struct., Int. J., 8(3), 697-710.
  12. Federal Emergency Management Agency (FEMA) (2000), "Prestandard and commentary for the seismic rehabilitation of buildings", Report No. FEMA 356; Washington, USA.
  13. Hsu, H.L., Juang, J.L. and Chou, C.H. (2011), "Experimental evaluation on the seismic performance of steel knee braced frame structures with energy dissipation mechanism", Steel Compos. Struct., Int. J., 11(1), 77-91. https://doi.org/10.12989/scs.2011.11.1.077
  14. Lotfollahi, M. and Mofid, M. (2008), "Innovative method in seismic design of slab-on-girder steel bridges", J. Construct. Steel Res., 64(12), 1420-1435. https://doi.org/10.1016/j.jcsr.2008.01.017
  15. Majidzamani, S., Vafaei, A., Aghakouchak, A.A. and Desai, C. (2011), "Experimental investigation of steel frames braced with symmetrical pairs of y-shaped concentric bracings", J. Steel Struct., 11(2), 117-131. https://doi.org/10.1007/s13296-011-2002-6
  16. Majidzamani, S. and Rasouli, M. (2006), "Experimental investigation of behavior of y-shaped concentric steel bracing", Asian J. Civil Eng. (Building and Housing), 7(1), 81-94.
  17. Marshall, J.D. and Charney, F.A. (2010a), "A hybrid passive control device for steel structures, I: Development and analysis", J. Construct. Steel Res., 66(10), 1278-1286. https://doi.org/10.1016/j.jcsr.2010.04.005
  18. Marshall, J.D. and Charney, F.A. (2010b), "A hybrid passive control device for steel structures, II: Physical testing", J. Construct. Steel Res., 66(10), 1287-1294. https://doi.org/10.1016/j.jcsr.2010.04.002
  19. Moghaddam, H. and Estekanchi, H. (1995), "On the characteristics of off-centre bracing system", J. Construct. Steel Res., 35(3), 361-376. https://doi.org/10.1016/0143-974X(94)00050-R
  20. Moghaddam, H. and Estekanchi, H. (1999), "Seismic behavior of off-centre bracing systems", J. Construct. Steel Res., 51(2), 177-196. https://doi.org/10.1016/S0143-974X(99)00007-3
  21. Murthy, A.N.C.K. (2005), "Application of visco-hyperelastic devices in structural response control", The degree of Master of Science; Civil Engineering Department, Blacksburg Polytechnic Institute, Virginia Polytechnic Institute and State University, Blacksburg, VA, USA.
  22. Roark, R.J. (1990), Formulas for Stress and Strain, McGraw-Hill Book Company.
  23. Singh, M.P. and Moreschi, L.M. (2002), "Optimal placement of dampers for passive response control", Earthquake Engineering and Structural Dynamics, 31(4), 955-976. https://doi.org/10.1002/eqe.132
  24. Uang, C.-M. and Bertero, V.V. (1988), "Use of energy as a design criterion in earthquake-resistant design", Technical Report UCB/EERC-88/18; University of California, Berkeley, CA, USA.
  25. Whittaker, A.S., Bertero, V.V., Thompson, C.L. and Alonso, L.J. (1991), "Seismic testing of steel plate energy dissipation devices", Earthquake Spectra, 7(4), 563-604. https://doi.org/10.1193/1.1585644

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