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Comparison of the dynamic responses of $G\ddot{u}lburnu$ Highway Bridge using single and triple concave friction pendulums

  • Received : 2014.03.13
  • Accepted : 2014.06.09
  • Published : 2014.10.30

Abstract

The main object of this study is to determine and compare the structural behavior of base isolated long span highway bridge, $G\ddot{u}lburnu$ Highway Bridge, using single concave friction pendulum (SCFP) and triple concave friction pendulum (TCFP). The bridge is seismically isolated in the design phase to increase the main period and reduce the horizontal forces with moments using SCFP bearings. In the content of the paper, firstly three dimensional finite element model (FEM) of the bridge is constituted using project drawings by SAP2000 software. The dynamic characteristics such as natural frequencies and periods, and the structural response such as displacements, axial forces, shear forces and torsional moments are attained from the modal and dynamic analyses. After, FEM of the bridge is updated using TCFP and the analyses are performed. At the end of the study, the dynamic characteristics and internal forces are compared with each other to extract the TCFP effect. To emphasize the base isolation effect, the non-isolated structural analysis results are added to graphics. The predominant frequencies of bridge non-isolated, isolated with SCFP and isolated with TCFP conditions decreased from 0.849Hz to 0.497Hz and 0.338Hz, respectively. The maximum vertical displacements are obtained as 57cm, 54cm and 44cm for non-isolated, isolated with SCFP and isolated with TCFP conditions, respectively. The maximum vertical displacement reduction between isolated with TCFP bearing and isolated with SCFP bearing bridge is %23. Maximum axial forces are obtained as 60619kN, 18728kN and 7382kN, maximum shear forces are obtained as 23408kN, 17913kN and 16249kN and maximum torsional moments are obtained as 24020kNm, 7619kNm and 3840kNm for non-isolated, isolated with SCFP and isolated with TCFP conditions, respectively.

Keywords

References

  1. Altunisik, A.C., Bayraktar, A., Sevim, B. and Ates, S. (2011), "Ambient vibration based seismic evaluation of isolated gulburnu highway bridge", Soil Dyn. Earthq. Eng., 31(11), 1496-1510. https://doi.org/10.1016/j.soildyn.2011.05.020
  2. Ates, S. and Constantinou, M. (2011), "Example of application of response spectrum analysis for seismically isolated curved bridges including soil-foundation effects", Soil Dyn. Earthq. Eng., 31(4), 648-661. https://doi.org/10.1016/j.soildyn.2010.12.002
  3. Ates, S. and Yurdakul, M. (2011), "Site-response effects on rc buildings isolated by triple concave friction pendulum bearings", Comput. Concr., 8 (6), 693-715. https://doi.org/10.12989/cac.2011.8.6.693
  4. Brownjohn, J.M.W., Magalhaes, F., Caetano, E. and Cunha, A. (2010), "Ambient vibration re-testing and operational modal analysis of the humber bridge", Eng. Struct.s, 32(8), 2003-2018. https://doi.org/10.1016/j.engstruct.2010.02.034
  5. Computers and Structures Inc. (2007), SAP2000: Static and Dynamic Finite Element Analysis of Structures, Berkeley, CA, USA.
  6. Dicleli, M. and Mansour, M.Y. (2003), "Seismic retrofitting of highway bridges in illinois using friction pendulum seismic isolation bearings and modelling procedures", Eng. Struct., 25(9), 1139-1156. https://doi.org/10.1016/S0141-0296(03)00062-2
  7. Dicleli, M., Albhaisi, S. and Mansour, M.Y. (2005), "Static soil-structure interaction effects in seismicisolated bridges", practice periodical on structural design and construction, ASCE, 10 (1), 22-33.
  8. Fenz, D.M. and Constantinou, M.C. (2008a), "Spherical sliding isolation bearings with adaptive behavior: theory", Earthquake Engineering and Structural Dynamics, 37(2), 163-183. https://doi.org/10.1002/eqe.751
  9. Fenz, D.M. and Constantinou, M.C. (2006), "Behavior of the double concave friction pendulum bearing", Earthq. Eng. Struct. Dyn., 35(11), 1403-1424. https://doi.org/10.1002/eqe.589
  10. Fenz, D.M. and Constantinou, M.C. (2008b), "Modeling triple friction pendulum bearings for response history analysis", Earthq. Spectra, 24(4), 1011-1028 https://doi.org/10.1193/1.2982531
  11. Fenz, D.M. (2008), "Development, implementation verification of dynamic analysis models of multishperical sliding bearings", Ph.D. Dissertation, State University of New York at Buffalo, New York.
  12. Hamidi, M., Naggar, M.H.E., Vafai, A. and Ahmadi, G. (2003), "Seismic isolation of buildings with sliding concave foundation (SCF)", Earthq. Eng. Struct. Dyn., 32(1), 15-29. https://doi.org/10.1002/eqe.210
  13. Hyakuda, T., Saito, K., Matsushita, T., Tanaka, N., Yoneki, S., Yasuda, M., Miyazaki, M., Suzuki, A. and Sawada, T. (2001), "The structural design and earthquake observation of a seismic isolation building using friction pendulum system", In: Proceedings of the 7th international seminar on seismic isolation, passive energy dissipation and active control of vibrations of structures, Assisi, Italy, October.
  14. Jangid, R.S. (2004), "Seismic response of isolated bridges", J. Bridge Eng., 9 (2), 156-166. https://doi.org/10.1061/(ASCE)1084-0702(2004)9:2(156)
  15. Kelly, J.M. (1997), "Earthquake resistant design with rubber", Berlin, Heidelberg, NY: Springer-Verlag.
  16. Tsopelas, P. and Constantinou, M.C. (1996), "Experimental study of fps system in bridge seismic isolation", Earhq. Eng. Struct. Dyn., 25(1), 65-78. https://doi.org/10.1002/(SICI)1096-9845(199601)25:1<65::AID-EQE536>3.0.CO;2-A
  17. Madhekar, S.N. and Jangid, R.S. (2010), "Seismic performance of benchmark highway bridge with variable friction pendulum system", Adv. Struct. Eng., 13 (4), 561-589. https://doi.org/10.1260/1369-4332.13.4.561
  18. Marin-Artieda, C.C. and Whittaker, A.S. (2010), "Theoretical studies of the XY-FP seismic isolation bearing for bridges", J. Bridge Eng., 15(6) 631-638. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000103
  19. PEER: Pacific Earthquake Engineering Research Centre. http://peer.berkeley.edu/smcat/data/ath/SFERN/PCD.AT2; 2012
  20. Rahman Bhuiyan, A. and Shahria Alam, M. (2013), "Seismic performance assessment of highway bridges equipped with superelastic shape memory alloy-bassed laminated rubber isolation bearing", Eng. Struct., 49, 396-407. https://doi.org/10.1016/j.engstruct.2012.11.022
  21. Soni, D.P., Mistry, B.B., Jangid, R.S. and Panchal, V.R. (2011), "Seismic response of double variable frequency pendulum isolator", Struct. Control Health Monit., 18(4) 450-470.
  22. Yurdakul, M. and Ates, S. (2011), "Modeling of triple concave friction pendulum bearings for seismic isolation of buildings", Struct. Eng. Mech., 40 (3), 315-334. https://doi.org/10.12989/sem.2011.40.3.315
  23. Yuksel Project. (2007), "Gulburnu bridge-detailed design".

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