DOI QR코드

DOI QR Code

Finite element model updating of in-filled RC frames with low strength concrete using ambient vibration test

  • Arslan, Mehmet Emin (Karadeniz Technical University, Department of Civil Engineering) ;
  • Durmus, Ahmet (Karadeniz Technical University, Department of Civil Engineering)
  • Received : 2012.11.02
  • Accepted : 2013.02.28
  • Published : 2013.07.25

Abstract

This paper describes effects of infill walls on behavior of RC frame with low strength, including numerical modeling, modal testing and finite-element model updating. For this purpose full scaled, one bay and one story RC frame is produced and tested for plane and brick in-filled conditions. Ambient-vibration testis applied to identify dynamic characteristics under natural excitations. Enhanced Frequency Domain Decomposition and Stochastic Subspace Identification methods are used to obtain experimental dynamic characteristics. A numerical modal analysis is performed on the developed two-dimensional finite element model of the frames using SAP2000 software to provide numerical frequencies and mode shapes. Dynamic characteristics obtained by numerical and experimental are compared with each other and finite element model of the frames are updated by changing some uncertain modeling parameters such as material properties and boundary conditions to reduce the differences between the results. At the end of the study, maximum differences in the natural frequencies are reduced on average from 34% to 9% and a good agreement is found between numerical and experimental dynamic characteristics after finite-element model updating. In addition, it is seen material properties are more effective parameters in the finite element model updating of plane frame. However, for brick in-filled frame changes in boundary conditions determine the model updating process.

Keywords

References

  1. Allemang, R.J. (2003), "The modal assurance criterion: twenty years of use and abuse", Sound Vib., 37(8), 14-23.
  2. Altunisik, A.C., Bayraktar, A., Sevim, B. and Ates, S. (2011a), "Ambient vibration based seismic evaluation of isolated Gulburnu highway bridge", Soil Dyn. Earthq. Eng., 31, 1496-1510. https://doi.org/10.1016/j.soildyn.2011.05.020
  3. Altunisik, A.C., Bayraktar, A. and Sevim, B. (2011b), "Output-only system identification of post tensioned segmental concrete highway bridges", J. Bridge Eng. - ASCE, 16(2), 259-266. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000150
  4. Bayraktar, A., Turker, T., Sevim, B. and Altunisik, A.C. (2007), "Determination of dynamic characteristics of Turkish style RC minarets by analytical and experimental modal analyses", Proc., Int. Symp. on Advances in Earthquake and Structural Engineering, Suleyman Demirel Univ., Isparta, Turkey, 185-194.
  5. Bayraktar, A., Altunisik, A.C., Sevim, B. and Turker, T. (2009), "Modal testing, finite-element model updating, and dynamic analysis of an arch type steel footbridge", J. Perform. Constr. Facil. - ASCE, 23(2), 81-89. https://doi.org/10.1061/(ASCE)0887-3828(2009)23:2(81)
  6. Bayraktar, A., Turker, T., Altunisik, A.C., Sevim, B., Sahin, A. and Ozcan, D.M. (2010a), "Determination of dynamic parameters of buildings by operational modal analysis", IMO Tech. J., 5185-5205.
  7. Bayraktar, A., Altunisik, A.C., Birinci, F., Sevim, B. and Turker, T. (2010b), "Finite-element analysis and vibration testing of a two-span masonry arch bridge", J. Perform. Constr. Facil. - ASCE, 24(1),1-7. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000100
  8. Bayraktar, A., Altunisik, A.C., Sevim, B. and Turker, T. (2011), "Seismic response of a historical masonry minaret using a finite element model updated with operational modal testing", J. Vib. Control, 17(1), 129-149. https://doi.org/10.1177/1077546309353288
  9. Beklen, C. (2009), Investigation of infill walls effect in buildings, Master Thesis, Cukurova University, Institute of Natural and Applied Sciences, Adana.
  10. Bendat, J.S. and Piersol, A.G. (2004), Random data: analysis and measurement procedures, John Wiley and Sons, USA.
  11. Brincker, R., Zhang, L. and Andersen, P. (2000), "Modal identification from ambient responses using frequency domain decomposition", 18th Int. Modal Analysis Conf., San Antonio, TX, 625-630.
  12. Cantieni, R. (2004), "Experimental methods used in system identification of civil engineering structures", Proc. 2nd Workshop: Problemi di Vibrazioninelle Strutture Civili e nelle Costruzioni Meccaniche, Perugia, 10-11.
  13. Chang, C.C., Chang, T.Y.P. and Zhang, Q.W. (2001), "Ambient vibration of long-span cable-stayed bridge", J. Bridge Eng., 6(1), 46-53. https://doi.org/10.1061/(ASCE)1084-0702(2001)6:1(46)
  14. Dooms, D., Degrande, G. and Roeck, G.D. (2006), "Finite element modeling of a silo based on experimental modal analysis", Eng. Struct., 28, 532-542. https://doi.org/10.1016/j.engstruct.2005.09.008
  15. Ellis, B.R. (1980), "An assessment of the accuracy of predicting fundamental natural frequencies of buildings and the implications concerning the dynamic analysis of structures", Inst. Civil Eng., 69(2),763-776. https://doi.org/10.1680/iicep.1980.2376
  16. Ewins, D.J. (1984), Modal testing: theory and practice, Research Studies Press Ltd., England.
  17. Felber, A.J. (1993), "Development of hybrid bridge evaluation system", Ph.D. Thesis, Univ. of British Columbia, Vancouver, Canada.
  18. FEMA 356, (2000), Pre-standard and commentary for the seismic rehabilitation of buildings, Federal Emergency Management Agency (FEMA), Washington, D.C., November.
  19. Gentile, C. and Saisi, A. (2007), "Ambient vibration testing of historic masonry towers for structural identification and damage assessment", Constr. Build. Mater., 21,1311-1321. https://doi.org/10.1016/j.conbuildmat.2006.01.007
  20. Jacobsen, N.J., Andersen, P. and Brincker, R. (2006), "Using enhanced frequency domain decomposition as a robust technique to harmonic excitation in operational modal analysis", Proceedings of ISMA2006: International Conference on Noise and Vibration Engineering, Leuven, Belgium.
  21. Jaishi, B. and Ren, W.X. (2005), "Structural finite element model updating using ambient vibration test results", J. Struct. Eng. - ASCE, 131(4), 617-628. https://doi.org/10.1061/(ASCE)0733-9445(2005)131:4(617)
  22. Juang, J.N. (1994), Applied system identification, Prentice-Hall Inc., Englewood Cliffs, NJ, USA.
  23. Juang, J.N. and Phan, M.Q. (2001), Identification and control of mechanical systems, Cambridge Univ., Cambridge, U.K.
  24. Klingner, R.E. and Bertero, V.V. (1978), "Earthquake resistance of infilled frames", J. Struct. Eng. - ASCE, 104, 973-989.
  25. Kodur, V.R., Erki, M.A. and Quenneville, J.H.P. (1995), "Seismic design and analysis of masonry in-filled frames", Can. J. Civil Eng., 22(3), 576-587. https://doi.org/10.1139/l95-066
  26. Lord, J.F., Ventura, C.E. and Dascotte, C.E.(2004), "Automated model updating using ambient vibration data from a 48-storeybuilding in Vancouver", Proceedings of the 22nd International Modal Analysis Conference, Dearborn, MI, January, 26-29.
  27. Maharani, A.B., Shing, P.B., Schuller, M.P. and Noland, J.L. (1996), "Hysteretic response of reinforced concrete infilled frames", J. Struct. Eng. - ASCE, 122(3), 228-237. https://doi.org/10.1061/(ASCE)0733-9445(1996)122:3(228)
  28. Maia, N.M.M. and Silva, J.M.M. (1997), Theoretical and experimental modal analysis, Research Studies Press Ltd., England.
  29. OMA (2006), Operational modal analysis, Release4.0. Structural Vibration Solution A/S, Denmark.
  30. Peeters, B. (2000), "System identification and damage detection in civil engineering", Ph.D. thesis, Katholieke Universiteit, Leuven, Belgium.
  31. Rainieri, C., Fabbrocino, G., Cosenza, E. and Manfredi, G. (2007), "Implementation of OMA procedures using LabVIEW: Theoryandapplication", 2nd Int. Operational Modal Analysis Conf., Copenhagen, Denmark, 1-13.
  32. Ren, W.X., Zhao, T. and Harik, I.E. (2004), "Experimental and analytical modal analysis of steel arch bridge", J. Struct. Eng. - ASCE, 130, 1022-1031. https://doi.org/10.1061/(ASCE)0733-9445(2004)130:7(1022)
  33. Reynolds, P., Pavic, A. and Ibrahim, Z. (2004), "A remote monitoring system for stadia dynamics", Proc. Inst. Civ. Eng., Struct. Build., 157, 385-393. https://doi.org/10.1680/stbu.2004.157.6.385
  34. Roeck, G.D., Peeters, B. and Ren, W.X. (2000), "Benchmark study on system identification through ambient vibration measurements", Proc., 18th Int. Modal Analysis Conf.: A Conf. on Structural Dynamics, Society for Experimental Mechanics, Inc., Bethel, Conn., 1106-1112.
  35. Sahoo, D.R. and Rai, D.C. (2010), "Seismic strengthening of non-ductile reinforced concrete frames using aluminum shear links as energy-dissipation devices", Eng. Struct., 32, 3548-3557. https://doi.org/10.1016/j.engstruct.2010.07.023
  36. SAP2000 (2008), Integrated finite element analysis and design of structures, Computers and Structures, Berkeley, CA.
  37. Sevim, B., Bayraktar, A. and Altunisik, A.C. (2010), "Investigation of water length effects on the modal behavior of a prototype arch dam using operational and analytical modal analyses", Struct. Eng. Mech., 37(6), 1-23.
  38. Sortis, A.D., Antonacci, E. and Vestroni, F. (2005), "Dynamic identification of a masonry building using forced vibration tests", Eng. Struct., 27, 155-165. https://doi.org/10.1016/j.engstruct.2004.08.012
  39. Van Overschee, P. and De Moor, B. (1996), Subspace identification for linear systems: theory-implementation-applications, Kluwer Academic, Boston.
  40. Wang, H. and Li, D. (2007), "Experimental study of dynamic damage of an arch dam", Earthq. Eng. Struct. Dyn., 36, 347-366. https://doi.org/10.1002/eqe.637
  41. Wu, J.R. and Li, Q.S. (2004), "Finite element model updating for a high-rise structure based on ambient vibration measurements", Eng. Struct., 26, 979-990. https://doi.org/10.1016/j.engstruct.2004.03.002
  42. Yu, D.J. and Ren, W.X. (2005), "EMD-based stochastic subspace identification of structures from operational vibration measurements", Eng. Struct., 27, 1741-1751. https://doi.org/10.1016/j.engstruct.2005.04.016
  43. Zhang, Q.W., Chang, T.Y.P. and Chang, C.C. (2001), "Finite element model updating for the Kap Shui Muncable-stayed bridge", J. Bridge Eng. - ASCE, 6, 285-293. https://doi.org/10.1061/(ASCE)1084-0702(2001)6:4(285)
  44. Zhou, J., Lin, G., Zhu, T., Jefferson, A.D. and Williams, F.W. (2000), "Experimental investigation of seismic failure of high arch dams", Struct. Eng., 126(8), 926-935. https://doi.org/10.1061/(ASCE)0733-9445(2000)126:8(926)
  45. Zivanovic, S., Pavic, A. and Reynolds, P. (2006), "Modal testing and FE model tuning of a lively footbridge structure", Eng. Struct., 28, 857-868. https://doi.org/10.1016/j.engstruct.2005.10.012
  46. Zivanovic, S., Pavic, A. and Reynolds, P. (2007), "Finite element modeling and updating of a lively footbridge: the complete process", J. Sound Vib., 301,126-145. https://doi.org/10.1016/j.jsv.2006.09.024

Cited by

  1. Ambient and forced vibration testing with numerical identification for RC buildings vol.11, pp.5, 2016, https://doi.org/10.12989/eas.2016.11.5.809
  2. Finite Element Model Updating and Dynamic Analysis of a Restored Historical Timber Mosque Based on Ambient Vibration Tests vol.47, pp.5, 2019, https://doi.org/10.1520/JTE20180122
  3. Ambient vibration testing of existing buildings: Experimental, numerical and code provisions vol.10, pp.4, 2018, https://doi.org/10.1177/1687814018772718
  4. Soil foundation effect on the vibration response of concrete foundations using mathematical model vol.22, pp.2, 2013, https://doi.org/10.12989/cac.2018.22.2.221
  5. Determination of Period of RC Buildings by the Ambient Vibration Method vol.2019, pp.None, 2013, https://doi.org/10.1155/2019/1213078