DOI QR코드

DOI QR Code

Lateral-torsional seismic behaviour of plan unsymmetric buildings

  • Tamizharasi, G. (Department of Civil Engineering, Sardar Vallabhbhai National Institute of Technology) ;
  • Prasad, A. Meher (Department of Civil Engineering, Indian Institute of Technology Madras) ;
  • Murty, C.V.R. (Department of Civil Engineering, Indian Institute of Technology Madras)
  • Received : 2019.08.26
  • Accepted : 2021.03.10
  • Published : 2021.03.25

Abstract

Torsional response of buildings is attributed to poor structural configurations in plan, which arises due to two factors - torsional eccentricity and torsional flexibility. Usually, building codes address effects due to the former. This study examines both of these effects. Buildings with torsional eccentricity (e.g., those with large eccentricity) and with torsional flexibility (those with torsional mode as a fundamental mode) demand large deformations of vertical elements resisting lateral loads, especially those along the building perimeter in plan. Lateral-torsional responses are studied of unsymmetrical buildings through elastic and inelastic analyses using idealised single-storey building models (with two degrees of freedom). Displacement demands on vertical elements distributed in plan are non-uniform and sensitive to characteristics of both structure and earthquake ground motion. Limits are proposed to mitigate lateral-torsional effects, which guides in proportioning vertical elements and restricts amplification of lateral displacement in them and to avoid torsional mode as the first mode. Nonlinear static and dynamic analyses of multi-storey buildings are used to validate the limits proposed.

Keywords

References

  1. Anagnostopoulos, S.A., Kyrkos, M.T., Papalymperi, A. and Plevri, E. (2015), "Should accidental eccentricity be eliminated from Eurocode 8?", Earthq. Struct., 8(2), 463-484. http://dx.doi.org/10.12989/eas.2015.8.2.463.
  2. Bachmann, H. (2003), "Seismic conceptual design of buildings-basic principles for engineers, architects, building owners, and authorities", Swiss Federal Office for Water and Geology, Bern.
  3. Bertero, R.D. (1995), "Inelastic torsion for preliminary seismic design", ASCE J. Struct. Eng., 121(8), 1183-1189. https://doi.org/10.1061/(ASCE)0733-9445(1995)121:8(1183).
  4. Bozorgnia,Y. and Tso, W.K. (1986), "Inelastic earthquake response of asymmetric structures", ASCE J. Struct. Eng., 112(2), 383-400. https://doi.org/10.1061/(ASCE)0733-9445(1986)112:2(383).
  5. Bruneau, M. and Mahin, S.A. (1987), "Inelastic seismic response of structures with mass and stiffness eccentricities in plan", Report No. UCB/EERC-87/12, Earthquake Engineering Research Center, University of California, Berkeley.
  6. Bureau of Indian Standards (2000), Indian standard code of practice for plain and reinforced concrete - Code of practice, IS 456, New Delhi, India.
  7. Bureau of Indian Standards (2016), Indian standard code of practice for ductile detailing of reinforced concrete structures subjected to seismic forces - Code of practice, IS 13920, New Delhi, India.
  8. Bureau of Indian Standards (2016), Indian standard criteria for earthquake resistant design of structures, Part 1 General Provisions and Buildings, IS 1893(1), New Delhi, India.
  9. Chandler, A.M. and Hutchinson, G.L. (1986), "Torsional coupling effects in the earthquake response of asymmetric buildings", Eng. Struct., 8, 222-236. https://doi.org/10.1016/0141-0296(86)90030-1.
  10. Chopra, A.K. and Goel, R.K. (1991), "Evaluation of torsional provisions in seismic codes", ASCE J. Struct. Eng., 117(12), 3762-3782. https://doi.org/10.1061/(ASCE)0733-9445(1991)117:12(3762).
  11. Duan, X.N. and Chandler, A.M. (1993), "Inelastic seismic response of code-designed multistorey frame buildings with regular asymmetry", Earthq. Eng. Struct. Dyn., 22, 431-445. https://doi.org/10.1002/eqe.4290220506.
  12. Eurocode 8 (2004), European standard for design of structures for earthquake resistance - Part I: General rules, seismic actions and rules for buildings, EN 1998-1, The European Union.
  13. Federal Emergency Management Agency (2000), Prestandard and Commentary for the Seismic Rehabilitation of Buildings, FEMA 356, Washington, D.C.
  14. Federal Emergency Management Agency (2009), Quantification of Building Seismic Performance Factors, FEMA P695, Washington, D.C.
  15. Huang, Y.N., Whittaker, A.S., Luco, N., and Hamburger, O.R. (2011), "Scaling earthquake ground motions for performancebased assessment of buildings", ASCE J. Struct. Eng., 137(3), 311-321. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000155.
  16. Humar, J.L. and Kumar, P. (1998), "Torsional motion of buildings during earthquakes. I. Elastic response", Canadian J. Civil Eng., 25(5), 898-916. https://doi.org/10.1139/l98-031.
  17. Jarernprasert, S. and Bazan, E. (2008), "Inelastic torsional singlestory systems", Proceedings of the 14th World Conference on Earthquake Engineering, Beijing, China, October.
  18. Kan, C.L. and Chopra, A.K. (1979), "Linear and nonlinear earthquake response of simple torsionally coupled systems", Report No. UCB/EERC-79/03, Earthquake Engineering Research Center, University of California, Berkeley.
  19. Kumar, P. (1998), "Torsional Response of Buildings During Earthquake" Ph.D. Dissertation, Carleton University, Ottawa, Canada.
  20. Mander, J.B, Priestley, M.N.J. and Park R. (1988), "Theoretical stress-strain model for confined concrete", ASCE J. Struct. Eng., 114(8), 1804-1826. https://doi.org/10.1061/(ASCE)0733-9445(1988)114:8(1804).
  21. Murty, C.V.R., Brzev, S., Faison, H., Comartin, C.D. and Irfanoglu, A. (2006), "At risk: the seismic performance of reinforced concrete frame buildings with masonry infill walls", Publication No. WHE-2006-03, Earthquake Engineering Research Institute, Oakland, California.
  22. Myslimaj, B. and Tso, W.K. (2002), "A strength distribution criterion for minimizing torsional response of asymmetric wall-type systems", Earthq. Eng. Struct. Dyn., 31, 99-120. https://doi.org/10.1002/eqe.100.
  23. Palermo, M., Silvestri, S., Gasparini, G. and Trombetti, T. (2007), "Corner displacement response spectra for one-storey eccentric structures", Proceedings of the 16th World Conference on Earthquake Engineering, Santiago, Chile, January, Paper No. 2007.
  24. Perform 3D (2016), Nonlinear Analysis and Performance Assessment for 3D Structures, Version 6, Computers & Structures Inc. (CSI), U.S.A.
  25. Reyes, J.C., Riano, A.C., Kalkan, E., Quintero, O.A. and Arango, C.M. (2014), "Assessment of spectrum matching procedure for nonlinear analysis of symmetric- and asymmetric-plan buildings", Eng. Struct., 72, 171-181. https://doi.org/10.1016/j.engstruct.2014.04.035
  26. Rutenberg, A. (1992), "Nonlinear response of asymmetric building structures and seismic codes: a state of the art review", Proceedings of the Workshop on Nonlinear Seismic Analysis of Reinforced Concrete Buildings, Slovenia, Yugoslavia, Elsevier Applied Science, 281-305.
  27. Rutenberg, A., Benbenishti, A. and Pekau, O. (1992), "Nonlinear seismic behaviour of code-designed eccentric systems", Proceedings of the 10th World Conference on Earthquake Engineering, Madrid, Spain, July.
  28. SAP 2000 (2016), Structural Analysis Program, Version 19, Computers & Structures Inc. (CSI), U.S.A.
  29. Sunitha, P., Goswami, R. and Murty, C.V.R. (2016), "Idealised bilinear moment-curvature curves of RC sections for pushover analysis of RC frame buildings", Indian Concrete J., 90(4), 43-54.
  30. Tabatabaei, R. (2011), "Torsional vibration of eccentric building systems", Recent Advances in Vibrations Analysis, InTechOpen, 169-192.
  31. Tamizharasi, G. Prasad, A.M. and Murty, C.V.R. (2017), "Criticality of controlling seismic torsional response in plan unsymmetric buildings", Proceedings of the 16th World Conference on Earthquake Engineering, Santiago, Chile, January.
  32. Tamizharasi, G. Prasad, A.M. and Murty, C.V.R. (2020), "A simple method to identify torsional flexibility in buildings without performing detailed structural analysis", Proceedings of the 17th World Conference on Earthquake Engineering, Sendai, Japan, September.
  33. Tamizharasi, G., Prasad, A.M. and Murty, C.V.R. (2017), "Limiting twisting during earthquakes in buildings with Unsymmetrical Stiffness in plan - Elastic study", Indian Concrete Institute J., 18(1), 20-26.
  34. Tso, W.K. (1990), "Static eccentricity concept for torsional moment estimations", ASCE J. Struct. Eng., 116(5), 1199-1212. https://doi.org/10.1061/(ASCE)0733-9445(1990)116:5(1199).
  35. Tso, W.K. and Cheung, V.T. (1986), "Decoupling of equations of equilibrium in lateral load analysis of multistrey buildings", Comput. Struct., 23(5), 679-684. https://doi.org/10.1016/0045-7949(86)90076-3.
  36. Tso, W.K. and Sadek, A.W. (1985), "Inelastic seismic response of simple eccentric structures", Earthq. Eng. Struct. Dyn., 13, 255-269. https://doi.org/10.1002/eqe.4290130209.
  37. Vecchio, F.J. and Emara, M.B. (1992), "Shear deformations in reinforced concrete frames", ACI Struct. J., 89(1), 46-56.