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Assessment of seismic strengthening solutions for existing low-rise RC buildings in Nepal

  • Chaulagain, Hemchandra (Civil Engineering Department, University of Aveiro) ;
  • Rodrigues, Hugo (School of Technology and Management, Polytechnic Institute of Leiria) ;
  • Spacone, Enrico (University of Chieti-Pescara, Department PRICOS - Architettura) ;
  • Varum, Humberto (Department of Civil Engineering, Faculty of Engineering, University of Porto)
  • Received : 2014.02.28
  • Accepted : 2014.08.29
  • Published : 2015.03.25

Abstract

The main objective of this study is to analytically investigate the effectiveness of different strengthening solutions in upgrading the seismic performance of existing reinforced concrete (RC) buildings in Nepal. For this, four building models with different structural configurations and detailing were considered. Three possible rehabilitation solutions were studied, namely: (a) RC shear wall, (b) steel bracing, and (c) RC jacketing for all of the studied buildings. A numerical analysis was conducted with adaptive pushover and dynamic time history analysis. Seismic performance enhancement of the studied buildings was evaluated in terms of demand capacity ratio of the RC elements, capacity curve, inter-storey drift, energy dissipation capacity and moment curvature demand of the structures. Finally, the seismic safety assessment was performed based on standard drift limits, showing that retrofitting solutions significantly improved the seismic performance of existing buildings in Nepal.

Keywords

References

  1. Alcocer, S.M. (1992), "Rehabilitation of RC frame connections using jacketing", Tenth World Conference, Earthq. Eng., 9, 5235-5240.
  2. ASCE (2003), Seismic evaluation of existing buildings, American Society of Civil Engineers, USA.
  3. ATC-21 (1988), Rapid visual screening of buildings for potential seismic hazards, Applied Technology Council, California, US.
  4. ATC-40 (1996), Seismic evaluation and retrofit of concrete buildings, Applied Technical Council, California Seismic Safety Commission, Redwood City, California, US.
  5. BIA (1996), "The assessment and improvement of the structural performance of earthquake risk buildings- Draft for general release", NZ. Natl. Soc. Earthq. Eng., New Zealand.
  6. Bothara, J. and Hicyilmaz, K. (2008), "General observations of building behaviour during the 8th October 2005 Pakistan earthquake", Bul. NZ. Soc. Earthq. Eng., 41(4), 209-233.
  7. Calvi, G.M. (2013), "Choices and criteria for seismic strengthening", J. Earthq. Eng., 17(6), 769-802. https://doi.org/10.1080/13632469.2013.781556
  8. CEN (2004), Design of structures for earthquake resistance; Part 1: General Rules, seismic actions and rules for buildings, CEN, Brussels.
  9. Chaulagain, H., Rodrigues, H., Jara, J., Spacone, E. and Varum, H. (2013), "Seismic response of current RC buildings in Nepal: A comparative analysis of different design/ construction", Eng. Struct., 49, 284-294. https://doi.org/10.1016/j.engstruct.2012.10.036
  10. Chaulagain, H., Rodrigues, H., Spacone, E. and Varum, H. (2014), "Study on design procedures of reinforced concrete buildings in Nepal and its impact on seismic safety", Advances in Struct. Eng. (in Press)
  11. Chryssanthopoulos, M.K., Dymiotis, C. and Kappos, A.J. (2000), "Probabilistic evaluation of behaviour factors in EC8-designed R/C frames", Eng. Struct., 22(8), 1028-41. https://doi.org/10.1016/S0141-0296(99)00026-7
  12. Disarno, L. and Manfredi, G. (2010), "Seismic retrofitting with buckling restrained braces: Application to an existing non-ductile RC framed building", Soil Dyn. Earthq. Eng., 30, 1279-1297. https://doi.org/10.1016/j.soildyn.2010.06.001
  13. Elnashai, A.S. and Elghazouli, A.Y. (1993), "Performance of composite steel/concrete members under earthquake loading, Part I: Analytical model", Earthq. Eng. Struct. Dyn., 22, 315-345. https://doi.org/10.1002/eqe.4290220404
  14. Erberic, M.A. (2008), "Fragility based assessment of typical mid-rise and low-rise RC buildings in Turkey", Eng. Struct., 30(5), 1360-1374. https://doi.org/10.1016/j.engstruct.2007.07.016
  15. Erdik, M. and Durukal, E. (2008), "Earthquake risk and its mitigation in Istanbul", Nat. Hazard., 44,181-197. https://doi.org/10.1007/s11069-007-9110-9
  16. FEMA-310 (1998), Handbook for the Seismic Evaluation of Buildings - A Prestandard, Federal Emergency Management Agency, Washington D.C., US.
  17. FEMA356 (2000), Pre-standard and commentary for the seismic rehabilitation of buildings, Washington, DC: Federal Emergency Management Agency.
  18. Fardis, M., Papailia, A. and Tsionis, G. (2012), "Seismic fragility of RC framed and wall-frame buildings designed to the EN-Eurocodes", Bul. Earthq. Eng., 10, 1767-1793. https://doi.org/10.1007/s10518-012-9379-2
  19. Fradis, M., Schetakis, A. and Strepelias, E. (2013), "RC buildings retrofitted by converting frame bays into RC walls", Bul. Earthq. Eng., 11, 1541-1561. https://doi.org/10.1007/s10518-013-9435-6
  20. Filippou, F.C., Bertero, E.P. and Popov, E.P. (1983), Effects of bound deterioration on hysteretic behavior of reinforced concrete joints, University of California, Berkeley, US.
  21. Galal, K. and Sokkary, H. (2009), "Analytical investigation of the seismic performance of RC frames rehabilitated using different rehabilitation techniques", Eng. Struct., 31, 1955-1966. https://doi.org/10.1016/j.engstruct.2009.02.048
  22. Ghobarah, A. (2004), "On drift limits associated with different damage levels", Proceedings of the International Workshop Bled, 28, 321-332.
  23. Goel, S.C. and Lee, H. (1990), "Seismic strengthening of RC structures by ductile steel bracing system", Fourth U.S. National Conference on Earthquake Engineering, Palm Springs, California, US.
  24. IS 1893 (Part1) (2002), Indian Standard Criteria for Earthquake Resistant Design of Structures, Bureau of Indian Standards, Eds. Manak Bhavan and Bahadur Shah Zafar Marg, New Delhi.
  25. IS 13920 (1993), Indian Standard Ductile Detailing of Reinforced Concrete Structures subjected to Seismic Force, Bureau of Indian Standards, Eds. Manak Bhavan and Bahadur Shah Zafar Marg, New Delhi.
  26. IS 875 (2003), Code of Practice for design loads for buildings and structures, Bureau of Indian Standards, Eds. Manak Bhavan and Bahadur Shah Zafar Marg, New Delhi.
  27. IS 800 (2007), General construction in steel, Bureau of Indian Standards, Eds. Manak Bhavan and Bahadur Shah Zafar Marg, New Delhi.
  28. JICA (2002), The Study on Earthquake Disaster Mitigation in the Kathmandu Valley Kingdom of Nepal, Japan International Cooperation Agency (JICA) and Ministry of Home Affairs, His Majesty's Government of Nepal.
  29. Kaplan, H., Yilmaz, S., Cetinkaya, N. and Atimtay, E. (2011), "Seismic strengthening of RC structures with exterior shear walls", Sadhana. Acad Proc. Eng. Sceince, 36, 17-34.
  30. Madas, P. and Elnashai, A.S. (1992), "A new passive confinement model for the analysis of concrete structures subjected to cyclic and transient dynamic loading", Earthq. Eng. Struct. Dyn., 21, 409-431. https://doi.org/10.1002/eqe.4290210503
  31. Mander, J.B., Priestley, M.J.N. and Park, R. (1988), "Theoretical stress-strain model for confined concrete", J. Struct. Eng., 114(8), 1804-1826. https://doi.org/10.1061/(ASCE)0733-9445(1988)114:8(1804)
  32. Martinez-Rueda, J.E. (1997), "Energy dissipation devices for seismic upgrading of RC structures", Ph.D. Thesis, Imperial College, University of London, London, UK.
  33. Menegotto, M. and Pinto, P.E. (1973), "Method of analysis for cyclically loaded R.C. plane frames including changes in geometry and non-elastic behaviour of elements under combined normal force and bending", Symposium on the Resistance and Ultimate Deformability of Structures Acted on by Well Defined Repeated Loads, International Association for Bridge and Structural Engineering, Zurich, Switzerland.
  34. Moehle, J.P. (2000), "State of research on seismic retrofit of concrete building structures in the US", Proceedings of US-Japan symposium and workshop on seismic retrofit of concrete structures-state of research and practice.
  35. NSET (2009), Seismic vulnerability evaluation guidelines for private and public buildings- Part I: Pre disaster vulnerability assessment, Government of Nepal, Ministry of Physical Planning and Works.
  36. Pandey, M.R. and Molnar, P. (1988), "The distrubition of intensity of the Bihar-Nepal earthquake 15 January 1934 and bounds of the extent of the rupture zone", J. Nepal Geo. Soc., 5, 22-44.
  37. Parajuli, H.R. (2009), "Dynamic analyses of low strength masonry houses based on site specific earthquake ground motions", Ph.D. Thesis, Department of Urban Management, Graduate School of Engineering, Kyoto University, Japan.
  38. Rai, D. (2005), "Seismic evaluation and strengthening of existing buildings", Draft Final Report: AEarthuake Codes, IITK-GSDMA Project on Building Codes, Indian Institute of Technology Kanpur, Kanpur, India.
  39. Rana, B.J.B. (1935), Nepal ko Maha Bhukampa (Great earthquake of Nepal), Jorganesh press, Kathmandu.
  40. Rodrigues, H., Arede, A., Varum, H. and Costa, A.G. (2012), "Experimental evaluation of rectangular reinforced concrete column behaviour under biaxial cyclic loading", Earthq. Eng. Struct. Dyn., 42(2), 239-259. https://doi.org/10.1002/eqe.2205
  41. Rodrigues, M. and Park, R. (1991), "Repair and strengthening of reinforced concrete buildings for seismic resistance", Earthq. Spectra, 7(3), 439-459. https://doi.org/10.1193/1.1585636
  42. Rodrigues, H., Varum, H., Arêde, A. and Costa, A. (2011), "Comparison of different modelling strategies for the representation of non linear response of RC columns subjected to biaxial loading", International Conference on Recent Advances in Nonlinear Models, Struct. Conc. Appl., CORAN 2011, Eds. H. Barros, R. Faria, C. Pina and C. Ferreira, Coimbra, Portugal.
  43. Rossetto, T. and Elnashai, A. (2003), "Derivation of vulnerability functions for European-type RC structures based on observational data", Eng. Struct., 25(10), 124-163.
  44. SEAOC (1995), Vision 2000, Performance based seismic engineering of buildings, Vol.I and II: Conceptual framework, Sacramento (CA): Structural Engineers Association of California.
  45. Seismo Soft (2006), A Computer Program for Static and Dynamic Nonlinear Analysis of Framed Structure, URL: http//www.seismosoft.com.
  46. SERC (2002), Formulation of Guidelines for Assessment of Strength and Performance of Existing Buildings and Recommendations on Retrofitting Schemes to Ensure Resistance to Earthquakes, Structural Engineering Research Centre, September 2002, Chennai.
  47. Silva, V. (2013), "Development of open models and tools for seismic risk assessment: application to Portugal", Ph.D. Thesis, University of Aveiro, Portugal.
  48. Smyrou, E., Blandon, C., Antoniou, S., Pinho, R. and Crisafulli, F. (2011), "Implementation and verification of a masonry panel model for nonlinear dynamic analysis of infilled RC frames", Bul. Earthq. Eng., 9(6), 1519-34. https://doi.org/10.1007/s10518-011-9262-6
  49. Stefani, L. and Scotta, R. (2014), "Optimal design of seismic retrofitting of RC frames with eccentric steel bracing", Bul. Earthq. Eng., 1-21.
  50. Thermou, G.E., Pantazopoulou, S.J. and Elnashai, A.S. (2007), "Design methodology for seismic upgrading of substandard reinforced concrete structures", J. Earthq. Eng., 11(4), 582-06. https://doi.org/10.1080/13632460601031573
  51. Varum, H. (2003), "Seismic assessment, strengthening and repair of existing buildings", Ph.D. Thesis, Department of Civil Engineering, University of Aveiro, Portugal.
  52. Varum, H., Chaulagain, H., Rodrigues, H. and Spacone, E. (2013a), "Seismic assessment and retrofitting of existing RC buildings in Kathmandu", CINPAR 2013, 9th International Congress on Pathology and Repair of Structures, JoAo Pessoa, Brazil.
  53. Varum, H., Teixeira-Dias, F., Marques, P., Pinto, A. and Bhatti, A. (2013b), "Performance evaluation of retrofitting strategies for non-seismically designed RC buildings using steel braces", Bul. Earthq. Eng., 11, 1129-1156. https://doi.org/10.1007/s10518-012-9421-4

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