DOI QR코드

DOI QR Code

Seismic spectral acceleration assessment of masonry in-filled reinforced concrete buildings by a coefficient-based method

  • Su, R.K.L. (Department of Civil Engineering, The University of Hong Kong) ;
  • Lee, C.L. (Department of Civil Engineering, The University of Hong Kong) ;
  • Wang, Y.P. (Department of Civil Engineering, National Chiao-Tung University)
  • Received : 2010.09.17
  • Accepted : 2012.01.28
  • Published : 2012.02.25

Abstract

This study explores a coefficient-based seismic capacity assessment method with a special emphasis on low-rise masonry in-filled (MI) reinforced concrete (RC) buildings subjected to earthquake motion. The coefficient-based method without requiring any complicated finite element analysis is a simplified procedure to assess the maximum spectral acceleration capacity of buildings. This paper first compares the fundamental periods of MI RC structures obtained, respectively, from experimental period data and empirical period-height formulas. The coefficient-based method for low-rise masonry buildings is then calibrated by the published experimental results obtained from shaking table tests. The comparison of the experimental and estimated results indicates that the simplified coefficient-based method can provide good approximations of the maximum spectral accelerations at peak loads of the low-rise masonry reinforced concrete buildings if a proper set of drift factors and initial fundamental vibration periods of structures are used.

Keywords

References

  1. Applied Technology Council (1978), "Tentative provisions for the development of seismic regulations for buildings", Report No. ATC3-06, Redwood City, California.
  2. Applied Technology Council (1996), Seismic Evaluation and Retrofit of Concrete Buildings (ATC-40), Redwood City, California.
  3. Building Seismic Safety Council (2004), NEHRP Recommended Provisions for Seismic Regulations for New Buildings and Other Structures (FEMA 450), Washington, D.C.
  4. Barecchia, E. (2007), "The use of FRP materials for the seismic upgrading of existing RC structures", Ph.D. Thesis, Università degli Studi di Napoli Federico II, Italy.
  5. Chopra, A.K. and Goel, R.K. (1999) "Capacity-Demand-Diagram methods for estimating seismic deformation of inelastic structures: SDF system", Report No. PEER-1999/02, University of California, Berkeley.
  6. Chopra, A.K. and Goel, R.K. (2000), "Building period formulas for estimating seismic displacements", Earthq. Spectra, 16(2), 533-536. https://doi.org/10.1193/1.1586125
  7. Chopra, A.K. and Goel, R.K. (2002), "A modal pushover analysis procedure for estimating seismic demands for buildings", Earthq. Eng. Struct. D., 31(3), 561-582. https://doi.org/10.1002/eqe.144
  8. Crowley, H. and Pinho, R. (2004), "Period-height relationship for existing European reinforced concrete buildings", J. Earthq. Eng., 8, 93-119.
  9. Dou, C.K. (1997), "Aseismic property and its testing analysis of the lower portion framed structure of a masonry building", Archit Technol., 28(12), 836-839. (in Chinese)
  10. Dolce, M., Cardone, D., Ponzo, F.C. and Valente, C. (2005), "Shaking table tests on reinforced concrete frames without and with passive control systems", Earthq. Eng. Struct. D., 34(14), 1687-1717. https://doi.org/10.1002/eqe.501
  11. Fajfar, P. and Gaspersic, P. (1996), "The N2 method for the seismic damage analysis for RC buildings", Earthq. Eng. Struct. D., 25(1), 31-46. https://doi.org/10.1002/(SICI)1096-9845(199601)25:1<31::AID-EQE534>3.0.CO;2-V
  12. Fardis, M.N., Negro, P., Bousias, S.N. and Colombo, A. (1997), "Seismic design of open-storey infilled RC buildings", J. Earthq. Eng.-ASCE, 3(2), 173-197.
  13. Fajfar, P. (2000), "A nonlinear analysis method for performance based seismic design", Earthq. Spectra, 16(3), 573-592. https://doi.org/10.1193/1.1586128
  14. Goel, R.K. and Chopra, A.K. (1997), "Period formulas for moment-resisting frame buildings", J. Struct. Eng.- ASCE, 123(11), 1454-1461. https://doi.org/10.1061/(ASCE)0733-9445(1997)123:11(1454)
  15. Goel, R.K. and Chopra, A.K. (1998), "Period formulas for concrete shear wall buildings", J. Struct. Eng.-ASCE, 124(4), 426-433. https://doi.org/10.1061/(ASCE)0733-9445(1998)124:4(426)
  16. Gupta, M. and Krawinkler, H. (2000), "Estimation of seismic drift demands for frame structures", Earthq. Eng. Struct. D., 29(9), 1287-1305. https://doi.org/10.1002/1096-9845(200009)29:9<1287::AID-EQE971>3.0.CO;2-B
  17. Huang, W.P., Chen, X.Z., Wu, R.F. and Zhang, Q.G. (1994), "Investigation on seismic behavior of an 8 storey RC-Brick building", Earthq. Resist Eng., 4, 1-7. (in Chinese)
  18. Hong, L.L. and Hwang, W.L. (2000), "Empirical formula for fundamental vibration periods of reinforced concrete building in Taiwan", Earthq. Eng. Struct. D., 29(3), 327-337. https://doi.org/10.1002/(SICI)1096-9845(200003)29:3<327::AID-EQE907>3.0.CO;2-0
  19. Kwan, K.H. and Xia, J.Q. (1996), "Study on seismic behavior of brick masonry infilled reinforced concrete frame structures", Earthq. Eng. Eng. Vib., 16(1), 87-99. (in Chinese)
  20. Kalkan, E. and Kunnath, S.K. (2007), "Assessment of current nonlinear static procedures for seismic evaluation of buildings", Eng. Struct., 29(3), 305-316. https://doi.org/10.1016/j.engstruct.2006.04.012
  21. Lee, C.L. and Su, R.K.L. (2011), "Fragility analysis of low-rise masonry infilled reinforced concrete buildings by a coefficient-based spectral acceleration method", Earthq. Eng. Struct. D., DOI: 10.1002/eqe.1152.
  22. Lee, H.S. and Woo, S.W. (2002), "Effect of masonry infills on seismic performance of a 3-story R/C frame with non-seismic detailing", Earthq. Eng. Struct. D., 31(2), 353-378. https://doi.org/10.1002/eqe.112
  23. Lu, Y. (2002a), "Comparative study of seismic behavior of multistory reinforced concrete framed structures", J. Struct. Eng.-ASCE, 128(2), 169-178. https://doi.org/10.1061/(ASCE)0733-9445(2002)128:2(169)
  24. Lu, Y. (2002b), "Seismic behaviour of multistory RC wall-frame systems versus bare ductile frame systems", Earthq. Eng. Struct. D., 31(1), 79-97. https://doi.org/10.1002/eqe.99
  25. Lu, Y., Gu, X. and Wei, J. (2009), "Prediction of seismic drifts in multi-story frames with a new storey capacity factor", Eng. Struct., 31(2), 345-357. https://doi.org/10.1016/j.engstruct.2008.09.005
  26. Miranda, E. (1999), "Approximate seismic lateral deformation demands in multistory buildings", J. Struct. Eng.- ASCE, 125(4), 417-425. https://doi.org/10.1061/(ASCE)0733-9445(1999)125:4(417)
  27. Matsumori, T., Kim, J. and Kabeyasawa, T. (2005), "Shaking table test of one-third scale model of a six-story wall frame R/C structure", Proceedings of the First NEES/E-Defense Workshop on Collapse Simulation of Reinforced Concrete Building Structures, University of California, Berkeley.
  28. Negro, P. and Verzeletti, G. (1996), "Effects of infills on the global behaviour of R/C frames: energy considerations from pseudodynamic tests", Earthq. Eng. Struct. D., 25(8), 753-773. https://doi.org/10.1002/(SICI)1096-9845(199608)25:8<753::AID-EQE578>3.0.CO;2-Q
  29. Negro, P. and Colombo, A. (1997), "Irregularities induced by nonstructural masonry panels in framed buildings", Eng. Struct., 19(7), 576-585. https://doi.org/10.1016/S0141-0296(96)00115-0
  30. Newmark, N.M. and Hall, W.J. (1982), Earthquake Spectra and Design, Earthquake Engineering Research Institute, Berkeley, CA.
  31. New Zealand Society for Earthquake Engineering (2006), Assessment and Improvement of the Structural Performance of Buildings in Earthquakes, New Zealand.
  32. Pinho, R. and Crowley, H. (2006), "Simplified equations for estimating the period of vibration of existing buildings", Proceedings of the First European Conference on Earthquake Engineering and Seismology, Geneva, Switzerland.
  33. Pinto, A. and Taucer, F. (2006), "Assessment and retrofit of full-scale models of existing RC frames", Advances in Earthquake Engineering for Urban Risk Reduction, Eds. Wasti, S.T. and Ozcebe, G., Springer, Netherlands, 353-367.
  34. Pujol, S., Benavent-Climent, A., Rodriguez, M.E. and Simth-Pardo, J. (2008), "Masonry infill walls: an effective alternative for seismic strengthening of low-rise reinforced concrete building structures", Proceedings of the 14-th World Conference on Earthquake Engineering, Beijing, China.
  35. Shen, C.Y., Liang, X.W., Zhen, S.S. and Zhou, X.Z. (1997), "Experimental investigation on brick masonry building with frame structure at its bottom using shaking table", World Inform Earthq. Eng., 3, 35-45. (in Chinese)
  36. Su, R.K.L., Chandler, A.M., Lee, P.K.K., To, A.P. and Li, J.H. (2003), "Dynamic testing and modelling of existing buildings in Hong Kong", Trans Hong Kong Inst. Eng., 10(2), 17-25.
  37. Sun, J.J., Wang, T. and Qi, H. (2007), "Earthquake simulator tests and associated study of an 1/6-scale nine-story RC model", Earthq. Eng. Eng. Vib., 6(3), 281-288. https://doi.org/10.1007/s11803-007-0738-y
  38. Su, R.K.L., Lam, N.T.K. and Tsang, H.H. (2008), "Seismic drift demand and capacity of non-seismically designed buildings in Hong Kong", Electron J. Struct. Eng., 8, 110-120.
  39. Su, R.K.L. (2009), "Collapse modes of confined masonry buildings in the Wenchuan Earthquake", Proceedings of the International Conference on Earthquake Engineering - the First Anniversary of Wenchuan Earthquake, Chengdu, P. R. China.
  40. Su, R.K.L., Lee, Y.Y., Lee, C.L. and Ho, J.C.M. (2011), "Typical collapse modes of confined masonry buildings under strong earthquake loads", Open Constr. Build Technol. J., 5, 50-60. https://doi.org/10.2174/1874836801105010050
  41. Tomazevic, M. and Weiss, P. (1994), "Seismic behavior of plain-and reinforced- masonry buildings", J. Struct. Eng.-ASCE, 120(2), 323-338. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:2(323)
  42. Tomazevic, M. and Klemenc, I. (1997), "Verification of seismic resistance of confined masonry buildings", Earthq. Eng. Struct. D., 26(10), 1073-1088. https://doi.org/10.1002/(SICI)1096-9845(199710)26:10<1073::AID-EQE695>3.0.CO;2-Z
  43. Tsionis, G., Negro, P., Molina, J. and Colombo, A. (2001), "Pseodudynamic tests on a 4-story RC dual frame building", Technical Report EUR19902EN (European Laboratory for Structural Assessment, ELSA), Italy.
  44. Tsang, H.H., Su, R.K.L., Lam, N.T.K. and Lo, A.S.H. (2009), "Rapid assessment of seismic demands in existing buildings", Struct. Des. Tall Spec Build, 18(4), 427-439. https://doi.org/10.1002/tal.444
  45. Vona, M. and Masi, A. (2009), "Estimation of the periods of vibration of existing RC building types based on experimental data and numerical results", Increasing Seismic Safety by Combining Engineering Technologies and Seismological Data, Eds. Mucciarelli, M., Herak, M. and Cassidy, J., Springer, Netherlands, 207-225.
  46. Xia, J.Q. (1995), "Investigation on seismic behavior of masonry infilled buildings with frame-shear walls", Build.Sci., 3, 19-27. (in Chinese)
  47. Xia, J.Q., Kwan, K.H., Luo, X.H. and Liauw, T.C. (1996), "Simulated earthquake tests of shear wall and infilled frame models", Earthq. Eng. Eng. Vib., 16(2), 55-66. (in Chinese)
  48. Xiong, L.H., Xiong, D., Wu, R.F. and Xia, J.Q. (2008), "Shaking table tests and dynamic analyses of masonry wall buildings with frame-shear walls at lower stories", Earthq. Eng. Eng. Vib., 7(3), 271-283. https://doi.org/10.1007/s11803-008-0859-y
  49. Zheng, S.S., Yang, Y. and Zhao, H.T. (2004), "Experimental study on aseismic behavior of masonry building with frame-shear wall structures at lower stories", China Civil Eng. J., 37(5), 23-31. (in Chinese)
  50. Zhu, Y., Su, R.K.L. and Zhou, F.L. (2007), "Cursory seismic drift assessment for buildings in moderate seismicity regions", Earthq. Eng. Eng. Vib., 6(1), 85-97. https://doi.org/10.1007/s11803-007-0673-y

Cited by

  1. Development of seismic fragility curves for low-rise masonry infilled reinforced concrete buildings by a coefficient-based method vol.12, pp.2, 2013, https://doi.org/10.1007/s11803-013-0174-0
  2. Experimental damage evaluation of prototype infill wall based on forced vibration test vol.8, pp.2, 2012, https://doi.org/10.12989/acc.2019.8.2.077