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Infilled frames: developments in the evaluation of cyclic behaviour under lateral loads

  • Cavaleri, L. (Dipartimento di Ingegneria Strutturale e Geotecnica, Universita di Palermo) ;
  • Fossetti, M. (Dipartimento di Ingegneria Strutturale e Geotecnica, Universita di Palermo) ;
  • Papia, M. (Dipartimento di Ingegneria Strutturale e Geotecnica, Universita di Palermo)
  • Received : 2004.12.08
  • Accepted : 2005.08.25
  • Published : 2005.11.10

Abstract

In order to consider the modified seismic response of framed structures in the presence of masonry infills, proper models have to be formulated. Because of the complexity of the problem, a careful definition of an equivalent diagonal pin-jointed strut, able to represent the horizontal force-interstorey displacement cyclic law of the actual infill, may be a solution. In this connection the present paper, continuing a previous work in which a generalised criterion for the determination of the ideal cross-section of the equivalent strut was formulated, analizes some models known in literature for the prediction of the lateral cyclic behaviour discussing their field of validity. As a support of the discussion, the results of an experimental investigation involving single story-single bay infilled reinforced concrete. Frames under vertical and lateral loads with different kind of infill (actually not yet so much investigated) are presented. Finally, an improvement of a model known in the literature is proposed, taking the results of the experimental tests before mentioned into account.

Keywords

References

  1. Bertero, V.V. and Brokken, S. (1983), 'Infills in seismic resistant building', J. Struct. Eng., ASCE, 109(6), 1337-1361 https://doi.org/10.1061/(ASCE)0733-9445(1983)109:6(1337)
  2. Cavaleri, L., Fossetti, M. and Papia, M. (2004), 'Effects of vertical loads on lateral response of infilled frames', Proc. of XIII World Conf. on Earthq. Eng., Vancouver, paper 2931
  3. Cavaleri, L. and Papia, M. (2003), 'A new dynamic identification technique: Application to the evaluation of the equivalent strut for infilled frames', Eng. Struct., 25, 889-901 https://doi.org/10.1016/S0141-0296(03)00023-3
  4. Doudoumis, I.N. and Mitsopolou, E.N. (1986), 'Non-linear analisys of multistorey infilled frames for unilateral contact conditions', Proc. of 8th European Conf. on Earthq. Eng., Lisbona, 3, 63-70
  5. Durrani, A.J. and Luo, Y.H. (1994), 'Seismic retrofit of flat-slab buildings with masonry infill', Proc. of the NCEER Workshop on Seismic Response ofMasonry Injills, Report NCEER-94-0004
  6. Hendry, A.W (1998), Structural Masonry, Macmillan, UK
  7. Holmes, H. (1961), 'Steel frames with brickwork and concrete infilling', Proc. of Institution of Civil Engineers, Paper No. 6501, 473-478
  8. Jones, R.M. (1999), Mechanics of Composite Materials, Taylor & Francis, Philadelphia
  9. Klingner, R.E. and Bertero, V.V. (1978), 'Earthquake resistance of infilled frames', J. Struct. Eng, ASCE, 104(6), 973-989
  10. Liaw. T.C. and Lee, S.W (1977), 'On the behaviour and the analysis of multistorey infilled frames subjected to lateral loading', Proc. of Institution of Civil Engineers, Part. 2, 63, 641-656
  11. Madan, A, Reinhom, AM., Mander, J.B. and Valles, R.E. (1997), 'Modelling of masonry infill panels for structural analysis', J. Struct. Eng, ASCE, 123(10), 1295-1302 https://doi.org/10.1061/(ASCE)0733-9445(1997)123:10(1295)
  12. Mainstone, R.J. (1971), 'On stiffness and strength of infilled frames', Proc. of Institution of Civil Engineers, Paper No. 7360s, 57-90
  13. Mainstone, R.J. (1974), 'Supplemental)' note on the stiffness and strength of infilled frames', Current Paper CP 13174, Building Research Station, U.K
  14. Mallick, D.V. and Severn, R.T (1967), 'The behaviour of infilled frames under static loading', Proc. of Institution of Civil Engineers, 39, 639-656
  15. Mehrabi, A.B. and Benson Shing, P. (1997), 'Finite element modelling of masonry-infilled RC frames', J. Struct. Eng, ASCE, 123(5), 604-613 https://doi.org/10.1061/(ASCE)0733-9445(1997)123:5(604)
  16. NCEER (1994), 'Seismic response of masonry infills', Technical report NCEER-94-0004. San Francisco
  17. Panagiotakos, T.B. and Fardis, M.N. (1996), 'Seismic response of infilled RC frames structures', Proc. of the 11th World Conf. on Earthq. Eng, Acapulco, Mexico, Paper No. 225, Oxford, Pergamon
  18. Papia, M. (1988), 'Analysis of infilled frames using a coupled finite element and boundary element solution scheme', Int. J. Numer. Meth. Eng, 26(3), 731-772 https://doi.org/10.1002/nme.1620260315
  19. Papia, M., Cavaleri, L. and Fossetti, M. (2003), 'Infilled frames: developments in the evaluation of the stiffening effect of infills', Struct. Eng Mech., 16(6),675-693 https://doi.org/10.12989/sem.2003.16.6.675
  20. Rivero, C.E. and Walker, WH. (1984), 'An analytical study of the interaction of frames and infill masonry walls', Proc. of VIII World Conf. on Earthq. Eng, San Francisco, 4, 591-598
  21. Salomon, M.D.G (1968), 'Elastic moduli of a stratified rock mass', Int. J. Rock Mech. Min. Sci., 5, 519-527 https://doi.org/10.1016/0148-9062(68)90039-9
  22. Saneinejad, A and Hobbs, B. (1995), 'Inelastic design of infilled frames', J. Struct. Eng, ASCE, 121(4),634-650 https://doi.org/10.1061/(ASCE)0733-9445(1995)121:4(634)
  23. Stafford Smith, B. (1966), 'Behaviour of the square infilled frames', J. Struct. Div., ASCE, 92(1), 381-403
  24. Stafford Smith, B. and Carter, C. (1969), 'A method for analysis for infilled frames', Proc. of Institution of Civil Engineers, Paper 8, 31-48
  25. Valiasis, T.N., Stylianidis, K.C. and Penelis, G.G (1993), 'Hysteresis model for weak brick masonry infills in R/C frames under lateral reversals', European Earthq. Eng, 1, 1-9

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