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Behaviour of composite walls under monotonic and cyclic shear loading

  • Hossain, K.M. Anwar (Department of Civil Engineering, Ryerson University) ;
  • Wright, H.D. (Department of Civil Engineering, University of Strathclyde)
  • Received : 2003.05.06
  • Accepted : 2003.09.08
  • Published : 2004.01.25

Abstract

The novel form of composite walling system consists of two skins of profiled steel sheeting with an in-fill of concrete. Such walling system can be used as shear elements in steel framed building subjected to lateral load. This paper presents the results of small-scale model tests on composite wall and its components manufactured from very thin sheeting and micro-concrete tested under monotonic and cyclic shear loading conditions. The heavily instrumented small-scale tests provided information on the load-deformation response, strength, stiffness, strain condition, sheet-concrete interaction and failure modes. Analytical models for shear strength and stiffness are derived with some modification factor to take into account the effect of quasi-static cycling loading. The performance of design equations is validated through experimental results.

Keywords

References

  1. ASCE-AASHTO Task Committee (1977), "Curved I-girder bridge design recommendations", J. Struct. Div., ASCE, ST5, 1137-1168.
  2. Bradford, M.A., Wright, H.D. and Uy, B. (1998), "Short and long-term behaviour of axially loaded composite profiled walls", Proc. Institution of Civil Engineers, Structures and Buildings, 128, Feb. 26-37. https://doi.org/10.1680/istbu.1998.30032
  3. British Standard Institutions (1985), BS 8110, Structural Use of Concrete, London.
  4. Davies, J.M. and Fisher, J. (1979), "The diaphragm action of composite slabs", Proc. Institution of Civil Engineers, London, England, 67 (Part2) 891-906. https://doi.org/10.1680/iicep.1979.2780
  5. Easley, J.T. (1975), "Buckling formulas for corrugated metal shear diaphragms", J. Struct. Div,, ASCE, 101(ST7), July, 1403-1417.
  6. Easterling, W.S. and Porter, M.L. (1994a), "Steel-deck-reinforced concrete diaphragms I", J. Struct. Div., ASCE, 120(2), February, 560-576. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:2(560)
  7. Easterling, W.S. and Porter, M.L. (1994b), "Steel-deck-reinforced concrete diaphragms II", J. Struct. Div., ASCE, 120(2), February, 577-596. https://doi.org/10.1061/(ASCE)0733-9445(1994)120:2(577)
  8. Gallocher, S.C. (1993), "The behaviour of composite wall with profiled steel sheeting", PhD Thesis, University of Strathclyde, Glasgow, UK.
  9. Hossain, K.M.A. (2000), "Axial behaviour of pierced profiled composite walls", IPENZ Transaction, 27(1/Civ), 1-7, 2000, New Zealand.
  10. Hossain, K.M.A. and Wright, H.D. (1998a), "Shear interaction between sheeting and concrete in profiled composite construction", Proc. of the Australasian Struct. Eng. Conf., Auckland, 30 Sept.-2 October, 1, 181-188 (ISBN 0-473-05481-7).
  11. Hossain, K.M.A. and Wright, H.D. (1998b), "Performance of profiled concrete shear panels", J. Struct. Eng., ASCE, 124(4), April, 368-381. https://doi.org/10.1061/(ASCE)0733-9445(1998)124:4(368)
  12. Hossain, K.M.A. and Wright, H.D. (1995), "Composite walling with special reference to the stabilisation of building frames", Proc. Nordic Steel Construction Conf., 531-538, Malmo, Sweden, June 19-21, 1995.
  13. Kupfer, H.B. and Gerstle, K.H. (1973), "Behaviour of concrete under bi-axial stresses", J. Eng. Mech. Div., ASCE, 99, 852-866.
  14. Luo, R. and Edlund, B. (1996), "Shear capacity of plate girders with trapezoidally corrugated webs", Thin Walled Structures, 26(1), 19-44. https://doi.org/10.1016/0263-8231(96)00006-7
  15. Wright, H.D. and Hossain, K.M.A. (1998), "In-plane shear behaviour of profiled steel sheeting", Thin Walled Structures, 29(1-4), 79-100.
  16. Wright, H.D. and Evans, H.R. (1995), "Profiled steel concrete sandwich elements for use in wall construction", Proc. of the Third Int. Conf. on Sandwich Construction, Southampton, 12-15, September, 1995.
  17. Wright, H.D., Evans, H.R. and Gallocher, S.C. (1992), "Composite walling, composite construction II", Engineering Foundation Conference, Missouri, June 14-19.
  18. Wright, H.D., Hossain, K.M.A. and Gallocher, S.C. (1994), "Composite walls as shear elements in tall structures", Proc. of Papers Presented at ASCE Structures Congress XII, Atlanta, GA, USA, April 24-28, 140-145.
  19. Wright, H.D. (1998), "The axial load behaviour of composite walling", J. Constructional Steel Research, 45(3), 353-375. https://doi.org/10.1016/S0143-974X(97)00030-8
  20. Wright, H.D. and Gallocher, S.C. (1995), "The behaviour of composite walling under construction and service loading", J. Constructional Steel Research, 35(3), 257-273. https://doi.org/10.1016/0143-974X(94)00051-I

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