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Flexural-torsional buckling tests of cold-formed steel compression members at elevated temperatures

  • Heva, Yasintha Bandula (Faculty of Built Environment and Engineering, Queensland University of Technology) ;
  • Mahendran, Mahen (Faculty of Built Environment and Engineering, Queensland University of Technology)
  • Received : 2010.08.10
  • Accepted : 2012.05.17
  • Published : 2013.03.25

Abstract

Current design standards do not provide adequate guidelines for the fire design of cold-formed steel compression members subject to flexural-torsional buckling. Eurocode 3 Part 1.2 (2005) recommends the same fire design guidelines for both hot-rolled and cold-formed steel compression members subject to flexural-torsional buckling although considerable behavioural differences exist between cold-formed and hot-rolled steel members. Past research has recommended the use of ambient temperature cold-formed steel design rules for the fire design of cold-formed steel compression members provided appropriately reduced mechanical properties are used at elevated temperatures. To assess the accuracy of flexural-torsional buckling design rules in both ambient temperature cold-formed steel design and fire design standards, an experimental study of slender cold-formed steel compression members was undertaken at both ambient and elevated temperatures. This paper presents the details of this experimental study, its results, and their comparison with the predictions from the current design rules. It was found that the current ambient temperature design rules are conservative while the fire design rules are overly conservative. Suitable recommendations have been made in relation to the currently available design rules for flexural-torsional buckling including methods of improvement. Most importantly, this paper has addressed the lack of experimental results for slender cold-formed steel columns at elevated temperatures.

Keywords

References

  1. American Iron and Steel Institute (AISI) (2007), North American Specification for the Design of Cold-formed Steel Structural Members, AISI, Washington, DC, USA.
  2. Ali, F. and O'Connor, D. (2001), "Structural performance of rotationally restrained steel columns in fire," Fire Safety J., 36(7), 679-691. https://doi.org/10.1016/S0379-7112(01)00017-0
  3. Bandula Heva, Y. (2009) Behaviour and Design of Cold-formed Steel Compression Members at Elevated Temperatures, PhD Thesis, QUT, Brisbane, Australia.
  4. British Standards Institution (BSI) (1998), British Standard 5950: Structural Use of Steelwork in Buildings, Part 5: Code of Practice for Design of Cold-formed Thin Gauge Sections, London, UK.
  5. British Standards Institution (BSI) (2005), British Standard 5950: Structural Use of Steelwork in Buildings, Part 8: Code of Practice for Fire Resistant Design, London, UK.
  6. Burgrees, I.W., Olawale, A.O. and Plank, R.J. (1992), "Failure of steel columns in fire", Fire Safety J., 18(2), 183-201. https://doi.org/10.1016/0379-7112(92)90037-D
  7. Chen, J. and Young, B. (2007a), "Cold-formed steel lipped channel columns at elevated temperatures, Eng. Struct.", 29(10), 2445-2456. https://doi.org/10.1016/j.engstruct.2006.12.004
  8. Chen, J. and Young, B. (2007b), "Experimental investigation of cold-formed steel material at Elevated temperatures", Thin-Walled Struct., 45(1), 96-110. https://doi.org/10.1016/j.tws.2006.11.003
  9. Dolamune Kankanamge, N. and Mahendran, M. (2010). "Mechanical properties of cold-formed steels at elevated temperatures", Thin-Walled Struct., 49(1), 26-44.
  10. European Committee for Standardization (ECS) (2005) Eurocode 3 EN 1993-1-2, Design of Steel Structures, General Rules, Structural Fire Design, Brussels, Belgium.
  11. European Committee for Standardization (ECS) (2006) Eurocode 3 EN 1993-1-3 Design of Steel Structures, General rules - Supplementary rules for Cold-formed Thin Gauge Members and Sheeting, Brussels, Belgium.
  12. Feng, M., Wang, Y. C. and Davies J. M. (2003a), "Structural behaviour of cold-formed thin-walled short steel channel columns at elevated temperatures, Part 1: Experiments", Thin-Walled Struct., 41(6), 543-570. https://doi.org/10.1016/S0263-8231(03)00002-8
  13. Feng, M., Wang, Y.C. and Davies, J.M. (2003b), "Structural behaviour of cold-formed thin-walled short steel channel columns at elevated temperatures. Part 2: Design calculations and numerical analysis", Thin-Walled Struct., 41(6), 571-594. https://doi.org/10.1016/S0263-8231(03)00003-X
  14. Feng, M., Wang, Y.C. and Davies, J.M. (2003c), "Axial strength of cold-formed thin-walled steel channels under non-uniform temperatures in fire," Fire Safety J., 38(8), 679-707. https://doi.org/10.1016/S0379-7112(03)00070-5
  15. Feng, M., Wang, Y.C. and Davies, J.M. (2004), "A numerical imperfection sensitivity study of cold-formed thin-walled tabular steel columns at uniform elevated temperatures", Thin-Walled Struct., 42(4), 533-555. https://doi.org/10.1016/j.tws.2003.12.005
  16. Franssen, J.M., Cooke, G.M.E. and Latham, D.J. (1995), "Numerical simulation of a full scale fire test on a loaded steel framework", J. of Constr. Steel Res., 35(3), 377-408. https://doi.org/10.1016/0143-974X(95)00010-S
  17. Franssen, J.M., Schleich, J.B., Cajot G.L. and Azpaizu, W. (1996), "A simple model for the fire resistance of axially loaded members compression with experimental results", J. of Constr. Steel Res., 37(3), 175-204. https://doi.org/10.1016/0143-974X(96)00008-9
  18. Ranawaka, T. and Mahendran, M. (2009a), "Experimental study of the mechanical properties of light gauge cold-formed steels at elevated temperatures", Fire Safety J., 44(2), 219-229. https://doi.org/10.1016/j.firesaf.2008.06.006
  19. Ranawaka, T. and Mahendran, M. (2009b), "Distortional buckling tests of cold-formed steel compression members at elevated temperatures", J. of Constr. Steel res., 65(2), 249-259. https://doi.org/10.1016/j.jcsr.2008.09.002
  20. Ranawaka, T. and Mahendran, M. (2009c), "Numerical modelling of light gauge cold-formed steel compression members subjected to distortional buckling at elevated temperatures", Thin-Walled Struct., 48(4-5), 334-344.
  21. Ranby, A. (1998) "Structural fire design of thin-walled steel sections", J. of Constr. Steel Res.", 46(1-3), 303-304. https://doi.org/10.1016/S0143-974X(98)00118-7
  22. Standards Australia (SA) (2005) Australian/New Zealand Standard, AS/NZS 4600:2005, Cold-formed Steel Structures, Sydney, Australia.
  23. Schafer, B.W. (2001), Thin-walled Column Design Considering Local, Distortional and Euler Buckling, Proceedings of the Structural Stability Research Council Annual Stability Conference, Ft. Lauderdale, FL, USA, 419-438.
  24. Talamona, D., Franssen, J.M., Schleich, J.B., and Kruppa, J. (1997), "Stability of steel columns in case of fire: Numerical modelling", J. of Struct. Eng., 123(6), 713-720. https://doi.org/10.1061/(ASCE)0733-9445(1997)123:6(713)
  25. Wang, Y.C. and Davies, J.M. (2003a), "Fire tests of non-sway loaded and rotationally restrained steel column assemblies", J. of Constr. Steel Res., 59(3), 359-383. https://doi.org/10.1016/S0143-974X(02)00035-4
  26. Wang, Y.C. and Davies, J.M. (2003b), "An experimental study of non-sway loaded and rotationally restrained steel column assemblies under fire conditions: Analysis of test results and design calculations", J. of Constr. Steel Res., 59(3), 291-313. https://doi.org/10.1016/S0143-974X(02)00040-8
  27. Yang, K.C., Lee, H.H. and Chen, O. (2006), "Performance of Steel H Columns Loaded under Uniform Temperature", J. of Constr. Steel Res., 62(3), 262-270. https://doi.org/10.1016/j.jcsr.2005.07.001

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