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Analysis of behaviour for hollow/solid concrete-filled CHS steel beams

  • Kvedaras, Audronis Kazimieras (Department of Steel and Timber Structures, Department of Structural Mechanics, Vilnius Gediminas Technical University) ;
  • Sauciuvenas, Gintas (Department of Steel and Timber Structures, Department of Structural Mechanics, Vilnius Gediminas Technical University) ;
  • Komka, Arunas (Department of Steel and Timber Structures, Department of Structural Mechanics, Vilnius Gediminas Technical University) ;
  • Jarmolajeva, Ela (Department of Steel and Timber Structures, Department of Structural Mechanics, Vilnius Gediminas Technical University)
  • Received : 2014.06.27
  • Accepted : 2015.06.01
  • Published : 2015.08.25

Abstract

Interaction between the external thin-walled steel tube and the internal concrete core significantly increases the bending resistance of composite beams and beam-columns in comparison with the steel or concrete members. There is presented a developed method for design of hollow and solid concrete-filled steel tubular beams based on test data, which gives better agreement with test results than EC4 because its limitation to take an increase in strength of concrete caused by confinement contradicts the recommendation of 6.7.2(4) that full composite action up to failure may be assumed between steel and concrete components of the member. Good agreement between the results of carried out experimental, numerical and theoretical investigations allows recommending the proposed method to use in design practice.

Keywords

References

  1. BS: 5400 (1979), Steel, Concrete and Composite Bridges; Part 5 Code of Practice for Design of Composite Bridges, British Standards Institution, London, UK.
  2. CEB-FIB (1993), CEB-FIB: Model Code 1990 - Design Code; Thomas Telford.
  3. CEN (2004), EN 1994-1-1: Design of Composite Steel and Concrete Structures - Part 1-1: General rules and rules for buildings, Brussels, Belgium.
  4. COMSOL (2010), Multiphysics User's Guide, COMSOL AB.
  5. Elchalakani, M., Zhao, X.L. and Grzebieta, R.H. (2001), "Concrete-filled circular steel tubes subjected to pure bending", J. Construct. Steel Res., 57, 1141-1168. https://doi.org/10.1016/S0143-974X(01)00035-9
  6. Goode, C.D., Kuranovas, A. and Kvedaras, A.K. (2010), "Buckling of slender composite concrete-filled steel columns", J. Civil Eng. Manag., 16(2), 230-237. https://doi.org/10.3846/jcem.2010.26
  7. Han, L.H. (2004), "Flexural behaviour of concrete filled steel tubes", J. Construct. Steel Res., 60(2), 313-337. https://doi.org/10.1016/j.jcsr.2003.08.009
  8. Jiang, A-Y., Chen, J. and Jin, W-L. (2013a), "Bending strength of thin walled centrifugal concrete-filled steel tubes", Res. J. Appl. Sci. Eng. Technol., 5(3), 801-811. ISSN: 2040-7459; E-ISSN: 2040-7467, Maxwell Scientific Organization.
  9. Jiang, L., Qi, J., Scanlon, A. and Sun, L. (2013b), "Distortional and local buckling of steel-concrete composite box-beam", Steel Compos. Struct., Int. J., 14(3), 243-265. https://doi.org/10.12989/scs.2013.14.3.243
  10. Kikin, A.J., Sanzharovsky, R.S. and Trull, V.A. (1974), Concrete Filled Steel Tubular Structures, Strojizdat Moscow, USSR. [In Russian]
  11. Kvedaras A.K. (1983), Metal Structures of Concrete Filled Tube; Editorial Publishing Council of the Lithuanian Ministry for High Education, Vilnius, Lithuania. [In Lithuanian]
  12. Kvedaras, A.K. (1999), "Light-weight hollow concrete-filled steel tubular members in bending", Proceedings of Light-weight Steel and Aluminium Structures CSAS'99 Fourth International Conference on Steel and Aluminium Structures, Espoo, Finland, June, pp. 755-760.
  13. Kvedaras, A.K. and Sapalas, A. (1998), "Research and practice of concrete-filled steel tubes in Lithuania", J. Construct. Steel Res., 49(2), 197-212. https://doi.org/10.1016/S0143-974X(98)00218-1
  14. Kvedaras, A.K. and Kudzys, A. (2010), "Tubular composite beam-columns of annular cross-sections and their design practice", Steel Compos. Struct., Int. J., 10(2), 109-128. https://doi.org/10.12989/scs.2010.10.2.109
  15. Kvedaras, A.K., Sauciuvenas, G. and Jarmolajeva, E. (2013), "Behaviour of hollow and solid concrete-filled circular steel tubular simple beams", Proceedings of International Conference on Design, Fabrication and Economy of Metal Structures, Miskolc, Hungary, April, pp. 569-576.
  16. Luksha, L.K. (1977), Strength of Pipe-Concrete, Higher School, Minsk, USSR. (In Russian)
  17. Makelainen, P. and Maliska, M. (1997), "Design tubular composite columns according to the Finnish Code and comparison with Eurocode 4", Proceedings of Concrete Filled Steel Tubes. A Comparison of International Codes and Practices, pp. 39-58.
  18. Matzumoto, Y., Fukuzawa, K. and Endo, H. (1976), "Manufacture and behaviour of hollow composite member", Final Report of 10th Congress of IABSE, Tokyo, September, pp. 389-394.
  19. Montague, P. (1978), "The experimental behaviour of double skinned, composite, circular cylindrical shells under external pressure", J. Mech. Eng. Sci., 20(1), 21-34. https://doi.org/10.1243/JMES_JOUR_1978_020_005_02
  20. Montoya, E., Vecchio, F.J. and Sheikh, S.A. (2006), "Compression field modelling of confined concrete: constitutive models", J. Mater. Civil Eng., ASCE, 18(4), 510-517. https://doi.org/10.1061/(ASCE)0899-1561(2006)18:4(510)
  21. Oyawa, W.O., Sugiura, K. and Watanabe, E. (2004), "Flexural response of polymer concrete filled steel beams", Construct. Build. Mater., 18(6), 367-376. https://doi.org/10.1016/j.conbuildmat.2004.03.009
  22. Pereira, E.B. and Barros, J.A.O. (2009), "3D behaviour of a 4 parameter isotropic nonlinear hardening plasticity model for concrete", Proceedings of CMNE 2009 - Congress on Numerical Methods in Engineering, Barcelona, Spain, pp. 1-20.
  23. Sanjayan, J.G. and Setunge, S. (2001), "Complete triaxial stress-strain curves of high-strength concrete", J. Mater. Civil Eng., ASCE, 13(3), 209-215. https://doi.org/10.1061/(ASCE)0899-1561(2001)13:3(209)
  24. Uenaka, K. and Kitoh, H. (2011), "Mechanical behaviour of concrete filled double skin tubular circular deep beam", Thin-Wall. Struct., 49(2), 256-263. https://doi.org/10.1016/j.tws.2010.10.005
  25. Valsa Ipe, T., Sharada Bai, H., Manjula Vani, K. and Iqbal, M. (2013), "Flexural behavior of cold-formed steel concrete composite beams", Steel Compos. Struct., Int .J., 14(2), 105-120. https://doi.org/10.12989/scs.2013.14.2.105
  26. Wheeler, A. and Bridge, R. (2011), "Flexural behaviour of concrete-filled thin-walled steel tubes with longitudinal reinforcement", Proceedings of Engineering Foundation Conference Composite Construction in Steel and Concrete VI, ASCE, New York, NY, USA, pp. 225-236.
  27. Zhao, X.L., Grzebieta, R. and Elchlakani, M. (2002), "Tests of concrete-filled double skin CHS composite stub columns", Steel Compos. Struct., Int. J., 2(2), 58-98.

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