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Safety design of steel beams with time-dependent stability

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The expediency of using probability-based approaches in the analysis of rolled and welded steel beams subjected to lateral torsional buckling is discussed. Buckling resisting moments and their mechanical uncertainties for rolled and equivalent welded flanged steel sections as particular members are analyzed. Time-dependent statistics of resisting and bending moments of steel beams is considered and their essential features are determined. Instantaneous and time-dependent survival probabilities of deteriorating and non-deteriorating steel beams in consecutive and cascade levels are also considered. Probabilistic design of steel beams with time-dependent stability is based on the generalized reliability index concept. Differences in design computation results of rolled and welded steel beams under lateral torsional buckling obtained by using the consecutive and cascade approaches are illustrated by a numerical example.
Rocznik
Strony
112--118
Opis fizyczny
Bibliogr. 31 poz., wykr.
Twórcy
autor
  • Vilnius Gediminas Technical University, Civil Engineering Faculty, Sauletekioav. 11, LT-10223 Vilnius, Lithuania
Bibliografia
  • [1] N.S. Trahair, M.A. Bradford, D.A. Nethercot, L. Gardner, The Behavior and Design of Steel Structures to EC3, Taylor and Francis, New York, 2008.
  • [2] N.S. Trahair, Flexural–Torsional Buckling of Structures, E & FN Spon, London, 1993.
  • [3] JCSS, Probabilistic Model Code: Part 1 Basis of Design, Joint Committee on Structural Safety, 2000.
  • [4] ISO 2394, General Principles on Reliability for Structures, Switzerland, 1998.
  • [5] EN 1990, Eurocode-Basic of Structural Design, Brussels, CEN, 2002.
  • [6] A.K. Kvedaras, Stability and ductility of structures, Journal of Civil Engineering and Management 16 (2) (2010) 155–158.
  • [7] I. Misiunaite, A. Daniunas, A. Juozapaitis, Unconventional double-level structural system for under-deck cable-stayed bridges, Journal of Civil Engineering and Management 18 (3) (2012) 436–443.
  • [8] EN 1993-1-1, Eurocode 3: Design of Steel Structures, Part 1–1, General Rules and Rules for Buildings, Brussels, CEN, 2004.
  • [9] M. Sulyok, A. Selimbegivic ˇ, Structural reliability of the steel beams and plate girders, in: Proceedings of the International Conference on Steel and Space Structures, Singapore, 2002, pp. 289–296.
  • [10] A. Kudzys, O. Lukoseviciene, A.K. Kvedaras, Computational probabilistic design of time-dependent stability of steel beams, in: Proceedings of the 10th International Conference on Computational Structures Technology, Civil-Comp Press, Stirlingshire, Scotland, Paper 153, 2010.
  • [11] Y. Mori, B.R. Ellingwood, Time-dependent system reliability analysis by adaptive importance sampling, Structural Safety 12 (1993) 59–73.
  • [12] Y. Mori, M. Nonaka, LRFD for assessment of deteriorating existing structures, Structural Safety 23 (2001) 297–313.
  • [13] C. Bob, Probabilistic assessment of concrete structures durability, in: Safety, Risk, Reliability Trends in Engineering Conference, Malta, 2001, pp. 149–154.
  • [14] R.E. Melchers, Structural Reliability Analysis and Prediction, John Wiley, Chichester, 1999.
  • [15] M. Holicky, J. Markova, Reliability differentiation and production quality in codes, in: Aven, Vinnem (Eds.), Risk, Reliability and Societal Safety, Taylor & Francis Group, London, 2007 (pp. 1763–1768).
  • [16] H.P. Hong, N.C. Lind, Approximate reliability analysis using normal polynomial and simulation results, Structural Safety 18 (4) (1996) 329–339.
  • [17] A.C.W.M. Vrouwenvelder, Developments towards full probabilistic design codes, Structural Safety 24 (2–4) (2002) 417–432.
  • [18] M. Holicky, M. Sykora, Safety of Light Weight Steel Roofs Exposed to Snow Load, Eurosteel 2008, Graz, Austria, 2008, pp. 797–802.
  • [19] A. Kudzys, R. Kliukas, Probability-based design of spun concrete beam-columns, Journal of Civil Engineering and Management 16 (4) (2010) 451–461.
  • [20] Ch. Liu, Reliability validation of multigirder steel bridges designed by LRFD, Computers and Structures 80 (2002) 2515–2527.
  • [21] W. Zhou, H.P. Hong, System and member reliability of steel frames, Steel and Composite Structures 4 (6) (2004) 419–435.
  • [22] Z. Kala, J. Melcher, L. Puklicky, Material and geometrical characteristics of structural steels based on statistical analysis of metallurgical products, Journal of Civil Engineering and Management 15 (3) (2009) 299–307.
  • [23] Z. Kala, Geometrically non-linear finite element reliability analysis of steel plane frames with initial imperfections, Journal of Civil Engineering and Management 18 (1) (2012) 81–90.
  • [24] W. Pula, A. Rozanski, Reliability of rigid piles subjected to lateral loads, Archives of Civil and Mechanical Engineering 12 (2) (2012) 205–218.
  • [25] U. Radon, Reliability analysis of Misses truss, Archives of Civil and Mechanical Engineering 11 (3) (2011) 723–738.
  • [26] B.R. Raizer, Theory of Reliability in Structural Design, ACB Publishing House, Moscow, 1998.
  • [27] EN 1994-1-1, Eurocode 4: Design of Composite Steel and Concrete Structures, Part1-1. General Rules and Rules for Buildings, Brussels, 2004.
  • [28] A. Kudzys, O. Lukoseviciene, Cascade resistance-drop approach in time-dependent structural safety design, in: Proceedings of the 10th International Conference on Modern Building Materials, Structures and Techniques, Vilnius, Lithuania, 2010, pp. 957–962.
  • [29] A. Kudzys, Transformed conditional probabilities in analysis of stochastic sequences, Summer Safety and Reliability Seminars, SSARS 2007, Gdansk–Sopot, Poland, 2007, pp. 243–250.
  • [30] A. Biegus, D. Wojczyszyn, Studies on buckling lengths of chords for out-of-plane instability, Archives of Civil and Mechanical Engineering 11 (3) (2011) 507–517.
  • [31] M. Leitner, T. Fossl, M. Stochka, W. Eichlseder, Evaluation of fillet weld properties and fatigue behaviour in dependence of welding parameters, Archives of Civil and Mechanical Engineering 11 (3) (2011) 651–660.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-51cb9ef4-8c76-4480-b808-50b0cf441ea7
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