Vol. 20 No. 2 (2017) Cover Image
Vol. 20 No. 2 (2017)

Published: March 31, 2017

Pages: 341-352

Articles

Performance of Composite Steel-Concrete Beams with Stud Shear Connectors under Periodical Loadings

Abstract

Behavior of composite beams with headed stud shear connectors subjected to monotonous and displacement controlled non-reversible repeated loadings has been evaluated through studying influences of the cross-sectional proportioning, the degree of partial interaction, and the level of ductile deformability in the post-yielding stage, in addition to the state of loading (whether monotonous or repeated). Eleven one- third scaled composite beams (with their push-out segments) were manufactured and tested in five pairs (each comprising the two loading cases representing one varying studied parameter) beside the single standard composite beam dedicated to verify accuracy of the test results by comparing them to the prototype ones (three authorized experimental and analytical investigations) where no distinction (other than 7 % difference) between the results of the three authorized refereed investigations (experimental, analytical and Eurocode) and the present one.Regarding the flexural resistance in repeatedly loaded composite beams, it has been found that lowering the neutral axis (by adding bottom steel plate) has significantly increased the beam flexural resistance by an average of 24.7 %. Meanwhile, the intensity of headed studs distribution in stiffened repeatedly loaded composite beams has revealed a vital role in controlling the severity of the post-ultimate flexural weakening, where decreasing number of the headed studs to the half has increased the value of that unfavorite parameter by 160.58%. Furthermore, that specified decrease of headed stud intensity has lowered the advantageous residual cyclic flexural ductility by 19.37 % and 11.48 % without and with stiffening bottom steel plates, respectively. Regarding the effect of the lengthening the headed stud on behaviour of the repeatedly loaded composite beams it has been found that lengthening the medium-length headed studs by 72% has raised the flexural stiffness by 41.1 %, while it has decreased the residual cyclic slippage index by 54.3 %.

References

  1. Mohammed S. Jaafar (2015) “Fatigue Resistance and Performance of Composite Steel-Concrete Beams with Stud Shear Connectors”, M.Sc. Thesis, College of Engineering, AL-Nahrain University.
  2. Al-Amery, R. I. M. and Roberts. T. M. (1990) “Nonlinear Finite Difference Analysis of Composite Beams with Partial Interaction)”, International Journal of Computers and Structures, Vol.35 No. 1
  3. Chapman, J.C. and Balakerishnan, S., (1964) “Experimental on Composite Beams”, Structural Eng., Vol. 45, No.11 pp. 369-383.
  4. EC 4, Eurocode 4 (2004). ENV 1994 “Design of composite steel and concrete structures – Part 1: General Rules and Rules for Buldings).
  5. Hama, (2014). “Nonlinear Behavior of Strengthened Steel Concrete Composite Beams with Partial Interaction of Shear Connectors”, M. Sc. Thesis, the College of Engineering of the University of Baghdad.
  6. Johnson, R. P. (2000). “Resistance of stud shear connectors to fatigue”. Journal of Constructional Steel Research.Vol 56, p 101-116.
  7. Johnson, R.P. & Oehlers, D.J. (1996) “Integrated static and fatigue design or assessment of stud shear connections in composite bridges”. The Structural Engineer.74 (14).
  8. Oehlers, D.J. (1990). “Deterioration in strength of stud connectors in composite bridge beams”. Journal of Structural Engineering. 116 (12), p 3417-3431.
  9. Oehlers D.J. (1990). “Methods of estimating the fatigue endurances of stud shear connections”. IABSE Proceedings P-145/90, IABSE Periodica 3/1990, p 65-84.
  10. Yam L.C.P., and Chapman J. C., (1968), “The Inelastic Behavior of the Simple Supported Composite Beams of Steel and Concrete”, Proc. Inst. Civil Engrs.