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Flexural analysis of steel fibre-reinforced concrete members

  • Chalioris, Constantin E. (Department of Civil Engineering, Scholl of Engineering, Democritus University of Thrace, Laboratory of Reinforced Concrete and Seismic Design of Structures) ;
  • Panagiotopoulos, Thomas A. (Department of Civil Engineering, Scholl of Engineering, Democritus University of Thrace, Laboratory of Reinforced Concrete and Seismic Design of Structures)
  • 투고 : 2017.06.12
  • 심사 : 2018.04.04
  • 발행 : 2018.07.25

초록

A numerical approach for the evaluation of the flexural response of Steel Fibrous Concrete (SFC) cross-sections with arbitrary geometry, with or without conventional steel longitudinal reinforcing bars is proposed. Resisting bending moment versus curvature curves are calculated using verified non-linear constitutive stress-strain relationships for the SFC under compression and tension which include post-peak and post-cracking softening parts. A new compressive stress-strain model for SFC is employed that has been derived from test data of 125 stress-strain curves and 257 strength values providing the overall compressive behaviour of various SFC mixtures. The proposed sectional analysis is verified using existing experimental data of 42 SFC beams, and it predicts the flexural capacity and the curvature ductility of SFC members reasonably well. The developed approach also provides rational and more accurate compressive and tensile stress-strain curves along with bending moment versus curvature curves with regards to the predictions of relevant existing models.

키워드

참고문헌

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