Experimental investigation on the effect of longitudinal reinforcement on shear strength of fibre reinforced polymer reinforced concrete beams

Author:

Alam M.S.1,Hussein A.1

Affiliation:

1. Faculty of Engineering and Applied Science, Memorial University of Newfoundland, St. John’s, NL A1B 3X5, Canada.

Abstract

The shear design equation of CSA S806-02 does not consider the effect of the axial stiffness of the reinforcing bars for beams with effective depth greater than 300 mm. This paper examines the shear strength of such beams without stirrups. A total of 16 beams reinforced with GFRP, CFRP, and steel bars were tested under four-point monotonic loading. The test results were analyzed and compared with the predictions of CSA S806-02 shear design equation. It was observed that the conservatism of CSA S806-02 prediction, for beams with effective depth greater than 300 mm, increased with the increase in the axial stiffness of the reinforcing bars. Based on the test results, a modification to the CSA S806-02 shear design equation is proposed. The proposed modification was found to be consistent for predicting the shear strength of beams with different axial stiffness of the reinforcing bars.

Publisher

Canadian Science Publishing

Subject

General Environmental Science,Civil and Structural Engineering

Reference9 articles.

1. Alkhrdaji, T., Wideman, M., Belarbi, A., and Nanni, A. 2001. Shear strength of GFRP-RC beams and slabs. Composites in Construction. Edited by Figueiras et al. Swets and Zeitlinger, Lisse.

2. Canadian Standard Association (CSA). 2002. Design and construction of building components with fibre reinforced polymers. CSA S806-02, Rexdale, Ontario, Canada.

3. Fibre-reinforced polymer composite bars for the concrete deck slab of Wotton Bridge

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