Technical Papers
Aug 7, 2012

Reliability Assessment of FRP-Strengthened Concrete Bridge Girders in Shear

Publication: Journal of Composites for Construction
Volume 17, Issue 1

Abstract

This paper presents the results from an investigation into the reliability of reinforced concrete bridge girders strengthened in shear using fiber-reinforced polymers (FRP). Two expressions for the shear design of FRP-strengthened girders were developed as part of a National Cooperative Highway Research Program project. The expressions were developed for two distinct cases, namely, bonded and anchored FRP reinforcement. Uncertainties inherent in the new design models were first assessed using an extensive database of hundreds of experimentally tested specimens. Variabilities in material, fabrication tolerances, dead and live loads, and distribution factors obtained from the literature were then included in a limit state function for the shear strength mode of failure. The reliability of a representative design space comprising 18 bridge girders that cover different span lengths, shear deficiency levels, and girder location (exterior versus interior) was calculated for both bonded and anchored strengthening techniques. The use of approximate expressions for reliability index calculations was deemed unacceptable because of the high scatter in the results. This paper discusses the difference between two reliability methods [Monte Carlo simulations and first-order reliability method (FORM)] that were first used to ensure the validity of FORM in analyzing the developed limit state function. The results showed that the new design expressions result in reliability index values in the range targeted by most design codes (3.00–3.50), albeit lower than the target value used in the calibration of AASHTO load and resistance factor design (LRFD) (β=3.50) in some cases.

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Acknowledgments

This material is based upon work sponsored by the American Association of State Highway and Transportation Officials, in cooperation with the Federal Highway Administration, and was conducted as part of the National Cooperative Highway Research Program Project No. 12–75, administered by the Transportation Research Board of the National Research Council, with Amir Hanna as project manager. Any opinions, findings, and conclusions or recommendations expressed in this material are those of the authors and do not necessarily reflect the views of the sponsoring agencies.

References

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Published In

Go to Journal of Composites for Construction
Journal of Composites for Construction
Volume 17Issue 1February 2013
Pages: 91 - 100

History

Received: Jan 30, 2012
Accepted: Jun 5, 2012
Published online: Aug 7, 2012
Published in print: Feb 1, 2013

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Authors

Affiliations

Ayman M. Okeil [email protected]
M.ASCE
Associate Professor, Dept. of Civil and Environmental Engineering, Louisiana State Univ., Baton Rouge, LA 70803 (corresponding author). E-mail: [email protected]
Abdeldjelil Belarbi [email protected]
F.ASCE
Hugh Roy and Lillie Cranz Cullen Professor and Chair, Dept. of Civil and Environmental Engineering, Univ. of Houston, Houston, TX 77204. E-mail: [email protected]
Daniel A. Kuchma [email protected]
Associate Professor, Dept. of Civil and Environmental Engineering, Univ. of Illinois, Urbana, IL 70803. E-mail: [email protected]

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