Development of cost-effective PL-3 concrete bridge barrier reinforced with sand-coated glass fibre reinforced polymer (GFRP) bars: vehicle crash test

Author:

Sennah K.1,Khederzadeh H.R.1

Affiliation:

1. Civil Engineering Department, Ryerson University, 350 Victoria, Toronto, ON M5B 2K3, Canada.

Abstract

Corrosion of steel reinforcement due to environmental effects is a major cause of deterioration problems in bridge barriers. Glass fibre reinforced polymer (GFRP) bars, as a suitable alternative, addresses the corrosion-related problems of steel reinforcing bars. Recent research work conducted at Ryerson University on PL-3 bridge barrier proposed a cost-effective barrier configuration incorporating high-modulus GFRP bars with headed ends. To qualify the developed barrier configuration for use in bridge construction, a full-scale PL-3 barrier wall of 27.6 m length was constructed to perform vehicle crash testing. The crash test was performed in accordance with MASH Test Level 5 (TL-5). Evaluation criteria for full-scale vehicle crash testing were based on three appraisal areas namely: (i) structural adequacy; (ii) occupant risk; and (iii) vehicle trajectory after collision. Crash test results showed that the barrier contained and redirected the vehicle. The vehicle did not penetrate or override the parapet. No detached elements, fragments, or other debris from the barrier were present to penetrate or show potential for penetrating the occupant compartment, or to present undue hazard to others in the area. No occupant compartment deformation occurred. The test vehicle remained upright during and after the collision event. Estimates of the equivalent impact force and associated energy absorbed by the barrier wall due to vehicle impact were deduced.

Publisher

Canadian Science Publishing

Subject

General Environmental Science,Civil and Structural Engineering

Reference15 articles.

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3. AASHTO. 2012. AASHTO-LRFD Bridge Design Specifications. Third Edition, American Association of State Highway and Transportation Officials, Washington, DC.

4. Buth, C., Hirsh, T., and Menges, W. 1993a. Testing of New Bridge Rail and Transition Design-Volume XI: Appendix J: 42 in (1.07 m) F-Shape Bridge Railing. Report No. FHWA-RD-93-068, Pooled Funds Bridge Rail Study, Federal Highway Administration, Washington, D.C., September, 64 pages.

5. Buth, C., Hirsh, T., and Menges, T. 1993b. Testing of New Bridge Rail and Transition Design-Volume X: Appendix I: 42 in (1.07 m) Concrete Parapet Bridge Railing. Report No. FHWA-RD-93-067, Pooled Funds Bridge Rail Study, Federal Highway Administration, Washington, D.C., September, 42 pages.

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