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Behavior of Laterally Damaged Prestressed Concrete Bridge Girders Repaired with CFRP Laminates Under Static and Fatigue Loading

  • ElSafty, Adel (Civil Engineering, University of North Florida) ;
  • Graeff, Matthew K. (Reynolds, Smith, and Hills (RS&H)) ;
  • Fallaha, Sam (Florida Department of Transportation (FDOT))
  • Received : 2013.05.27
  • Accepted : 2013.08.14
  • Published : 2014.03.31

Abstract

Many bridges are subject to lateral damage for their girders due to impact by over-height vehicles collision. In this study, the optimum configurations of carbon fiber reinforced polymers (CFRP) laminates were investigated to repair the laterally damaged prestressed concrete (PS) bridge girders. Experimental and analytical investigations were conducted to study the flexural behavior of 13 half-scale AASHTO type II PS girders under both static and fatigue loading. Lateral impact damage due to vehicle collision was simulated by sawing through the concrete of the bottom flange and slicing through one of the prestressing strands. The damaged concrete was repaired and CFRP systems (longitudinal soffit laminates and evenly spaced transverse U-wraps) were applied to restore the original flexural capacity and mitigate debonding of soffit CFRP longitudinal laminates. In addition to the static load tests for ten girders, three more girders were tested under fatigue loading cycles to investigate the behavior under simulated traffic conditions. Measurements of the applied load, the deflection at five different locations, strains along the cross-section height at mid-span, and multiple strains longitudinally along the bottom soffit were recorded. The study investigated and recommended the proper CFRP repair design in terms of the CFRP longitudinal layers and U-wrapping spacing to obtain flexural capacity improvement and desired failure modes for the repaired girders. Test results showed that with proper detailing, CFRP systems can be designed to restore the lost flexural capacity, sustain the fatigue load cycles, and maintain the desired failure mode.

Keywords

References

  1. ACI Committee 440. (2008). ACI 440.2R-08 Guide for the design and construction of externally bonded FRP systems for strengthening concrete structures (p. 80). Farmington Hills, MI: American Concrete Institute.
  2. Choi, D.-U., Kang, T. H.-K., Ha, S.-S., Kim, K.-H., & Kim, W. (2011). Flexural and bond behavior of concrete beams strengthened with hybrid carbon-glass fiber-reinforced polymer sheets. ACI Structural Journal, 108(1), 90-98.
  3. Di Ludovico, M. (2003). Experimental behavior of prestressed concrete beams strengthened with FRP, Report CIES 03-42. Rolla, MO: University of Missouri.
  4. ElSafty, A., & Graeff, M. (2011). Investigating the most effective CFRP configuration in repairing damaged concrete beams due to collision, The 13th International Conference on Civil, Structural and Environmental Engineering Computing, Crete, Greece.
  5. ElSafty, A., & Fallaha, S. (2013). Behavior of laterally damaged bridge girders repaired with CFRP laminates under fatigue and static loading. Washington, DC: Transportation Research Board (TRB).
  6. Fu, C. C., Burhouse, J. R., & Chang, G. L. (2003). Study of overheight vehicles with highway bridges, Transportation research board.
  7. Grace, N. F., Ragheb, W. F., & Abdel-Sayed, G. (2003). Flexural and shear strengthening of concrete girders using new triaxially braided ductile fabric. ACI Structural Journal, 100(6), 693.
  8. Green, P. S., Boyd, A. J., & Lammert, K. (2004). CFRP repair of impact-damaged bridge girders, Vol. I: Structural evaluation of impact damaged prestressed concrete I girders repaired with FRP materials, BC-354 RPWO #55, Florida Department of Transportation.
  9. Ibrahim Ary, M., & Kang, T. H.-K. (2012). Shear-strengthening of reinforced and prestressed concrete beams using FRP: Part I-Review of previous research. International Journal of Concrete Structures and Materials, 6(1), 41-48. https://doi.org/10.1007/s40069-012-0004-1
  10. Kang, T. H.-K., & Ibrahim Ary, M. (2012). Shear-strengthening of reinforced and prestressed concrete beams using FRP: Part II-Experimental investigation. International Journal of Concrete Structures and Materials, 6(1), 49-57. https://doi.org/10.1007/s40069-012-0005-0
  11. Kasan, J. L. (2009). Structural repair of prestressed concrete bridge girders, MSCE Thesis, University of Pittsburgh, PA.
  12. Kasan, J. L., & Harries, K. A. (2009). Repair of impact-damaged prestressed concrete bridge girders with carbon fiber reinforced polymers, Asia-Pacific Conference on FRP in Structures, Seoul, Korea.
  13. Klaiber, W. F., Wipf, T. J., & Kempers, B. J. (2003). Repair of damaged prestressed concrete bridges using CFRP, Mid- Continent Transportation Research Symposium, Iowa State University, Ames, IA.
  14. Nanni, A., Huang, P. C., & Tumialan, J. G. (2001). Strengthening of impact-damaged bridge girder using FRP laminates'', 9th International Conference, Structural Faults and Repair. London, UK: Engineering Technics Press.
  15. NCHRP R-514. (2004). National Cooperative Highway Research Program. Bonded repair and retrofit of concrete structures using FRP composites: recommended construction specifications and process control manual, Washington, DC.
  16. NCHRP R-655. (2010). National Cooperative Highway Research Program. Recommended guide specification for the design of externally bonded FRP systems for repair and strengthening of concrete bridge elements, Washington, DC.
  17. Razaqpur, G. A., & Isgor, B. (2006). Proposed shear design method for FRP-reinforced concrete members without stirrups. ACI Structural Journal, 103(1), 93.
  18. Rosenboom, O., & Rizkalla, S. (2007). Analytical modeling of flexural debonding in CFRP strengthened reinforced or prestressed concrete beams. Proceedings of the 8th International Symposium on Fiber Reinforced Polymer Reinforcement for Concrete Structures (FRPRCS-8).
  19. Schiebel, S., Parretti, R., & Nanni, A. (2001). Repair and strengthening of impacted PC girders on bridge, Report A4845, Missouri Department of Transportation.
  20. Shanafelt, G. O., & Horn, W. B. (1980). Damage evaluation and repair methods for prestressed concrete bridge members, NCHRP Report 226, Project No. 12-21, Transportation Research Board, Washington, DC.
  21. Shanafelt, G. O., & Horn, W. B. (1985). Guidelines for evaluation and repair of prestressed concrete bridge members, NCHRP Report 280, Project No. 12-21(1), Transportation Research Board, Washington, DC.
  22. Shin, Y., & Lee, C. (2003). Flexural behavior of reinforced concrete girders strengthened with carbon fiber-reinforced polymer laminates at different levels of sustaining load. ACI Structural Journal, 100(2), 139.
  23. Stallings, J. M., Tedesco, J. W., El-Mihilmy, M., & McCauley, M. (2000). Field performance of FRP bridge repairs. Journal of Bridge Engineering, 05(5), 107-113. https://doi.org/10.1061/(ASCE)1084-0702(2000)5:2(107)
  24. Tumialan, J. G., Huang, P. C., & Nanni, A. (2001). Strengthening of an impacted PC girder on bridge A10062, Final Report RDT01-013/RI99-041, Missouri Department of Transportation.

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