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Behavior and stress check of concrete box girders strengthened by external prestressing

  • Zhang, Yu (Department of Bridge Engineering, Tongji University) ;
  • Xu, Dong (Department of Bridge Engineering, Tongji University) ;
  • Liu, Chao (Department of Bridge Engineering, Tongji University)
  • 투고 : 2017.02.23
  • 심사 : 2018.05.17
  • 발행 : 2018.08.25

초록

The deterioration of existing bridges has become a major problem around the world. In the paper, a new model and an associated stress checking method are proposed for concrete box girders strengthened by external prestressing. The new model called the spatial grid model can analyze all the spatial behaviors clearly by transforming the box girder into discrete orthogonal grids which are equivalent to plate elements. Then the three-layer stresses are employed as the stress checking indices to evaluate the stress state of the plate elements. The initial stress check before strengthening reveals the cracked and potential cracking areas for existing bridges, making the strengthening design more targeted and scientific; the subsequent stress check after strengthening evaluates the strengthening effect and ensures safety. A deficient bridge is selected as the practical example, verifying the accuracy and applicability of the proposed model and stress checking method. The results show that principal stresses in the middle layer of plate elements reflect the main effects of external prestressing and thus are the key stress checking indices for strengthening. Moreover, principal stresses check should be conducted in all parts of the strengthened structure not only in the webs. As for the local effects of external prestressing especially in the areas near anchorage and deviator, normal stresses check in the outer and inner layers dominates and local strengthening measures should be taken if necessary.

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참고문헌

  1. ACI 318 (2011), Building Code Requirements for Structural Concrete and Commentary, American Concrete Institute, Farmington Hills, MI.
  2. ANSYS (2007), Release 11.0 Documentation for ANSYS, ANSYS Inc., USA.
  3. Aravinthan, T., Witchukreangkrai, E. and Mutsuyoshi, H. (2005), "Flexural behavior of two-span continuous prestressed concrete girders with highly eccentric external tendons", ACI Struct. J., 102(3), 402-411.
  4. Bartoli, I., Salamone, S., Phillips, R., Lanza di Scalea, F. and Sikorsky, C.S. (2011), "Use of interwire ultrasonic leakage to quantify loss of prestress in multiwire tendons", J. Eng. Mech., 137(5), 324-333. https://doi.org/10.1061/(ASCE)EM.1943-7889.0000227
  5. Bulut, N., Anil, O. and Belgin, C.M. (2011), "Nonlinear finite element analysis of RC beams strengthened with CFRP strip against shear", Comput. Concrete, 8(6), 717-733. https://doi.org/10.12989/cac.2011.8.6.717
  6. EI-Shafiey, T. and Atta, A. (2012), "Retrofitting of reinforced concrete beams in shear using external prestressing technique", Mag. Concrete Res., 64(3), 201. https://doi.org/10.1680/macr.10.00157
  7. Gazia, M.A., El-Kateb, M., Elafandy, T. and Abdelrahman, A. (2015), "Behavior of RC continuous slabs strengthened by external prestressing steel strands", The International Conference on Structural and Geotechnical Engineering, New Cairo, Egypt, December.
  8. Hambly, E.C. (1991), Bridge Deck Behavior, 2nd Edition, CRC Press, London, England.
  9. Harajli, M.H., Mabsout, M.E. and Al-Hajj, J.A. (2002), "Response of externally post-tensioned continuous members", Struct. J., 99(5), 671-680.
  10. Herbrand, M. and Hegger, J. (2013), "Experimental investigations on the influence of an external prestressing on the shear capacity of prestressed continuous beams", Bauingenieur, 88, 509-517.
  11. JTG D60 (2004), General Code for Design of Highway Bridges and Culverts, Ministry of Communications, Beijing, China.
  12. JTG D62 (2004), Code for Design of Highway Reinforced Concrete and Prestressed Concrete Bridge and Culverts, Ministry of Communications, Beijing, China.
  13. Jumaat, M.Z., Rahman, M.M. and Rahman, M.A. (2011), "Review on bonding techniques of CFRP in strengthening concrete structures", Int. J. Phys. Sci., 6(15), 3567-3575.
  14. Kim, K.S. and Lee, D.H. (2012a), "Flexural behavior model for post-tensioned concrete members with unbonded tendons", Comput. Concrete, 10(3), 241-258. https://doi.org/10.12989/cac.2012.10.3.241
  15. Liu, C., Xu, D., Li, L. and Cheng, W. (2015), "Behavior of concrete segmental box girder bridges with open webs", J. Bridge Eng., 20(8), B4015003. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000740
  16. Lou, T. and Xiang, Y. (2010), "Numerical analysis of second-order effects of externally prestressed concrete beams", Struct. Eng. Mech., 35(5), 631-643. https://doi.org/10.12989/sem.2010.35.5.631
  17. Marti, P. and Meyboom, J. (1992), "Response of prestressed concrete elements to in-plane shear forces", ACI Struct. J., 89(5), 503-514.
  18. O'Brien, E.J. and Keogh, D.L. (1999), Bridge Deck Analysis, E & FN Spon, London, England.
  19. Park, S., Kim, T., Kim, K. and Hong, S.N. (2010), "Flexural behavior of steel I-beam prestressed with externally unbonded tendons", J. Constr. Steel Res., 66(1), 125-132. https://doi.org/10.1016/j.jcsr.2009.07.013
  20. Ramos, G., Casas, J.R. and Alarcon, A. (2004), "Repair and strengthening of segmental bridges using carbon fibers", Eng. Struct., 26(5), 609-618. https://doi.org/10.1016/j.engstruct.2003.12.008
  21. Shrestha, R., Smith, S.T. and Samali, B. (2013), "Finite element modelling of FRP-strengthened RC beam-column connections with ANSYS", Comput. Concrete, 11(1), 1-20. https://doi.org/10.12989/cac.2013.11.1.001
  22. Tan, K.H. and Tjandra, R.A. (2003), "Shear deficiency in reinforced concrete continuous beams strengthened with external tendons", Struct. J., 100(5), 565-572.
  23. Tang, M.C. (2014), The Story of the Koror Bridge, IABSE Bulletin.
  24. Tay, K.M., See, H.L. and Chee, K.N. (2015), "Data-driven SIRM-sconnected FIS for prediction of external tendon stress", Comput. Concrete, 15(1), 55-71. https://doi.org/10.12989/cac.2015.15.1.055
  25. Turmo, J., Ramos, G. and Aparicio, A .C. (2006), "Shear behavior of unbonded post-tensioned segmental beams with dry joints", ACI Struct. J., 103(3), 409-417.
  26. Vecchio, F.J. and Collins, M.P. (1986), "The modified compression-field theory for reinforced concrete elements subjected to shear", ACI J., 83(2), 219-231.
  27. Xu, D. and Zhao, Y. (2012), "Application of spatial grid model in structural analysis of concrete box girder bridges", IABSE Congress Report, 18th Congress of IABSE, Seoul, Korea.
  28. Xu, D., Zhao, Y. and Liu, C. (2013), Practical Precise Modeling and Reinforcement Design for Concrete Bridge Structures, China Communications Press, Beijing, China. (in Chinese)
  29. Zhang, F. (2007), "Study of some key points of externally prestressed concrete bridge in elastic stage", Master Dissertation, Tongji University, Shanghai, China. (in Chinese)