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Fatigue evaluation of steel-concrete composite deck in steel truss bridge—A case study

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Abstract

An innovative composite deck system has recently been proposed for improved structural performance. To study the fatigue behavior of a steel-concrete composite bridge deck, we took a newly-constructed rail-cum-road steel truss bridge as a case study. The transverse stress history of the bridge deck near the main truss under the action of a standard fatigue vehicle was calculated using finite element analysis. Due to the fact that fatigue provision remains unavailable in the governing code of highway concrete bridges in China, a preliminary fatigue evaluation was conducted according to the fib Model Code. The results indicate that flexural failure of the bridge deck in the transverse negative bending moment region is the controlling fatigue failure mode. The fatigue life associated with the fatigue fracture of steel reinforcement is 56 years. However, while the top surface of the bridge deck concrete near the truss cracks after just six years, the bridge deck performs with fatigue cracks during most of its design service life. Although fatigue capacity is acceptable under design situations, overloading or understrength may increase its risk of failure. The method presented in this work can be applied to similar bridges for preliminary fatigue assessment.

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References

  1. Wang C S, Wu Q Y, Miao W H. Fatigue life estimation for reinforced concrete bridge deck. Journal of Chang’an University (Natural Science Edition), 2013, 33(2): 50–55+62 (in Chinese)

    Google Scholar 

  2. Collings D. Steel Concrete Composite Bridges. London: Thomas Telford Services Ltd, 2005

    Book  Google Scholar 

  3. Li H S. Research on fatigue performance of reinforced concrete carriageway slab and diaphragms of T-beam bridge. Dissertation for the Doctoral Degree. Harbin: Northeast Forestry University, 2019 (in Chinese)

    Google Scholar 

  4. Hao C, Cao X L. Application of steel-concrete composite bridge deck in maintenance engineering of highway railway dual-purpose bridge. Engineering and Construction, 2013, 27(6): 853–855 (in Chinese)

    Google Scholar 

  5. Zhao Q, Wu C. Steel Bridge—Steel Structure and Composite Structure Bridge. Beijing: China Communications Press Ltd., 2017 (in Chinese)

    Google Scholar 

  6. Abendroth R E, Porter M L. Fatigue behaviour of composite metal deck slabs. Journal of Structural Engineering, 1989, 115(1): 89–103

    Article  Google Scholar 

  7. Luo R D, Qu Z F, Wang Z Y, Zhu Z H, Liu Z. Research on mechanical performance of a new type of large longitudinal rib orthotropic-PBL shear connectors composite bridge deck. Journal of Railway Science and Engineering, 2020, 17(11): 2849–2856 (in Chinese)

    Google Scholar 

  8. Lu P Z, Zhan X L, Zhao R D. Fatigue behaviour in full-scale laboratory tests of a composite deck slab with PBL reinforcement. Journal of the South African Institution of Civil Engineering, 2017, 59(2): 11–18

    Article  Google Scholar 

  9. Ahn J H, Sim C, Jeong Y J, Kim S H. Fatigue behavior and statistical evaluation stress category for a steel-concrete composite bridge deck. Journal of Constructional Steel Research, 2009, 65(2): 373–385

    Article  Google Scholar 

  10. Yang Y, Zhou P J, Nie J G, Xie B Y. Experiment on static and fatigue behavior of steel plate-concrete composite bridge decks. China Journal of Highway Transport, 2009, 22(4): 78–83+107 (in Chinese)

    Google Scholar 

  11. Li J, Li J, Shao X D, Chen W, Zeng Y. Static and fatigue test on composite deck with steel and ultra-thin UHPC-TPC. China Civil Engineering Journal, 2017, 50(11): 98–106 (in Chinese)

    Google Scholar 

  12. Gao Q F, Dong Z L, Cui K M, Liu C, Liu Y. Fatigue performance of profiled steel sheeting-concrete bridge decks subjected to vehicular loads. Engineering Structures, 2020, 213: 110558

    Article  Google Scholar 

  13. Huang Q, Zheng H K, Song X D. Experimental study on fatigue performance of GFRP-concrete composite bridge deck. Journal of Highway and Transportation Research and Development, 2019, 36(5): 57–63+77 (in Chinese)

    Google Scholar 

  14. Zhao Q, Guo Y B, Chen K S, Lin S S. Influence of ultra-high performance concrete pavement on fatigue performance of steel bridge deck. Journal of Shengyang Jianzhu University (Natural Science), 2019, 35(06): 961–969 (in Chinese)

    Google Scholar 

  15. Liu Y M, Zhang Q H, Bao Y, Bu Y. Fatigue behavior of orthotropic composite deck integrating steel and engineered cementitious composite. Engineering Structures, 2020, 220: 111017

    Article  Google Scholar 

  16. Zhang H, Zhang Z X, Gao P W, Cui L, Pan Y, Li K. Performance of steel bridge deck pavement structure with ultra-high performance concrete based on resin bonding. Frontiers of Structural and Civil Engineering, 2021, 15(4): 895–904

    Article  Google Scholar 

  17. Xu Z Y, Zhao R D, Mu Y M. Experimental study on mechanical behavior of steel-concrete composite bridge deck with PBL connectors. Journal of Building Structures, 2015, 36(S1): 382–388 (in Chinese)

    Google Scholar 

  18. Higgins C, Mitchell H. Behavior of composite bridge decks with alternative shear connectors. Journal of Bridge Engineering, 2001, 6(1): 17–22

    Article  Google Scholar 

  19. Zhu J S, Zhu X C. Study on simplified method for the analysis of fatigue failure process of RC bridges. Engineering Mechanics, 2012, 29(5): 107–114+121 (in Chinese)

    Google Scholar 

  20. Wang Y P, Li J. A review of theoretical study of concrete fatigue. Journal of Tongji University, 2021, 49(5): 617–623

    Google Scholar 

  21. Lei J Q, Huang Z W, Gui C Z, Cao S S, Liu H S. Analysis on sustainable development of rail-road bridge. Steel Construction, 2016, 31(11): 1–4+37 (in Chinese)

    Google Scholar 

  22. Hu H Y, Liu J F, Ning B W. Design of truss composite girder of bridge of Sanmenxia Huanghe River rail-cum-road bridge. Bridge Construction, 2018, 48(2): 83–88 (in Chinese)

    Google Scholar 

  23. Zhu X F. Study on construction optimization and mechanical properties of concrete deck of rail-cum-road steel truss bridge. Thesis for the Master’s Degree. Beijing: Beijing University of Technology, 2020 (in Chinese)

    Google Scholar 

  24. JTG D60-2015. General Specifications for Design of Highway Bridges and Culverts. Beijing: China Communications Press, 2015 (in Chinese)

    Google Scholar 

  25. fib Model Code 2010. fib Model Code for Concrete Structures 2010. Berlin: Wilhelm Ernst & Sohn, 2013

    Google Scholar 

  26. Sigrist V, Bentz E, Ruiz M F, Foster S, Muttoni A. Background to the fib model code 2010 shear provisions—Part I: Beams and slab. Structural Concrete, 2013, 14(3): 195–203

    Article  Google Scholar 

  27. JTG D40-2011. Specifications for Design of Highway Cement Concrete Pavement. Beijing: China Communications Press, 2011 (in Chinese)

    Google Scholar 

  28. Cheng Y K. Analysis of fatigue property and stability of prefabricated steel-concrete composite continuous girder bridges. Thesis for the Master’s Degree. Nanjing: Southeast University, 2018 (in Chinese)

    Google Scholar 

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Acknowledgements

This research was funded by the National Natural Science Foundation of China (Grant No. 51008006), and the China Railway No. 18 Engineering Group (No. 40004015201911). We would also like to thank our colleagues Dewang Li and Zhenyu Sun for their contribution in conducting the experimental work.

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Correspondence to Huating Chen.

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Chen, H., Zhan, X., Zhu, X. et al. Fatigue evaluation of steel-concrete composite deck in steel truss bridge—A case study. Front. Struct. Civ. Eng. 16, 1336–1350 (2022). https://doi.org/10.1007/s11709-022-0852-y

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