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Fatigue reliability assessment of a three-tower four-span suspension bridge under stochastic traffic loads

  • Cheng, Jin (State Key Laboratory for Disaster Reduction in Civil Engineering, Tongji University) ;
  • Li, Cheng (Department of Bridge Engineering, Tongji University)
  • Received : 2021.01.27
  • Accepted : 2021.08.30
  • Published : 2021.10.25

Abstract

This paper aims to study the fatigue performance of three-tower four-span suspension bridges. For this purpose, the Oujiang River North Estuary Bridge which is a three-tower four-span suspension bridge with two main spans of 800m under construction in China is taken as an example in this study. This will be the first three-tower suspension bridge with steel truss girders in the world. This paper uses a random traffic load model to evaluate the fatigue reliability of the orthotropic steel bridge decks of three-tower four-span suspension bridges. In the study traffic load is simulated by random variables, and Monte Carlo simulation method is used to calculate the fatigue reliability index of the steel bridge deck. The parametric analysis is also carried out to clarify the influence of traffic growth rate, target reliability index and axle lateral distribution coefficient. It is found that the growth of traffic volume has the greatest impact on the evaluation results of the fatigue life, and the growth of traffic volume can result in a decrease of fatigue reliability of orthotropic steel bridge decks. The research results can provide a reference for the fatigue life and reliability assessment of three-tower four-span suspension bridge.

Keywords

Acknowledgement

This work presented herein has been supported by the National Key Research and Development Program of China under grant numbers 2018YFC0809600 and 2018YFC0809601, the Ministry of Science and Technology of China under grant number SLDRCE19-B-09. The supports are gratefully acknowledged.

References

  1. Cheng, J., Xu, H. and Xu, M. (2020), "Study on midtower longitudinal stiffness of three-tower four-span suspension bridges with steel truss girders", Struct. Eng. Mech., 73(6), 641-649. https://doi.org/10.12989/sem.2020.73.6.641.
  2. Cheng, J., Xu, M. and Xu, H. (2019), "Mechanical performance study and parametric analysis of three-tower four-span suspension bridges with steel truss girders", Steel Compos. Struct., 32(2), 189-198. https://doi.org/10.12989/scs.2019.32.2.189.
  3. Choi, C.K. and H.C. Noh (1996), "Stochastic finite element analysis of plate structures by weighted integral method", Struct. Eng. Mech., 4(6), 703-715. https://doi.org/10.12989/sem.1996.4.6.703.
  4. Han, Y., Li, K., Cai, C.S., Wang, L. and Xu, G. (2020), "Fatigue reliability assessment of long-span steel-truss suspension bridges under the combined action of random traffic and wind loads", J. Bridge Eng., 25(3), 04020003. https://doi.org/10.1061/(ASCE)BE.1943-5592.0001525.
  5. Keating, P.B. and Fisher, J.W. (1986), Evaluation of Fatigue Tests and Design Criteria on Welded Details, Transportation Research Board.
  6. Kolstein, M.H. (2007), Fatigue Classification of Welded Joints in Orthotropic Steel Bridge Decks.
  7. Kwon, K. and Frangopol, D.M. (2010), "Bridge fatigue reliability assessment using probability density functions of equivalent stress range based on field monitoring data", Int. J. Fatig., 32(8), 1221-1232. https://doi.org/10.1016/j.ijfatigue.2010.01.002.
  8. Li, H., Frangopol, D.M., Soliman, M. and Xia, H. (2016), "Fatigue reliability assessment of railway bridges based on probabilistic dynamic analysis of a coupled train-bridge system", J. Struct. Eng., 142(3), 04015158. https://doi.org/10.1061/(asce)st.1943-541x.0001435.
  9. Liu, Y., Xiao, X., Lu, N. and Deng, Y. (2016), "Fatigue reliability assessment of orthotropic bridge decks under stochastic truck loading", Shock Vib., 2016, 1-10. https://doi.org/10.1155/2016/4712593
  10. Lu, N., Liu, Y. and Deng, Y. (2018), "Fatigue reliability evaluation of orthotropic steel bridge decks based on site-specific weigh-in-motion measurements", Int. J. Steel Struct., 19(1), 181-192. https://doi.org/10.1007/s13296-018-0109-8.
  11. Mao, J.X., Wang, H. and Li, J. (2019), "Fatigue reliability assessment of a long-span cable-stayed bridge based on one-year monitoring strain data", J. Bridge Eng., 24(1), 05018015. https://doi.org/10.1061/(asce)be.1943-5592.0001337.
  12. Noh, H.C., Lee, P.S. and Choi, C.K. (2009), "Variability of displacements and stresses at random variablestate", Struct. Eng. Mech., 31(6), 751-754. https://doi.org/12989/sem.2009.31.6.751. https://doi.org/10.12989/sem.2009.31.6.751
  13. Sim, H.B., Uang, C.M. and Sikorsky, C. (2009), "Effects of fabrication procedures on fatigue resistance of welded joints in steel orthotropic decks", J. Bridge Eng., 14(5), 366-373. https://doi.org/10.1061/(ASCE)1084-0702(2009)14:5(366).
  14. Song, M.K. and Choi, C.K. (2002), "Analysis of high-speed vehicle-bridge interactions by a simplified 3-D model", Struct. Eng. Mech., 13(5), 505-532. https://doi.org/12989/sem.2002.13.5.505. https://doi.org/10.12989/sem.2002.13.5.505
  15. Spencer, B.F. and Tang, J. (1988), "Markov process model for fatigue crack growth", J. Eng. Mech., 114(12), 2134-2157. https://doi.org/10.1061/(ASCE)0733-9399(1988)114:12(2134).
  16. Spencer, B.F., Tang, J. and Artley, M.E. (1989), "Stochastic approach to modeling fatigue crack growth", AIAA J., 27(11), 1628-1635. https://doi.org/10.2514/3.10311.
  17. Yokozeki, K. and Miki, C. (2015), "Fatigue evaluation for longitudinal-to-transverse rib connection of orthotropic steel deck by using structural hot spot stress", Weld. World, 60(1), 83-92. https://doi.org/10.1007/s40194-015-0272-x.
  18. Zhang, W., Cai, C.S. and Pan, F. (2013), "Fatigue reliability assessment for long-span bridges under combined dynamic loadsfrom winds and vehicles", J. Bridge Eng., 18(8), 735-747. https://doi.org/10.1061/(asce)be.1943-5592.0000411.