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An analytical solution to the vibration characteristics for continuous girder bridge-track coupling system and its application

  • Feng, Yulin (School of Civil Engineering and Architecture, East China Jiaotong University) ;
  • Jiang, Lizhong (School of Civil Engineering, Central South University) ;
  • Zhou, Wangbao (School of Civil Engineering, Central South University) ;
  • Zhang, Yuntai (School of Civil Engineering, Central South University) ;
  • Liu, Xiang (School of Civil Engineering, Central South University)
  • Received : 2020.04.29
  • Accepted : 2020.12.09
  • Published : 2021.03.10

Abstract

To study the vibration characteristics of a high-speed railway continuous girder bridge-track coupling system (HSRCBT), a coupling vibration analysis model of an m-span continuous girder bridge-subgrade-track system with n-span approach bridge was established. The model was based on the energy and its variational method, where both the interlaminar slip and shear deformation effects were considered. In addition, the free vibration equations and natural boundary conditions of the HSRCBT were derived. Further, according to the coordination principle of deformation and mechanics, an analytical method for calculating the natural vibration frequencies of the HSRCBT was obtained. Three typical bridge-subgrade-track coupling systems of high-speed railway were taken and the results of finite element analysis were compared to those of the analytical method. The errors between the simulation results and calculated values of the analytical method were less than 3%, thus verifying the analytical method proposed in this paper. Finally, the analytical method was used to investigate the influence of the number of the approach bridge spans and the interlaminar stiffness on the natural vibration characteristics of the HSRCBT based on the degree of sensitivity. The results suggest the approach bridges have a critical number of spans and in general, the precision requirements of the analysis could be met by using 6-span approach bridges. The interlaminar vertical compressive stiffness has very little influence on the low-order natural vibration frequency of HSRCBT, but does have a significant influence on higher-order natural vibration frequency. As the interlaminar vertical compressive stiffness increases, the degree of sensitivity to interlaminar stiffness of each of the HSRCBT natural vibration characteristics decrease and gradually approach zero.

Keywords

References

  1. Alves Ribeiro, C., Calcada, R. and Delgado, R. (2018), "Calibration and experimental validation of a dynamic model of the train-track system at a culvert transition zone", Struct. Infrastr. E, 14(5), 604-618. http://dx.doi.org/10.1080/15732479.2017.1380674.
  2. ANSYS® (2018), Academic Research, Release 19.2, ANSYS Inc., Canonsburg, PA, USA.
  3. Belabed, Z., Bousahla, A.A. and Houari, M.S.A. (2018), "A new 3-unknown hyperbolic shear deformation theory for vibration of functionally graded sandwich plate", Earthq. Struct., 14(2), 103-115. http://dx.doi.org/10.12989/eas.2018.14.2.103.
  4. Bucinskas, P., Andersen, L.V. and Persson, K. (2016), "Numerical modelling of ground vibration caused by elevated high-speed railway lines considering structure-soil-structure interaction", Proceedings of the Inter-noise 2016-45th International Congress and Exposition on Noise Control Engineering: Towards a Quieter Future, 2119-2130.
  5. Carrascal, I.A., Perez, A., Casado, J.A., Diego, S., Polanco, J.A., Ferreno, D. and Martin, J.J. (2018), "Experimental study of metal cushion pads for high speed railways", Constr. Build. Mater., 182, 273-283. http://dx.doi.org/10.1016/j.conbuildmat.2018.06.134.
  6. Chen, Z., Han, Z. and Fang, H. (2018), "Seismic vibration control for bridges with high-piers in Sichuan-Tibet railway", Struct. Eng. Mech., 66(6), 749-759. http://dx.doi.org/10.12989/sem.2018.66.6.749.
  7. Chen, R., Yang, K., Qiu, X., Zeng, X., Wang, P., Xu, J. and Chen, J. (2017), "Degradation mechanism of CA mortar in CRTS I slab ballastless railway track in the Southwest acid rain region of China-Materials analysis", Constr. Build. Mater., 149, 921-933. http://dx.doi.org/10.1016/j.conbuildmat.2017.04.017.
  8. Connolly, D.P., Marecki, G.P., Kouroussis, G., Thalassinakis, I. and Woodward, P.K. (2016), "The growth of railway ground vibration problems-A review", Sci. Total Environ., 568, 1276-1282. http://dx.doi.org/10.1016/j.scitotenv.2015.09.101
  9. Feng, Y., Jiang, L., Zhou, W. and Lai, Z. (2019), "An analytical solution to the mapping relationship between bridge structures vertical deformation and rail deformation of high-speed railway", Steel Compos. Struct., 33(2), 209-224. http://dx.doi.org/10.12989/scs.2019.33.2.209.
  10. Forcellini, D. (2019), "Numerical simulations of liquefaction on an ordinary building during Italian (20 May 2012) earthquake", B Earthq. Eng., 17(9), 4797-4823. http://dx.doi.org/10.1007/s10518-019-00666-5.
  11. Gou, H.Y., Wang, W. and Shi, X.Y. (2018), "Behavior of steel-concrete composite cable anchorage system", Steel Compos. Struct., 26(1), 115-123. https://doi.org/10.12989/scs.2018.26.1.115
  12. Jiang, L., Feng, Y., Zhou, W. and He, B. (2019), "Vibration characteristic analysis of high-speed railway simply supported beam bridge-track structure system", Steel Compos. Struct., 31(6), 591-600. http://dx.doi.org/10.12989/scs.2019.31.6.591.
  13. Jiang, L., Liu, X., Xiang, P. and Zhou, W. (2019), "Train-bridge system dynamics analysis with uncertain parameters based on new point estimate method", Eng. Struct., 199, 109454. http://dx.doi.org/10.1016/j.engstruct.2019.109454.
  14. Jiang, L., Zhang, Y., Feng, Y., Zhou, W. and Tan, Z. (2020), "Simplified calculation modeling method of multi-span bridges on high-speed railways under earthquake condition", B Earthq. Eng., 18(5), 2303-2328. http://dx.doi.org/10.1007/s10518-019-00779-x.
  15. Ju, S. (2016), "Study of ground vibration induced by high-speed trains moving on multi-span bridges", Struct. Eng. Mech., 59(2), 277-290. http://dx.doi.org/10.12989/sem.2016.59.2.277.
  16. Ju, S. and Lin, H. (2007), "A finite element model of vehicle-bridge interaction considering braking and acceleration", J. Sound Vib., 303(1-2), 46-57. http://dx.doi.org/10.1016/j.jsv.2006.11.034.
  17. Kimani, S.K. and Kaewunruen, S. (2017), "Free vibrations of precast modular steel-concrete composite railway track slabs", Steel Compos. Struct., 24(1), 113-128. http://dx.doi.org/10.12989/scs.2017.24.1.113.
  18. Lai, M., Hanzic, L. and Ho, J.C.M. (2019), "Fillers to improve passing ability of concrete", Struct. Concrete, 20(1), 185-197. http://dx.doi.org/10.1002/suco.201800047.
  19. Lai, M.H. and Ho, J.C.M. (2016), "A theoretical axial stress-strain model for circular concrete-filled-steel-tube columns", Eng. Struct., 125, 124-143. http://dx.doi.org/10.1016/j.engstruct.2016.06.048.
  20. Lei, X. and Zhang, B. (2011), "Analysis of dynamic behavior for slab track of high-speed railway based on vehicle and track elements", J. Transp. Eng., 137(4), 227-240. http://dx.doi.org/10.1061/(ASCE)TE.1943-5436.0000207.
  21. Li, X., Liang, L. and Wang, D. (2018), "Vibration and noise characteristics of an elevated box girder paved with different track structures", J. Sound Vib., 425, 21-40. http://dx.doi.org/10.1016/j.jsv.2018.03.031.
  22. Liu, W., Dai, G., Yu, Z., Chen, Y.F. and He, X. (2018), "Interaction between continuous welded rail and long-span steel truss arch bridge of a high-speed railway under seismic action", Struct. Infrastr. E., 14(8), 1051-1064. http://dx.doi.org/10.1080/15732479.2017.1386690.
  23. Luo, W. and Lei, X. (2014), "Analysis of dynamic behavior for ballastless track-bridge with a hybrid method", Intel. Autom. Soft Comput., 20(4), 487-500. http://dx.doi.org/10.1080/10798587.2014.934600.
  24. MATLAB® (2016), Release R2016a, The MathWorks Inc., Natick, MA, USA.
  25. Montenegro, P.A., Barbosa, D., Carvalho, H. and Calcada, R. (2020a), "Dynamic effects on a train-bridge system caused by stochastically generated turbulent wind fields", Eng. Struct., 211, 110430. http://dx.doi.org/10.1016/j.engstruct.2020.110430.
  26. Montenegro, P.A., Carvalho, H., Calcada, R., Bolkovoy, A. and Chebykin, I. (2020b), "Stability of a train running over the Volga River high speed railway bridge during crosswinds", Struct. Infrastr. E., 16(8), 1121-1137. http://dx.doi.org/10.1080/15732479.2019.1684956.
  27. Montenegro, P.A., Neves, S.G.M., Calcada, R., Tanabe, M. and Sogabe, M. (2015), "Wheel-rail contact formulation for analyzing the lateral train-structure dynamic interaction", Comput. Struct., 152, 200-214. http://dx.doi.org/10.1016/j.compstruc.2015.01.004.
  28. Montenegro, P.A., Calcada, R., Vila Pouca, N. and Tanabe, M. (2016), "Running safety assessment of trains moving over bridges subjected to moderate earthquakes", Earthq. Eng. Struct. D., 45(3), 483-504. http://dx.doi.org/10.1002/eqe.2673.
  29. Matsumoto, N., Sogabe, M., Wakui, H. and Tanabe, M. (2004), "Running safety analysis of vehicles on structures subjected to earthquake motion", Quart. Report RTRI, 45(3), 116-122. http://dx.doi.org/10.2219/rtriqr.45.116.
  30. Romero, A., Solis, M., Dominguez, J. and Galvin, P. (2013), "Soil-structure interaction in resonant railway bridges", Soil Dyn. Earthq. Eng., 47, 108-116. http://dx.doi.org/10.1002/eqe.2673.
  31. Sieffert, Y., Michel, G., Ramondenc, P. and Jullien, J. (2006), "Effects of the diaphragm at midspan on static and dynamic behaviour of composite railway bridge: A case study", Eng. Struct., 28(11), 1543-1554. http://dx.doi.org/10.1016/j.engstruct.2006.02.011.
  32. Tanabe, M., Sogabe, M., Wakui, H., Matsumoto, N. and Tanabe, Y. (2016), "Exact time integration for dynamic interaction of high-speed train and railway structure including derailment during an earthquake", J. Comput. Nonlin. Dyn., 11(3), 31001-31004. http://dx.doi.org/10.1115/1.4030829.
  33. Toyooka, A., Ikeda, M. and Yanagawa, H. (2005), "Effects of track structure on seismic behavior of isolation system bridges", Quart. Report RTRI, 46(4), 238-243. http://dx.doi.org/10.2219/rtriqr.46.238.
  34. Xie, X., Wang, Y. and Chen, L. (2012), "Effect of restrains on seismic response of cushioning railway bridges", J. China Railw. Soc., 34(6), 75-82. (in Chinese) https://doi.org/10.3969/j.issn.1001-8360.2012.06.014
  35. Luo, X. (2004), "Study on methodology for running safety assessment of trains in seismic design of railway structures", Soil Dyn. Earthq. Eng., 25(2), 79-91. http://dx.doi.org/10.1016/j.soildyn.2004.10.005.
  36. Yan, B. and Dai, G. (2013), "Seismic pounding and protection measures of simply-supported beams considering interaction between continuously welded rail and bridge", Struct. Eng. Int., 23(1), 61-67. http://dx.doi.org/10.2749/101686613X13439149157191.
  37. Yan, W., Zhao, M., Sun, Q. and Ren, W. (2019), "Transmissibility-based system identification for structural health monitoring: Fundamentals, approaches, and applications", Mech. Syst. Signal Pr., 117, 453-482. http://dx.doi.org/10.1016/j.ymssp.2018.06.053.
  38. Yang, H., Chen, Z., Zhang, H. and Fan, J. (2016), "Dynamic analysis of train-rail-bridge interaction considering concrete creep of a multi-span simply supported bridge", Adv. Struct. Eng., 17(5), 709-720. http://dx.doi.org/10.1260/1369-4332.17.5.709.
  39. Yang, X.W. and He, Z.X. (2012), "Study on vibration characteristics of trapezoidal sleeper track", J. Vib. Eng., 25(4), 388-392. https://doi.org/10.3969/j.issn.1004-4523.2012.04.006
  40. Yang, X., Shu, Y., Zhou, S., He, C. and Di, H. (2019), "An implicit periodic nonlinear model for evaluating dynamic response of damaged slab track involving material nonlinearity of damage", Constr. Build. Mater., 197, 559-575. http://dx.doi.org/10.1016/j.conbuildmat.2018.11.198.
  41. Yang, Y.B. and Yau, J.D. (2015), "Vertical and pitching resonance of train cars moving over a series of simple beams", J. Sound Vib., 337, 135-149. http://dx.doi.org/10.1016/j.jsv.2014.10.024.
  42. Yang, Y.B. and Yau, J.D. (2017), "Resonance of high-speed trains moving over a series of simple or continuous beams with nonballasted tracks", Eng Struct., 143, 295-305. http://dx.doi.org/10.1016/j.engstruct.2017.04.022.
  43. Zangeneh, A., Battini, J., Pacoste, C. and Karoumi, R. (2019), "Fundamental modal properties of simply supported railway bridges considering soil-structure interaction effects", Soil Dyn. Earthq. Eng., 121, 212-218. http://dx.doi.org/10.1016/j.soildyn.2019.03.022.
  44. Zhang, N., Tian, Y. and Xia, H. (2016), "A train-bridge dynamic interaction analysis method and its experimental validation", Eng., 2(4), 528-536. http://dx.doi.org/10.1016/J.ENG.2016.04.012.
  45. Zhang, F.L., Ni, Y.C., Au, S.K. and Lam, H.F. (2016), "Fast Bayesian approach for modal identification using free vibration data, Part I-Most probable value", Mech. Syst. Signal Pr., s70-71, 209-220. http://dx.doi.org/10.1016/j.ymssp.2015.05.031.
  46. Zhang, Y., Jiang, L., Zhou, W., Feng, Y., Tan, Z. and Chai, X. (2020), "Study of bridge-subgrade longitudinal constraint range for high-speed railway simply-supported beam bridge with CRTSII ballastless track under earthquake excitation", Constr. Build. Mater., 241, 118026. http://dx.doi.org/10.1016/j.conbuildmat.2020.118026.
  47. Zhou, W., Jiang, L., Huang, Z. and Li, S. (2016), "Flexural natural vibration characteristics of composite beam considering shear deformation and interface slip", Steel Compos. Struct., 20(5), 1023-1042. http://dx.doi.org/10.12989/scs.2016.20.5.1023.