Numerical Simulation Study of the Vibrational Response of Continuous Arch Tunnels under the Action of Overlying Train Loads

Authors

  • Weihuan Shen

DOI:

https://doi.org/10.54097/kf0v8p69

Keywords:

Continuous arch tunnel; train vibration; dynamic response; numerical simulation.

Abstract

With the rapid development of transportation infrastructure in China, continuous arch tunnels passing under existing operational railways are increasingly encountered. This paper primarily investigates the mechanical response patterns of the lining of continuous arch tunnels under the vibrational loads generated by trains traveling on railways. To this end, a three-dimensional finite element model of the dynamic response of continuous arch tunnels under train vibrational loads was constructed using Midas GTS/NX software. This model explores the patterns of acceleration, dynamic displacement, and dynamic strain responses of continuous arch tunnels under the action of moving train loads. The study reveals that under train vibrational loads, the vertical acceleration, vertical displacement, and strain time history curves at various monitoring points in the continuous arch tunnel exhibit vibrational characteristics. The acceleration, vertical displacement, and dynamic strain increase as the train enters, fluctuate within a certain range, and then decrease to zero as the train exits. Under high-speed train loads, the acceleration peak values at the arch feet and outer sidewalls of the left and right tunnels are larger, with a greater peak value difference. The vertical displacement peak values at the arch shoulders and crown are larger, whereas those at the middle partition wall and base slab are smaller. During the process from the train's entry to its exit, the dynamic strain exhibits a trend of initially increasing, then stabilizing, and finally decreasing to zero, all while displaying vibrational characteristics. The strain response on the tunnel side where the train enters is greater than that on the side where it exits.

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References

Jones, D. V. , & Petyt, M. . (1993). Ground vibration in the vicinity of a strip load: an elastic layer on an elastic half-space. Journal of Sound & Vibration, 161(1), 1-18.

J., Bitzenbauer, J., & Dinkel. (2002). Dynamic interaction between a moving vehicle. Archive of Applied Mechanics.

Kaynia, A. M. . (2000). Ground vibration from high-speed trains: prediction and countermeasure. Journal of Geotechnical & Geoenvironmental Engineering, 126(126), 531-537.

Dieterman, H. A. , & Metrikine, A. . (1996). The equivalent stiffness of a half-space interaction with a beam. critical velocoties of a moving load along the beam. European Journal of Mechanics - A/Solids, 15(1), 67-90.

Dawn, T. M. , & Stanworth, C. G. . (1979). Ground vibration from passing trains. Journal of Sound and Vibration, 66(3), 355-362.

Zhang Huijian,Liu Gongning,Liu Qiuyang,Chen Zekun,Wang Zhengzheng & Niu Xiaoyu.(2023).Vehicle-induced dynamic response characteristics of a new subway tunnel closely undercrossing the existing subway.Soil Dynamics and Earthquake Engineering

Su Sanqing,Yin Tao,Cao Zhen,Lei Bin,Liu Zhao,Lin Wenxu & Kuang Anyuan.(2022).Dynamic Response Analysis of Super Shallow-Buried Rectangular Tunnel.Advances in Civil Engineering

Wenbo Yang,Chengping Zhang,Dexiong Liu,Jiulin Tu,Qixiang Yan,Yong Fang & Chuan He.(2019).The effect of cross-sectional shape on the dynamic response of tunnels under train induced vibration loads.Tunnelling and Underground Space Technology incorporating Trenchless Technology Research 231-238.

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Published

27-03-2024

Issue

Section

Articles

How to Cite

Shen, W. (2024). Numerical Simulation Study of the Vibrational Response of Continuous Arch Tunnels under the Action of Overlying Train Loads. Academic Journal of Science and Technology, 10(1), 420-426. https://doi.org/10.54097/kf0v8p69