4.7 Article

Mitigation of railway-induced vibrations by using periodic wave impeding barriers

期刊

APPLIED MATHEMATICAL MODELLING
卷 105, 期 -, 页码 496-513

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.apm.2021.12.053

关键词

High -speed railway; Train-induced vibration; Wave impeding barrier; Phononic crystal; Soil stratigraphy; Soil-structure dynamic interaction

资金

  1. Science and Technology Commission of Shanghai Municipality [2114220 040 0]
  2. Fundamental Research Funds for the Central Universities [22120210107]

向作者/读者索取更多资源

This paper proposes an efficient analytical method to mitigate railway-induced vibrations using periodic barriers in a layered half-space. Numerical results demonstrate that the periodic distribution of barriers improves the mitigation efficiency, and increasing the number, size, and stiffness of barriers enhances the effect. The location of barriers and the stiffness of the upper soil layer also significantly affect the performance.
Railway-induced vibrations can cause significant environmental issues. This paper proposes an efficient analytical method to investigate the mitigation of railway-induced vibrations by using periodic barriers in a layered half-space. The general solutions for layered ground and multiple inclusions are derived by using the potential decomposition and multiple scattering theory. The conversion equation between cylindrical and exponential functions and the addition theorem are introduced to achieve the transformation between plane and cylindrical wave functions and the translation between cylindrical wave functions. Com-bined with the transfer matrix method, the fundamental solution for the soil-inclusion dynamic interaction in a layered half-space is derived. The railway train and track are sub-sequently coupled to the ground-inclusion system. Numerical results demonstrate that the phononic crystal effect induced by the periodic distribution of barriers improves the mit-igation efficiency at high frequencies. The increase in the number, size, and stiffness of barriers can give a higher mitigation efficiency in a wider frequency range. The mitigation efficiency of periodic barriers can be guaranteed when their depth is shorter than half the Rayleigh wavelength in the considered frequency range. Owing to the scattering of waves at layer interfaces, the periodic barriers beneath the track have a higher efficiency than those located next to the track, which does not appear in the homogeneous half-space. The performance of periodic barriers is significantly affected by the soil stiffness of the upper shallow layer, while it is less affected by the soil stiffness of the bottom stiffer layer. (c) 2022 Elsevier Inc. All rights reserved.

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