Abstract

To overcome the ill-conditioned matrix problem of the traditional transfer matrix method, the Floquet transform method and supercell technology are used to study the defect states of the periodic track structure. By solving the equations of the supercell directly, the propagation characteristics of elastic waves in the track structure with defects are analyzed. The existence of defects destroys the periodicity of track structure, thus resulting in the formation of defect states within the band gaps. Moreover, the elastic wave is localized near the defect position at the frequency of the defect state. The formation mechanism of the defect state in track structure can be explained by the local resonance at the defect. With the expansion of the defect range, the number of local resonance modes that can be formed near the defect increases, thus generating multiple defect states. Furthermore, the defect state enhances the vibration of the structure adjacent to the defect. Therefore, the vibration transmission coefficient in a finite-length range can be used to detect the defect characteristics in the track structure, and the defect degree can be evaluated by the peak frequency of the vibration transmission coefficient within the band gap.

Highlights

  • High-speed railway track structure has obvious periodic characteristics, and the propagation of elastic waves in the periodic track structure shows band gap properties.[1]

  • For the case of the local hardening of the ballast, the related dispersion curves move to a higher frequency in the band gap; the number of defect states decreases compared with the case of voided sleepers

  • The following conclusions can be drawn from this research: 1. The defect states can be formed in the periodic track structure, which is characterized by the localization of an elastic wave near the defect position

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Summary

Introduction

High-speed railway track structure has obvious periodic characteristics, and the propagation of elastic waves in the periodic track structure shows band gap properties.[1]. Keywords Periodic track structure, elastic wave, defect states, supercell, localization

Results
Conclusion
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