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Broadband and omnidirectional attenuation of bulk waves in transversely isotropic soil by cross-like metamaterials

Research output: Contribution to journalArticleResearchpeer review

Authors

  • Runcheng Cai
  • Yabin Jin
  • Yan Pennec
  • Bahram Djafari-Rouhani
  • Xiaoying Zhuang

Research Organisations

External Research Organisations

  • Tongji University
  • Lille 1 University of Science and Technology
  • Bauhaus-Universität Weimar

Details

Original languageEnglish
Article number243102
Number of pages15
JournalJournal of applied physics
Volume136
Issue number24
Early online date23 Dec 2024
Publication statusPublished - 28 Dec 2024

Abstract

Metamaterials with bandgap properties have been widely studied and applied in the attenuation of surface and bulk waves propagating in the soil. However, most of the studies consider soil as the isotropic medium and ignore the general anisotropy property from the practical point of view. In this work, we consider the transversely isotropic constitutive model of soil and propose a cross-like metamaterial consisting of concrete inclusion and rubber coating to achieve broadband attenuation for omnidirectional bulk waves. The proposed cross-like metamaterials have more and wider bandgaps compared to circle and square metamaterials, and they have better wave attenuation performance in transversely isotropic soil with higher degrees of anisotropy. The transmission spectra of cross-like metamaterials demonstrate the wave attenuation effect of bandgaps. Furthermore, we build the full-scale transmission model considering the subway tunnel condition and demonstrate the practical wave attenuation performance of cross-like metamaterials in frequency and time domains. We also find that a larger depth of the metamaterial region will enhance wave attenuation in the bandgaps while considering rubber viscosity can enhance wave attenuation in the overall frequency ranges. The variations of omnidirectional bandgaps with rubber thickness, geometric parameters, and hollow concrete sizes are discussed. This study presents an appropriate way to design metamaterials for broadband omnidirectional bulk wave attenuation in transversely isotropic soil, which can be easily extended to other anisotropic media.

ASJC Scopus subject areas

Cite this

Broadband and omnidirectional attenuation of bulk waves in transversely isotropic soil by cross-like metamaterials. / Cai, Runcheng; Jin, Yabin; Pennec, Yan et al.
In: Journal of applied physics, Vol. 136, No. 24, 243102, 28.12.2024.

Research output: Contribution to journalArticleResearchpeer review

Cai R, Jin Y, Pennec Y, Djafari-Rouhani B, Rabczuk T, Zhuang X. Broadband and omnidirectional attenuation of bulk waves in transversely isotropic soil by cross-like metamaterials. Journal of applied physics. 2024 Dec 28;136(24):243102. Epub 2024 Dec 23. doi: 10.1063/5.0239151
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