首页> 外文期刊>Journal of Applied Mechanics: Transactions of the ASME >Enhancement of Deep-Subwavelength Band Gaps in Flat Spiral-Based Phononic Metamaterials Using the Trampoline Phenomena
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Enhancement of Deep-Subwavelength Band Gaps in Flat Spiral-Based Phononic Metamaterials Using the Trampoline Phenomena

机译:利用蹦床现象增强扁平螺旋基音箱超材料中深度亚波长带空隙

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摘要

Elastic and acoustic metamaterials can sculpt dispersion of waves through resonances. In turn, resonances can give rise to negative effective properties, usually localized around the resonance frequencies, which support band gaps at subwavelength frequencies (i.e., below the Bragg-scattering limit). However, the band gaps width correlates strongly with the resonators' mass and volume, which limits their functionality in applications. Trampoline phenomena have been numerically and experimentally shown to broaden the operational frequency ranges of two-dimensional, pillar-based metamaterials through perforation. In this work, we demonstrate trampoline phenomena in lightweight and planar lattices consisting of arrays of Archimedean spirals in unit cells. Spiral-based metamaterials have been shown to support different band gap opening mechanisms, namely, Bragg-scattering, local resonances and inertia amplification. Here, we numerically analyze and experimentally realize trampoline phenomena in planar metasurfaces for different lattice tessellations. Finally, we carry out a comparative study between trampoline pillars and spirals and show that trampoline spirals outperform the pillars in lightweight, compactness and operational bandwidth.
机译:弹性和声学的超材料可以通过共振雕刻波的分散。反过来,共振可以产生负有效性,通常围绕谐振频率定位,其支持亚波长频率的带间隙(即,下方的布拉格散射极限)。然而,带间隙宽度与谐振器的质量和体积强烈相关,这限制了它们在应用中的功能。蹦床现象已经在数值上和实验证明通过穿孔宽加置基于支柱的超材料的操作频率范围。在这项工作中,我们展示了轻量级和平面格子中的蹦床现象,包括单位细胞中的阿基米德螺旋阵列组成。已经显示基于螺旋基的超材料来支持不同的带隙打开机构,即布拉格散射,局部共振和惯性扩增。在这里,我们在线分析和实验地实现了不同晶格曲面细分的平面矫形器中的蹦床现象。最后,我们在蹦床和螺旋之间进行了比较研究,并表明蹦床螺旋优于轻质,紧凑性和运行带宽的柱子。

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