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A seismic metamaterial: The resonant metawedge

机译:地震超材料:共振超楔

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摘要

Critical concepts from three different fields, elasticity, plasmonics and metamaterials, are brought together to design a metasurface at the geophysical scale, the resonant metawedge, to control seismic Rayleigh waves. Made of spatially graded vertical subwavelength resonators on an elastic substrate, the metawedge can either mode convert incident surface Rayleigh waves into bulk elastic shear waves or reflect the Rayleigh waves creating a “seismic rainbow” effect analogous to the optical rainbow for electromagnetic metasurfaces. Time-domain spectral element simulations demonstrate the broadband efficacy of the metawedge in mode conversion while an analytical model is developed to accurately describe and predict the seismic rainbow effect; allowing the metawedge to be designed without the need for extensive parametric studies and simulations. The efficiency of the resonant metawedge shows that large-scale mechanical metamaterials are feasible, will have application, and that the time is ripe for considering many optical devices in the seismic and geophysical context.
机译:来自三个不同领域的关键概念,即弹性,等离激元和超材料,被组合在一起,以设计地球物理规模的超表面,即共振超楔形物,以控制地震瑞利波。由楔形结构在弹性基板上由空间分级的垂直亚波长谐振器组成,超楔形件可以将入射表面瑞利波模转换为整体弹性剪切波,或者反射瑞利波,从而产生类似于电磁超表面的“彩虹”效应的“地震彩虹”效应。时域频谱元素模拟显示了模式转换中metawedge的宽带功效,同时开发了一种分析模型来准确描述和预测地震彩虹效应。无需进行大量的参数研究和仿真就可以设计元楔。共振超楔的效率表明,大规模的机械超材料是可行的,将得到应用,并且在地震和地球物理环境下考虑许多光学设备的时机已经成熟。

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