手性扭曲超材料中出现的低频双法诺共振

IF 2.1 3区 物理与天体物理 Q2 ACOUSTICS
Brahim Lemkalli , Muamer Kadic , Youssef El Badri , Sébastien Guenneau , Abdellah Mir , Younes Achaoui
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引用次数: 0

摘要

我们描述了具有扭曲特征的手性机械超材料的创新设计,该设计可诱发具有相对较高品质因数的法诺共振。通过有限元分析,我们描绘了手性对称结构的声波频散曲线和传输响应,并将其与同质介质、等轴非手性和等轴手性光束的声波频散曲线和传输响应进行了对比。我们证明,基于两块八边形板的手性辛迪加单元的光束在低频处表现出双重法诺共振。最后,我们探讨了将辛迪加梁超材料用作温度传感器的前景,在所研究的频率附近,其灵敏度和品质因数与所建议的尺寸相当。影响声波在固体和液体中衰减的耗散效应可能会导致品质因数的降低,我们对此进行了适当的考虑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The emergence of low-frequency dual Fano resonances in chiral twisting metamaterials

We describe innovative designs of chiral mechanical metamaterials with a twist feature that induces Fano-resonances with a relatively high quality factor. Through a finite element analysis, we delineate the phononic dispersion curves and transmission responses provided by a syndiotactic symmetry configuration, which we contrast to the ones of homogeneous medium, isotactic nonchiral, and isotactic chiral beams. We demonstrate that the beam with the chiral syndiotactic cell based on the two octagonal plates exhibits dual Fano resonances at low frequencies. Finally, we explore the prospect of applying syndiotactic beam metamaterials as temperature sensors with significant sensitivity and quality factors for the proposed size at the vicinity of frequencies investigated. The dissipation effects influencing the acoustic wave attenuation in both solids and liquids, which may result in a decrease in the quality factors, are appropriately accounted for.

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来源期刊
Wave Motion
Wave Motion 物理-力学
CiteScore
4.10
自引率
8.30%
发文量
118
审稿时长
3 months
期刊介绍: Wave Motion is devoted to the cross fertilization of ideas, and to stimulating interaction between workers in various research areas in which wave propagation phenomena play a dominant role. The description and analysis of wave propagation phenomena provides a unifying thread connecting diverse areas of engineering and the physical sciences such as acoustics, optics, geophysics, seismology, electromagnetic theory, solid and fluid mechanics. The journal publishes papers on analytical, numerical and experimental methods. Papers that address fundamentally new topics in wave phenomena or develop wave propagation methods for solving direct and inverse problems are of interest to the journal.
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