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Wave propagation in acoustic metamaterials with resonantly shunted cross-shape piezos

机译:具有共振分流的十字形压电的声超材料中的波传播

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摘要

Cross-shape piezoelectric patches were originally proposed to improve the band-gap properties of acoustic metamaterials with shunting circuits. The dispersion curves are characterized through the application of finite element method. Also, the theoretical band-gap predictions are verified by simulation results obtained from COMSOL. The investigation results show that the proposed scheme distinguishes itself from the conventional square patches by broader band gaps, whose bandwidth is almost doubled. The inherent capacitance of the piezoelectric patch is strongly related to the boundary conditions, so the local resonant band gap is strongly affected by the shape of piezoelectric patches as well. As a result, the band-gap width and location of metamaterials with different shape patches are rather different, even with the same size patches. Also, negative modulus (NM) and Poisson's ratio were observed around the resonant frequencies. The transmission properties of finite periods agree well with band-gap predictions. An obvious attenuation zone (AZ) is produced around the band-gap location, in which the wave propagation is decayed strongly. Similarly, the width of AZ of the proposed metamaterial is much larger than that of the conventional one. Hence, the proposed scheme demonstrates more advantages in the application to vibration isolation when compared with the conventional.
机译:最初提出十字形压电贴片以改善带有分流电路的声学超材料的带隙性能。通过应用有限元方法对色散曲线进行表征。另外,理论上的带隙预测通过COMSOL的仿真结果得到验证。研究结果表明,所提出的方案与常规的正方形补丁区分开来,其带宽较宽,带宽几乎增加了一倍。压电贴片的固有电容与边界条件密切相关,因此局部谐振带隙也受到压电贴片形状的强烈影响。结果,即使具有相同大小的斑块,具有不同形状斑块的超材料的带隙宽度和位置也相当不同。此外,在共振频率附近观察到负模量(NM)和泊松比。有限周期的传输特性与带隙预测非常吻合。在带隙位置附近会产生一个明显的衰减区(AZ),在该区中,波传播会强烈衰减。同样,所提出的超材料的AZ宽度比传统材料大得多。因此,与传统技术相比,该方案在隔振应用中显示出更多的优势。

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