Enhancing sound transmission loss of a piezoelectric metastructure shell in the low-frequency range using negative-capacitance shunting

IF 4.2 2区 工程技术 Q1 MECHANICS European Journal of Mechanics A-Solids Pub Date : 2025-05-01 Epub Date: 2024-12-24 DOI:10.1016/j.euromechsol.2024.105554
Yisheng Zheng , Huaibing Yuan , Wujun Feng , Yegao Qu , Yajun Luo
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Abstract

To address the low-frequency sound insulation problem of shell structures, we explore and exploit a piezoelectric metastructure shell (meta-shell) with negative-capacitance (NC) shunting. The effective elastic parameters of the meta-shell are derived with considering the impacts of NC shunting, thereby enabling achieving its effective acoustic impedance for computing the sound transmission loss (STL). By configurating the piezoelectric shunting as such that the effective tensional rigidity of the meta-shell is increased, its ring frequency would be improved and therefore the low-frequency sound insulation performance below which is generally enhanced. Both the effective impedance method and the finite-element (FE) method are employed to analyze STL of the meta-shell. The sound transmission behaviors are further interpreted through dispersion relations of unit cells. It is found that, due to the increasing of rigidity, the two dispersion branches of the bending-tensional modes are overall shifted to higher frequency regimes through NC piezoelectric shunting. On the other hand, they are also separated far away in the frequency domain. It leads to quite distinct characteristic frequencies for sound waves with different incidence angles. Therefore, under the vertical incidence of sound waves, the low-frequency soundproof performance is enhanced much more significantly than that under the conditions with relatively large incidence angles. The scenarios with different values of negative capacitance, covering ratios and thickness ratios of piezoelectric patches are considered for comprehensively evaluating their impacts on the low-frequency soundproof performance of the meta-shell. Distinguished with metastructures relying on the local-resonance mechanism, the proposed scheme could improve sound insulation performance of shell structures in the broadband low-frequency range.
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利用负电容分流提高压电元结构壳体在低频范围内的声传输损耗
为了解决壳体结构的低频隔声问题,我们探索并开发了一种负电容并联压电元结构壳体(meta-shell)。在考虑NC分流影响的情况下,导出了元壳的有效弹性参数,从而获得了元壳的有效声阻抗,用于计算声传输损失(STL)。通过配置压电分流,提高元壳的有效抗拉刚度,可以提高其环频率,从而提高其低频隔声性能。采用有效阻抗法和有限元法对元壳的STL进行分析。通过单元胞的色散关系进一步解释声传输行为。研究发现,由于刚度的增加,通过数控压电分流,弯张模态的两个色散分支总体上向更高的频率区转移。另一方面,它们在频域中也被隔得很远。这导致不同入射角声波的特征频率差异很大。因此,在声波垂直入射条件下,低频隔音性能的增强要比较大入射角条件下明显得多。考虑了不同压电片负电容值、覆盖比和厚度比的情况,综合评价了其对元壳低频隔音性能的影响。与依赖局部共振机制的元结构不同,该方案可以提高壳体结构在宽带低频范围内的隔声性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.00
自引率
7.30%
发文量
275
审稿时长
48 days
期刊介绍: The European Journal of Mechanics endash; A/Solids continues to publish articles in English in all areas of Solid Mechanics from the physical and mathematical basis to materials engineering, technological applications and methods of modern computational mechanics, both pure and applied research.
期刊最新文献
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