用于振动声学的有限尺寸迷宫超材料的设计与实验验证:实现向大型结构的升级。

IF 4.3 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
S Hermann, K Billon, A M Parlak, J Orlowsky, M Collet, A Madeo
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引用次数: 0

摘要

本文介绍了一种用于振动声学应用的迷宫超材料的设计和实验验证。基于二维单元格,我们提出了夹层结构(包括两块板)中有限尺寸超材料试样的不同设计方案。设计阶段包括基于 Bloch-Floquet 分析的优化,目的是最大化带隙,并在保持吸收特性几乎不受影响的情况下将试样挤压到三维空间。通过制造和实验测试有限尺寸的试样,我们评估了它们在振动冲击测试中减缓振动的能力。实验证实,在中低频范围内存在带隙。我们采用了数值模型来验证实验结果,并研究了其他振动-声学负载情况。将超材料的性能与通常用于噪声和振动减缓的基准解决方案进行了比较,结果显示在带隙区域具有可比的功效。为了最终提高超材料的性能,我们优化了超材料与空气的相互作用,并测试了超材料与均质板之间不同类型的连接。最终,超材料样品在带隙区域的性能大大超过了基准性能,并揭示了界面在优化组成结构性能方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and experimental validation of a finite-size labyrinthine metamaterial for vibro-acoustics: enabling upscaling towards large-scale structures.

In this article, we present the design and experimental validation of a labyrinthine metamaterial for vibro-acoustic applications. Based on a two-dimensional unit cell, different designs of finite-size metamaterial specimens in a sandwich configuration including two plates are proposed. The design phase includes an optimization based on Bloch-Floquet analysis with the aims of maximizing the band gap and extruding the specimens in the third dimension while keeping the absorption properties almost unaffected. By manufacturing and experimentally testing finite-sized specimens, we assess their capacity to mitigate vibrations in vibro-impact tests. The experiments confirm a band gap in the low- to mid-frequency range. Numerical models are employed to validate the experiments and to examine additional vibro-acoustic load cases. The metamaterial's performances are compared with benchmark solutions, usually employed for noise and vibration mitigation, showing a comparable efficacy in the band gap region. To eventually improve the metamaterial's performance, we optimize its interaction with the air and test different types of connections between the metamaterial and the homogeneous plates. This finally leads to metamaterial samples largely exceeding the benchmark performances in the band gap region and reveals the potential of interfaces for performance optimization of composed structures.This article is part of the theme issue 'Current developments in elastic and acoustic metamaterials science (Part 1)'.

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来源期刊
CiteScore
9.30
自引率
2.00%
发文量
367
审稿时长
3 months
期刊介绍: Continuing its long history of influential scientific publishing, Philosophical Transactions A publishes high-quality theme issues on topics of current importance and general interest within the physical, mathematical and engineering sciences, guest-edited by leading authorities and comprising new research, reviews and opinions from prominent researchers.
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