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蛾翅作为吸声超表面

Moth wings as sound absorber metasurface.

作者信息

Neil Thomas R, Shen Zhiyuan, Robert Daniel, Drinkwater Bruce W, Holderied Marc W

机构信息

School of Biological Sciences, University of Bristol, Bristol, UK.

Department of Mechanical Engineering, University of Bristol, Bristol, UK.

出版信息

Proc Math Phys Eng Sci. 2022 Jun;478(2262):20220046. doi: 10.1098/rspa.2022.0046. Epub 2022 Jun 15.

Abstract

In noise control applications, a perfect metasurface absorber would have the desirable traits of not only mitigating unwanted sound, but also being much thinner than the wavelengths of interest. Such deep-subwavelength performance is difficult to achieve technologically, yet moth wings, as natural metamaterials, offer functionality as efficient sound absorbers through the action of the numerous resonant scales that decorate their wing membrane. Here, we quantify the potential for moth wings to act as a sound-absorbing metasurface coating for acoustically reflective substrates. Moth wings were found to be efficient sound absorbers, reducing reflection from an acoustically hard surface by up to 87% at the lowest frequency tested (20 kHz), despite a thickness to wavelength ratio of up to 1/50. Remarkably, after the removal of the scales from the dorsal surface the wing's orientation on the surface changed its absorptive performance: absorption remains high when the bald wing membrane faces the sound but breaks down almost completely in the reverse orientation. Numerical simulations confirm the strong influence of the air gap below the wing membrane but only when it is adorned with scales. The finding that moth wings act as deep-subwavelength sound-absorbing metasurfaces opens the door to bioinspired, high-performance sound mitigation solutions.

摘要

在噪声控制应用中,理想的超表面吸声器应具备不仅能减轻不需要的声音,而且比感兴趣的波长薄得多的理想特性。这种深亚波长性能在技术上很难实现,然而蛾翅作为天然超材料,通过其翅膜上众多共振尺度的作用,具备高效吸声器的功能。在此,我们量化了蛾翅作为声学反射基板的吸声超表面涂层的潜力。研究发现,蛾翅是高效的吸声器,在测试的最低频率(20kHz)下,能将来自声学硬表面的反射降低多达87%,尽管其厚度与波长之比高达1/50。值得注意的是,从背表面去除鳞片后,翅在表面的方向改变了其吸收性能:当光秃的翅膜面向声音时吸收仍然很高,但在相反方向时几乎完全消失。数值模拟证实了翅膜下方气隙的强烈影响,但只有当翅膜有鳞片时才会如此。蛾翅作为深亚波长吸声超表面的这一发现为受生物启发的高性能噪声减轻解决方案打开了大门。

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