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利用智能材料和声学超材料进行低频吸声研究的进展

Progress of low-frequency sound absorption research utilizing intelligent materials and acoustic metamaterials.

作者信息

Chang Longfei, Jiang Ajuan, Rao Manting, Ma Fuyin, Huang Haibo, Zhu Zicai, Zhang Yu, Wu Yucheng, Li Bo, Hu Ying

机构信息

Anhui Province Key Lab of Aerospace Structural Parts Forming Technology and Equipment, Hefei University of Technology Hefei 230009 China

Anhui Province Key Lab of Advanced Functional Materials and Devices, Hefei University of Technology Hefei 230009 China.

出版信息

RSC Adv. 2021 Nov 23;11(60):37784-37800. doi: 10.1039/d1ra06493b.

Abstract

In recent years, increasing attention has been paid to the impacts of environmental noises on living creatures as well as the accuracy and stability of precise instruments. Due to inherent properties induced by large wavelength, the attenuation and manipulation of low-frequency sound waves is quite difficult to realize with traditional acoustic absorbers, yet particularly critical to modern designs. The advent of acoustic metamaterials and intelligent materials provides possibilities of energy dissipation mechanisms other than viscous dissipation and heat conduction in conventional porous sound absorbers, and therefore inspires new strategies on the design of subwavelength-scale structures. This short review aims to trace the current advancement on the low-frequency sound absorption research utilizing intelligent materials and metamaterials, including Helmholtz resonators and acoustic metamaterials based on micro-perforated plates, porous media, and decorated membrane, along with the tunable absorbing structures regulated with the function of electroactive polymers or magnetically sensitive materials. The effective principles and prospects were concluded and presented for future investigations of subwavelength-scale acoustic structures.

摘要

近年来,环境噪声对生物以及精密仪器的准确性和稳定性的影响受到了越来越多的关注。由于长波长所带来的固有特性,传统吸声器很难实现低频声波的衰减和操控,而这对现代设计尤为关键。声学超材料和智能材料的出现,为传统多孔吸声器中除粘性耗散和热传导之外的能量耗散机制提供了可能性,从而激发了亚波长尺度结构设计的新策略。本简短综述旨在追溯利用智能材料和超材料进行低频吸声研究的当前进展,包括基于微穿孔板、多孔介质和装饰膜的亥姆霍兹谐振器和声学超材料,以及由电活性聚合物或磁敏材料功能调节的可调谐吸声结构。总结了有效原理并展望了亚波长尺度声学结构未来的研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7190/9044041/1ed37da6ffef/d1ra06493b-f1.jpg

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