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基于模块化多阶亥姆霍兹谐振器的透明波导中的可重构声异常吸收

Reconfigurable sound anomalous absorptions in transparent waveguide with modularized multi-order Helmholtz resonator.

作者信息

Long Houyou, Cheng Ying, Liu Xiaojun

机构信息

Key Laboratory of Modern Acoustics, Department of Physics and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, 210093, China.

State Key Laboratory of Acoustics, Institute of Acoustics, Chinese Academy of Sciences, Beijing, 100190, China.

出版信息

Sci Rep. 2018 Oct 24;8(1):15678. doi: 10.1038/s41598-018-34117-z.

Abstract

Helmholtz resonators offer an ideal platform for advanced sound absorbers, but their utility has been impeded by inherent frequency range limitations and the lack of function reconfiguration. Here, we introduce a multi-order Helmholtz resonator (MHR) that allows multiple monopolar resonant modes theoretically and experimentally. The combination of these modularized MHRs further creates reconfigurable multi-band anomalous absorbers in a two-port transparent waveguide while maintaining undisturbed air ventilation. In asymmetric absorption state through coupling of artificial sound soft boundary with preposed MHR, sound energy is almost totally absorbed in multiple frequency ranges when sound waves are incident from one side while it is largely reflected back from the opposite side. Interestingly, the original asymmetric absorber would turn into symmetric bidirectional absorber if one post MHR concatenates after the soft boundary. Using combination of identical MHRs, we demonstrate function selective asymmetric/symmetric absorber in multi-bands, highlighting the potential to use MHRs in the design of diverse devices for more versatile applications.

摘要

亥姆霍兹共鸣器为先进的吸声器提供了一个理想平台,但其应用受到固有频率范围限制和功能可重构性缺失的阻碍。在此,我们介绍一种多阶亥姆霍兹共鸣器(MHR),它在理论和实验上都允许存在多个单极共振模式。这些模块化MHR的组合进一步在双端口透明波导中创建了可重构的多频段异常吸声器,同时保持空气畅通无阻。在通过人工声软边界与前置MHR耦合形成的非对称吸收状态下,当声波从一侧入射时,声能在多个频率范围内几乎被完全吸收,而从另一侧入射时则大部分被反射回去。有趣的是,如果在软边界之后连接一个后置MHR,原来的非对称吸声器会变成对称双向吸声器。通过使用相同MHR的组合,我们展示了多频段功能选择性非对称/对称吸声器,突出了在设计用于更多样化应用的各种设备中使用MHR的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf9d/6200729/8246252486b1/41598_2018_34117_Fig1_HTML.jpg

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