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通过非局部声学超材料实现宽带阻抗调制

Broadband impedance modulation via non-local acoustic metamaterials.

作者信息

Zhou Zhiling, Huang Sibo, Li Dongting, Zhu Jie, Li Yong

机构信息

Institute of Acoustics, School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.

Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hong Kong, China.

出版信息

Natl Sci Rev. 2021 Sep 11;9(8):nwab171. doi: 10.1093/nsr/nwab171. eCollection 2022 Aug.

Abstract

Causality of linear time-invariant systems inherently defines the wave-matter interaction process in wave physics. This principle imposes strict constraints on the interfacial response of materials on various physical platforms. A typical consequence is that a delicate balance has to be struck between the conflicting bandwidth and geometric thickness when constructing a medium with desired impedance, which makes it challenging to realize broadband impedance modulation with compact structures. In pursuit of improvement, the over-damped recipe and the reduced excessive response recipe are creatively presented in this work. As a proof-of-concept demonstration, we construct a metamaterial with intensive mode density that supports strong non-locality over a frequency band from 320 Hz to 6400 Hz. Under the guidelines of the over-damped recipe and the reduced excessive response recipe, the metamaterial realizes impedance matching to air and exhibits broadband near-perfect absorption without evident impedance oscillation and absorption dips in the working frequency band. We further present a dual-functional design capable of frequency-selective absorption and reflection by concentrating the resonance modes in three frequency bands. Our research reveals the significance of over-damped recipe and the strong non-local effect in broadband impedance modulation, which may open up avenues for constructing efficient artificial impedance boundaries for energy absorption and other wave manipulation.

摘要

线性时不变系统的因果关系在波动物理学中固有地定义了波与物质的相互作用过程。这一原理对各种物理平台上材料的界面响应施加了严格的限制。一个典型的结果是,在构建具有所需阻抗的介质时,必须在相互冲突的带宽和几何厚度之间达成微妙的平衡,这使得用紧凑结构实现宽带阻抗调制具有挑战性。为了追求改进,本工作创造性地提出了过阻尼方法和减少过度响应方法。作为概念验证演示,我们构建了一种具有密集模式密度的超材料,该超材料在320赫兹至6400赫兹的频带上支持强非局域性。在过阻尼方法和减少过度响应方法的指导下,该超材料实现了与空气的阻抗匹配,并在工作频带内表现出宽带近完美吸收,没有明显的阻抗振荡和吸收凹陷。我们进一步提出了一种双功能设计,通过将共振模式集中在三个频带来实现频率选择性吸收和反射。我们的研究揭示了过阻尼方法和强非局域效应在宽带阻抗调制中的重要性,这可能为构建用于能量吸收和其他波操纵的高效人工阻抗边界开辟道路。

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