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具有威利斯耦合的有源声学超材料可实现的极端材料参数。

Extreme material parameters accessible by active acoustic metamaterials with Willis coupling.

作者信息

Craig Steven R, Wang Bohan, Su Xiaoshi, Banerjee Debasish, Welch Phoebe J, Yip Mighten C, Hu Yuhang, Shi Chengzhi

机构信息

George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

Toyota Research Institute of North America, 1555 Woodridge Avenue, Ann Arbor, Michigan 48105, USA.

出版信息

J Acoust Soc Am. 2022 Mar;151(3):1722. doi: 10.1121/10.0009771.

Abstract

Active acoustic metamaterials incorporate electric circuit elements that input energy into an otherwise passive medium to aptly modulate the effective material properties. Here, we propose an active acoustic metamaterial with Willis coupling to drastically extend the tunability of the effective density and bulk modulus with the accessible parameter range enlarged by at least two orders of magnitude compared to that of a non-Willis metamaterial. Traditional active metamaterial designs are based on local resonances without considering the Willis coupling that limit their accessible effective material parameter range. Our design adopts a unit cell structure with two sensor-transducer pairs coupling the acoustic response on both sides of the metamaterial by detecting incident waves and driving active signals asymmetrically superimposed onto the passive response of the material. The Willis coupling results from feedback control circuits with unequal gains. These asymmetric feedback control circuits use Willis coupling to expand the accessible range of the effective density and bulk modulus of the metamaterial. The extreme effective material parameters realizable by the metamaterials will remarkably broaden their applications in biomedical imaging, noise control, and transformation acoustics-based cloaking.

摘要

有源声学超材料包含电路元件,这些元件将能量输入到原本被动的介质中,以恰当地调制有效材料特性。在此,我们提出一种具有威利斯耦合的有源声学超材料,与非威利斯超材料相比,其有效密度和体积模量的可调性大幅扩展,可访问参数范围扩大了至少两个数量级。传统的有源超材料设计基于局部共振,未考虑威利斯耦合,这限制了它们可访问的有效材料参数范围。我们的设计采用一种单元结构,其中有两对传感器 - 换能器,通过检测入射波并将有源信号不对称地叠加到材料的被动响应上来耦合超材料两侧的声学响应。威利斯耦合由增益不等的反馈控制电路产生。这些不对称反馈控制电路利用威利斯耦合来扩展超材料有效密度和体积模量的可访问范围。超材料可实现的极端有效材料参数将显著拓宽其在生物医学成像、噪声控制和基于变换声学的隐身方面的应用。

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