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使用阻抗可调坐标变换实现隐身衣和集中器所需声学参数的简化。

The required acoustic parameters simplification of invisibility cloaks and concentrators using the impedance-tunable coordinate transformation.

作者信息

Cao Jun, Qi Fenghua, Yan Senlin

机构信息

Department of Electronics Engineering, Nanjing Xiaozhuang University, Nanjing, 211171, People's Republic of China.

Department of Physics and Institute of Theoretical Physics, Nanjing Normal University, Nanjing, 210023, People's Republic of China.

出版信息

Sci Rep. 2021 Jan 13;11(1):920. doi: 10.1038/s41598-020-79728-7.

Abstract

Transformation acoustics, as an unconventional theory, provides a powerful tool to design various kinds of acoustic devices with excellent functionalities. However, the required ideal parameters, which are prescribed by the method, are both complex and hard to implement-even using acoustic metamaterials. Furthermore, simplified parameter materials are generally favored in transformation-acoustic design due to its easier realization with artificial structures. In this letter, we propose a coordinate transformation methodology for achieving simplified parameters by tuning the impedance distribution in the geometric limit, where the transformation media parameters can be derived by setting tunable impedance functions in the original space and a combination of suitable linear or nonlinear coordinate transformation. Based on this approach, both two-dimensional acoustic cloak and concentrators are designed with different sets of simplified parameters. Numerical simulations indicate good performance of these devices with minimized scattering at higher frequencies. The proposed method provides more opportunities to realize the designed acoustic devices experimentally, and can also be used for other transformation-acoustic designs including 3D cases.

摘要

变换声学作为一种非常规理论,为设计具有优异功能的各类声学器件提供了强大工具。然而,该方法规定的所需理想参数既复杂又难以实现——即便使用声学超材料也是如此。此外,简化参数材料在变换声学设计中通常更受青睐,因为通过人工结构更容易实现。在本信函中,我们提出一种坐标变换方法,通过在几何极限中调整阻抗分布来实现简化参数,其中变换介质参数可通过在原始空间中设置可调阻抗函数以及合适的线性或非线性坐标变换组合来推导。基于此方法,设计了具有不同组简化参数的二维声学隐身衣和集中器。数值模拟表明,这些器件在较高频率下具有良好性能,散射最小。所提出的方法为通过实验实现所设计的声学器件提供了更多机会,并且还可用于包括三维情况在内的其他变换声学设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84de/7806613/b2bfeb1bad18/41598_2020_79728_Fig1_HTML.jpg

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