Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak

Abstract During the last decade, most of acoustic cloak research has been done within a theoretical framework in which the medium is at rest. However, such an acoustic cloak cannot preserve its unique properties or functions to make an object acoustically invisible in the presence of flow. In this s...

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Main Authors: Hyeonbin Ryoo, Wonju Jeon
Format: Article
Language:English
Published: Nature Publishing Group 2017-05-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-02143-y
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spelling doaj-1d19643a4d3b4c648da4b22a2c2c48372020-12-08T00:58:47ZengNature Publishing GroupScientific Reports2045-23222017-05-017111110.1038/s41598-017-02143-yEffect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloakHyeonbin Ryoo0Wonju Jeon1Department of Mechanical Engineering, Korea Advanced Institute of Science and TechnologyDepartment of Mechanical Engineering, Korea Advanced Institute of Science and TechnologyAbstract During the last decade, most of acoustic cloak research has been done within a theoretical framework in which the medium is at rest. However, such an acoustic cloak cannot preserve its unique properties or functions to make an object acoustically invisible in the presence of flow. In this study, we propose a theoretical framework to accurately investigate the effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak. In the formulation, the wave operator is coupled with the non-uniform velocity vector, and the equivalent source terms due to mean flow are divided into the compressibility effect and the non-uniformity effect with their own physical meanings. Numerical simulation shows the difference in far-field directivity between previous and present formulations. The polarity of the equivalent sources in the present formulation shows hexapole and skewed quadrupole patterns for non-uniformity and compressibility effects, respectively, and their magnitudes increase with power laws of Mach number as the Mach number increases. As an application, we make use of the present formulation for predicting the acoustic scattering from newly designed convective cloaks. The simulation results show better performance compared to the existing convective cloak.https://doi.org/10.1038/s41598-017-02143-y
collection DOAJ
language English
format Article
sources DOAJ
author Hyeonbin Ryoo
Wonju Jeon
spellingShingle Hyeonbin Ryoo
Wonju Jeon
Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
Scientific Reports
author_facet Hyeonbin Ryoo
Wonju Jeon
author_sort Hyeonbin Ryoo
title Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
title_short Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
title_full Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
title_fullStr Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
title_full_unstemmed Effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
title_sort effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-05-01
description Abstract During the last decade, most of acoustic cloak research has been done within a theoretical framework in which the medium is at rest. However, such an acoustic cloak cannot preserve its unique properties or functions to make an object acoustically invisible in the presence of flow. In this study, we propose a theoretical framework to accurately investigate the effect of compressibility and non-uniformity in flow on the scattering pattern of acoustic cloak. In the formulation, the wave operator is coupled with the non-uniform velocity vector, and the equivalent source terms due to mean flow are divided into the compressibility effect and the non-uniformity effect with their own physical meanings. Numerical simulation shows the difference in far-field directivity between previous and present formulations. The polarity of the equivalent sources in the present formulation shows hexapole and skewed quadrupole patterns for non-uniformity and compressibility effects, respectively, and their magnitudes increase with power laws of Mach number as the Mach number increases. As an application, we make use of the present formulation for predicting the acoustic scattering from newly designed convective cloaks. The simulation results show better performance compared to the existing convective cloak.
url https://doi.org/10.1038/s41598-017-02143-y
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