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Control of low-frequency noise for piping systems via the design of coupled band gap of acoustic metamaterials

机译:通过声学超材料的耦合带隙设计控制管道系统的低频噪声

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摘要

Acoustic wave propagation and sound transmission in a metamaterial-based piping system with Helmholtz resonator (HR) attached periodically are studied. A transfer matrix method is developed to conduct the investigation. Calculational results show that the introduction of periodic HRs in the piping system could generate a band gap (BG) near the resonant frequency of the HR, such that the bandwidth and the attenuation effect of HR improved notably. Bragg type gaps are also exist in the system due to the systematic periodicity. By plotting the BG as functions of HR parameters, the effect of resonator parameters on the BG behavior, including bandwidth, location and attenuation performance, etc., is examined. It is found that Bragg-type gap would interplay with the resonant-type gap under some special situations, thereby giving rise to a super-wide coupled gap. Further, explicit formulation for BG exact coupling is extracted and some key parameters on modulating the width and the attenuation coefficient of coupled gaps are investigated. The coupled gap can be located to any frequency range as one concerned, thus rendering the low-frequency noise control feasible in a broad band range. (C) 2016 Elsevier B.V. All rights reserved.
机译:研究了定期安装亥姆霍兹共振器(HR)的基于超材料的管道系统中的声波传播和声音传输。开发了一种传输矩阵方法来进行调查。计算结果表明,在管道系统中引入周期性HR会在HR的共振频率附近产生带隙(BG),从而显着提高了HR的带宽和衰减效果。由于系统的周期性,布拉格类型的间隙也存在于系统中。通过将BG绘制为HR参数的函数,可以检查谐振器参数对BG行为的影响,包括带宽,位置和衰减性能等。发现在某些特殊情况下,布拉格型间隙会与谐振型间隙相互作用,从而产生超宽耦合间隙。此外,提取了用于BG精确耦合的显式公式,并研究了一些有关调制间隙宽度和衰减系数的关键参数。所关注的耦合间隙可以位于任何频率范围内,因此使得低频噪声控制在宽带范围内可行。 (C)2016 Elsevier B.V.保留所有权利。

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