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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Ultra-open acoustic metamaterial silencer based on Fano-like interference
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Ultra-open acoustic metamaterial silencer based on Fano-like interference

机译:基于类范诺干涉的超开放声超材料消声器

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摘要

Recently, with advances in acoustic metamaterial science, the possibility of sound attenuation using subwavelength structures, while maintaining permeability to air, has been demonstrated. However, the ongoing challenge addressed herein is the fact that among such air-permeable structures to date, the open area represents only small fraction of the overall area of the material. In the presented paper in order to address this challenge, we first demonstrate that a transversely placed bilayer medium with large degrees of contrast in the layers' acoustic properties exhibits an asymmetric transmission, similar to the Fano-like interference phenomenon. Next, we utilize this design methodology and propose a deep-subwavelength acoustic metasurface unit cell comprising nearly 60% open area for air passage, while serving as a high-performance selective sound silencer. Finally, the proposed unit-cell performance is validated experimentally, demonstrating a reduction in the transmitted acoustic energy of up to 94%. This ultra-open metamaterial design, leveraging a Fano-like interference, enables high-performance sound silencing in a design featuring a large degree of open area, which may find utility in applications in which highly efficient, air-permeable sound silencers are required, such as smart sound barriers, fan or engine noise reduction, among others.
机译:近来,随着声学超材料科学的进步,已经证明了在保持空气渗透性的同时使用亚波长结构衰减声音的可能性。然而,本文所解决的持续挑战是以下事实:迄今为止,在此类透气结构中,开放区域仅占材料总面积的一小部分。在提出的论文中,为了解决这一挑战,我们首先证明了横向放置的双层介质,其在各层的声学特性中具有很大的对比度,表现出不对称的传输,类似于Fano类干扰现象。接下来,我们利用这种设计方法,提出一种深亚波长声学超表面单元,该单元包括近60%的空气流通面积,同时用作高性能的选择性消音器。最终,通过实验验证了所提出的单位电池性能,表明所传输的声能最多降低了94%。这种超开放的超材料设计,利用了类似Fano的干扰,可以在具有较大开放区域的设计中实现高性能的声音消音,在需要高效,透气的消音器的应用中可能会有用,例如智能声屏障,风扇或发动机降噪等。

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