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声学超材料腔中的声压级增益。

Sound pressure level gain in an acoustic metamaterial cavity.

作者信息

Song Kyungjun, Kim Kiwon, Hur Shin, Kwak Jun-Hyuk, Park Jihyun, Yoon Jong Rak, Kim Jedo

机构信息

Department of Nature-Inspired Nanoconvergence Systems, Korea Institute of Machinery and Materials, 156 Gajeongbuk-Ro, Daejeon, 305-343, Korea.

Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-Ro, Yuseong-Gu, Daejeon, 305-701, Korea.

出版信息

Sci Rep. 2014 Dec 11;4:7421. doi: 10.1038/srep07421.

Abstract

The inherent attenuation of a homogeneous viscous medium limits radiation propagation, thereby restricting the use of many high-frequency acoustic devices to only short-range applications. Here, we design and experimentally demonstrate an acoustic metamaterial localization cavity which is used for sound pressure level (SPL) gain using double coiled up space like structures thereby increasing the range of detection. This unique behavior occurs within a subwavelength cavity that is 1/10(th) of the wavelength of the incident acoustic wave, which provides up to a 13 dB SPL gain. We show that the amplification results from the Fabry-Perot resonance of the cavity, which has a simultaneously high effective refractive index and effective impedance. We also experimentally verify the SPL amplification in an underwater environment at higher frequencies using a sample with an identical unit cell size. The versatile scalability of the design shows promising applications in many areas, especially in acoustic imaging and underwater communication.

摘要

均匀粘性介质的固有衰减限制了辐射传播,从而将许多高频声学设备的使用限制在仅短程应用中。在此,我们设计并通过实验证明了一种声学超材料定位腔,该腔利用双螺旋状空间结构实现声压级(SPL)增益,从而增加检测范围。这种独特的行为发生在一个亚波长腔内,该腔为入射声波波长的1/10,可提供高达13 dB的SPL增益。我们表明,放大是由腔的法布里 - 珀罗共振引起的,该共振同时具有高有效折射率和有效阻抗。我们还使用具有相同晶胞尺寸的样品在水下环境中对更高频率下的SPL放大进行了实验验证。该设计的通用可扩展性在许多领域显示出有前景的应用,特别是在声学成像和水下通信方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ae2/4262817/0257f30de11d/srep07421-f1.jpg

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