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首页> 外文期刊>Journal of Physics Communications >Multifunction acoustic modulation by a multi-mode acoustic metamaterial architecture
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Multifunction acoustic modulation by a multi-mode acoustic metamaterial architecture

机译:通过多模式声学超材料架构实现多功能声学调制

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摘要

Exotic acoustical features, like acoustic transparency, ultrasonic beam focusing, acoustic band gap and super lensing capability using a single metamaterial architecture is unconventional and unprecedented in the literature, demonstrated herein. Conventional metamaterials can focus an ultrasonic beam at specific frequency which results into unwanted distortion of the output wave fields at neighboring sonic frequencies in the host medium. However, ultrasonic wave focusing by virtue of negative refraction and simultaneous transparency of the metamaterial at sonic frequencies are uncommon due to their frequency disparity. To circumvent this problem and to avoid the unwanted distortion of wave at sonic frequencies, metamaterial with an array of butterfly-shaped thin ring resonators are proposed to achieve the beam focusing at ultrasonic frequency (37.3 kHz) and keep the structure transparent to the sonic frequencies (20 kHz). The butterfly metamaterial with local ring resonators or butterfly crystals (BC) were previously proposed to create wide band gaps (~7 kHz) at ultrasonic frequencies above 20 kHz. However, in this study a unique sub-wavelength scale wave focusing capability of the butterfly metamaterial utilizing the negative refraction phenomenon is demonstrated, while keeping the metamaterial block transparent to the propagating wave at lower sonic frequencies below the previously reported bandgaps.
机译:使用单个超材料结构的异质声学特征(如声学透明性,超声束聚焦,声带隙和超透镜功能)在文献中是非常规且空前的,在本文中得到了证明。常规的超材料可以将超声波束聚焦在特定的频率上,从而导致宿主介质中相邻声频处的输出波场发生不必要的失真。然而,由于它们的频率差异,借助负折射进行的超声波聚焦和超材料在声频下的同时透明性并不常见。为了解决这个问题并避免在声频处产生不必要的波畸变,提出了一种具有蝴蝶形薄环谐振器阵列的超材料,以实现在超声频率(37.3 kHz)下的光束聚焦,并使结构对声频透明(<20 kHz)。先前提出了带有局部环形谐振器或蝴蝶晶体(BC)的蝴蝶超材料,以在20 kHz以上的超声频率下产生宽带隙(〜7 kHz)。然而,在这项研究中,利用负折射现象展示了蝴蝶超材料的独特的亚波长尺度波聚焦能力,同时在低于先前报道的带隙的较低声频下,使超材料块对传播波保持透明。

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