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Compact Acoustic Rainbow Trapping in a Bioinspired Spiral Array of Graded Locally Resonant Metamaterials

机译:在梯度局部共振超材料的生物启发螺旋阵列中的紧凑声彩虹陷阱。

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摘要

Acoustic rainbow trappers, based on frequency selective structures with graded geometries and/or properties, can filter mechanical waves spectrally and spatially to reduce noise and interference in receivers. These structures are especially useful as passive, always-on sensors in applications such as structural health monitoring. For devices that face space and weight constraints, such as microelectromechanical systems (MEMS) transducers and artificial cochleae, the rainbow trapping structures must be compact as well. To address this requirement, we investigated the frequency selection properties of a space-saving design consisting of Helmholtz resonators arranged at sub-wavelength intervals along a cochlear-inspired spiral tube. The height of the Helmholtz resonators was varied gradually, which induced bandgap formation at different frequencies along the length of the spiral tube. Numerical simulations and experimental measurements of acoustic wave propagation through the structure showed that frequencies in the range of 1–10 kHz were transmitted to different extents along the spiral tube. These rainbow trapping results were achieved with a footprint that was up to 70 times smaller than the previous structures operating at similar bandwidths, and the channels are 2.5 times of the previous structures operating at similar bandwidths.
机译:基于具有渐变几何形状和/或特性的频率选择性结构的声学彩虹陷波器可以在频谱和空间上过滤机械波,以减少接收器中的噪声和干扰。这些结构在诸如结构健康监测之类的应用中作为被动的,常开的传感器特别有用。对于面临空间和重量限制的设备,例如微机电系统(MEMS)换能器和人工耳蜗,彩虹捕获结构也必须紧凑。为了满足这一要求,我们研究了一种节省空间的设计的频率选择特性,该设计由沿耳蜗式螺旋管以亚波长间隔排列的亥姆霍兹谐振器组成。亥姆霍兹共振器的高度逐渐变化,这导致沿螺旋管长度以不同频率形成带隙。声波在结构中传播的数值模拟和实验测量表明,在1–10 kHz范围内的频率沿螺旋管传输的程度不同。这些彩虹捕获结果的实现方式是占用的带宽比以类似带宽工作的先前结构小多达70倍,并且通道是以类似带宽工作的先前结构的2.5倍。

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