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On the coupling of resonance and Bragg scattering effects in three-dimensional locally resonant sonic materials

机译:关于三维局部共振声波材料中共振和布拉格散射效应的耦合

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摘要

Three-dimensional (3D) locally resonant sonic materials (LRSMs) are studied theoretically for purpose of optimising their sub-wavelength performance by coupling resonance and Bragg scattering effects together. Through the study of effective sound speeds of LRSMs, we find that the starting frequency of Bragg scattering can be shifted to sub-wavelength region by softening coats of resonators when the matrix is a low shear-velocity medium. A similar result can be achieved by compressing the lattice constant. By using a layer-multiple- scattering method, we investigate the complex band structure and the transmission spectrum of an LRSM whose Bragg gap is already close to the resonance gap in frequency. The wave fields of the composite simulated by COMSOL are further analysed at several typical frequencies. The result shows that the approaching of two kinds of gaps not only broadens the bandwidth of the resonance gap, but also increases the depth of the Bragg gap since the interaction between resonant modes and scattering waves are enhanced. By varying the shear velocity of coats, we obtain a coupled gap, which exhibits a broad transmission gap in the sub-wavelength region. When the loss of coats is considered, the coupled gap can not only maintain a good sound blocking performance, but also perform an efficient absorption in the low frequency region.
机译:理论上研究了三维(3D)局部共振声材料(LRSM),目的是通过将共振和布拉格散射效应耦合在一起来优化其亚波长性能。通过对LRSMs有效声速的研究,我们发现当基质为低剪切速度介质时,通过软化谐振腔的涂层可以使布拉格散射的起始频率移至亚波长区域。通过压缩晶格常数可以获得相似的结果。通过使用多层多重散射方法,我们研究了布拉格间隙已经接近共振间隙的LRSM的复带结构和传输谱。在几个典型频率下,进一步分析了COMSOL模拟的复合材料的波场。结果表明,两种间隙的接近不仅扩大了共振间隙的带宽,而且由于增强了共振模与散射波之间的相互作用,还增加了布拉格间隙的深度。通过改变涂层的剪切速度,我们获得了耦合间隙,该间隙在亚波长区域显示出较宽的透射间隙。考虑到涂层的损失,耦合间隙不仅可以保持良好的隔音性能,而且可以在低频区域进行有效吸收。

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