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Three-dimensional Sonic Band Gaps Tunned by Material Parameters

机译:由材料参数旋转的三维声音带隙

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In this paper, band gaps tunned by material parameters in three-dimensional fluid-fluid sonic crystals are studied. From the basic wave equation, it is found that the material parameters directly determining the three-dimensional sonic band gaps are the mass density ratio and bulk modulus ratio. The calculation of the sonic band gaps is completed by the plane-wave expansion method. The effects of these parameters on sonic band gaps are discussed in details for the simple-cubic (sc), face-centered cubic (fcc) and body-centered cubic (bcc) lattices. The results show that the first potential sonic band gap easily appears at both small mass density ratio and bulk modulus ratio, and becomes wider with both of these two parameters decreasing. The bulk modulus ratio plays a more important role than the mass density ratio in tuning the sonic band gaps. The present analysis can be applied to artificially design band gaps.
机译:本文研究了三维流体流体声波晶体中材料参数调节的带隙。从基本波方程,发现直接确定三维声波带间隙的材料参数是质量密度比和散装模量比。通过平面波扩展方法完成声波频带间隙的计算。这些参数对声波带间隙的影响是为了简单立方(SC),面为中心的立方(FCC)和身体中心的立方(BCC)格子的详细讨论。结果表明,第一潜在声波带隙容易出现小质量密度比和散装模量比,并且这两个参数减小两者都变宽。散装模量比比调整声波带间隙的质量密度比发挥更重要的作用。本分析可以应用于人工设计带隙。

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