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Band gap characterization of complex unit cell geometries for 3D phononic crystals

机译:3D声子晶体的复杂晶胞几何形状的带隙表征

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We report on experimental characterization of acoustic band gaps for complex three-dimensional phononic crystals. Utilizing 3D unit cell geometries arranged in a cubic lattice, we can achieve uniquely wider band gaps with stronger suppression of acoustic waves than possible with two-dimensional realizations. Beyond our previously established simple cubic arrangement of three cylindrical holes derived from the classic 2D square array of holes, we investigate unit cells comprising a spherical cavity, a rectangular scaffold, and a spherical ball connected by cylindrical beams. All samples have been additively manufactured using microstereolithography printing in the same geometric arrangement with a lattice constant of 1 mm and variations of the characteristic dimensions to achieve different volumetric filling factors. Maximum band gap widths over 1 MHz at gap center frequencies around 750 - 850 kHz have been measured.
机译:我们报告复杂的三维声子晶体的声带隙的实验表征。利用以立方晶格排列的3D晶胞几何形状,我们可以实现比声学二维实现更为独特的更宽的带隙,并且对声波的抑制作用更强。除了我们先前建立的从经典的2D正方形孔阵列派生的三个圆柱孔的简单三次排列之外,我们还研究了包含球形腔体,矩形支架和通过圆柱梁连接的球形球的晶胞。所有样品均使用微立体平版印刷术以相同的几何排列以1毫米的晶格常数和特征尺寸的变化来累加制造,以实现不同的体积填充因子。已经测量了在750-850 kHz附近的间隙中心频率处超过1 MHz的最大带隙宽度。

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