Experimental realization of lower-frequency complete band gaps in 2D phononic crystals

Huanyu Zhao, C. He, Bin Wu, Yuesheng Wang
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Abstract

The lattice configurations are used to produce the different effects of band gap. Based on the well-known ultrasonic immersion transmission technique, the experimental investigation of acoustic wave propagation in two-dimensional phononic crystals for square, honeycomb and (4.82) lattices of steel rods in water is reported at the same normalized radius. Using the plane-wave expansion method we calculate the band structures of phononic crystal. The configurations of square, honeycomb and (4.82) lattices have an atom-rods, two atoms-rods and four atoms-rods per unit cell respectively. We found the structure of (4.82) lattice can have the advantage over other lattice structures and open the very lower-frequency complete band gap. Also, a good agreement between experimental results of complete band gaps for three lattices phononic crystals and theoretical predictions is obtained. Thus, the (4.82) phononic crystal may help to design the new controlling materials in lower-frequency ranges as noise barriers.
二维声子晶体低频全带隙的实验实现
利用不同的晶格结构产生不同的带隙效应。基于超声浸没传输技术,在相同归一化半径下,对水中方形、蜂窝和(4.82)格钢棒二维声子晶体中的声波传播进行了实验研究。利用平面波展开法计算了声子晶体的能带结构。方形晶格、蜂窝状晶格和(4.82)晶格的构型,每单元细胞分别具有1个原子棒、2个原子棒和4个原子棒。我们发现(4.82)晶格结构比其他晶格结构更有优势,可以打开非常低频率的完整带隙。同时,得到了三晶格声子晶体完全带隙的实验结果与理论预测结果吻合较好。因此,(4.82)声子晶体可能有助于在低频范围内设计新的控制材料作为噪声屏障。
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