Design of phononic crystals using superposition of defect and gradient-index for enhanced wave focusing

N. Shen, Yu Cong, S. Gu, Gongye Zhang, Zhiqiang Feng
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Abstract

This paper introduces a novel design strategy for phononic crystals (PnCs) that significantly enhances their wave amplification and focusing capabilities, making them highly suitable for energy harvesting applications. The strategy is based on the combination of two distinct wave tuning techniques: defect PnCs implementation and gradient-index (GRIN) structure designs. The two techniques are based on different mechanisms and are commonly considered independently for wave manipulation applications. In particular, defect PnCs incorporate structural or material irregularities within periodic PnCs, enabling waves of certain frequencies, typically blocked by the bandgap, to pass through and emerge with amplified amplitude at the defect location. In contrast, the gradient-index technique utilizes gradient structures that induce refractive effect to the wave propagation, focusing the wave at a pre-determined location. The PnC design strategy that we propose combines the wave amplifying effect of defect PnCs in conjunction with the wave focusing effect of the gradient-index mechanism. This combination leads to substantial performance improvement, with enhancement factors of 2.6 and 4.1, in comparison with individually implemented defect or gradient models, respectively. These results open up new possibilities for the development of PnCs with the goal of tuning wave propagations for optimized vibration energy harvesters.
利用缺陷和梯度指数的叠加设计声子晶体,增强波聚焦效果
本文介绍了一种新颖的声子晶体(PnCs)设计策略,该策略可显著增强声子晶体的波放大和聚焦能力,使其非常适合能量收集应用。该策略基于两种不同的声波调谐技术的结合:缺陷 PnCs 实现和梯度指数 (GRIN) 结构设计。这两种技术基于不同的机制,在波操纵应用中通常被单独考虑。其中,缺陷 PnC 在周期性 PnC 中加入了结构或材料的不规则性,使通常被带隙阻挡的特定频率的波能够穿过缺陷位置并以放大的振幅出现。相比之下,梯度指数技术利用梯度结构对波的传播产生折射效应,将波聚焦在预定位置。我们提出的 PnC 设计策略结合了缺陷 PnC 的波放大效应和梯度指数机制的波聚焦效应。与单独实施的缺陷或梯度模型相比,这种组合可大幅提高性能,增强系数分别达到 2.6 和 4.1。这些结果为开发 PnCs 开辟了新的可能性,其目标是为优化振动能量收集器调整波的传播。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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