超材料
衰减
宽带
色散(光学)
光学
声学
联轴节(管道)
本征函数
表面波
物理
材料科学
波传播
灵活性(工程)
振动
领域(数学)
机械波
共振(粒子物理)
情态动词
布拉格定律
消散波
色散关系
耗散系统
纵波
带隙
模态分析
谐振器
光电子学
波导管
衍射
机械
反射(计算机编程)
作者
Huaqing Jin,Haicheng Zhang,Siming Zheng,Xiaofan Li,Ye Lu,Daolin Xu,Deborah Greaves
标识
DOI:10.1017/jfm.2026.11809
摘要
This study investigates a novel class of flexible plate metamaterials (FPMMs), consisting of a periodic array of bottom-mounted flexible structures, designed for the sub-wavelength manipulation of surface gravity waves. A theoretical framework is developed by coupling the matched eigenfunction expansion method with a modal expansion technique, incorporating Bloch’s theorem to characterise the band structures and complex dispersion relations. Numerical analysis reveals that the structural flexibility facilitates the formation of low-frequency, broadband bandgaps, primarily driven by a local resonance (LR) mechanism. It is shown that wave propagation can be effectively suppressed within these bandgap regimes through the synergistic interaction between the incident wave field and the structural vibration modes. The theoretical predictions are validated through laboratory experiments conducted in a wave flume, where substantial wave attenuation was observed under resonant conditions. Notably, the LR-induced bandgaps occur at significantly lower frequencies and exhibit broader bandwidths compared to those arising from traditional Bragg resonance. These findings demonstrate that the proposed FPMMs provide a tunable and effective mechanism for sub-wavelength wave attenuation, offering fundamental insights into localised hydrodynamic wave control.
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