超材料
振动
物理
声学
钟摆
材料科学
光学
量子力学
作者
Leiyu Yang,Marco Y.C. Pang,Yan Zhao,Bangxiang Ming,Jiejie Cai,Lei Qin
标识
DOI:10.1142/s1758825125500887
摘要
Due to superior wave propagation manipulation and remarkable dynamic properties, mechanical metamaterials have attained pivotal importance across scientific and engineering domains in contemporary research. This study develops a multiple-pendulum metamaterial that exhibits a gravity-induced zero-frequency bandgap, demonstrating exceptional wave attenuation capabilities in ultralow-frequency ranges. The impact of multiple-pendulum structural parameters on the zero-frequency bandgap is investigated, and a simulation model is established to validate the attenuation characteristics within the zero-frequency bandgap. Furthermore, within the passband region, the dispersion relation exhibits a multi-wavevector characteristic, manifesting frequency ranges where multiple dispersion branches with distinct slopes coexist. This feature induces wave splitting phenomena in the multiple-pendulum metamaterial system. Numerical simulations validate wave-splitting phenomenon, where energy flux tracking through group velocity vector fields confirms the spatial separation of wave components. The discovery of the zero-frequency bandgap enables ultralow-frequency vibration isolation, whereas wave splitting within the multi-wavevector regime establishes a theoretical framework for designing multichannel wave control mechanisms.
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