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Multiscale modeling and design of lattice truss core sandwich metastructures for broadband low-frequency vibration reduction

机译:面向宽带低频减振的格构桁架核心夹层超结构的多尺度建模与设计

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摘要

Lattice truss core sandwich structures are advanced lightweight structures that have broad application prospects in many fields, but the attenuation of low-frequency vibrations in these structures is still challenging. To achieve broadband low-frequency vibration reduction in lattice truss core sandwich structures, we propose a design of multiscale lattice truss core sandwich metastructures which exhibit a coupling effect of local resonance and Bragg scattering mechanisms. For ease of analysis and design of such multiscale metastructures, we develop an efficient semi-analytical multiscale modeling method based on a combination of the dynamic homogenization method and the spectral element method. The multiscale modeling method is verified by comparing it with the conventional finite element method, and it is further employed to design multiscale metastructures. Numerical and experimental results demonstrate that the low-frequency bandgap and vibration reduction band can be greatly broadened via an appropriate multiscale design. Specifically, a typical multiscale finite metastructure, fabricated by embedding only three identical local resonators, achieves a significant vibration reduction within the super-wide low-frequency range of 295-905.4 Hz. The normalized vibration reduction bandwidth is as large as 1.02, which is much broader than that of a conventional equi-scale metastructure designed with the same added resonator mass ratio.
机译:格构桁架核心夹层结构是先进的轻量化结构,在许多领域具有广阔的应用前景,但这些结构中低频振动的衰减仍具有挑战性。为了实现格构桁架核心夹层结构的宽带低频减振,提出了一种多尺度格构桁架核心夹层超结构的设计,该结构表现出局部共振和布拉格散射机制的耦合效应。为了便于对这种多尺度宏结构的分析和设计,我们开发了一种基于动态均质化方法和光谱元方法相结合的高效半解析多尺度建模方法。通过与传统有限元方法的对比,验证了多尺度建模方法的有效性,并进一步将其用于设计多尺度元结构。数值和实验结果表明,通过适当的多尺度设计,可以大大拓宽低频带隙和减振带。具体而言,仅嵌入三个相同的局部谐振器即可制备典型的多尺度有限元结构,可在 295-905.4 Hz 的超宽低频范围内实现显着减振。归一化减振带宽高达1.02,比采用相同附加谐振器质量比设计的传统等尺度超结构宽得多。

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