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Single-phase continuum soft elastic metamaterial design based on variable boundary conditions through topology optimization

机译:拓扑优化下基于变边界条件的单相连续体软弹性超材料设计

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摘要

Wide bandgaps are challenging to achieve in the low-frequency regime. Herein, we develop a mode conversion-based method that considers variable boundary conditions. Based on this method, a soft single-phase continuum elastic metamaterial is designed. Unlike the previous method, which needs to balance design trade-offs such as bending and shearing stiffness, mass, and moment of inertia, this method provides a pure bending stiffness-based design with frequency-dependent boundary conditions. Furthermore, for weight reduction, we perform topology optimization for the unit cell components (i.e., the plate and mass block). The boundary conditions of the plate can be regarded as either being clamped on one end at a low frequency or clamped on both ends at a high frequency. The fundamental eigenfrequency and bandgap are thus maximized. Finally, we experimentally validate the proposed design and successfully achieve a lightweight metamaterial with wide bandgaps at low frequencies.
机译:在低频范围内实现宽带隙具有挑战性。在此,我们开发了一种考虑可变边界条件的基于模态转换的方法。基于该方法,设计了一种柔软的单相连续弹性超材料。与之前需要平衡设计权衡(如弯曲和剪切刚度、质量和转动惯量)的方法不同,这种方法提供了基于弯曲刚度的纯设计,并具有与频率相关的边界条件。此外,为了减轻重量,我们对晶胞组件(即板和质量块)进行了拓扑优化。板的边界条件可以看作是要么在低频下夹在一端,要么在高频下夹在两端。因此,基波特征频率和带隙最大化。最后,通过实验验证了所提出的设计,并成功地实现了低频下具有宽禁带的轻质超材料。

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