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Tuning the Performance of Metallic Auxetic Metamaterials by Using Buckling and Plasticity

机译:利用屈曲和塑性调整金属辅助超材料的性能

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摘要

Metallic auxetic metamaterials are of great potential to be used in many applications because of their superior mechanical performance to elastomer-based auxetic materials. Due to the limited knowledge on this new type of materials under large plastic deformation, the implementation of such materials in practical applications remains elusive. In contrast to the elastomer-based metamaterials, metallic ones possess new features as a result of the nonlinear deformation of their metallic microstructures under large deformation. The loss of auxetic behavior in metallic metamaterials led us to carry out a numerical and experimental study to investigate the mechanism of the observed phenomenon. A general approach was proposed to tune the performance of auxetic metallic metamaterials undergoing large plastic deformation using buckling behavior and the plasticity of base material. Both experiments and finite element simulations were used to verify the effectiveness of the developed approach. By employing this approach, a 2D auxetic metamaterial was derived from a regular square lattice. Then, by altering the initial geometry of microstructure with the desired buckling pattern, the metallic metamaterials exhibit auxetic behavior with tuneable mechanical properties. A systematic parametric study using the validated finite element models was conducted to reveal the novel features of metallic auxetic metamaterials undergoing large plastic deformation. The results of this study provide a useful guideline for the design of 2D metallic auxetic metamaterials for various applications.
机译:金属塑性超常材料具有比基于弹性体的塑性材料优越的机械性能,因此在许多应用中具有巨大的潜力。由于对这种新型材料在大的塑性变形下的了解有限,因此在实际应用中仍难以实现这种材料。与基于弹性体的超材料相反,金属材料由于在大变形下其金属微观结构的非线性变形而具有新的特征。金属超材料中拉力行为的丧失使我们进行了数值和实验研究,以研究观察到的现象的机理。提出了一种通用方法来利用屈曲行为和基础材料的可塑性来调整承受大塑性变形的金属膨胀超常材料的性能。实验和有限元模拟都用于验证所开发方法的有效性。通过采用这种方法,从规则的方格中派生了二维的超常材料。然后,通过以所需的屈曲图案改变微观结构的初始几何形状,金属超材料表现出具有可调节机械性能的拉力行为。使用已验证的有限元模型进行了系统的参数研究,以揭示经历大塑性变形的金属膨胀超材料的新颖特征。这项研究的结果为各种应用的2D金属塑性超材料的设计提供了有用的指导。

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