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PNAS Plus: Auxetic metamaterials from disordered networks

机译:PNAS Plus:来自无序网络的辅助超材料

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摘要

Recent theoretical work suggests that systematic pruning of disordered networks consisting of nodes connected by springs can lead to materials that exhibit a host of unusual mechanical properties. In particular, global properties such as Poisson’s ratio or local responses related to deformation can be precisely altered. Tunable mechanical responses would be useful in areas ranging from impact mitigation to robotics and, more generally, for creation of metamaterials with engineered properties. However, experimental attempts to create auxetic materials based on pruning-based theoretical ideas have not been successful. Here we introduce a more realistic model of the networks, which incorporates angle-bending forces and the appropriate experimental boundary conditions. A sequential pruning strategy of select bonds in this model is then devised and implemented that enables engineering of specific mechanical behaviors upon deformation, both in the linear and in the nonlinear regimes. In particular, it is shown that Poisson’s ratio can be tuned to arbitrary values. The model and concepts discussed here are validated by preparing physical realizations of the networks designed in this manner, which are produced by laser cutting 2D sheets and are found to behave as predicted. Furthermore, by relying on optimization algorithms, we exploit the networks’ susceptibility to tuning to design networks that possess a distribution of stiffer and more compliant bonds and whose auxetic behavior is even greater than that of homogeneous networks. Taken together, the findings reported here serve to establish that pruned networks represent a promising platform for the creation of unique mechanical metamaterials.
机译:最近的理论工作表明,对由弹簧连接的节点组成的无序网络进行系统性修剪会导致显示出许多异常机械性能的材料。特别是,可以精确地更改诸如泊松比或与变形有关的局部响应之类的整体属性。可调的机械响应在减轻影响到机器人技术等领域,以及更广泛地用于创建具有工程特性的超材料方面,将非常有用。但是,基于修剪的理论思想来制造膨胀材料的实验尝试尚未成功。在这里,我们介绍了一个更现实的网络模型,其中包含了弯角力和适当的实验边界条件。然后设计并实现了该模型中选择键的顺序修剪策略,该策略可以在变形时在线性和非线性状态下设计特定的机械行为。尤其表明,泊松比可以调整为任意值。通过准备以这种方式设计的网络的物理实现,可以验证此处讨论的模型和概念,这些物理实现是通过激光切割2D图纸生成的,并且表现出预期的性能。此外,依靠优化算法,我们利用网络的敏感性进行调谐,以设计具有更硬,更合规的键分布并且其膨胀行为甚至大于同类网络的设计网络。综上所述,这里报道的发现有助于确定修剪的网络代表了创建独特的机械超材料的有前途的平台。

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