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Mechanical Performance of Graphene-Based Artificial Nacres under Impact Loads: A Coarse-Grained Molecular Dynamic Study

机译:冲击载荷下基于石墨烯的人造珍珠母的力学性能:粗粒化分子动力学研究

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摘要

Inspired by the hierarchical structure and outstanding mechanical performance of biological nacre, we propose a similar multi-layered graphene–polyethylene nanocomposite as a possible lightweight material with energy-absorbing characteristics. Through coarse-grained molecular dynamics simulations, we study the mechanical performance of the nanocomposite under spall loading. Results indicate that the polymer phase can serve as a cushion upon impact, which substantially decreases maximum contact forces and thus inhibits the breakage of covalent bonds in the graphene flakes. In addition, as the overlap distance in graphene layers increases, the energy absorption capacity of the model increases. Furthermore, the polymer phase can serve as a shield upon impact to protect the graphene phase from aggregation. The dependence of mechanical response on the size of impactors is also explored. Results indicate that the maximum contact force during the impact depends on the external surface area of impactors rather than the density of impactors and that the energy absorption for all model impactors is very similar. Overall, our findings can provide a systematic understanding of the mechanical responses on graphene–polyethylene nanocomposites under spall loads.
机译:受生物珍珠质的分层结构和出色的机械性能的启发,我们提出了一种类似的多层石墨烯-聚乙烯纳米复合材料,以作为可能的具有能量吸收特性的轻质材料。通过粗粒度的分子动力学模拟,我们研究了在剥落载荷下纳米复合材料的机械性能。结果表明,聚合物相可以在冲击时充当缓冲垫,从而显着降低最大接触力,从而抑制石墨烯薄片中共价键的断裂。另外,随着石墨烯层中的重叠距离增加,模型的能量吸收能力增加。此外,聚合物相可以在冲击时充当屏蔽层,以保护石墨烯相免于聚集。还探讨了机械响应对撞击器尺寸的依赖性。结果表明,撞击过程中的最大接触力取决于撞击器的外表面积,而不是撞击器的密度,并且所有模型撞击器的能量吸收都非常相似。总体而言,我们的发现可以对散落载荷下石墨烯-聚乙烯纳米复合材料的机械响应提供系统的理解。

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