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Micromechanics prediction of the effective elastic moduli of graphene sheet-reinforced polymer nanocomposites

机译:石墨烯片增强聚合物纳米复合材料有效弹性模量的微力学预测

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摘要

We investigate the stiffening effect of graphene sheets dispersed in polymer nanocomposites using the Mori-Tanaka micromechanics method. The effective elastic moduli of graphene sheet-reinforced composites are first predicted by assuming that all the graphene sheets are either aligned or randomly oriented in the polymer matrix while maintaining their platelet-like shape. It is shown that a very low content of graphene sheets can considerably enhance the effective stiffness of the composite. The superiority of graphene sheets as a kind of reinforcement is further verified by a comparison with carbon nanotubes, another promising nanofiller in polymer composites. In addition, we analyze several critical physical mechanisms that may affect the reinforcing effects, including the agglomeration, stacking-up and rolling-up of graphene sheets. The results reveal the extent to which these factors will negatively influence the elastic moduli of graphene sheet-reinforced nanocomposites. This theoretical study may help to understand the relevant experimental results and facilitate the mechanical characterization and optimal synthesis of these kinds of novel and highly promising nanocomposites.
机译:我们使用Mori-Tanaka微力学方法研究了分散在聚合物纳米复合材料中的石墨烯片材的增强作用。首先通过假设所有石墨烯片在聚合物基质中排列或随机取向,同时保持其片状形状,来预测石墨烯片增强复合材料的有效弹性模量。结果表明,极低含量的石墨烯片可以显着提高复合材料的有效刚度。通过与碳纳米管进行比较,进一步证实了石墨烯片作为增强材料的优越性,碳纳米管是聚合物复合材料中另一种有希望的纳米填料。此外,我们分析了可能影响增强效果的几种关键物理机制,包括石墨烯片的团聚,堆积和卷起。结果表明,这些因素将在多大程度上负面影响石墨烯片增强纳米复合材料的弹性模量。这项理论研究可能有助于了解相关的实验结果,并有助于这些新型和极有前途的纳米复合材料的机械表征和最佳合成。

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