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Classical estimates of the effective thermoelastic properties of copper-graphene composites

机译:铜-石墨烯复合材料有效热弹性的经典估计

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Significant research effort is concentrated worldwide on development of graphene-based metal-matrix composites with enhanced thermomechanical properties. In this work, we apply two classical micromechanical mean-field theories to estimate the effective thermoelastic properties that can be achieved in practice for a copper graphene composite. In the modelling, graphene is treated as an anisotropic material, and the effect of its out-of-plane properties, which are less recognized than the in-plane properties, is studied in detail. To address the severe difficulties in processing of graphene-based metal-matrix composites, the copper graphene composite is here assumed to additionally contain, due to imperfect processing, particles of graphite and voids. It is shown quantitatively that the related imperfections may significantly reduce the expected enhancement of the effective properties. The present predictions are also compared to the experimental data available in the literature. (C) 2015 Elsevier Ltd. All rights reserved.
机译:全球范围内大量研究工作集中在开发具有增强的热机械性能的石墨烯基金属基复合材料上。在这项工作中,我们应用了两种经典的微机械平均场理论来估计铜石墨烯复合材料在实践中可以实现的有效热弹性。在建模中,将石墨烯视为各向异性材料,并详细研究了其面外特性(不如面内特性)的影响。为了解决加工石墨烯基金属基复合材料的严峻困难,由于加工工艺的不完善,此处假定铜石墨烯复合材料还包含石墨颗粒和空隙。定量显示相关缺陷可以显着降低有效特性的预期增强。本预测还与文献中提供的实验数据进行了比较。 (C)2015 Elsevier Ltd.保留所有权利。

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