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Molecular modeling of crosslinked graphene-epoxy nanocomposites for characterization of elastic constants and interfacial properties

机译:交联石墨烯-环氧纳米复合材料的分子模型,用于表征弹性常数和界面性质

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摘要

The mechanical properties of crosslinked graphene/epoxy nanocomposites have been investigated using molecular mechanics (MM) and molecular dynamics simulations (MD). The influence of graphene nano-platelet concentrations, aspect ratios and dispersion on elastic constants and stress-strain responses are studied. The cohesive and pullout forces at the interface of G-Ep nanocomposites are also investigated. The simulated MD models were further analyzed through radial distribution function, molecular energy and atom density. The results show significant improvement in Young's modulus and shear modulus for the G-Ep system in comparison to neat epoxy resin. The graphene concentrations in the range of 1-3% and graphene with low aspect ratio are seen to improve Young's modulus. The dispersed graphene system is seen to enhance in-plane elastic modulus than the agglomerated graphene system. The cohesive and pullout forces versus displacements data were plotted under normal and shear modes in order to characterize interfacial properties. The cohesive force is significantly improved by attaching chemical bonding at the graphene-epoxy interface. It appears that elastic constants determined by molecular modeling and nanoindentation test methods are comparatively higher than the micromechanics based predicted value and coupon test data. This is possibly due to scaling effect.
机译:已使用分子力学(MM)和分子动力学模拟(MD)研究了交联石墨烯/环氧纳米复合材料的机械性能。研究了石墨烯纳米血小板浓度,长宽比和分散度对弹性常数和应力应变响应的影响。还研究了G-Ep纳米复合材料界面的内聚力和拔出力。通过径向分布函数,分子能和原子密度进一步对模拟的MD模型进行了分析。结果表明,与纯环氧树脂相比,G-Ep体系的杨氏模量和剪切模量有了显着改善。石墨烯的浓度在1-3%的范围内,石墨烯的长径比低,可以提高杨氏模量。可以看出,分散的石墨烯体系比团聚的石墨烯体系具有更高的面内弹性模量。在正常和剪切模式下绘制内聚力和拔出力与位移的数据,以表征界面特性。通过在石墨烯-环氧树脂界面处连接化学键,可以大大提高内聚力。似乎通过分子建模和纳米压痕测试方法确定的弹性常数相对高于基于微力学的预测值和试样测试数据。这可能是由于缩放效果所致。

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