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Friction and mechanical properties of amino-treated graphene-filled epoxy composites: modification conditions and filler content

机译:氨基处理的石墨烯填充环氧复合材料的摩擦和力学性能:改性条件和填料含量

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摘要

It remains a challenge for graphene to reach its full potential as a lubricant and wear-resistant material in thermosetting resin composites. In this study, the mechanical properties and friction properties of amino-treated graphene-filled epoxy composites, which were influenced by the conditions for the modification of graphene and filler content, were investigated. The mechanical properties were measured by tensile examination and the tribological properties were determined using a ball-on-disk tribometer. The results showed that the composite filled with amino-treated graphene for a short reaction time exhibited the best tribological behavior, where the friction coefficient was 57.9% lower than that of the pure resin and the wear rate was 92.2% less than that of the neat resin. Simultaneously, this amino-treated graphene also resulted in enhanced mechanical properties and T _(g) in the nanocomposite, implying its good crosslinking network and strong interface strength. The wear track analysis demonstrated that the excellent wear resistance was induced by its improved toughness, which restrained the crack propagation of fatigue wear and decreased the size of debris, promoting the formation of a transfer film, and thus protecting the contact surface. The tribological properties also varied with the concentration of the nanofiller, which showed the best performance at 0.2 wt%. Through the optimization of the modification conditions and concentration, this work highlights a promising strategy for the application of graphene-related materials in the field of tribology.
机译:对于石墨烯仍然是一种挑战,以达到热固性树脂复合材料中的润滑剂和耐磨材料的全部潜力。在该研究中,研究了由氨基处理的石墨烯 - 填充的环氧树脂复合材料的机械性能和摩擦性能受到石墨烯和填料含量的改性条件的影响。通过拉伸检查测量机械性能,使用球形摩擦计测量摩擦学性质。结果表明,填充有氨基处理的石墨烯的复合物,短反应时间表现出最佳的摩擦学行为,其中摩擦系数低于纯树脂的摩擦系数57.9%,磨损率比整洁的磨损率小92.2%树脂。同时,该氨基处理的石墨烯也导致纳米复合材料中的机械性能和T _(g),暗示其良好的交联网络和强大的界面强度。耐磨轨道分析表明,通过其改进的韧性诱导优异的耐磨性,这抑制了疲劳磨损的裂纹繁殖并降低了碎片的尺寸,促进了转移膜的形成,从而保护接触表面。摩擦学特性也随纳米填充物的浓度而变化,其显示在0.2wt%的最佳性能下。通过优化改性条件和浓度,这项工作突出了在摩擦学领域应用石墨烯相关材料的有希望的策略。

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