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Development of Hybridized Graphene Nanoplatelets/Fiber-Reinforced Composites with Enhanced Interlaminar Fracture Toughness

机译:具有增强的层间骨折韧性的杂交石墨烯纳米片/纤维增强复合材料的研制

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摘要

In this research, the effect of inclusion of as-received graphene nanoplatelets, and chemically modified graphene nanoplatelets (i.e., graphite oxide (GO) and silane-functionalized (Si-G)), on the fracture toughness of epoxy resin and mode-Ⅰ interlaminar fracture toughness of glass fiber-reinforced epoxy laminates are experimentally investigated. Raman spectroscopy and thermo-gravimetric analysis (TGA) are employed to characterize the chemical and structural changes the modified nanoplatelets. The nanocomposites containing Si-G provide the best results for the fracture toughness (82% improvement). The critical energy release rate of all laminates also increased; however, the ones bonded with Si-G reinforced epoxy gained the most. The SEM micrographs revealed that a superior dispersion status could be obtained by GNP functionalization, in turn generating more optimum fiber/matrix interaction.
机译:在该研究中,包含接收的石墨烯纳米粒子和化学改性的石墨烯纳米片(即石墨氧化物(GO)和硅烷官能化(Si-G))的效果对环氧树脂和模式-Ⅰ的断裂韧性实验研究了玻璃纤维增​​强环氧树脂层压板的Interlaminar裂缝韧性。使用拉曼光谱和热重分析(TGA)来表征化学和结构改变改性纳米型纳米孔。含有Si-G的纳米复合材料为断裂韧性(82%改善)提供了最佳效果。所有层压板的临界能量释放率也增加;然而,与Si-g加强环氧树脂最多的那些粘合。 SEM显微照片显示,通过GNP官能化可以获得卓越的分散状态,反过来产生更为最佳的光纤/矩阵相互作用。

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