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首页> 外文期刊>Journal of nanoscience and nanotechnology >Effect of Graphene Oxide on Interfacial Interactions and Fracture Toughness of Basalt Fiber-Reinforced Epoxy Composites
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Effect of Graphene Oxide on Interfacial Interactions and Fracture Toughness of Basalt Fiber-Reinforced Epoxy Composites

机译:石墨烯氧化物对玄武岩纤维增强环氧复合材料界面相互作用及断裂韧性的影响

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摘要

Multiscale hierarchy is a promising chemical approach that provides superior performance in synergistically integrated microstructured fibers and nanostructured materials in composite applications. The main purpose of this work was to introduce graphene oxide (GO) between an epoxy matrix and basalt fibers to improve mechanical properties by enhancing interfacial adhesion. The composites were reinforced with various concentrations of GO. For all of the fabricated composites, the optimum GO content was found to be 0.5 wt%, which improved the interlaminar shear strength and fracture toughness by 66.2% and 86.1%, respectively, compared with those of neat composites. We observed a direct linear relationship between fracture toughness and certain surface free energy. In addition, the fracture toughness mechanisms were illustrated using a crack theory based on morphology analyses of fracture surfaces. Such an effort could accelerate the conversion of multiscale composites into high-performance materials and provide rational guidance and fundamental understanding toward realizing the theoretical limits of mechanical properties.
机译:多尺度层次结构是一种有希望的化学方法,可在复合应用中的协同集成的微观结构纤维和纳米结构材料中提供卓越的性能。这项工作的主要目的是在环氧基质和玄武岩纤维之间引入石墨烯(GO),以通过提高界面粘附来改善机械性能。用各种浓度的去加固复合材料。对于所有制造的复合材料,发现最佳GO含量为0.5wt%,与整齐复合材料相比,分别将层间剪切强度和裂缝韧性分别提高66.2%和86.1%。我们观察到断裂韧性和某些表面自由能之间的直接线性关系。此外,使用基于裂缝表面的形态分析的裂缝理论说明了断裂韧性机制。这种努力可以加速多尺度复合材料转化为高性能材料,并为实现机械性能的理论限制提供合理的指导和基本理解。

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