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Effect of Graphene Structure on Mechanical Properties of Graphene/Epoxy Nanocomposites

机译:石墨烯结构对石墨烯/环氧纳米复合材料力学性能的影响

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Graphene nanosheets (GNSs) were mass-produced from flake natural graphite by oxidation, rapid expansion and ultrasonic treatment. The effects of ultrasonic times on the morphology and structure of GNSs and mechanical properties of GNS/epoxy nanocomposites were systematically investigated. GNS/epoxy nanocomposites were fabricated by ultrasonication and cast molding method. The mechanical properties of GNS/epoxy nanocomposites were influenced by the specific surface area, layer stacking and oxygen-containing functional group contents of GNSs. GNSs had excellent exfoliation degree when the sonication time was 15 h and there were some slightly changes on surface functional group comparing with 0 h sonication graphene and 5 h sonication graphene. When the sonication time was 15 h, the tensile strength and flexural strength of GNS/epoxy nanocomposites reached the highest value of 60.9 MPa and 91.33 MPa, which were increased by 25.3% and 30.94%, respectively, compared with pristine epoxy. The stress-strain curves of tensile testing demonstrated that extending the sonication time of GNSs can increased the fracture toughness of GNS/epoxy nanocomposites.
机译:石墨烯纳米片(GNSS)是大量生产的由氧化,快速膨胀和超声波处理片状天然石墨。对形态和GNSS和GNS的机械性能的结构超声波倍效果/环氧纳米复合材料进行了系统的研究。 GNS /环氧纳米复合材料通过超声和​​铸塑方法制造。 GNS /环氧纳米复合材料的机械性能是由比表面积,层堆叠和GNSS的含氧官能团含量的影响。 GNSS有当超声处理时间为15小时,并有一些与0 H超声处理石墨烯和5小时超声处理的石墨烯进行比较表面官能团稍有变化优异的剥离程度。当超声处理时间为15小时,拉伸强度和GNS的挠曲强度/环氧纳米复合材料达到60.9兆帕,91.33兆帕的最高值,其分别增加了25.3%和30.94%,与原始环氧树脂进行比较。拉伸的应力 - 应变曲线的测试表明,延伸GNSS的超声处理时间可以增加GNS /环氧纳米复合材料的断裂韧性。

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