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Effects of Graphene Nanoplatelets Dispersion on the Enhancement of Tensile Strength, Thermal and Electrical Conductivity of Polymer Nano-Composites

机译:石墨烯纳米片分散对聚合物纳米复合材料拉伸强度、热和导电性的影响

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The characterization of mechanical, thermal and electrical conductivity of samples containing homogenous mixtures of Epoxy matrix diglycidyl ether of bisphenol A (DGEBA) and varying amount of graphene using solution compounding method coupled with high shear mixing were carried out in this study. The measurement of tensile strength, thermal and electrical conductivity of the produced samples at 24°C (ambient) temperature was carried out using the universal tensile, A lasercomp Fox 50 and Keithlev 8009 electrometer testing machine in accordance to ASTM E8/E8M-13M, C518/ISO 83011 and ASTM D257-14 respectively. The magnitude of the tensile strength, thermal and electrical conductivity increased evidently with an increase in percentage weight fraction of the GNPs. The fractured surfaces of the tensile strength test samples were further examined by scanning electron microscopy. There is an increase in the tensile strength, thermal and electrical conductivity of epoxy-graphene nano-composites post cured with microwave compared to samples post cured with conventional autoclave oven as well as cast neat epoxy. The use of solution compounding coupled with high shear mixing as dispersion technique influences the homogeneity and mechanical properties of the nano-composites positively. It is concluded that epoxy-graphene nanoplatelets nanocomposites possess better qualities in terms of tensile strength, thermal and electrical conductivity for light weight and high strength industrial applications. This work find application in the automobile, electronics and aerospace industries in their quest for sustainable material development.
机译:本研究采用溶液复合法结合高剪切混合,对含有双酚A环氧基二缩水甘油醚(DGEBA)和不同量石墨烯均匀混合物的样品进行了机械、热和导电性表征。分别按照ASTM E8/E8M-13M、C518/ISO 83011和ASTM D257-14的要求,使用通用拉伸仪、lasercomp Fox 50和Keithlev 8009静电计试验机,在24°C(环境)温度下测量生产样品的拉伸强度、热和导电性。随着GNPs质量分数的增加,材料的拉伸强度、热导率和导电率显著增加。通过扫描电子显微镜进一步检查拉伸强度试验样品的断裂表面。微波固化后的环氧-石墨烯纳米复合材料的拉伸强度、热导率和导电率均比常规高压釜和铸造纯环氧树脂固化后的样品有所提高。溶液复合与高剪切混合相结合的分散技术对纳米复合材料的均匀性和力学性能有积极的影响。结果表明,环氧石墨烯纳米片纳米复合材料在拉伸强度、导热性和导电性方面具有更好的性能,适用于轻量和高强度的工业应用。这项工作在汽车、电子和航空航天行业寻求可持续材料开发方面得到了应用。

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