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EXPERIMENTAL INVESTIGATION OF THE MACHINABILITY OF EPOXY REINFORCED WITH GRAPHENE PLATELETS

机译:石墨烯血小板加固环氧树脂可加工的实验研究

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The objective of this research is to study the effect of graphene platelet (GPL) loading on the machinability of epoxy-based GPL composites. To this end, micro-milling experiments are conducted on composites with varying GPL content and their results are contrasted against that of plain epoxy. The material microstructure is characterized using transmission electron microscopy and scanning electron microscopy methods. Chip morphology, cutting force, machined surface morphology, and tool wear, are employed as the machinability measures for comparative purposes. At lower loadings of GPL (0.1% and 0.2% by weight) the deformation of the polymer phase plays a major role, whereas at a higher loading of 0.3% by weight, the GPL agglomerates and interface-dominated failure dictates the machining response. The minimum chip thickness value of the composites decreases with an increase in GPL loading. Overall, the 0.2% GPL composite has the highest cutting force and the lowest tool wear.
机译:本研究的目的是研究石墨烯血小板(GPL)负载对基于环氧基的GPL复合材料的加工性的影响。为此,在具有不同GPL含量的复合材料上进行微铣削实验,结果与普通环氧树脂的结果形成鲜明对比。材料微观结构用透射电子显微镜和扫描电子显微镜方法的特征在于。芯片形态,切削力,机加工表面形态和工具磨损作为比较目的的可加工措施。在GPL的下部载荷(0.1%和0.2重量%)下,聚合物相的变形起主要作用,而在0.3重量%的载荷下,GPL附聚物和界面主导的故障决定了加工响应。复合材料的最小芯片厚度值随GPL负载的增加而降低。总的来说,0.2%GPL复合材料具有最高的切割力和最低的工具磨损。

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