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Structure-property relationships in polymer composites with micrometer and submicrometer graphite platelets

机译:微米和亚微米石墨薄片的聚合物复合材料的结构-性质关系

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The objectives of this work were (a) to investigate the influence of micrometer and submicrometer scale graphite platelets of different aspect ratios and volume fractions on the effective and local quasi-static and dynamic properties of composites with micrometer and submicrometer scale reinforcement, and (b) to compare and evaluate mechanical property measurements of inhomogeneous materials via local (microscale) and bulk (macroscale) experimental methods. Small platelet volume fractions (0.5%) provided proportionally larger increase of the elastic and storage moduli compared to large volume fractions (3.0%). Randomly distributed 15 μm platelets provided marginally higher composite stiffness compared to 1 μm platelets while small volume fractions (0.5%) of 15 μm platelets had a pronounced effect on the effective Poisson's ratio. It was found that local property measurements of inhomogeneous materials conducted by nanoindentation are not representative of the bulk behavior even when the characteristic length of the inhomogeneity is an order of magnitude smaller than the indentation contact area. In this case, statistical averaging of data from a large number of indentations does not result in agreement with bulk measurements. On the other hand, for small aspect ratio platelets with dimensions two orders of magnitude smaller than the nanoindentation contact area, the nanoindenter-obtained properties agreed well with the effective material behavior. It was found that platelets residing at the specimen surface contribute the most to nanoindentation data, which implies that this technique is only valid for well-distributed nanoparticulate and microparticulate systems, and that nanoindentation cannot be used for depth profiling of microstructured composites.
机译:这项工作的目的是(a)研究不同纵横比和体积分数的微米级和亚微米级石墨薄片对微米级和亚微米级鳞片增强复合材料的有效和局部准静态和动态性能的影响,以及(b ),以通过局部(微尺度)和体积(宏观)实验方法比较和评估非均质材料的力学性能。与大体积分数(3.0%)相比,小血小板体积分数(0.5%)按比例提供了更大的弹性模量和储能模量。与1μm血小板相比,随机分布的15μm血小板提供的复合刚度略高,而15μm血小板的小体积分数(0.5%)对有效泊松比有显着影响。已经发现,即使当不均匀性的特征长度比压痕接触面积小一个数量级时,通过纳米压痕进行的不均匀材料的局部性质测量也不代表整体行为。在这种情况下,大量压痕数据的统计平均值与批量测量结果不一致。另一方面,对于尺寸小于纳米压痕接触面积两个数量级的小长宽比的血小板,纳米压痕获得的性能与有效的材料性能非常吻合。发现存在于样品表面的血小板对纳米压痕数据的贡献最大,这表明该技术仅对分布均匀的纳米颗粒和微粒系统有效,并且纳米压痕不能用于微结构复合材料的深度剖析。

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