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Influence of Graphene Platelet Aspect Ratio on the Mechanical Properties of HDPE Nanocomposites: Microscopic Observation and Micromechanical Modeling

机译:石墨烯血小板纵横比对HDPE纳米复合材料力学性能的影响:微观观察和微机械建模

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摘要

A series of high-density polyethylene nanocomposites filled with different diameter sizes (5, 15, and 25 μm) of graphene nanoplatelets at various amounts (0.5–5 wt.%) are prepared by the melt-mixing method. The effect of diameter size and filler content on the mechanical properties is reported, and the results are discussed in terms of morphology and the state of dispersion within the polymer matrix. The measured stiffness and strength of the nanocomposites were found to be mainly influenced by the filler aspect ratio and the filler-matrix adhesion. Fractography was utilized to study the embrittleness of the nanocomposites, and the observations revealed that a ductile to brittle transition is caused by a micro-deformation mechanism change in the nanocomposites. Several micromechanical models for the prediction of mechanical properties of nanocomposites, taking into consideration filler aspect ratio, percolation effect, and interphase regions, are considered. The three-phase model proposed by Ji accurately predicts the stiffness of graphene nanoplatelets with a higher diameter size, while Takayanagi modified model II was found to show good agreement with the experimental results of smaller ones at low filler content. This study demonstrates that the diameter size of the filler plays a central role in determining the mechanical properties.
机译:通过熔融混合方法制备一系列填充有不同直径尺寸(5,15和25μm)石墨烯纳米纳薄物的石墨烯纳米型纳米复合材料的一系列高密度聚乙烯纳米复合材料。报道了直径尺寸和填料含量对机械性能的影响,并在形态学和聚合物基质内的分散状态方面讨论了结果。发现纳米复合材料的测量刚度和强度主要受填料纵横比和填料 - 基质粘附的影响。 Fractography用于研究纳米复合材料的脆性,并且观察结果表明,脆性转变的延展性是由纳米复合材料中的微变形机制变化引起的。考虑了几种用于预测纳米复合材料的机械性能的微机械模型,考虑到填料纵横比,渗透效果和间区间。 JI提出的三相模型精确地预测了具有较高直径尺寸的石墨烯纳米孔的刚度,而Takayanagi改性模型II被发现与低填料含量下较小的实验结果表现出良好的一致性。该研究表明,填料的直径尺寸在确定机械性能方面起着核心作用。

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