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首页> 外文期刊>ACS applied materials & interfaces >Multiscale Shear-Lag Analysis of Stiffness Enhancement in Polymer-Graphene Nanocomposites
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Multiscale Shear-Lag Analysis of Stiffness Enhancement in Polymer-Graphene Nanocomposites

机译:聚合物 - 石墨烯纳米复合材料中刚度增强的多尺度剪切分析

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摘要

Graphene and other two-dimensional (2D) materials are of emerging interest as functional fillers in polymer matrix composites. In this study, we present a multiscale atomistic-tocontinuum approach for modeling interfacial stress transfer in graphene high-density polyethylene (HDPE) nanocomposites. Via detailed characterization of atomic-level stress profiles in submicron graphene fillers, we develop a modified shear-lag model for short fillers. A key feature of our approach lies in the correct accounting of stress concentration at the ends of fillers that exhibits a power-law dependence on filler ("flaw") size, determined explicitly from atomistic simulations, without any ad hoc modeling assumptions. In addition to two parameters that quantify the end stress concentration, only one additional shear-lag parameter is required to quantify the atomic-level stress profiles in graphene fillers. This three-parameter model is found to be reliable for fillers with dimensions as small as similar to 10 nm. Our model predicts accurately the-elastic response of aligned graphene HDPE composites and provides appropriate upper bounds for the elastic moduli of nanocomposites with more realistic randomly distributed and oriented fillers. This study provides a systematic approach for developing hierarchical multiscale models of 2D material-based nanocomposites and is of particular relevance for short fillers, which are, currently, typical of solution-processed 2D materials.
机译:石墨烯和其他二维(2D)材料是聚合物基质复合材料中的功能填料的新兴兴趣。在这项研究中,我们介绍了一种用于在石墨烯高密度聚乙烯(HDPE)纳米复合材料中建模界面应力传递的多尺度原子 - 致植物方法。通过详细表征亚微米石墨烯填料中的原子级应力分布,我们为短填充物开发改进的剪切滞后模型。我们方法的一个关键特征在于填料末端的应力浓度的正确核算,其表现出对填料(“漏洞”)尺寸的幂律依赖性,从原子学模​​拟明确确定,没有任何临时模拟假设。除了量化最终应力浓度的两个参数之外,只需要一个额外的剪切滞后参数来量化石墨烯填料中的原子级应力曲线。发现该三参数模型对于具有小的填充物,与10nm相似的填料是可靠的。我们的模型预测了对齐的石墨烯HDPE复合材料的弹性响应,并为纳米复合材料的弹性模量提供适当的上界,其具有更真实的随机分布和取向填料。本研究提供了一种用于开发基于2D材料的纳米复合材料的分层多尺度模型的系统方法,并且对于短填充物特别相关,目前是典型的溶液加工的2D材料。

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