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Simulations of Filled Polymers on Multiple Length Scales

机译:多种长度尺度下填充聚合物的模拟

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摘要

We present simulation results of the effect of nanoscopic and micron-sized fillers on the structure, dynamics and mechanical properties of polymer melts and blends. At the smallest length scales, we use molecular dynamics simulations to study the effect of a single nano-filler on the structure and dynamics of the surrounding melt. We find a tendency for polymer chains to be elongated and flattened near the filler surface. Additionally, the simulations show that the dynamics of the polymers can be dramatically altered by the choice of polymer-filler interactions. We use time-dependent Ginzburg-Landau simulations to model the mesoscale phase-separation of an ultra-thin blend film in the presence of an immobilized filler particle. These simulations show the influence of filler particles on the mesoscale blend structure when one component of the blend preferentially wets the filler. Finally, we present some preliminary finite element calculations used to predict the effect of mesoscale structure on macroscopic ultra-thin film mechanical properties.
机译:我们提供了纳米和微米级填料对聚合物熔体和共混物的结构,动力学和机械性能的影响的模拟结果。在最小的长度尺度上,我们使用分子动力学模拟来研究单个纳米填料对周围熔体的结构和动力学的影响。我们发现聚合物链趋向于在填料表面附近拉长并变平。另外,模拟表明,通过选择聚合物-填料相互作用,可以极大地改变聚合物的动力学。我们使用时变的Ginzburg-Landau模拟来模拟固定化填料颗粒存在下超薄共混膜的中尺度相分离。这些模拟显示了当共混物中的一种组分优先润湿填料时,填料颗粒对中尺度共混物结构的影响。最后,我们提出了一些初步的有限元计算方法,用于预测中尺度结构对宏观超薄膜力学性能的影响。

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