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On predicting the effective elastic properties of polymer nanocomposites by novel numerical implementation of asymptotic homogenization method

机译:用渐近均质化方法的新型数值实现预测聚合物纳米复合材料的有效弹性

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The main issue of this paper is an attempt to predict the elastic properties of PVC/ABSano-CaCO3 polymer nanocomposites by coupling data of microstructure analysis and mechanical tests with a micro-mechanics analysis. The novel numerical implementation of asymptotic homogenization (NIAH) method is compared with the representative volume element (RVE) method under Dirichlet and Neumann boundary conditions. Numerical simulation results show that the NIAH method is more reasonable and accurate for simulating the micro-mechanical properties of periodic composite materials. In order to account for two kinds of particles spatial distribution in nanocomposites, statistical asymptotic homogenization (AH) method is performed by assigning randomness to the spatial distribution for the two kinds of particles in the unit cell. With increase of the number of the unit cell particles, the results of NIAH method converge to a stable value. We also show that in the case of fixed-size of the unit cell, the average mechanical properties of the obtained results converge to the stable value with the increase of the number of random configurations realization. In this paper, we use the unit cell containing the minimum number of particles for different weight ratio of two kinds of particles to obtain the effective mechanical properties by averaging simulation results of many samples of different configurations in the unit cell. Based on the results obtained, it can be concluded that spatial distribution for the two kinds of particles in the unit cell has a significant impact on the material macroscopic elastic properties. Furthermore, the method is more efficient to predict the mean values of the elastic properties than the experimental dispersions. Crown Copyright (C) 2015 Published by Elsevier Ltd. All rights reserved.
机译:本文的主要问题是尝试通过将微观结构分析和力学测试的数据与微观力学分析相结合来预测PVC / ABS /纳米CaCO3聚合物纳米复合材料的弹性性能。在Dirichlet和Neumann边界条件下,将渐近均匀化(NIAH)方法的新颖数值实现与代表性体积元素(RVE)方法进行了比较。数值模拟结果表明,NIAH方法在模拟周期复合材料的微观力学性能方面更为合理,准确。为了解决纳米复合材料中两种粒子的空间分布,通过为单元格中两种粒子的空间分布分配随机性来执行统计渐近均匀化(AH)方法。随着晶胞颗粒数目的增加,NIAH方法的结果收敛到稳定值。我们还表明,在固定尺寸的晶胞的情况下,随着实现的随机构图数量的增加,获得的结果的平均力学性能收敛到稳定值。在本文中,我们通过对两种不同重量比的两种粒子的最小重量比的最小数量的单位单元进行使用,以获得平均力学性能,方法是对单位单元中不同配置的许多样本的模拟结果取平均。根据获得的结果,可以得出结论,晶胞中两种颗粒的空间分布对材料的宏观弹性有重要影响。此外,该方法比实验分散体更有效地预测弹性性能的平均值。 Crown版权所有(C)2015,由Elsevier Ltd.发行。保留所有权利。

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