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首页> 外文期刊>Composites >Multiscale modeling of the elastic moduli of CNT-reinforced polymers and fitting of efficiency parameters for the use of the extended rule-of-mixtures
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Multiscale modeling of the elastic moduli of CNT-reinforced polymers and fitting of efficiency parameters for the use of the extended rule-of-mixtures

机译:碳纳米管增强聚合物的弹性模量的多尺度建模和效率参数的拟合,以使用扩展的混合规则

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In this work, a bottom-up multiscale modeling approach is developed to estimate the effective elastic moduli of Carbon NanoTube (CNT)-reinforced polymer composites. The homogenization process comprises two successive steps, including an atomistic-based computational model and a micromechanics approach at the nano- and micro-scales, respectively. Firstly, the atomistic-based finite element model defines a cylindrical Representative Volume Element (RVE) that accounts for a carbon nanotube, the immediately surrounding matrix, and the CNT/polymer interface. The carbon-carbon bonds of the CNT are modeled using Timoshenko beams, whilst three-dimensional solid elements are used for the surrounding matrix. Through the application of four loading conditions, the RVEs are homogenized into transversely isotropic equivalent fibers by equating the associated strain energies. Secondly, the equivalent fibers are employed in a micromechanics approach to estimate the macroscopic response of non-dilute composites. This is performed using both the analytical Mon-Tanaka model and a computational RVE model with a hexagonal packing geometry. A wide spectrum of single- and multi-walled carbon nanotubes are studied, as well as two different polymeric matrices. Furthermore, the so-called efficiency parameters, imperative for the application of the simplified extended rule of mixtures, are characterized by polynomial expressions for practical filler contents. Finally, detailed parametric analyses are also provided to give insight into the sensitivity of the macroscopic response of CNT-reinforced polymer composites to micro structural features such as filler volume fraction, chirality or aspect ratio.
机译:在这项工作中,开发了一种自底向上的多尺度建模方法,以估计碳纳米管(CNT)增强的聚合物复合材料的有效弹性模量。均质化过程包括两个连续的步骤,分别包括基于原子的计算模型和分别在纳米级和微米级的微力学方法。首先,基于原子的有限元模型定义了一个圆柱状的代表体元素(RVE),该元素代表了碳纳米管,紧邻的基体和CNT /聚合物界面。 CNT的碳-碳键使用Timoshenko束建模,而三维固体元素用于周围的基质。通过施加四个载荷条件,通过使相关的应变能相等,将RVE均化为横向各向同性的等效纤维。其次,在微力学方法中采用等效纤维来估计非稀释复合材料的宏观响应。这可以使用分析型Mon-Tanaka模型和具有六边形填充几何形状的RVE计算模型来执行。研究了宽范围的单壁和多壁碳纳米管,以及两种不同的聚合物基体。此外,对于混合物的简化扩展规则的应用必不可少的所谓效率参数,其特征在于用于实际填料含量的多项式表达式。最后,还提供了详细的参数分析,以深入了解CNT增强的聚合物复合材料的宏观响应对微观结构特征(如填料体积分数,手性或长宽比)的敏感性。

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