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Three-dimensional micromechanical analysis of the CNT waviness influence on the mechanical properties of polymer nanocomposites

机译:碳纳米管波纹度对聚合物纳米复合材料力学性能影响的三维微观力学分析

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摘要

The effects of carbon nanotube (CNT) waviness on the elastic characterizations of polymer nanocomposites are investigated using a three-dimensional unit cell-based micromechanical model. The most important advantages of this model are its accuracy, simplicity, and efficiency. Both random and regular CNT arrangements can be included in the modeling. The wavy CNTs are modeled as sinusoidal solid CNT fibers while at any location along the length of CNT, the CNT is considered as transversely isotropic material. The polymer and interphase formed due to non-bonded interaction between a CNT and the polymer are assumed to be homogeneous and isotropic as well. Results show that the effect of CNT waviness is not important for the effective coefficients , , and of the nanocomposites. CNT waviness plays a critical role in determining the effective coefficients , , , and of the nanocomposites. Also, it is found that the CNT waviness slightly affects the effective values of and . The effects of volume fraction of CNT and interphase on the mechanical properties of the nanocomposite are examined. Comparison of the present model results shows very good agreement with other available micromechanical analysis and experiment. As comparing with the finite element method, the present model requires much less computational time for obtaining the effective properties of the nanocomposites. Consequently, the results emphasize that all four important parameters, i.e., CNT behavior and waviness, CNT random arrangement, and interphase contributions, should be precisely included in the modeling to predict a more realistic outcome.
机译:碳纳米管(CNT)波纹度对聚合物纳米复合材料的弹性表征的影响使用三维单元格为基础的微力学模型进行了研究。该模型的最重要优点是其准确性,简单性和效率。建模中可以包括随机和常规CNT排列。波浪状CNT被建模为正弦形固体CNT纤维,而在CNT长度范围内的任何位置,CNT均被视为横向各向同性材料。假设由于CNT与聚合物之间的非键相互作用而形成的聚合物和相间也是均质和各向同性的。结果表明,CNT波纹度的影响对于有效系数,和纳米复合材料并不重要。 CNT波纹度在确定纳米复合材料的有效系数,和中起着至关重要的作用。另外,发现CNT波纹度稍微影响和的有效值。研究了碳纳米管的体积分数和中间相对纳米复合材料力学性能的影响。本模型结果的比较显示与其他可用的微力学分析和实验非常吻合。与有限元方法相比,本模型需要更少的计算时间来获得纳米复合材料的有效特性。因此,结果强调应将所有四个重要参数(即CNT行为和波纹度,CNT随机排列和相间贡献)精确地包含在模型中,以预测更现实的结果。

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