Zare Yasser, Rhee Kyong Yop
Department of Mechanical Engineering, College of Engineering, Kyung Hee University, Yongin 446-701, Korea.
Polymers (Basel). 2020 Jan 17;12(1):233. doi: 10.3390/polym12010233.
In this paper, we consider the interphase regions surrounding the dispersed and networked carbon nanotubes (CNT) to develop and simplify the expanded Takayanagi model for tensile modulus of polymer CNT nanocomposites (PCNT). The moduli and volume fractions of dispersed and networked CNT and the surrounding interphase regions are considered. Since the modulus of interphase region around the dispersed CNT insignificantly changes the modulus of nanocomposites, this parameter is removed from the developed model. The developed model shows acceptable agreement with the experimental results of several samples. "" as nanocomposite modulus per the modulus of neat matrix changes from 1.4 to 7.7 at dissimilar levels of "" (CNT fraction in the network) and network modulus. Moreover, the lowest relative modulus of 2.2 is observed at the smallest levels of interphase volume fraction ( ϕ i < 0.017), while the highest " ϕ i " as 0.07 obtains the highest relative modulus of 11.8. Also, the variation of CNT size (radius and length) significantly changes the relative modulus from 2 to 20.
在本文中,我们考虑围绕分散和网络化碳纳米管(CNT)的界面区域,以开发并简化用于聚合物CNT纳米复合材料(PCNT)拉伸模量的扩展Takayanagi模型。我们考虑了分散和网络化CNT以及周围界面区域的模量和体积分数。由于分散CNT周围界面区域的模量对纳米复合材料的模量影响不大,因此该参数从开发的模型中去除。开发的模型与几个样品的实验结果显示出可接受的一致性。随着纳米复合材料模量与纯基体模量之比在不同的“”(网络中CNT分数)和网络模量水平下从1.4变化到7.7。此外,在最低的界面体积分数水平(ϕi < 0.017)下观察到最低相对模量为2.2,而最高的“ϕi”为0.07时获得最高相对模量11.8。而且,CNT尺寸(半径和长度)的变化会使相对模量从2显著变化到20。