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The role of interface on the toughening and failure mechanisms of thermoplastic nanocomposites reinforced with nanofibrillated rubber

机译:界面的增韧和的作用失败的机制热塑性纳米复合材料加固与nanofibrillated橡胶

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The interface plays a crucial role in the physical and functional properties of polymer nanocomposites, yet its effects have not been fully recognized in the setting of classical continuum-based modeling. In the present study, we investigate the roles of interface and interfiber interactions on the toughening effects of rubber nanofibers embodied in thermoplastic-based materials. Emphasis is placed on establishing comprehensive theoretical and atomistic descriptions of the nanocomposite systems subjected to pull-out and uniaxial extension in the longitudinal and transverse directions. Using the framework of molecular dynamics, the annealed melt-drawn nanofibers were spontaneously formed via the proposed four-step methodology. The generated nanofibers were then crosslinked using the proposed robust topology-matching algorithm, through which the chemical reactions arising in the crosslinking were closely assimilated. The interfiber interactions were also examined with respect to separation distances and nanofiber radius via a nanofiber-pair atomistic scheme, and the obtained results were subsequently incorporated into the pull-out and uniaxial test simulations. The results indicate that the compatibilizer grafting results in enhanced interfacial shear strength by introducing extra chemical interactions at the interface. In particular, it was found that the compatibilizer restricts the formation and coalescence of nanovoids, resulting in enhanced toughening effects. Together, we have shown that the presence of a small amount of well-dispersed rubber nanofibrillar network whose surfaces are grafted with maleic anhydride compatibilizer can dramatically increase the toughness and alter the failure mechanisms of the nanocomposites without any deterioration in the stiffness, which is also consistent with the recent experimental observations in our lab. The interfacial failure mechanism was also investigated by monitoring the changes in the atomic concentration profiles, mean square displacement and fractional free volume. The results obtained may serve as a promising alternative for the continuum-based modeling and analysis of interfaces.
机译:物理接口中扮演着关键角色和功能性聚合物的性质纳米复合材料,但它没有影响在古典的设置充分肯定continuum-based建模。我们调查的角色界面和interfiber交互的增韧效果橡胶纳米纤维的体现thermoplastic-based材料。建立全面的理论和纳米复合材料的原子论的描述系统受到撤军和单轴在纵向和横向延伸的方向。动力学,退火melt-drawn纳米纤维自发地形成了通过提出的四个步骤方法。使用提出了健壮的交联topology-matching算法,通过它化学反应产生交联被同化。也检查对的相互作用距离和纳米纤维半径通过分离nanofiber-pair原子论的计划,和获得结果随后被纳入拉拔力和单轴试验模拟。结果表明,增容剂接枝结果增强了界面剪切强度引入额外的化学相互作用接口。形成和增容剂限制聚结的nanovoids,导致增强增韧效果。少量的说法橡胶nanofibrillar网络的表面与顺丁烯二酸酐嫁接增容剂大大增加韧性和改变纳米复合材料的失效机制任何恶化刚度与最新实验一致在我们的实验室观察。也调查了监控机制原子浓度变化的概要文件,平均平方位移和部分免费的体积。continuum-based有前途的替代建模和分析的接口。

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