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Atomistic simulations of functionalization of aramid fiber-epoxy nanocomposite

机译:芳族纤维环氧纳米复合材料官能化原子模拟

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摘要

Owing to its high degree of crystallinity and orientation, the surface of aramid fiber is smooth, causing its low bonding strength with polymer matrix. This has restricted the application of aramid fiber in reinforced polymer materials. Effective methods are by introducing functional groups through surface modification and by increasing its surface roughness thereby greatly improving its bonding strength with the polymer. In this work, molecular dynamics (MD) simulation study fiber functionalized with hydroxyl (OH), carboxyl (COOH), and the silane coupling agent as nanofillers for polymer nanocomposites. The interfacial characteristics and the mechanical behavior of polymer nanocomposites are investigated. The results show that the functionalization can enhance the interfacial shear stress and tensile strength. The functional group not only provides a stronger interface, but also provides additional mechanical interlocking effect, which effectively improves load-bearing transmission capacity. The analysis of the micro-mechanism from the energy level also provides new insights for the functionalized design of nanocomposites.
机译:由于其高度的结晶度和取向性,芳纶纤维的表面光滑,导致其与聚合物基体的结合强度较低。这限制了芳纶纤维在增强聚合物材料中的应用。有效的方法是通过表面改性引入官能团,增加其表面粗糙度,从而大大提高其与聚合物的结合强度。在这项工作中,分子动力学(MD)模拟研究了用羟基(OH)、羧基(COOH)和硅烷偶联剂功能化的纤维作为聚合物纳米复合材料的纳米填料。研究了聚合物纳米复合材料的界面特性和力学行为。结果表明,功能化可以提高界面剪切应力和拉伸强度。该功能组不仅提供了更强的接口,还提供了额外的机械联锁效果,有效地提高了承载传输能力。从能量水平对微观机理的分析也为纳米复合材料的功能化设计提供了新的见解。

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