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Effects of Three Different Injection-Molding Methods on the Mechanical Properties and Electrical Conductivity of Carbon Nanotube/Polyethylene/Polyamide 6 Nanocomposite

机译:三种注射成型方法对碳纳米管/聚乙烯/聚酰胺6纳米复合材料力学性能和电导率的影响

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摘要

Morphological evolution under shear, during different injection processes, is an important issue in the phase morphology control, electrical conductivity, and physical properties of immiscible polymer blends. In the current work, conductive nanocomposites were produced through three different injection-molding methods, namely, conventional injection molding, multi-flow vibration injection molding (MFVIM), and pressure vibration injection molding (PVIM). Carbon nanotubes in the polyamide (PA) phase and the morphology of the PA phase were controlled by various injection methods. For MFVIM, multi-flows provided consistently stable shear forces, and mechanical properties were considerably improved after the application of high shear stress. Shear forces improved electrical property along the flow direction by forming an oriented conductive path. However, shear does not always promote the formation of conductive paths. Oscillatory shear stress from a vibration system of PVIM can tear a conductive path, thereby reducing electrical conductivity by six orders of magnitude. Although unstable high shear forces can greatly improve mechanical properties compared with the conventional injection molding (CIM) sample, oscillatory shear stress increases the dispersion of the PA phase. These interesting results provide insights into the production of nanocomposites with high mechanical properties and suitable electrical conductivity by efficient injection molding.
机译:在不同的注入过程中,在剪切作用下的形态演变是相混溶相混合物,电导率和物理性质的重要问题。在当前的工作中,导电纳米复合材料通过三种不同的注射成型方法生产,即常规注射成型,多流振动注射成型(MFVIM)和压力振动注射成型(PVIM)。聚酰胺(PA)相中的碳纳米管和PA相的形态通过各种注入方法进行控制。对于MFVIM,多流提供一致的稳定剪切力,并且在施加高剪切应力后机械性能得到了显着改善。剪切力通过形成定向的导电路径,沿流动方向改善了电性能。然而,剪切并不总是促进导电路径的形成。 PVIM振动系统产生的振荡剪切应力会破坏导电路径,从而使电导率降低六个数量级。尽管与常规注塑(CIM)样品相比,不稳定的高剪切力可以极大地改善机械性能,但振荡剪切应力会增加PA相的分散性。这些有趣的结果为通过高效注塑成型生产具有高机械性能和合适电导率的纳米复合材料提供了见识。

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