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Experimental and Numerical Investigation of Flow and Alignment Behavior of Waste Tire-Derived Graphene Nanoplatelets in PA66 Matrix during Melt-Mixing and Injection

机译:PA66基质在熔融混合过程中废轮胎衍生石墨烯纳米粒子流动的实验和数值研究

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摘要

Homogeneous dispersion of graphene into thermoplastic polymer matrices during melt-mixing is still challenging due to its agglomeration and weak interfacial interactions with the selected polymer matrix. In this study, an ideal dispersion of graphene within the PA66 matrix was achieved under high shear rates by thermokinetic mixing. The flow direction of graphene was monitored by the developed numerical methodology with a combination of its rheological behaviors. Graphene nanoplatelets (GNP) produced from waste-tire by upcycling and recycling techniques having high oxygen surface functional groups were used to increase the compatibility with PA66 chains. This study revealed that GNP addition increased the crystallization temperature of nanocomposites since it acted as both a nucleating and reinforcing agent. Tensile strength and modulus of PA66 nanocomposites were improved at 30% and 42%, respectively, by the addition of 0.3 wt% GNP. Flexural strength and modulus were reached at 20% and 43%, respectively. In addition, the flow model, which simulates the injection molding process of PA66 resin with different GNP loadings considering the rheological behavior and alignment characteristics of GNP, served as a tool to describe the mechanical performance of these developed GNP based nanocomposites.
机译:由于其附聚和与所选聚合物基质的弱界面相互作用,石墨烯对热塑性聚合物基质的均匀分散在熔融混合过程中仍然具有挑战性。在该研究中,通过热渗透混合,在高剪切速率下实现了PA66基质内的石墨烯的理想分散。通过其流变行为的组合,通过开发的数值方法监测石墨烯的流动方向。通过升级和具有高氧表面官能团的较高氧气表面官能团的回收技术制备的石墨烯纳米孔(GNP)用于增加与PA66链的相容性。该研究表明,GNP添加增加了纳米复合材料的结晶温度,因为它作为成核和增强剂。通过加入0.3wt%GNP,分别以30%和42%提高PA66纳米复合材料的拉伸强度和模量。弯曲强度和模量分别以20%和43%达到。另外,考虑到GNP的流变行为和对准特性,模拟PA66树脂的注射成型过程的流量模型,作为GNP的流变行为和对准特性,作为描述这些开发的基于GNP的纳米复合材料的机械性能的工具。

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