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ENHANCED PROPERTIES OF EPOXY COMPOSITE REINFORCED WITH AMINO-FUNCTIONALIZED GRAPHENE NANOPLATELETS

机译:氨基功能化石墨烯纳米颗粒增强环氧树脂复合材料的性能

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A systematic study has been conducted on processing and characterization of epoxy polymer composite to enhance its mechanical, viscoelastic, and thermal properties through optimization of graphene nanoplatelets (GNP). GNP having a two dimensional structure is composed of several layers of graphite nanocrystals stacked together. GNP is expected to provide better reinforcing effect in polymer matrix composites as a nanofiller along with greatly improved mechanical and thermal properties due to its planar structure and ultrahigh aspect ratio. GNP is also considered to be the novel nanofiller due to its exceptional functionalities, high mechanical strength, chemical stability, abundance in nature, and cost effectiveness. Moreover, it possesses an extremely high-specific surface area which carries a high level of transferring stress across the interface and provides higher reinforcement than carbon nanotubes (CNT) in polymer composites. Hence, this research has been focused on the reinforcing effect of the amine-functionalized GNP on mechanical, viscoelastic, and thermal properties of the epoxy resin-EPON 828 composite. Amine functionalized GNP was infused in EPON 828 at different loadings including 0, 0.1, 0.2, 0.3, 0.4, and 0.5 wt% as a reinforcing agent. GNP was infused into epoxy resin Epon 828 Part-A using a high intensity ultrasonic liquid processor followed by a three roll milling processor for better dispersion. The GNP/epoxy mixture was then mixed with the curing agent Epikure 3223 according to the stoichiometric ratio (Part A: Part B = 12:1). The mixture was then placed in a vacuum oven at 40 °C for 10 m to ensure the complete removal of entrapped bubbles and thus reduce the chance of void formation. The as-prepared resin mixture was then poured in rubber molds to prepare samples for mechanical, viscoelastic, and thermal characterization according to ASTM standards. Molds containing liquid epoxy nanocomposites were then kept in the vacuum oven at room temperature for seven days to confirm full curing of the samples according to the manufacturer's suggestion. Similarly, neat epoxy samples were fabricated to obtain its baseline properties through mechanical, viscoelastic, and thermal characterization and compare these properties with those of nanophased ones. The reinforcing effect of the amine-functionalized GNP on the epoxy was characterized through mechanical, viscoelastic, and thermal analyses. Fracture morphology of mechanically tested samples was evaluated through scanning electronic microscopy (SEM) study. The mechanical properties were determined through flexure test according to the ASTM standard. Dynamic mechanical analysis (DMA) and thermo-mechanical analysis (TMA) were performed to analyze viscoelastic and thermal performances of the composite. In all cases, the 0.4 wt% GNP infused epoxy nanocomposite exhibited the best properties. The 0.4 wt% GNP-loaded epoxy sample showed 20% and 40% improvement in flexure strength and modulus, respectively. Moreover, 16% improvement in the storage modulus and 37% decrease in the coefficient of thermal expansion were observed due to the integration of GNP reinforcement into the epoxy system. Scanning electronic micrographs exhibited smooth fracture surface for the neat sample, whereas the roughness of surface increased due to the GNP incorporation. This is an indication of change in the crack propagation during loading and a higher energy requirement to fracture the GNP-loaded sample.
机译:通过优化石墨烯纳米片(GNP),对环氧聚合物复合材料的加工和表征进行了系统研究,以增强其机械,粘弹性和热性能。具有二维结构的GNP由堆叠在一起的几层石墨纳米晶体组成。由于其平面结构和超高纵横比,GNP有望在作为纳米填料的聚合物基复合材料中提供更好的增强效果,并大大改善机械和热性能。 GNP由于其卓越的功能性,高机械强度,化学稳定性,自然丰度和成本效益,也被认为是新型的纳米填料。此外,它具有极高的比表面积,比表面积高,该应力跨界面传递,并且比聚合物复合材料中的碳纳米管(CNT)具有更高的增强性。因此,该研究集中在胺官能化的GNP对环氧树脂-EPON 828复合材料的机械,粘弹性和热性能的增强作用上。胺官能化的GNP以不同的量注入EPON 828中,其中包括0、0.1、0.2、0.3、0.4和0.5 wt%作为增强剂。使用高强度超声液体处理器,然后通过三辊研磨处理器将GNP注入环氧树脂Epon 828 Part-A中,以实现更好的分散性。然后根据化学计量比(A部分:B部分= 12:1)将GNP /环氧树脂混合物与固化剂Epikure 3223混合。然后将混合物置于40°C的真空烘箱中10 m,以确保完全清除夹带的气泡,从而减少形成空隙的机会。然后将所制备的树脂混合物倒入橡胶模具中,以根据ASTM标准制备用于机械,粘弹性和热表征的样品。然后将含有液态环氧纳米复合材料的模具在室温下的真空烘箱中放置7天,以根据制造商的建议确认样品已完全固化。同样,制备纯净的环氧样品,以通过机械,粘弹性和热表征获得其基线性能,并将这些性能与纳米相的性能进行比较。通过机械,粘弹性和热分析来表征胺官能化的GNP对环氧树脂的增强作用。通过扫描电子显微镜(SEM)研究评估了机械测试样品的断裂形态。力学性能是根据ASTM标准通过挠曲测试确定的。进行了动态力学分析(DMA)和热力学分析(TMA),以分析复合材料的粘弹性和热性能。在所有情况下,注入0.4 wt%GNP的环氧纳米复合材料均表现出最佳性能。加载0.4 wt%的GNP的环氧树脂样品的弯曲强度和模量分别提高了20%和40%。此外,由于将GNP增强剂集成到环氧体系中,可观察到储能模量提高16%,热膨胀系数降低37%。扫描电子显微照片显示出整齐的样品具有光滑的断裂表面,而由于加入了GNP,表面的粗糙度增加了。这表明在加载过程中裂纹扩展发生了变化,并且需要更高的能量来破碎加载了GNP的样品。

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