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A Preliminary Study of the Influence of Graphene Nanoplatelet Specific Surface Area on the Interlaminar Fracture Properties of Carbon Fiber/Epoxy Composites

机译:石墨烯纳米薄板特异表面积对碳纤维/环氧复合材料层间断裂性能影响的初步研究

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摘要

Graphene nanoplatelets (GNPs) are of particular interest to the field of nano-reinforced composites since they possess superior mechanical, fracture, thermal, and barrier properties. Due to their geometrical characteristics, high aspect ratio (AR)/specific surface area (SSA) and their planar structure, GNPs are considered as high-potential nanosized fillers for improving performance of composites. The present study investigates the effect of SSA of GNPs on fracture properties of carbon fiber reinforced polymers (CFRPs). For this reason, two nano-doped CFRPs were produced by using two types of GNPs (C300 and C500) with different SSAs, 300 and 500 m2/g, respectively. Both types of GNPs, at the same content of 0.5 wt%, were added into the epoxy matrix of composites by applying a three-roll milling technique. The nanomodified matrix was used for the manufacturing of prepregs, while the final composite laminates were fabricated through the vacuum-bag method. Mode I and II interlaminar fracture tests were carried out to determine the interlaminar fracture toughness GIC and GIIC of the composites, respectively. According to the results, the toughening effect of C500 GNPs was the strongest, resulting in increases of 25% in GIC and 33% in GIIC compared with the corresponding unmodified composites. The activation of the absorption mechanisms of C500 contributed to this outcome, which was confirmed by the scanning electron microscopy (SEM) analyses conducted in the fracture surfaces of specimens. On the other hand, C300 GNPs, due to disability to be dispersed uniformly into the epoxy matrix, did not influence the fracture properties of CFRPs, indicating that probably there is a threshold in SSA which is necessary to achieve for improving the fracture properties of CFRPs.
机译:石墨烯纳米片(GNPS)特别感兴趣的纳米增强复合材料的领域,因为它们具有优异的机械,裂缝,热和阻隔性能。由于它们的几何特征,高纵横比(AR)/比表面积(SSA)及其平面结构,GNP被认为是高电位纳米填料,用于改善复合材料的性能。本研究研究了GNPS对碳纤维增强聚合物(CFRP)裂缝性能的影响。因此,通过使用不同SSA,300和500m 2 / g的两种类型的GNPS(C300和C500)产生两个纳米掺杂的CFRP。通过施加三辊研磨技术将两种类型的GNP在相同的0.5wt%的含量中加入到复合材料的环氧基质中。纳米倍转的基质用于制造预浸料,而通过真空袋法制造最终的复合层压材料。进行模式I和II层间裂缝试验以分别确定骨折骨折GIC和复合材料的GIIC。根据结果​​,C500GNP的增韧效果是最强的,导致GIC的增加25%,与相应的未改性复合材料相比,GII的增加和33%。 C500的吸收机制的活化有助于通过在样本的断裂表面中进行的扫描电子显微镜(SEM)分析来证实。另一方面,由于残疾均匀地分散到环氧基质中,C300GNP不会影响CFRP的断裂性能,表明SSA中可能存在阈值,这是为了改善CFRP的断裂性能所必需的。

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