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Flexural properties of multiscale nanocomposites containing multiwalled carbon nanotubes coated glass fabric in epoxy/graphene matrix

机译:含有多孔碳纳米管涂层玻璃织物的多尺度纳米复合材料的环氧/石墨烯基质弯曲性能

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In this work, graphene is prepared by reduction of graphene oxide. The graphene obtained is used as the reinforcing nanofiller in an epoxy matrix. The incorporation of 0.1 wt.% loading of graphene in an epoxy matrix shows the maximum increase in the flexural properties as compared to the pure epoxy. It is due to good dispersion of graphene and interaction between C-N group of epoxy and C=O group of graphene. The loading of 0.1 of wt.% graphene in epoxy is used to prepare the glass fabric reinforced multiscale nanocomposites. This multiscale nanocomposite shows an enhancement in flexural properties. It is due to the mechanical interlocking associate with random dispersion of graphene in epoxy resin. In addition, glass fabric is coated with polyvinylpyrrolidone (PVP) modified multiwalled carbon nanotubes (MWNT) and its multiscale nanocomposites show the enhanced flexural strength. The increase in flexural strength is due to mechanical keying associated with the rough surface obtained with the coating of MWNT over glass fabric. Further, with an addition of 0.1 wt.% of graphene and MWNT coated glass fabric in epoxy multiscale nanocomposites, flexural properties enhancement are highest. It is due to the combined effect of mechanical keying and mechanical interlocking associated with graphene dispersion and rough surface of MWNT coat over glass fabric. In addition, the toughness of the MWNT coated glass fabric and graphene filled epoxy multiscale nanocomposites increases due to the mobile epoxy chains contributing towards the energy absorption. It is observed that the epoxy chains in contact with PVP coated MWNT are mobile as confirmed from dynamic mechanical analysis (DMA) studies. Thus, due to mechanical interlocking, the mobility of epoxy chains and mechanical keying; the flexural modulus, flexural strength, flexural toughness, and storage modulus obtained are highest for the graphene and MWNT coated glass fabric in epoxy multiscale nanocomposites.
机译:在这项工作中,通过还原氧化石墨烯制备石墨烯。所得石墨烯用作环氧基质中的增强纳米氧化物。掺入0.1重量%。环氧基质中石墨烯的%载荷显示与纯环氧基相比弯曲性能的最大增加。它是由于石墨烯的良好分散和C-N基环氧基的相互作用和C = O基团的石墨烯。加载0.1重量%。环氧树脂中的%石墨烯用于制备玻璃织物增强的多尺度纳米复合材料。该多尺度纳米复合材料显示出弯曲性能的增强。它是由于机械互锁与石墨烯中的随机分散的互联轴合。此外,玻璃织物涂有聚乙烯吡咯烷酮(PVP)改性多壁碳纳米管(MWNT),其多尺度纳米复合材料显示出增强的弯曲强度。弯曲强度的增加是由于与在玻璃织物上的MWNT涂层获得的粗糙表面相关的机械键键。此外,在环氧多尺度纳米复合材料中添加0.1重量%的石墨烯和MWNT涂层玻璃织物,弯曲性能增强最高。它是由于机械键控和机械互锁与玻璃织物的石墨烯分散和粗糙表面相关的效果。此外,由于有助于能量吸收的移动环氧树链,MWNT涂层玻璃织物和石墨烯填充环氧多尺寸纳米复合材料的韧性增加。观察到与PVP涂覆的MWNT接触的环氧链是由动态机械分析(DMA)研究证实的移动。因此,由于机械互锁,环氧链的迁移率和机械键键;对于环氧多尺度纳米复合材料中的石墨烯和MWNT涂覆的玻璃织物,所获得的弯曲模量,弯曲强度,抗牙韧性和储存模量最高。

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