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Effect of Functionalized Graphene Nanoplatelets on the Delamination-Buckling and Delamination Propagation Resistance of 3D Fiber-Metal Laminates Under Different Loading Rates

机译:官能化石墨烯纳米孔对不同加载率下3D纤维 - 金属层压材料分层屈曲和分层传播电阻的影响

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摘要

This paper presents an investigation into the effect of graphene nanoplatelets (GNPs) as a means of improving the impact buckling performance and delamination propagation resistance of a recently developed 3D fiber-metal laminate (3D-FML). One of the highlights of the investigation is the examination of the performance of the GNP-reinforced resin at a sub-freezing temperature (−50 °C). 3D-FML beam specimens were subjected to axial impact of various intensities at room-temperature, while they were subjected to quasi-static axial compression load at the sub-freezing temperature. Moreover, the influence of two different surface preparation methods on the performance of the metallic/FRP interfaces of the hybrid system was also investigated in this study. Although the inclusion of the GNPs in the resin resulted in some gain in the buckling capacity of the 3D-FML, nevertheless, the results revealed that the lack of adequate chemical bond between the GNP-reinforced resin and the magnesium skins of the hybrid material system significantly limited the potential influence of the GNPs. Therefore, a cost-effective and practical alternative is presented that results in a significant improvement in the interfacial capacity.
机译:本文提出了石墨烯纳米片(GNP)作为提高最近开发的3D纤维金属层压板(3D-FML)的冲击屈曲性能和分层传播电阻的方法的研究。调查的一个亮点是在冷冻温度(-50℃)下的GNP增强树脂的性能检查。在室温下进行3D-FML光束样本对各种强度的轴向撞击,同时在冻结温度下对它们进行准静态轴向压缩负载。此外,还研究了这项研究的两种不同表面制备方法对杂种系统的金属/ FRP界面性能的影响。尽管在树脂中包含GNP导致3D-FML的屈曲能力产生一些增益,但结果表明,GNP增强树脂和混合材料系统的镁皮之间缺乏足够的化学粘合显着限制了GNP的潜在影响。因此,提出了一种成本效益和实际的替代方案,其导致界面容量显着改善。

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