Enhancing Wear Resistance and Mechanical Behaviors of AA7020 Alloys Using Hybrid Fe3O4-GNP Reinforcement

Ufuk Taşcı, T. Yılmaz, Halil Karakoç, Ş. Karabulut
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Abstract

This study investigates the effect of graphene nanoplatelets (GNPs) and milling duration on the microstructure, mechanical properties, and wear resistance of the AA7020 alloy reinforced with Fe3O4 and GNP. The composites were prepared with a fixed 10 wt.% Fe3O4 and varying GNP contents (0.5 and 1 wt.%) using high-energy ball milling for 4 and 8 h, followed by hot pressing. The aim was to enhance the performance of the AA7020 alloy for potential use in defense, automotive, aviation, and space applications, where superior mechanical properties and wear resistance are required. The results showed that the incorporation of 0.5 wt.% GNP and optimized milling significantly improved the composite’s performance. The AA7020 + 10 wt.% Fe3O4 + 0.5 wt.% GNP composite achieved the highest density (99.70%) when milled for 4 h. Its hardness increased with both the inclusion of GNP and extended milling duration, with the composite milled for 8 h exhibiting the highest hardness value (149 HBN). The tensile strength also improved, with the composite milled for 4 h showing a 28% increase (292 MPa) compared with the unreinforced alloy. Additionally, the friction coefficient decreased with GNP content and milling duration, with the composite milled for 8 h showing a 26% reduction. Wear resistance was notably enhanced, with the composite milled for 8 h exhibiting the lowest specific wear rate (7.86 × 10⁻7 mm3/Nm).
利用混合 Fe3O4-GNP 增强 AA7020 合金的耐磨性和机械性能
本研究探讨了石墨烯纳米颗粒(GNPs)和研磨时间对以 Fe3O4 和 GNP 增强的 AA7020 合金的微观结构、机械性能和耐磨性的影响。复合材料的制备采用了固定的 10 wt.% Fe3O4 和不同的 GNP 含量(0.5 和 1 wt.%),使用高能球研磨 4 和 8 小时,然后进行热压。其目的是提高 AA7020 合金的性能,使其能够用于需要优异机械性能和耐磨性的国防、汽车、航空和航天领域。结果表明,0.5 wt.% GNP 的加入和优化的研磨工艺显著提高了复合材料的性能。AA7020 + 10 wt.% Fe3O4 + 0.5 wt.% GNP 复合材料在碾磨 4 小时后密度最高(99.70%),其硬度随着 GNP 的加入和碾磨时间的延长而增加,碾磨 8 小时的复合材料硬度值最高(149 HBN)。拉伸强度也有所提高,与未增强的合金相比,碾磨 4 小时的复合材料的拉伸强度提高了 28%(292 兆帕)。此外,摩擦系数随 GNP 含量和碾磨时间的增加而降低,碾磨 8 小时的复合材料的摩擦系数降低了 26%。耐磨性明显增强,研磨 8 小时的复合材料表现出最低的比磨损率(7.86 × 10-7 mm3/Nm)。
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