Tribo-Mechanical Characterization of Self-Lubricating Aluminium Based Hybrid Metal Matrix Composite Fabricated Via Powder Metallurgy

N. Zamani, A. A. Iqbal, D. M. Nuruzzaman
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Abstract

In this research, the tribo-mechanical behaviour of self-lubricating aluminium (Al) based hybrid metal matrix composites (MMCs) reinforced with graphite (Gr) and Al2O3 particles (Al+Gr+Al2O3) were studied aiming to obtain the superior wear and mechanical properties in a single material. Three different compositions of hybrid MMCs were fabricated by powder metallurgy technique, their wear and mechanical properties were tested and compared with pure monolithic Al and Al+Gr composite. The microstructure of the samples was examined and various mechanical properties such as microhardness, tensile and flexural strength were evaluated. The wear behaviour of the hybrid MMCs was investigated by using a pin-on-disc tribometer. The results revealed that the combined effect of Al2O3 and graphite reinforcement particles significantly improved the wear and mechanical properties of hybrid MMCs. All the mechanical properties were increased and the wear rate and coefficient of friction were decreased remarkably. Besides, the reinforcement composition of 3%Gr and 10%Al2O3 (Al+3%Gr+10%Al2O3) forms a smooth tribosurface thus increases the wear resistant properties at the highest level than that of other compositions of the hybrid MMCs.
粉末冶金制备自润滑铝基杂化金属基复合材料的摩擦力学特性
本文研究了石墨(Gr)和Al2O3颗粒(Al+Gr+Al2O3)增强自润滑铝基杂化金属基复合材料(MMCs)的摩擦力学行为,以期在单一材料中获得优异的磨损和力学性能。采用粉末冶金技术制备了3种不同组成的杂化MMCs,对其磨损性能和力学性能进行了测试,并与纯单片Al和Al+Gr复合材料进行了比较。研究了试样的显微组织,并对试样的显微硬度、抗拉强度和抗弯强度等力学性能进行了评价。采用针盘式摩擦计研究了混合mmc的磨损行为。结果表明,Al2O3和石墨增强颗粒的共同作用显著改善了杂化mmc的磨损性能和力学性能。各项力学性能均有显著提高,磨损率和摩擦系数均有显著降低。此外,3%Gr和10%Al2O3的增强成分(Al+3%Gr+10%Al2O3)形成了光滑的摩擦表面,从而使复合mmc的耐磨性得到了最大程度的提高。
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