Studies on the Mechanical, Strengthening Mechanisms and Tribological Characteristics of AA7150-Al2O3 Nano-Metal Matrix Composites

K. C. Maddaiah, G. B. Veeresh Kumar, R. Pramod
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Abstract

Stir-casting with ultrasonic cavitation produced nano-Al2O3-filled AA7150 matrix composites in this study. The SEM microstructure study shows that all composites include nano-Al2O3 particles with consistent particle sizes and homogenous distribution. EDS and XRD showed no secondary phases or impurities in the composite. Optical microscopy showed intense ultrasonic cavitation effects, and nano-Al2O3 particles caused grain refinement in the AA7150 matrix. The composite’s mechanical characteristics improved when the Al2O3 nanoparticle weight percentage (wt.%) increased. With only 2.0 wt.% nano-Al2O3 particles, the composites yielded 232 MPa, 97.52% higher than the sonicated AA7150 matrix alloy. Multiple models were used to characterize the strength of the AA7150 nano-Al2O3 composite. The findings showed that thermal incongruity, Orowan strengthening, the Hall–Petch mechanism, and load transfer effects contributed the most towards the increased strength of the composite. Increasing the nano-Al2O3 wt.% in the AA7150 matrix improved hardness by 95.08%, yield strength by 90.34%, and sliding wear resistance by 46.52%. This enhancement may be attributed to the combined effects of better grain refinement, enhanced dispersion with dislocation strengthening, and better load transfer between the matrix and reinforcement, which are assisted by the inclusion of reinforcements. This result was confirmed by optical studies.
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AA7150-Al2O3 纳米金属基复合材料的力学、强化机理和摩擦学特性研究
本研究采用超声波空化搅拌铸造法生产出了纳米 Al2O3 填充 AA7150 基复合材料。SEM 显微结构研究表明,所有复合材料都含有纳米 Al2O3 颗粒,颗粒大小一致,分布均匀。EDS 和 XRD 显示复合材料中没有次生相或杂质。光学显微镜显示了强烈的超声空化效应,纳米 Al2O3 粒子导致 AA7150 基体中的晶粒细化。当纳米 Al2O3 粒子的重量百分比(wt.%)增加时,复合材料的机械特性得到改善。纳米 Al2O3 粒子的重量百分比仅为 2.0%时,复合材料的屈服强度为 232 兆帕,比超声处理的 AA7150 基体合金高 97.52%。使用多种模型对 AA7150 纳米 Al2O3 复合材料的强度进行了表征。研究结果表明,热不一致性、奥罗恩强化、霍尔-佩奇机制和载荷传递效应对复合材料强度的提高贡献最大。提高 AA7150 基体中纳米 Al2O3 的重量百分比可使硬度提高 95.08%,屈服强度提高 90.34%,滑动耐磨性提高 46.52%。这种提高可归因于更好的晶粒细化、位错强化分散以及基体和增强体之间更好的载荷传递等综合效应。光学研究证实了这一结果。
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