Achieving exceptional wear resistance in severely deformed cost-effective AlCrFeNi high-entropy alloys through cyclic closed-die forging technique

IF 4.9 2区 化学 Q2 CHEMISTRY, PHYSICAL
Majid Naseri , Davood Gholami , Dmitry Mikhailov , Alena Myasnikova , Omid Imantalab , Nataliya Shaburova , Aleksandr Orlov , Yong-Cheng Lin , Abdel-Hamid I. Mourad , Evgeny Trofimov
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引用次数: 0

Abstract

Herein, the correlation between microstructural refinement and mechanical properties, particularly wear performance, of cost-effective AlCrFeNi3.1 and AlCrFe2Ni2.1 high-entropy alloys (HEAs) processed through cyclic closed-die forging (CCDF) technique was investigated. It was found that both alloys, before and after the CCDF process, exhibited a dual-phase structure consisting of NiAl-rich and CrFeNi-rich phases. Significant grain refinement, the formation of broken CrFeNi-rich dendrite fragments, and their efficient distribution within the matrix were demonstrated by implementing the CCDF technique. However, the microstructure of the AlCrFe2Ni2.1 alloy turned out to be finer than that of the AlCrFeNi3.1 alloy. The CCDF-processed AlCrFe2Ni2.1 alloy exhibited the highest microhardness (∼ 719 HV) and the lowest wear rate (∼ (1.3 ± 0.1) × 10–5 mm3.N−1.m−1), whereas those for the AlCrFeNi3.1 alloy were 428 HV and (1.8 ± 0.1) × 10–5 mm3.N−1.m−1, respectively. Finally, the resistance against plastic deformation through reducing the depth of grooves, the degree of delamination, and adhesive wear in the CCDF-processed alloys was clearly revealed compared to the as-homogenized state, specifically for the AlCrFe2Ni2.1 alloy. The findings of this study support the suggestion that combining the design of HEAs from inexpensive alloying elements with CCDF processing has the potential to develop economically viable materials without compromising performance.
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来源期刊
CiteScore
8.70
自引率
9.60%
发文量
2421
审稿时长
56 days
期刊介绍: Colloids and Surfaces A: Physicochemical and Engineering Aspects is an international journal devoted to the science underlying applications of colloids and interfacial phenomena. The journal aims at publishing high quality research papers featuring new materials or new insights into the role of colloid and interface science in (for example) food, energy, minerals processing, pharmaceuticals or the environment.
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