High entropy alloys synthesized by mechanical alloying: A review

Yogesh Kumar Yadav , Mohammad Abu Shaz , Nilay Krishna Mukhopadhyay , Thakur Prasad Yadav
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Abstract

High entropy alloys (HEAs) have attracted an intense interest from scientists, researchers, academics and industrialists in the recent times because of their exceptional physical, functional and chemical properties, which are superior to those of conventional alloys. The vast number of scientific publications has eclipsed many synthesis and production techniques being adopted for HEAs. Although the production processes for traditional alloys are well-established, a closer look must be given to the various synthesis methods used for multicomponent alloys for industrial applications. This review paper will fill this vacuum by providing a thorough and comprehensive investigation into the production of quinary, senary and higher order alloy systems in HEAs via mechanical alloying/milling. The mechanical alloying is a non-equilibrium synthesis technique that combines elemental powders through high-energy ball milling and eventually nanostructured materials can be produced. The intrinsic mechanical alloying processes of plastic deformation, cold-welding and fracture causes the changes in the size, configuration, and dispersion of the particles. As a result, a uniformly sized, finely divided powder develops; giving rise to the materials the special qualities compared to traditionally alloyed materials. Mechanical alloying is established widely for the synthesis of HEAs and other advanced materials. Through the approaches of mechanical alloying, this review paper seeks to analyze and throw light on the synthesis of HEAs especially, providing insightful information on this process and its significance for developing complex HEAs.
机械合金化合成高熵合金的研究进展
高熵合金(HEAs)由于其优越于传统合金的物理、功能和化学特性,近年来引起了科学家、研究人员、学术界和实业家的极大兴趣。大量的科学出版物使用于HEAs的许多合成和生产技术黯然失色。虽然传统合金的生产工艺已经完善,但必须仔细研究用于工业应用的多组分合金的各种合成方法。这篇综述论文将填补这一空白,对通过机械合金化/铣削在HEAs中生产五阶、四阶和高阶合金系统进行彻底和全面的研究。机械合金化是一种非平衡合成技术,通过高能球磨将元素粉末结合在一起,最终生产出纳米结构材料。塑性变形、冷焊和断裂的内在力学合金化过程导致了颗粒尺寸、形态和分散的变化。结果,形成了均匀大小、精细分割的粉末;与传统的合金材料相比,这种材料具有特殊的品质。机械合金化广泛应用于HEAs和其他先进材料的合成。本文试图通过机械合金化的方法,对HEAs的合成进行分析和阐明,为这一过程及其对复杂HEAs的开发提供有意义的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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