Accelerated emergence of CoNi-based medium-entropy alloys with emphasis on their mechanical properties

材料科学 层错能 合金 组态熵 韧性 高熵合金 高温合金 三元运算 热力学 冶金 微观结构 计算机科学 物理 程序设计语言
作者
Raymond Kwesi Nutor,Q.P. Cao,Xiaodong Wang,Shaoqing Ding,Dongxian Zhang,J.Z. Jiang
出处
期刊:Current Opinion in Solid State & Materials Science [Elsevier BV]
卷期号:26 (6): 101032-101032 被引量:25
标识
DOI:10.1016/j.cossms.2022.101032
摘要

• Summary of the mechanical properties of CoNi-based medium entropy alloys (MEAs) grouped into the CoNiFe, CoNiCr, and CoNiV MEAs are provided. • The influence of short-range ordering characteristics on these CoNi-based MEAs and the potential practical applications from the high-entropy superalloy design perspective are also discussed. The concept of alloying has evolved over the centuries and in the past decade and a half, the emergence of the high entropy alloying concept has completely changed our perception of alloy design. This alloying strategy has been found to exhibit exciting properties such as high strength, excellent corrosion resistance, high cryogenic fracture toughness, thermal stability, and irradiation resistance. While the fcc-structured equiatomic CrMnFeCoNi has been very popular over the years, the discovery of the superior properties by a ternary CoNiCr alloy, kick-started a new era for medium-entropy alloy-focused research in the last 5–10 years due to the realization that “medium is better”. Here we review the recent progress made in the development of medium entropy alloys from a binary CoNi building block (CoNi-M, where M is Fe, Cr, or V), which are prototype systems of medium-entropy alloys. We discuss the relationship between their microstructure and properties (mainly mechanical ones), and how the stacking fault energy, and/or short-range order (SRO) determines the corresponding deformation mechanism. The influence of minor-alloying on their crystal structure and variations in deformation modes are critically discussed. Lastly, some insights and challenges are outlined.

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