材料科学
合金
极限抗拉强度
应变硬化指数
无扩散变换
延展性(地球科学)
硬化(计算)
可塑性
冶金
复合材料
沉淀硬化
大气温度范围
变形(气象学)
热力学
马氏体
蠕动
微观结构
物理
图层(电子)
作者
Jongun Moon,E. D. Tabachnikova,С. Э. Шумилин,Tetiana Hryhorova,Yuri Estrin,Jamieson Brechtl,Peter K. Liaw,Wenqing Wang,Karin A. Dahmen,Alireza Zargaran,Jae Wung Bae,Hyeon-Seok Do,Byeong‐Joo Lee,Hyoung Seop Kim
标识
DOI:10.1016/j.mattod.2021.08.001
摘要
Abstract We report the mechanical and microstructural characteristics of a medium-entropy alloy, Co17.5Cr12.5Fe55Ni10Mo5 (atomic percent, at%) at cryogenic temperatures, down to a record low temperature of 0.5 K. The alloy exhibits excellent strength and ductility combined with a high strain-hardening rate in the entire temperature range investigated. Its property profile, including the yield strength, ultimate tensile strength, strain hardening capability, and absorbed mechanical energy, is better than those of most alloys and HEAs used in cryogenics. Within the interval of extremely low temperatures considered (0.5–4.2 K), the alloy exhibits several unusual features, including anomalies of the temperature dependence of the yield strength and tensile ductility, discontinuous plastic deformation (DPF), and a change in the propensity for the deformation-induced martensitic transformation. While the occurrence of these effects in the same temperature interval may be fortuitous, we hypothesize that they are interrelated and provide a tentative explanation of the observed phenomena on this basis.
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