材料科学
极限抗拉强度
合金
沉淀硬化
材料的强化机理
延展性(地球科学)
加工硬化
降水
叠加断层
高熵合金
复合材料
固溶强化
冶金
位错
微观结构
蠕动
气象学
物理
作者
Jiaxin Zhang,Shengguo Ma,Xiaoxiao Liu,Junwei Qiao,J. Wang,Dan Zhao,Zhiming Jiao,Tuanwei Zhang,Bin Xu,Zhihua Wang
标识
DOI:10.1016/j.jmrt.2024.07.104
摘要
A Co-free non-equiatomic Ni2·5CrFeAl0·25Ti0.25 medium-entropy alloy (MEA) with an excellent strength-ductility synergy was fabricated, which shows a multiphase structure composed of face-centered cubic (FCC), L12 (ordered FCC), and Cr-rich body-centered cubic (BCC) phase by thermomechanical processing. Specifically, the aged sample displays the outstanding yield tensile strength (YTS, ∼1188 MPa), ultimate tensile strength (UTS, ∼1560 MPa) and work-hardening rate (WHR, ∼4.5 GPa) values as well as an acceptable plasticity of ∼16.6%. Theoretical calculations suggest that precipitation strengthening significantly contributes to achieving the fascinating tensile strength among various strengthening contributors. Further analyses reveal that multiple nanoscale stacking-fault (SF) networks are activated during plastic deformation in the aged alloy. Accordingly, the dual effects consisting of the hierarchical precipitation structure and SF networks lead to the combination of excellent tensile strength and strain-hardening capacity.
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