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Enhanced strength-ductility synergy in medium entropy alloy via phase selective precipitation

delete2025-01-01
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PRE
AI
W
Weijin Cai
Q
Qiang Long
L
Lu, Shenghan
Z
Zhao, Shiteng
X
Xia, Wenzhen
B
Baker, Ian
甘科夫 (Kefu Gan)
王章维 (Wang, Zhangwei) *
DOI:10.1016/j.ijplas.2024.104204delete
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Abstract

Abstract

En 中文
Precipitation strengthening is paramount in the development of high-performance medium/high entropy alloys (M/HEAs). In this work, we showcase a phase-selective precipitation design applied to a (Ni67.2V32.8)(90)Ti5Al5 MEA to enable enhanced strength-ductility synergy. Upon annealing at 950 degrees C, multiple precipitates form in this MEA, including L2(1), sigma and hexagonal close packed (HCP) phases. However, an increase of 50 degrees C in annealing temperature removes most of the aforementioned precipitates except for the L2(1) phase. Density functional theory calculations are conducted to elucidate the formation mechanisms of phase-selective precipitation. Such selective approach to precipitation induces a brittle to ductile transition, increasing tensile elongation from 4 % to 43 % in our MEAs. Remarkably, the ultimate tensile strength of 1000 degrees C annealing MEA is maintained at similar to 1.4 GPa, surpassing that of the precipitation-free Ni67.2V32.8 base alloy (similar to 1.1 GPa), but with a comparable tensile elongation. Analytical models suggest that the increase in strength is attributed to both precipitation strengthening and grain refinement strengthening due to the pinning effect of precipitates. In particular, we investigate the complex deformation response of the L2(1) phase, which includes the formation of slip steps and a phase transformation from body-centered cubic (BCC) to body-centered tetragonal (BCT) structures, with the underlying mechanisms revealed through experimental characterization and molecular dynamics simulations. This co-deformation of matrix and L2(1) precipitates alleviates stress concentration at phase boundaries during straining and further maintains the microband-induced plasticity in the matrix till later deformation stage. All these result in the excellent strain hardening and thus, markedly enhancing ductility. Our findings pave new ways to craft strong and ductile M/HEAs by selecting hard-yet-deformable intermetallic precipitates.
Keywords:
Medium-entropy alloys
Microstructure
Mechanical properties
Precipitation strengthening
Strain hardening

Journal

International Journal of Plasticity cover
International Journal of Plasticity
IF:
12.8
Papers:
4.0K
Citations:
2.5W

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