TY - JOUR
T1 - Concurrently enhancing precipitation strengthening of FCC and B2 phases in dual-phase high-entropy alloys via Ti and Ta microalloying
AU - Liu, Linxiang
AU - Wu, Qingfeng
AU - Zhu, Jiaxi
AU - Jia, Yuhao
AU - He, Feng
AU - Wang, Lei
AU - Wang, Jincheng
AU - Li, Junjie
AU - Wang, Zhijun
N1 - Publisher Copyright:
© 2025
PY - 2026/4/10
Y1 - 2026/4/10
N2 - Designing precipitation-strengthened FCC/B2 dual-phase high-entropy alloys promotes the development of structural materials with high mechanical performance and lower density. In the present work, Ti and Ta were utilized as alloying elements in a Ni43.9Co19Cr10Fe10Al15Mo2B0.1 alloy to concurrently enhance the precipitation strengthening in both the FCC and B2 phases. In the FCC phase, the alloying elements increased the volume fraction of L12 precipitates and anti-phase boundary energy, thereby enhancing the precipitation-strengthening effect. In the B2 phase, the alloying elements promoted the formation of FCC-structured precipitates with refined inter-precipitate spacing and thus improved the Orowan strengthening contribution. With the harder B2 phase, the more significant hetero-deformation-induced hardening enhanced the alloy strain hardenability. Although ductility decreased, the continuous stacking fault glides and phase transformations in the FCC-structured precipitates contributed to the strength-ductility synergy by preventing intragranular cracking and mitigating crack propagation in the B2 phase. These findings provide valuable insights for the future design and development of precipitation-strengthened FCC/B2 dual-phase high-entropy alloys.
AB - Designing precipitation-strengthened FCC/B2 dual-phase high-entropy alloys promotes the development of structural materials with high mechanical performance and lower density. In the present work, Ti and Ta were utilized as alloying elements in a Ni43.9Co19Cr10Fe10Al15Mo2B0.1 alloy to concurrently enhance the precipitation strengthening in both the FCC and B2 phases. In the FCC phase, the alloying elements increased the volume fraction of L12 precipitates and anti-phase boundary energy, thereby enhancing the precipitation-strengthening effect. In the B2 phase, the alloying elements promoted the formation of FCC-structured precipitates with refined inter-precipitate spacing and thus improved the Orowan strengthening contribution. With the harder B2 phase, the more significant hetero-deformation-induced hardening enhanced the alloy strain hardenability. Although ductility decreased, the continuous stacking fault glides and phase transformations in the FCC-structured precipitates contributed to the strength-ductility synergy by preventing intragranular cracking and mitigating crack propagation in the B2 phase. These findings provide valuable insights for the future design and development of precipitation-strengthened FCC/B2 dual-phase high-entropy alloys.
KW - Deformation mechanisms
KW - Dual-phase high-entropy alloy
KW - Microalloying
KW - Precipitation hardening
KW - Strength-ductility synergy
UR - https://www.scopus.com/pages/publications/105012261445
U2 - 10.1016/j.jmst.2025.06.031
DO - 10.1016/j.jmst.2025.06.031
M3 - 文章
AN - SCOPUS:105012261445
SN - 1005-0302
VL - 250
SP - 243
EP - 256
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -