TY - JOUR
T1 - Dual-phase (η + L12) precipitation strengthening contributes to a good strength-ductility synergy in a novel (Co2Ni2Cr)92Ti4Mo4 medium-entropy alloy with a heterogeneous microstructure
AU - Wang, Lei
AU - Zhao, Binfeng
AU - Liu, Sihan
AU - Su, Haijun
AU - Zhang, Yunpeng
AU - Shen, Jun
AU - Zhang, Guojun
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/10
Y1 - 2025/10
N2 - In this study, combining with JMatPro calculation results, Ti (4.0 at%) and Mo (4.0 at%) elements are added to Co2Ni2Cr medium-entropy alloy (MEA). Through appropriate thermomechanical processing (80 % cold rolling followed by annealing at 700 °C for 12 h (designated as CA700-12)), a partially recrystallized microstructure was achieved, along with the formation of dual precipitate phases: lamellar η and near-spherical L12 at the macro and micro levels, respectively. The recrystallization (achieving a volume fraction of ∼87.5 %) preferentially occurs within shear bands, resulting in the formation of a heterogeneous microstructure. XRD, TEM, and EDS analyses confirm the coexistence of dual precipitate phases (η and L12) with volume fractions of ∼25.3 % and ∼8.3 %, respectively. The (Co2Ni2Cr)92Ti4Mo4 MEA (CA700-12) exhibits a good strength-ductility balance, with a yield strength of ∼1200 MPa, an ultimate tensile strength of ∼1525 MPa, and a ductility of ∼12.5 %. The strengthening mechanisms are discussed from two distinct perspectives. Firstly, from a heterogeneous structural perspective, the hetero-deformation induced (HDI) stress plays a significant role in material strengthening. Secondly, from a perspective of traditional strengthening mechanism, the dual phase (η and L12) precipitation strengthening makes the most important contributions (∼60 %) to the overall strength of the alloy. The primary deformation characteristics are the dislocation slip and the formation of microbands, stacking faults (SFs) and Lomer-Cottrell (L-C) locks. Therefore, it provides a good example for the development of materials with excellent mechanical properties by rationally regulating the macroscopic and microscopic structures of alloys.
AB - In this study, combining with JMatPro calculation results, Ti (4.0 at%) and Mo (4.0 at%) elements are added to Co2Ni2Cr medium-entropy alloy (MEA). Through appropriate thermomechanical processing (80 % cold rolling followed by annealing at 700 °C for 12 h (designated as CA700-12)), a partially recrystallized microstructure was achieved, along with the formation of dual precipitate phases: lamellar η and near-spherical L12 at the macro and micro levels, respectively. The recrystallization (achieving a volume fraction of ∼87.5 %) preferentially occurs within shear bands, resulting in the formation of a heterogeneous microstructure. XRD, TEM, and EDS analyses confirm the coexistence of dual precipitate phases (η and L12) with volume fractions of ∼25.3 % and ∼8.3 %, respectively. The (Co2Ni2Cr)92Ti4Mo4 MEA (CA700-12) exhibits a good strength-ductility balance, with a yield strength of ∼1200 MPa, an ultimate tensile strength of ∼1525 MPa, and a ductility of ∼12.5 %. The strengthening mechanisms are discussed from two distinct perspectives. Firstly, from a heterogeneous structural perspective, the hetero-deformation induced (HDI) stress plays a significant role in material strengthening. Secondly, from a perspective of traditional strengthening mechanism, the dual phase (η and L12) precipitation strengthening makes the most important contributions (∼60 %) to the overall strength of the alloy. The primary deformation characteristics are the dislocation slip and the formation of microbands, stacking faults (SFs) and Lomer-Cottrell (L-C) locks. Therefore, it provides a good example for the development of materials with excellent mechanical properties by rationally regulating the macroscopic and microscopic structures of alloys.
KW - Dual precipitate phase (η and L1)
KW - Heterogeneous structure
KW - Mechanical properties
KW - Medium-entropy alloy
KW - Precipitation strengthening
UR - https://www.scopus.com/pages/publications/105011182454
U2 - 10.1016/j.msea.2025.148848
DO - 10.1016/j.msea.2025.148848
M3 - 文章
AN - SCOPUS:105011182454
SN - 0921-5093
VL - 943
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 148848
ER -