TY - JOUR
T1 - Microstructure and mechanical properties of CxHf0.25NbTaW0.5 refractory high-entropy alloys at room and high temperatures
AU - Wu, Shiyu
AU - Qiao, Dongxu
AU - Zhang, Haitao
AU - Miao, Junwei
AU - Zhao, Hongliang
AU - Wang, Jun
AU - Lu, Yiping
AU - Wang, Tongmin
AU - Li, Tingju
N1 - Publisher Copyright:
© 2021
PY - 2022/1/20
Y1 - 2022/1/20
N2 - The microstructure and mechanical properties of as-cast and isothermally annealed CxHf0.25NbTaW0.5 (x=0, 0.05, 0.15, 0.25) refractory high-entropy alloys (RHEAs) were studied. Both the as-cast and annealed RHEAs consisted of disordered body-centered cubic solid solution phase and metal carbide (MC) phase with a face-centered cubic crystal structure (Fm-3m space group). The primary carbides were enriched with Hf and C elements and tended to form lamellar eutectic-like microstructure in the interdendrites. The lamellar eutectic-like structure in the interdendrites would be formed from the decomposition of sub-carbide M2C under the influence of Hf element. After isothermal annealing, slatted carbides were precipitated on the matrix, and the distribution became more uniform with high C content. The formation of carbides strongly influenced the mechanical properties both at room and high temperatures. The yield strength values of C0.25Hf0.25NbTaW0.5 RHEA at 1473 and 1673 K were 792 and 749 MPa, respectively. The result had exceeded the high temperature mechanical properties of currently known RHEAs. Moreover, this RHEA exhibited high-temperature performance stability and excellent plasticity, exceeding 30 and 50% at room and elevated temperatures (above 1273 K), respectively. During thermal deformation, carbon-containing RHEAs obtained more severe work hardening than that of ACH0 RHEAs, and required greater dynamic recrystallization to achieve the dynamic equilibrium.
AB - The microstructure and mechanical properties of as-cast and isothermally annealed CxHf0.25NbTaW0.5 (x=0, 0.05, 0.15, 0.25) refractory high-entropy alloys (RHEAs) were studied. Both the as-cast and annealed RHEAs consisted of disordered body-centered cubic solid solution phase and metal carbide (MC) phase with a face-centered cubic crystal structure (Fm-3m space group). The primary carbides were enriched with Hf and C elements and tended to form lamellar eutectic-like microstructure in the interdendrites. The lamellar eutectic-like structure in the interdendrites would be formed from the decomposition of sub-carbide M2C under the influence of Hf element. After isothermal annealing, slatted carbides were precipitated on the matrix, and the distribution became more uniform with high C content. The formation of carbides strongly influenced the mechanical properties both at room and high temperatures. The yield strength values of C0.25Hf0.25NbTaW0.5 RHEA at 1473 and 1673 K were 792 and 749 MPa, respectively. The result had exceeded the high temperature mechanical properties of currently known RHEAs. Moreover, this RHEA exhibited high-temperature performance stability and excellent plasticity, exceeding 30 and 50% at room and elevated temperatures (above 1273 K), respectively. During thermal deformation, carbon-containing RHEAs obtained more severe work hardening than that of ACH0 RHEAs, and required greater dynamic recrystallization to achieve the dynamic equilibrium.
KW - Carbon content
KW - High temperature
KW - Mechanical properties
KW - Microstructure
KW - Refractory high entropy alloys
UR - http://www.scopus.com/inward/record.url?scp=85110153842&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2021.05.015
DO - 10.1016/j.jmst.2021.05.015
M3 - 文章
AN - SCOPUS:85110153842
SN - 1005-0302
VL - 97
SP - 229
EP - 238
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -