TY - JOUR
T1 - The evolution of compositional and microstructural heterogeneities in a TaMo0.5ZrTi1.5Al0.1Si0.2 high entropy alloy
AU - Guo, Yueling
AU - He, Junyang
AU - Lu, Wenjun
AU - Jia, Lina
AU - Li, Zhiming
N1 - Publisher Copyright:
© 2020 Elsevier Inc.
PY - 2021/2
Y1 - 2021/2
N2 - We report the chemical segregation and the phase decomposition as well as the microstructural response upon plastic deformation in a TaMo0.5ZrTi1.5Al0.1Si0.2 (at.%) refractory high entropy alloy (RHEA) by combining the thermodynamic calculation and the multiple experimental characterization techniques down to near-atomic scales. The alloy's compositional and microstructural heterogeneities under different processing conditions, including casting, annealing and room/high temperature compression, are emphasized. Results show that casting creates the original compositional heterogeneity with evident dendritic microstructures. The dendrite consists of a single body-centered-cubic (BCC) phase enriched with Ta and Mo. The interdendritic region is delineated by Zr, Ti, Al and Si, with the formation of rod-like BCC/silicide eutectics. After annealing at 1300 °C for 48 h, both dendritic and interdendritic BCC phases experience evident phase decomposition and elemental redistribution. This leads to the increase of compressive strength at room temperature to ~2050 MPa, which is ~300 MPa higher compared to that of the as-cast material.
AB - We report the chemical segregation and the phase decomposition as well as the microstructural response upon plastic deformation in a TaMo0.5ZrTi1.5Al0.1Si0.2 (at.%) refractory high entropy alloy (RHEA) by combining the thermodynamic calculation and the multiple experimental characterization techniques down to near-atomic scales. The alloy's compositional and microstructural heterogeneities under different processing conditions, including casting, annealing and room/high temperature compression, are emphasized. Results show that casting creates the original compositional heterogeneity with evident dendritic microstructures. The dendrite consists of a single body-centered-cubic (BCC) phase enriched with Ta and Mo. The interdendritic region is delineated by Zr, Ti, Al and Si, with the formation of rod-like BCC/silicide eutectics. After annealing at 1300 °C for 48 h, both dendritic and interdendritic BCC phases experience evident phase decomposition and elemental redistribution. This leads to the increase of compressive strength at room temperature to ~2050 MPa, which is ~300 MPa higher compared to that of the as-cast material.
KW - Dynamic recrystallization
KW - Mechanical property
KW - Microstructural heterogeneity
KW - Phase decomposition
KW - Refractory high entropy alloy
UR - http://www.scopus.com/inward/record.url?scp=85098454018&partnerID=8YFLogxK
U2 - 10.1016/j.matchar.2020.110836
DO - 10.1016/j.matchar.2020.110836
M3 - Article
AN - SCOPUS:85098454018
SN - 1044-5803
VL - 172
JO - Materials Characterization
JF - Materials Characterization
M1 - 110836
ER -