Synergistic effects of solute and pressure on phase transformation in titanium alloys: A first-principles study
Abstract
The phase stability and transformation between hexagonal close-packed (hcp) α-phase and body-centered cubic (bcc) β-phase in titanium (Ti) alloys are critical to their mechanical properties and manufacturing processes for a wide range of engineering applications. However, many factors, both intrinsic and extrinsic (e.g., solute elements and external pressures, respectively), may govern their phase transformations dynamically, which is crucial to the design of new Ti alloys with desired properties. In this work, we study the effects of various solute elements and external hydrostatic pressures on the solid-state phase transformations in Ti alloys using density functional theory and nudged elastic band calculations. The results show that both alloying and applied pressure reduce transformation barriers, with Al and Mo being most effective under ambient conditions, while Nb, V, Zr, and Sn show enhanced transformation kinetics under stress. Solute-induced modifications to the local electronic structure and bonding environment, particularly under pressure, contribute to variations in phase stability. We identify a synergistic interaction between solute effects and external stress, facilitating phase transitions that are unachievable under static conditions. These findings provide atomistic insights into the coupled chemical-mechanical mechanisms underlying phase transformations in Ti alloys with improved phase stability and mechanical performance.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Huicong Chen
Chenwei Shao
Zhuocheng Xie
Department of Materials Science and Engineering, University of Toronto 1 , 184 College Street, Toronto M5S 3E4,
Jun Song
Department of Mining ang Materials Engineering, McGill University
Yu Zou