English

Pseudoelastic deformation in Mo-based refractory multi-principal element alloys

Materials Science 2022-04-15 v1

Abstract

Phase diagrams supported by density functional theory methods can be crucial for designing high-entropy alloys that are subset of multi-principal-element alloys. We present phase and property analysis of quinary (MoW)x_{x}Zry_{y}(TaTi)1xy_{1-x-y} refractory high-entropy alloys from combined Calculation of Phase Diagram (CALPHAD) and density-functional theory results, supplemented by molecular dynamics simulations. Both CALPHAD and density-functional theory analysis of phase stability indicates a Mo-W-rich region of this quinary has a stable single-phase body-centered-cubic structure. We report first quinary composition from Mo-W-Ta-Ti-Zr family of alloy with pseudo-elastic behavior, i.e., hysteresis in stress-strain. Our analysis shows that only Mo-W-rich compositions of Mo-W-Ta-Ti-Zr, i.e., Mo++W\ge 85 at.%, show reproducible hysteresis in stress-strain responsible for pseudo-elastic behavior. The (MoW)85_{85}Zr7.5_{7.5}(TaTi)7.5_{7.5} was down-selected based on temperature-dependent phase diagram analysis and molecular dynamics simulations predicted elastic behavior that reveals twinning assisted pseudoelastic behavior. While mostly unexplored in body-centered-cubic crystals, twinning is a fundamental deformation mechanism that competes against dislocation slip in crystalline solids. This alloy shows identical cyclic deformation characteristics during uniaxial <\lt100>\gt loading, i.e., the pseudoelasticity is isotropic in loading direction. Additionally, a temperature increase from 77 to 1500 K enhances the elastic strain recovery in load-unload cycles, offering possibly control to tune the pseudoelastic behavior.

Keywords

Cite

@article{arxiv.2109.02641,
  title  = {Pseudoelastic deformation in Mo-based refractory multi-principal element alloys},
  author = {Aayush Sharma and Prashant Singh and Tanner Kirk and Velary I. Levitas and Peter K. Liaw and Ganesh Balasubramanian and Raymundo Arroyave and Duane D Johnson},
  journal= {arXiv preprint arXiv:2109.02641},
  year   = {2022}
}

Comments

29 pages, 13 Figures (9 main figures, 4 supplement figures)

R2 v1 2026-06-24T05:43:49.254Z