English

Ab initio modeling of TWIP and TRIP effects in $\beta$-Ti alloys

Materials Science 2025-08-12 v2

Abstract

Transformations in bcc-β\beta, hcp-α\alpha, and the ω\omega phases of Ti alloys are studied using Density Functional Theory for pure Ti and Ti alloyed with Al, Si, V, Cr, Fe, Cu, Nb, Mo, and Sn. The β\beta-stabilization caused by alloying Si, Fe, Cr, and Mo was observed, but the most stable phase appears between the β\beta and the α\alpha phases, corresponding to the martensitic α\alpha'' phase. Next, the {112}111ˉ\{112\}\langle11\bar1\rangle bcc twins are separated by a positive barrier, which further increases by alloying w.r.t. pure Ti. The {332}113ˉ\{332\}\langle11\bar3\rangle twinning yields negative barriers for all species but Mo and Fe. This is because the transition state is structurally similar to the α\alpha phase, which is preferred over the β\beta phase for the majority of alloying elements. Lastly, the impact of alloying on twin boundary energies is discussed. These results may serve as design guidelines for novel Ti-based alloys with specific application areas.

Keywords

Cite

@article{arxiv.2504.18378,
  title  = {Ab initio modeling of TWIP and TRIP effects in $\beta$-Ti alloys},
  author = {David Holec and Johann Grillitsch and Jose L. Neves and David Obersteiner and Thomas Klein},
  journal= {arXiv preprint arXiv:2504.18378},
  year   = {2025}
}

Comments

26 pages, 8 figures. J. Mater. Res. (2025)