English

Quantitative kinetic rules for plastic strain-induced $\alpha$-$\omega$ phase transformation in Zr under high pressure

Materials Science 2024-05-24 v1

Abstract

Plastic strain-induced phase transformations (PTs) and chemical reactions under high pressure are broadly spread in modern technologies, friction and wear, geophysics, and astrogeology. However, because of very heterogeneous fields of plastic strain Ep\mathbf{E}^{p} and stress σ\mathbf{\sigma} tensors and volume fraction cc of phases in a sample compressed in a diamond anvil cell (DAC) and impossibility of measurements of σ\mathbf{\sigma} and Ep\mathbf{E}^{p}, there are no strict kinetic equations for them. Here, we develop combined experimental-computational approaches to determine all fields in strongly plastically predeformed Zr and kinetic equation for α\alpha-ω\omega PT consistent with experimental data for the entire sample. Kinetic equation depends on accumulated plastic strain (instead of time) and pressure and is independent of plastic strain and deviatoric stress tensors, i.e., it can be applied for various above processes. Our results initiate kinetic studies of strain-induced PTs and provide efforts toward more comprehensive understanding of material behavior in extreme conditions.

Keywords

Cite

@article{arxiv.2405.14807,
  title  = {Quantitative kinetic rules for plastic strain-induced $\alpha$-$\omega$ phase transformation in Zr under high pressure},
  author = {Achyut Dhar and Valery I. Levitas and K. K. Pandey and Changyong Park and Maddury Somayazulu and Nenad Velisavljevic},
  journal= {arXiv preprint arXiv:2405.14807},
  year   = {2024}
}

Comments

28 pages, 11 figures