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Quantitative kinetic rules for plastic strain-induced α - ω phase transformation in Zr under high pressure

ORAL

Abstract

The systematic studies of various phenomena (strain-induced phase transformations (PTs), microstructure evolution, strength, and friction) in diamond-anvil cells are limited due to the unknown stress σ and plastic strain Ep tensor fields and PT kinetic equations. However, they could not be measured. We propose a deformational and kinetic model, a finite element method (FEM) approach, and combined FEM-experimental approaches to determine the spatial distributions of σ and Ep tensors in strongly plastically predeformed Zr, and kinetic equation for α-ω PT that are consistent with experimental data for the entire sample. Since the fields within the sample are highly heterogeneous, obtained data encompasses numerous complex 7D paths in the space defined by 3 components of Ep and 4 components of σ. Our advanced characterization shows that the governing kinetic equation depends on accumulated plastic strain (rather than time) and pressure, while remaining independent of Ep and deviatoric stress tensors. The experiments & FEM correspond well for all fields, including radial & azimuthal elastic strains averaged over the sample thickness, as well as the sample’s thickness profile. Our findings open new opportunities for advancing quantitative high-pressure/stress science, including mechanochemistry, synthesis of new nanostructured materials, geophysics, astrogeology, and tribology.

Publication: 1. Levitas, V. I., Dhar, A. & Pandey, K. K. Tensorial stress-plastic strain fields in α- ω Zr mixture, transformation kinetics, and friction in diamond anvil cell. Nature Communication 14, 5955 (2023).<br>2. Dhar, A., Levitas, V. I., Pandey, K. K., Park, C., Somayazulu, M., & Velisavljevic, N. Quantitative kinetic rules for plastic strain-induced α-ω phase transformation in Zr under high pressure. npj Computational Materials 10(1), 290 (2024).<br>3. Lin, F., Levitas, V. I., Pandey, K. K., Yesudhas, S., & Park, C. In-situ study of rules of nanostructure evolution, severe plastic deformations, and friction under high pressure. Materials Research Letters 11(9), 757-763 (2023).

Presenters

  • Achyut Dhar

    Iowa State University

Authors

  • Achyut Dhar

    Iowa State University

  • Valery I. Levitas

    Iowa State University

  • Krishan K Pandey

    High Pressure & Synchrotron Radiation Physics Division, Bhabha Atomic Research Centre, Mumbai 400085, India, Bhabha Atomic Research Center

  • Changyong Parks

    HPCAT, X-ray Science Division, Argonne National Laboratory, Argonne, Illinois 60439, USA, Argonne National Laboratory, HPCAT, X-ray Science Division, Argonne National Laboratory

  • Maddury S Somayazulu

    Argonne National Laboratory, HPCAT, X-ray Science Division, Argonne National Laboratory

  • Nenad Velisavljevic

    Lawrence Livermore National Laboratory