APS Logo

DAC and dynamic RDAC with rough diamonds: new tools for discovering rules of severe plastic flow, strain-induced phase transformations, and microstructure evolution

ORAL

Abstract

To increase contact friction, we introduced rough diamond anvils (rough-DA) with increased asperities and implemented them for compression in diamond anvil cell (DAC) and torsion in dynamic rotational DAC (dRDAC). With rough-DA, we drastically intensify the plastic flow, microstructure evolution, and strain-induced phase transformations (PTs) and find various new phenomena. Maximum friction shear stress equal to the yield strength in shear is achieved. This allows determination of the pressure-dependence of the yield strength for ω-Zr and proves that ω-Zr behaves like perfectly plastic, isotropic, and strain path-independent immediately after PT. With traditional smooth anvils, friction stress is ~2 times smaller than the yield strength in shear, and significant contact sliding occurs. Multiple steady microstructures independent of pressure, plastic strain, and strain path are reached. Record minimum pressure for α-ω PT was identified. The kinetics of strain-induced PT depends not only on the plastic strain but also on time. Crystallite size and dislocation density in ω-Zr during PT depend solely on the volume fraction of ω-Zr. With rough-DA, the dislocation density in α-Zr is ~2 times larger, and the crystallite size and minimum pressure for α-ω PT are ~2 times smaller than with smooth anvils. Important results have been obtained on PTs olivine-spinel and multiple PTs in Si under compression and torsion in dRDAC.

Publication: 1. Lin F., Levitas V.I., Pandey K.K., Yesudhas S., Park C. Rough diamond anvils: Steady microstructure, yield surface, and transformation kinetics in Zr. August 16, 2022, 31 pp. https://doi.org/10.48550/arXiv.2208.08022.<br>2. Pandey K. K. and Levitas V. I. In situ quantitative study of plastic strain-induced phase <br>transformations under high pressure: Example for ultra-pure Zr. Acta Materialia, 2020, 196, 338-346.<br>3. Pandey K. K. and Levitas V. I. Displacement field measurements in traditional and rotational diamond anvil cells. Journal of Applied Physics, 2021, Vol. 129, No. 11, 115901.<br>4. Levitas V.I. High-Pressure Phase Transformations under Severe Plastic Deformation by Torsion in Rotational Anvils. Material Transactions, 2019, 60, 1294-1301, invited review.

Presenters

  • Valery I Levitas

    Iowa State University

Authors

  • Valery I Levitas

    Iowa State University

  • Feng I Lin

    Iowa State University

  • Sorb A Yesudhas

    Iowa State University

  • K.K. K Pandey

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

  • Changyong Parks

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