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Fizika Tverdogo Tela, 2020 Volume 62, Issue 1, Pages 131–141 (Mi ftt8534)

This article is cited in 1 paper

Mechanical properties, strength physics and plasticity

Simulation of uniaxial deformation of magnesium nanocrystals of “rigid” and “soft” orientations

A. M. Vlasovaab

a Institute of Metal Physics, Ural Division of the Russian Academy of Sciences, Ekaterinburg
b Ural Federal University named after the First President of Russia B. N. Yeltsin, Ekaterinburg

Abstract: Atomistic simulation of high-rate deformation ($v$ = 3 $\cdot$ 10$^{8}$ s$^{-1}$) by compressing perfect and defect (5% of vacancies and 5% of hydrogen impurity atoms) magnesium nanocrystals of “rigid” [0001] and “soft” [1$\bar1$01] orientations is performed at $T$ = 300–375 K using three different interatomic interaction potentials. The free surface microrelief evolution of magnesium nanocrystals during plastic flow is shown. Stress $\sigma$–strain $\varepsilon$ diagrams are constructed. The strain dependences of the scalar dislocation density are determined; the dependences of the strain rate $\dot{\varepsilon}$ on the strain measure $\varepsilon$ are constructed. The potential energy variation during deformation is considered. The formation of barriers causing the anomalous behavior of the strain rate is discussed. The effect of vacancies and hydrogen atoms on the shape of stress–strain curves, dislocation structure, and scalar dislocation density is shown. Conclusions about the effect of the type of the interatomic interaction potential on calculated characteristics are made.

Keywords: magnesium, nanocrystal, dislocation, deformation curves, strain rate, molecular dynamics.

Received: 16.07.2019
Revised: 16.07.2019
Accepted: 24.07.2019

DOI: 10.21883/FTT.2020.01.48750.554


 English version:
Physics of the Solid State, 2020, 62:1, 174–184

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© Steklov Math. Inst. of RAS, 2024