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research article

Evolution of deformation twinning mechanisms in magnesium from low to high strain rates

della Ventura, Nicolo M.
•
Sharma, Amit
•
Kalacska, Szilvia
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May 1, 2022
Materials & Design

We present a systematic investigation of {10 (1) over bar2} extension twinning mechanism in single crystal magnesium micropillars deformed over seven orders of magnitude of strain rate, from 10(-4) to 500 s(-1), revealing how the accommodation of newly formed twins evolves with and depends on the kinetic compatibility of interfacial processes when high deformation rates are imposed. By combination of post-mortem 3D Electron Backscattered Diffraction, Transmission Kikuchi Diffraction and Transmission Electron Microscopy techniques, this work unveils the progressive evolution of the accommodating twin mechanisms from low to high strain rate, correlating differences in mechanical behavior with differences in twin crystallography. Away from quasi-static conditions, simple considerations of twinning shear do not suffice to describe unconventional twin morphologies, requiring the competition between newly activated dislocations and lattice distortions for allowing the evolution of the twin boundary along non-invariant twin planes. Under shock compressions, the basal/prismatic transformation establishing a lattice misorientation of 90 degrees entirely governs the parent -> twin conversion. The results illustrated here confirm that some of the recent interpretations deduced by particular twin morphologies are not universally valid and that deformation twinning is not only stress-but also strongly time-controlled. (C) 2022 The Author(s). Published by Elsevier Ltd.

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Type
research article
DOI
10.1016/j.matdes.2022.110646
Web of Science ID

WOS:000793622700003

Author(s)
della Ventura, Nicolo M.
Sharma, Amit
Kalacska, Szilvia
Jain, Manish
Edwards, Thomas E. J.
Cayron, Cyril  
Loge, Roland  
Michler, Johann
Maeder, Xavier
Date Issued

2022-05-01

Publisher

ELSEVIER SCI LTD

Published in
Materials & Design
Volume

217

Article Number

110646

Subjects

Materials Science, Multidisciplinary

•

Materials Science

•

magnesium

•

deformation twinning

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twin interface

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high strain rate

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micropillar compression

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rate sensitivity

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slip

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dislocations

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alloy

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twins

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disconnections

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boundaries

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fracture

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metals

•

growth

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMTM  
Available on Infoscience
June 20, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/188560
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