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research article

Measurement and prediction of the transformation strain that controls ductility and toughness in advanced steels

Maresca, Francesco  
•
Polatidis, Efthymios
•
Smid, Miroslav
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November 1, 2020
Acta Materialia

New-generation multi-phase martensitic steels derive their high strength from the body-centered cubic (BCC) phase and high toughness from transformation of the metastable face-centered cubic (FCC) austenite that transforms into martensite upon loading. In spite of its critical importance, the in-situ transformation strain (or "shape deformation" tensor), which controls ductility and toughness, has never been measured in any alloy where the BCC lath martensite forms and has never been connected to underlying material properties. Here, we measure the in-situ transformation strain in a classic Fe-Ni-Mn alloy using high-resolution digital image correlation (HR-DIC). The experimentally obtained results can only be interpreted using a recent theory of lath martensite crystallography. The predicted in-situ transformation strain agrees with the measurements, simultaneously demonstrating the method and validating the theory. Theory then predicts that increasing the FCC to BCC lattice parameter ratio substantially increases the in-situ transformation strain magnitude. This new correlation is demonstrated using data on existing steels. These results thus establish a new additional basic design principle for ductile and tough alloys: control of the lattice parameter ratio by alloying. This provides a new path for development of even tougher advanced high-strength steels. (C) 2020 Acta Materialia Inc. Published by Elsevier Ltd.

  • Details
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Type
research article
DOI
10.1016/j.actamat.2020.08.028
Web of Science ID

WOS:000580631600022

Author(s)
Maresca, Francesco  
Polatidis, Efthymios
Smid, Miroslav
Van Swygenhoven, Helena  
Curtin, William A.  
Date Issued

2020-11-01

Publisher

PERGAMON-ELSEVIER SCIENCE LTD

Published in
Acta Materialia
Volume

200

Start page

246

End page

255

Subjects

Materials Science, Multidisciplinary

•

Metallurgy & Metallurgical Engineering

•

Materials Science

•

lath martensite

•

retained austenite

•

mechanical stability

•

phase-transformation

•

scanner poldi

•

low-carbon

•

fe-c

•

crystallography

•

morphology

•

microstructure

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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Available on Infoscience
December 2, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/173770
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