The effect of nano-sized κ-carbides on the mechanical properties of an Fe-Mn-Al-C alloy

Journal Article (2023)
Author(s)

Alexandros Banis (Universiteit Gent)

Andrea Gomez (IMDEA Materials Institute)

Aniruddha Dutta (ArcelorMittal)

I Sabirov (IMDEA Materials Institute)

R.H. Petrov (Universiteit Gent, TU Delft - Team Maria Santofimia Navarro)

Research Group
Team Maria Santofimia Navarro
Copyright
© 2023 Alexandros Banis, Andrea Gomez, Aniruddha Dutta, Ilchat Sabirov, R.H. Petrov
DOI related publication
https://doi.org/10.1016/j.matchar.2023.113364
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Publication Year
2023
Language
English
Copyright
© 2023 Alexandros Banis, Andrea Gomez, Aniruddha Dutta, Ilchat Sabirov, R.H. Petrov
Research Group
Team Maria Santofimia Navarro
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository 'You share, we take care!' - Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.@en
Volume number
205
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Abstract

The strengthening via precipitation of nano-sized κ-carbides leads to exceptional strength-ductility balance in low-density steels. During aging, such nanocarbides form through spinodal decomposition by fluctuations in the aluminum and carbon content in the austenite, followed by short-range ordering. At lower aging temperatures and short aging times, the κ-carbides are very fine, coherent with the matrix, and homogeneously distributed. When the aging temperature increases, heterogeneous nucleation initiates on the grain boundaries, and the κ-carbides become coarse and lose coherency with the austenite matrix, leading to the deterioration of the mechanical properties. This work studies a fully austenitic hot rolled Fe-29Mn-8.7Al-0.9C alloy after different aging treatments. Two aging treatments were selected for a detailed study of the microstructure based on the exceptional strength-ductility balance demonstrated by these conditions. The samples aged at 550 °C for 8 h exhibited an ultimate tensile strength of 1141 MPa and strain at failure around 49%. The second aging treatment selected was aging at 600 °C for 1 h, and these samples exhibited an ultimate tensile strength of 1084 MPa, with strain at failure 62%. The size and morphology of the austenite grains and the annealing twins were studied through EBSD. Additionally, the size, morphology, and volume fraction of the nano-sized κ-carbides were studied using TEM. Both aging conditions led to microstructures consisting of a matrix formed by equiaxed austenite grains with homogeneously distributed intragranular κ-carbides. The κ-carbides were coherent with the matrix and showed globular morphology with a diameter between 3 and 6 nm and coherent with the austenite matrix. The interaction between gliding dislocations and κ-carbides was analyzed. It was shown that the mechanical behavior of the studied material is characterized by very high sensitivity to the size of κ-carbides and, therefore, can be tailored by appropriate aging treatment.

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