High-Resolution Characterization of Deformation Induced Martensite in Large Areas of Fatigued Austenitic Stainless Steel Using Deep Learning

Author:

Mikmeková Šárka1ORCID,Man Jiří2ORCID,Ambrož Ondřej1,Jozefovič Patrik1,Čermák Jan1,Järvenpää Antti3ORCID,Jaskari Matias3ORCID,Materna Jiří4,Kruml Tomáš2

Affiliation:

1. Institute of Scientific Instruments, Czech Academy of Sciences, Královopolská 147, 612 00 Brno, Czech Republic

2. Institute of Physics of Materials, Czech Academy of Sciences, Žižkova 22, 616 62 Brno, Czech Republic

3. Kerttu Saalasti Institute, University of Oulu, 85500 Nivala, Finland

4. Machine Learning College, Chrlická 787/56, 620 00 Brno, Czech Republic

Abstract

This paper aims to demonstrate a novel technique enabling the accurate visualization and fast mapping of deformation-induced α′-martensite produced during cyclic straining of a metastable austenitic stainless steel, refined by reversion annealing to different grain sizes. The technique is based on energy and angular separation of the signal electrons in a scanning electron microscope (SEM). Collection of the inelastic backscattered electrons emitted under high take-off angles from a sample surface results in the acquisition of micrographs with high sensitivity to structural defects, such as dislocations, grain boundaries, and other imperfections. The areas with a high density of lattice imperfections reduce the penetration depth of the primary electrons, and simultaneously affect the signal electrons leaving the specimen. This results in an increase in the inelastic backscattered electrons yielded from the vicinity of α′-martensite, and a bright halo surrounds this phase. The α′-martensite phase can thus be separated from the austenitic matrix in SEM micrographs. In this work, we propose a deep learning method for a precise α′-martensite mapping within a large area. Various deep learning-based methods have been tested, and the best result measured by both Dice loss and IoU scores has been achieved using the U-Net architecture extended by the ResNet encoder.

Funder

Czech Academy of Sciences

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

Reference61 articles.

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3. McGuire, M.F. (2008). Stainless Steels for Design Engineers, ASM International.

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5. Biermann, H., and Aneziris, C.G. (2020). Austenitic TRIP/TWIP Steels and Steel-Zirconia Composites, Springer Nature.

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