Peculiarity of hydrogen absorption in duplex steels: Phase-selective lattice swelling and stress evolution
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Authors
Organisational units
External Organisational units
- Materials Center Leoben Forschungs GmbH
- Institute of Physics of Materials ASCR
- Erich Schmid Institute of Materials Science
Abstract
Electrochemical hydrogen absorption in duplex steels is not fully understood. In this work, an in-situ synchrotron cross-sectional X-ray micro-diffraction analysis is performed on steel with comparable phase fractions of ferrite and austenite, coupled with electrolytic hydrogen charging. The results reveal that charging with a constant current density of 10 mA/cm² for 5 h leads to expanding the austenitic lattice to a depth of approximately 250 µm, up to ≥0.15 %. In contrast, the lattice parameter of the ferrite phase remains unchanged during this process. As the austenite expansion progresses, it generates different amounts of equivalent in-plane compressive stresses, which amount to approximately -150 and -450 MPa in the austenite and ferrite phases at the sample surface, respectively. Using a finite element model of grain interaction, this difference is qualitatively interpreted by mutual mechanical constraints between ferrite and austenite, as well as between the hydrogen-charged surface layer and the underlying material.
Details
Original language | English |
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Article number | 116142 |
Number of pages | 7 |
Journal | Scripta Materialia |
Volume | 248.2024 |
Issue number | 15 July |
DOIs | |
Publication status | E-pub ahead of print - 27 Apr 2024 |