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Hydrogen decelerates fatigue induced grain boundary migration in nanostructured iron

Year of publication

2025

Authors

Kapp Marlene; Zawodzki Michael; Antoni Monika; Zwittnig Dino; Tkadletz Michael; Moshtaghi Masoud; Mori Gregor; Eckert Juergen; Renk Oliver

Abstract

The difficulty to reveal trapping sites of hydrogen in metals, how hydrogen interacts with lattice defects and potentially changes their behavior, still prevents a generalized understanding of hydrogen (H)-embrittlement. This is specifically the case for nanostructured materials, where direct characterization techniques would require an exceptional lateral and time resolution, given the small grain size and high diffusivity of H. The tendency of nanostructures for grain coarsening under mechanical or thermal loads, adds further complexity to this issue. Cyclic high pressure torsion uses this peculiarity and allows to conclude whether H is located at grain boundaries or changes the deformation behavior. If hydrogen is trapped at grain boundaries, the kinetics of fatigue induced grain coarsening should clearly differ compared to the uncharged reference samples, while a change of the deformation behavior would manifest in a different texture evolution compared to the reference. The experiments clearly reveal that H prevents grain growth up to accumulated strains of eacc = 100, while it still decelerates boundary migration at even larger accumulated strains of eacc = 500. The results give thereby indirect proof of preferential H-defect-interaction. The occurrence of grain boundary deceleration rather than its acceleration strongly suggests that grain boundary pinning dominates over an amplifying effect on dislocation and disconnection mobility. Thus, the results indicate the importance of H-grain boundary interaction but also question the role of the hydrogen enhanced localized plasticity (HELP) theory in nanostructured iron.
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Organizations and authors

LUT University

Moshtaghi Masoud Orcid -palvelun logo

Publication type

Publication format

Article

Parent publication type

Journal

Article type

Original article

Audience

Scientific

Peer-reviewed

Peer-Reviewed

MINEDU's publication type classification code

A1 Journal article (refereed), original research

Publication channel information

Journal/Series

Acta Materialia

Publisher

Elsevier

Article number

120749

​Publication forum

50285

​Publication forum level

3

Open access

Open access in the publisher’s service

Yes

Open access of publication channel

Partially open publication channel

Self-archived

Yes

Other information

Fields of science

Mechanical engineering

Keywords

[object Object],[object Object],[object Object],[object Object],[object Object]

Internationality of the publisher

International

International co-publication

Yes

Co-publication with a company

No

DOI

10.1016/j.actamat.2025.120749

The publication is included in the Ministry of Education and Culture’s Publication data collection

Yes