An Atomistic Study on the Help Mechanism of Hydrogen Embrittlement in Pure Metal Fe

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Date

2024

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Journal ISSN

Volume Title

Publisher

Pergamon-Elsevier Science Ltd

Open Access Color

HYBRID

Green Open Access

Yes

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41

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150

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Top 10%

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Abstract

The Hydrogen Enhanced Localized Plasticity (HELP) mechanism is one of the most important theories explaining Hydrogen Embrittlement in metallic materials. While much research has focused on hydrogen's impact on dislocation core structure and dislocation mobility, its effect on local dislocation density and plasticity remains less explored. This study examines both aspects using two distinct atomistic simulations: one for a single edge dislocation under shear and another for a bulk model under cyclic loading, both across varying hydrogen concentrations. We find that hydrogen stabilizes the edge dislocation and exhibits a dual impact on dislocation mobility. Specifically, mobility increases below a shear load of 900 MPa but progressively decreases above this threshold. Furthermore, dislocation accumulation is notably suppressed at around 1 % hydrogen concentration. These findings offer key insights for future research on Hydrogen Embrittlement, particularly in fatigue scenarios.

Description

Koyama, Motomichi/0000-0002-5006-9976; Bayat, Hadia/0009-0004-1763-7224;

Keywords

Hydrogen Embrittlement, Help Mechanism, Atomistic Modeling, Iron, Hydrogen, Atomistic modeling, Hydrogen embrittlement, Iron Hydrogen, HELP mechanism

Turkish CoHE Thesis Center URL

Fields of Science

0103 physical sciences, 02 engineering and technology, 0210 nano-technology, 01 natural sciences

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
16

Source

International Journal of Hydrogen Energy

Volume

57

Issue

Start Page

60

End Page

68
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Scopus : 29

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29

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28

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1

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10.21217746

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