The interplay between thermomigration and stress-driven hydrogen transport in metals

Fuente: arXiv
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Hauptverfasser: Long, Daniel J., Tarleton, Edmund, Cocks, Alan C. F., Hofmann, Felix
Format: Preprint
Veröffentlicht: 2026
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author Long, Daniel J.
Tarleton, Edmund
Cocks, Alan C. F.
Hofmann, Felix
author_facet Long, Daniel J.
Tarleton, Edmund
Cocks, Alan C. F.
Hofmann, Felix
contents Thermomigration is the driving force for hydrogen transport due to a temperature gradient. It can compete with hydrogen transport induced by stress gradients. While stress-driven hydrogen migration is well established, thermomigration remains comparatively underexplored, largely due to limited mechanistic understanding and a scarcity of experimental data. In this work, we develop a thermodynamically consistent framework for hydrogen transport, incorporating a mechanistic model for thermomigration. This is implemented within a finite element framework using an effective chemical potential. Using case studies of iron and nickel heat exchangers and zirconium alloy nuclear fuel cladding, we quantify the competing and synergistic effects of thermomigration and stress-driven transport. We show that thermomigration often dominates hydrogen redistribution in heat-carrying components, even in the presence of significant thermal incompatibility stresses. However, stress-driven transport is shown to become decisive near sharp stress concentrators. A graphical method is introduced to rapidly identify the dominant transport mechanism without requiring fully coupled simulations. The results provide practical guidance for assessing hydrogen redistribution and embrittlement risk in heat-carrying structural components.
format Preprint
id arxiv_https___arxiv_org_abs_2603_20049
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The interplay between thermomigration and stress-driven hydrogen transport in metals
Long, Daniel J.
Tarleton, Edmund
Cocks, Alan C. F.
Hofmann, Felix
Materials Science
Thermomigration is the driving force for hydrogen transport due to a temperature gradient. It can compete with hydrogen transport induced by stress gradients. While stress-driven hydrogen migration is well established, thermomigration remains comparatively underexplored, largely due to limited mechanistic understanding and a scarcity of experimental data. In this work, we develop a thermodynamically consistent framework for hydrogen transport, incorporating a mechanistic model for thermomigration. This is implemented within a finite element framework using an effective chemical potential. Using case studies of iron and nickel heat exchangers and zirconium alloy nuclear fuel cladding, we quantify the competing and synergistic effects of thermomigration and stress-driven transport. We show that thermomigration often dominates hydrogen redistribution in heat-carrying components, even in the presence of significant thermal incompatibility stresses. However, stress-driven transport is shown to become decisive near sharp stress concentrators. A graphical method is introduced to rapidly identify the dominant transport mechanism without requiring fully coupled simulations. The results provide practical guidance for assessing hydrogen redistribution and embrittlement risk in heat-carrying structural components.
title The interplay between thermomigration and stress-driven hydrogen transport in metals
topic Materials Science
url https://arxiv.org/abs/2603.20049