Hydrogen transport and metal embrittlement risk in storage and industrial applications

被引:0
|
作者
Gaude-Fugarolas D. [1 ]
机构
[1] Dgaude Prime Innovation SLU, c/. Alcalde Joan Batalla, 4, Vilassar de Mar
关键词
Hydrogen; Hydrogen storage; Nuclear industry; Permeation; Physical model; Steel;
D O I
10.4028/www.scientific.net/DDF.397.141
中图分类号
学科分类号
摘要
A physical model studying the diffusion of interstitial atoms has been used in the study of hydrogen redistribution in steel, in order to predict the risk of hydrogen damage in a range of manufacturing processes. In this work, conditions representative of hydrogen storage and some scenarios in the nuclear or chemical industries are considered. A singular advantage of this model is that, contrary to some simplified commercial and academic models, it contemplates diffusion in its most comprehensive description, i.e., with the driving force for atom diffusion being the gradient in chemical activation instead of simply considering it occurs down a composition gradient. Because the model also incorporates thermal history, microstructure, matrix solubility, multiple trapping distributions, interaction with the atmosphere and others, it is ideally suited to study real industrial applications. In this work, several simulations of hydrogen permeation are considered. Hydrogen permeation in industrial applications may introduce damage within the metal structure, leading to delayed failure. In the cases studied hydrogen is transported through a metal wall separating one volume with high hydrogen pressure and/or high temperature from another volume with low hydrogen pressure and temperature. By using such comprehensive physical model, it is possible to study the effects of hydrogen pressure and temperature gradient, wall thickness, metal microstructure and trap distribution on the flux across the wall and on the accumulation of hydrogen within the metal. Furthermore, it makes possible to estimate the embrittlement risk and when necessary the time to fracture. © 2019 Trans Tech Publications Ltd, Switzerland.
引用
收藏
页码:141 / 146
页数:5
相关论文
共 50 条
  • [1] HYDROGEN EMBRITTLEMENT - FUNDAMENTAL-ASPECTS AND INDUSTRIAL APPLICATIONS
    CHARLES, J
    COUDREUSE, L
    ANNALES DE CHIMIE-SCIENCE DES MATERIAUX, 1989, 14 (04): : 239 - 268
  • [2] Application of laboratory and on field techniques to determine the risk of hydrogen embrittlement in gaseous hydrogen and relative mixtures transport and storage
    Valentini, Renzo
    Bacchi, Linda
    Biagini, Fabio
    Mastroianni, Matteo
    MATERIAUX & TECHNIQUES, 2023, 111 (02):
  • [3] Hydrogen Storage Applications in Industrial Microgrids
    Arlt, Marie-Louise
    Cardoso, Goncalo Ferreira
    Weng, Dean
    2017 IEEE GREEN ENERGY AND SMART SYSTEMS CONFERENCE (IGESSC), 2017,
  • [4] Polymeric Coatings for Preventing Hydrogen Embrittlement in Industrial Storage and Transmission Systems
    Kapuscinsky, Noe
    Ignatusha, Pavlo
    Islam, Aminul
    Ezzine, Mehdi
    Du, Naiying
    Meek, Kelly M.
    ACS APPLIED ENGINEERING MATERIALS, 2024, 2 (11): : 2488 - 2503
  • [5] Metal hydrides for hydrogen storage applications
    Ramesh, R
    Jayakumar, T
    Raj, B
    METALS MATERIALS AND PROCESSES, 1996, 7 (04): : 291 - 308
  • [6] DISLOCATION TRANSPORT AND HYDROGEN EMBRITTLEMENT
    WEST, AJ
    LOUTHAN, MR
    METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1979, 10 (11): : 1675 - 1682
  • [7] ZEOLITE AS MATERIAL FOR HYDROGEN STORAGE IN TRANSPORT APPLICATIONS
    Kleperis, J.
    Lesnicenoks, P.
    Grinberga, L.
    Chikvaidze, G.
    Klavins, J.
    LATVIAN JOURNAL OF PHYSICS AND TECHNICAL SCIENCES, 2013, 50 (03) : 59 - 64
  • [8] HYDROGEN EMBRITTLEMENT OF WELD METAL
    METZBOWER, EA
    REPORT OF NRL PROGRESS, 1975, (APR): : 40 - 44
  • [9] Industrial production of light metal hydrides for hydrogen storage
    Eigen, Nico
    Keller, Claude
    Dornheim, Martin
    Klassen, Thomas
    Bormann, Ruediger
    SCRIPTA MATERIALIA, 2007, 56 (10) : 847 - 851
  • [10] HYDROGEN TRANSPORT AND EMBRITTLEMENT IN STRUCTURAL METALS
    LOUTHAN, MR
    CASKEY, GR
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1976, 1 (03) : 291 - 305