Cristin-resultat-ID: 2011886
Sist endret: 12. mai 2022, 10:03
NVI-rapporteringsår: 2022
Resultat
Vitenskapelig artikkel
2022

A microstructure informed and mixed-mode cohesive zone approach to simulating hydrogen embrittlement

Bidragsytere:
  • Meichao Lin
  • Haiyang Yu
  • Xu Wang
  • ruijun wang
  • Yu Ding
  • Antonio Alvaro
  • mfl.

Tidsskrift

International Journal of Hydrogen Energy
ISSN 0360-3199
e-ISSN 1879-3487
NVI-nivå 1

Om resultatet

Vitenskapelig artikkel
Publiseringsår: 2022
Volum: 47
Hefte: 39
Sider: 17479 - 17493
Open Access

Importkilder

Scopus-ID: 2-s2.0-85128213409

Beskrivelse Beskrivelse

Tittel

A microstructure informed and mixed-mode cohesive zone approach to simulating hydrogen embrittlement

Sammendrag

Hydrogen induced failure under uniaxial tension is simulated in a duplex stainless steel considering microstructural feature of the material. There are three key ingredients in the modelling approach: image processing and finite element representation of the experimentally observed microstructure, stress driven hydrogen diffusion and diffusion coupled cohesive zone modelling of fracture considering mixed failure mode. The microstructure used as basis for the modeling work is obtained from specimens cut in the transverse and longitudinal directions. It is found that the microstructure significantly influences hydrogen diffusion and fracture. The austenite phase is polygonal and randomly distributed in the transverse direction, where a larger effective hydrogen diffusion coefficient and a lower hydrogen fracture resistance is found, compared to the specimen in the longitudinal direction, where the austenite phase is slender and laminated. This indicates that the proper design and control of the austenite phase help improve hydrogen resistance of duplex stainless steel. The strength of the interface in the shear direction is found to dominate the fracture mode and initiation site, which reveals the importance of considering mixed failure mode and calibrating the hydrogen induced strength reduction in shear.

Bidragsytere

Meichao Lin

  • Tilknyttet:
    Forfatter
    ved Institutt for konstruksjonsteknikk ved Norges teknisk-naturvitenskapelige universitet

Haiyang Yu

  • Tilknyttet:
    Forfatter
    ved Uppsala universitet

Xu Wang

  • Tilknyttet:
    Forfatter
    ved China University of Petroleum, Bejing

ruijun wang

  • Tilknyttet:
    Forfatter
    ved University of Science and Technology Beijing

Yu Ding

  • Tilknyttet:
    Forfatter
    ved Institutt for konstruksjonsteknikk ved Norges teknisk-naturvitenskapelige universitet
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