Cristin-resultat-ID: 2202260
Sist endret: 25. januar 2024, 13:02
NVI-rapporteringsår: 2023
Resultat
Vitenskapelig artikkel
2023

Modelling the spatial evolution of excess vacancies and its influence on age hardening behaviors in multicomponent aluminium alloys

Bidragsytere:
  • Xuezhou Wang
  • Dongdong Zhao
  • Yijiang Xu og
  • Yanjun Li

Tidsskrift

Acta Materialia
ISSN 1359-6454
e-ISSN 1873-2453
NVI-nivå 2

Om resultatet

Vitenskapelig artikkel
Publiseringsår: 2023
Publisert online: 2023
Trykket: 2024
Volum: 264
Hefte: 119552
Open Access

Importkilder

Scopus-ID: 2-s2.0-85178138925

Beskrivelse Beskrivelse

Tittel

Modelling the spatial evolution of excess vacancies and its influence on age hardening behaviors in multicomponent aluminium alloys

Sammendrag

Excess vacancies play crucial roles in the precipitation of age-hardening precipitates in aluminium alloys, but their spatial evolution across grains during heat treatments is less known. In this work, a numerical model is developed to predict the spatial evolution of non-equilibrium excess vacancies during cooling from solution treatment and during ageing heat treatments of multicomponent aluminium alloys. A finite volume scheme is applied to derive the spatial distribution of vacancy site fraction across grains by solving the diffusion equations of vacancies under the influence of solute elements. Binding energies between solute atoms and vacancies predicted by first-principles calculations has been used to handle the trapping of excess vacancies by solute atoms and atom clusters. The annihilation rates of excess vacancies at grain boundaries and at dislocation jogs have been derived based on a rigorous description of the annihilation mechanisms of vacancies. The evolution of the density of dislocation jogs due to vacancy annihilation has been taken into account. The model is successfully applied to interpret the age hardening behaviors of experimental alloys subjected to different thermomechanical processing conditions. This model will help to reach a deeper understanding of the roles of excess vacancies in precipitation kinetics and therefore is important to further optimize thermomechanical processing parameters and alloy composition to improve the macroscopic mechanical properties of age hardening aluminium alloys.

Bidragsytere

Xuezhou Wang

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

Dongdong Zhao

  • Tilknyttet:
    Forfatter
    ved Institutt for materialteknologi ved Norges teknisk-naturvitenskapelige universitet
  • Tilknyttet:
    Forfatter
    ved Tianjin University

Yijiang Xu

  • Tilknyttet:
    Forfatter
    ved Bærekraftig energiteknologi ved SINTEF AS

Yanjun Li

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