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A crystal plasticity approach to understand fatigue response with respect to pores in additive manufactured aluminium alloys

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posted on 2025-02-06, 12:23 authored by Mengzhen Cao, Yang LiuYang Liu, Fionn PE Dunne
A crystal plasticity finite element modelling method integrated with a stored energy density criterion is utilized to comparatively investigate fatigue crack nucleation behaviour and quantify fatigue life with respect to different pore types in AlSi10Mg fabricated by selective laser melting. Representative microstructural models show that fatigue crack nucleation exhibits high sensitivity to both gas/keyhole and lack of fusion pores, but particularly the latter, which leads to much lower fatigue life at high stress levels. Multi-intragranular slip system activations occurring at the sharp corners of lack of fusion pores contribute to substantial increase in local geometrically necessary dislocation density. Together with the rapid accumulation of slip, these drive high local stored energy density at the tips of lack of fusion pores. For gas/keyhole pores, high stresses lead to pore-induced shear band formation which shifts the origin of crack nucleation away from the pore to other microstructural features. At low stresses, fatigue life for lack of fusion and gas/keyhole pores tend to converge but remain shorter than for pore-free microstructures.

History

Citation

Mengzhen Cao, Yang Liu, Fionn P.E. Dunne, A crystal plasticity approach to understand fatigue response with respect to pores in additive manufactured aluminium alloys, International Journal of Fatigue, Volume 161, 2022, 106917, ISSN 0142-1123, https://doi.org/10.1016/j.ijfatigue.2022.106917.

Author affiliation

College of Science & Engineering Engineering

Version

  • VoR (Version of Record)

Published in

International Journal of Fatigue

Volume

161

Pagination

106917 - 106917

Publisher

Elsevier BV

issn

0142-1123

eissn

1879-3452

Acceptance date

2022-04-09

Copyright date

2022

Available date

2025-02-06

Language

en

Deposited by

Dr Yang Liu

Deposit date

2024-12-02

Rights Retention Statement

  • No

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