Integrated experiment and modelling of microstructurally-sensitive crack growth
File(s)IJF-D-16-00115_Accepted.pdf (1.4 MB)
Accepted version
Author(s)
Wan, VVC
MacLachlan, DW
Dunne, FPE
Type
Journal Article
Abstract
An assessment is presented of modelling methodologies which explicitly address microstructurally-sensitive crack growth paths in bcc polycrystal ferritic steel. A number of microstructurally differing polycrystal samples are subjected to fatigue and crack nucleation and growth, demonstrating transgranular and intergranular crack paths in characterised microstructures. Microstructurally representative extended finite element crystal modelling, coupled cohesive zone modelling, coupled explicit grain boundary modelling, and plasticity are utilised to assess predicted crack paths against the experimental observations. The incorporation of strong and weak boundary zones when coupled with X-FEM was found to provide quantitative prediction of the transition from transgranular to intergranular cracking and to capture accurately the observed crack paths. Crack tip plasticity was found to have limited effect on microstructurally-sensitive crack path.
Date Issued
2016-05-24
Date Acceptance
2016-05-23
Citation
International Journal of Fatigue, 2016, 91 (Part 1), pp.110-123
ISSN
1879-3452
Publisher
Elsevier
Start Page
110
End Page
123
Journal / Book Title
International Journal of Fatigue
Volume
91
Issue
Part 1
Copyright Statement
© 2016 Elsevier. Licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor
Royal Academy Of Engineering
Grant Number
MMRE_P54661
Subjects
Science & Technology
Technology
Engineering, Mechanical
Materials Science, Multidisciplinary
Engineering
Materials Science
eXtended Finite Element Method (X-FEM)
Microstructurally sensitive crack growth
Intergranular cracking
Transgranular cracking
Fatigue
SHORT FATIGUE CRACKS
CRYSTAL PLASTICITY
POLYCRYSTALLINE MATERIALS
GRAIN-BOUNDARIES
CYCLE FATIGUE
PROPAGATION
NUCLEATION
FRACTURE
BEHAVIOR
SIMULATION
Mechanical Engineering & Transports
0913 Mechanical Engineering
0905 Civil Engineering
Publication Status
Published