High-Resolution DIC Analysis of in Situ Strain and Crack Propagation in Coated AZ31 Magnesium Alloys Under Mechanical Loading
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Date
2025
Journal Title
Journal ISSN
Volume Title
Publisher
Springer
Open Access Color
HYBRID
Green Open Access
Yes
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
Biodegradable magnesium (Mg) alloys are promising for various biomedical applications but their susceptibility to corrosion poses significant challenges. This study systematically examines the microstructural integrity and failure mechanisms of electrochemically deposited phosphate- and fluorine-rich coatings on AZ31 Mg alloy subjected to three-point bending (3 PB) in both non-corrosive and physiological (HBSS) environments. High-resolution digital image correlation (HR-DIC) combined with scanning electron microscopy (SEM) enables in situ visualization and quantitative analysis of crack initiation, evolution, and propagation within the coatings. Our findings reveal that thinner (5 mu m) coatings are prone to forming dense networks of fine cracks, while thicker (15 mu m) coatings display fewer but wider cracks, with both morphologies strongly governed by localized shear strain. Importantly, cross-sectional analyses after load-holding demonstrate that, while surface cracks initially remain confined within the coating, cracks generated under higher mechanical loading can propagate through the entire coating thickness. These through-thickness cracks create direct pathways for corrosive fluids to access the underlying alloy, serving as initiation sites for stress corrosion cracking within the substrate. Furthermore, our results indicate that fluoride in the coating mitigates rapid corrosion. Overall, the study reveals that coating failure and the formation of through-thickness cracks play a critical role in facilitating localized corrosion and crack initiation within the alloy under combined mechanical and corrosive environments.
Description
Blunn, Gordon/0000-0003-2141-7385; Yavuzyegit, Berzah/0000-0003-0759-780X; Bonithon, Roxane/0000-0002-4252-0894
Keywords
Metals & Corrosion
Fields of Science
Citation
WoS Q
Q2
Scopus Q
Q1

OpenCitations Citation Count
N/A
Source
Journal of Materials Science
Volume
60
Issue
33
Start Page
14708
End Page
14730
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Scopus : 0
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Mendeley Readers : 12
SCOPUS™ Citations
1
checked on Mar 04, 2026
Web of Science™ Citations
1
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Page Views
5
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