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Full Length Article | Open Access

Spatial mapping of the localized corrosion behavior of a magnesium alloy AZ31B tungsten inert gas weld

Leslie G. (Bland) Millera,#Corey M. Efawb,#Rebecca F. Schallera,cKari HigginbothambSteve D. JohnsbPaul H. DavisbElton GraugnardbJohn R. ScullyaMichael F. Hurleyb( )
Department of Materials Science and Engineering, University of Virginia, 395 McCormick Rd, Charlottesville, 22904-4745 VA, USA
Micron School of Materials Science and Engineering, College of Engineering, Boise State University, 1910 University Dr, Boise, 83725-2090 ID, USA
Materials Science and Engineering, Sandia National Laboratories, P.O. Box 5800, MS 0889, Albuquerque, 87185 NM, USA

# These authors contributed equally.

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Abstract

Sections of a magnesium alloy, AZ31B, joined with tungsten inert gas (TIG) welding, were examined with scanning electrochemical microscopy (SECM) and scanning Kelvin probe force microscopy (SKPFM) to investigate corrosion mechanisms by correlating observed corrosion behavior with weld-affected microstructural variations. Insight into the changing nature of the galvanic couples between weld zones and at localized microgalvanic sites were investigated using SECM and SKPFM to map both electrochemically active regions and Volta potential differences across the weld-affected zones. The formation of an Al-Zn solidification network in the fusion zone (FZ) at and near the TIG weld epicenter differs from the outer heat-affected zone (HAZ), where intermetallic particles (IMPs) are the notable secondary phase from the magnesium matrix. These microstructures were mapped with SKPFM before and after brief exposure to a salt solution, revealing micro-galvanic couples as the main driving force to corrosion initiation and propagation within each zone. The IMPs and Al-Zn solidification network act as strong cathodes and govern the corrosion processes. The galvanic coupling and evolution of the intrinsic corrosion behavior between the weld zones is explained by monitoring the hydrogen evolution reaction (HER) with SECM over time. Anodically induced cathodic activation is confirmed for this welded material, as micro-galvanic couples between microstructural features are found to transition over time to broad electrochemically active areas within the weld-affected zones, resulting in polarity reversal as time of exposure proceeds.

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Journal of Magnesium and Alloys
Pages 193-206

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Cite this article:
(Bland) Miller LG, Efaw CM, Schaller RF, et al. Spatial mapping of the localized corrosion behavior of a magnesium alloy AZ31B tungsten inert gas weld. Journal of Magnesium and Alloys, 2025, 13(1): 193-206. https://doi.org/10.1016/j.jma.2024.12.019

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Received: 28 September 2024
Revised: 04 December 2024
Accepted: 14 December 2024
Published: 28 January 2025
© 2025 Chongqing University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/) Peer review under responsibility of Chongqing University