Effect of Y addition on microstructure, tensile properties, and corrosion behavior of high-speed-extruded Mg–5Bi–3Al alloy

This study investigates the effect of Y addition on the microstructure, tensile properties, and corrosion behavior of high-speed-extruded Mg–5Bi–3Al (BA53) alloy. Y-free BA53 and Y-containing BAW53 x alloys ( x = 0.2, 0.5, and 1.0 wt.%) are extruded at a die-exit speed of 67 m/min, and the role of Y is examined with emphasis on second-phase evolution and its influence on mechanical and corrosion behavior. Y addition progressively changes the second-phase characteristics from fine intragranular Mg 3 Bi 2 particles to coarse BiY particles concentrated mainly along grain boundaries, while distinct grain refinement appears only at the highest Y content. The tensile yield strength and ultimate tensile strength decrease slightly with increasing Y content, whereas tensile elongation remains comparable and increases slightly at 0.2 wt.% Y. The strength reduction is mainly associated with the reduced strengthening contribution of fine Mg 3 Bi 2 particles. Longitudinal-section observations near the fracture surface show that coarse BiY particles do not act as dominant crack-initiation sites; instead, fracture remains governed mainly by twin-related cracking, which accounts for the limited change in tensile ductility despite the marked change in second-phase characteristics. The corrosion behavior shows a strongly non-monotonic dependence on Y content. A minor addition of 0.2 wt.% Y markedly improves corrosion resistance, whereas larger additions lead to severe deterioration. The Volta potential difference between BiY and the α -Mg matrix is substantially larger than that between Mg 3 Bi 2 and the α -Mg matrix, indicating a stronger local galvanic driving force. Early-stage and cross-sectional corrosion observations further show that BA53 is more susceptible to widespread Mg 3 Bi 2 -assisted corrosion initiation, whereas high-Y alloys increasingly develop BiY-assisted localized corrosion, corrosion-front propagation along grain-boundary regions, and corrosion-film instability. These results demonstrate that a minor addition of 0.2 wt.% Y provides a favorable combination of high-speed extrudability, strength–ductility balance, and enhanced corrosion resistance in the present BA53-based alloy system.

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Publication Details

Journal
Journal of Magnesium and Alloys
Published
2026-10-07
DOI
https://doi.org/10.1016/j.jma.2026.102317
Primary Topic
Magnesium Alloys: Properties and Applications
Type
article
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article

Effect of Y addition on microstructure, tensile properties, and corrosion behavior of high-speed-extruded Mg–5Bi–3Al alloy

Sung Hyuk Park, Shizhe Yu, Gun Woong An, Jae-Yeon Kim et al.
Journal of Magnesium and Alloys
Magnesium Alloys: Properties and Applications
article

Effect of Y addition on microstructure, tensile properties, and corrosion behavior of high-speed-extruded Mg–5Bi–3Al alloy

Sung Hyuk Park, Shizhe Yu, Gun Woong An, Jae-Yeon Kim, Wei-li Cheng, Sang-Cheol Jin
article en

Abstract

This study investigates the effect of Y addition on the microstructure, tensile properties, and corrosion behavior of high-speed-extruded Mg–5Bi–3Al (BA53) alloy. Y-free BA53 and Y-containing BAW53 x alloys ( x = 0.2, 0.5, and 1.0 wt.%) are extruded at a die-exit speed of 67 m/min, and the role of Y is examined with emphasis on second-phase evolution and its influence on mechanical and corrosion behavior. Y addition progressively changes the second-phase characteristics from fine intragranular Mg 3 Bi 2 particles to coarse BiY particles concentrated mainly along grain boundaries, while distinct grain refinement appears only at the highest Y content. The tensile yield strength and ultimate tensile strength decrease slightly with increasing Y content, whereas tensile elongation remains comparable and increases slightly at 0.2 wt.% Y. The strength reduction is mainly associated with the reduced strengthening contribution of fine Mg 3 Bi 2 particles. Longitudinal-section observations near the fracture surface show that coarse BiY particles do not act as dominant crack-initiation sites; instead, fracture remains governed mainly by twin-related cracking, which accounts for the limited change in tensile ductility despite the marked change in second-phase characteristics. The corrosion behavior shows a strongly non-monotonic dependence on Y content. A minor addition of 0.2 wt.% Y markedly improves corrosion resistance, whereas larger additions lead to severe deterioration. The Volta potential difference between BiY and the α -Mg matrix is substantially larger than that between Mg 3 Bi 2 and the α -Mg matrix, indicating a stronger local galvanic driving force. Early-stage and cross-sectional corrosion observations further show that BA53 is more susceptible to widespread Mg 3 Bi 2 -assisted corrosion initiation, whereas high-Y alloys increasingly develop BiY-assisted localized corrosion, corrosion-front propagation along grain-boundary regions, and corrosion-film instability. These results demonstrate that a minor addition of 0.2 wt.% Y provides a favorable combination of high-speed extrudability, strength–ductility balance, and enhanced corrosion resistance in the present BA53-based alloy system.

Journal of Magnesium and AlloysVol. 31
Kyungpook National University (KR), Korea Institute of Materials Science (KR), Taiyuan University of Technology (CN)
Ministry of Science and ICT, South Korea
Openalex Percentile: Top 28%
Magnesium Alloys: Properties and Applications
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