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Microstructural characterization of corrosion resistant Zn–15Al–6Mg–0.4Si galvanized coating

A complex microstructure of the Zn–15Al–6Mg–0.4Si coating layer with excellent hardness and corrosion resistance was investigated by performing thermodynamic calculations, X-ray diffraction, scanning electron microscopy, and transmission electron microscopy. The inhibition layer with a thickness of...

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Bibliographic Details
Published in:Journal of materials research and technology 2025-01, Vol.34, p.738-747
Main Authors: Yoonje Sung, Changmin Kang, Junho Lee, Seonghyun Park, Sang-Hwa Lee, Jae-Taek Im, Seok-Jae Lee, HeeJin Jang, Jae-Gil Jung
Format: Article
Language:English
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Summary:A complex microstructure of the Zn–15Al–6Mg–0.4Si coating layer with excellent hardness and corrosion resistance was investigated by performing thermodynamic calculations, X-ray diffraction, scanning electron microscopy, and transmission electron microscopy. The inhibition layer with a thickness of ∼1 μm consisted of submicrometer-sized monoclinic Fe4Al13 particles (containing Si and Zn atoms) epitaxially grown on a steel substrate. The solidifying layer contained three primary phases (Mg2Si, Al, and MgZn2) as well as the Al/Zn eutectoid and Zn/MgZn2/Al ternary eutectic phases. Crystallographic analysis data revealed the serial formation of the Fe4Al13, Mg2Si, and Al phases via heterogeneous nucleation. The primary Al particles (including 37 wt% Zn and 4 wt% Mg) included multiple Zn and MgZn2 precipitates and were surrounded by Al/Zn eutectoid phases (containing ∼70 wt% Zn). The primary MgZn2 phase was generated after the Mg2Si phase was partially transformed into the Mg2Zn11 phase. A Zn/MgZn2/Al ternary eutectic microstructure with a spacing of 1.0 μm was formed during the final solidification stage. The Zn–15Al–6Mg–0.4Si coating exhibited high hardness and low corrosion rate in a 3.5 wt% NaCl solution as compared with those of the coatings with lower Al and Mg contents.
ISSN:2238-7854