The paper aims at characterizing the influence of intermetallic compounds on the corrosion localization of innovative Al–Si–Mg Er‐ and Zr‐containing casting alloys. Samples of the investigated materials were studied by means of optical and scanning electron microscope micrographs, immersion tests, and scanning Kelvin probe force microscope (SKPFM) analyses in the T6 temper. Combination of immersion tests and SKPFM analyses allowed to identify those classes of intermetallic compounds promoting localization of the corrosion process. It was found that intermetallic compounds richer in Fe were the most critical for corrosion localization; furthermore, additions of Er caused a marked decrease of the potential difference of intermetallic compounds with respect to the Al matrix and a consequent less intense microgalvanic coupling, which translates into slower corrosion kinetics. Further, Zr additions slightly increased the potential difference of intermetallic compounds with the Al matrix, promoting a faster corrosion process.

SKPFM investigations of intermetallic compounds of innovative Er‐ and Zr‐containing Al–Si–Mg alloys and their influence on corrosion localization in saline solution

Colombo, Marco;Gariboldi, Elisabetta;
2019-01-01

Abstract

The paper aims at characterizing the influence of intermetallic compounds on the corrosion localization of innovative Al–Si–Mg Er‐ and Zr‐containing casting alloys. Samples of the investigated materials were studied by means of optical and scanning electron microscope micrographs, immersion tests, and scanning Kelvin probe force microscope (SKPFM) analyses in the T6 temper. Combination of immersion tests and SKPFM analyses allowed to identify those classes of intermetallic compounds promoting localization of the corrosion process. It was found that intermetallic compounds richer in Fe were the most critical for corrosion localization; furthermore, additions of Er caused a marked decrease of the potential difference of intermetallic compounds with respect to the Al matrix and a consequent less intense microgalvanic coupling, which translates into slower corrosion kinetics. Further, Zr additions slightly increased the potential difference of intermetallic compounds with the Al matrix, promoting a faster corrosion process.
2019
Al–Si–Mg alloys, corrosion localization, Er and Zr additions, SKPFM 1 | INTRODUCTION Pitting corrosion is frequently observed in Al–Si–Mg alloys exposed to aqueous solution, especially when the solution contains Cl− ions.[1] The kinetics of corrosion localization strongly depends on electrochemical properties of microstructural constituents, and in particular on the differences in electrochemical potential between intermetallic compounds and Al matrix. The higher the potential difference, the higher the driving force for localized corrosion.[2–5] The microstructure of Al–Si–Mg cast alloys is strongly heterogeneous, due to the presence of eutectic Si and a variety of Fe‐, Si‐, and Mg‐containing intermetallic compounds (e.g., β‐Al5FeSi, π‐Al8FeSi6Mg3, and β‐Mg2Si) which act as
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/1095487
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