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Surface Fluorination of Magnesium Powder: Enhancing High-Temperature Oxidation Resistance
Yu Wang1, Jae-Ho Kim1, Susumu Yonezawa2
1Department of Materials Science and Engineering, Faculty of Engineering, University of Fukui, 3-9-1 Bunkyo, Fukui 910-8507, Japan.
Abstract:
This study investigates the high-temperature oxidation mechanism of pure magnesium powder and the effect of surface fluorination on its oxidation resistance. The results showed that at high temperatures, pure Mg powder reacted with H2O and CO2 in air to form Mg(OH)2 and MgCO3, which decomposed at approximately 350 °C. Above 450 °C, the oxide film ruptured and catastrophic oxidation occurred. Surface fluorination with F2 gas generated a dense, uniform MgF2 protective film on the magnesium surface, significantly improving the ignition point and high-temperature oxidation resistance of Mg. Increasing the fluorination temperature increased the thickness and stability of the MgF2 layer, thereby further enhancing oxidation resistance. In particular, samples fluorinated at 200 °C showed oxidation growth limited to approximately 3%, even after heating at 500 °C for 8 h in air. Adjusting the surface fluorination conditions can create a protective MgF2 film to address high-temperature oxidation issues in magnesium powder metallurgy applications.
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