High-temperature oxidation and wear properties of TiC-reinforced CrMnFeCoNi high entropy alloy composite coatings produced by laser cladding

Extensive studies have been conducted on high entropy alloy composite coatings reinforced with micro-sized ceramic particles at the room-temperature. However, studies on their high temperatures properties are rare. The oxidation and tribological properties of CrMnFeCoNi/xTiC composite coatings produ...

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Veröffentlicht in:Surface & coatings technology 2022-05, Vol.438, p.128407, Article 128407
Hauptverfasser: Sun, Da, Cai, Yangchuan, Zhu, Lisong, Gao, Feifeng, Shan, Mengdie, Manladan, Sunusi Marwana, Geng, Keping, Han, Jian, Jiang, Zhengyi
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Sprache:eng
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Zusammenfassung:Extensive studies have been conducted on high entropy alloy composite coatings reinforced with micro-sized ceramic particles at the room-temperature. However, studies on their high temperatures properties are rare. The oxidation and tribological properties of CrMnFeCoNi/xTiC composite coatings produced by laser cladding were studied at 600 °C. The addition of TiC to the coating promoted the oxidation process due to “short-circuit diffusion”. During the high temperature wear process, brittle cracking did not occur on the worn surface, and a good wear-resistant intermediate layer was formed. The coatings exhibited low hardness, low wear rate, and high coefficient of friction due to the formation of composite oxide film formed on the worn surface with good adhesion to the matrix. [Display omitted] •Tribology and oxidation behavior of CrMnFeCoNi coatings with different content of TiC•TiC in the coating forms a “short circuit diffusion” channel and promotes oxidation.•The ceramics in the composite coating played the load-bearing and load transfer role to improve the wear resistance.
ISSN:0257-8972
1879-3347
DOI:10.1016/j.surfcoat.2022.128407