材料科学
涂层
微观结构
复合数
腐蚀
多孔性
摩擦学
复合材料
钛
电化学
钛合金
电流密度
冶金
化学工程
摩擦系数
使用寿命
作者
Jia Wang,Lin Gao,Chuanyao Dong,Kan Zhang
出处
期刊:NANO
[World Scientific]
日期:2026-04-06
标识
DOI:10.1142/s1793292026501110
摘要
To enhance the service performance of titanium alloys for demanding high-end equipment applications, an h-BN/SiC-Ti-MAO composite coating was fabricated on Ti6Al4V via one-step micro-arc oxidation (MAO). Optimizing the SiC additive concentration offers an effective way to improve the overall performance of the composite coating in mechanical, tribological, oxidation resistance and anti-corrosion properties. The research results show that the coating prepared with 4[Formula: see text]g/L SiC yielded superior multifunctional properties. It possessed a dense microstructure with the lowest porosity (6.45%), high hardness (712[Formula: see text]HV) and excellent adhesion. This coating maintained a low friction coefficient of approximately 0.20 from RT to [Formula: see text]C and exhibited the best oxidation resistance at [Formula: see text]C, with a parabolic rate constant ([Formula: see text] of [Formula: see text]. Electrochemical tests in 3.5[Formula: see text]wt.% NaCl solution further confirmed its optimal anti-corrosion, showing the lowest corrosion current density ([Formula: see text][Formula: see text]A/cm[Formula: see text]. In contrast, insufficient SiC concentration results in limited performance improvement of the composite coating, whereas excessive concentration introduces microstructural defects, ultimately degrading the overall performance. This study demonstrates that optimized h-BN/SiC co-doping represents an effective strategy for developing high-performance MAO protective coatings on titanium alloys.
科研通智能强力驱动
Strongly Powered by AbleSci AI