Wang Ying, Nie Cheng, Wang Shengding, Gong Pan, Zhang Mao, Hu Zhigang, Li Bin
School of Mechanical Engineering, Wuhan Polytechnic University, Wuhan 430023, China.
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, 1037 Luoyu Road, Wuhan 430074, China.
Materials (Basel). 2024 Aug 20;17(16):4110. doi: 10.3390/ma17164110.
Titanium carbide (TiC) coatings were prepared on the surface of AlFeCoCrNiCu high-entropy alloy blocks using electro-spark deposition (ESD). The microhardness and corrosion resistance of the TiC coatings prepared under different voltage and capacitance process parameters were studied. The research shows that the maximum microhardness of the TiC coating on sample 4 (working voltage of 20 V, working capacitance of 1000 μF) is 844.98 HV, which is 81.5% higher than the microhardness of the substrate. This is because the deposition energy increases with the increase in voltage, and the adhesion and aggregation between the coating and the substrate are enhanced, increasing the hardness of the coating. It is worth noting that excessive deposition energy can increase surface defects and reduce the microhardness of the coating surface. Electrochemical testing analysis shows that the corrosion current density of the TiC coating is the lowest (9.475 × 10 ± 0.06 × 10), and the coating impedance is the highest (2.502 × 10 Ω·com). The absolute phase angle value is the highest (about 72°). The above indicates that the TiC coating prepared with a working voltage of 20 V and a working capacitance of 1000 μF has better microhardness and corrosion resistance.
采用电火花沉积(ESD)技术在AlFeCoCrNiCu高熵合金块表面制备了碳化钛(TiC)涂层。研究了在不同电压和电容工艺参数下制备的TiC涂层的显微硬度和耐蚀性。研究表明,样品4(工作电压20V,工作电容1000μF)上TiC涂层的最大显微硬度为844.98HV,比基体显微硬度高81.5%。这是因为沉积能量随电压的增加而增加,涂层与基体之间的附着力和聚集性增强,提高了涂层的硬度。值得注意的是,过高的沉积能量会增加表面缺陷,降低涂层表面的显微硬度。电化学测试分析表明,TiC涂层的腐蚀电流密度最低(9.475×10±0.06×10),涂层阻抗最高(2.502×10Ω·com),绝对相角值最高(约72°)。以上表明,工作电压为20V、工作电容为1000μF制备的TiC涂层具有较好的显微硬度和耐蚀性。