Ren Xiangyu, Sun Wenlei, Sheng Zefeng, Liu Minying, Hui Hujing, Xiao Yi
College of Mechanical Engineering, Xinjiang University, Wulumuqi 830047, China.
Nanomaterials (Basel). 2023 Mar 19;13(6):1104. doi: 10.3390/nano13061104.
FeCoNiCrMo0.2 high entropy alloy has many excellent properties, such as high strength, high wear resistance, high corrosion resistance, and high ductility. To further improve the properties of this coating, FeCoNiCrMo high entropy alloy (HEA) coatings, and two composite coatings, FeCoNiCrMo0.2 + WC and FeCoNiCrMo0.2 + WC + CeO, were prepared on the surface of 316L stainless steel by laser cladding technology. After adding WC ceramic powder and CeO rare earth control, the microstructure, hardness, wear resistance, and corrosion resistance of the three coatings were carefully studied. The results show that WC powder significantly improved the hardness of the HEA coating and reduced the friction factor. The FeCoNiCrMo0.2 + 32%WC coating showed excellent mechanical properties, but the distribution of hard phase particles in the coating microstructure was uneven, resulting in unstable distribution of hardness and wear resistance in each region of the coating. After adding 2% nano-CeO rare earth oxide, although the hardness and friction factor decreased slightly compared with the FeCoNiCrMo0.2 + 32%WC coating, the coating grain structure was finer, which reduced the porosity and crack sensitivity of the coating, and the phase composition of the coating did not change; there was a uniform hardness distribution, a more stable friction coefficient, and the flattest wear morphology. In addition, under the same corrosive environment, the value of polarization impedance of the FeCoNiCrMo0.2 + 32%WC + 2%CeO coating was greater, the corrosion rate was relatively low, and the corrosion resistance was better. Therefore, based on various indexes, the FeCoNiCrMo0.2 + 32%WC + 2%CeO coating has the best comprehensive performance and can extend the service life of 316L workpieces.
FeCoNiCrMo0.2高熵合金具有许多优异性能,如高强度、高耐磨性、高耐腐蚀性和高延展性。为进一步改善该涂层的性能,采用激光熔覆技术在316L不锈钢表面制备了FeCoNiCrMo高熵合金(HEA)涂层以及两种复合涂层FeCoNiCrMo0.2 + WC和FeCoNiCrMo0.2 + WC + CeO。添加WC陶瓷粉末和CeO稀土后,对三种涂层的微观结构、硬度、耐磨性和耐腐蚀性进行了仔细研究。结果表明,WC粉末显著提高了HEA涂层的硬度并降低了摩擦系数。FeCoNiCrMo0.2 + 32%WC涂层表现出优异的力学性能,但涂层微观结构中硬相颗粒分布不均匀,导致涂层各区域硬度和耐磨性分布不稳定。添加2%纳米CeO稀土氧化物后,尽管与FeCoNiCrMo0.2 + 32%WC涂层相比硬度和摩擦系数略有下降,但涂层晶粒结构更细,降低了涂层的孔隙率和裂纹敏感性,且涂层相组成未发生变化;硬度分布均匀,摩擦系数更稳定,磨损形貌最平整。此外,在相同腐蚀环境下,FeCoNiCrMo0.2 + 32%WC + 2%CeO涂层的极化阻抗值更大,腐蚀速率相对较低,耐腐蚀性更好。因此,综合各项指标,FeCoNiCrMo0.2 + 32%WC + 2%CeO涂层具有最佳综合性能,可延长316L工件的使用寿命。