Xu Shanna, Han Keqi, Wang Haili, Xi Yuntao, Wang Lei, Dong Xikai
Xi'an Key Laboratory of High Performance Oil and Gas Field Materials, School of Material Science and Engineering, Xi'an Shiyou University, Xi'an 710065, China.
Xi'an Rare Metal Materials Institute Co., Ltd., Xi'an 710016, China.
Materials (Basel). 2024 Aug 2;17(15):3823. doi: 10.3390/ma17153823.
The development of titanium alloys is limited by issues such as low hardness, poor wear resistance, and sensitivity to adhesive wear. Using laser cladding technology to create high-hardness wear-resistant coatings on the surface of titanium alloys is an economical and efficient method that can enhance their surface hardness and wear resistance. This paper presents the preparation of two types of nickel-based composite coatings, Ni60-Ti-Cu-xBC and Ni60-Ti-Cu-BC-xCeO, on the surface of TC4 titanium alloy using laser cladding. When the BC addition was 8 wt.%, the hardness of the cladding layer was the highest, with an average microhardness of 1078 HV, which was 3.37 times that of the TC4 substrate. The friction coefficient was reduced by 24.7% compared to the TC4 substrate, and the wear volume was only 2.7% of that of the substrate material. When the CeO content was 3 wt.%, the hardness of the cladding layer was the highest, with an average microhardness of 1105 HV, which was 3.45 times that of the TC4 substrate. The friction coefficient was reduced by 33.7% compared to the substrate material, and the wear volume was only 1.8% of that of the substrate material.
钛合金的发展受到诸如硬度低、耐磨性差以及对粘着磨损敏感等问题的限制。利用激光熔覆技术在钛合金表面制备高硬度耐磨涂层是一种经济高效的方法,能够提高其表面硬度和耐磨性。本文介绍了采用激光熔覆在TC4钛合金表面制备两种镍基复合涂层,即Ni60-Ti-Cu-xBC和Ni60-Ti-Cu-BC-xCeO的情况。当BC添加量为8 wt.%时,熔覆层硬度最高,平均显微硬度为1078 HV,是TC4基体的3.37倍。摩擦系数比TC4基体降低了24.7%,磨损体积仅为基体材料的2.7%。当CeO含量为3 wt.%时,熔覆层硬度最高,平均显微硬度为1105 HV,是TC4基体的3.45倍。摩擦系数比基体材料降低了33.7%,磨损体积仅为基体材料的1.8%。