Mei Shunqi, Zhou Cong, Hu Zekui, Xiao Zhi, Zheng Quan, Chai Xuhui
Hubei Digital Textile Equipment Key Laboratory, Wuhan Textile University, Wuhan 430073, China.
School of Mechanical & Electrical Engineering, Zhongyuan University of Technology, Zhengzhou 450007, China.
Materials (Basel). 2023 Jun 16;16(12):4427. doi: 10.3390/ma16124427.
In this study, a method of preparing a Ni-P-nanoPTFE composite coating on the surface of GCr15 steel for spinning rings is proposed. The method incorporates a defoamer into the plating solution to inhibit the agglomeration of nano-PTFE particles and pre-deposits a Ni-P transition layer to reduce the possibility of leakage coating. Meanwhile, the effect of varying the PTFE emulsion content in the bath on the micromorphology, hardness, deposition rate, crystal structure, and PTFE content of the composite coatings was investigated. The wear and corrosion resistances of the GCr15 substrate, Ni-P coating, and Ni-P-nanoPTFE composite coating are compared. The results show that the composite coating prepared at a PTFE emulsion concentration of 8 mL/L has the highest concentration of PTFE particles (up to 2.16 wt%). Additionally, its wear resistance and corrosion resistance are improved compared with Ni-P coating. The friction and wear study shows that the nano-PTFE particles with low dynamic friction coefficient are mixed in the grinding chip, which gives the composite coating self-lubricating characteristics, and the friction coefficient decreases to 0.3 compared with 0.4 of Ni-P coating. The corrosion study shows that the corrosion potential of the composite coating has increased by 7.6% compared with that of the Ni-P coating, which shifts from -456 mV to a more positive value of -421 mV. The corrosion current reduces from 6.71 μA to 1.54 μA, which is a 77% reduction. Meanwhile, the impedance increased from 5504 Ω·cm to 36,440 Ω·cm, which is an increase of 562%.
本研究提出了一种在GCr15钢纺丝环表面制备Ni-P-纳米PTFE复合涂层的方法。该方法在镀液中加入消泡剂以抑制纳米PTFE颗粒的团聚,并预镀Ni-P过渡层以降低涂层渗漏的可能性。同时,研究了镀液中PTFE乳液含量变化对复合涂层微观形貌、硬度、沉积速率、晶体结构和PTFE含量的影响。比较了GCr15基体、Ni-P涂层和Ni-P-纳米PTFE复合涂层的耐磨和耐蚀性能。结果表明,在PTFE乳液浓度为8 mL/L时制备的复合涂层中PTFE颗粒浓度最高(可达2.16 wt%)。此外,与Ni-P涂层相比,其耐磨和耐蚀性能得到了提高。摩擦磨损研究表明,动态摩擦系数低的纳米PTFE颗粒混入磨屑中,使复合涂层具有自润滑特性,摩擦系数从Ni-P涂层的0.4降至0.3。腐蚀研究表明,复合涂层的腐蚀电位比Ni-P涂层提高了7.6%,从-456 mV变为更正值的-421 mV。腐蚀电流从6.71 μA降至1.54 μA,降低了77%。同时,阻抗从5504 Ω·cm增加到36440 Ω·cm,增加了562%。