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Wear mechanism of Mo−W doped carbon-based coating during boundary lubricated sliding

机译:Mo-W掺杂碳基涂层在边界润滑滑动过程中的磨损机理

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摘要

The high temperature tribological applications of state-of-the-art diamond-like-carbon (DLC) coatings in automotive industry are often compromised due to their poor adhesion strength and low thermal stability. A molybdenum and tungsten doped carbon-based coating (Mo−W−C) is developed in order to overcome these limitations and to enhance tribological performance during boundary lubricated sliding at ambient and elevated temperature. The coating was deposited utilising HIPIMS technology. Mo−W−C coating showed lowest mean friction coefficient (µ=0.033) compared to a number of commercially available state-of-the-art DLC coatings when pin-on-disc experiments were carried out at ambient temperature. Similarly at 200°C, a significant reduction in friction coefficient was observed for Mo−W−C coating with increase in sliding distance unlike DLC coating. Raman spectroscopy revealed importance of combined Mo and W doping and tribochemically reactive wear mechanism of Mo−W−C coating during sliding. The significant decrease in friction and wear rate was attributed to the presence of graphitic carbon particles (from coating) and 'in-situ' formed metal sulphides (WS2 and MoS2, where metals from coating and sulphur from oil) in transfer layer.
机译:由于其差的粘合强度和低的热稳定性,在汽车工业中最先进的类金刚石碳(DLC)涂层的高温摩擦学应用常常受到损害。为了克服这些局限性并增强在环境和高温下边界润滑滑动过程中的摩擦学性能,开发了钼和钨掺杂的碳基涂层(Mo-W-C)。利用HIPIMS技术沉积涂层。当在环境温度下进行针到盘实验时,Mo-W-C涂层显示出最低的平均摩擦系数(µ = 0.033),与许多市售的最新DLC涂层相比。类似地,在200°C下,与DLC涂层不同,Mo-W-C涂层的摩擦系数随滑动距离的增加而显着降低。拉曼光谱揭示了结合的Mo和W掺杂和Mo-W-C涂层在滑动过程中的摩擦化学反应磨损机理的重要性。摩擦和磨损率的显着降低归因于转移层中存在石墨碳颗粒(来自涂层)和“就地”形成的金属硫化物(WS2和MoS2,其中来自涂层的金属和来自油的硫)。

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