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转移层在潮湿空气和真空中氢化类金刚石碳膜摩擦的负载依赖性中的关键作用。

Key Role of Transfer Layer in Load Dependence of Friction on Hydrogenated Diamond-Like Carbon Films in Humid Air and Vacuum.

作者信息

Liu Yunhai, Chen Lei, Zhang Bin, Cao Zhongyue, Shi Pengfei, Peng Yong, Zhou Ningning, Zhang Junyan, Qian Linmao

机构信息

Tribology Research Institute, State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu 610031, China.

State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.

出版信息

Materials (Basel). 2019 May 12;12(9):1550. doi: 10.3390/ma12091550.

Abstract

The friction of hydrogenated diamond-like carbon (H-DLC) films was evaluated under the controlled environments of humid air and vacuum by varying the applied load. In humid air, there is a threshold applied load below which no obvious friction drop occurs and above which the friction decreases to a relatively low level following the running-in process. By contrast, superlubricity can be realized at low applied loads but easily fails at high applied loads under vacuum conditions. Further analysis indicates that the graphitization of the sliding H-DLC surface has a negligible contribution to the sharp drop of friction during the running-in process under both humid air and vacuum conditions. The low friction in humid air and the superlow friction in vacuum are mainly attributed to the formation and stability of the transfer layer on the counterface, which depend on the load and surrounding environment. These results can help us understand the low-friction mechanism of H-DLC film and define optimized working conditions in practical applications, in which the transfer layer can be maintained for a long time under low applied load conditions in vacuum, whereas a high load can benefit the formation of the transfer layer in humid air.

摘要

通过改变外加负载,在潮湿空气和真空的可控环境下评估了氢化类金刚石碳(H-DLC)薄膜的摩擦性能。在潮湿空气中,存在一个临界外加负载,低于该负载时不会出现明显的摩擦下降,高于该负载时,在磨合过程后摩擦会降至相对较低的水平。相比之下,在真空条件下,低外加负载时可实现超润滑,但高外加负载时容易失效。进一步分析表明,在潮湿空气和真空条件下的磨合过程中,滑动的H-DLC表面的石墨化对摩擦的急剧下降贡献可忽略不计。潮湿空气中的低摩擦和真空中的超低摩擦主要归因于对偶面上转移层的形成和稳定性,这取决于负载和周围环境。这些结果有助于我们理解H-DLC薄膜的低摩擦机制,并确定实际应用中的优化工作条件,即在真空环境下低外加负载条件下转移层可长时间维持,而在潮湿空气中高负载有利于转移层的形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b23a/6539659/13c678a93601/materials-12-01550-g001.jpg

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