a-C:H膜在轴承钢粗表面超润滑过程中的界面行为研究

IF 6.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Yinhui Wang , Wenli Deng , Wei Qi , Xinchun Chen , Jianxun Xu , Chenhui Zhang
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引用次数: 5

摘要

氢化非晶态碳(a-C:H)膜在惰性气体气氛中可以实现超润滑,但大多数用于涂层的基材表面粗糙度(在原子尺度或几纳米范围内)远远小于工程应用的等级。为了揭示含有a-C:H膜的粗糙表面凹凸不平对超润滑的影响机理,采用离子束沉积法在轴承钢粗糙表面(算术平均高度Sa ~ 128 nm)沉积了a-C:H膜。摩擦学试验表明,在至少80,000次滑动循环中,摩擦系数可保持在0.004 ~ 0.008的超低水平。多波长拉曼光谱表明,摩擦次数越多,a-C:H膜的氢原子消耗越多,其sp2聚类增加。与较少的摩擦循环次数相比,最大循环次数摩擦后的氢含量降低了3.95 ~ 7.85%。与光滑表面1.17 GPa的表观接触压力相比,粗糙表面的估计接触压力增加了4倍以上。结果表明,虽然表面峰顶的氢原子在摩擦过程中被消耗,但在山谷中保持a-C:H膜原始氢含量的材料逐渐参与摩擦并承担超润滑作用。这些发现可以为高氢化a- c:H膜涂层在工业设备运动部件上的应用提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Understanding the interfacial behaviors during superlubricity process of a-C:H film coated on the rough bearing steel surface

Hydrogenated amorphous carbon (a-C:H) film can achieve superlubricity in inert gas atmosphere in the previous reports, but the roughness (at atomic scale or several nanometers range) of most employed substrate surfaces for coating is much smaller than the grade of engineering application. Aiming at disclosing the influence mechanism of asperities of rough surface with a-C:H film on superlubriciy, in this work, the a-C:H film was deposited on the rough bearing steel surface (arithmetic mean height Sa ~ 128 nm) by ion beam deposition method. The tribological tests show that the friction coefficient can maintain a superlow level in the range of 0.004 ~ 0.008 for at least 80,000 sliding cycles. Multiwavelength Raman spectra indicate that more rubbing cycles lead to the consumption of the hydrogen atoms and the increasing of the sp2 clustering of a-C:H film coated on counterpart balls. The hydrogen content after the maximum cycles rubbing is reduced by 3.95–7.85% in contrast to the fewer friction cycles. The estimated contact pressure of the rough surface rises more than 4 times as compared with the apparent contact pressure of 1.17 GPa for the smooth surface. The results highlight that although the hydrogen atoms in summits of surface are consumed during friction, the materials keeping the original hydrogen content of a-C:H film in the valley gradually participate in rubbing and undertake the role of superlubricity. These findings can provide a guidance towards a possibility of the application of highly-hydrogenated a-C:H film coated on the moving parts of industry equipment.

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来源期刊
Tribology International
Tribology International 工程技术-工程:机械
CiteScore
10.10
自引率
16.10%
发文量
627
审稿时长
35 days
期刊介绍: Tribology is the science of rubbing surfaces and contributes to every facet of our everyday life, from live cell friction to engine lubrication and seismology. As such tribology is truly multidisciplinary and this extraordinary breadth of scientific interest is reflected in the scope of Tribology International. Tribology International seeks to publish original research papers of the highest scientific quality to provide an archival resource for scientists from all backgrounds. Written contributions are invited reporting experimental and modelling studies both in established areas of tribology and emerging fields. Scientific topics include the physics or chemistry of tribo-surfaces, bio-tribology, surface engineering and materials, contact mechanics, nano-tribology, lubricants and hydrodynamic lubrication.
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