纳米 BNNs/Cu 复合添加剂润滑下气缸套-活塞环摩擦学特性的深入研究

IF 2 3区 材料科学 Q2 ENGINEERING, MECHANICAL
Lifanxing Liu, Zhiwei Guo, Xiang Rao, Huabin Yin, Chenxing Sheng, Chengqing Yuan
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引用次数: 0

摘要

为了改善气缸套-活塞环的摩擦学性能,制备了一种二维六方氮化硼/铜复合润滑添加剂,并对其进行了详细表征。通过在 Rtec 摩擦和磨损试验机上进行往复摩擦试验,研究了不同浓度的纳米六方氮化硼复合材料的摩擦学特性和润滑机理。结果表明,通过多巴胺的自聚合作用,铜被成功还原并附着在 h-BN 纳米片表面,球形结构促进了纳米片在往复摩擦过程中的层间滑移。适当浓度的纳米复合添加剂具有优异的抗摩擦和抗磨损性能。在 1 Hz 和 100 N 条件下,浓度为 2 wt% 的纳米复合添加剂的摩擦系数和磨损质量分别降低了 29.07% 和 76%。气缸套样品的表面 Sq 值和 Sz 值分别降低了 68.06% 和 74.47%。同时,在高速重载条件下,气缸套样品的平均磨损深度降低了 61.3%。纳米复合材料添加剂在气缸套磨损表面形成了极好的摩擦保护膜,能更好地进入气缸套磨损表面,产生填充和修复作用。该研究成果为使用纳米六方氮化硼复合添加剂抑制船用柴油机气缸套-活塞环磨损提供了一种方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insight into the tribological properties of cylinder liner-piston ring under the nano BNNs/Cu composite additive lubrication
To improve the tribological properties of the cylinder liner-piston ring, a two-dimensional hexagonal boron nitride/copper composite lubricant additive was prepared and characterized in detail. The tribological properties and lubrication mechanism of nano hexagonal boron nitride composites with different concentrations were studied through the reciprocating friction test on the Rtec friction and wear tester. The results show that copper is successfully reduced and attached to the surface of h-BN nanosheets through the self-polymerization of dopamine, and the spherical structure promotes the interlayer slip of the nanosheets during the reciprocating friction process. The appropriate concentration of nano composite additives has excellent anti-friction and anti-wear properties. At 1 Hz and 100 N, the friction coefficient and wear quality of the nano composite additive with a concentration of 2 wt% were reduced by 29.07% and 76%, respectively. The surface Sq value and Sz value of the cylinder liner sample decreased by 68.06% and 74.47%. At the same time, under the condition of high speed and heavy load, the average wear depth of the cylinder liner sample is reduced by 61.3%. The nano composite material additive forms an excellent friction protective film on the wear surface of the cylinder liner, which can better enter the wear surface of the cylinder liner and produce a filling and repairing effect. The research results provide a method for the use of nano hexagonal boron nitride composite additives to inhibit the wear of cylinder liner-piston ring of Marine diesel engines.
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来源期刊
Surface Topography: Metrology and Properties
Surface Topography: Metrology and Properties Materials Science-Materials Chemistry
CiteScore
4.10
自引率
22.20%
发文量
183
期刊介绍: An international forum for academics, industrialists and engineers to publish the latest research in surface topography measurement and characterisation, instrumentation development and the properties of surfaces.
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