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Rheological and tribological behaviour of lubricating oils containing platelet MoS_2 nanoparticles

机译:含血小板MoS_2纳米颗粒的润滑油的流变学和摩擦学行为

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摘要

This work concerns rheological and frictional behaviour of lubricating oils containing platelet molybdenum disulfide (MoS_2) nanoparticles (average diameter ~50 nm; single layer thickness ~3 nm). Stable nano-MoS_2 lubricants were formulated and measured for their rheological behaviour and tribological performance. Rheological experiments showed that the nano-MoS_2 oils were non-Newtonian following the Bingham plastic fluid model. The viscosity data fitted the classic Hinch-Leal (H-L) model if an agglomeration factor of 1.72 was introduced. Tribological experiments indicated that the use of MoS_2 nanoparticles could enhance significantly the tribological performance of the base lubricating oil (reduced frictional coefficient, reduced surface wear and increased stability). Scanning electron microscopy, laser confocal microscope and x-ray energy dispersive spectroscopy analyses suggested that the reduced frictional coefficient and surface wear be associated with surface patching effects. Such patching effects were shown to depend on the concentration of MoS_2 nanoparticles, and an effective patching required a concentration over approximately 1 wt%. The increased stability could be attributed to the enhanced heat transfer and lubricating oil film strength due to the presence of nanoparticles.
机译:这项工作涉及包含血小板二硫化钼(MoS_2)纳米颗粒(平均直径〜50 nm;单层厚度〜3 nm)的润滑油的流变和摩擦行为。配制稳定的纳米MoS_2润滑剂并测量其流变行为和摩擦学性能。流变实验表明,遵循宾厄姆塑性流体模型,纳米MoS_2油为非牛顿油。如果引入了1.72的团聚因子,则粘度数据符合经典的Hinch-Leal(H-L)模型。摩擦学实验表明,使用MoS_2纳米颗粒可以显着提高基础润滑油的摩擦学性能(降低摩擦系数,降低表面磨损和提高稳定性)。扫描电子显微镜,激光共聚焦显微镜和X射线能量色散光谱分析表明,降低的摩擦系数和表面磨损与表面修补效应有关。已显示出这种修补效果取决于MoS_2纳米颗粒的浓度,有效的修补要求浓度超过约1 wt%。由于存在纳米颗粒,增加的稳定性可以归因于增强的热传递和润滑油膜强度。

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