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首页> 外文期刊>Tribology International >Effect of temperature on tribological performance of organic friction modifier and anti-wear additive: Insights from friction, surface (ToF-SIMS and EDX) and wear analysis
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Effect of temperature on tribological performance of organic friction modifier and anti-wear additive: Insights from friction, surface (ToF-SIMS and EDX) and wear analysis

机译:温度对有机摩擦改性的摩擦学性能和抗磨损添加剂的影响:摩擦,表面(TOF-SIMS和EDX)和磨损分析见识

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摘要

Tribological performance of an organic friction modifier (glycerol monooleate - GMO), an anti-wear additive (zinc dialkyldithiophosphate - ZDDP) and its combination was studied using a ball-on-disc tribometer equipped with optical interferometry at 90 degrees C and 140 degrees C. Higher temperatures were needed for the formation of additive layers and chemically reactive anti-wear protective layers. Comparison of Stribeck curves obtained after different rubbing durations showed that GMO reduced friction at low speed sliding-rolling contact. Despite notable decrease in the base oil viscosity with increase in temperature - in turn, increasing the severity of asperity contact - GMO exhibited enhanced frictional performance. The presence of ZDDP alone in the formulation led to significant increase in friction at both low and high temperatures, with the thickness of tribofilm unaffected after prolonged rubbing. The addition of friction modifier to ZDDP-based formulation reduced the friction in the boundary lubrication regime where longer rubbing aided in effective friction reduction at higher temperature. For the binary additive system, the friction coefficient was found to lie between the values corresponding to the single additives. The observed tribological response is attributed to preferential adsorption of the friction modifier over ZDDP and/or ZDDP decomposition products. This notion was corroborated by the results obtained from static and dynamic time-of-flight secondary ion mass spectrometry (ToF-SIMS) and energy-dispersive X-ray spectroscopy (EDX) analysis of the disc surface post tribological measurement. The concentration gradient of different chemical species detected in the tribofilm correlated with the frictional performance of the additives. Analysis of surface roughness and wear scar width showed an improvement in wear performance at higher temperature suggesting the friction modifier and anti-wear additive adsorbed on the surface providing a mechanical barrier. A synergistic effect on the wear performance was observed for GMO + ZDDP-based formulations, which resulted in a smaller wear scar compared to the individual additives.
机译:有机摩擦改进剂(甘油单油酸酯-转基因)的摩擦学性能,在90°C和140°C温度下,使用配备光学干涉仪的球盘式摩擦计研究了抗磨添加剂(二烷基二硫代磷酸锌-ZDDP)及其组合。形成添加剂层和化学反应抗磨保护层需要更高的温度。对不同摩擦持续时间后获得的斯特里贝克曲线的比较表明,GMO降低了低速滑动滚动接触时的摩擦。尽管基础油粘度随着温度的升高而显著降低,进而增加了粗糙度接触的严重程度,但GMO表现出了增强的摩擦性能。配方中单独存在ZDDP会导致低温和高温下的摩擦显著增加,在长时间摩擦后,摩擦膜厚度不受影响。在基于ZDDP的配方中添加摩擦改进剂可降低边界润滑区的摩擦,而较长的摩擦有助于在较高温度下有效降低摩擦。对于二元添加剂体系,发现摩擦系数介于对应于单一添加剂的值之间。观察到的摩擦学响应归因于摩擦改性剂对ZDDP和/或ZDDP分解产物的优先吸附。这一观点得到了摩擦测量后圆盘表面静态和动态飞行时间二次离子质谱(ToF-SIMS)和能量色散X射线光谱(EDX)分析结果的证实。在摩擦膜中检测到的不同化学物质的浓度梯度与添加剂的摩擦性能相关。对表面粗糙度和磨痕宽度的分析表明,高温下的磨损性能有所改善,表明表面吸附的摩擦改性剂和抗磨添加剂提供了机械屏障。在基于GMO+ZDDP的配方中观察到了对磨损性能的协同效应,与单独的添加剂相比,这导致了较小的磨痕。

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