ISSN   1004-0595

CN  62-1224/O4

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增黏、防腐、减摩抗磨多功能一体化的水基润滑添加剂的设计制备及摩擦学性能研究

Design, Preparation, and Tribological Performance of Water-Based Lubricating Additives with Multifunctional Integration of Viscosity Enhancement, Anti-Corrosion, Friction Reduction and Anti-Wear

  • 摘要: 本文中以聚乙二醇甲醚甲基丙烯酸酯和甲基丙烯酸二甲氨乙酯的共聚物作为阳离子,以含双羧基的N-月桂酰谷氨酸根作为阴离子,合成了1种新型的质子型聚离子液体PPDL,并将其用作水基润滑添加剂. 通过SRV-V摩擦磨损试验机和全自动真彩共聚焦显微镜,对添加剂PPDL的摩擦磨损性能进行了表征. 此外,利用扫描电子显微镜(SEM)观察磨斑表面的微观形貌,并结合电接触电阻(ECR)、X射线光电子能谱仪(XPS)和飞行时间二次质谱法(ToF-SIMS)分析,深入研究了PPDL添加剂的润滑机理. 结果表明:PPDL添加剂能显著提高水基润滑液的黏度、抗腐蚀性能和减摩抗磨性能. 与去离子水相比,当PPDL的添加质量分数为6%时,水基润滑液的摩擦系数和磨损体积分别降低了约71%和86%,展现出卓越的减摩抗磨效果. 机理分析结果显示:含有PPDL的润滑液能在球盘摩擦副界面处形成物理吸附膜和化学反应膜,两者协同作用显著提高了水基润滑剂的摩擦学性能. 该PPILs润滑添加剂不含硫、磷和卤族元素,制备简单,绿色环保,有望作为全合成水基金属加工液或难燃液压液的增黏润滑添加剂.

     

    Abstract:
    Water-based lubricants have garnered significant attention due to their environmentally friendly, flame-retardant nature, abundant availability, and cost-effectiveness. However, they commonly suffer from inadequate lubrication performance, susceptibility to corrosion, and low viscosity. In this study, a novel protic poly(ionic liquid), PPDL, was synthesized with the copolymer of poly (ethylene glycol) methyl ether methacrylate and dimethylaminoethyl methacrylate as the cation, and N-lauroyl glutamate containing bicarboxylic groups as the anion and utilized as water-based lubricant additive. The thermal stability, corrosion resistance, and viscosity of PPDL were characterized through thermogravimetric analysis, immersion corrosion tests, viscometer and rotational rheometer analysis. The friction and wear properties of the additive were evaluated using an SRV-V friction and wear tester in conjunction with a fully automated true color confocal microscope. Furthermore, the lubrication mechanisms of the PPDL additive were investigated by scanning electron microscopy (SEM) to examine the micro-morphology of worn surfaces combined with electrical contact resistance (ECR), X-ray photoelectron spectroscopy (XPS), and time-of-flight secondary mass spectrometry (ToF-SIMS) analysis.
    The PPDL exhibited exceptional thermal stability, with its thermal decomposition temperatures of 5% and 10% reaching 238.5℃ and 250.7℃, respectively. The addition of PPDL effectively mitigated the corrosion caused by water-based lubricating fluids on cast iron sheets, resulting in a change from corrosion grade D (heavy rusting, severe light loss) for water to grade B (no rusting but slight light loss) for PPDL aqueous solution. Furthermore, at a concentration of 4%, PPDL significantly enhanced the kinematic viscosity of water by one order of magnitude. Under the same concentration condition (6%), PPDL exhibits a greatly better viscosity enhancement effect on water-based lubricating fluids compared to commercial viscosity builders SDN45 and APE30.
    The addition of PPDL additive to deionized water could significantly decrease the coefficient of friction and wear volume of the water-based lubricating fluid. When PPDL was added at a concentration of 6%, the average coefficient of friction and wear volume were reduced by approximately 71% and 86% respectively, compared to deionized water, demonstrating exceptional friction reduction and anti-wear properties. Furthermore, the lubrication performance of PPDL additive surpassed that of two commercial viscosity builders, SDN45 and 6% APE30. Compared to deionized water, after lubrication of water-based lubricants containing PPDL, the width and depth of abrasive spots decreased, and the adhesive wear and abrasive wear are significantly reduced.
    The results of the mechanisms demonstrated that, during the friction process, a complex chemical reaction occured between PPDL and the friction pairs, resulting in the formation of tribochemical reaction films at the interface containing N, C, O, and Fe. These reaction films, combined with the physical/chemical adsorption films formed by the polymer at the interface, synergistically prevent direct contact between sliding pairs, which endowed the water-based lubricant with superior tribological performance. The additive was convenient to prepare and environmentally friendly, and was promising to be utilized as the multifunctional additive in metal working fluids and non-flammable hydraulic fluids.

     

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