Antifriction and Antiwear Properties of an Ionic Liquid with Fluorine-Containing Anion Used as Lubricant Additive

被引:0
作者
D. Blanco
R. González
J. L. Viesca
A. Fernández-González
M. Bartolomé
A. Hernández Battez
机构
[1] University of Oviedo,Department of Construction and Manufacturing Engineering
[2] University of Oviedo,Department of Physical and Analytical Chemistry
[3] University of Oviedo,Department of Marine Science and Technology
[4] Bournemouth University,Department of Design and Engineering
来源
Tribology Letters | 2017年 / 65卷
关键词
Ionic liquid; Friction; Wear; Lubricant additive;
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摘要
Tribological behavior of trihexyltetradecylphosphonium bis(trifluoromethylsulfonyl) imide [P66614][NTf2] ionic liquid (IL) used as additive in a diester oil at concentrations of 0.25, 0.5 and 1 wt% was studied in this research. The IL solubility in the base oil was measured using the inductively coupled plasma mass spectrometry (ICP-MS) technique, and corrosion analysis was done at room temperature at relative humidity of 49–77%. Tribological tests were conducted for 30 min at room temperature, 15 Hz frequency, 4 mm of stroke length, a load of 80 N (corresponding to 2 GPa of maximum contact pressure) and relative humidity of 35–53%. Friction coefficient was recorded during tests, and the wear scar was measured by confocal microscopy. Worn surface was also analyzed by SEM, EDS and XPS. Results showed that a saturated solution of [P66614][NTf2] in the base oil contains about 30 wt% of IL and corrosion activity for the highest concentration of IL (1 wt%) was not found after a 20-day test. Although the base oil and the mixtures had similar friction behavior, only the 1 wt% sample exhibited slightly lower wear volume than the base oil. SEM images exhibited similar wear track width (707–796 µm) and wear mechanism (adhesive) for all samples tested. In addition, the EDS spectra only showed the elements present in the steel. Finally, the XPS measurements could not detect differences regarding iron chemical state among the samples, which is consistent with the tribological behavior obtained.
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[31]  
Carrión FJ(2012)Thermo-oxidative stability and corrosion properties of ammonium based ionic liquids Tribol. Int. 46 73-63
[32]  
Bermúdez MD(2010)Imidazolium ionic liquids as antiwear and antioxidant additive in poly(ethylene glycol) for steel/steel contacts ACS Appl. Mater. Interfaces 2 870-284
[33]  
Martínez-Nicolás G(2014)Influence of cationic moieties on the tribolayer constitution shown for bis(trifluoromethylsulfonyl)imide based ionic liquids studied by X-ray photoelectron spectroscopy Tribol. Int. 80 90-1089
[34]  
Kamimura H(2015)Ionic liquids as an additive in fully formulated wind turbine gearbox oils Wear 328–329 50-11553
[35]  
Kubo T(2010)Transition in wear performance for ionic liquid lubricants under increasing load Tribol. Lett. 40 279-235
[36]  
Minami I(2008)Tribological properties of Fe7Mo6-based alloy under two ionic liquid lubrications Tribol. Int. 41 1083-189
[37]  
Mori S(2015)Tribological performance of PTFE-based coating modified with microencapsulated [HMIM][NTf Tribol. Lett. 59 13-569
[38]  
Qu J(2013)] ionic liquid ACS Appl. Mater. Interfaces 5 11544-223
[39]  
Truhan JJ(2010)Ionic liquids as antiwear additives in base oils: influence of structure on miscibility and antiwear performance for steel on aluminum Tribol. Lett. 40 225-798
[40]  
Dai S(2009)Tribo-chemistry of phosphonium-derived ionic liquids Tribol. Lett. 35 181-131