Tribological properties and lubrication mechanism of protic ionic liquid-modified nanosilica as high-temperature antiwear additive for pentaerythritol ester

Tribology International - Tập 176 - Trang 107886 - 2022
Bairun Chen1, Lisha Liu1, Chunli Zhang1,2, Shengmao Zhang1, Yujuan Zhang1, Pingyu Zhang1
1Engineering Research Center for Nanomaterials, Henan University, Kaifeng 475004, China
2Institute of Pharmacy, School of Pharmacy, Henan University, Kaifeng 475004, China

Tài liệu tham khảo

Ngo, 2020, Competitive adsorption of ionic liquids versus friction modifier and anti-wear additive at solid/lubricant interface—speciation with vibrational sum frequency generation spectroscopy, Lubricants, 8, 98, 10.3390/lubricants8110098 Suarez, 2010, The influence of base oil polarity on the tribological performance of zinc dialkyl dithiophospate additives, Tribol Int, 43, 2268, 10.1016/j.triboint.2010.07.016 Suarez, 2011, The influence of base oil polarity and slide–roll ratio on additive-derived reaction layer formation, Proc Inst Mech Eng Part J: J Eng Tribol, 225, 565, 10.1177/1350650111405115 Guan, 2016, The chemistry, mechanism and function of tricresyl phosphate (TCP) as an antiwear lubricant additive, Lubr Sci, 28, 257, 10.1002/ls.1327 Han, 1999, Comparison of antiwear additive response among several base oils of different polarities, Tribol Trans, 42, 902, 10.1080/10402009908982299 Ree, 2014, Health risk assessment of exposure to TriCresyl Phosphates (TCPs) in aircraft: a commentary, NeuroToxicology, 45, 209, 10.1016/j.neuro.2014.08.011 Huai, 2020, Graphite-based solid lubricant for high-temperature lubrication, Friction, 9, 1660, 10.1007/s40544-020-0456-2 Sang, 2022, Tribological performances of ceramic oxide nanoparticle additives in sodium borate melt under steel/steel sliding contacts at high temperatures, Tribol Int, 165 Seymour, 2018, Improved lubricating performance by combining oil-soluble hairy silica nanoparticles and an ionic liquid as an additive for a synthetic base oil, ACS Appl Mater Interfaces, 10, 15129, 10.1021/acsami.8b01579 Xu, 2015, Formation of an adsorption film of MoS2 nanoparticles and dioctyl sebacate on a steel surface for alleviating friction and wear, Tribol Int, 92, 172, 10.1016/j.triboint.2015.06.011 Gong, 2020, MoS2 nanoparticles grown on carbon nanomaterials for lubricating oil additives, Friction, 9, 747, 10.1007/s40544-020-0369-0 Wu, 2018, MoS2/WS2 quantum dots as high-performance lubricant additive in polyalkylene glycol for steel/steel contact at elevated temperature, Adv Mater Interfaces, 5, 1700859, 10.1002/admi.201700859 Jiang, 2019, Synthesis of oil-soluble WS2 nanosheets under mild condition and study of their effect on tribological properties of poly-alpha olefin under evaluated temperatures, Tribol Int, 138, 68, 10.1016/j.triboint.2019.05.036 Niste, 2016, Tungsten dichalcogenide lubricant nanoadditives for demanding applications, Mater Today Commun, 8, 1, 10.1016/j.mtcomm.2016.04.015 Jiang, 2016, Tribological properties of oleylamine-modified ultrathin WS2 nanosheets as the additive in polyalpha olefin over a wide temperature range, Tribol Lett, 61, 24, 10.1007/s11249-016-0643-5 Wu, 2016, Treelike polymeric phosphate esters grafted onto graphene oxide and its tribological properties in polyalkylene glycol for steel/steel contact at elevated temperature, RSC Adv, 6, 47824, 10.1039/C6RA06919C Wu, 2018, Mechanical synthesis of chemically bonded phosphorus–graphene hybrid as high-temperature lubricating oil additive, RSC Adv, 8, 4595, 10.1039/C7RA11691H Tian, 2022, Organic-sulfonate functionalized graphene as a high temperature lubricant for efficient antifriction and antiwear in water based drilling fluid, Tribol Lett, 70, 32, 10.1007/s11249-022-01575-6 Jia, 2021, Effects of magnetic ionic liquid as a lubricant on the friction and wear behavior of a steel-steel sliding contact under elevated temperatures, Friction, 9, 61, 10.1007/s40544-019-0324-0 Yao, 2008, High-temperature tribological properties of 2-substituted imidazolium ionic liquids for Si3N4-steel contacts, Tribol Lett, 32, 73, 10.1007/s11249-008-9364-8 Wu, 2015, In situ formed ionic liquids in polyol esters as high performance lubricants for steel/steel contacts at 300 °C, ACS Sustain Chem Eng, 3, 2281, 10.1021/acssuschemeng.5b00566 Huang, 2017, Investigation of the lubricity and antiwear behavior of guanidinium ionic liquids at high temperature, Tribol Int, 114, 65, 10.1016/j.triboint.2017.04.010 Maurya, 2022, Ionic liquid-nanoparticle-based hybrid-nanolubricant additives for potential enhancement of tribological properties of lubricants and their comparative study with ZDDP, Tribol Lett, 70, 11, 10.1007/s11249-021-01551-6 Zheng, 2022, Macroscale superlubricity achieved via hydroxylated hexagonal boron nitride nanosheets with ionic liquid at steel/steel interface, Friction, 10, 1365, 10.1007/s40544-021-0545-x Nasser, 2020, Synergistic effects of hexagonal boron nitride nanoparticles and phosphonium ionic liquids as hybrid lubricant additives, J Mol Liq, 311, 113343, 10.1016/j.molliq.2020.113343 Liñeira del Río, 2021, Tribological synergies among chemical-modified graphene oxide nanomaterials and a phosphonium ionic liquid as additives of a biolubricant, J Mol Liq, 336, 10.1016/j.molliq.2021.116885 Guo, 2021, Tribological behaviors of novel epoxy nanocomposites filled with solvent-free ionic SiO2 nanofluids, Compos Part B: Eng, 215, 10.1016/j.compositesb.2021.108751 Rahman, 2022, Recent progress on phosphonium-based room temperature ionic liquids: synthesis, properties, tribological performances and applications, Tribol Int, 167, 10.1016/j.triboint.2021.107331 Fry, 2020, Adsorption of organic friction modifier additives, Langmuir, 36, 1147, 10.1021/acs.langmuir.9b03668 Huang, 2017, Probing the lubricating mechanism of oil-soluble ionic liquids additives, Tribol Int, 107, 152, 10.1016/j.triboint.2016.08.027 Li, 2006, Surface-modification in situ of nano-SiO2 and its structure and tribological properties, Appl Surf Sci, 252, 7856, 10.1016/j.apsusc.2005.09.068 Sui, 2016, Effects of functional groups on the tribological properties of hairy silica nanoparticles as an additive to polyalphaolefin, RSC Adv, 6, 393, 10.1039/C5RA22932D Bagwe, 2006, Surface modification of silica nanoparticles to reduce aggregation and nonspecific binding, Langmuir, 22, 4357, 10.1021/la052797j Azman, 2019, Dispersion stability and lubrication mechanism of nanolubricants: a review, Int J Precis Eng Manuf-Green Technol, 6, 393, 10.1007/s40684-019-00080-x Fu, 2015, Tribochemical behaviors of phosphite esters and their combinations with alkyl amines, Appl Surf Sci, 357, 1163, 10.1016/j.apsusc.2015.09.156 Kapsa, 1982, Boundary lubricant films: a review, Tribol Int, 15, 37, 10.1016/0301-679X(82)90110-4 Hu, 2021, Diisooctyl sebacate-containing nickel nanoparticles for lubrication of steel sliding parts under magnetic fields, ACS Appl Nano Mater, 4, 7007, 10.1021/acsanm.1c01053 Langevoort, 1987, On the oxide formation on stainless steels AISI 304 and incoloy 800H investigated with XPS, Appl Surf Sci, 28, 167, 10.1016/0169-4332(87)90062-6 Wang, 2018, Halide-free PN ionic liquids surfactants as additives for enhancing tribological performance of water-based liquid, Tribol Int, 128, 190, 10.1016/j.triboint.2018.07.018 Huang, 2019, Insight into the lubricating mechanism for alkylimidazolium phosphate ionic liquids with different alkyl chain length, Tribol Int, 140, 10.1016/j.triboint.2019.105886 Gan, 2019, Amine-terminated ionic liquid modified graphene oxide/copper nanocomposite toward efficient lubrication, Appl Surf Sci, 491, 105, 10.1016/j.apsusc.2019.06.141 Garbassi, 1995, A study of surface modification of silica using XPS, DRIFT and NMR, Appl Surf Sci, 84, 145, 10.1016/0169-4332(94)00469-2