4.5 Article

Ionic liquid lubrication effects on ceramics in a water environment

期刊

TRIBOLOGY LETTERS
卷 17, 期 3, 页码 533-541

出版社

SPRINGER/PLENUM PUBLISHERS
DOI: 10.1023/B:TRIL.0000044501.64351.68

关键词

friction; ionic liquids; tribology; ceramics; wear; water lubrication; electric double layer

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Ionic liquids were studied to determine their effectiveness as boundary lubricant additives for water. The chemical and tribo-chemical reactions that govern their behavior were probed to understand lubrication mechanisms. Under water lubricated conditions, silicon nitride ceramics are characterized by a running-in period of high friction, during which time the surface is modified causing a dramatic decrease in friction and wear. Two mechanisms have been proposed to explain the friction and wear behavior. Si3N4 sliding against itself may result in tribochemical reactions that form a hydrated silicon oxide layer on the surface of the sliding contact. This film has been suggested to mediate friction and wear. Others have suggested that tribo-dissolution of SiO2 results in an ultra smooth surface and after a running-in period of high wear, the lubrication mode becomes hydrodynamic. The goal of this study was to examine the effects that ionic liquids have on the friction and wear properties of Si3N4, in particular their effects on the running-in period. Tribological properties were evaluated using pin-on-disk and reciprocating tribometers. The tribological conditions of the tests were selected to produce mixed/hydrodynamic lubrication. The relative lubrication mode between mixed and hydrodynamic was controlled by the initial surface roughness. Solutions containing 2 wt% ionic liquids were produced for testing purposes. Chemical analysis of the sliding surfaces was accomplished with X-ray photoelectron spectroscopy (XPS) and Fourier transform infrared spectroscopy (FTIR). The test specimens were 1 in diameter Si3N4 disks sliding against 1/4 in Si3N4 balls. The addition of ionic liquids to water resulted in dramatically reduced running-in periods for silicon nitride from thousands to the hundreds of cycles. Proposed mechanisms include the formation of BFx and PFx films on the surface and creation of an electric double layer of ionic liquid.

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