Fitting mechanism on lubricated surface of babbitt alloy/bearing steel pair under ac electric field

Citation
Cm. Lin et al., Fitting mechanism on lubricated surface of babbitt alloy/bearing steel pair under ac electric field, WEAR, 249(1-2), 2001, pp. 133-142
Citations number
12
Categorie Soggetti
Material Science & Engineering
Journal title
WEAR
ISSN journal
00431648 → ACNP
Volume
249
Issue
1-2
Year of publication
2001
Pages
133 - 142
Database
ISI
SICI code
0043-1648(200104)249:1-2<133:FMOLSO>2.0.ZU;2-N
Abstract
The mechanism of electrical pitting on the lubricated surface of babbitt al loy/steel pair is investigated, and the threshold condition to avoid the oc currence of electrical pitting is also established by using a static electr ical pitting tester with high precision under the influence of ac electric field. According to the SEM micro-graph and EDS analysis are. the mechanism of electrical pitting is significantly influenced by the interface power a nd the oil film thickness. At the smaller oil film thickness, the eroded su rface of babbitt alloy exhibits a concave crater with a few micro-porosity in the vicinity of center region with a plateau on its surrounding, especia lly at high supply current. The polished track can be observed at the plate au. A large amount of tin element transfers to the steel ball surface becau se the molten tin contacts the ball. At the higher oil film thickness, only a little amount of metal element transfers to each other. The major pittin g area of the babbitt alloy is caused at the initial stage of the are disch arge. With increasing are discharge time, the pitting area increases slowly , and finally reaches a saturated value. When the electrical pitting occurs , correlation formula for the electrical pitting area in terms of interface power and melting point of material has been established. It is found that the higher interface power and the lower melting point of material, the hi gher electrical pitting area. Two electrical pitting regimes are found, nam ely, pitting and no-pitting regimes. The boundary between the pitting and n o-pitting regimes is called the threshold voltage. Correlation formula for the threshold voltage in terms of oil film thickness and melting point of m aterial is derived. (C) 2001 Published by Elsevier Science B.V.