AGMA 99FTM4-1999 Gear Oil Micropitting Evaluation《齿轮油的微点蚀评价》.pdf
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1、99FTM4Gear Oil Micropitting Evaluationby: A.B. Cardis and M.N. Webster, Mobil Technology CompanyAmerican Gear Manufacturers AssociationTECHNICAL PAPERGear Oil Micropitting EvaluationA.B. Cardis and M.N. Webster, Mobil Technology CompanyThe statements and opinions contained herein are those of the au
2、thor and should not be construed as an official action oropinion of the American Gear Manufacturers Association.AbstractAs micropitting of gears has become increasingly recognized as a cause of gearbox failures, gear manufacturers havebegun to require documentation of gear oil micropitting performan
3、ce. The German FVA Procedure No. 54, currently theonly industry recognized test, has limited availability and takes several months to complete. A laboratory test has beendeveloped using a roller disk machine to simulate micropitting of gears. This test was instrumental in the development ofnew micro
4、pitting resistant gear oils. A helical gear test was developed using specially designed gears running on a foursquare test rig to further document micropitting performance prior to field testing the new oils.Copyright 1999American Gear Manufacturers Association1500 King Street, Suite 201Alexandria,
5、Virginia, 22314October, 1999ISBN: 1-55589-742-8GEAROILMICROPITTINGEVALUATIONA. B. Cardisand M. N. Webster,MobilTechnologyCompany,Paulsboro,New JerseyIntroductionUnlike macropitting, micropitting is difficult toDuring the last decade industrial gear see, particularly under the conditions of fieldmanu
6、facturers, particularly in Europe, began to inspections. In the laboratory, with a cleanrequire documentation of micropitting gear mounted under a microscope with goodperformance before approving a gear oil for directional lighting, micropitting takes on theuse in their equipment. The development of
7、 appearance of etched glass. In the field, themicropitting resistant lubricants has been tooth surface must be illuminated from variouslimited both by a lack of understanding of the angles to see if the characteristic matte areasmechanism by which certain lubricant can be revealed.chemistry promotes
8、 micropitting and by a lackof readily available testing for evaluation of the Micropittingmay occur almost anywhere on themicropitting resistance of lubricants. This gear tooth. However, research shows thatpaper reports results of two types of testing: micropitting is most likely to occur at local(1
9、) the use of a roller disk machine to conduct areas of high load or areas associated withsmall scale laboratory studies of the effects of higher sliding during the gear tooth contactindividual additives and combinations of cycle. For this reason micropitting is oftenadditives on micropitting and (2)
10、 a helical gear found in the addendum and dedendum of thetest used to study micropitting performance of tooth profile and at the edge of the gear tooth ifformulated gear oils. the gears are misaligned. Also, it has beenobserved that micropitting will often track local- Background high spots in the s
11、urface topography of thev- gears which will be associated with local highMicropitting is an unexpectedly high rolling stresses.contact fatigue wear phenomenon that isobserved in combined rolling and sliding The progressionofmicropitting may eventuallycontacts operating under Elastohydrodynamic resul
12、t in macropitting. If pits form they oftenLubrication (EHL) or mixed EHUBoundary display a characteristic arrowhead or fanLubrication conditions. Besides operating shape, with the pointed end at the edge of theconditions such as temperature, load, speed, micropitted area. There are also reportedslid
13、ing and specific film thickness, the chemical cases where the micropitting progresses up tocomposition of a lubricant has been found to a point and stops, sometimes described as astrongly influence this wear phenomenon, form of running-in or stress relief. Although itTypically the failure may start
14、during the first may appear innocuous, such loss of metal5 610 to 10 stress cycles with the generation of from the gear surface causes loss of gearnumerous surface cracks. The cracks accuracy, increased vibration and noise andpropagate at a shallow angle to the surface other related problems. The me
15、tal particlesforming micropits with characteristic released into the oil may be too small to bedimensions of approximately lOl_m. The picked up by commonly used filters, but largemicropits coalesce to produce a continuous enough to damage tooth and bearingfractured surface with a characteristic dull
16、 surfaceslmatte appearance variously called graystaining, frosting or micropitting when applied Micropitting Teststo gears. Micropittingis the preferred term.The terms peeling or general superficial The factors that influence micropittinghavespallinghave been usedto describethisfailure been reported
17、2 along with suggestions formode when it occurs on rolling element preventingthe problemas tabulatedbelow:bearings. Micropitting is generally, but not-1- necessarilyexclusively, a problem associated Influencing Factor Suggested RemedyGear surface roughness Reduce to 0.3p.m1. with heavily loaded case
18、 hardened gears. Reduceaustenitel vel RetainedausteniteLubricantviscosity Use highestpracticalvisc 2.32 resulted in a moderate reduction in -Coefficient of friction Reducethe coeff of friction micropitting damage versus virtualSpeed Runat highspeed (toproducethickerEHLfilm) eliminationof micropittin
19、g with polishedOiltemperature Reduceoiltemperature surfacesgivinga specificfilm thickness ofLubricantadditivechemistry Use properlyselected 5.62.additives = Micropittingis drastically reduced at lownon-zeroslide to rollratios(e.g. a slide toThe selectionof properlyadditizedlubricantsis rollratioof 0
20、.0095)the most difficult parameter to determine.Ueno, et alz found in their testing that anti- The variable load method as described inscuffing additives (often referred to as EP reference4 has been used to investigatetheadditives) in a GL-5 type lubricant caused effect of lubricantcompositionon mic
21、ropitting.micropittingto increase. Certain specification Figure 1 shows resultsobtainedfrom the teststests, such as the Timken OK Load Test, Four conducted using a series of ISO VG 100BallEP Test andthe FZG ScuffingTest require industrial gear lubricants. The two sulfur-the use of suchanti-scuffinga
22、dditives, phosphorusgear oilscontainthe anti-wearandanti-scuffing additives required to provideThere is no globally accepted test for Timken OK load results greater than 60 Ibs.determiningthe effect of the lubricanton gear The syntheticPAO based circulatingoil wasmicropitting.However,the testreporte
23、dinthe formulated to provide FZG fail stage 11FVA (ForschungsvereinigungAntriebstechnik, scuffingprotectionbutdoes not providea highGerman Research Association for Drive level of Timken OK load protection. DespiteTechnology)InformationSheet No. 54/I-IV has the scatter associated with the mineral gea
24、rgained widespread acceptance among gear oils,the resultsshow that boththe mineralandbuildersand customers. In this test the failure syntheticbased gear oils yieldsimilar results.is determined by the degree to which The resultsfor the synthetic PAO circulatingoilmicropitting causes a deviation from
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