AGMA 09FTM12-2009 The Anatomy of a Micropitting Induced Tooth Fracture Failure - Causation Initiation Progression and Prevention《含断齿故障的微点蚀的分解.起因、开始、前进和防护》.pdf
《AGMA 09FTM12-2009 The Anatomy of a Micropitting Induced Tooth Fracture Failure - Causation Initiation Progression and Prevention《含断齿故障的微点蚀的分解.起因、开始、前进和防护》.pdf》由会员分享,可在线阅读,更多相关《AGMA 09FTM12-2009 The Anatomy of a Micropitting Induced Tooth Fracture Failure - Causation Initiation Progression and Prevention《含断齿故障的微点蚀的分解.起因、开始、前进和防护》.pdf(12页珍藏版)》请在麦多课文档分享上搜索。
1、09FTM12AGMA Technical PaperThe Anatomy of aMicropitting InducedTooth Fracture Failure- Causation, Initiation,Progression andPreventionby R.J. Drago, R.J. Cunningham,and S. Cymbala, Drive SystemsTechnology, Inc.The Anatomy of a Micropitting Induced Tooth FractureFailure - Causation, Initiation, Progr
2、ession and PreventionRaymond J. Drago, Roy J. Cunningham, and Steve Cymbala, Drive SystemsTechnology, Inc.The statements and opinions contained herein are those of the author and should not be construed as anofficial action or opinion of the American Gear Manufacturers Association.AbstractMicropitti
3、ng has become a major concern in certain classes of industrial gear applications, especially windpowerandotherrelativelyhighlyloadedsomewhatslowspeedapplications,wherecarburizedgearsareusedtofacilitatemaximumloadcapacityinacompactpackage.Whilebyitselftheappearanceofmicropittingdoesnotgenerallycausem
4、uchperturbationintheoveralloperationofagearsystem,theultimateconsequencesofa micropitting failure can, and frequently are, much more catastrophic.Micropittingismostoftenassociatedwithparallelaxisgears(spurandhelical)however,theauthorshavealsofound this type of distress when evaluating damage to carb
5、urized, hardened and hard finished spiral bevelgears.This paper presents a discussion of the initiation, propagation and ultimate tooth fracture failure mechanismassociatedwithamicropittingfailure. Thesubjectispresentedbywayofthediscussionofdetaileddestructivemetallurgical evaluations of several exa
6、mple micropitting failures that the authors have analyzed on bothparallel axis and bevel gears.Copyright 2009American Gear Manufacturers Association500 Montgomery Street, Suite 350Alexandria, Virginia, 22314September 2009ISBN: 978-1-55589-965-33The Anatomy of a Micropitting Induced Tooth Fracture Fa
7、ilure- Causation, Initiation, Progression and PreventionRaymond J. Drago, Roy J. Cunningham, and Steve Cymbala,Drive Systems Technology, Inc.ForewordMicropitting has become a major concern in certainclasses of industrial gear applications, especiallywindpowerandotherrelativelyhighlyloadedsome-what s
8、low speed applications, especially wherecarburized gears are used to facilitate maximumloadcapacityinacompact package. Althoughmostfrequently associated with lower speed gearsystems, micropitting can also be observed in highand very high speed gear systems as well thoughthe failure sequence can be s
9、omewhat different atthehighspeedendofthespectrum. Whileof andbyitself, the appearanceof micropitting, Figure 1doesnot generallycausemuchperturbationintheoveralloperation of a gear system, the ultimate conse-quencesof amicropittingfailurecan, andfrequentlyare, much more catastrophic.Figure 1. Typical
10、 micropitted regionUnfortunately, the micropitting phenomenon,including the underlying causes and analysismethods directed at prevention in the design stage,is not fully understood. Indeed, even the conditionto which the term should be applied is subject tosome discussion and disagreement. We do not
11、propose, herein, to address the greater subject ofclassification, analyticalevaluationandterminologyina“Standard”sense. Ratherthispaperpresentsadiscussionoftheinitiation,propagationandultimatetooth fracture failure mechanism associated with amicropitting failure.Thesubject ispresentedbywayofthediscu
12、ssionofdetailed destructive metallurgical evaluations ofseveral example micropitting failures that theauthors have analyzed as a part of larger investiga-tions of tooth fracture failures. Micropitting is mostoften associated with parallel axis gears (spur andhelical) however, the authors have also f
13、ound thistype of distress when evaluating damage tocarburized, hardened and hardfinished spiralbevelgears. Micropitting observed on both parallel axisand bevel gears will be addressed in thispresentation. Although no specific failure “case” ispresented,informationhasbeenextractedandcon-densed from s
14、everal individual actual tooth fracturefailure investigations conducted by the authors sothat a better understanding of the specific condi-tions that lead to micropitting and the actualprogression from micropitting to fracture can bebetter understood.Before we can discuss the occurrence andpropagati
15、on of micropitting (also known as greystaining), we will have to understand what it is andhow it differs from classic fatigue pitting. Micropit-ting has become a serious problem in high quality,usually ground or otherwise hard finished,carburized industrial gearing, especially in criticalapplication
16、s such as wind turbine, conveyor andsomelowerspeedaerospacegearboxes. Whiletheproblem is more often observed in parallel axisgears, it is also observed in bevel gears where thecontact conditions are “right.”MacropittingUntil fairly recently, surface durability of gears hasbeen defined by macroscopic
17、 pitting (macropitting)in which a crack initiates at a subsurface locationwhere the shear stress exceeds the shear allow-able, Figure 2A. When such a crack propagates to4the tooth surface, a small piece (or, more often,several smallpieces) of material, Figure2C, arelib-erated leaving an inverted cov
18、e shaped defect, asshown in Figure 2B.As this process is repeated, more and more pitsappear and eventually the tooth surface is heavilydamaged, as Figure 3A shows. Eventually, if theloads are high enough, the pitting damaged regionof the tooth acts as a significant stressconcentration and bending fa
19、tigue failure of thetoothmayoccurthroughthepittedregion, asshownin Figure 3B.MicropittingMore recently (over the last 10 to 15 years) amicroscopicpittingphenomenon,generallyreferredto as micropitting, has become a very problematicfailuremodeincertainapplications. Typicallywherehighloadingispresent a
20、t lowerspeedsunder lowormarginal film thickness conditions micropittingbecomes a significant risk. It is important to note,however, that though it usually appears in a some-what different presentation, micropitting is also afactorintheoperationofhigherspeedgearsaswell.In the latter instance, micropi
21、tting is frequentlypresentasa“hardlinethatleadsfairlyquicklytotheformationof largespallsthat mayleadratherrapidlyto tooth fracture failures thus the original micropit-ting“evidence” isoften lost in thefailure. Extremelycarefulmetallurgicalevaluationofthefracturescan,however, often pinpoint the micro
22、pitting “connec-tion” (Figures 14C and 15 show this type ofmicropitting failure).The cause of micropitting is still not fully andcompletely understood. Initially, it was thought thatthe cleanliness of the steel might be playing asignificant role; however, even where very cleansteels are used, microp
23、itting still occurs. Micropit-ting appears to occur at local surface irregularitiesincluding tooling witness lines (Figure 4) andgeneral surface roughness peaks. It has beendemonstrated that micropitting capacity can beimproved through the use of improved finishingtechniques, especially “super finis
24、hing” processeswhich reduce the surface finish down well below 10RMS. The use of some extreme pressure (EP) ad-ditive oils to avoid scoring type failures has alsobeen shown, at least anecdotally, to increase thetendency for micropitting to occur, at least withsome formulations.Figure 2. Classical ma
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