AGMA 08FTM13-2008 Hydrogen and Internal Residual Stress Gear Failures - Some Failure Analyses and Case Studies《氢和内部残余应力齿轮故障.一些故障分析和案例研究》.pdf
《AGMA 08FTM13-2008 Hydrogen and Internal Residual Stress Gear Failures - Some Failure Analyses and Case Studies《氢和内部残余应力齿轮故障.一些故障分析和案例研究》.pdf》由会员分享,可在线阅读,更多相关《AGMA 08FTM13-2008 Hydrogen and Internal Residual Stress Gear Failures - Some Failure Analyses and Case Studies《氢和内部残余应力齿轮故障.一些故障分析和案例研究》.pdf(11页珍藏版)》请在麦多课文档分享上搜索。
1、08FTM13AGMA Technical PaperHydrogen and InternalResidual Stress GearFailures - SomeFailure Analyses andCase StudiesBy R.J. Drago andR.J. Cunningham, Drive SystemsTechnology, Inc.Hydrogen and Internal Residual Stress Gear Failures - SomeFailure Analyses and Case StudiesRaymond J. Drago and Roy J. Cun
2、ningham, Drive Systems Technology, 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.AbstractHydrogen and internal stress failures are relatively rare; however, when they
3、 occur they are alwaysspectacular, often very costly and sometimes quite catastrophic. While hydrogen and internal stress issuesaregenerallyrecognizedassignificantinthedesignandmanufactureoflargergears,theyarealsoimportantfor smaller gears as well. Unfortunately, such failures are difficult to diagn
4、ose and, because of their oftencatastrophic nature, may well go unrecognized.This paper presents, via illustrated actual case studies, the mechanisms by which these failures occur, themannerinwhichtheyprogressandmethodsfortestingfinishedgearsforthepossibilityofinternalproblems.In addition, precautio
5、nary steps that can be taken during design, manufacture, heat treatment and qualitycontrol to minimize the possibility of these problems occurring in a finished part along with similar stepsrequired to prevent any flawed gears from entering service are also presented and discussed.Copyright 2008Amer
6、ican Gear Manufacturers Association500 Montgomery Street, Suite 350Alexandria, Virginia, 22314October, 2008ISBN: 978-1-55589-943-13Hydrogen and Internal Residual Stress Gear Failures - Some Failure Analysesand Case StudiesRaymond J. Drago and Roy J. Cunningham, Drive Systems Technology, Inc.Introduc
7、tionUnlike most fatigue failures, hydrogen and internalstress related failures almost always occur withvirtually no warning at all. No debris is generatedand,sincethe cracksprogress fromdeep withinthepart to the surface, there isgenerally noobservablechange in noise or vibration level, until the ver
8、y lastmomentwhena spectacularfracture failureoccurs.The very large, double helical, carburized pinionshown here (figure 1), for example, operated satis-factorily for many months before suffering a cata-strophic failure (the shaft fractured into two halves,stopping the mill immediately and causing an
9、cillarydamage as well). While this fracture occurred aftera period of successful service time, it is more com-monforsuchfailurestooccurveryearly inthe lifeofthe part. In some instances, dramatic failures haveoccurred while post heat treatment processing wasunder way in the factory!Figure 1. Large mi
10、ll gear failure(note leg at left for scale)We tend to think of steel as a solid medium,however, given the right conditions, nascenthydrogen will actually migrate interstitially throughthe steel matrix to gather in a common location thatwill then form the nucleation site for a crack thatleads tothe d
11、ramaticfailure eventsthat typifytheseproblems. Internalresidual tensilestresses canactalone to cause similar failures or they can work inconcertwithhydrogentoacceleratethe“fatal”crackpropagation.The hydrogen problemControlling the hydrogen content in gear steels isimportant because hydrogen entrapme
12、nt can havea very detrimental effect on service performance ofsteelgears. Onlyafewpartspermillionofhydrogendissolved in steel can cause internal hairline cracks(flakes), hydrogen embrittlement, hydrogen blister-ing and loss of tensile ductility, particularly in largesteel gears with thick cross-sect
13、ions.When the hydrogen content of the molten steelused to cast the ingot from which a gear blank willultimately be fabricated is in excess of the solubilitylimit of hydrogen in solid iron, the hydrogen will berejected during the solidification process. The fail-ure mode which results is often called
14、 a “hydrogenburst” because of the visual characteristics of thefracture face, as will be described below.Hydrogen can be entrapped in a steel gear blankduring the initial steel melting process, duringprocessing operations during the manufacturingprocess(e.g.,acidetch inspectionfor hardfinishingburns
15、) and during subsequent electroplatingprocesses. Internal residual tensile stresses aregeneratedduringsolidificationofthemoltensteelaswellasduringheattreatment,particularlyduringthequench operation. It is also quite possible, and insome cases likely, that both hydrogen entrapmentand internal residua
16、l tensile stresses may occur to-gether.As the thick slab that will be used to fabricate aheavy section steel gear is rapidly cooled, there willbe little diffusion of hydrogen out of resultant bar.This type of cooling can also result in increased in-ternalresidualtensile stresses. Hydrogensolubility4
17、decreases with adecreasing temperature,but ifthehydrogen is internal it will migrate to tensile stresslocations,andformhydrogengas. Thusifhydrogenispresentinthesteelasitis beingpoured, therewillbe a build up of H2 gas pressure in the steel matrixduring rapid cooling. For the limiting case of no hy-d
18、rogen diffusion, the pressure generated by theen-trapped hydrogen willbe asshown inFigure 2(dataobtained from Reference 1). Clearly, as even verysmallhydrogenconcentrationsaslowas4ppmcangenerate significant internal gas pressures. As thehydrogen content increases, the internal gas pres-sure increase
19、s at an exponential rate. Even atcon-centrations as low as 8 ppm, the pressure increaseisobvious. Atdoubledigitconcentrations, thepres-sure can literally “blow” a steel gear apart.Temperature,DegreesFFigure 2. Hydrogen pressure buildup duringrapid coolingWhilethetemperaturerangeofthisdataislimited,i
20、tisclearthathigherconcentrationsofnascenthydro-gen can produce very significant internal hydrogengas pressure as the steel cools, especially as itreaches room temperature. As nascent hydrogenmigrates these stresses build up and over time andmaynotproduceanyeffectatalluntilthegeariswellalongineitheri
21、tsmanufacturingprocessingorevenafter being placed in loaded service. This is one oftheprimaryproblemswithahydrogentypeoffailure there is no known time limit for when fracture willinitiate.The authors have participated in failure investiga-tions where massive fractures occurred while alarge gear (usu
22、ally a solid on shaft pinion) wassimplysittingonthefloorawaitingthe nextprocess-ing operation (most frequently after tooth finishingby grinding or hard cutting has been accomplished)and after the gear had been in loaded service forseveral years. The sound of a hydrogen burst onthe shop floor is some
23、thing similar to the report of ahigh powered hunting rifle discharge. It does nottake much imagination to realize that such a failurein the shop is, to say the least, a bit unnerving!In service hydrogen burst failures, while not asreadily observable as those that occur on the shopfloor, are equally
24、spectacular in that they usuallyresult in a sudden, complete gear blank fracturefailure. This type of failure is most often observedon large solid on shaft pinions and when the “shaft”fractures, consequential damage can be and oftenis very extensive. The pinion shown in Figure 3, forexample, fractur
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