AGMA 11FTM22-2011 Bearing Contribution to Gearbox Efficiency and Thermal Rating How Bearing Design Can Improve the Performance of a Gearbox.pdf
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1、11FTM22AGMA Technical PaperBearing Contribution toGearbox Efficiency andThermal Rating: HowBearing Design CanImprove thePerformance of aGearboxBy A. Doyer, SKFBearing Contribution to Gearbox Efficiency and ThermalRating: How Bearing Design Can Improve the Performanceof a GearboxArmel Doyer, SKFThe s
2、tatements 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.AbstractGearbox efficiency is a topic of rising interest amongst both OEM and end-users due to an increasedsensitivity to gearbox
3、 performance, reliability, total cost of ownership (energy cost), overall impact on theenvironment, and also anticipating future regulations.Agearboxisbynatureaquiteefficientasset:aparallelshaftgearunitissaidinliteraturetohavetypicallossesof 1 to 2% per stage. As an example, a single stage gearbox c
4、ould have a nominal efficiency of 98 to 99%.Anyhow, due to the high power/ torque transferred by the system, it could be interesting to minimize theabsolute losses as they could be significant (1% of 1MW is still 1kW), especially when existing technologyallows it at very reasonable cost and without
5、much complexity.In a gearbox, there are difference sources of losses: gear, lubrication, seal and bearing loss. The use ofmodern simulation tools makes easier the evaluation of losses in various load case conditions.It has been demonstrated that the contribution of bearing loss on the system efficie
6、ncy is dependant on theloadcases.Evenifthebearingisbyfarnottheprimarysourceoflosses,theoptimizationofthebearingsetcansignificantly improve the gearbox performance.Simulationofasinglestagegearboxusingtaperedrollerbearings,showsthattherunningtemperatureofthegearbox can be reduced up to 10C, by using l
7、atest bearing generation. Suchasavingcouldimprovethethermal rating of the gearbox by up to 30%.Experiment also demonstrated that different design of tapered roller bearing shows significant variation infriction performance.Having proper bearing design could significantly improve the performance of a
8、 gear unit: by a lower runningtemperature, by improving lubricant life, potentially simplified lubrication system, and consequentlyreducedrunning cost.Copyright 2011American Gear Manufacturers Association1001 N. Fairfax Street, 5thFloorAlexandria, Virginia 22314October 2011ISBN: 978-1-61481-022-33 1
9、1FTM23Bearing Contribution to Gearbox Efficiency and Thermal Rating: How BearingDesign Can Improve the Performance of a GearboxArmel Doyer, SKFIntroductionGearbox efficiency is a topic of rising interest amongst both manufacturers and end-users due to anincreased sensitivity to gearbox performance,
10、reliability, total cost of ownership (in relation to energy cost),overall impact on the environment, and also anticipating future regulations.A gearbox is by nature a quite efficient asset and as such, it has not been subjected to the same debateregarding energy efficiency as other machine component
11、s as e.g., electrical motors. However, due to theincreased awareness of environmental impact and the increased energy costs, the optimization of energy isbecoming a topic of greater importance also for industrial gearboxes. Looking at the high power/ torquetransferredby thesystem, itis ofinterest to
12、minimizethelosses interm ofabsolutevalues(1%of1MW isstill10kW). This is especially valid, when existing technology allows it at reasonable cost and without addingcomplexity.As there is a competitive advantage to give the maximum possible output mechanical torque in a given gearunit size, there will
13、be a growing competitive race for manufacturers to show the highest thermal rating for agiven size (Figure 1). Energy efficiency is increasing its importance as selection criteria.In this paper, the author will give:S a brief recap of the gearbox inefficiency sources,S an overview of the latest bear
14、ing friction modelS information on the latest tapered bearing technology development, andS how this can affect the gearbox performance trough an example of a single stage gearboxGearbox efficiency, inefficiency and thermal ratingAsmostoftechniciansandengineerslearnatschool,agearboxisbyitsnatureaquit
15、eefficientasset:aparal-lel shaft gear unit is said in literature to have typical losses of 1 to 2% per stage(1). As anexample, asinglestage gearbox could have a nominal efficiency of 98 to 99%.Figure 1. Mechanical and thermal power ratings of a single stage helical gear ratio 5 for varioussizes, for
16、 different gearbox manufacturers4 11FTM23The losses are of different types:S gear lossesS lubrication lossesS seal losses (when seals are present)S windage losses (for high speed gears)S bearing lossesMany authors have already described well some of those losses and the overall behavior of the gearb
17、ox (1,2and3). Thoseauthorsshowedalsothattheproblemisquitecomplex,especiallybecauseinagearboxisa system where losses interact/influence each other due to the thermal equilibrium/heat dissipation.The ISO technical report 4, published a decade ago, lists guidelines for calculating the gearbox thermal r
18、at-ing, which is another term to describe efficiency. The advantage of this rating is that it can be compared withthemechanicalratingofthegearbox,andthustheusercanquicklyseewheneitheracoolingsolutionneedstobe added or improved, or the gearbox size needs to be altered.Most people have in mind that th
19、e gear losses are the dominating ones. While this is true in many cases, itdoesdependon thegearbox designand loadcases (2,3). Nowadays, withengineering software,detailedanalysis of gearbox has become much more simple, faster and accurate than before, and it can helpdesigners (and users) to optimize
20、and better understand their system. Doing so, they will learn the relativeimportance of the different losses may vary significantly; and that losses other than gear ones cannot beneglected in the analysis.As an example, the authors studies have shown that the bearing loss can range from 30 to 50% of
21、 the totallosses (nearly equal to the gear losses), depending on the applied loading. When a gearbox is used at thelevel of its nominal mechanical rating, gear losses tend to be dominant, which is expected.Itisalsointerestingtonoticethatthesplitbetweenthedifferentshaftsisnotequal. Dependingonthegear
22、boxdesign, the gearbox ratio, the bearing load and speed will vary. As illustrated inFigure 2, onemay findcaseswheretheinputshaftpositionsaremajorsourceofbearinglosses; others,where theoutput andintermediatepositions are the ones generating the highest bearing losses.In order to optimize the relevan
23、t part of the gearbox, it is therefore important touse andunderstand thelatestknowledge and model regarding bearing friction.Figure 2. Examples of possible distribution of bearing loss per shaft in different gearbox setup(results of SKF investigations)5 11FTM23SKFfrictionmodelSKFimplementedanewbeari
24、ngfrictionmodelinitsgeneralcatalogue(latesteditionsee5),alreadyin2003.See Table 1. This model is based on four sources of friction:(1)M = Mrr+ Msl+ Mseal+ MdragwhereM is total frictional moment, Nmm;Mrris rolling frictional moment, Nmm;Mslis sliding frictional moment, Nmm;Msealis frictional moment o
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