AGMA 11FTM27-2011 Manufacturing and Processing of a New Class of Vacuum-Carburized Gear Steels with Very High Hardenability.pdf
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1、11FTM27AGMA Technical PaperManufacturing andProcessing of a NewClass of Vacuum-Carburized Gear Steelswith Very HighHardenabilityBy C.P. Kern, Dr. J.A. Wright, Dr.J.T. Sebastian, J.L. Grabowski,QuesTek Innovations LLC, andD.F. Jordan, and T.M. Jones,Solar AtmospheresManufacturing and Processing of a
2、New Class of Vacuum-Carburized Gear Steels with Very High HardenabilityC.P. Kern, Dr. J.A. Wright, Dr. J.T. Sebastian, J.L. Grabowski, QuesTekInnovations LLC, and D.F. Jordan, and T.M. Jones, Solar AtmospheresThe statements and opinions contained herein are those of the author and should not be cons
3、trued as anofficial action or opinion of the American Gear Manufacturers Association.AbstractFerriumC61tandC64tarenewsecondary-hardeningsteelsthatprovidesuperiormechanicalpropertiesversus 9310, 8620, Pyrowear Alloy 53 and other steels typically used for power transmission, such assignificantly highe
4、r core tensile strength, fracture toughness, fatigue strength and thermal stability (i.e.tempering temperature). One recent example of their application is the 2010 Small Business InnovationResearch(SBIR)PhaseIIAwardQuesTekreceivedfromtheU.S.ArmytodemonstratetheapplicationofC61totheforwardrotorshaft
5、ofCH-47Chinookhelicopter(workinginconjunctionwithTheBoeingCorporation),inorder to reduce the weight of the shaft by 15-25% and provide other benefits.Thispaper will reviewthe significantmanufacturing andprocessing benefitsthatarisefrom thisnewclassofsecondary-hardening steels, and analyze the potent
6、ial implications and opportunities. C61 and C64 werecomputationally designed to take advantage of high-temperature, low-pressure (i.e. vacuum) carburizationtechnology, in part by combining carburizing and austenitizing steps as well as being designed to have veryhigh hardenability. The very high har
7、denability of these steels permits a mild gas quench subsequent tolow-pressurevacuumcarburizingandreducespartdistortion,thusreducinggrindstockremoval,simplifyingfinal machining and heat treat operations. A framework analysis will be used to compare totalmanufacturing/productioncostsandimpacts(includ
8、ingenvironmental)ofthesenewsteelsversustraditionalgear steels. Conclusions and recommendations will be drawn regarding best manufacturing practices andappropriate use of these new steels for product applications.Copyright 2011American Gear Manufacturers Association1001 N. Fairfax Street, 5thFloorAle
9、xandria, Virginia 22314October 2011ISBN: 978-1-61481-027-83 11FTM28Manufacturing and Processing of a New Class of Vacuum-Carburized Gear Steelswith Very High HardenabilityC.P. Kern, Dr. J.A. Wright, Dr. J.T. Sebastian, J.L. Grabowski, QuesTekInnovations LLC, and D.F. Jordan, and T.M. Jones, Solar At
10、mospheresIntroductionCarburized steel gears are widely used for power transmission in rotorcraft, transportation vehicles,agricultural and off-road equipment, industrial rotating equipment, and thousands of other applications.Historically,alloysrequiringcarburizationwereputthroughanatmosphere(gas)pr
11、ocess. However,inrecentyears, the advancement of low-pressure (i.e., vacuum) carburizing has lead to certain applications to takeadvantage of reduction in process steps and improvements in case profile uniformity. A new class of gearsteels,FerriumC61andC64,werespecificallydesignedanddevelopedtomaxim
12、izethebenefit ofvacuumcarburization processes.FerriumC61andC64arehighlyhardenable, secondaryhardeningmartensiticsteels. Thehighhardenabilityof these alloys allows for a mild gas quench, which can used in vacuum carburizing, that promotes uniformmartensitictransformationthroughouttheentirecomponent a
13、llowingfor lessdistortionandthus reducingtheamount of grinding stock removal required. Thesealloys werealso designedwith agrain pinningdispersionparticlethatallowsfor theuseofhigher processingtemperatures availableinvacuumcarburizingtoincreasethe carbon diffusion and reduce cycle time. The grain pin
14、ning dispersion particle also allows for increasedforgingtemperatures ingear productionthat canextendthelifeof aforgingdie. Inaddition, thealloys useanefficientM2Ccarbidethatrequireslesscarboncontentthantraditional alloysthat achievehardeningusinganepsiloncarbide. Inadditiontothemanufacturingbenefit
15、soutlinedabove,thesealloysalsohavesignificantlyimproved core properties that lead to performance advantages compared to conventional gear steels.Acomparisonofatmosphereandvacuumcarburizingaddressessomeoftheadvantagesanddisadvantagesofeachwillbepresented. Withtheadvancementof vacuumcarburizingprocess
16、esinrecentyears, thereareagrowingnumber of applications that maketheuseof vacuumcarburizinganeffectiveprocessingselection.A framework comparison of a high-performance racing and high-performance aerospace application areused as two examples that can benefit from the use of these new alloys processed
17、 via vacuum carburizing.Design and overview of Ferrium gear steel alloysFerrium C61t and C64t are two new alloys being used or considered for power transmissionapplications.Both of these alloys utilize an efficient nanoscale M2C carbide strengthening dispersion within a Ni-Co lathmartensiticmatrix.
18、QuesTekdesignedthesealloysconsideringthecomplexinterplayofcriticaldesignfactorsincluding: martensitic matrix stability (Mstemperature); M2C carbide thermodynamic stability and formationkinetics;matrixcleavageresistance;andembrittlingphasethermodynamicstability withtheuseof theirsuiteof computational
19、 models 1, 2. See Figure 1.QuesTeks Ferrium C-series alloys are advanced new gear steels designed for significant manufacturingandperformanceadvantages over conventional aerospacegear steels that cansignificantly streamlinegearproduction, decreasingleadtimes and reducingcost. These steels take advan
20、tageof vacuum carburizationthermal processing and have high-hardenability that allows for mild-gas quenching, eliminating the need foroil-quenchdies,thusreducingtheamountofmachiningstockrequiredduetodistortion. Thealloyswerealsodesigned to use an efficient strengthening mechanism that requires up to
21、 50% less carbon compared tocurrentstate-of-the-artalloys,thereforereducingthecarburizationtimebyupto50%. Inadditiontothemanu-facturing benefits the alloys also have performance enhancement benefits that allow for increased powertransmission, reduced weight, and increased thermal stability. Computat
22、ionally designedand developedbyQuesTek Innovations, under Navy, Army, and internal funding, the alloys are commercially available fromLatrobe Specialty Steel Company located in Latrobe, PA. Commercial procurement and processingspecification documents, such as Aerospace Materials Specification (AMS),
23、 are currently in development.4 11FTM28Figure 1. The “Design Chart” used by QuesTek to design the Ferrium C64 alloy. The hierarchicalrelationships between processing, structure, properties, and performance are summarizedgraphically and serve as the template for alloy designHigh hardenability, design
24、ed to use high-temperature, low-pressure (i.e., vacuum) carburizationmethodsFerrium C61 and C64 were specifically designed to achieve high hardenability and use high-temperature,low-pressure (i.e., vacuum) carburization and gas quenching process methods, permitting significantreductions in manufactu
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