AGMA 14FTM19-2014 Application of ICME to Optimize Metallurgy and Improve Performance of Carburizable Steels.pdf
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1、14FTM19 AGMA Technical Paper Application of ICME to Optimize Metallurgy and Improve Performance of Carburizable Steels By J. Grabowski, J. Sebastian, A. Asphahani, C. Houser, K. Taskin and D. Snyder, QuesTek Innovations LLC2 14FTM19 Application of ICME to Optimize Metallurgy and Improve Performance
2、of Carburizable Steels Jeff Grabowski, Jason Sebastian, Aziz Asphahani, Clay Houser, Kerem Taskin and Dave Snyder, QuesTek Innovations LLC The statements and opinions contained herein are those of the author and should not be construed as an official action or opinion of the American Gear Manufactur
3、ers Association. Abstract QuesTek Innovations LLC has applied its Materials by Design computational design technology and its Integrated Computational Materials Engineering (ICME)-based methods to successfully design, develop and implement two new high-performance gear steels (Ferrium C61 and Ferriu
4、m C64 steels) that are being used in demanding gear and bearing applications in ground and aerospace military, commercial aerospace, high-performance racing, oil and gas and other industries. Additionally, QuesTek has successfully designed and developed two new high-performance steels (Ferrium S53 a
5、nd Ferrium M54 steels that can be used in gearing applications). All four Ferrium alloys are commercially available from Carpenter Technology and have been awarded SAE AMS numbers for procurement. QuesTek has also designed several other high performance alloys using ICME technologies, including a st
6、ainless nitridable bearing and gear steel and alloys for additive manufacturing applications. Copyright 2014 American Gear Manufacturers Association 1001 N. Fairfax Street, Suite 500 Alexandria, Virginia 22314 October 2014 ISBN: 978-1-61481-111-4 3 14FTM19 Application of ICME to Optimize Metallurgy
7、and Improve Performance of Carburizable Steels Jeff Grabowski, Jason Sebastian, Aziz Asphahani, Clay Houser, Kerem Taskin and Dave Snyder, QuesTek Innovations LLC Introduction QuesTek Innovations LLC (“QuesTek”) of Evanston, IL uses its proprietary Materials by Design expertise and technology in con
8、junction with its ICME-based methodologies to rapidly design, develop and qualify advanced alloys into demanding applications. Accelerating the historically slow and expensive materials design and development process, QuesTeks approach integrates extensive thermodynamic and kinetic databases with ad
9、vanced computational modeling tools to develop and optimize precise chemical compositions and processing parameters ensure specified property targets and meet desired performance goals. Optimization of design demands consideration of tradeoff in materials properties, necessitated by competing requir
10、ements. QuesTek has computationally designed and developed many new ultra high performance alloys, coatings, and materials including iron-, copper-, aluminum-, nickel-, molybdenum-, and titanium-based materials and numerous others. As a global leader in the field of ICME, QuesTek has proven that the
11、se materials can be developed much faster and at lower cost, while also providing unique, optimized properties that directly meet user-defined material performance goals for demanding applications in aerospace, oil and gas, high performance racing and other industries. Ferrium C61 and Ferrium C64 Ba
12、ckground Ferrium C61 (AMS 6517) and C64 (AMS 6509) steels are commercially available secondary-hardening gear steels that provide significantly improved tensile strength, case hardness, fracture toughness, fatigue strength, corrosion resistance, and temperature resistance, resulting in performance b
13、enefits over conventional gear steels such as AISI 9310 or Pyrowear Alloy 53. Table 1 provides a comparison of typical alloy properties. Ferrium C61 and C64 carburizable gear steels have been approved for use in a variety of demanding applications in next generation helicopters as upgrades from incu
14、mbent aerospace gearing and shaft steels that have been used for decades, being applied to demanding flight critical applications including transmission gear boxes and rotor shafts. Further, these steels are being applied to gearing components in high-performance racing, wind energy and oil and gas
15、sectors. Both C61 and C64 steels utilize an efficient nanoscale M2C carbide strengthening dispersion within a nickel-cobalt lath martensitic matrix. These Ferrium steels were designed considering the complex interplay of critical design factors including: martensitic matrix stability (Mstemperature)
16、; M2C carbide thermodynamic stability and formation kinetics; matrix cleavage resistance; and embrittling phase thermodynamic stability. Table 1. Tabular comparison of gear steel properties (typical) Typical alloy properties YS, ksi UTS, ksi Core hardness, HRC EI, % RA, % Fracture toughness, ksiin A
17、chievable surface hardness, HRC Tempering temperature, F AISI 9310 155 175 34-42 16 53 85 58-62 300 Pyrowear Alloy 53 140 170 36-44 16 67 115 59-63 400 Ferrium C61 (AMS 6517) 225 240 48-50 16 70 130 60-62 900 Ferrium C64 (AMS 6509) 199 229 48-50 18 75 85 62-64 925 4 14FTM19 Ferrium C64 was developed
18、 under a U.S. Navy STTR program aimed at reducing weight, improving fatigue performance, and improving high temperature operating capability of rotorcraft gear transmission relative to the incumbent alloy Pyrowear 53. Both C61 and C64 steels are being applied to power transmission applications where
19、 their very high core strengths, toughness and other mechanical advantages provide benefits including significantly reduced rotorcraft drivetrain weight or increased power density. Processing Ferrium C61 and C64 steels processing pathway permits significant reductions in manufacturing costs and sche
20、dules. Specifically designed to achieve high hardenability and resist grain growth at high temperatures, these steels take advantage of mild-gas quenching and high-temperature vacuum carburization processes. This combination results in considerable advantages (see Figure 1), including: 1. shorter th
21、ermal processing times at higher carburizing temperatures; 2. reduction of quench distortion, resulting in decreased grinding stock removal; 3. reduction of final machining and finishing costs by eliminating intergranular oxide formation and reducing quench distortion; 4. elimination of separate har
22、dening and oil quenching process steps after carburization, thus dismissing associated copper plating and stripping processes, and 5. preservation of good properties in large, thick-sectioned components. Further, numerous heat-treaters have developed heat treatment cycles that can achieve a wide ran
23、ge of case depth profiles. This ability to “dial in” the depth and profile of case carburization leads to improved manufacturing flexibility and control. Ferrium C61 and C64 steels processing is covered under SAE AMS 2759/7, and QuesTek is currently developing shot peening parameters and optimizing
24、superfinishing processes for both steels. Performance benefits Benefits of using the Ferrium gear steels vs. incumbent gear alloys such as Pyrowear 53, 9310 or EN36 -for power transmission applications can include: Smaller, lighter-weight gears for greater throughput or durability Gears and gearboxe
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