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Effect of Mo in Combination with Nb on Austenite Grain Size Control in Vacuum Carburizing Steels

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Abstract

Vacuum carburizing with high-pressure gas quenching is increasingly employed to reduce near-surface intergranular oxidation and reduce quenching distortion. Vacuum carburizing can be conducted at higher operating temperatures, as high as 1100 °C, to reduce the processing times and increase furnace productivity. However, processing at elevated temperatures may result in excessive austenite grain coarsening, leading to the degradation of fatigue performance. Microalloying to form small carbo-nitride precipitates is one effective method to limit austenite grain growth during carburizing. In this study, the effects of microalloying a carburizing steel with molybdenum (Mo) and niobium (Nb) on microstructural grain refinement in the core have been investigated. Additions of Nb alone are found to provide some control of abnormal austenite grain growth. Additions of Mo in combination with Nb provide enhanced resistance to austenite grain growth, especially at high carburizing temperatures up to 1050 °C. The enhanced control is attributed to solute and precipitation effects.

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References

  1. G. Krauss, Steels: Processing, Structure, and Performance, ASM International, Cleveland, 2005

    Google Scholar 

  2. O. Asi, A.C. Can, J. Pineault, and M. Belassel, The Relationship Between Case Depth and Bending Fatigue Strength of Gas Carburized SAE 8620 Steel, Surf. Coat. Technol., 2007, 201(12), p 5979–5987

    Article  CAS  Google Scholar 

  3. K. Kubota, Method for Vacuum Carburization. Patents EP0818555 B2 (2007)

  4. Y.P. Usatyi, E.N. Marmer, S.G. Murovannaya, F.A. Palei, and L.I. Volkova, Vacuum Carburizing of Steel 18KhGT, Met. Sci. Heat Treat., 1997, 19(11), p 994–996

    Article  Google Scholar 

  5. P. Kramer, An Investigation of Rolling-Sliding Contact Fatigue Damage of Carburized Gear Steels. M.S. Thesis, Colorado School of Mines, Golden, CO (2013)

  6. B.E. Cornelissen, G. Krauss, and D.K. Matlock. Effects of Alloying and Processing on Surface Oxidation and Bending Fatigue of Carburized Steels. in 5th ASM Heat Treatment and Surface Engineering Conference in Europe, Gothenburg, Sweden (2000)

  7. O. Asi, A.C. Can, J. Pineault, and M. Belassel, The Effect of High Temperature Gas Carburizing on Bending Fatigue Strength of SAE 8620 Steel, Mater. Des., 2009, 30(5), p 1792–1797

    Article  CAS  Google Scholar 

  8. D.K. Matlock, G. Krauss, and J.G. Speer, New Microalloyed Steel Applications for the Automotive Sector, Mater. Sci. Forum, 2005, 500, p 87–96

    Article  Google Scholar 

  9. K.A. AlOgab, D.K. Matlock, and J.G. Speer, Microstructural Control and Properties in Nb-Modified Carburized Steels, in Proceedings, New Developments on Metallurgy and Applications of High Strength Steels, ed by T. Perez, published by TMS, Warrendale, PA (2008), p. 963–976

  10. K.A. AlOgab, D.K. Matlock, J.G. Speer, and H.J. Kleebe, The Influence of Niobium Microalloying on Austenite Grain Coarsening Behavior of Ti-modified SAE 8620 Steel, ISIJ Int., 2007, 47(2), p 307–316

    Article  CAS  Google Scholar 

  11. C.M. Enloe, The Effect of Molybdenum on Niobium, Titanium Carbonitride Precipitate Evolution and Grain Refinement in High-Temperature Vacuum Carburizing Alloys. Ph.D. Thesis, Colorado School of Mines, Golden, CO (2013)

  12. W.W. Cias and D.V. Doane, Phase Transformational Kinetics and Hardenability of Alloyed Medium-Carbon Steels, Metall. Trans., 1973, 4, p 2257–2266

    Article  CAS  Google Scholar 

  13. T. Song, J. Kwak, and B.C. De Cooman, On the Processing of Martensitic Steels in Continuous Galvanizing Lines: Part II, Metall. Mater. Trans. A, 2012, 43A, p 263–280

    Article  Google Scholar 

  14. ASTM Test Method A255-99, Standard Test Method for Determining Hardenability of Steel. American Society For Testing and Materials, West Conshohocken, Pennsylvania (1999)

  15. R.E. Thompson, D.K. Matlock, and J.G. Speer. The Fatigue Performance of High Temperature Vacuum Carburized Nb Modified 8620 Steel. SAE Transactions (2007), p. 392–407

  16. ASTM E112-13, Standard Test Methods for Determining Average Grain Size. ASTM International (2014), p. 1–28

  17. J.D. Verhoeven, A Review of Microsegregation Induced Banding Phenomena in Steels, J. Mater. Eng. Perform., 2000, 9, p 286–296

    Article  CAS  Google Scholar 

  18. J.B. Seol, S.H. Na, B. Gault, J.E. Kim, J.C. Han, C.G. Park, and D. Raabe, Core-Shell Nanoparticle Arrays Double the Strength of Steel, Sci. Rep., 2017, 7, p 42547

    Article  CAS  Google Scholar 

  19. K.M. Lee and A.A. Polycarpou, Wear of Conventional Pearlitic and Improved Bainitic Rail Steels, Wear, 2005, 259, p 391–399

    Article  CAS  Google Scholar 

  20. Y. Luo, J.M. Peng, H.B. Wang, and X.C. Wu, Effect of Tempering on Microstructure and Mechanical Properties of a Non-Quenched Bainitic Steel, Mater. Sci. Eng. A, 2010, 527, p 3433–3437

    Article  Google Scholar 

Download references

Acknowledgment

The authors gratefully acknowledge the support and technical insight of the sponsors of the Advanced Steel Processing and Products Research Center (ASPPRC) at the Colorado School of Mines. The authors greatly appreciate the support of TimkenSteel for providing and processing all the material used for this investigation. We would also like to thank ECM USA Inc. for their support with the carburizing calculations.

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Correspondence to Eun Jung Seo.

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Seo, E.J., Speer, J.G., Matlock, D.K. et al. Effect of Mo in Combination with Nb on Austenite Grain Size Control in Vacuum Carburizing Steels. J. of Materi Eng and Perform 29, 3575–3584 (2020). https://doi.org/10.1007/s11665-020-04751-8

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  • DOI: https://doi.org/10.1007/s11665-020-04751-8

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