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Influence Of Large Non-Metallic Inclusions On Bending Fatigue Strength Hardened And Tempered Steels Cover

Influence Of Large Non-Metallic Inclusions On Bending Fatigue Strength Hardened And Tempered Steels

By: T. Lipiński,  A. Wach and  E. Detyna  
Open Access
|Oct 2015

References

  1. 1. Roiko A., Hänninen H., Vuorikari H.: Anisotropic distribution of non-metallic inclusions in a forged steel roll and its influence on fatigue limit, International Journal of Fatigue 41 (2012) 158-167.
  2. 2. Kocańda S.: Zmęczeniowe pękanie metali (Metal fatigue cracking). WNT Warszawa (in Polish), 1985.
  3. 3. Wołczyński W.: Constrained/unconstrained solidification within the massive cast steel/iron ingots. Archives of Foundry Engineering 10 (2010) 195-202.
  4. 4. Lipinski T., Wach A.: Non-metallic inclusions structure dimension in high quality steel with medium carbon contents. Archives of Foundry Engineering 3(9) (2009) 75-78.
  5. 5. Spriestersbach D., Grad P., Kerscher E.: Influence of different non-metallic inclusion types on the crack initiation in high-strength steels in the VHCF regime, International Journal of Fatigue 64, (2014) 114–120.
  6. 6. Zhang J. M., Zhang J. F., Yang Z. G., Li G. Y., Yao G., Li S. X., Hui W. J., Weng Y. Q.: Estimation of maximum inclusion size and fatigue strength in high-strength ADF1 steel. Material. Science and Engineering A 394 (2005) 126–131.
  7. 7. Lipiński T., Wach A.: The Effect of Fine Non-Metallic Inclusions on The Fatigue Strength of Structural Steel. Archives of Metallurgy and Materials 60 (1) (2015) 65-69.
  8. 8. Wołczyński W., Guzik E. Wajda W. Jedrzejczyk D. Kania B., Kostrzewa M.: Cet In Solidifying Roll – Thermal Gradient Field Analysis. Archives of Metallurgy and Materials 57 (2012) 105-117.
  9. 9. Ulewicz R., Novy F., Selejdak J. Fatigue Strength of Ductile Iron in Ultra-High Cycle Regime. Advanced Materials Research 874 (2014) 43-48.
  10. 10. Roiko A., Hänninen H., Vuorikari H.: Anisotropic distribution of non-metallic inclusions in a forged steel roll and its influence on fatigue limit, International Journal of Fatigue 41 (2012) 158–167.
  11. 11. Murakami Y., Endo M.: Effects of defects, inclusions and inhomogenities on fatigue strength, International Journal of Fatigue 16 (3) (1994) 163–82.
  12. 12. Wang Y., Yang J., Bao Y.: Effects of Non-metallic Inclusions on Machinability of Free-Cutting Steels Investigated by Nano-Indentation Measurements. Metallurgical and Materials Transactions A 46A (2015) 281-292.
  13. 13. Lipiński T., Wach A.: The effect of the production process of medium-carbon steel on fatigue strength. Archives of Foundry Engineering 10(2) (2010) 79-82.
  14. 14. Ryś J.: Stereologia materiałów (Stereology of materials). FOTOBIT DESIGN, Kraków (in Polish) (1995).
  15. 15. Lipiński T., Wach A.: Influence of Outside Furnace Treatment on Purity Medium Carbon Steel. Proc. 23rd Intern. Conf. on Metallurgy and Materials Metal 2014 Brno TANGER Ltd., Ostrava Czech (2014), pp. 738-743.
DOI: https://doi.org/10.1515/adms-2015-0013 | Journal eISSN: 2083-4799 | Journal ISSN: 1730-2439
Language: English
Page range: 33 - 40
Published on: Oct 14, 2015
Published by: Gdansk University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2015 T. Lipiński, A. Wach, E. Detyna, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution 4.0 License.