Formation of Residual Stresses during Discontinuous Friction Treatment | Journal of Engineering Sciences

Formation of Residual Stresses during Discontinuous Friction Treatment

Author(s): Hurey I.1*, Gurey V.1, Bartoszuk M.2, Hurey T.1

Affiliation(s):
1 Lviv Polytechnic National University, 12, Bandera St., 79013 Lviv, Ukraine;
2 Opole University of Technology, 76, Prószkowska St., 45758 Opole, Poland.

*Corresponding Author’s Address: [email protected]

Issue: Volume 8, Issue 1 (2021)

Dates:
Received: March 14, 2021
The final version received: June 18, 2021
Accepted for publication: June 23, 2021

Citation:
Hurey I., Gurey V., Bartoszuk M., Hurey T. (2021). Formation of residual stresses during discontinuous friction treatment. Journal of Engineering Sciences, Vol. 8(1), pp. C38–C44, doi: 10.21272/jes.2021.8(1).c5

DOI: 10.21272/jes.2021.8(1).c5

Research Area:  MANUFACTURING ENGINEERING: Materials Science

Abstract. The tool with grooves on its working surface is used to improve the properties of the strengthened layer. This allows us to reduce the structure’s grain size and increase the thickness of the layer and its hardness. Mineral oil and mineral oil with active additives containing polymers are used as a technological medium during friction treatment. It is shown that the technological medium used during the friction treatment affects the nature of the residual stresses’ distribution. Thus, when using mineral oil with active additives containing polymers, residual compressive stresses are more significant in magnitude and depth than when treating mineral oil. The nature of the residual stresses diagram depends on the treated surface’ shape. After friction treatment of cylindrical surfaces, the highest compressive stresses near the treated surface decreases with depth. And after friction treatment of flat surfaces near the treated surface, the compressive stresses are small. They increase with depth, pass through the maximum, and then decrease to the original values. The technological medium used during friction treatment affects residual stresses in the grains and in the crystal lattice.

Keywords: friction treatment, residual stresses, fatigue, white layer, nanocrystalline structure, technological environment, crystal lattice, grains.

References:

  1. Pineau, A., McDowell, D.L., Busso, E.P., Antolovich S.D. (2016). Failure of metals II: Fatigue, Acta Materialia, Vol. 107, pp. 484–507, https://doi.org/10.1016/j.actamat.2015.05.050
  2. Santecchia, E., Hamouda, A. M. S., Musharavati, F., Zalnezhad, E., Cabibbo, M., El Mehtedi, M., Spigarelli S. (2016). A Review on Fatigue Life Prediction Methods for Metals. Advances in Materials Science and Engineering, 9573524, https://doi.org/10.1155/2016/9573524
  3. Ropyak, L.Y., Pryhorovska, T.O., Levchuk, K.H. (2020). Analysis of materials and modern technologies for PDC drill bit manufacturing. Progress in Physics of Metals, Vol. 21 (2), pp. 274–301, https://doi.org/10.15407/ufm.21.02.274
  4. Prysyazhnyuk, P., Lutsak, D., Shlapak, L., Aulin, V., Lutsak, L., Borushchak, L., Shihab, T.A. (2018). Development of the composite material and coatings based on niobium carbide. Eastern-European Journal of Enterprise Technologies, Vol. 6(12-96), pp. 43–49, https://doi.org/10.15587/1729-4061.2018.150807
  5. Shatskyi, I.P., Perepichka, V.V., Ropyak, L.Y. (2020). On the influence of facing on strength of solids with surface defects. Metallofizika i Noveishie Tekhnologii, Vol. 42(1), pp. 69–76, https://doi.org/10.15407/mfint.42.01.0069
  6. Kalchenko, V.V., Yeroshenko, A.M., Boyko, S.V., Ignatenko, P.L. (2020). Development and research of thermoplastic methods for hardening details, Naukovyi Visnyk Natsionalnoho Hirnychoho Universytetu, Vol. 2, pp. 53–60, https://doi.org/10.33271/nvngu/2020-2/053
  7. Shatskyi, I.P., Ropyak, L.Y., Makoviichuk, M.V. (2016). Strength optimization of a two-layer coating for the particular local loading conditions. Strength of Materials, Vol. 48 (5), pp. 726–730, https://doi.org/10.1007/s11223-016-9817-5
  8. Ropyak, L.Ya., Shatskyi, I.P., Makoviichuk, M.V. (2019). Analysis of interaction of thin coating with an abrasive using one-dimensional model. Metallofizika i Noveishie Tekhnologii, Vol. 41(5), pp. 647–654, https://doi.org/10.15407/mfint.41.05.0647
  9. Hizli, H., Gür C.H. (2018). Comparison of Nondestructive Stress Measurement Techniques for Determination of Residual Stresses in the Heat Treated Steels. Materials Research Proceedings, Vol. 6, pр. 165–170, http://dx.doi.org/10.21741/9781945291890-26
  10. Narayanan, A., Mostafavi, M., Pavier, M., Peel M. (2018). Development of Residual Stresses During Laser Cladding. Materials Research Proceedings 6, pp. 39-44, http://dx.doi.org/10.21741/9781945291890-7
  11. Sakaida, Y., Sasaki, Y., Owashi H. (2018). Influence of Surface Pretreatment on Residual Stress Field of Heat-Treated Steel Induced by Laser Local Quenching. Materials Research Proceedings, Vol. 6, pp. 177–182. http://dx.doi.org/10.21741/9781945291890-28
  12. Hurey I., Hurey T., Lanets O., Dmyterko P. (2021). The Durability of the Nanocrystalline Hardened Layer During the Fretting Wear . Advances in Design, Simulation and Manufacturing IV, pp. 23–32, https://doi.org/10.1007/978-3-030-77823-1_3
  13. Burley, M., Campbell, J.E., Reiff-Musgrove, R., Dean, J., Clyne T.W. (2021). The Effect of Residual Stresses on Stress–Strain Curves Obtained via Profilometry-Based Inverse Finite Element Method Indentation Plastometry. Adv. Eng. Mater., Vol. 23, 2001478, https://doi.org/10.1002/adem.202001478
  14. Withers, P.J. (2007). Residual stress and its role in failure. Rep. Prog. Phys., Vol. 70, pp. 2211–2264, https://doi.org/10.1088/0034-4885/70/12/R04
  15. Development and applications of residual stress measurements using neutron beams. (2014). Vienna : International Atomic Energy Agency.
  16. Fardan, A., Berndt, C.C., Ahmed R. (2021). Numerical modelling of particle impact and residual stresses in cold sprayed coatings: A review. Surface and Coatings Technology, Vol. 409, 126835, https://doi.org/10.1016/j.surfcoat.2021.126835
  17. Gurey V., Shynkarenko H., Kuzio I. (2021). Mathematical model of the thermoelasticity of the surface layer of parts during discontinuous friction treatment. Advanced in Design, Simulation and Manufacturing IV, Vol. 2, pp. 12–22, https://doi.org/10.1007/978-3-030-77823-1_2
  18. Kyryliv V.I., Gurey V.I., Maksymiv O.V., Hurey I.V., Kulyk Yu.O. (2021). The influence of the deformation mode on the force conditions of the formation of the surface nanostructure of steel 40H. Physico-chemical mechanics of materials, Vol. 3, pp. 126–131.

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