Calculation-experimental modeling of wear of cylindrical sliding bearings

Authors

DOI:

https://doi.org/10.15587/1729-4061.2017.109638

Keywords:

sliding bearing, wear-contact problem, wear model, wear testing, wear resistance parameters

Abstract

The problem of developing a calculation-experimental method for calculating wear of a sliding bearing based on a two-factor wear model (contact pressure - sliding velocity) with identification of wear resistance parameters was considered. Analysis of known studies has shown that existing approaches required solution of complex systems of integral-differential equations or cumbersome numerical methods that are unacceptable in the engineering practice. As a result, a model of the sliding bearing wear in conditions of boundary friction was obtained in a form of dependence of the wear rate on the dimensionless complexes of contact pressure and sliding velocity. On the basis of the proposed wear model, the wear-contact problem for a cylindrical sliding bearing was solved. The equation of equilibrium for medium pressures and the approximating function of linear wear from the arc of contact between the shaft and the bushing were used as the determining equations. The solution was obtained in a closed form as a dependence of wear degree on the friction path. To identify parameters of wear resistance in the wear model, a calculation-experimental method for determining calculated dependences of wear resistance parameters was developed on the basis of the wear test by the «cone – three balls» scheme. The results of wear tests of bronze conical specimens with a variable wear spot and two values of sliding velocity were taken as a base. An example of implementation of the calculation-experimental method for calculating wear of a cylindrical bearing was given. It has shown that the calculated wear values were consistent with the operational data on wear of sliding bearings. Influence of determining factors of sliding velocity and load on bearing wear was studied. The obtained results were recommended for predicting wear of sliding bearings at the design stage and optimizing their design and operational parameters

Author Biographies

Aleksandr Dykha, Khmelnitskyi National University Instytutska str., 11, Khmelnitskyi, Ukraine, 29016

Doctor of Technical Sciences, Professor, Head of Department

Department of wear resistance and reliability of machines

Ruslan Sorokatyi, Khmelnitskyi National University Instytutska str., 11, Khmelnitskyi, Ukraine, 29016

Doctor of Technical Sciences, Professor, Head of Department

Departments of Computer Science and Information Technologies

Oleg Makovkin, Khmelnitskyi National University Instytutska str., 11, Khmelnitskyi, Ukraine, 29016

PhD, Associate Professor

Department of wear resistance and reliability of machines

Oleg Babak, Khmelnitskyi National University Instytutska str., 11, Khmelnitskyi, Ukraine, 29016

PhD, Associate Professor

Department of wear resistance and reliability of machines

References

  1. Chernets, M. V. (2015). Prediction of the life of a sliding bearing based on a cumulative wear model taking into account the lobing of the shaft contour. Journal of Friction and Wear, 36 (2), 163–169. doi: 10.3103/s1068366615020038
  2. Soldatenkov, I. A. (2010). Evolution of contact pressure during wear of the coating in a thrust sliding bearing. Journal of Friction and Wear, 31 (2), 102–106. doi: 10.3103/s1068366610020029
  3. Mezrin, A. M. (2009). Determining local wear equation based on friction and wear testing using a pin-on-disk scheme. Journal of Friction and Wear, 30 (4), 242–245. doi: 10.3103/s1068366609040035
  4. Dykha, A. V., Kuzmenko, A. G. (2016). Distribution of friction tangential stresses in the Courtney-Pratt experiment under Bowden’s theory. Journal of Friction and Wear, 37 (4), 315–319. doi: 10.3103/s1068366616040061
  5. Bulgarevich, S. B., Boiko, M. V., Lebedinskii, K. S., Marchenko, D. Y. (2014). Kinetics of sample wear on four-ball friction-testing machine using lubricants of different consistencies. Journal of Friction and Wear, 35 (6), 531–537. doi: 10.3103/s106836661406004x
  6. Dykha, A. V., Kuzmenko, A. G. (2015). Solution to the problem of contact wear for a four-ball wear-testing scheme. Journal of Friction and Wear, 36 (2), 138–143. doi: 10.3103/s1068366615020051
  7. Rezaei, A., Van Paepegem, W., De Baets, P., Ost, W., Degrieck, J. (2012). Adaptive finite element simulation of wear evolution in radial sliding bearings. Wear, 296 (1-2), 660–671. doi: 10.1016/j.wear.2012.08.013
  8. Dykha, A., Aulin, V., Makovkin, O., Posonskiy, S. (2017). Determining the characteristics of viscous friction in the sliding supports using the method of pendulum. Eastern-European Journal of Enterprise Technologies, 3 (7 (87)), 4–10. doi: 10.15587/1729-4061.2017.99823
  9. Vynar, V. A., Dykha, M. O. (2013). Influence of the Stress-strain State on the Wear Resistance of the Surface of 40Kh Steel after Discrete Electromechanical Treatment. Materials Science, 49 (3), 375–381. doi: 10.1007/s11003-013-9625-z
  10. Kryshtopa, S., Kryshtopa, L., Bogatchuk, I., Prunko, I., Melnyk, V. (2017). Examining the effect of triboelectric phenomena on wear-friction properties of metal-polymeric frictional couples. Eastern-European Journal of Enterprise Technologies, 1 (5 (85)), 40–45. doi: 10.15587/1729-4061.2017.91615
  11. Kindrachuk, M., Radionenko, O., Kryzhanovskyi, A., Marchuk, V. (2014). The friction mechanism between surfaces with regular micro grooves under boundary lubrication. Aviation, 18 (2), 64–71. doi: 10.3846/16487788.2014.926642

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Published

2017-10-24

How to Cite

Dykha, A., Sorokatyi, R., Makovkin, O., & Babak, O. (2017). Calculation-experimental modeling of wear of cylindrical sliding bearings. Eastern-European Journal of Enterprise Technologies, 5(1 (89), 51–59. https://doi.org/10.15587/1729-4061.2017.109638

Issue

Section

Engineering technological systems