Research of the wear resistance of multi-component bronze in the conditions of the hydraulic oil processed by the power field

Authors

DOI:

https://doi.org/10.15587/2706-5448.2020.201550

Keywords:

hydraulic oil, electrostatic field, wear resistance of bronze, tribological preparation, friction pair, roller block.

Abstract

The object of research is the process of changing the wear resistance of bronze under the conditions of electrostatic treatment of hydraulic oil. The wear resistance of the bronze elements of the friction pairs determines the life of the axial-plunger pumps and affects their «feed – pressure» main characteristics.

The studies were based on the theory of experimental design and statistical methods for processing test results. The research methodology provided for modeling the process of sliding friction using a «block – roller» friction pair on the SMC-2 friction machine (the country is the manufacturer of the USSR, modernization in Ukraine). This type of friction takes place in the «plunger – cylinder block», «distribution disk – cylinder block» tribosystem. Also, the method was supposed to pre-treat the hydraulic oil with an electrostatic field in the device, followed by feeding it into the tank with a roller using a pump station. Two independent factors varied: electrostatic field strength and hydraulic oil operating time. The constant factors were the hydraulic oil flow rate in the device, hydraulic oil temperature, contact pressure, linear roller sliding speed and time of each test.

The obtained experimental data made it possible to establish a regularity characterizing the sliding friction process when a force field is applied to hydraulic oil. This pattern reveals the effect of electrostatic field strength and hydraulic oil operation on the wear resistance of a bronze block, which was tested on a friction machine SMC-2. This made it possible to determine the rational values of the parameters of the electrostatic field, at which the maximum wear resistance of the bronze is achieved depending on the operating time of the hydraulic oil, ranging from 1 • 106 V/m to 1.25 • 106 V/m. Thus, the effect of the field on oil helps to increase the wear resistance of bronze up to 5 times in the conditions of hydraulic oil in the delivery state and up to 3 times in oil with an operating time of 2000 hours. The influence of the field leads to polarization effects in the oil, which contribute to the formation of quasicrystalline films on the friction surface, increasing the tribojunction wear resistance.

Author Biographies

Dmytro Onopreichuk, Ukrainian State University of Railway Transport, 7, Feiierbakha sq., Kharkiv, Ukraine, 61050

PhD, Associate Professor

Department of Construction, Track and Handling Machines

Volodymyr Stefanov, Ukrainian State University of Railway Transport, 7, Feiierbakha sq., Kharkiv, Ukraine, 61050

PhD, Associate Professor

Department of Construction, Track and Handling Machines

References

  1. Bergada, J., Sushil, K., Watton, J. (2012). Axial Piston Pumps, New Trends and Development. Published by Nova Science USA.
  2. Hong, Y. S. (2012). Investigation into design problems of hydrostatic slipper bearings for variable speed axial piston pumps. Journal of The Korean Society for Fluid Power & Construction Equipments, 9.
  3. Hong, Y.-S., Lee, S.-Y. (2008). A Comparative Study of Cr-X-N (X=Zr, Si) Coatings for the Improvement of the Low-Speed Torque Efficiency of a Hydraulic Piston Pump. Metals and Materials International, 14 (1), 33–40. doi: http://doi.org/10.3365/met.mat.2008.02.033
  4. Hong, Y. S., Kim, J. H., Lee, S. L. (2014). Performance Improvement of a Swash Plate Type Piston Pump in the Low-Speed Range by a DLC Coating. Journal of The Korean Society for Fluid Power & Construction Equipments, 11 (4), 25–31. doi: http://doi.org/10.7839/ksfc.2014.11.4.025
  5. Dovbenko, M. N., Evdokimov, V. D. (2014). Development of unconventional ways to improve performance of the axial piston hydromashines taking into account repair abilities. Eastern-European Journal of Enterprise Technologies, 5 (7 (71)), 31–36. doi: http://doi.org/10.15587/1729-4061.2014.27996
  6. Ermakov, S. F. (2012). Effect of lubricants and additives on the tribological performance of solids. Part 2. Active friction control. Journal of Friction and Wear, 33 (3), 217–223. doi: http://doi.org/10.3103/s106836661203004x
  7. Dmitrichenko, N. F., Milanenko, A. A., Savchuk, A. N., Bilyakovich, O. N., Turitsa, Y. A., Pavlovskiy, M. V., Artemuk, S. I. (2016). Improving the efficiency of lubricants by introducing friction modifiers for tracked vehicles under stationary conditions of friction. Journal of Friction and Wear, 37 (5), 441–447. doi: http://doi.org/10.3103/s1068366616050044
  8. Mohamed, M. K., Alahmadi, A., Ali, W. Y., Abdel-Sattar, S. (2012). Effect of Magnetic Field on The Friction and Wear Displayed by The Scratch of Oil Lubricated Steel. International Journal of Engineering & Technology, 12 (6), 137–143.
  9. Lysikov, Ye. M., Onopriichuk, D. V. (2010). Pidvyshchennia resursu tekhnichnykh system MVS Ukrainy shliakhom vykorystannia nanotekhnolohii. Zbirnyk naukovykh prats Akademii vnutrishnikh viisk MVS Ukrainy, 1 (15), 34–37.
  10. Lysikov, Ye. M., Voronin, S. V., Stefanov, V. O. (2006). Balans PAR v robochykh ridynakh hidropryvodiv budivelnykh ta koliinykh mashyn. Zbirnyk naukovykh prats UkrDAZT, 73, 84–89.
  11. Abeer, A. E., Abo Ainin, H. M., Khashaba, M. I., Ali, W. Y. (2011). Effect of Magnetic Field on Friction and Wear of Brass. Journal of the Egyptian Society of Tribology, 8 (2), 16–30.
  12. Voronin, S. V., Dunaev, A. V. (2015). Effects of electric and magnetic fields on the behavior of oil additives. Journal of Friction and Wear, 36 (1), 33–39. doi: http://doi.org/10.3103/s1068366615010158
  13. Simdyankin, A. A., Uspensky, I. A., Pashchenko, V. M., Starunsky, A. V. (2017). Ultrasonic machining of engine lubricating oil during tribotechnical testing. Journal of Friction and Wear, 38 (4), 311–315. doi: http://doi.org/10.3103/s1068366617040134
  14. Onopreichuk, D. V. (2011). Vplyv napruzhennia elektrostatychnoho polia na tovshchynu mastylnoi plivky v hidropryvodi pry hranychnomu terti. Zbirnyk naukovykh prats UkrDAZT, 122, 282–288.

Published

2020-03-05

How to Cite

Onopreichuk, D., & Stefanov, V. (2020). Research of the wear resistance of multi-component bronze in the conditions of the hydraulic oil processed by the power field. Technology Audit and Production Reserves, 2(1(52), 28–31. https://doi.org/10.15587/2706-5448.2020.201550

Issue

Section

Reports on research projects