KEY ASPECTS OF INFLUENCE OF ULTRASONIC VIBRATIONS OF A DRESSING TOOL ON THE EFFICIENCY OF THE PROCESS OF WHEEL DRESSING


Cite item

Full Text

Abstract

The authors developed the technique of the study of influence of axial ultrasonic vibrations of a core diamond dressing tool (DT) in the process of dressing of a grinding wheel: on the normal component Py of dressing force, on the wear of the dressing tool diamonds, on the formation of the wheel working surface texture (WWS). The WWS texture parameters were studied by the following methods: sensing on a profile recording instrument using a diamond stylus (parameters are the bearing length ratio tр at the fixed level р and the mean pitch between grains); optical microscopy using the MBS-2 microscope (parameters are the bearing surface ratio η of a grinding wheel). In parallel, the authors carried out the fractographic study of the WWS texture using the LEO 1455VP scanning electron microscope.

The study shows that in the condition of ultrasonic dressing (UD) of a wheel, the DT wear slightly influences the changes in the bearing surface ratio η of the WWS texture. Therefore, the ultrasonic dressing can ensure higher stability of cutting power of a wheel and the DT can work up to wear-out.

The authors give recommendations on the selection of the ultrasonic dressing parameters:

1. It is recommended to select the oscillation frequency from the frequencies specified by the State All-Union standard 16165-80: (18±1.26) kHz; (22±1.54) kHz; (44±3.08) kHz; (66±4.62) kHz.

2. It is impractical to specify the DT amplitude of forced oscillations A higher than 15…20 micron.

3. When selecting the dressing depth tп it is necessary to consider the condition of mandatory intermittent interruption of contact of DT with WWS according to the inequality: 0≤tП≤2A.

About the authors

S. V. Murashkin

Togliatti State University

Author for correspondence.
Email: fake@neicon.ru
Russian Federation

A. S. Selivanov

Togliatti State University

Email: fake@neicon.ru
Russian Federation

V. I. Malyshev

Togliatti State University

Email: fake@neicon.ru
Russian Federation

References

  1. Hashimoto F., Gallego I., Oliveira J.F.G., Barrenetxea D., Takahashi M., Sakakibara K., Stalfelt H.D., Staadt G., Ogawa K. Advances in centerless grinding technology. CIRP Annals – Manufacturing Technology, 2012, vol. 61, no. 2, pp. 747–770.
  2. Wegener K., Bleicher F., Krajnik P., Hoffmeister H.W., Brecher C. Recent developments in grinding machines. CIRP Annals – Manufacturing Technology, 2017, vol. 66, no. 2, pp. 779–802.
  3. Zhanga Y.Z., Xu X.P. Influence of surface topography evolution of grinding wheel on the optimal material removal rate in grinding process of cemented carbide. International Journal of Refractory Metals and Hard Materials, 2019, vol. 80, pp. 130–143.
  4. Palmer J., Ghadbeigi H., Novovic D., Curtis D. An experimental study of the effects of dressing parameters on the topography of grinding wheels during roller dressing. Journal of Manufacturing Processes, 2018, vol. 31, pp. 348–355.
  5. Kadivara M., Azarhoushang B., Shamaray S., Krajnik R. The effect of dressing parameters on micro-grinding of titanium alloy. Precision Engineering, 2018, vol. 51, pp. 176–185.
  6. Korchak S.N. Proizvoditelnost protsessa shlifovaniya stalnykh detaley [Productivity of process of grinding of steel details]. Moscow, Mashinostroenie Publ., 1974. 275 p.
  7. Malkin S., Grinding Technology: Theory and Applications of Machining with Abrasives. New York, John Wiley & Sons Publ., 1989. 290 p.
  8. Malkin S., Guo C. Grinding Technology. Theory and application of machining with abrasines. 2nd ed. New York, Industrial Press Publ., 2008. 372 p.
  9. Bogachev Yu.Yu., Babenko M.G. Study of the resistance of the working surface of the grinding wheel and dressing diamond tool. Vestnik Permskogo natsionalnogo issledovatelskogo politekhnicheskogo universiteta. Mashinostroenie, materialovedenie, 2015, vol. 17, no. 2, pp. 21–29.
  10. Malyshev V.I., Murashkin S.V., Popov A.N. Effect of ultrasound on edit the terms of quality polished surfaces under automated production. Vektor nauki Tolyattinskogo gosudarstvennogo universiteta, 2010, no. 3, pp. 101–105.
  11. Yanga Z., Zhang S., Zhang Z., Zhang Y., Hu J., Li K., Zhao B., Zhang Y. Experimental research on laserultrasonic vibration synergic dressing of diamond wheel. Journal of Materials Processing Technology, 2019, vol. 269, pp. 182–189.
  12. Wegener К., Hoffmeister H.W., Karpuschewski B., Kuster F., Hahmann W.C., Rabiey M. Conditioning and monitoring of grinding wheels. CIRP Annals – Manufacturing Technology, 2011, vol. 60, no. 2, pp. 757–777.
  13. Berlyaev B.V. The Effect of Ultrasonic Wheel Dressing on the Grinding Process. Machines & Tooling Melton Mowbray, 1978, vol. 49, no. 11, pp. 53–54.
  14. Tawakoli T., Westkaemper E., Rasifard A. Ultrasonic Assisted Dressing of Vitrified CBN Grinding Wheel. 40th CIRP International Seminar on Manufacturing Systems. Liverpool, Liverpool University Publ., 2007, pp. 121–125.
  15. Kiselev E.S. Intensifikatsiya protsessov mekhanicheskoy obrabotki ratsionalnym ispolzovaniem energii ultrazvukovogo polya [Intensification of the processes of mechanical treatment using the efficient use of ultrasonic field energy]. Ulyanovsk, UlGTU Publ., 2003. 186 p.
  16. Malyshev V.I., Murashkin S.V., Selivanov A.S. Ultrasonic dressing of the grinding circle, as means of increase of efficiency of grinding in the conditions of mass production. Sbornik nauchnykh trudov SWorld, 2012, vol. 7, no. 3, pp. 52–60.
  17. Malyshev V.I., Murashkin S.V. Definition of quantity volume-destroyed abrasive grains of the grinding circle at to ultrasonic editing. Vektor nauki Tolyattinskogo gosudarstvennogo universiteta, 2011, no. 3, pp. 60–65.
  18. Grigoryan M.A. The destruction of grains of interacting abrasive tools during dressing. Mashinostroitel, 2007, no. 6, pp. 30–34.
  19. Fedoseev O.B. The Effect of Noise on Grinding Cycles. Journal of Engineering for Industry, 1991, vol. 113, no. 4, pp. 474–476.
  20. Schwarz K.E. Zerspanungsvorgauge und Schleifergebnis beim Abrichten von Grinding. Journal of Manufacturing Science and Engineering, 2001, vol. 123, pp. 319–324.

Supplementary files

Supplementary Files
Action
1. JATS XML

Copyright (c)



This website uses cookies

You consent to our cookies if you continue to use our website.

About Cookies