Have a personal or library account? Click to login
A Method of Increasing the Accuracy of Low-Stiffness Shafts: Single-Pass Traverse Grinding Without Steady Rests Cover

A Method of Increasing the Accuracy of Low-Stiffness Shafts: Single-Pass Traverse Grinding Without Steady Rests

Open Access
|Nov 2022

References

  1. 1. Han X., Wu T. Analysis of acoustic emission in precision and high-efficiency grinding technology. Int J Adv Manuf Tech. 2013; 67(9):1997-2006.
  2. 2. Oczoś K. Characteristics of development trends in grinding with grinding wheels. Materials of XXIII Scientific Abrasive Conference. 2000; 13-62.
  3. 3. Kopac J., Krajnik P. High-performance grinding – A review..J Mater Process Tech. 2006;175:278-284.10.1016/j.jmatprotec.2005.04.010
  4. 4. Klocke F., Barth S., Mattfeld P. High Performance Grinding. Procedia CIRP. 2016;46:266-271.10.1016/j.procir.2016.04.067
  5. 5. Klocke F., Soo L., Karpuschewski B., Webster J., Novovic D., Elfizy A., Axinte D., Tönissen S. Abrasive machining of advanced aerospace alloys and composites. CIRP Annals – Manufacturing Technology. 2015;64(2):581-604.10.1016/j.cirp.2015.05.004
  6. 6. Kalchenko V., Pogiba N., Kalchenko D. Determination of Cutting Force Components in Creep-Feed Grinding of Revolution Surfaces Using an Oriented Elbor Wheel. J Superhard Mater. 2012;34(2): 118-130.10.3103/S1063457612020062
  7. 7. Żyłka Ł., Babiarz R. Dressing process in the grinding of aerospace blade root. J Mech Sci Technol. 2017;31(9): 4411-4417.10.1007/s12206-017-0841-6
  8. 8. Webster J., Tricard M. Innovations in Abrasive Products for Precision Grinding. CIRP Annals. 2004;53(2):597-617.10.1016/S0007-8506(07)60031-6
  9. 9. Nadolny K. A review on single-pass grinding processes.. J Cent South Univ. 2013;20:1502-1509.10.1007/s11771-013-1641-5
  10. 10. Burek J., Sułkowicz P., Babiarz R., Płodzień M. Cylindrical Continuous Path Controlled Grinding with Profile Grinding Wheel Type 1F1. Reszow Uniwersity of Technology Scientific Letters, Mechanics. 2017;89(4):449-456.10.7862/rm.2017.41
  11. 11. Marinescu I. D., Hitchiner M. P., Uhlmann E., Rowe W. B., Inasaki I. Handbook of Machining with Grinding Wheels. CRC Press,. 2016.10.1201/b19462
  12. 12. Urbicain G., Olvera D., Fernandez A., Rodriguez L., Tabernero L.N. Stability Lobes in Turning of Low Rigidity Components. Adv Mat Res. 2012;498:576-585.
  13. 13. Porzycki J., Batsch A., Oczoś K. A two-parameter adaptive control system for the traverse cylindrical grinding process. IFAC Proceedings Volumes. 1980;13(10):151-154.10.1016/S1474-6670(17)64514-2
  14. 14. Amitay G. Malkin S., Koren Y. Adaptive Control Optimization of Grinding.. J Eng Ind. 1981;103(1):103-108.10.1115/1.3184449
  15. 15. Gao Y., Jones B. Control of the traverse grinding process using dynamically active workpiece steadies.. Int J Mach Tool Manu. 1993;33(2):231-244.10.1016/0890-6955(93)90076-7
  16. 16. Park C., Kim D., Lee S. Shape prediction during the cylindrical traverse grinding of a slender workpiece. J Mater Process Tech. 1999;88:23-32.10.1016/S0924-0136(98)00363-X
  17. 17. Choi H., Lee S. Machining error compensation of external cylindrical grinding using thermally actuated rest. Mechatronics. 2002;12: 643-656.10.1016/S0957-4158(01)00026-5
  18. 18. Kruszyński B., Lajmert W. An intelligent system for online optimization of the cylindrical traverse grinding operation. Int J Eng Manu. 2006;3:355-363.10.1243/095440506X77607
  19. 19. Świć A., Taranenko W. Adaptive control of machining accuracy of axial – symmetrical lowrigidity parts in elastic – deformable state. Maintenance and Reliability. 2012;3:215-221.
  20. 20. Parenti P., Bianchi G. Model-based adaptive process control for surface finish improvement in traverse grinding. Mechatronics. 2016;36:97-111.10.1016/j.mechatronics.2016.04.001
  21. 21. Saljẻ E., Mushardt H. Aufbau einer Optimierregelung für einen mehrstufigen Schleifprozess. Werkstattstechnik. 1975;65:335-338.
  22. 22. Burek J. Stabilization of normal grinding force component in multistage plunge grinding. PhD thesis (Rzeszow University of Technology). 1985.
  23. 23. Onishi T., Kodani T., Ohashi K., Sakakura M., Tsukamoto S. Study on the Shape Error in the Cylindrical Traverse Grinding of a Work-piece with High Aspect Ratio. Adv Mat Res. 2014;10(17):78-81.
  24. 24. Burek J., Sułkowicz P., Babiarz R. Cylindricity error measurement and compensation in traverse grinding of low-stiffness shafts. Mechanik. 2018;91(11):970-972.10.17814/mechanik.2018.11.172
DOI: https://doi.org/10.2478/ama-2022-0042 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 357 - 364
Submitted on: Jun 8, 2022
Accepted on: Aug 12, 2022
Published on: Nov 1, 2022
Published by: Bialystok University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Paweł Sułkowicz, Robert Babiarz, Jan Burek, Jarosław Buk, Kamil Gancarczyk, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.