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The basic problems in modernization of a type of turning machines with digital program control are discussed in this paper. The main requirements for the drive system are analyzed and formulated. A number of models for computer simulation with various electric drives have been developed aiming at studying their dynamic and static regimes for the respective control algorithms. Some options for performance improvement of the respective drives are presented. The experimental research carried out confirms good performance of the applied solutions. The results of this study can be used in the design and set up of such driving systems.

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References

  1. Popov G., Machine tools, part I: Applicability, device and control, Second book, Technical of University of Sofia, Sofia, 2010, ISBN 978-954-438-766-2.
     Google Scholar
  2. Tata McGraw-Hill Education, Manufacturing Technology: Metal cutting and machine tools, Vol. 2, 2013, ISBN 9781259029561.
     Google Scholar
  3. Youssef, H. A., H. El-Hofy, Machining Technology: Machine Tools and Operations, CRC Press, 2008, ISBN 9781420043402.
     Google Scholar
  4. Acarnley P., Stepping Motors: a Guide to Theory and Practice. London, IEE, 2002, ISBN 978-085-296-029-5.
     Google Scholar
  5. Bose B. K., Power electronics and motor drives: advances and trends. London, Academic Press, 2006, ISBN 978-0-12-088405-6.
     Google Scholar
  6. Hanselman D., Brushless Permanent Magnet Motor Design, Orono, University of Maine, 2006, ISBN 1-881855-15-5.
     Google Scholar
  7. Keuchel U., R. M. Stephan, Microcomputer-based adaptive control applied to thyristor-driven DC motors, London, Sprin¬ger-Verlag, 1994, ISBN 978-038-719-855-5.
     Google Scholar
  8. SERVOMOTORS, Gama Motors Catalogue, 2014.
     Google Scholar
  9. AMKASYN, AC Servo- and Main Spindle Motors, AMK Catalogue, 2014.
     Google Scholar
  10. Mikhov M., M. Zhilevski, Computer Simulation and Analysis of Two-coordinate Position Electric Drive System, Proceedings of the International Scientific Conference on Infor¬ma¬tion, Communication and Energy Systems and Technologies, pp. 251-254, V. Tarnovo, 2012, ISBN 978-619-167-002-4.
     Google Scholar
  11. Mikhov M., M. Zhilevski, A. Spiridonov, Modeling and Performance Analysis of a Spindle Electric Drive with Adaptive Speed Control, Journal Proceedings in Manufacturing Systems, Vol. 7, No. 3, pp. 153-158; 2012, ISSN 2067-9238.
     Google Scholar
  12. Mikhov M., B. Balev, Modeling and Optimization of an Electric Drive System with Dual-Zone Speed Regulation, Proceedings of the International Scientific Conference on Information, Communication and Energy Systems and Technologies, Nish, Serbia and Montenegro, 2005, Vol. 2, pp. 575-578, ISBN 86-85195-26-8.
     Google Scholar
  13. Mikhov M., Ts. Georgiev, An Approach to Synthesis of a Class of Electric Drives with Dual-Zone Speed Control, Advances in Electrical and Computer Engineering, Vol. 10, No. 4 pp. 87-94, 2010, ISSN 1582-7445.
     Google Scholar
  14. Zhilevska M., Modernization of the class of milling machines, Dissertation, Gabrovo, 2017.
     Google Scholar
  15. Zhilevski M., M. Mikhov, Study of Two-Coordinate Electric Drives of Turning Machines, International Journal of Engineering and Applied Sciences, Vol. 5, Issue 6, pp. 29-34, 2018, ISSN: 2394-3661.
     Google Scholar
  16. Mikhov M., Electric Drives Control Systems, Technical University of Sofia, Sofia, 2009, ISBN 978-954-438-628-3.
     Google Scholar
  17. Zhilevski M., M. Mikhov M., Methodology for Selection of Spindle Drives for Turning Machines, International Journal of Engineering Research and Development, Vol. 14, Issue 5, pp. 42-48, 2018, ISSN:2278-800X.
     Google Scholar
  18. http://www.aertia.com/docs/sprut/SprutCAM40_Eng_Pdf.pdf.
     Google Scholar