UDK 621.91.01
INFLUENCE OF CINEMATIC AND TECHNOLOGICAL PARAMETERS OF ROTARY TURNING BY MULTIFACETED CUTTERS ON CHIP FORMATION AND SURFACE ROUGHNESS
N. S. Indakov, Yu. I. Gordeev, A. S. Binchurov, D. I. Kiselev, V. B. Jasinski
Siberian Federal University 79, Svobodny Av., Krasnoyarsk, 660041, Russian Federation
By calculated and experimental methods features of the process of turning the rotary multifaceted cutters were investigated. Influence of cutting conditions on the intensity of deformation processes, shape and dimensions of the cross section of cutting layer in the form of chips and roughness of the treated surface were installed. The resulting semi-empirical equations allow the appoint the cutting modes to predict the roughness parameters Ra, Rz, Rmax. The proposed method combines elements of skew turning (in which the cut layer moves along the cutting edge) and rotary turning (in which the sections of the cutting edge are constantly renewed). That leads to better cooling and hence longer tool life. The required cutting speed is ensured by selection of the cutter speed; the rotation of the machined shaft corresponds to the azimuthal supply. In the proposed method, the cut width is variable and corresponds to the section of the cutter profile with an increasing radius vector, while the cutting depth varies in the vertical plane of the cut. On the basis of the cutting kinematics, kinematic undulation may appear. To eliminate that, the longitudinal and azimuthal supply must be specified in accordance with our recommendations. Carrying out the corresponding researches allows revealing optimum modes of processing and to make practical recommendations about their choice for various conditions and materials. In general, studies have confirmed the promise of the proposed method.
Keywords: rotational turning, versatile rotary cutter, blade, constructive feed, circular feed, chip control, chip removal, the angles of inclination.
References

1. Konovalov E. G. Osnovy novykh sposobov metalloobrabotki [Fundamentals of New Metalworking Methods]. Minsk, Mashinostroenie Publ., 1961p.

2. Bobrov V. F., Ierusalimskii D. E. Rezanie metallov samovrashayushchimisya reztsami [Metal Cutting by Rotating Tools], Moscow, Mashinostroenie Publ., 1972 p.

3. Yashcheritsyn P. I., Borisenko A. V., Drivotin I. G., and Lebedev, V. Y. Rotatsionnoe rezanie materialov [Rotary Cutting of Materials], Minsk, Nauka i Tekhnika Publ., 1987 p.

4. Granovsky G. Kinematika rezanie [Kinematics of cutting]. Moscow, Mashgiz Publ., 1948, 201 p.

5. Ryzhov E. V., Indakov N. S., Petrovsky E. A. et al. Sposob lezviynoy obrabotki valov s profilem “ravnoosnyy kontur” [A process of processing blade shafts with the profile “equiaxed contour”]. Patent USSR, No. 1126375.

6. Indakov N. S. [Finish turning RK – core shafts multifaceted rotary cutters]. Vestnik Engineering. 1991, No. 1, P. 64–65 (Russ.).

7. Indakov N. S., Binchurov A. S. Turning by multifaceted cutters. Russian Engineering Research, 2014, Vol. 34, No. 1, P. 52–54. DOI: 10.3103/S1068798X14010080.

8. Indakov N. S. Binchurov A. S. [Research by rotational turning indexable cutters]. Machine tools (STIN). 2013, No. 6, P. 21–24.

9. Indakov N. S., Binchurov A. S. Geometry of Multifaceted Rotary Cutters. Russian Engineering Research. 2014, Vol. 34, No. 2, P. 79–82. DOI: 10.3103/S1068798X14020051.

10. Indakov N. S., Binchurov A. S. [Features turning rotary cutters multifaceted]. Vestnik engineering. 2013, No. 10, P. 56–58 (In Russ.).

11. Indakov N. S., Gordeev Y. I., Binchurov A. S. Rotatsionniy rezets [Rotary cutter]. Patent RF. No. 2463130.

12. Indakov N. S., Binchurov A. S. [Features polyhedral geometry of the rotary cutters for turning]. Vestnik Engineering. 2013, No. 11, P. 38–41 (In Russ.).

13. Indakov N. S., Binchurov A. S. [Rotational turning indexable cutters]. Modern innovations in science and technology: Materials IX-th International Scientific and Practical Conference. South-West. state. Univ. Kursk, 2012, P. 71–74.

14. Indakov N. S., Binchurov A. S. [The method of turning the rotary cutters multifaceted]. Vestnik of the Association of graduates KSTU. 2011, No. 20, P. 146–149 (In Russ.).

15. Indakov N. S., Gordeev Y. I., Binchurov A. S. Method of Rotational Turning With Multifaceted Cutters. IOP Conference Series: Materials Science and Engineering. – IOP Publishing. 2016, Vol. 124, No. 1, P. 012150.

16. Armarego E. J. A., Karri V., Smith A. J. R. Fundamental studies of driven and self-propelled rotary tool cutting processes – I. Theoretical investigation. International Journal of Machine Tools and Manufacture. 1994, Vol. 34, No. 6, P. 785–801.

17. Armarego E. J. A., Karri V., Smith A. J. R. Fundamental studies of driven and self-propelled rotary tool cutting processes – II. Experimental investigation. International Journal of Machine Tools and Manufacture. 1994, Vol. 34, No. 6, P. 803–815.


Indakov Nikolay Stepanovich – Cand. Sc., Docent of Department of Design and technology ensuring machinebuilding

production, Polytechnic School, Siberian Federal University. E-mail: indakov 072@mail.ru.

Gordeev Yuri Ivanovic – Cand. Sc., Docent of Department of Design and technology ensuring machine – building

production of Polytechnic School, Siberian Federal University. E-mail: tms-mtf@rambler.ru.

Binchurov Aleksandr Sergeevich – postgraduate student, of chair Design- technology ensuring machine – building

production of the Polytechnic Institute, Siberian Federal University. E-mail: mexanixs@mail.ru.

Kiselyov Denis Ivanovich – graduate student of Department of Design and technology ensuring machine-building

production, Polytechnic School, Siberian Federal University. E-mail: kdi327@mail.ru.

Jasinski Vitaly Bronislavovich – Cand. Sc., Docent of Department of Design and technology ensuring machinebuilding

production of Polytechnic School, Siberian Federal University E-mail: VYasinskiy@sfu-kras.ru.