Mechanik
PL FB kontakt

26.09.2025

Home Page Listopad 2019 Face rotary turning tools (FRTT) in high productivity process *

Face rotary turning tools (FRTT) in high productivity process *

Zastosowanie obrotowych noży tokarskich czołowych w wysokowydajnej obróbce

Author: Janusz Cieloszyk

Mechanik nr 11/2019 - Obróbka skrawaniem

ABSTRACT: The article presents an unconventional method of machining rolling surfaces. This method is called face rotary turning tools (FRTT) or spinning tools technology. Advantages and limitations of the method were discussed and its effectiveness in modern machining processes was shown, based on the proposed simple models.

KEYWORDS: spinning tools technology, spinning tools, face rotary turning tool

STRESZCZENIE: W artykule przedstawiono niekonwencjonalną metodę obróbki skrawaniem powierzchni tocznych. Ta metoda jest nazywana toczeniem obrotowym nożem czołowym (face rotary turning tool – FRTT) lub toczeniem spinowym (spinning tools technology). Omówiono zalety i ograniczenia metody oraz pokazano jej efektywność w nowoczesnych procesach obróbki, bazując na zaproponowanych prostych modelach.

SŁOWA KLUCZOWE: toczenie spinowe, narzędzia spinowe,obrotowy nóż czołowy

BIBLIOGRAFIA / BIBLIOGRAPHY:

[1] Astakhov V.P. “Geometry of Single-point Turning Tools and Drills”. London: Springer-Verlag, 2010.

[2] Cieloszyk J., Fabisiak B. „Narzędzia z obrotowymi krawędziami skrawającymi – klasyfikacja i terminologia”. Mechanik. 8–9 (2017): 674–676, https://doi.org/10.17814/mechanik.2017.8-9.100.

[3] Cieloszyk J., Zasada M. “The Self-Propelled Rotary Tools-Future Conception In Metal Cutting?”. The 15th DAAAM International Symposium Intelligent Manufacturing & Automation: Globalisation – Technology – Men – Nature”. Vienna, Austria, 36th November 2004, 075077.

[4] Cieloszyk J., Zasada M., Wieloch G. „Właściwości i perspektywy zastosowań aktywnie napędzanych noży obrotowych ADRT na wieloosiowych centrach obróbkowych”. Innovative Manufacturing Technology. Ed. P. Rusek. IZTW Kraków, 2012, 29–39, ISBN 978-80-228-2385-2.

[5] Dessoly V., Melkote S.N., Lescalier C. “Modeling and verification of cutting tool temperatures in rotary tool turning of hardened steel”. International Journal of Machine Tools and Manufacture. 44 (2004): 1463–1470.

[6] Ezugwu E.O. “Key improvements in the machining of difficult-to-cut aerospace superalloys”. International Journal of Machine Tools & Manufacture. 45 (2005): 1353–1367.

[7] Hosokawa A., Haruki Yoshimatsu H., Koyano T., Furumoto T., Yhashimoto Y. “Turning of difficult-to-machine materials with an actively driven rotary tool (ADRT)”. Journal of Advanced Mechanical Design, Systems, and Manufacturing. 12, 5 (2018): 1–9.

[8] Hyatt G.A., Andras L.R., Massa T.R. “Method and assembly for rotating a cutting insert during a turning operation and inserts used therein”. Patent US 7156006B2, Jan. 2, 2007.

[9] Kishawy H.A., Becze C.E., Mcintosh G.G. “Tool performance and attainable surface quality during the machining of aerospace alloys using self-propelled rotary tools”. Journal of Materials Processing Technology. 152 (2004): 266–271.

[10] Kishawy H.A., Wilcox J. “Tool wear and chip formation during hard turning with self propelled rotary tools”. International Journal of Machine Tools & Manufacture. 43 (2003): 433–439.

[11] Mazakas A. “The evolution of revolution”. Cutting Tool Engineering. 60 (2008): 74–76.

[12] Nakajima K. et al. “Effect of rotary cutting tool posture on machining performance utilizing multi-tasking lathe”. Journal of Advanced Mechanical Design, Systems, and Manufacturing. 2, 2 (2008): 532–539.

[13] Sasahara H. et al. “High-speed rotary cutting of difficult-to-cut materials on multi tasking lathe”. International Journal of MachineTools and Manufacture. 48, 7–8 (2008): 841–850.

[14] Yamamoto K., Satake K., Narita T., Sasahara H., Tsutsumi T., Muraki T. “Thermal Behavior and Chip Formation on Rotary Cutting of Difficult-to-cut Materials Utilizing Multi Tasking Lathe and MQL”. Tokyo University of Agriculture and Technology, report 2010.

DOI: https://doi.org/10.17814/mechanik.2019.11.100

 

* Artykuł recenzowany

 

Pobierz plik / download

Janusz Cieloszyk: Face rotary turning tools (FRTT) in high productivity process (Zastosowanie obrotowych noży tokarskich czołowych w wysokowydajnej obróbce) (PDF, ~0,8 MB)

Home Page Listopad 2019 Face rotary turning tools (FRTT) in high productivity process *

Recommended Books

Theory and Modeling of Rotating Fluids: Convection, Inertial Waves and Precession
Keke Zhang, Xinhao Liao

Theory and Modeling of Rotating Fluids: Convection, Inertial Waves and Precession

Cambridge University Press

A systematic account of the theory and modelling of rotating fluids that highlights the remarkable advances...

Advanced Machining Processes of Metallic Materials: Theory, Modelling, and Applications
Wit Grzesik

Advanced Machining Processes of Metallic Materials: Theory, Modelling, and Applications

Elsevier

In 2017 Elsevier republished the book “Advanced Machining Processes of Metallic Materials: Theory,...

Hybrid Machining: Theory, Methods, and Case Studies
Xichun Luo Yi Qin

Hybrid Machining: Theory, Methods, and Case Studies

Elsevier

“Hybrid Machining: Theory, Methods, and Case Studies” covers the scientific fundamentals, techniques,...

Three-Dimensional Navier-Stokes Equations. Classical Theory
James C. Robinson, José L. Rodrigo, Witold Sadowski

Three-Dimensional Navier-Stokes Equations. Classical Theory

Cambridge University Press

A rigorous but accessible introduction to the mathematical theory of the three-dimensional Navier-Stokes...

Our partners