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Cutting forces during longitudinal turning process of TI-6AL-4V ELI alloy. Theoretical and experimental values

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the paper, the experimental investigations related with longitudinal turning of Ti-6Al-4V ELI alloy (Grade 23) typically used in aeronautics industry have been presented. The main goal was to determinate the influence of changes in a selected cutting parameters (vc and f) for total cutting force Fc and its components. In this case, the analysis of the components of cutting force Fc measured during workshop experimental investigations was carried out. Next, the measured values were compared with the values calculated on the basis of formulas available in the literature. This allowed one to state that universal theoretical formulas can also be used to determine the components of the total cutting force F in the longitudinal turning process of Ti-6Al-4V ELI alloy.
Słowa kluczowe
Rocznik
Strony
201--206
Opis fizyczny
Bibliogr. 16 poz., rys., tab., wykr.
Twórcy
  • Institute of Machine Tools and Production Engineering, Lodz University of Technology, Stefanowskiego 1/15, 90-924, Lodz, Poland
Bibliografia
  • 1. Ezugwu E.O., Bonney J., Yamane Y. (2003). An overview of the machinability of aeroengine alloys. Journal of Materials Processing Technology, Vol. 134, No. 2, pp. 233-253.
  • 2. Ezugwu E.O., Wang Z.M.Y. (1997). Titanium alloys and their machinability – a review. Journal of Materials Processing Technology, Vol. 68, No. 13, pp. 262-274.
  • 3. Kowalczyk M. (2012). Then chip compression ratio analysis in the aspect of Ti-6Al-4V alloy turning with elevated cutting speeds. Technical Transactions, Vol. 109, No. 22, pp.55-69. (in Polish)
  • 4. Narojczyk J., Moroz D., Siemiątkowski Z. (2015). Machining titanium alloy Ti-6Al-4V implanted carbide tools. Mechanik, No. 3, pp. 359-362. (in Polish)
  • 5. Walczak M., Waśkowicz M., Bieniaś J. (2003). Profile microstructural of chosen materials titanic practical in prosthetics the dentists. Eksploatacja i Niezawodność – Maintenance and Reliability, No. 2, pp. 70-74. (in Polish)
  • 6. Bylica A., Sieniawski J. (1987). Titanium and ist alloys.PWN, Warszawa. (in Polish)
  • 7. Grzesik W. (2008). Advanced machining processes of metallic materials. Theory, modelling and applications. Elsevier.
  • 8. Jastrzębski T. (1999). Titanium alloys in ocean engineering constructions. Zeszyty Naukowe – Mechanika, (Politechnika Opolska), Vol. 58, pp. 43-54. (in Polish)
  • 9. Kadłuczka A., Mazur M. (2009). Corrosion of two phase Ti alloy in HCl environment. Technical Transactions, Vol. 106, No. 6, pp 59-66. (in Polish)
  • 10. Kowalczyk M. (2013). Measurements of cutting forces and surface roughness when precision turning of pure titanium. Journal of Machine Engineering, Vol. 18, No. 4, pp. 55-71. (in Polish)
  • 11. Ezugwu E.O., Bonney J., Da Silva R.B., Cakir O. (2007). Surface integrity of finished turned Ti-6Al-4V alloy with PCD tools using conventional and high pressure coolant supplies. International Journal of Machine Tools and Manufacture, Vol. 47, No. 6, pp. 884-891.
  • 12. www.sandvik.pl (20.19.2018)
  • 13. Arrazola P.-J., Garay A., Iriarte L.-M., Armendia M., Marya S., Maître Le F.(2009). Machinability of titanium alloys (Ti6Al4V and Ti555.3). Journal of Materials Processing Technology, Vol. 209, No. 5, pp. 2223-2230.
  • 14. Stachurski W., Midera S., Kruszyński B. (2012). Determination of mathematical formulae for the cutting force Fc during the turning of C45 steel. Mechanics and Mechanical Engineering, Vol. 16, No. 2, pp. 73-79.
  • 15. www.kistler.com (20.10.2018)
  • 16. www.secotools.com (20.10.2018)
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-57433008-97e6-48aa-8eb0-ad41bdff2354
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