The Effect of Cutting Speed on the Machinability of 2080 Special K Steel on Vertical Machining Center

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This study presents the results of machining tests carried out determine the effect of cutting forces and surface roughness on machininig of 2080 Special K (1.2080 DINX210Cr12) cold work steel in terms of cutting speed, feed rate and depth of cut for milling process. A series of experiments have been performed on 2080 Special K steel material of cutting width 50 mm with round uncoated cemented carbide insert on 5,5 Kw engine power Jhonford VMC550 CNC vertical machining center without cutting fluid. Experiments were carried out by using four different cutting speeds (70,90,110,130 m/min) at constant depth of cut (1mm) and feed rate (0,3mm/rev.) and the effects of cutting speeds on primary cutting force and surface roughness were investigated. The study of the influence of workpiece material on milling process shows that hardening of material increased by machining up. Cutting force (Fc) and surface roughness decreases with improving workpiece material machinability. From the experiments, the lowest average primary cutting force was obtained as 604,03N at cutting speed of 90m/min. The lowest average surface roughness has been obtained as 0,19 um at cutting speed 110m/min. Obtained chip form is narrow and short step.

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Advanced Materials Research (Volumes 875-877)

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1406-1411

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February 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Manuel San-Juan Öscar Martin, Francisco Santos, Experimental study of friction form cutting forces in orthogonal milling original research article International Journal of machine Tools and Manufacture Volome 50, Issue, 7, July 2010 Pages 591-600.

DOI: 10.1016/j.ijmachtools.2010.03.013

Google Scholar

[2] Hui Ding, Rasidi Ibrahim, Kai Cheng, Shi-Jin Chen, Experimental study on machinability improvement of hardened tool steel using two dimensional vibration assisted micro-end-milling International Journal of Machine Tools and Manufacture, Volume 50, Issue 12, December 2010, Pages 1115-1118.

DOI: 10.1016/j.ijmachtools.2010.08.010

Google Scholar

[3] J. Vivancos, C.J. Luis, l. Costa J. A Ortiz, Optimal machining parameters selection in high speeld milling of hardenel steels for injection moulds Original research Article Journal of Materials Processing Technology, Volumes 155-156, 30November 2004, Pages 1505-1512.

DOI: 10.1016/j.jmatprotec.2004.04.260

Google Scholar

[4] T.H.C. Childs, M.H. Dirikolu, M.D.S. Sammons, K. Maekawa, T. Kitagawa, Experiments on and finite element modeling of turning free-cutting steels at cutting speeds up to.

Google Scholar

[5] L. Filice, F. Micari, S. Rizzuti, D. Umbrello, A critical analysis on the friction modelling in orthogonal machining, Intern. Journal of Machine Tools and Manufacture 47 (2007) 709–714.

DOI: 10.1016/j.ijmachtools.2006.05.007

Google Scholar

[6] A.E. Diniz, J.C. Filho, Influence of the relative positions of tool and work- piece on tool life, tool wear and surface in the face milling process, Wear232 (1999) 67–75.

DOI: 10.1016/s0043-1648(99)00159-3

Google Scholar

[7] Y. Altıntas¸ManufacturingAutomation, CambridgeUniversity Press, USA, 2000, p.5–6.

Google Scholar

[8] Dumitru, V. Romano H, P, Weber. Y. Gerbig. H. Haefke, S. Bruneau, J. Hermann. M. Sentis, Femtosecond laser ablation of cemented carpides properties and trobıoligical applications, Appl. Phys. A. Mater. Sci. Process. 79(2004)629-632.

DOI: 10.1007/s00339-004-2675-1

Google Scholar

[9] Trent EM. Metal cutting. 2nd ed. London: Butterworths; 1984, ISBN 0-408-10856-8.

Google Scholar

[10] Paul Degarmo E, Black JT, Ronaldo AKohser. Material and process in manufacturing. Englewood Cliffs (NJ): Prentice-Hall tional Inc.; (1997).

Google Scholar

[11] Muammer Nalbant, Abdullah Altın, Hasan Gökkaya The effect of coating material and geometry of cutting tool and cutting speed on machinability properties of Inconel 718 super alloys Materials & Design, Volume 28, Issue 5, 2007, Pages 1719-1724.

DOI: 10.1016/j.matdes.2006.03.003

Google Scholar

[12] Boothroyd G. Fundamentals of metal machining and machine tools. International Student ed. 5th Printing. New York: McGraw-Hill; 1981, ISBN 0-07-085057-7.

Google Scholar

[13] Çakır, C. Modern metal cutting principles. VIPAS , Bursa; (2000).

Google Scholar