Experimental Investigation of the Pulse and Plasma Flushing Efficiency in Electrical Discharge Machining
محورهای موضوعی : EngineeringH Eivazi-Bagheri 1 , M.R Shabgard 2
1 - Young Researchers Club, Tabriz Branch, Islamic Azad University
2 - Department of Mechanical Engineering, University of Tabriz
کلید واژه: Pulse-on time, Duty cycle, Polarity, Pulse efficiency, Plasma efficiency,
چکیده مقاله :
This paper presents a study of the relationship between Electrical Discharge Machining (EDM) parameters on the EDM efficiency factors using a full factorial design, based on pulse on-time, duty cycle and tool polarity parameters in EDM machining of AISI H13 tool steel. The results show that, in positive polarity, the plasma flushing efficiency and pulse efficiency increase according to the pulse-on time, but plasma flushing efficiency decreases over 15(μs) pulse duration only under negative polarity of electrode. Based on the experimental results, the plasma flushing efficiency and pulse efficiency increases when the duty cycle increases in positive tool polarity.
[1] Lee H.T., Hsu F.Ch., Tai T.Y., 2004, Study of surface integrity using the small area EDM process with a copper-tungsten electrode, Materials Science and Engineering A 364(1-2): 346-356.
[2] Tebni W., Boujelbene M., Bayraktar E., Ben Salem S., 2009, Parametric approach model for determining electrical discharge machining (EDM) conditions: effect of cutting parameters on the surface integrity, The Arabian Journal for Science and Engineering 34(1c): 101-114.
[3] Mohamad A.F., 2009, Effects of polarity parameter on the machining of tool steel workpiece using electric discharge machining (EDM), University Malaysia Pahang.
[4] Mageough J.A., 1987, Advanced Methods of Machining, Chapman and Hall.
[5] Gostimirovic M., Kovac P., Sekulic M., Savkovic B., 2011, The research of discharge energy in EDM process, in: Proceedings of the 34th international conference on production engineering, September 28-30, Serbia.
[6] Descoeudres A., 2006, PhD Thesis, University of Lausanne.
[7] Eubank Ph.T., Patel M.R., Barrufet M.A., 1989, Theoretical models of the electrical discharge machining process, I. a simple cathode erosion model, Journal of Applied Physics 66: 4095-4103.
[8] Kokubo H., Takezawa H., Horio K., Mohri N., Yamazaki T., 2004, A Study on the material removal mechanism in EDM-single discharge experiments with low melting temperature alloy, American Society for precision Engineering publications.
[9] Pandey A., Singh Sh., 2010, Current research trends in variants of electrical discharge machining: A review, International Journal of Engineering Science and Technology 2(6): 2172-2191.
[10] Haron C.H., Ghani J.A., Burhanuddin Y., Seong Y.K., Swee C.Y., (2008), Copper and graphite electrodes performance in electrical-discharge machining of XW42 tool steel, Journal Material Process Technology 201(1-3): 570-573.
[11] Salonitis K., Stournaras A., Stavropoulos P., 2009, Chryssolouris G., Thermal modeling of the material removal rate and surface roughness for die-sinking EDM, International Journal Advance Manufacturing Technology, 40: 316-323.
[12] Hofy H., 2005, Advanced Machining Processes: Nontraditional and Hybrid Processes, McGraw Hill Co.