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Fabrication of Die-Sinking Electrical Discharge Machine for Machining of Holes on Copper Plate


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1 Department of Mechanical Engineering, S.V.U. College of Engineering, Tirupati, India
     

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Electrical Discharge Machining has been playing an important role in manufacturing sector especially industries like aerospace, ordinance, automobile, general engineering, etc. Electrical Discharge Machining (EDM) is one of the important non-traditional machining processes which is used for machining of conductive and semi conductive materials and also difficult to machine materials like super alloys and composites materials. However, selection of process parameters for obtaining higher cutting efficiency or accuracy in EDM is still not fully solved, even with the most updated EDM machine. An attempt is made in the present work to develop a prototype of EDM consisting of different units namely, dielectric filtering and recirculation unit, pulse generation and control unit and tool-feed control unit. They describe the utilization of various units and their components of proto-type EDM. Orthogonal Array, Taguchi Experimental design is developed for experimentation. The process parameters such as voltage, duty cycle and sensor value are by considered during machining. The experiments are carried-out to produce holes on copper plate using EDM Machine. The experimental results are analyzed and the optimal combinations of influential parameters are determined using Grey Taguchi Analysis. The optimum size of hole is obtained as 2.030 mm, at 40V and 0% Duty Cycle. The analysis is carried-out using Mini TAB and GRA.

Keywords

Die-Sinking EDM, Dielectric Filtering, Voltage, Duty Cycle, Grey Taguchi Method.
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  • Aruna, K; Somashekhar, S; Hiremath: Investigation on Machining of Silica Wafer Using Developed Micro-Electrical Discharge Machining (μ-EDM), International Journal of Engineering Research in Electronics and Communication Engineering, vol. 4, no. 4, April 2017, ISSN (Online) 2394-6849, 46-52.
  • Ahmet Hascalik; Ulas and Caydas: Electrical discharge machining of titanium alloy (Ti–6Al–4V), Applied Surface Science, vol. 253, no. 22, 2005, 9007-9016.
  • Malek, O; Vleugels, J; Vanmeensel, K; Van Renterghem and Lauwers, B: Electrical discharge machining of B2-sic composites, Proceedia CIRP 6, 2013, ISSN:2212-8271, 186–191.
  • Pawade,MM and Banwait, SS: An Exhaustive Review of Die-Sinking Electrical Discharge Machining Process and Scope for Future Research”, World Academy of Science, Engineering and Technology, vol. 7, no. 6, 2013, 6892-6922.
  • Kubade, Pravin R; Jadhav, V: Investigation of Electrode Wear Rate (EWR), Material Removal Rate (MRR) and Radial Overcut (ROC) in EDM of High Carbon-High Chromium Steel (AISI D3), 'International Journal of Technical Research and Applications', Special Issue 42, March 2017, e-ISSN: 2320-8163, 95-98.
  • Kumar Sandeep, S: Research trends in EDM in Dept. of Mechanical Engineering, University Institute of Engineering and Technology”, Research Journal of Engineering Sciences, vol. 2 no. 2, February 2013, ISSN 2278-9472, 56-60.
  • Paul, Lijo and Somashekhar S Hiremath: Surface Modeling of Micro Holes in Electrochemical Discharge Machining Process, Proceedia Engineering, vol. 64, 2013, 1395 - 1404.
  • Sushil Kumar Choudhary: Current Advanced Research Development of Electric Discharge Machining (EDM): A Review, 'International Journal of Research in Advent Technology', vol. 2, no. 3, March 2014, 86-89.
  • Srinivasa Rao, P; Suresh Kumar, J and Vijaya Kumar: Parametric study of electrical discharge machining of AISI 304 stainless steel, 'IJEDR', vol. 2, no. 4, 2014, 2321-9939.
  • Chenthil, TM; Jegan, M and Ravindran, D: Determination Of Electro Discharge Machining Parameters In AISI202 Stainless Steel Using Grey Relational Analysis, 'Proceedia Engineering', vol. 38, 2012, 4005-4012.
  • Ho, KH and Newman, ST: State of the art electrical discharge machining (EDM), 'International Journal of Machine Tools & Manufacture', vol. 43, 2003, 0890-6955, 1287-1300.

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  • Fabrication of Die-Sinking Electrical Discharge Machine for Machining of Holes on Copper Plate

Abstract Views: 183  |  PDF Views: 0

Authors

K. Aruna
Department of Mechanical Engineering, S.V.U. College of Engineering, Tirupati, India
R. Bhargav
Department of Mechanical Engineering, S.V.U. College of Engineering, Tirupati, India
P. Hema
Department of Mechanical Engineering, S.V.U. College of Engineering, Tirupati, India

Abstract


Electrical Discharge Machining has been playing an important role in manufacturing sector especially industries like aerospace, ordinance, automobile, general engineering, etc. Electrical Discharge Machining (EDM) is one of the important non-traditional machining processes which is used for machining of conductive and semi conductive materials and also difficult to machine materials like super alloys and composites materials. However, selection of process parameters for obtaining higher cutting efficiency or accuracy in EDM is still not fully solved, even with the most updated EDM machine. An attempt is made in the present work to develop a prototype of EDM consisting of different units namely, dielectric filtering and recirculation unit, pulse generation and control unit and tool-feed control unit. They describe the utilization of various units and their components of proto-type EDM. Orthogonal Array, Taguchi Experimental design is developed for experimentation. The process parameters such as voltage, duty cycle and sensor value are by considered during machining. The experiments are carried-out to produce holes on copper plate using EDM Machine. The experimental results are analyzed and the optimal combinations of influential parameters are determined using Grey Taguchi Analysis. The optimum size of hole is obtained as 2.030 mm, at 40V and 0% Duty Cycle. The analysis is carried-out using Mini TAB and GRA.

Keywords


Die-Sinking EDM, Dielectric Filtering, Voltage, Duty Cycle, Grey Taguchi Method.

References