Dimensional Accuracy in Dry Micro Wire Electrical Discharge Machining

Authors

  • Mohammad Yeakub Ali Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia
  • Asfana Banu Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia
  • Muhammad Salehan Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia
  • Erry Y.T. Adesta Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia
  • Muataz Hazza Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia
  • Muhammad Shaffiq Department of Manufacturing and Materials Engineering International Islamic University Malaysia PO Box 10, 50728 Kuala Lumpur, Malaysia

DOI:

https://doi.org/10.15282/jmes.12.1.2018.4.0298

Keywords:

Dry wire EDM, Dry micro wire EDM, Dimensional accuracy, Kerf

Abstract

Dimensional accuracy is important in fabricating miniaturized product in order to reduce the material waste and machining cost as well as to achieve a better quality product. This paper presents the analysis and modelling of dimensional accuracy in dry micro wire electrical discharge machining with control parameters of gap voltage and wire tension. The investigation was performed on stainless steel using integrated multi-process micro machine tools DT 110 with compressed air as the dielectric fluid and tungsten as the wire electrode. The dimensional accuracy was determined through kerf width differences of the machined slots. The kerf width was measured using scanning electron microscope. Full factorial was used to design the experiment while analysis of variance (ANOVA) was used to analyse the results as well as to evaluate the adequacy of the developed model. Based on ANOVA, both parameters; gap voltage and wire tension have high influence on kerf width differences. The optimum machining parameters for minimum kerf width differences were found to be 85 V gap voltage and 10 % wire tension. The developed model is adequate since the percentage error (2.13 %) is relatively small. It is recommended that different type of gases should be used for further investigation in order to determine the accuracy of the dry micro wire EDM.

References

Hoang KT, Yang SH. A study on the effect of different vibration-assisted methods in micro-WEDM. Journal of Materials Processing Technology. 2013;213:1616-1622.

Hoang KT, Yang SH. A new approach for micro-WEDM control based on real-time estimation of material removal rate. International Journal of Precision Engineering and Manufacturing. 2015;16:2-241-246.

Banu A, Bakar MA, Ali MY, Adesta EYT. Analysis of WEDM process parameters on surface roughness and kerf using Taguchi method. International Journal of Engineering Materials and Manufacture. 2017;2:4-103-109.

Khan MAR, Rahman MM, Kadirgama K, Maleque MA, Ishak M. Prediction of surface roughness of Ti-6Al-4V in electrical discharge machining: a regression model. Journal of Mechanical Engineering and Sciences. 2011;1:16-24.

Abbas MN, Solomon DG, Fuad Bahari M. A review on current research trends in electrical discharge machining (EDM). International Journal of Machine Tools and Manufacture. 2007;47:7-1214-1228.

Banu A, Ali MY. Electrical discharge machining (EDM): a review. International Journal of Engineering Materials and Manufacturing. 2016;1:1-3-10.

Singh R, Singh B. Comparison of cryo treatment effect on machining characteristics of titanium electric discharge machining. International Journal of Automotive and Mechanical Engineering. 2011;3:239-248.

Mohanty S, Routara BC. A review on machining of metal matrix composites using nanoparticle mixed dielectric in electro-discharge machining. International Journal of Automotive and Mechanical Engineering. 2016;13:2-3518-3539.

Liu Q, Zhang Q, Zhang M, Zhang J. Review of size effects in micro electrical discharge machining. Precision Engineering. 2016;44:29-40.

Hourmand M, Sarhan AAD, Yusof, NM. Development of new fabrication and measurement techniques of micro-electrodes with high aspect ratio for micro EDM using typical EDM machine. Measurement. 2017;97:64–78.

Azhiri RB, Teimouri R, Baboly MG, Laseman Z. Application of Taguchi, ANFIS and grey relational analysis for studying, modelling and optimization of wire EDM process while using gaseous media. International Journal of Advanced Manufacturing Technology. 2014;71:1-279-295.

Pradeep GM, Dani MSH. A review on the use of pollution free dielectric fluids in wire electrical discharge machining process. Journal of Chemical and Pharmaceutical Sciences. 2015;7:312-315.

Dhakar K, Dvivedi A. Parametric evaluation on near-dry electric discharge machining. Materials and Manufacturing Processes. 2016;31:413-421.

Khatri BC, Rathod P, Valaki JB. Ultrasonic vibration-assisted electric discharge machining: a research review. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture. 2016;1-12.

Wang T, Xie SQ, Xu XC, Chen Q, Lu XC, Zhou SH. Application of uniform design in experiments of WEDM in gas. Advanced Materials Research. 2012;426:11-14.

Skrabalak G, Kozak J. Study on dry electrical discharge machining. Wear. 2010;5:7.

Yu ZB, Takahashi J, Nakajima N, Sano S, Kunieda M. Feasibility of 3-D surface machining by dry EDM. International Journal of Electrical Machining. 2005;10:15-20.

Wang T, Kunieda M. Dry WEDM for finish cut. Key Engineering Materials. 2004;259-260:562-566.

Kunieda M, Lauwers B, Rajurkar KP, Schumacher BM. Advancing EDM through fundamental insight into the process. CIRP Annals-Manufacturing Technology. 2005;54:2-64-87.

Liqing L, Yingjie S. Study of dry EDM with oxygen-mixed and cryogenic cooling approaches. Procedia CIRP. 2013;6:344-350.

Singh P, Chaudhary AK, Singh T, Rana AK. Comparison of outputs for dry EDM and EDM with oil: a review. International Journal for Research in Emerging Science and Technology. 2015;2:6-45-49.

Ghodsiyeh D, Moradi M. Wire Electrical Discharge Machining. In Electrical Discharge Machining (EDM) Types, Technologies and Applications. Jahan MP, Ed. New York: Nova Science Publishers, Inc., 2015;33-65.

Yu Z, Jun T, Masanori K. Dry electrical discharge machining of cemented carbide. Journal of Materials Processing Technology. 2004;149:1-353-357.

Ho KH, Newman ST, Rahimifard S, Allen RD. State of the art in wire electrical discharge machining (WEDM). International Journal of Machine Tools and Manufacture. 2004;44:1247-1259.

Mandal A, Dixit AR. State of art in wire electrical discharge machining process and performance. International Journal of Machining and Machinability of Materials. 2014;16:1.

Hoang KT, Yang SH. Kerf analysis and control in dry micro-wire electrical discharge machining. International Journal of Advanced Manufacturing Technology. 2015;78:1803-1812.

Di S, Chu X, Wei D, Wang Z, Chi G, Liu Y. Analysis of kerf width in micro-WEDM. International Journal of Machine Tools and Manufacture. 2009;49:10-788-792.

Islam MN, Rafai NH, Subramanian SS. Dimensional accuracy achievable in wire-cut electrical discharge machining. In Electrical Engineering and Applied Computing, Lecture Notes in Electrical Engineering. Dordrecht: Springer, 2011;90.

Balan ASS, Giridharan A. A progress review in wire electrical discharge machining process. International Journal of Automotive and Mechanical Engineering. 2017;14:2- 4097-4124.

Khademi A, Renani NG, Mofarrahhi M, Jeddi AR, Yusof NM. The best location for speed bump installation using experimental design methodology. Promet – Traffic & Transportation. 2013;25:6-565-574.

Mee R. A comprehensive guide to factorial two-level experimentation. Springer Science & Business Media. 2009.

Zhu Y, Antao DS, Chu KH, Chen S, Hendricks TJ, Zhang T, Wang EN. Surface structure enhanced microchannel flow boiling. Journal of Heat Transfer. 2016;138:091501.

Micheli L, Reddy KS, Mallick TK. Plate micro-fins in natural convection: an opportunity for passive concentrating photovoltaic cooling. Energy Procedia. 2015;82:301-308.

Pal VK, Choudhury SK. Fabrication and analysis of micro-pillars by abrasive water jet machining. Procedia Materials Science. 2014;6:61-71.

Kapoor J, Sigh S, Khamba JS. High-performance wire electrodes for wire electrical-discharge machining – a review. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture. 2012;226:11-1757-1773.

Bhandare AS, Dabade UA. Experimental investigations during dry EDM of Inconel-718. IOP Conference Series: Materials Science and Engineering. 2016;114:012035.

Zhou W, Apkarian R, Wang ZL, Joy D. Fundamentals of scanning electron microscopy (SEM). In Scanning microscopy for nanotechnology. Springer NewYork, 2006;1-40

Ndaliman MB, Al-Hazza MHF, Khan AA, Ali MY. (September, 2014). Modeling surface roughness of Ti6Al4V alloy subjected to EDM with Cu-TaC electrode using response surface methodology. retrieved from https://www.researchgate.net/publication/321070863_Modeling_surface_roughness_of_Ti6Al4V_alloy_subjected_to_EDM_with_Cu-TaC_electrode_using_response_surface_methodology dated on 12 February 2017.

Khan MAR, Rahman MM, Kadirgama K. Electrode wear rate of graphite electrodes during electrical discharge machining processes on titanium alloy Ti-5Al-2.5Sn. International Journal of Automotive and Mechanical Engineering. 2014;9:1782-1792.

Conde A, Arriandiaga A, Sanchez JA, Portillo E, Plaza S, Canabes I. High-accuracy wire electrical discharge machining using artificial networks and optimization techniques. Robotics and Computer-Integrated Manufacturing. 2018;49:24-38

Habib, S. & Okada, A. (2016). Experimental investigation on wire vibration during fine wire electrical discharge machining process. International Journal of Advanced Manufacturing Technology, 84 (9-12), 2265-2276.

Maradia U, Wegener K. EDM Modelling and Simulation. In Electrical Discharge Machining (EDM) Types, Technologies and Application. Jahan MP, Ed. New York: Nova Science Publishers, Inc., 2015;67-121.

Macedo FTB, Wiessner M, Hollenstein C, Esteves PMB, Wegener K. Fundamental investigation of dry electrical discharge machining (DEDM) by optical emission spectroscopy and its numerical interpretation. International Journal of Advanced Manufacturing Technology. 2016;1-13.

Published

2018-03-31

How to Cite

[1]
M. Y. Ali, A. Banu, M. Salehan, E. Y. Adesta, M. Hazza, and M. Shaffiq, “Dimensional Accuracy in Dry Micro Wire Electrical Discharge Machining”, J. Mech. Eng. Sci., vol. 12, no. 1, pp. 3321–3329, Mar. 2018.