Journal Press India®

Experimental and numerical studies of electrolyte concentration effect in electrochemical discharge based micro-drilling

Vol 9 , Issue 3 , July - September 2021 | Pages: 99-104 | Research Paper  

https://doi.org/10.51976/ijari.932114

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Author Details ( * ) denotes Corresponding author

1. * Viveksheel Rajput, Department of Mechanical Engineering, Punjab Engineering College, Chandigarh, India (sheelrajput03@gmail.com)
2. Mudimallana Goud, Department of Mechanical Engineering, Punjab Engineering College, Chandigarh, India
3. Narendra Mohan Suri, Department of Mechanical Engineering, Punjab Engineering College, Chandigarh, India

Electrochemical discharge based micro-drilling (ECDD) is a hybrid machining process that involves the thermal heating of the sparks and etching action of the electrolyte for material removal mechanism. The concentration of the electrolyte plays a vital role in determining the material removal rate (MRR) during the micro-hole drilling process since a higher depth is desired. Despite numerous experimental studies, the reporting of numerical studies concerning the effect of electrolyte concentration on MRR is still scarce. The present article focuses on the development of a finite element based thermal model for studying the MRR of glass material concerning electrolyte concentration. The model is validated using previously reported as well as present experimental studies. MRR is observed to be in fair agreement with the experimental MRR. Results revealed that the MRR improves with the increase in electrolyte concentration due to the increase in the imported heat flux over the work material. MRR improvement is the combined result of an increase in thermal energy as well as an increase in hydroxide (OH) ions that further enhances the chemical etching action. The present study successfully demonstrates the application of numerical aspects for analyzing the MRR in the ECDD process concerning electrolyte concentration.

Keywords

Finite Element Modeling; Spark Radius; Material Removal Rate; Concentration; Glass


  1. H Kurafuji, K Suda. Electrical discharge drilling of glass. Ann. CIRP 16, 1968, 415–419.

  2. I Basak, A Ghosh. Mechanism of material removal in electrochemical discharge machining a theoretical model and experimental verification. J Mater Process Tech 71, 1997, 350-359. DOI:10.1016/S0924-0136(97)00097-6

  3. A Kulkarni, R Sharan, GK Lal. An experimental study of discharge mechanism in electrochemical discharge machining. Int J Mach Tool Manuf 42, 2002, 1121–1127.

  4. B Bhattacharyya, BN Doloi, SK Sorkhel. Experimental investigations into electrochemical discharge machining (ECDM) of non-conductive ceramic materials. Journal of Materials Processing Technology, 95, 1999, 145-154.

  5. V Rajput, SS Pundir, MM Goud, NM Suri. Multi-Response Optimization of ECDM Parameters for Silica (Quartz) Using Grey Relational Analysis. Silicon, 2020. DOI: 10.1007/s12633-020-00538-7

  6. V Rajput, MM Goud, NM Suri. Performance Analysis of ECDM Process Using Surfactant Mixed Electrolyte 2020.

  7.  V Sharma, U Dixit, K Sørby, A Bhardwaj, R Trehan. Manufacturing Engineering. Lecture Notes on Multidisciplinary Industrial Engineering.

  8. V Fascio, R Wuthrich, H Bleuler. Spark assisted chemical engraving in the light of electrochemistry. Electrochim Acta. 49, 2004, 3997–4003.

  9. R Wuthrich, LA Hof, A Lal. Physical principles and miniaturization of spark assisted chemical engraving (SACE). J Micromech Microeng. 15, 2005, 102005. DOI: 10.1088/0960-1317/15/10/S03

  10. VK Jain, PM Dixit,  PM Pandey.  On the analysis of the electrochemical spark machining process. Int J Mach Tools Manuf. 39, 1999, 165–186.

  11. KL Bhondwe, V Yadava, G Kathiresan. Finite element prediction of material removal rate due to electrochemical spark machining. Int J Mach Tools Manuf 46, 1699–1706. DOI: 10.1016/j. ijmachtools.2005.12.005

  12. C Wei, K Xu, J Ni. A finite element-based model for electrochemical discharge machining in discharge regime. Int J Adv Manuf Technol. 54, 2011, 987–995.

  13. MM Goud, AK Sharma. A three-dimensional finite element simulation approach to analyze material removal in electrochemical discharge machining. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science.  231(13), 2016, 2417-2428. DOI: 0954406216636167

  14. V Rajput, MM Goud, NM Suri. Numerical and experimental investigations to analyze the micro-hole drilling process in spark-assisted chemical engraving (SACE), SN Appl Sci, 2. https://doi.org/10.1007/s42452-020-03311-y

  15. V Rajput, MM Goud, NM Suri.  Finite element modelling for analyzing material removal rate in ECDM. Journal of advanced manufacturing systems, 2020. DOI: 10.1142/S0219686720500365

  16. V Rajput V, MM Goud, NM Suri.  Finite Element Modeling for Comparing the Machining Performance of Different Electrolytes in ECDM. Arabian journal for science and technology. DOI: 10.1007/s13369-020-05009-0

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