Modeling and Optimization of Micro Electro Discharge Machining Process: A Review

Article Preview

Abstract:

Micro Electrical discharge machining (µEDM) is an electro thermal process, the cutting force is negligibly small and material removal occurs irrespective of hardness of work piece material .Micro electrical discharge machining process is capable of machining of complex shape, which is difficult to machine in conventional machining process. Last decade, the EDM process involved demand for machining requirements with short period. Since the major risk of wire breakage, deflections of electrodes were affecting the performance accuracy of EDM operation. This paper describe about a comprehensive review of micro electro discharge machining process and its process optimization techniques used for last 10 years. Micro electro discharge machining has more important given to difficult to machine materials. In order to improve the surface integrity and performance of process, need to select proper process parameters. It reports on the Micro EDM research involving the optimization of the process parameters surveying the influence of the various factors affecting the machining performance and productivity.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 622-623)

Pages:

590-594

Citation:

Online since:

December 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2013 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] YuanFeng Chen, YanCherng Lin: Journal of Mat Proc Tech 209 (2009) 343–4350.

Google Scholar

[2] Yi Qin, A. Brockett, Y. Ma , A. Razali, J. Zhao ,C. Harrison,W. Pan, X. Dai , D. Loziak : Int J Adv Manuf Technol (2010) 47: 821–837.

DOI: 10.1007/s00170-009-2411-2

Google Scholar

[3] Rajurkar KP, Levy G, Malshe A, Sundaram MM, McGeough J, Hu X, Resnick R, DeSilva: CIRP Ann Manuf Technol (2006) 55(2): 643–666.

DOI: 10.1016/j.cirp.2006.10.002

Google Scholar

[4] Norliana Mohd Abbas, Darius G. Solomon, Md. Fuad Bahari: International Journal of Machine Tools & Manufacture 47 (2007) 1214–1228.

DOI: 10.1016/j.ijmachtools.2006.08.026

Google Scholar

[5] Z. Katz · C.J. Tibbles: Int J Adv Manuf Technol (2005) 25: 923–928.

Google Scholar

[6] Fuzhu Hana, Gang Chenga, Zhijing Feng, Soichiro Isago: International Journal of Machine Tools & Manufacture 48 (2008) 922–931.

Google Scholar

[7] Dekeyser W, Snoeys R, Jennis M: Robot Comput-Integr Manuf (1988) 4(1/2): 219–224.

Google Scholar

[8] Banerjee S, Prasad BV, Mishra PK: J Mater Process Technol (1993) 39: 305–317.

Google Scholar

[9] DiBitonto, Philip T. Eubank, Mukund R. Patel, and Maria A. Barrufet: J Appl Phys (1989) 66(9): 4095–4103.

Google Scholar

[10] Dhanik S, Joshi SS: ASME J Manuf Sci Eng (2005) 127: 759–756.

Google Scholar

[11] Luo YF: J Mater Process Technol(1995) 55: 380–390.

Google Scholar

[12] S. Assarzadeh & M. Ghoreishi : Int J Adv Manuf Technol (2008) 39: 488–500.

Google Scholar

[13] K.H. Ho, S.T. Newman, S. Rahimifard, R.D. Allen: International Journal of Machine Tools & Manufacture 44 (2004) 1247–1259.

DOI: 10.1016/j.ijmachtools.2004.04.017

Google Scholar

[14] Probir Saha, Abhijit Singha , Surjya K. Pal, Partha Saha: Int J Adv Manuf Technol (2008)39: 74–84.

Google Scholar

[15] S.L. Chen, S.F. Hsieh, H.C. Lin, M.H. Lin, J.S. Huang: Journal of Alloys and Compounds 464 (2008) 446–451.

Google Scholar

[16] J. Y. Kao & C. C. Tsao & S. S. Wang & C. Y. Hsu: Int J Adv Manuf Technol (2010) 47: 395–402.

Google Scholar

[17] Aminollah Mohammadi & Alireza Fadaei Tehrani: Int J Adv Manuf Technol (2008) 39: 64–73.

Google Scholar

[18] Lee, S.H. and Li, X. P: Journal of Materials Processing Technology (2003)115: pg. 344-358.

Google Scholar

[19] M.P. Jahan, Y.S. Wong, M. Rahman: Journal of Materials Processing Technology 209 (2009)3956–3967.

Google Scholar

[20] Han F, Jiang J, Yu D: Int J Adv Manuf Technol (2007) 38(5–6): 538–546.

Google Scholar

[21] Spedding TA, Wang ZQ: J Mater Process Technol (1997) 69: 18–284.

Google Scholar

[22] Jong Hyuk Jung and Won Tae Kwon: Journal of Mechanical Science and Technology 24 (5) (2010) 1083-1090.

Google Scholar

[23] Murali M. Sundaram, Ganesh B. Pavalarajan, and Kamlakar P. Rajurkar: Journal of Materials Engineering and Performance (2008) 17: 210–215.

Google Scholar

[24] ] B. B. Pradhan , M. Masanta , B. R. Sarkar & B. Bhattacharyya: Int J Adv Manuf Technol (2009) 41: 1094–1106.

Google Scholar

[25] Montgomery DC, Myers RH (2002) Process and product optimization using designed experiments, 2nd edn. Wiley, New York.

Google Scholar

[26] Y. C. Lin, C. C. Tsao, C. Y. Hsu, S. K. Hung: Int J Adv Manuf Technol. published on line (2011).

Google Scholar

[27] S. Assarzadeh & M. Ghoreishi: Int J Adv Manuf Technol (2008) 39: 488–500.

Google Scholar

[28] Assarzadeh S, Ghoreishi M : . Int J Adv Manuf Technol(2008) 39: 39–46.

Google Scholar

[29] Dhara SK, Kuar AS, Mitra S : Int J Adv Manuf Technol(2008) 39: 39–46.

Google Scholar