A Study of Influence of Electrolyte Composition on ECH of Bevel Gears using Mixture D-Optimal Design

Authors

  • J. P. Misra Department of Mechanical & Industrial Engineering, Indian Institute of Technology Roorkee, Roorkee 247667, India
  • P. K. Jain Department of Mechanical & Industrial Engineering, Indian Institute of Technology Roorkee, Roorkee 247667, India
  • D. K. Dwivedi Department of Mechanical & Industrial Engineering, Indian Institute of Technology Roorkee, Roorkee 247667, India
  • N. K. Mehta Department of Mechanical & Industrial Engineering, Indian Institute of Technology Roorkee, Roorkee 247667, India

DOI:

https://doi.org/10.15282/jmes.6.2014.3.0073

Keywords:

Gear finishing; ECH; electrolyte; mixture design

Abstract

This paper discusses the experimental investigation to find out the optimal electrolyte composition in improving the surface quality of the gear teeth profile during surfacing finishing of bevel gears by the electrochemical honing process. In this study, AISI 1040 was used as the workpiece material, mixtures of sodium chloride and sodium nitrate in different ratios were used as the input parameter, and the percentage improvement in the surface roughness and material removal rate of the process were used as measures of process performance. The experimental runs were designed according to the Mixture DOptimal design. The analysis of the experimental outcome was carried out and 80% NaCl + 20% NaNO3 was found to be theoptimal electrolyte composition to conduct the confirmation experiments. The finding of the study establishes the process for precision finishing of bevel gears.

References

Budzynski, A. F. (1983). Research on optimization of the process of electrochemical honing (ech). Paper presented at the International Symposium on Electromachining (ISEM)-7, .

Capello, G., & Bertoglio, S. (1979). A new approach by electrochemical finishing of hardened cylindrical gear tooth face. CIRP Annals, 28(1), 103-107.

Chen, C. P., Jian, L., Guo-Chan, W., Chao-Bin, W., Jian, W., & Lewi, R. (1981). Electro-chemical honing of gears — a new method of gear finishing. CIRP Annals - Manufacturing Technology, 30(1), 103-106.

Dubey, A. K., Shan, H. S., & Jain, N. K. (2009). Precision microfinishing by electro-chemical honing. International Journal of Manufacturing Technology and Management, 17(4), 364-372.

El-Hofi, H. (2005). Fundamentals of machining processes. New York: McGraw-Hill.

He, F., Zhang, W., & Nezu, K. (2000). A precision machining of gears: Slow-scanning field controlled electrochemical honing. JSME International Journal Series C, 43(2), 486-491.

Liu, G. R., Zhang, G. Y., & Chen, L. (2011). Accurate bending strength analysis of the asymmetric gear using the novel es-pim with triangular mesh. International Journal of Automotive and Mechanical Engineering, 4, 373-396.

Misra, J. P., Jain, N. K., & Jain, P. K. (2010). Investigations on precision finishing of helical gears by electrochemical honing process. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 224(12), 1817-1830.

Naik, R., & Misra, J. P. (2012). Parametric optimisation of ech of spur gears by taguchi technique. International Journal of Materials and Product Technology, 43(1), 84-101.

Randlett, E., & Ellis, M. P. (1967). Electrochemical honing. TECH PAPER NO MR 67-648, ASTME, 20501 FORD RD, DEARBORN, MICH 48128,, 1-13.

Randlett, E. A. J., & Ellis, M. P. (1968). Electrochemical honing–ech. .

Wei, G. Q., Wang, Z. B., & Chen, C. P. (1987). Field controlled electrochemical honing of gears. Precision engineering, 9(4), 218-221.

Wiegmann, A., & Bube, K. (2000). The explicit-jump immersed interface method: Finite difference methods for pdes with piecewise smooth solutions. SIAM Journal on Numerical Analysis, 37(3), 827-862.

Yi, J., Ding, Y., Zhao, S., Ji, B., & Zhou, J. (2009). A novel technique of polishing gear working surface using pecmp. International Journal of Precision Engineering and Manufacturing, 10(4), 57-62.

Yi, J., Yang, T., & Zhou, J. (2000). New electrochemical processes gear tooth-profile modification. Manufacturing Technology and Modern Machine, 9(1), 102-105.

Yi, J., Zheng, J., Yang, T., Xia, D., & Hu, D. (2002). Solving the control problem for electrochemical geartooth-profile modification using an artificial neural network. The International Journal of Advanced Manufacturing Technology, 19(1), 8-13.

Downloads

Published

2014-06-30

How to Cite

[1]
J. P. Misra, P. K. Jain, D. K. Dwivedi, and N. K. Mehta, “A Study of Influence of Electrolyte Composition on ECH of Bevel Gears using Mixture D-Optimal Design”, J. Mech. Eng. Sci., vol. 6, no. 1, pp. 753–761, Jun. 2014.

Issue

Section

Article