Finite Element Analysis of HASTELLOY C-22HS in End Milling

Authors

  • K. Kadirgama Faculty of Mechanical Engineering Universiti Malaysia Pahang, 26600 Pekan, Pahang, Malaysia
  • M.M. Rahman Faculty of Mechanical Engineering Universiti Malaysia Pahang, 26600 Pekan, Pahang, Malaysia
  • A.R. Ismail Faculty of Mechanical Engineering Universiti Malaysia Pahang, 26600 Pekan, Pahang, Malaysia
  • R.A. Bakar Faculty of Mechanical Engineering Universiti Malaysia Pahang, 26600 Pekan, Pahang, Malaysia

DOI:

https://doi.org/10.15282/jmes.1.2011.4.0004

Keywords:

Finite element analysis; stress; nickel based superalloy; end milling.

Abstract

This paper presents a finite element analysis of the stress distribution in the end milling operation of nickel-based superalloy HASTELLOY C-2000. Commercially available finite element software was used to develop the model and analyze the distribution of stress components in the machined surface of HASTELLOY C-22HS following end milling with coated carbide tools. The friction interaction along the tool-chip interface was modeled using the Coulomb friction law. It was found that the stress had lower values under the cut surface and that it increased gradually near the cutting edge.  

References

Alauddin, M., Mazid, M. A., EL Baradi, M. A., & Hashmi, M. S. J. (1998). Cutting forces in the end milling of Inconel 718. Journal of Materials Processing Technology, 77, 153-159.

Henriksen, E. K. (1951). Residual stresses in machined surfaces. Transactions ASME, Journal of Engineering for Industry, 73: 69-76.

Kadirgama, K., & Abou-El-Hossein, K. A. (2005). Force prediction model for milling 618 tool steel using response surface methodology. American Journal of Applied Sciences, 2(8), 1222-1227.

Komvopoulos, K., & Erpenbeek, S. A. (1991). Finite element modelling of orthogonal cutting. Journal of Engineering for Industry-Transactions of the ASME, 116(3), 289−297.

Konig, W., Berktold, A., & Koch, K. F. (1993). Turning versus grinding–a comparison of surface integrity aspects and attainable accuracy. Annals of the CIRP, 42(1), 39-43.

Kono, Y., Hara, A., Yazu, S., Uchida, T., & Mori, Y. (1980). Cutting performance of sintered CBN tools, Cutting tool materials. Proceedings of the International Conference, American Society for Metals, Ft. Mitchell, KY, pp. 218-295.

Kudo, H. (1965). Some new slip-line solutions for two-dimensional steady state machining. International Journal of Mechanical Science, 7, 43-55.

Lee, E. H., & Shaffer, B. W. (1951). The theory of plasticity applied to a problem of machining. Journal of Applied Mechanics, 18, 405-413.

Liu, C. R., & Barash, M. M. (1982). Variables governing patterns of mechanical residual stress in a machined surface. Journal of Engineering for Industry-Transactions of the ASME, 104, 257-264.

Liu, R., & Guo, Y. B. (2000). Finite element analysis of the effect of sequential cuts and tool-chip friction on residual stresses in a machined layer. International Journal of Mechanical Sciences, 42,1069-1086.

Matsumoto, Y., Barash, M. M., & Liu, C. R. (1986). Effects of hardness on the surface integrity of AISI 4340 steel. Journal of Engineering for Industry-Transactions of the ASME, 108, 169-175.

Movahhedy, M., Gadala, M. S., & Altintas, Y. (2000). Simulation of the orthogonal metal cutting process using an arbitrary Lagrangian-Eulerian finite element method. Journal of Materials Processing Technology, 103, 267-275.

Okushima, K., & Kakino, Y. (1971). The residual stresses produced by metal cutting, Annals of the CIRP, 10(1), 13-14.

Schey, J. A. (2000). Introduction to manufacturing processes. New York: McGraw Hill.

Shih, A. J. (1996). Finite element analysis of orthogonal metal cutting mechanics. International Journal of machine Tools and Manufacturing, 36(2), 255-273.

Shih, A. J., & Yang, H. T. Y. (1993). Experimental and finite element predictions of the residual stresses due to orthogonal metal cutting. International Journal for Numerical Methods in Engineering, 36(9), 1487-1507.

Shih, A. J., Chandrasekar, S., & Yang, H. T. Y. (1990). Fundamental issues in machining. ASME PED, 43, 11.

Strenkowski, J. S., & Carroll, J. T. (1985). A Finite element model of orthogonal metal cutting. Journal of Engineering for Industry-Transactions of the ASME, 107(4), 349-354.

Tonshoff, H. K., Wobker, H. G., & Brandt, D. (1995). Tribological aspects of hard turning with ceramic tools. Journal of the Society of Tribologists and Lubrication Engineers, 51, 163-168.

Ueda, K., & Manabe, K. (1993). Rigid-plastic FEM analysis of three-dimensional deformation fiels in chip formation process. Annals of the CIRP, 42(1), 35-38.

Wu, D. W., & Matsumoto, Y. (1990). The effect of hardness on residual stresses in orthogonal machining of AISI 4340 steel. Journal of Engineering for Industry-Transactions of the ASME, 112, 245-252.

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Published

2011-12-31

How to Cite

[1]
K. . Kadirgama, M. . Rahman, A. . Ismail, and R. . Bakar, “Finite Element Analysis of HASTELLOY C-22HS in End Milling”, J. Mech. Eng. Sci., vol. 1, no. 1, pp. 37–46, Dec. 2011.

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