Machining and Tool Wear Mechanisms during Machining Titanium Alloys

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This paper investigates the machining mechanism of titanium alloys and analyses those understandings systematically to give a solid understanding with latest developments on machining of titanium alloys. The chip formation mechanism and wear of different cutting tools have been analyzed thoroughly based on the available literature. It is found that the deformation mechanism during machining of titanium alloys is complex and it takes place through several processes. Abrasion, attrition, diffusion–dissolution, thermal crack and plastic deformation are main tool wear mechanisms.

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338-343

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January 2013

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[1] J.F. Kahles, M. Field, D. Eylon, F.H. Froes: Journal of Metals, 37(4) (1985), p.27.

Google Scholar

[2] W.F. Smith, Structure and Properties of Engineering Alloys, McGraw-Hill, New York (1981).

Google Scholar

[3] S. Sharma, M. Dograb, N.M. Suri: Int. J. of Machine Tools & Manufacture, 49 (2009) 435–453.

Google Scholar

[4] Geoffrey Boothroyd, Winston A. Knight, Fundamentals of Machining and Machine Tools, third ed, CRC Taylor & Francis (2005).

Google Scholar

[5] H. Zhao, G.C. Barber, Q. Zou: Wear 253 (2002) 957–962.

Google Scholar

[6] A. Pramanik, L. C. Zhang, et al., Int. J of Mach. Tools and Manuf. 48 (2008)1613–1625.

Google Scholar

[7] D.R. Chichili, K.T. Ramesh, K.J. Hemker: Acta Mater., 46 (1998), p.1025.

Google Scholar

[8] K.T. Ramesh: Metallurgical and materials transactions A, 33(2002), p.927.

Google Scholar

[9] P. Follansbee, G.T. Gray: Metallurgical Transactions A, 20(1989), p.863.

Google Scholar

[10] A. Ginting, M. Nouari: Int. J of Machine Tools & Manufacture, 46 (2006), p.758.

Google Scholar

[11] E.O. Ezugwu, Z.M. Wang: J. of Materials Processing Technology, 68 (1997), p.262.

Google Scholar

[12] E.O. Ezugwu, J. Bonney, Y. Yamane: J. of Mat. Processing Technology, 134 (2003), p.233.

Google Scholar

[13] J. Barry, G. Byrne, D. Lennon: Int. J. of Machine Tools and Manufacture, 41 (2001), p.1055.

Google Scholar

[14] J.S. Ahmad, J.A. Bailey: J. of Manuf. Sci. and Eng., Trans. of the ASME, 119(3)(1997), p.307.

Google Scholar

[15] A.E. Bayoumi, J.Q. Xie: Materials Science and Engineering A, 190 (1-2) (1995), p.173.

Google Scholar

[16] R. Komanduri, B.F.V. Turkovich: Wear, 6 (1981), p.179.

Google Scholar

[17] R. Komanduri: Wear, 76 (1982), p.15.

Google Scholar

[18] S. Sun, M. Brandt, M.S. Dargusch: Int. J. of Machine Tools & Manufacture, 49 (2009), p.561.

Google Scholar

[19] A. Vyas, M.C. Shaw: J. of Manuf. Sci. and Eng. Trans. of the ASME, 211(1999), p.163.

Google Scholar

[20] T. Obikawa, E. Usui: J. of Manuf. Sci. and Eng. -Trans. of the ASME, 118(1996), p.208.

Google Scholar

[21] R. Komanduri, Z. -B. Hou: Metallurgical and Materials Transactions, 33A (2002), p.2995.

Google Scholar

[22] Z.B. Hou, R. Komanduri: Ann. CIRP, 44 (1) (1995), p.69.

Google Scholar

[23] S.L. Semiatin, G.D. Lahoti, S.I. Oh: The Occurrence of Shear Bands in Metalworking, inMaterial behavior under high stress and ultrahigh loading Rates, Plenum Press, New York, (1983).

DOI: 10.1007/978-1-4613-3787-4_7

Google Scholar

[24] B.H. Hou, R. Komanduri: Int. J. Mech. Sci., 39/11(1997), p.1273.

Google Scholar

[25] A, Gente, H.W. Hoffmeister: Annals of the CIRP, 50/1 (2001), pp.49-52.

Google Scholar

[26] R. Shivpuri, J. Hua, P. Mittal, A.K. Srivastava: CIRP Annals- Manuf. Tech., 51(1)(2002), p.71.

Google Scholar

[27] H. Takeyama, A. Murakoshi, S. Motonishi, N. Narutaki: Ann. CIRP, 32 (1) (1983), p.65–69.

DOI: 10.1016/s0007-8506(07)63362-9

Google Scholar

[28] C.H.C. Haron, A. Ginting, H. Arshad: J. of Mat. Processing Technology, 185: (2007), p.77–82.

Google Scholar

[29] A. Jawaid, C.H.C. Haron, A. Abdullah: J. of Mat. Processing Technology, 92–93(1999), p.329.

Google Scholar

[30] D. Jianxin, L. Yousheng, S. Wenlong: Wear, 265 (2008), p.1776.

Google Scholar

[31] M. Rahman, Z.G. Wang, Y.S. Wong: JSME International Journal Series C, 49(1)(2006), p.11.

Google Scholar

[32] E. Kuljanic, M. Fioretti, L. Beltrame, F. Miani: CIRP Annals- Manuf. Tech., 47(1) (1998), p.61.

DOI: 10.1016/s0007-8506(07)62785-1

Google Scholar

[33] F. Nabhani: Robotics and Computer Integrated Manufacturing, 17: (2001), p.99.

Google Scholar

[34] A.R. Zareena: High-speed machining of titanium alloys, Master Thesis, National University of Singapore, Singapore (2002).

Google Scholar

[35] K. Hirosaki, K. Shintani, et al.,: JSME International Journal Series C, 47(1) (2004), p.14.

Google Scholar

[36] Z.G. Wang, Y.S. Wong, M. Rahman: Int. J. of Machine Tools and Manuf., 45(1)(2005a), p.105.

Google Scholar

[37] A. Jawaid, S. Sharif, S. Koksal, Journal of Materials Processing Technology, 99 (2000), p.266.

Google Scholar

[38] L. Settineri, M.G. Faga: Machining Science and Technology, 12(2008), p.158.

Google Scholar

[39] B.F.V. Turkovich, P.D. Hartung, B.M. Kramer: Annals of the ClRP, 31(1) (1982), p.75.

Google Scholar

[40] W. Konig, R. Fritsch, D. Kammermeier, Surface Coatings Technology, 49(1991), p.316.

Google Scholar

[41] M.N. Molinari: Wear, 252 (2002), p.135.

Google Scholar

[42] Y. Su, N. He, L. Li, X.L. Li: Wear, 261 (7–8)(2006), p.760.

Google Scholar

[43] P.A. Dearnly, A.N. Grearson: Material Science and Technology, 2 (1986), p.47.

Google Scholar