Machining of austenitic stainless steels - A review

被引:87
作者
Kaladhar, M. [1 ]
Venkata Subbaiah, K. [2 ]
Srinivasa Rao, C.H. [2 ]
机构
[1] Department of Mechanical Engineering, Praveenya Marine Engineering College, ModavalasaVizianagaram, Andhra Pradesh
[2] Department of Mechanical Engineering, Andhra University, Visakhapatnam, Andhra Pradesh
关键词
Austenitic stainless steels; Difficult-to-cut materials; Machining; Review;
D O I
10.1504/IJMMM.2012.048564
中图分类号
学科分类号
摘要
Although austenitic stainless steels have been used in the largest volumes of all the five families of stainless steel, and are characterised by high ductility, high durability and excellent corrosion resistance, they have certain disadvantages that act as constraints in certain applications. These steels are considered as the most difficult-to-cut materials as compared to the other alloy steels due to their high work hardening, low heat conductivity and high built up edge (BUE) formation. Some important concepts in the metallurgy of austenitic stainless steels are briefly introduced in the present paper, and some of the problems associated with the machining of austenitic stainless steels are also brought forward. Also a review is made of the various works of researchers in this context. Finally, this paper concludes with a discussion on future research areas. Copyright © 2012 Inderscience Enterprises Ltd.
引用
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页码:178 / 192
页数:14
相关论文
共 42 条
[1]  
Abou-El-Hossein K.A., Yahya Z., High speed end milling of AISI 304 stainless steel using new geometrically developed carbide inserts, International Conference on Mechanical and Materials Engineering, pp. 1-6, (2005)
[2]  
Akasawa T., Sakurai H., Nakamura M., Tanaka T., Takano K., Effects of free-cutting additives on the machinability of austenitic stainless steels, Journal of Material Processing Technology, 143-144, pp. 66-71, (2003)
[3]  
Al-Ahmari A.M.A., Predictive machinability models for a selected hard material in turning operations, Journal of Material Processing Technology, 190, 3, pp. 305-311, (2007)
[4]  
A Technical Bulletin 200 Series Stainless Steel CRMN Grades, 1, 10, pp. 2-3, (2006)
[5]  
Bonnet C., Valiorgue F., Rech J., Bergheau J.M., Gilles P., Claudin C., Development of a friction modelling method in dry cutting of AISI 316L austenitic stainless steels, International Journal of Material Form Suppl., 1, 1, pp. 1211-1214, (2008)
[6]  
Caydas U., Ekici S., Support vector machines models for surface roughness prediction in CNC turning of AISI 304 austenitic stainless steel, Journal of Intell. Manufacturing Technology, (2010)
[7]  
Ciftci I., Machining of austenitic stainless steels using CVD multi-layer coated cemented carbide tools, Tribology International, 39, 6, pp. 565-569, (2006)
[8]  
Endrino J.L., Fox-Rabinovich G.S., Gey C., Hard AlTiN, AlCrN PVD coatings for machining of austenitic stainless steel, Surface & Coatings Technology, 200, 24, pp. 6840-6845, (2006)
[9]  
Galanis N.I., Manolakos D.E., Surface roughness prediction in turning of femoral head, International Journal of Advanced Manufacturing Technology, 51, 5, pp. 79-86, (2010)
[10]  
Gandarias A., De Lacalle L.N.L., Aizpitarte X., Lamikiz A., Study of the performance of the turning and drilling of austenitic stainless steels using two coolant techniques, International Journal of Machining and Machinability of Materials, 3, 1-2, pp. 1-17, (2008)