Flank wear prediction of ceramic tools in hard turning

被引:0
作者
Dilbag Singh
P. Venkateswara Rao
机构
[1] Beant College of Engineering & Technology,Department of Mechanical Engineering
[2] Indian Institute of Technology Delhi,Department of Mechanical Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2010年 / 50卷
关键词
Hard turning; Tool wear; Effective rake angle; Nose radius; Cutting conditions;
D O I
暂无
中图分类号
学科分类号
摘要
Due to technical and economical factors, hard turning is competing successfully with the grinding process in the industries. Many practical applications require components to be hardened in order to improve their wear behavior. Higher productivity and good surface quality are the requirements of the modern industries. However, tool wear is the major problem in hard turning. The tool wear models, used to assess the performance of hard turning process, play an important role in predicting the surface quality. So, in the present work, an attempt has been made to develop an analytical tool wear model for the mixed ceramic inserts during the hard turning of bearing steel incorporating abrasion, adhesion, and diffusion wear mechanisms. The new model developed can reliably be used to assess the wear of the mixed ceramic tools within the domain of the parameters. It has been observed that tool wear is increasing with the increase in cutting speed, feed, and effective rake angle. However, it has been found to be slightly decreasing with the increase in nose radius. The proposed model was validated by conducting experiments. It could be seen that the model was capable of predicting the flank wear using the cutting parameters and tool geometry.
引用
收藏
页码:479 / 493
页数:14
相关论文
共 55 条
[1]  
König W(1984)Machining of hard materials Ann CIRP 33 417-427
[2]  
Komanduri R(2005)Capability profile of hard cutting and grinding processes Ann CIRP 54 557-580
[3]  
Tönshoff HK(2000)Cutting of hardened steel—keynote paper Ann CIRP 49 547-566
[4]  
Ackershott G(1999)Wear characteristics in turning high hardness alloy steel by ceramic and CBN tools J Mater Process Technol 88 114-121
[5]  
Klocke F(2003)Machinability of hardened steel using alumina based ceramic cutting tools Int J Refract Metals and Hard Materials 21 109-117
[6]  
Brinksmeier E(2004)Wear behavior of CBN tools while turning various hardened steels Wear 256 302-310
[7]  
Weinert K(1969)Analysis of tool wear—part 1: theoretical models of flank wear ASME J Eng Ind 91 790-798
[8]  
Tönshoff HK(1961)A study of abrasive wear under three-body conditions Wear 4 345-355
[9]  
Arendt C(2004)Experimental support for a model-based prediction of tool wear Wear 257 790-798
[10]  
Ben Amor R(1985)A transport-diffusion equation in metal cutting and its application to analysis of the rate of flank wear ASME J Eng Ind 107 81-89