Experimental investigation of tool vibration and surface roughness in the precision end-milling process using the singular spectrum analysis

被引:3
作者
Chih-Cherng Chen
Nun-Ming Liu
Ko-Ta Chiang
Hua-Lun Chen
机构
[1] Chungchou University of Science and Technology,Department of Mechanical and Automatic Engineering
[2] Hsiuping University of Science and Technology,Department of Mechanical Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2012年 / 63卷
关键词
Vibration; Surface roughness; Precision end milling; Singular spectrum analysis;
D O I
暂无
中图分类号
学科分类号
摘要
The vibrations on the cutting tool have a momentous influence for the surface quality of workpiece with respect to surface profile and roughness during the precision end-milling process. Singular spectrum analysis (SSA) is a new non-parametric technique of time series analysis and forecasting. The significant features of the cutting tool vibration signals from the sensors are extracted and transformed from the SSA-processed vibration signals. In the present study, SSA is applied to extract and transform the raw signals of the vibrations on the cutting tool for investigating the relationship between tool vibration and surface roughness in the precision end-milling process of hardened steel SCM440. In this experimental investigation, the spindle speed, feed rate, and cutting depth were chosen as the numerical factor; the cutting feed direction and holder type were regarded as the categorical factor. An experimental plan consisting of five-factor (three numerical plus two categorical) d-optimal design based on the response surface methodology was employed to carry out the experimental study. A micro-cutting test was conducted to visualize the effect of vibration of tooltip on the performance of surface roughness. With the experimental values up to 95% confidence interval, it is fairly well for the experimental results to present the mathematical models of the tool vibration and surface roughness. Results show that the effects of feed rate and cutting depth provide the reinforcement on the overall vibration to cause the unstable cutting process and exhibit the result of the worst machined surface. The amplitude of vibration signals along the cutting feed direction is generally larger than that along other direction. The spindle speed and tool holder type affect the stability of cutting tooltip during the cutting process.
引用
收藏
页码:797 / 815
页数:18
相关论文
共 45 条
[1]  
Chae J(2006)Investigation of micro-cutting operations Int J Mach Tools Manuf 46 313-332
[2]  
Park SS(2000)Identification of machine-tool–workpiece system dynamics Int J Mach Tools Manuf 40 1367-1384
[3]  
Freiheit T(2004)The impact of cutting conditions on cutting forces and vibration signals in turning with plane face geometry inserts J Mater Process Technol 155–156 1708-1715
[4]  
Tounsi N(1996)Effect of tool vibration on surface roughness during lathe dry turning process Comput Ind Eng 31 637-644
[5]  
Otho A(1994)Correlating tool wear, tool life, surface roughness and tool vibration in finish turning with coated carbide tools Wear 173 137-144
[6]  
Dimla DE(1996)Study of the correlation between surface roughness and cutting vibration to develop an online roughness measuring technique in hard turning Int J Mach Tools Manuf 36 453-464
[7]  
Thomas M(2001)Surface roughness prediction based on cutting parameters and tool vibrations in turning operations J Mater Process Technol 118 269-277
[8]  
Beauchamp Y(2002)The correlation of vibration signal features to cutting tool wear in a metal turning operation Int J Adv Manuf Technol 19 705-713
[9]  
Youssef AY(2003)Prediction of surface roughness and dimensional deviation by measuring cutting forces and vibrations in turning J Mater Process Technol 132 203-214
[10]  
Masounave J(2006)An experimental study of tool wear and cutting force variation in the end milling of Inconel 718 with coated carbide inserts J Mater Process Technol 180 296-304