Chipping minimization in drilling ceramic materials with rotary ultrasonic machining

被引:5
作者
Jun Wei Liu
Dae Kyun Baek
Tae Jo Ko
机构
[1] Yeungnam University,School of Mechanical Engineering
[2] Kyungpook National University,Institute of Mechanical Engineering Technology
来源
The International Journal of Advanced Manufacturing Technology | 2014年 / 72卷
关键词
Ultrasonic vibration; Rotary ultrasonic machining; Tool wear; Exit chipping; Response surface analysis; Optimization;
D O I
暂无
中图分类号
学科分类号
摘要
Ultrasonic machining (USM) has been considered as a new cutting technology that does not rely on the conductance of the workpiece. USM presents no heating or electrochemical effects, with low surface damage and small residual stresses on workpiece material, such as glass, ceramics, and others; therefore, it is used to drill microholes in brittle materials. However, this process is very slow and tool wear dependent, so the entire process has low efficiency. Therefore, to increase microhole drilling productivity or hole quality, rotary ultrasonic machining (RUM) is considered as a strong alternative to USM. RUM, which presents ultrasonic axial vibration with tool rotation, is an effective solution for improving cutting speed, precision, tool wear, and other machining responses beyond those of the USM. This study aims to reduce the microchipping or cracking at the exit of the hole, which inevitably occurs when brittle materials are drilled, with consideration of tool wear. To this end, response surface analysis and desirability functions are used for experimental optimization. The experimental results showed that the proposed RUM scheme is suitable for microhole drilling.
引用
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页码:1527 / 1535
页数:8
相关论文
共 45 条
[11]  
Pei ZJ(2002)Modeling of material removal rate in rotary ultrasonic machining: designed experiments J Mater Process Technol 129 339-344
[12]  
Treadwell C(2002)Analysis of the rotary ultrasonic machining J Mater Process Technol 129 182-185
[13]  
Legge P(2010)Kinematic view of tool life in rotary ultrasonic side milling of hard and brittle materials Int J Mach Tools Manuf 50 303-307
[14]  
Legge P(1999)Material removal rate prediction for ultrasonic drilling of hard materials using an impact oscillator approach Phys Lett A 259 91-96
[15]  
Pei ZJ(2011)Study on the response surface model of machining error in internal lathe boring Int J Precis Eng Manuf 12 177-182
[16]  
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