Modelling and experimental investigation of flat surface achieved by large rectangular electrochemical jet milling

被引:0
作者
Junzhong Zhang
Zhihao Shen
Ningsong Qu
机构
[1] Nanjing University of Aeronautics and Astronautics,College of Mechanical and Electrical Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2022年 / 121卷
关键词
Electrochemical jet machining; Electrochemical milling; Travelling rate; Flat surface; Step-over;
D O I
暂无
中图分类号
学科分类号
摘要
Electrochemical jet milling (EJM), an important non-traditional machining technique, has been identified as a promising method for fabricating components on a wide range of conductive materials. However, EJM faces great challenges in fabricating uniform surfaces because the optimal step-over between two adjacent trajectories is difficult to ascertain. In the past, the optimal step-over has been determined roughly through a large number of experiments, which was inaccurate, time-consuming, and expensive. In this study, a mathematical model was innovatively proposed to predict the relationship between uniformity and step-over prior to the experiment. This method can predict features with good accuracy and low computational costs. A large cathode tool was used in the EJM to fabricate a large flat surface. The optimal step-over of different parameters for realizing flat surface was firstly proposed and the unique processing mark at optimal step-over was firstly revealed. The results indicate that the optimal step-over between two adjacent trajectories is the same as the width of the nozzle orifice. The processing mark of the flat surface at the optimal step-over exhibits a “valley–peak” shape. Moreover, the uniformity of the machined surface can be improved by utilising a higher cathode travel rate. The experimental results are in good agreement with the analytical model. In addition, a large flat surface with dimensions of 90 × 90 mm was successfully fabricated.
引用
收藏
页码:7933 / 7948
页数:15
相关论文
共 115 条
[11]  
Veselovac D(2002)Mechanical milling assisted by electrical discharge Nature 419 299-311
[12]  
Aspinwall DK(2015)Geometric prediction of conic tool in micro-EDM milling with fix-length compensation using simulation Int J Mach Tools Manuf 89 98-101
[13]  
Soo SL(2017)Mechanisms of micro-groove formation on single-crystal diamond by a nanosecond pulsed laser J Mater Process Technol 243 567-579
[14]  
Schmidt M(2000)Electrochemical micromachining Science 289 2151-2164
[15]  
Schilp J(1999)New developments in electro-chemical machining CIRP Ann 48 283-287
[16]  
Zhu D(2019)Modeling and experiment study on inter-electrode gap in electrochemical machining with a floating cathode for rotary parts Int J Adv Manuf Technol 101 79-89
[17]  
Zhu ZW(2000)The computer aided simulation of electrochemical process with universal spherical electrodes when machining sculptured surfaces J Mater Process Technol 107 197-202
[18]  
Qu NS(2016)Experimental and numerical investigations in electro-chemical milling CIRP J Manuf Sci Technol 12 240-248
[19]  
McGeough JA(2020)Jet electrochemical machining of multi-grooves by using tube electrodes in a row J Mater Process Technol 283 240-251
[20]  
Leu MC(2015)Multiphysics simulation of the material removal in jet electrochemical machining Procedia CIRP 31 231-234