Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining
Micro-electro-discharge machining (μEDM) plays a significant role in miniaturization. Complex electrode manufacturing and a high wear ratio are bottlenecks for μEDM and seriously restrict the manufacturing of microcomponents. To solve the electrode problems in traditional EDM, a µEDM method using li...
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doaj-2f20ba79e9d7497793f56ee168b7eaa12020-11-25T01:53:22ZengMDPI AGMicromachines2072-666X2020-10-011193593510.3390/mi11100935Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge MachiningRuining Huang0Ying Yi1Erlei Zhu2Xiaogang Xiong3School of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen 518000, ChinaCollege of Science and Engineering, Hamad Bin Khalifa University, Education City 34110, QatarSchool of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen 518000, ChinaSchool of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen 518000, ChinaMicro-electro-discharge machining (μEDM) plays a significant role in miniaturization. Complex electrode manufacturing and a high wear ratio are bottlenecks for μEDM and seriously restrict the manufacturing of microcomponents. To solve the electrode problems in traditional EDM, a µEDM method using liquid metal as the machining electrode was developed. Briefly, a liquid-metal tip was suspended at the end of a capillary nozzle and used as the discharge electrode for sparking the workpiece and removing workpiece material. During discharge, the liquid electrode was continuously supplied to the nozzle to eliminate the effects of liquid consumption on the erosion process. The forming process of a liquid-metal electrode tip and the influence of an applied external pressure and electric field on the electrode shape were theoretically analyzed. The effects of external pressure and electric field on the material removal rate (MRR), liquid-metal consumption rate (LMCR), and groove width were experimentally analyzed. Simulation results showed that the external pressure and electric field had a large influence on the electrode shape. Experimental results showed that the geometry and shape of the liquid-metal electrode could be controlled and constrained; furthermore, liquid consumption could be well compensated, which was very suitable for µEDM.https://www.mdpi.com/2072-666X/11/10/935Micro-electro-discharge machining (μEDM)liquid-metal electrodeGalinstan |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ruining Huang Ying Yi Erlei Zhu Xiaogang Xiong |
spellingShingle |
Ruining Huang Ying Yi Erlei Zhu Xiaogang Xiong Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining Micromachines Micro-electro-discharge machining (μEDM) liquid-metal electrode Galinstan |
author_facet |
Ruining Huang Ying Yi Erlei Zhu Xiaogang Xiong |
author_sort |
Ruining Huang |
title |
Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining |
title_short |
Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining |
title_full |
Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining |
title_fullStr |
Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining |
title_full_unstemmed |
Investigation of a Liquid-Phase Electrode for Micro-Electro-Discharge Machining |
title_sort |
investigation of a liquid-phase electrode for micro-electro-discharge machining |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2020-10-01 |
description |
Micro-electro-discharge machining (μEDM) plays a significant role in miniaturization. Complex electrode manufacturing and a high wear ratio are bottlenecks for μEDM and seriously restrict the manufacturing of microcomponents. To solve the electrode problems in traditional EDM, a µEDM method using liquid metal as the machining electrode was developed. Briefly, a liquid-metal tip was suspended at the end of a capillary nozzle and used as the discharge electrode for sparking the workpiece and removing workpiece material. During discharge, the liquid electrode was continuously supplied to the nozzle to eliminate the effects of liquid consumption on the erosion process. The forming process of a liquid-metal electrode tip and the influence of an applied external pressure and electric field on the electrode shape were theoretically analyzed. The effects of external pressure and electric field on the material removal rate (MRR), liquid-metal consumption rate (LMCR), and groove width were experimentally analyzed. Simulation results showed that the external pressure and electric field had a large influence on the electrode shape. Experimental results showed that the geometry and shape of the liquid-metal electrode could be controlled and constrained; furthermore, liquid consumption could be well compensated, which was very suitable for µEDM. |
topic |
Micro-electro-discharge machining (μEDM) liquid-metal electrode Galinstan |
url |
https://www.mdpi.com/2072-666X/11/10/935 |
work_keys_str_mv |
AT ruininghuang investigationofaliquidphaseelectrodeformicroelectrodischargemachining AT yingyi investigationofaliquidphaseelectrodeformicroelectrodischargemachining AT erleizhu investigationofaliquidphaseelectrodeformicroelectrodischargemachining AT xiaogangxiong investigationofaliquidphaseelectrodeformicroelectrodischargemachining |
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