Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining

ABSTRACT: In micro-electrochemical machining (μECM), material dissolution takes place at very close vicinity of tool electrode due to localization of electric field. Controlling the gap between tool electrode and workpiece is the key to μECM. Therefore, a new method is proposed to solve a variety of...

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Main Authors: Ruining Huang, Xiaokun Zhu
Format: Article
Language:English
Published: AIP Publishing LLC 2018-06-01
Series:Nanotechnology and Precision Engineering
Online Access:http://www.sciencedirect.com/science/article/pii/S258955401830028X
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spelling doaj-44ac65858c4c44ea90198c69df47fc882021-05-03T04:17:55ZengAIP Publishing LLCNanotechnology and Precision Engineering2589-55402018-06-0112133137Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical MachiningRuining Huang0Xiaokun Zhu1Harbin Institute of Technology (Shenzhen), Shenzhen 518000, ChinaHarbin Institute of Technology (Shenzhen), Shenzhen 518000, ChinaABSTRACT: In micro-electrochemical machining (μECM), material dissolution takes place at very close vicinity of tool electrode due to localization of electric field. Controlling the gap between tool electrode and workpiece is the key to μECM. Therefore, a new method is proposed to solve a variety of problems in small gap control. In the present context, experiments were carried out with an indigenously developed setup to fabricate cylindrical arrays. During the machining process, the flat electrode bends due to electrostatic force in pulse on-time, which self-adaptively narrows the gap between the electrode and the workpiece. The workpiece material will be removed once the gap meets the processing condition. Therefore, this method has advantages of reducing dependence on high precision machine tools and of avoiding complex servo control. The flat electrode quickly restores to its original condition when it is in pulse off-time, making the gap much larger than that in traditional electrochemical machining (ECM). The large gap benefits debris removing, which improves the machining accuracy. The influence of different experimental parameters on accuracy and efficiency during the machining process has been investigated. It is observed that with the increase in applied voltage or concentration of electrolyte, the material removal rate and the process gap both increase. The detailed analysis of the experimental results is described in this paper. Keywords: μECM, Flat electrode, Electrostatic actuation, Current density, Gap controlhttp://www.sciencedirect.com/science/article/pii/S258955401830028X
collection DOAJ
language English
format Article
sources DOAJ
author Ruining Huang
Xiaokun Zhu
spellingShingle Ruining Huang
Xiaokun Zhu
Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
Nanotechnology and Precision Engineering
author_facet Ruining Huang
Xiaokun Zhu
author_sort Ruining Huang
title Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
title_short Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
title_full Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
title_fullStr Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
title_full_unstemmed Electrostatic Actuating Bendable Flat Electrode for Micro Electrochemical Machining
title_sort electrostatic actuating bendable flat electrode for micro electrochemical machining
publisher AIP Publishing LLC
series Nanotechnology and Precision Engineering
issn 2589-5540
publishDate 2018-06-01
description ABSTRACT: In micro-electrochemical machining (μECM), material dissolution takes place at very close vicinity of tool electrode due to localization of electric field. Controlling the gap between tool electrode and workpiece is the key to μECM. Therefore, a new method is proposed to solve a variety of problems in small gap control. In the present context, experiments were carried out with an indigenously developed setup to fabricate cylindrical arrays. During the machining process, the flat electrode bends due to electrostatic force in pulse on-time, which self-adaptively narrows the gap between the electrode and the workpiece. The workpiece material will be removed once the gap meets the processing condition. Therefore, this method has advantages of reducing dependence on high precision machine tools and of avoiding complex servo control. The flat electrode quickly restores to its original condition when it is in pulse off-time, making the gap much larger than that in traditional electrochemical machining (ECM). The large gap benefits debris removing, which improves the machining accuracy. The influence of different experimental parameters on accuracy and efficiency during the machining process has been investigated. It is observed that with the increase in applied voltage or concentration of electrolyte, the material removal rate and the process gap both increase. The detailed analysis of the experimental results is described in this paper. Keywords: μECM, Flat electrode, Electrostatic actuation, Current density, Gap control
url http://www.sciencedirect.com/science/article/pii/S258955401830028X
work_keys_str_mv AT ruininghuang electrostaticactuatingbendableflatelectrodeformicroelectrochemicalmachining
AT xiaokunzhu electrostaticactuatingbendableflatelectrodeformicroelectrochemicalmachining
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