Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)

A unique micro electrochemical machining (ECM) method based on a scanning micro electrochemical flow cell (SMEFC), in which the electrolyte is confined beneath the tool electrode instead of spreading on the workpiece surface, has been developed and its feasibility for fabricating mesoscale channels...

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Main Authors: Cheng Guo, Jun Qian, Dominiek Reynaerts
Format: Article
Language:English
Published: MDPI AG 2017-05-01
Series:Micromachines
Subjects:
Online Access:http://www.mdpi.com/2072-666X/8/5/143
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spelling doaj-53022123d9a0456a8d2be0679c9b640f2020-11-24T20:50:55ZengMDPI AGMicromachines2072-666X2017-05-018514310.3390/mi8050143mi8050143Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)Cheng Guo0Jun Qian1Dominiek Reynaerts2Department of Mechanical Engineering, KU Leuven & Member Flanders Make, Leuven 3001, BelgiumDepartment of Mechanical Engineering, KU Leuven & Member Flanders Make, Leuven 3001, BelgiumDepartment of Mechanical Engineering, KU Leuven & Member Flanders Make, Leuven 3001, BelgiumA unique micro electrochemical machining (ECM) method based on a scanning micro electrochemical flow cell (SMEFC), in which the electrolyte is confined beneath the tool electrode instead of spreading on the workpiece surface, has been developed and its feasibility for fabricating mesoscale channels has been investigated. The effects of the surface conditions, the applied current, the feed rate, the concentration of the electrolyte and several geometrical parameters on the machining performance have been investigated through a series of experiments. The cross-sectional profile of the channels, the roughness of the channel bottom, the width and depth of the channel, the microstructures on the machined surface and the morphologies of the moving droplet have been analyzed and compared under different machining conditions. Furthermore, experiments with different overlaps of the electrolyte droplet traces have also been conducted, in which the SMEFC acts as a “milling tool”. The influences of the electrode offset distance (EOD), the current and the feed rate on the machining performance have also been examined through the comparison of the corresponding cross-sectional profiles and microstructures. The results indicate that, in addition to machining individual channels, the SMEFC system is also capable of generating shallow cavities with a suitable superimposed motion of the tool electrode.http://www.mdpi.com/2072-666X/8/5/143electrochemical machining (ECM)scanning micro electrochemical flow cell (SMEFC)micro-ECMchannel machining
collection DOAJ
language English
format Article
sources DOAJ
author Cheng Guo
Jun Qian
Dominiek Reynaerts
spellingShingle Cheng Guo
Jun Qian
Dominiek Reynaerts
Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
Micromachines
electrochemical machining (ECM)
scanning micro electrochemical flow cell (SMEFC)
micro-ECM
channel machining
author_facet Cheng Guo
Jun Qian
Dominiek Reynaerts
author_sort Cheng Guo
title Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
title_short Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
title_full Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
title_fullStr Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
title_full_unstemmed Fabrication of Mesoscale Channel by Scanning Micro Electrochemical Flow Cell (SMEFC)
title_sort fabrication of mesoscale channel by scanning micro electrochemical flow cell (smefc)
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2017-05-01
description A unique micro electrochemical machining (ECM) method based on a scanning micro electrochemical flow cell (SMEFC), in which the electrolyte is confined beneath the tool electrode instead of spreading on the workpiece surface, has been developed and its feasibility for fabricating mesoscale channels has been investigated. The effects of the surface conditions, the applied current, the feed rate, the concentration of the electrolyte and several geometrical parameters on the machining performance have been investigated through a series of experiments. The cross-sectional profile of the channels, the roughness of the channel bottom, the width and depth of the channel, the microstructures on the machined surface and the morphologies of the moving droplet have been analyzed and compared under different machining conditions. Furthermore, experiments with different overlaps of the electrolyte droplet traces have also been conducted, in which the SMEFC acts as a “milling tool”. The influences of the electrode offset distance (EOD), the current and the feed rate on the machining performance have also been examined through the comparison of the corresponding cross-sectional profiles and microstructures. The results indicate that, in addition to machining individual channels, the SMEFC system is also capable of generating shallow cavities with a suitable superimposed motion of the tool electrode.
topic electrochemical machining (ECM)
scanning micro electrochemical flow cell (SMEFC)
micro-ECM
channel machining
url http://www.mdpi.com/2072-666X/8/5/143
work_keys_str_mv AT chengguo fabricationofmesoscalechannelbyscanningmicroelectrochemicalflowcellsmefc
AT junqian fabricationofmesoscalechannelbyscanningmicroelectrochemicalflowcellsmefc
AT dominiekreynaerts fabricationofmesoscalechannelbyscanningmicroelectrochemicalflowcellsmefc
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