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Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode

Surface structures with micro-grooves have been reported to be an effective way for improving the performance of metallic components. Through-mask electrochemical micromachining (TMEMM) is a promising process for fabricating micro-grooves. Due to the isotropic nature of metal dissolution, the dissol...

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Autores principales: Fan, Guochao, Chen, Xiaolei, Saxena, Krishna Kumar, Liu, Jiangwen, Guo, Zhongning
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7346001/
https://www.ncbi.nlm.nih.gov/pubmed/32486287
http://dx.doi.org/10.3390/mi11060557
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author Fan, Guochao
Chen, Xiaolei
Saxena, Krishna Kumar
Liu, Jiangwen
Guo, Zhongning
author_facet Fan, Guochao
Chen, Xiaolei
Saxena, Krishna Kumar
Liu, Jiangwen
Guo, Zhongning
author_sort Fan, Guochao
collection PubMed
description Surface structures with micro-grooves have been reported to be an effective way for improving the performance of metallic components. Through-mask electrochemical micromachining (TMEMM) is a promising process for fabricating micro-grooves. Due to the isotropic nature of metal dissolution, the dissolution of a workpiece occurs both along the width and depth. Overcut is generated inevitably with increasing depth, which makes it difficult to enhance machining localization. In this paper, a method of electrochemical machining using a conductive masked porous cathode and jet electrolyte supply is proposed to generate micro-grooves with high machining localization. In this configuration, the conductive mask is directly attached to the workpiece, thereby replacing the traditional insulated mask. This helps in achieving a reduction in overcut and an improvement in machining localization. Moreover, a metallic nozzle is introduced to supply a jetted electrolyte in the machining region with enhanced mass transfer via a porous cathode. The simulation and experimental results indicate that as compared with an insulated mask, the use of a conductive mask weakens the electric field intensity on both sides of machining region, which is helpful to reduce overcut and enhance machining localization. The effect of electrolyte pressure is investigated for this process configuration, and it has been observed that high electrolyte pressure enhances the mass transfer and improves the machining quality. In addition, as the pulse duty cycle is decreased, the dimensional standard deviation and roughness of the fabricated micro-groove are improved. The results suggest the feasibility and reliability of the proposed method.
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spelling pubmed-73460012020-07-14 Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode Fan, Guochao Chen, Xiaolei Saxena, Krishna Kumar Liu, Jiangwen Guo, Zhongning Micromachines (Basel) Article Surface structures with micro-grooves have been reported to be an effective way for improving the performance of metallic components. Through-mask electrochemical micromachining (TMEMM) is a promising process for fabricating micro-grooves. Due to the isotropic nature of metal dissolution, the dissolution of a workpiece occurs both along the width and depth. Overcut is generated inevitably with increasing depth, which makes it difficult to enhance machining localization. In this paper, a method of electrochemical machining using a conductive masked porous cathode and jet electrolyte supply is proposed to generate micro-grooves with high machining localization. In this configuration, the conductive mask is directly attached to the workpiece, thereby replacing the traditional insulated mask. This helps in achieving a reduction in overcut and an improvement in machining localization. Moreover, a metallic nozzle is introduced to supply a jetted electrolyte in the machining region with enhanced mass transfer via a porous cathode. The simulation and experimental results indicate that as compared with an insulated mask, the use of a conductive mask weakens the electric field intensity on both sides of machining region, which is helpful to reduce overcut and enhance machining localization. The effect of electrolyte pressure is investigated for this process configuration, and it has been observed that high electrolyte pressure enhances the mass transfer and improves the machining quality. In addition, as the pulse duty cycle is decreased, the dimensional standard deviation and roughness of the fabricated micro-groove are improved. The results suggest the feasibility and reliability of the proposed method. MDPI 2020-05-30 /pmc/articles/PMC7346001/ /pubmed/32486287 http://dx.doi.org/10.3390/mi11060557 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fan, Guochao
Chen, Xiaolei
Saxena, Krishna Kumar
Liu, Jiangwen
Guo, Zhongning
Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title_full Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title_fullStr Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title_full_unstemmed Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title_short Jet Electrochemical Micromachining of Micro-Grooves with Conductive-Masked Porous Cathode
title_sort jet electrochemical micromachining of micro-grooves with conductive-masked porous cathode
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7346001/
https://www.ncbi.nlm.nih.gov/pubmed/32486287
http://dx.doi.org/10.3390/mi11060557
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