Influence of maskless electrochemical micromachining process parameters during microtexturing

被引:0
作者
Kunar, S. [1 ]
Kibria, G. [2 ]
机构
[1] Aditya Engn Coll, Dept Mech Engn, Surampalem 533437, India
[2] Aliah Univ, Dept Mech Engn, Kolkata 700156, India
关键词
Maskless EMM; Microtexturing; Reused coating tool; Machining accuracy; Surface finish; Machining depth;
D O I
10.1016/j.matpr.2021.04.351
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Maskless electrochemical micromachining (EMM) is a prospective procedure for elevated precision microtexturing. Particularly the microtexturing of substrates without any mechanical influence or heat affect is a substantial characteristic for this process. Moreover, the anodic dissolution performance of job material is only characterized by its electrochemical features. This creates maskless EMM an alternative procedure for electrochemically hard to machine materials. Maskless EMM method with developed vertical cross flow method has been recommended involving microtexturing with higher symmetrical uniformity that are produced on stainless steel (SS304) surface. In this paper, maskless EMM method is a promising cost-efficient substitute for microtexturing containing rectangular micropatterns. The advanced setup has the developed machining cell, flow system and unique electrical connection unit. The machining unit has fixturing arrangements of electrodes, flow system, and electrical connection arrangement. Within the machining unit, the advanced flow scheme is a vertical cross flow system that aids in the fabrication of high-quality microtextured surface. One coated textured tool can produce many rectangular micropatterns with high quality. The effect of process parameters such as electrolyte concentration, machining time, and inter electrode gap (IEG) is evaluated on surface roughness (Ra), length overcut, machining depth and width overcut when fabricating micropatterns is investigated. The best process variables i.e., 50 lm IEG, 6 s machining time and 15 g/l electrolyte concentration manufacture good quality micropatterns. (c) 2021 Elsevier Ltd. All rights reserved. Selection and peer-review under responsibility of the scientific committee of the International Conference on Materials and System Engineering.
引用
收藏
页码:2379 / 2383
页数:5
相关论文
共 10 条
[1]   Formation of microstructured silicon surfaces by electrochemical etching using colloidal crystal as mask [J].
Asoh, Hidetaka ;
Oide, Akihiko ;
Ono, Sachiko .
ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (12) :1817-1820
[2]   Applications of laser lithography on oxide film to titanium micromachining [J].
Chauvy, PF ;
Hoffmann, P ;
Landolt, D .
APPLIED SURFACE SCIENCE, 2003, 208 :165-170
[3]  
Evans CJ, 1999, CIRP ANNALS 1999: MANUFACTURING TECHNOLOGY, VOL 48 NO 2 1999, P541
[4]   Fabrication of array of micro circular impressions using different electrolytes by maskless electrochemical micromachining [J].
Kunar, S. ;
Rajkeerthi, E. ;
Mandal, K. ;
Bhattacharyya, B. .
MANUFACTURING REVIEW, 2020, 7
[5]   Investigation into fabrication of microslot arrays by electrochemical micromachining [J].
Kunar, S. ;
Bhattacharyya, B. .
MACHINING SCIENCE AND TECHNOLOGY, 2019, 23 (04) :629-649
[6]   Influence of electrochemical micromachining process parameters during fabrication of varactor micropattern [J].
Kunar, Sandip ;
Mahata, Subrata ;
Bhattacharyya, B. .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2018, 96 (1-4) :411-427
[7]   The influence of nanoscale grooved substrates on osteoblast behavior and extracellular matrix deposition [J].
Lamers, Edwin ;
Walboomers, X. Frank ;
Domanski, Maciej ;
te Riet, Joost ;
van Delft, Falco C. M. J. M. ;
Luttge, Regina ;
Winnubst, Louis A. J. A. ;
Gardeniers, Han J. G. E. ;
Jansen, John A. .
BIOMATERIALS, 2010, 31 (12) :3307-3316
[8]   Electrochemical micromachining, polishing and surface structuring of metals: fundamental aspects and new developments [J].
Landolt, D ;
Chauvy, PF ;
Zinger, O .
ELECTROCHIMICA ACTA, 2003, 48 (20-22) :3185-3201
[9]   Improvement in accuracy of micro-dimple arrays prepared by micro-electrochemical machining with high-pressure hydrostatic electrolyte [J].
Pan, Yongqiang ;
Hou, Zhibao ;
Qu, Ningsong .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2019, 100 (5-8) :1767-1777
[10]   Through-Mask Electrochemical Micromachining with Reciprocating Foamed Cathode [J].
Zhao, Chenhao ;
Ming, Pingmei ;
Zhang, Xinmin ;
Qin, Ge ;
Shen, Jiwen ;
Yan, Liang ;
Zheng, Xingshuai ;
Cao, Jun .
MICROMACHINES, 2020, 11 (02)