Skip to main content
Have a personal or library account? Click to login
Development of an Experimental Model for Conventional Electrochemical Machining Cover

Development of an Experimental Model for Conventional Electrochemical Machining

Open Access
|Jun 2026

References

  1. Arshad M.H., Saxena K.K., Huang S., Reynaerts D., Macro and micro-scale material removal mechanisms during C-ECM/hybrid laser-C-ECM of a passivating multiphase NbC–Ni cermet, Int. J. Mach. Tools Manuf., 200, 104182 (2024).
  2. Babich A., Bashkatov A., Eftekhari M., Yang X., Strasser P., Mutschke G., Eckert K., Oxygen versus hydrogen bubble dynamics during water electrolysis at microelectrodes, PRX Energy, 4, 013011 (2025).
  3. Bunea I.A., Păun A.G., Ghiculescu L.D., Enciu C.C., Study of Electrolyte Flow in Electrochemical Finishing, Nonconv. Technol. Rev., 29, 1, (2025).
  4. Ciobanu D., Nagit Gh., Dodun O., Hrituc A., Craciun E., Slatineanu L., The Influence of Some Working Conditions on Roughness in Electrochemical Machining of Some Carbon Steel Workpieces, Nonconv. Technol. Rev., 27, 4, (2023).
  5. Sahu A.K., Malhotra J., Jha S., Laser-based hybrid micromachining processes: A review, Opt. Laser Technol., 146, 107554 (2022).
  6. Şahin M.E., An overview of different water electrolyzer types for hydrogen production, Energies, 17, 4944 (2024).
  7. Sundén B., Hydrogen, in Hydrogen, Batteries and Fuel Cells, Academic Press, 37–55 (2019).
  8. Varol T., Aksa H.C., Yıldız F., Akçay S.B., Kaya G., Beder M., Influence of post processing on the mechanical properties and wear behavior of selective laser melted Co-Cr-Mo-W alloys, Tribol. Int., 192, 109336 (2024).
  9. Wang J., Natsu W., Mechanism and characteristics of conventional electrochemical machining using electrolyte absorbed in solid porous ball, Precis. Eng., 77, 307–319 (2022).
  10. Wongpromrat P., Galerie A., Thublaor T., Chandra-Ambhorn W., Ponpo P., Watasuntornpong P., Yamanaka K., Chiba A., Tunthawiroon P., Siripongsakul T., Chandra-Ambhorn S., Ruangtrakoon N., Evidence for chromium, cobalt and molybdenum volatilizations during high temperature oxidation of Co-27Cr-6Mo alloy, Corros. Sci., 202, 110285 (2022).
  11. Wu F., Tong H., Chen F., Liu Z., Liu X., Zhou J., Electrochemical surface modification of GH4742 nickel-based superalloy in C6H5Na3O7 solution, Surf. Interfaces, 45, 103815 (2024).
  12. Xu Z., Wang Y., Electrochemical machining of complex components of aero-engines: Developments, trends, and technological advances, Chin. J. Aeronaut., 34(2), 28–53 (2021).
  13. Zhang Q., Luo H., Liu P., Liu G., Zhang Y., Bipolar nano-second pulse power supply for electrochemical micromachining of tungsten carbide without tool wear, Procedia CIRP, 113, 471–476 (2022). https://dentstore.ro/aliaje-si-turnare/212175-aliaj-cr-co-system-d.html?fast_search=fs
DOI: https://doi.org/10.2478/bipcm-2026-0011 | Journal eISSN: 2537-4869 | Journal ISSN: 1011-2855
Language: English
Page range: 9 - 27
Submitted on: May 21, 2026
Accepted on: Jun 10, 2026
Published on: Jun 30, 2026
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2026 Titi Danciu, Liviu-Daniel Ghiculescu, published by Gheorghe Asachi Technical University of Iasi
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.