Electrochemical machining (ECM) is an advanced machining technology. It has been applied in highly specialized fields such as aerospace, aeronautics, and medical industries. However, it still has some problems to be overcome. The efficient tool design, electrolyte processing, and disposal of metal hydroxide sludge are the typical issues. To solve such problems, computational fluid dynamics is expected to be a powerful tool in the near future. However, a numerical method that can satisfactorily predict the electrolyte flow has not been established because of the complex nature of flows. In the present study, we developed a multiphysics model and the numerical procedure to predict the ECM process. Our model and numerical procedure satisfactorily simulated a typical ECM process for a two-dimensional flat plate. Next, the ECM process for a three-dimensional compressor blade was simulated. Through visualization of the computational results, including the multiphase flow, and thermal and electric fields between the tool and the blade, it is verified that the present model and numerical procedure could satisfactorily predict the final shape of the blade.
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August 2008
Research Papers
Multiphysics Simulation of Electrochemical Machining Process for Three-Dimensional Compressor Blade
Toshiaki Fujisawa,
Toshiaki Fujisawa
Graduate School of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
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Kazuaki Inaba,
Kazuaki Inaba
Department of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
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Makoto Yamamoto,
Makoto Yamamoto
Department of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
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Dai Kato
Dai Kato
Aero-Engine and Space Operations,
Ishikawajima-Harima Heavy Industries Co., Ltd.
, 229 Tonogaya, Mizuho-machi, Nishitama-gun, Tokyo 190-1297, Japan
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Toshiaki Fujisawa
Graduate School of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
Kazuaki Inaba
Department of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
Makoto Yamamoto
Department of Mechanical Engineering,
Tokyo University of Science
, 1-14-6 Kudankita, Chiyoda-ku, Tokyo 102-0073, Japan
Dai Kato
Aero-Engine and Space Operations,
Ishikawajima-Harima Heavy Industries Co., Ltd.
, 229 Tonogaya, Mizuho-machi, Nishitama-gun, Tokyo 190-1297, JapanJ. Fluids Eng. Aug 2008, 130(8): 081602 (8 pages)
Published Online: July 30, 2008
Article history
Received:
April 20, 2007
Revised:
December 10, 2007
Published:
July 30, 2008
Citation
Fujisawa, T., Inaba, K., Yamamoto, M., and Kato, D. (July 30, 2008). "Multiphysics Simulation of Electrochemical Machining Process for Three-Dimensional Compressor Blade." ASME. J. Fluids Eng. August 2008; 130(8): 081602. https://doi.org/10.1115/1.2956596
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