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.

1.
Hourng
,
L. W.
, and
Chang
,
C. S.
, 1993, “
Numerical Simulation of Electrochemical Drilling
,”
J. Appl. Electrochem.
0021-891X,
23
, pp.
316
321
.
2.
Chang
,
C. S.
, and
Hourng
,
L. W.
, 2001, “
Two-Dimensional Two-Phase Numerical Model for Tool Design in Electrochemical Machining
,”
J. Appl. Electrochem.
0021-891X,
31
, pp.
145
154
.
3.
Chang
,
C. S.
,
Hourng
,
L. W.
, and
Chung
,
C. T.
, 1999, “
Tool Design in Electrochemical Machining Considering the Effect of Thermal-Fluid Properties
,”
J. Appl. Electrochem.
0021-891X,
29
, pp.
321
330
.
4.
Filatov
,
E. I.
, 2001, “
The Numerical Simulation of the Unsteady ECM Process
,”
J. Mater. Process. Technol.
0924-0136,
109
, pp.
327
332
.
5.
Purcar
,
M.
,
Bortels
,
L.
,
Van den Bossche
,
B.
, and
Deconinck
,
J.
, 2004, “
3D Electrochemical Machining Computer Simulations
,”
J. Mater. Process. Technol.
0924-0136,
149
, pp.
472
478
.
6.
Nied
,
H. A.
, and
Lamphere
,
M. S.
, 1995, “
2D Electrochemical Airfoil Machining Process Model
,” ASME Paper No. 95-GT-272.
7.
Rajurkar
,
K. P.
,
Zhu
,
D.
,
Geough
,
J. A.
,
Kozak
,
J.
, and
Silva
,
A.
, 1999, “
New Development of Electro-Chemical Machining
,”
CIRP Ann.
0007-8506,
48
(
2
), pp.
567
579
.
8.
Kozak
,
J.
, 1998, “
Mathematical Models for Computer Simulation of Electrochemical Machining Processes
,”
J. Mater. Process. Technol.
0924-0136,
76
, pp.
170
175
.
9.
Van Damme
,
S.
,
Nelissen
,
G.
,
Van den Bossche
,
B.
, and
Deconinck
,
J.
, 2006, “
Numerical Model for Predicting the Efficiency Behavior During Pulsed Electrochemical Machining of Steel in NaNO3
,”
J. Appl. Electrochem.
0021-891X,
36
, pp.
1
10
10.
Thhorpe
,
J. F.
, and
Zerkle
,
R. D.
, 1969, “
Analytic Determination of the Equilibrium Electrode Gap in Electrochemical Machining
,”
Int. J. Mach. Tool Des. Res.
0020-7357,
9
, pp.
131
144
.
11.
Hopenfeld
,
J.
, and
Cole
,
R. R.
, 1969, “
Prediction of the One-Dimensional Equilibrium Cutting Gap in Electrochemical Machining
,”
ASME J. Eng. Ind.
0022-0817,
8
, pp.
755
765
.
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