Metalized film capacitors in a.c. applications suffer high frequency and high voltage, which will induce electrode corrosion, leading to capacitance degradation. The intrinsic mechanism of the corrosion is oxidation caused by ionic migration in the oxide film formed on the electrode surface. In this work, a D–M–O illustration structure for the nanoelectrode corrosion process is established, and thereby, an analytical model is derived to study the influences of frequency and electric stress on corrosion speed in a quantitative approach. The analytical results well conform to the experimental facts. It is found the corrosion rate rises with frequency and finally tends to reach a saturation value. The electric field in oxide has an exponential-like contribution to the corrosion rate. In the case of aluminum metalized films, the saturation frequency and minimum field required for corrosion initiation are, respectively, 3434 Hz and 0.35 V/nm calculated by the proposed equations.

1.
M. H.
El-Husseini
,
P.
Venet
,
A.
Al-Majid
,
M.
Fathallah
,
G.
Rojat
, and
J. A.
Ferreira
, “
Manufacturing technology effect on current pulse handling performance of metallized polypropylene film capacitors
,”
J. Phys. D: Appl. Phys.
36
,
2295
2303
(
2003
).
2.
J. H.
Tortai
,
A.
Denat
, and
N.
Bonifaci
, “
Self-healing of capacitors with metallized film technology:: Experimental observations and theoretical model
,”
J. Electrost.
53
(
2)
,
159
169
(
2001
).
3.
H.
Wang
,
M.
Liserre
, and
F.
Blaabjerg
, “
Toward reliable power electronics: Challenges, design tools, and opportunities
,”
IEEE Ind. Electron. Mag.
7
(
2
),
17
26
(
2013
).
4.
J. W.
Kolar
,
T. M.
Wolbank
, and
M.
Schrodl
, “
Analytical calculation of the RMS current stress on the DC link capacitor of voltage DC link PWM converter systems
,” in
Ninth International Conference on Electrical Machines and Drives (Conf. Publ. No. 468, 1999)
(
IEEE
,
1999
), pp.
81
89
.
5.
H.
Li
 et al., “
Capacitance loss mechanism and prediction based on electrochemical corrosion in metallized film capacitors
,”
IEEE Trans. Dielectr. Electr. Insul.
28
(
2
),
654
662
(
2021
).
6.
A.
Yializis
,
S. W.
Cichanowski
, and
D. G.
Shaw
, “
Electrode Corrosion Degradation in Metallized Polypropylene Capacitors
,” in
IEEE International Conference on Electrical Insulation, 1980
(
IEEE
,
1980
), pp.
89
93
.
7.
D. F.
Taylor
, “
On the mechanism of aluminum corrosion in metallized film AC capacitors
,”
IEEE Trans. Electr. Insul.
EI-19
(
4
),
288
293
(
1984
).
8.
C.
Brinkmann
, “
Corrosion phenomena on evaporated metal layers under electric stress
,”
J. Mater. Sci.
21
(
5
),
1615
1624
(
1986
).
9.
D. V.
Lackey
, “
A versatile capacitor web coater with multiple source capability
,”
Anti-Corros. Methods Mater.
39
(
2
),
4
8
(
1992
).
10.
A.
Guntherschulze
and
H.
Betz
, “
Die Bewegung der Ionengitter von Isolatoren bei extremen elektrischen Feldstärken
,”
Z. Phys.
92
(
5
),
367
374
(
1934
).
11.
N.
Cabrera
and
N. F.
Mott
, “
Theory of the oxidation of metals
,”
Rep. Prog. Phys.
12
,
163
(
1949
);
12.
J. W.
Diggle
,
T. C.
Downie
, and
C. W.
Goulding
, “
Anodic oxide films on aluminum
,”
Chem. Rev.
69
(
3
),
365
405
(
1969
).
13.
I.
De Graeve
,
H.
Terryn
, and
G. E.
Thompson
, “
AC-anodising of aluminium: Contribution to electrical and efficiency study
,”
Electrochim. Acta
52
(
3
),
1127
1134
(
2006
).
14.
C.
Bishop
,
Vacuum Deposition onto Webs, Films and Foils
(
William Andrew
,
2011
), pp.
17
20
.
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