DocumentCode :
1177484
Title :
Local Heat Source Approximation Technique for Predicting Temperature Rise in Power Capacitors
Author :
Lee, Se-Hee ; Lee, Byeong-Yoon ; Kim, Hong-Kyu ; Kim, Heung-Geun
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Kyungpook Nat. Univ., Daegu
Volume :
45
Issue :
3
fYear :
2009
fDate :
3/1/2009 12:00:00 AM
Firstpage :
1250
Lastpage :
1253
Abstract :
A novel technique was proposed for evaluating a local heat source in film power capacitors by adopting a minimized analysis model. It is impossible to analyze directly the distributions of heat source in a capacitor element because of tiny scale of aluminum foil and polypropylene film compared to the length of capacitor element. To overcome such a multi-scale problem, here, we proposed a local heat source approximation technique (LHSA) by adopting the time-harmonic analysis of electroquasistatic (EQS) conduction law. To evaluate the dielectric losses in polypropylene film, the complex permittivity was introduced for calculating the effective conductivity subjected to the sinusoidal electric field. These numerical results show that the main heat source originated from the dielectric materials not the metal electrodes in film power capacitors. Finally, the computational fluid dynamic (CFD) solver was adopted by considering the conduction, natural convection, and thermal radiation effects. The results from the proposed method were compared to and were in good agreement with those from the experiments with five sample capacitors of 6600/3800 V, 60 Hz, and 100 kvar.
Keywords :
aluminium; computational fluid dynamics; convection; dielectric losses; heat radiation; permittivity; polymer films; power capacitors; thin film capacitors; Al; CFD; EQS; LHSA; aluminum foil; complex permittivity; computational fluid dynamics; dielectric losses; dielectric materials; electroquasistatic conduction law; film power capacitors; frequency 60 Hz; local heat source approximation technique; multiscale problem; natural convection; numerical simulation; polypropylene film; sinusoidal electric field; thermal radiation effects; time-harmonic analysis; voltage 3800 V; voltage 6600 V; Complex permittivity; computational fluid dynamics (CFD); electroquasistatics (EQS); film power capacitors; local heat source; loss tangent; multi-scale problems; polypropylene films; power dissipation;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2009.2012582
Filename :
4787448
Link To Document :
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