DocumentCode
1391283
Title
Comparative Evaluation Between DC and AC Breakdown Characteristic of Dielectric Insulating Materials in Liquid Nitrogen
Author
Seong, J.K. ; Seo, I.J. ; Hwang, Jun Seok ; Lee, B.W.
Author_Institution
Dept. of Electron., Electr., Control & Instrum. Eng., Hanyang Univ., Ansan, South Korea
Volume
22
Issue
3
fYear
2012
fDate
6/1/2012 12:00:00 AM
Firstpage
7701504
Lastpage
7701504
Abstract
Due to the existence of AC loss in superconducting materials when an alternating voltage is applied, high cryogenic costs are inevitable to operate superconducting devices in AC networks. Therefore applications of superconducting devices in DC electric power networks could be regarded as the optimum choice for superconducting devices, because superconductors show exactly zero resistance to a DC source. Recently, DC superconducting devices such as DC cables have received noticeable attention as DC power transmission lines. In order to develop DC superconducting devices, the DC insulation characteristics in cryogenic liquids should be clarified. However, up to now, limited research has been reported in this field. In this paper, to clarify the different breakdown characteristics of DC and AC applications, various kinds of cryogenic dielectric sheets including Kraft, Kapton (polyimide) and Nomex (polyamide) papers have been prepared. Furthermore, a penetrating breakdown test for three kinds of sheets and turn-to-turn breakdown tests have been performed in liquid nitrogen (LN2). Consequently, it was found that the prepared sheets have shown 1.7-2.7 times higher dielectric strength than those of AC. Moreover, the Nomex and Kraft sheets have shown a remarkable increase in their dielectric strength in liquid nitrogen compared to air. However, the dielectric strength of the Kapton sheet did not show a remarkable increase in liquid nitrogen. From the turn-to-turn breakdown test, it was proved that the dielectric strength has been linearly increased according to the wrapping number of the sheets and that the DC breakdown voltage was 1.1-2.5 times higher than AC.
Keywords
DC power transmission; cryogenics; electric breakdown; insulating materials; superconducting cables; superconducting materials; AC breakdown characteristic; AC loss; DC breakdown characteristic; DC cable; DC electric power network; DC insulation characteristics; DC power transmission line; DC superconducting device; breakdown characteristics; cryogenic cost; cryogenic dielectric sheet; cryogenic liquid; dielectric insulating material; dielectric strength; kapton paper; kapton sheet; kraft paper; kraft sheet; liquid nitrogen; nomex paper; nomex sheet; penetrating breakdown test; polyamide paper; polyimide paper; superconducting material; turn-to-turn breakdown test; Cryogenics; Dielectric breakdown; Dielectrics; Electrodes; Nitrogen; Superconducting devices; DC insulator; dielectric breakdown; dielectric materials; superconducting material;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2011.2178222
Filename
6096389
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