DocumentCode :
775081
Title :
Electrical stress enhancement of contaminants in XLPE insulation used for power cables
Author :
Bostrom, J.-O. ; Marsden, E. ; Hampton, R.N. ; Nilsson, U.
Volume :
19
Issue :
4
fYear :
2003
Firstpage :
6
Lastpage :
12
Abstract :
The use of XLPE as the insulation for power cables has grown steadily since it first introduction more than 30 years ago. Today XLPE is rapidly becoming the preferred insulation system for even the highest transmission voltages. This preference is due to the high reliability, low dielectric losses, and low environmental impact that can be achieved with XLPE. The positive effects of high quality insulation materials on improved cable performance have been well known since the start of cable making. The purpose of this paper is to investigate the technical background for the cleanliness levels and to quantify the level of performance required from clean materials. The advantages of clean insulation materials are seen at all voltages. However, this work focuses on the technical basis for the benefits for HV and EHV cables, which typically are designed with a water impervious layer to ensure that the cable remains dry throughout its entire lifetime. The presence of metallic contaminants in MV cable is known to enhance the growth of trees by raising the electric stress level locally. The singular impact of cleanliness on the performance of MV cables is somewhat more complicated as it is influenced both by the cleanliness of the insulation and the ability of the insulation material to resist the growth of water trees.
Keywords :
XLPE insulation; power cable insulation; trees (electrical); EHV cables; HV cables; MV cable; XLPE insulation; cable making; clean insulation materials; cleanliness levels; contaminants; electrical stress enhancement; high quality insulation materials; high reliability; improved cable performance; insulation cleanliness; low dielectric losses; low environmental impact; metallic contaminants; positive effects; power cables; transmission voltages; water impervious layer; water trees growth; Cable insulation; Dielectric losses; Dielectric materials; Dielectrics and electrical insulation; Power cables; Power system reliability; Resists; Stress; Trees - insulation; Voltage;
fLanguage :
English
Journal_Title :
Electrical Insulation Magazine, IEEE
Publisher :
ieee
ISSN :
0883-7554
Type :
jour
DOI :
10.1109/MEI.2003.1226729
Filename :
1226729
Link To Document :
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