Title :
Silicone rubber dielectrics modified by inorganic fillers for outdoor high voltage insulation applications
Author_Institution :
Dept. of Electr. & Comput. Eng., Waterloo Univ., Ont., Canada
Abstract :
The paper discusses the mechanisms by which inorganic fillers in silicone rubber dielectrics enhance the properties of thermal conductivity, relative permittivity, and electrical conductivity making them useful in outdoor high voltage insulation applications. The addition of alumina tri-hydrate or silica fillers to silicone elastomers, forming binary composites with enhanced thermal conductivity, is discussed in relation to filler type, particle size, shape, and concentration, and its use as a housing material for non-ceramic insulators to minimize material erosion at dry band arcing sites by lowering hot spot temperature. Also discussed is the enhanced relative permittivity of silicone dielectrics that is obtained through the addition of barium titanate powder which can be further increased with the addition of aluminium powder forming a tertiary composite, resulting in a significant grading of the surface electric field when applied as a housing material to high voltage bushings. Controlled electrical conductivity of silicone dielectrics is discussed through the use of antimony-doped tin oxide filler binary composites and when applied as a housing material to outdoor bushings, the pollution performance is greatly enhanced.
Keywords :
aluminium; antimony; barium compounds; bushings; doping; elastomers; electric fields; electrical conductivity; filled polymers; particle size; permittivity; silicone rubber; thermal conductivity; tin compounds; alumina tri-hydrate; antimony-doped tin oxide filler; barium titanate powder; binary composites; dry band arcing site; electrical conductivity; high voltage bushing; high voltage insulation; hot spot temperature; housing material; inorganic fillers; material erosion minimization; nonceramic insulator; particle size; relative permittivity; silica filler; silicone elastomers; silicone rubber dielectrics; surface electric field; tertiary composite; thermal conductivity; Composite materials; Conducting materials; Dielectric materials; Dielectrics and electrical insulation; Insulators; Permittivity; Powders; Rubber; Thermal conductivity; Voltage;
Conference_Titel :
Electrical Insulation and Dielectric Phenomena, 2005. CEIDP '05. 2005 Annual Report Conference on
Print_ISBN :
0-7803-9257-4
DOI :
10.1109/CEIDP.2005.1560607