DocumentCode :
1777460
Title :
Effect of Nano-TiO2 filling on partial discharge properties in air gap defects for cable terminations
Author :
Ke Wu ; Kai Zhou ; Li Wan ; Xutao Li
Author_Institution :
Electr. Eng. & Inf. Dept., Sichuan Univ., Chengdu, China
fYear :
2014
fDate :
20-22 Oct. 2014
Firstpage :
1320
Lastpage :
1324
Abstract :
Partial discharge (PD) is one of the major reasons for the insulation deterioration of the cable terminations. To avoid the rapid deterioration of the insulation caused by PD in air gap defects, a new method by filling nano-TiO2 particles in air gap defects to suppress the PD of the cable terminations. The typical defects are designed and the cable accessories accelerated aging and testing system are used to obtain the PD characteristics of the terminations under different aging time, and the surface morphology of the defects is analyzed by use of the scanning electron microscope (SEM). Moreover, this paper make a finite element model of the air gap defects in the cross-linked polyethylene (XLPE) insulation to discuss the impact mechanism of the nano-TiO2 particles to the PD activity and surface morphology of the defects. The study results show that the discharge energy of the PD reduces significantly and the growth trend of the discharge amplitude and the discharge repetition rate are not obvious after filling. In addition, the surface of the defects is smooth and the carbon content of the test area decreases significantly by filling nano-TiO2 particles. The results indicate that filling the nano-TiO2 particles in air gap defects can effectively improve the PD properties in defects for the cable terminations.
Keywords :
XLPE insulation; ageing; air gaps; cable insulation; carbon; electric connectors; finite element analysis; nanoparticles; partial discharges; scanning electron microscopes; surface morphology; titanium compounds; C; SEM; TiO2; XLPE insulation; air gap defects; cable accessories; cable terminations; carbon content; cross-linked polyethylene insulation; discharge amplitude; discharge repetition rate; filling nanoparticles; finite element model; insulation deterioration; partial discharge properties; scanning electron microscope; surface morphology; testing system; Aging; Cable insulation; Filling; Partial discharges; Power cables; Surface morphology; cable terminations; finite element model; nano-TiO2 particles; partial discharge;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power System Technology (POWERCON), 2014 International Conference on
Conference_Location :
Chengdu
Type :
conf
DOI :
10.1109/POWERCON.2014.6993646
Filename :
6993646
Link To Document :
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