DocumentCode :
2073310
Title :
Simulation of spark channel formation for electrical discharge technology
Author :
Cheglokov, Alexei ; Noskov, Mikhail ; Lopatin, Vladimir ; Shapovalov, Alexander
Author_Institution :
High Voltage Res. Inst., Tomsk Polytech. Univ., Russia
Volume :
1
fYear :
2001
fDate :
26 Jun-3 Jul 2001
Firstpage :
224
Abstract :
The impulse breakdown of dielectrics is a result of propagation of conducting discharge channels in insulators. The electric field, charge, and energy dynamics within the discharge channels and dielectric material govern the channel growth. In this paper the physical-mathematical model of the discharge channel propagation is presented. The model describes the self-consistent dynamics of temperature, electric field, charge density, and phase transition of the dielectric material to highly conducting state. The discharge channel propagation is associated with the growth of the highly conducting region in the insulator. For computer simulation the model has been realized as a three dimensional numerical algorithm on a cubic lattice. The dynamics of the electric field, charge density, and temperature are calculated on the base of finite-difference approximations of the Poisson´s equation, continuity equation, and energy conservation law. The phase transition occurs when the temperature of the dielectric exceeds a critical value. The results of computer simulation of the conducting channel formation in non-homogeneous dielectrics in needle-plane electrode geometry under dc voltage are presented
Keywords :
Poisson equation; electrodes; finite difference methods; sparks; Poisson´s equation; charge density; conducting channel formation; conducting discharge channels; conduction inhomogeneities; continuity equation; cubic lattice; electrical discharge technology; energy conservation law; energy dynamics; finite-difference approximations; impulse breakdown; insulators; needle-plane electrode geometry; phase transition; physical-mathematical model; self-consistent dynamics; spark channel formation; three dimensional numerical algorithm; Computer simulation; Dielectric breakdown; Dielectric materials; Dielectrics and electrical insulation; Energy conservation; Finite difference methods; Lattices; Poisson equations; Sparks; Temperature;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Science and Technology, 2001. KORUS '01. Proceedings. The Fifth Russian-Korean International Symposium on
Conference_Location :
Tomsk
Print_ISBN :
0-7803-7008-2
Type :
conf
DOI :
10.1109/KORUS.2001.975106
Filename :
975106
Link To Document :
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