Title :
Theoretical Simulation of a Gas Breakdown Initiated by External Plasma Source in the Gap With Combined Metal–Dielectric Electrodes
Author :
Kozyrev, Andrey V. ; Kozhevnikov, Vasily Yu ; Semeniuk, Natalia S. ; Zyulkova, Larisa A.
Author_Institution :
Tomsk State Univ., Tomsk, Russia
Abstract :
This paper is devoted to the theoretical investigation of the breakdown in short discharge gaps of different geometries under the influence of the plasma stream from an external source. The structural feature is the presence of dielectric elements in the electric discharge gap area, which have high emission activity and the ability to accumulate a surface charge. The simulation was performed for a 2-D planar geometry of the discharge gap between two metal electrodes with dielectric coating surrounded by the gaseous medium. Charged particles generation and dynamics have been described by a system of partial differential equations in the diffusion-drift approximation within the two-fluid hydrodynamics plasma model. The basic advantages of the proposed model (such as a wide variety of boundary conditions and geometries of the discharge gap, the scalability of the critical parameters of the environment, and a simple representation of surface reactions) are demonstrated successfully. During computations, the range of gas pressure and the external preionization level at which the probability of low-voltage self-sustained discharge is high enough were identified.
Keywords :
hydrodynamics; partial differential equations; plasma simulation; plasma sources; plasma transport processes; probability; surface charging; surface discharges; 2D planar geometry; boundary conditions; charged particle dynamics; charged particle generation; dielectric coating; diffusion-drift approximation; electric discharge gas breakdown simulation; external plasma source; low-voltage self-sustained discharge probability; metal-dielectric electrodes; partial differential equations; plasma stream; surface charge; surface reaction representation; two-fluid hydrodynamics plasma model; Cathodes; Discharges (electric); Fault location; Mathematical model; Plasmas; Surface discharges; Gas discharge devices; numerical simulation; plasma devices; plasma simulation; plasma simulation.;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2015.2447032