Title :
Fast Time-Relaxation Algorithm to Solve Plasma Fluid Equations
Author :
Gregório, José ; Boisse-Laporte, Caroline ; Alves, Luís L.
Author_Institution :
Lab. Associado, Inst. Super. Tecnico, Lisbon, Portugal
Abstract :
This paper presents a fast time-relaxation quasi-implicit algorithm to solve plasma fluid-type equations for the transport of electron particles and mean energy, the transport of heavy species (ions and neutrals), the balance of the gas thermal energy, and the description of the fields (space-charge electrostatic and electromagnetic) affecting the plasma. The algorithm separately solves and converges the different model equations, within quasi-independent calculation modules, taking advantage of their characteristic relaxation times. In particular, the full solutions to the electron and ion transport equations are sequentially obtained, contrary to the procedure usually adopted in plasma fluid-type models. The algorithm is applied to the 1-D modeling of atmospheric-pressure microplasmas in argon, produced within the end gap of a microstrip-like transmission line by a continuous microwave excitation (at 2.45-GHz frequency). The runtimes are of 25-60 min on a 2.66-GHz CPU for the convergence criteria imposing global errors smaller than 10-4- 10-7.
Keywords :
argon; boundary-value problems; nonlinear differential equations; physics computing; plasma simulation; plasma transport processes; space charge; 1D modeling; Ar; argon; atmospheric-pressure microplasmas; characteristic relaxation times; continuous microwave excitation; convergence criteria; electron particle transport; electron transport equation; end gap; fast time-relaxation quasi-implicit algorithm; frequency 2.45 GHz; frequency 2.66 GHz; gas thermal energy balance; global errors; ion transport equation; mean energy; microstrip-like transmission line; model equations; plasma fluid-type equations; plasma fluid-type models; quasi-independent calculation modules; runtimes; space-charge electromagnetic field; space-charge electrostatic field; time 25 min to 60 min; Argon; Atmospheric modeling; Atmospheric-pressure plasmas; Differential equations; Electromagnetic fields; Electrons; Electrostatics; Microstrip; Plasma properties; Plasma transport processes; Atmospheric-pressure plasma; boundary-value problem; fluid model; microstrip resonator; nonlinear differential equations; simulation algorithm;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2010.2055166