Title :
Numerical Model of an Argon Atmospheric Pressure RF Discharge
Author :
Balcon, N. ; Hagelaar, G. J M ; Boeuf, J.P.
Author_Institution :
Lab. PLAsma Conversion d´´Energie (LAPLACE), Toulouse
Abstract :
Radio-frequency discharges are known to operate in two different regimes. The alpha regime of low current density and the gamma regime with higher current density. Our recent simulation results suggest that the formation of filaments observed in an atmospheric pressure argon discharge under RF excitation could be triggered by the regime transition alphararrgamma. A unidimensional fluid model taking into account the external circuit shows that above 120 mA/cm2 , the differential conductivity of the discharge becomes negative with a rapid increase in density which can lead to the formation of filaments. As the transition to the gamma regime is due to secondary electrons, this threshold value depends on the secondary emission coefficient. In the gamma regime, the instantaneous cathode is sustained by secondary electron emission, which drastically changes the behavior of the discharge. In this paper, we present a numerical analysis of the transition between the two regimes and discuss how this could result in the filamentary mode observed in argon RF discharges.
Keywords :
argon; high-frequency discharges; numerical analysis; plasma simulation; plasma transport processes; secondary electron emission; Ar; argon atmospheric pressure RF discharge; current density; differential conductivity; external circuit; filamentary mode; instantaneous cathode; plasma simulation; radiofrequency discharges; secondary electron emission; secondary emission coefficient; unidimensional fluid model; $alpharightarrowgamma$ transition; $alpharightarrow gamma$ transition; Alpha and gamma regime; RF discharges; atmospheric pressure discharges; fluid model;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2008.2003135