Title :
A two-electron group model theory for radio-frequency ionization of noble gases with turbulent flow
Author :
Talaat, Mostafa Ezzat
Author_Institution :
Dept. of Mech. Eng., Maryland Univ., College Park, MD, USA
fDate :
4/1/1991 12:00:00 AM
Abstract :
Equations are derived for predicting the current-voltage characteristic curves of axial RF discharges in noble gases, with turbulent flow. The electrons are considered to be made up of two Maxwellian groups: bulk and tail electrons. The bulk electrons are described by a temperature Tb, and have kinetic energies (1/2 mv2=eV) from 0 to eV l (eVl=the threshold energy of the first dominant inelastic collision process). The electrons of the depressed tail of the distribution function are described by another temperature, Tt<Tb, and have (eV>eVl). The terms in these equations correspond to the prevailing processes occurring inside the noble gas discharge. The rate coefficients given are derived, based on the two-electron group model. The effect of the high velocity flow is accounted for by the terms giving the divergence of the flux of particles in the redirection of flow in each of the continuity equations for the primary species and by adding a diffusion coefficient due to turbulence to the static discharge diffusion coefficients of the ions and metastables
Keywords :
high-frequency discharges; inert gases; ionisation of gases; plasma flow; plasma simulation; plasma transport processes; plasma turbulence; axial RF discharges; bulk electrons; current-voltage characteristic curves; diffusion coefficient; metastables; noble gases; radio-frequency ionization; rate coefficients; tail electrons; turbulent flow; two-electron group model theory; Current-voltage characteristics; Electrons; Gases; Ionization; Kinetic energy; Maxwell equations; Probability distribution; Radio frequency; Tail; Temperature;
Journal_Title :
Plasma Science, IEEE Transactions on