Title :
Viscous effects on motion and heating of electrons in inductively coupled plasma reactors
Author :
Chang, Chong H. ; Bose, Deepak
Author_Institution :
Los Alamos Nat. Lab., NM, USA
fDate :
10/1/1999 12:00:00 AM
Abstract :
A transport model is developed for nonlocal effects on motion and heating of electrons in inductively coupled plasma reactors. The model is based on the electron momentum equation derived from the Boltzmann equation, retaining anisotropic stress components which in fact are viscous stresses. The resulting model consists of transport equations for the magnitude of electron velocity oscillation and terms representing energy dissipation due to viscous stresses in the electron energy equation. In this model, electrical current is obtained in a nonlocal manner due to viscous effects, instead of Ohm´s law or the electron momentum equation without viscous effects, while nonlocal heating of electrons is represented by the viscous dissipation. Computational results obtained by two-dimensional numerical simulations show that nonlocal determination of electrical current indeed is important, and viscous dissipation becomes an important electron heating mechanism at low pressures. It is suspected that viscous dissipation in inductively coupled plasma reactors in fact represents stochastic heating of electrons, and this possibility is exploited by discussing physical similarities between stochastic heating and energy dissipation due to the stress tensor
Keywords :
Boltzmann equation; plasma devices; plasma heating; plasma transport processes; Boltzmann equation; Ohm´s law; anisotropic stress components; computational results; electrical current; electron energy equation; electron heating; electron heating mechanism; electron momentum equation; electron motion; electron velocity oscillation; energy dissipation; inductively coupled plasma reactors; nonlocal effects; stochastic heating; stress tensor; transport equations; transport model; two-dimensional numerical simulations; viscous dissipation; viscous effects; viscous stresses; Anisotropic magnetoresistance; Boltzmann equation; Electrons; Energy dissipation; Inductors; Numerical simulation; Plasma transport processes; Resistance heating; Stochastic processes; Stress;
Journal_Title :
Plasma Science, IEEE Transactions on