Comparative calculations of electron-swarm properties inat moderatevalues
- 1 January 1982
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review A
- Vol. 25 (1) , 540-554
- https://doi.org/10.1103/physreva.25.540
Abstract
The recently developed density gradient and multiterm spherical harmonic expansion technique for the numerical solution of the electron Boltzmann equation is evaluated by comparison of results with those obtained using the conventional two-term spherical harmonic technique and using the Monte Carlo technique. Comparisons are made of electron energy distributions, transport coefficients, and excitation coefficients for electrons in at moderate electric-field to gas-density ratios where the large cross section for vibrational excitation leads to significant errors when conventional solutions of the Boltzmann equation are used. The values were varied from (1 - 200)× V , corresponding to mean electron energies from 0.3 to 5 eV. The first two terms of the density-gradient expansion are used. As the number of terms in the spherical harmonic expansion is increased from the conventional two terms to , the spherically symmetric component of the electron energy distribution and the transport and excitation coefficients become independent of and close to results obtained from the Monte Carlo calculation. The errors resulting from the use of two spherical harmonics at V , for example, are approximately 1, 5, and 30% for the drift velocity, the transverse diffusion coefficient, and the electronic excitation coefficients, respectively. For the lower values the errors in the transport coefficients are approximately proportional to an energy-loss-per-collision parameter. The variation of the coefficients of the lower-degree terms in the spherical-harmonic expansion with is examined through a comparison with an analytical solution of the Boltzmann equation for a model atom valid in the case of low and high electron energies. Monte Carlo techniques are used to show that the effects of electrodes are negligible for the conditions of recent measurements of electron excitation coefficients in .
Keywords
This publication has 45 references indexed in Scilit:
- Kinetic Theory of Charged Particle Swarms in Neutral GasesAustralian Journal of Physics, 1980
- Kinetics of the Electron Component in the Turbulent Electron‐Beam Discharge Plasma in Diatomic Gases and Comparison of some Macroscopic Properties between the Plasmas of the Beam and the Glow DischargeContributions to Plasma Physics, 1980
- An Investigation of the Accuracy of Numerical Solutions of Boltzmann's Equation for Electron Swarms in Gases with Large Inelastic Cross SectionsAustralian Journal of Physics, 1979
- A Monte-Carlo Simulation of the Behaviour of Electron Swarms in Hydrogen Using an Anisotropic Scattering ModelAustralian Journal of Physics, 1978
- Zur mikrophysikalischen Beschreibung des schwachionisierten Stickstoffmolekülplasmas der positiven Säule von Glimmentladungen. III. Elektronenkinetische Kenngrößen unter Berücksichtigung der Dissoziation durch direkten ElektronenstoßContributions to Plasma Physics, 1978
- Computer Simulation of an Electron Swarm at low E/p in HeliumAustralian Journal of Physics, 1974
- On the Theory of Electron Diffusion in Electrostatic Fields in GasesAustralian Journal of Physics, 1974
- Zur mikrophysikalischen Beschreibung des schwachionisierten Stickstoffmolekülplasmas der positiven Säule von Glimmentladungen. II. Berechnung der Transportgrößen, Stoßfrequenzen und Energieverlustraten der Elektronen im molekularen Stickstoffplasma und Vergleich mit dem ExperimentContributions to Plasma Physics, 1974
- Zur mikrophysikalischen Beschreibung des schwachionisierten Stickstoffmolekülplasmas der positiven Säule von Glimmentladungen. I. Berechnung der Geschwindigkeitsverteilungsfunktion der Elektronen im molekularem Stickstoffplasma und Vergleich mit dem ExperimentContributions to Plasma Physics, 1973
- Anregung von UV-Strahlung in Stickstoff und Wasserstoff durch einen ElektronenschwarmThe European Physical Journal A, 1963