Electron Boltzmann kinetic equation averaged over fast electron bouncing and pitch-angle scattering for fast modeling of electron cyclotron resonance discharge

被引:41
作者
Kaganovich, I
Misina, M
Berezhnoi, SV
Gijbels, R
机构
[1] Univ Houston, Dept Chem Engn, Houston, TX 77204 USA
[2] Univ Antwerp, Dept Chem, B-2610 Antwerp, Belgium
[3] St Petersburg State Tech Univ, Dept Tech Phys, St Petersburg 195251, Russia
关键词
D O I
10.1103/PhysRevE.61.1875
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The electron distribution function (EDF) in an electron cyclotron resonance (ECR) discharge is far from Maxwellian. The self-consistent simulation of ECR discharges requires a calculation of the EDF on every magnetic line for various ion density profiles. The straightforward self-consistent simulation of ECR discharges using the Monte Carlo technique for the EDF calculation is very computer time expensive, since the electron and ion time scales are very different. An electron Boltzmann kinetic equation averaged over the fast electron bouncing and pitch-angle scattering was derived in order to develop an effective and operative tool for the fast modeling (FM) of low-pressure ECR discharges. An analytical solution for the EDF in a loss cone was derived. To check the validity of the FM, one-dimensional (in coordinate) and two-dimensional (in velocity) Monte Carlo simulation codes were developed. The validity of the fast modeling method is proved by comparison with the Monte Carlo simulations. The complete system of equations for FM is presented and ready for use in a comprehensive study of ECR discharges. The variations of plasma density and of wall and sheath potentials are analyzed by solving a self-consistent set of equations for the EDF.
引用
收藏
页码:1875 / 1889
页数:15
相关论文
共 38 条
[11]  
DMITRIEV AP, 1981, ZH EKSP TEOR FIZ+, V81, P2032
[12]  
GLENN J, 1997, J COMPUT PHYS, V138, P540
[13]   ABNORMALLY LOW ELECTRON-ENERGY AND HEATING-MODE TRANSITION IN A LOW-PRESSURE ARGON RF DISCHARGE AT 13.56 MHZ [J].
GODYAK, VA ;
PIEJAK, RB .
PHYSICAL REVIEW LETTERS, 1990, 65 (08) :996-999
[14]   Effect of collisionless heating on electron energy distribution in an inductively coupled plasma [J].
Godyak, VA ;
Kolobov, VI .
PHYSICAL REVIEW LETTERS, 1998, 81 (02) :369-372
[15]   TOTAL CROSS-SECTIONS FOR ELECTRON-SCATTERING BY NE, AR, KR AND XE [J].
HEER, FJD ;
JANSEN, RHJ ;
VANDERKAAY, W .
JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 1979, 12 (06) :979-1002
[16]   THEORY OF ELECTRON CYCLOTRON RESONANCE HEATING .1. SHORT TIME AND ADIABATIC EFFECTS [J].
JAEGER, F ;
LIEBERMAN, MA ;
LICHTENBERG, AJ .
PLASMA PHYSICS, 1972, 14 (12) :1073-+
[17]   THE SPACE-TIME-AVERAGING PROCEDURE AND MODELING OF THE RF DISCHARGE, .2. MODEL OF COLLISIONAL LOW-PRESSURE RF DISCHARGE [J].
KAGANOVICH, ID ;
TSENDIN, LD .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 1992, 20 (02) :66-75
[18]   Effects of collisions and particle trapping on collisionless heating [J].
Kaganovich, ID .
PHYSICAL REVIEW LETTERS, 1999, 82 (02) :327-330
[19]   LOW-PRESSURE RF DISCHARGE IN THE FREE-FLIGHT REGIME [J].
KAGANOVICH, ID ;
TSENDIN, LD .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 1992, 20 (02) :86-92
[20]   NUMERICAL-SOLUTION OF THE ELECTRON-DISTRIBUTION FUNCTION FOR ECR HEATING IN MAGNETIC-MIRROR [J].
KASHEEV, AV ;
SUETIN, NV .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 1995, 23 (04) :591-601