• DocumentCode
    1502375
  • Title

    DC column plasma kinetics in a longitudinal magnetic field

  • Author

    Uhriandt, D. ; Winkler, Rolf

  • Author_Institution
    Inst. of Nonisothermal Plasmaphys., Greifswald, Germany
  • Volume
    29
  • Issue
    3
  • fYear
    2001
  • fDate
    6/1/2001 12:00:00 AM
  • Firstpage
    462
  • Lastpage
    470
  • Abstract
    The cylindrical column plasma of a neon dc glow discharge under the influence of a weak longitudinal magnetic field is studied. An extended, fully self-consistent model of the column plasma has been used to determine the kinetic quantities of electrons, ions and excited atoms, the radial space charge field, and the axial electric field for given discharge conditions. The model includes a nonlocal kinetic treatment of the electrons by solving their spatially inhomogeneous kinetic equation, taking into account the radial space charge field and the axial magnetic field. The treatment is based on the two-term expansion of the velocity distribution and comprises the determination of its isotropic and anisotropic components in the axial, radial, and azimuthal direction. A transition from a distinctly nonlocal kinetic behavior of the electrons in the magnetic-field-free case to an almost local kinetic behavior has been found by increasing the magnetic field. The establishment of the electron cyclotron motion around the column axis increasingly restricts the radial electron energy transport and reduces the radial ambipolar current. The complex interaction of these transport phenomena with the alterations in the charge carrier production leads finally to a specific variation of the electric field components. The axial field increases by applying weak magnetic fields, however, decreases with increasingly higher magnetic fields. At higher magnetic fields, the radial space-charge field is considerably reduced
  • Keywords
    glow discharges; magnetic field effects; neon; plasma kinetic theory; DC column plasma kinetics; Ne; Ne DC glow discharge; anisotropic components; axial electric field; axial magnetic field; charge carrier production; cylindrical column plasma; discharge conditions; electric field components; electron cyclotron motion; extended fully self-consistent model; isotropic components; local kinetic behavior; longitudinal magnetic field; magnetic-field-free case; nonlocal kinetic treatment; radial ambipolar current; radial electron energy transport; radial space charge field; radial space-charge field; spatially inhomogeneous kinetic equation; transport phenomena; two-term expansion; velocity distribution; Anisotropic magnetoresistance; Atomic measurements; Electrons; Equations; Glow discharges; Kinetic theory; Magnetic fields; Nonuniform electric fields; Plasmas; Space charge;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.928944
  • Filename
    928944