• DocumentCode
    1728370
  • Title

    The radiation magnetohydrodynamics of a nanosecond capillary discharge

  • Author

    Zakharov, S.V. ; Chuvatin, A.S. ; Choi, P.

  • Author_Institution
    Ecole Polytech., Palaiseau, France
  • fYear
    2001
  • Firstpage
    146
  • Abstract
    Summary form only given. The dynamics and radiation emission of a nanosecond electrical discharge in a gas-filled (Ar or Xe) capillary with hollow cathode is studied. Mechanisms of plasma heating and radiation generation are examined in 2D simulations by means of the radiation-magnetohydrodynamic code ZETA with spectral and EOS properties calculated in non-LTE approximation. Simulations are performed in geometry and with discharge parameters similar to the experimental ones and compared with experimental data. ne capillary discharge with hollow cathode is initiated by capacitor 0.8 nF charged to 17 kV. A discharge current with 4.8 kA amplitude, 16 ns period damped oscillations is produced. A gas pressure gradient 0.3-0.03 mbar from the anode to the cathode was initially organized in order to provide an effective electron beam pre-ionization wave in the hollow cathode discharge as well as to organize a blow-through of the capillary in high repetition rate operation. Multicharged ion plasma is preheated by Joule dissipation and heated by volumetric compression wave induced by magnetic field pressure and cumulation due to the density axial gradient. The heating power exceeds 0.1 MW. It is emitted and absorbed by capillary walls mainly. Radiation through the open capillary end reaches 10 kW with effective pulse duration about 17 ns. Within the band 10-15 nm interesting for applications Xenon emission exceeds 10% of end radiation flux. Theory of axially inhomogeneous capillary discharge magnetohydrodynamics is discussed.
  • Keywords
    capillarity; discharges (electric); equations of state; plasma heating; plasma magnetohydrodynamics; plasma simulation; plasma thermodynamics; 0.1 MW; 0.3 to 0.03 mbar; 0.8 nF; 10 kW; 16 ns; 17 kV; 2-D simulations; 4.8 kA; Ar; Joule dissipation; Xe; ZETA radiation magnetohydrodynamics code; amplitude; axially inhomogeneous capillary discharge MHD; blow through; capillary; capillary discharge; capillary walls; damped oscillations; density axial gradient; discharge current; effective electron beam pre ionization wave; end radiation flux; equation of state; gas pressure gradient; gas-filled capillary; heating power; high repetition rate operation; hollow cathode; hollow cathode discharge; magnetic field pressure; multicharged ion plasma; nanosecond capillary discharge; nanosecond electrical discharge dynamics; nonLTE approximation; open capillary end; plasma heating; plasma simulations; radiation emission; radiation generation; spectral properties; volumetric compression wave; Argon; Cathodes; Earth Observing System; Geometry; Heating; Magnetohydrodynamic power generation; Mechanical factors; Plasma properties; Plasma simulation; Solid modeling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Pulsed Power Plasma Science, 2001. IEEE Conference Record - Abstracts
  • Conference_Location
    Las Vegas, NV, USA
  • Print_ISBN
    0-7803-7141-0
  • Type

    conf

  • DOI
    10.1109/PPPS.2001.960700
  • Filename
    960700