• DocumentCode
    1338859
  • Title

    Numerical Experiments in Plasma Focus Operated in Various Gases

  • Author

    Akel, Mohamad ; Lee, Sing ; Saw, S.H.

  • Author_Institution
    Dept. of Phys., Atomic Energy Comm., Damascus, Syria
  • Volume
    40
  • Issue
    12
  • fYear
    2012
  • Firstpage
    3290
  • Lastpage
    3297
  • Abstract
    We adapted the Lee Model code as a branch version RADPF5.15K to gases of special interest to us, namely, nitrogen and oxygen and applied numerical experiments specifically to our AECS PF-1 and AECS PF-2. We also generalized the numerical experiments to other machines and other gases to look at scaling laws and to explore recently uncovered insights and concepts. The required thermodynamic data of nitrogen, oxygen, neon, and argon gases (ion fraction, the effective ionic charge number, the effective specific heat ratio) were calculated, the X-ray emission properties of plasmas were studied, and suitable temperature range (window) for generating H- and He-like ions (therefore soft X-ray emissions) of different species of plasmas were found. The code is applied to characterize the AECS-PF-1 and AECS-PF-2, and for optimizing the nitrogen, oxygen, neon, and argon SXR yields. In numerical experiments we show that it is useful to reduce static inductance L0 to a range of 15-25 nH; but not any smaller. These yields at diverse wavelength ranges are large enough to be of interest for applications. Scaling laws for argon and nitrogen SXR were found. Model parameters are determined by fitting computed with measured current waveforms in neon for INTI PF and in argon for the AECS PF-2. Radiative cooling effects are studied indicating that radiative collapse may be observed for heavy noble gases (Ar, Kr, Xe) for pinch currents even below 100 kA. The creation of the consequential extreme conditions of density and pulsed power is of interest for research and applications.
  • Keywords
    argon; neon; nitrogen; numerical analysis; oxygen; pinch effect; plasma X-ray sources; plasma focus; plasma simulation; plasma thermodynamics; AECS PF-1; AECS PF-2; Ar2; H-like ions; He-like ions; INTI PF; Lee model code; N2; Ne2; O2; RADPF5.15K; argon gas; neon gas; nitrogen gas; numerical experiments; oxygen gas; plasma focus; radiative cooling effects; scaling laws; soft X-ray emission; thermodynamic data; Argon; Nitrogen; Numerical models; Oxygen; Plasma temperature; Lee Model; plasmas focus (PF); radiative collapse; scaling law; soft X-ray;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2012.2220863
  • Filename
    6359867