• DocumentCode
    2568847
  • Title

    A Resonant Heterodyne Interferometry Diagnostic for Measuring State Densities of Atoms and Ions

  • Author

    Hazelton, R.C. ; Moschella, J.J. ; Klepper, C.C. ; Keitz, M.D. ; Yadlowsky, E.J.

  • Author_Institution
    HY-Tech Res. Corp., Radford, VA
  • fYear
    2005
  • fDate
    20-23 June 2005
  • Firstpage
    181
  • Lastpage
    181
  • Abstract
    Summary form only given. The direct measurement of ion or neutral atom densities in a plasma is usually obtained via emission diagnostics which need to be absolutely calibrated and suffer from a lack of spatial resolution. A resonant, heterodyne interferometer that, in general, can be used to quantitatively measure state densities of ions and atoms, has been developed. The system has been specifically designed to measure neutral hydrogen by interrogating the atomic transitions of Halpha. However, the technique may be applied to any transition in an atom or ion that can be probed with a tunable laser. As currently configured, our diagnostic system may be valuable for studying divertor operation or particle recycling in a tokamak, or any other system where obtaining quantitative information on neutral hydrogen is important. The interferometer operates with a He-Ne laser and a tunable diode laser (TDL) propagating co-linearly. The tunable diode laser has a linewidth <10-6 nm and a tuning range of 6 nm. This configuration serves the purpose of separating resonant and non-resonant phase effects in the interferometer signals. Phase shifts induced by plasma electrons and background vibrations are common to both the measured phase shifts and a simple subtraction leaves only the resonant portion for analysis. This feature provides robust noise immunity and high sensitivity. The measured quantities are integrated along the laser beam line-of-sight with a transverse resolution of less than a millimeter. Because state densities, as well as line profiles, can be determined directly from phase-shift measurements, no intensity calibration is required. We have tested the diagnostic using a plasma opening switch, filled with a plasma from an inverse pinch plasma source, demonstrating the basic feasibility and operation of the resonant heterodyne interferometer. Using hydrogen as a working gas, the properties of the fill plasma and the subsequent dynamics o- the opening switch operation were studied. Using argon and helium as working gases, wall contamination (in the form of desorbed hydrogen), was investigated. Measurements of the n=2 state density of neutral hydrogen have been made with a resolution of 2times1011 cm-2, line integrated density
  • Keywords
    argon; helium; hydrogen; pinch effect; plasma density; plasma diagnostics; plasma light propagation; plasma switches; plasma-wall interactions; Ar-He; H2; He-Ne laser; atomic transitions; divertor operation; emission diagnostics; inverse pinch plasma source; ion densities; line integrated density; neutral atom densities; particle recycling; phase-shift measurements; plasma opening switch; resonant heterodyne interferometry; tokamak; tunable diode laser; wall contamination; Atomic measurements; Density measurement; Hydrogen; Interferometry; Plasma density; Plasma diagnostics; Plasma measurements; Plasma properties; Pollution measurement; Resonance;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Plasma Science, 2005. ICOPS '05. IEEE Conference Record - Abstracts. IEEE International Conference on
  • Conference_Location
    Monterey, CA
  • ISSN
    0730-9244
  • Print_ISBN
    0-7803-9300-7
  • Type

    conf

  • DOI
    10.1109/PLASMA.2005.359196
  • Filename
    4198455