• DocumentCode
    1488086
  • Title

    Responses of a long-coil pulse-modulated induction plasma

  • Author

    Paul, K.C. ; Hossain, M.M. ; Hashimoto, Y. ; Tanaka, Y. ; Sakuta, Tadahiro

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Toronto Univ., Ont., Canada
  • Volume
    29
  • Issue
    2
  • fYear
    2001
  • fDate
    4/1/2001 12:00:00 AM
  • Firstpage
    326
  • Lastpage
    334
  • Abstract
    Radio-frequency inductively coupled plasma in a pulse modulated approach was generated by a MOSFET inverter supply of high electric efficiency. The plasma torch has an extremely long coil region of 153 mm, which is an attractive feature for advanced materials processing, especially for better and more efficient vaporizing of solids. The operating conditions were: argon flow of 80 or 90 L/m at atmospheric pressure; supply power of 30 kW; and pulse on-time of 10 ms at 67% duty factor. Spectroscopic measurements were carried out to determine the temporal plasma properties, including the effects of shimmer current level (SCL) upon the spectral intensities. Additionally a time-dependent two-dimensional numerical model was solved for the same operating conditions employed in the experiment to predict and compare the plasma properties. Pulsed plasma dissipation sustained for a minimum SCL of 43% for 80 L/m gas flow-rate, and at any level below 43%, the plasma disappeared. Temporal variation of argon line intensities at 751 and 763.5 nm is similar, though the upper level intensity of the former one was significantly stronger than the latter. Intensified change of intensity is found at lower SCL because of higher change in the coil current and, in turn, in the plasma power. The predicted intensity of the 751-nm argon line showed similar behavior to the experimental intensity though the response around the instant of on-pulsation is somewhat slower
  • Keywords
    plasma diagnostics; plasma production; plasma thermodynamics; pulse modulation; 10 ms; 153 mm; 30 kW; 751 nm; 763.5 nm; Ar; MOSFET inverter; advanced materials processing; argon flow; coil current; duty factor; electric efficiency; gas flow-rate; intensity change; line intensities; local thermodynamic equilibrium; long coil region; long-coil pulse-modulated induction plasma; on-pulsation; operating conditions; plasma power; plasma torch; pulse modulated approach; pulse on-time; pulsed plasma dissipation; radio-frequency inductively coupled plasma; responses; shimmer current level; spectral intensities; spectroscopic measurements; supply power; temporal plasma properties; temporal variation; time-dependent two-dimensional numerical model; upper level intensity; vaporisation; Argon; Coils; Induction generators; Plasma materials processing; Plasma measurements; Plasma properties; Pulse generation; Pulse inverters; Pulse modulation; Radio frequency;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/27.922742
  • Filename
    922742