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Slow wave ion heating and parametric instabilities in the HELIX helicon source.

机译:HELIX螺旋源中的慢波离子加热和参数不稳定性。

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摘要

The primary focus of the experiments described here is to determine the mechanism responsible for intrinsic ion heating in helicon sources. Two possible mechanisms have been identified: ion Landau damping of the slow wave and parametrically driven instabilities. Consistent with ion Landau damping of the slow wave, the perpendicular ion temperatures 35 cm downstream of the RF antenna are largest when the RF frequency matches the local lower hybrid frequency; the condition at which the slow wave has a maximum in perpendicular wave number (perpendicular with respect to the applied magnetic field) due to a lower hybrid resonance. The ion temperatures also peak at the edge of the plasma where theory predicts the slow wave should have the largest amplitude and perpendicular wave number. Consistent with ion heating due to parametrically driven instabilities, parametrically driven low frequency waves are observed for the same conditions at which the ion temperatures 5 cm downstream of the RF antenna are largest. The measured characteristics of the low frequency wave suggest that the wave is an electrostatic ion acoustic wave. The electrostatic and electromagnetic features of the parametrically driven waves as a function of magnetic field and RF frequency are also presented and discussed.
机译:此处描述的实验的主要重点是确定造成螺旋源中固有离子加热的机理。已经确定了两种可能的机制:慢波的离子Landau阻尼和参数驱动的不稳定性。与慢波的离子Landau阻尼一致,当RF频率与本地较低的混合频率匹配时,RF天线下游35 cm处的垂直离子温度最高。由于较低的混合共振,慢波在垂直波数上最大(相对于所施加的磁场垂直)。离子温度也在等离子体的边缘处达到峰值,据理论,该边缘预测慢波应具有最大的振幅和垂直波数。与由于参数驱动的不稳定性引起的离子加热相一致,在相同条件下观察到参数驱动的低频波,在该条件下,RF天线下游5 cm处的离子温度最大。低频波的测量特性表明该波是静电离子声波。还介绍并讨论了参数驱动波的静电和电磁特性随磁场和RF频率的变化。

著录项

  • 作者

    Kline, John L.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

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