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Investigations of short-scale fluctuations in a helicon plasma by cross-correlation enhanced scattering

机译:通过互相关增强散射研究螺旋等离子体中的小尺度波动

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摘要

Correlation enhanced scattering (CES) near the upper hybrid resonance has been applied for studying small-scale plasma density fluctuations excited by the rf fields in a helicon discharge. The turbulent fluctuations are diagnosed for conditions where the electron plasma frequency exceeds the electron cyclotron frequency considerably. The frequency and wave number spectra of the fluctuations are measured both in the plasma core as well as in outer region of the helicon discharge. The spectral measurements evidence the short-scale fluctuations to originate from a parametric decay instability. The low-frequency fluctuations obey the ion-sound dispersion relation while the lower sideband of the helicon wave frequency satisfies the Trivelpiece-Gould wave dispersion relation. In order to gain more insight in the experimental results and, in particular, to estimate the fluctuation level the backscattering process is analyzed both numerically and analytically for high-density plasma conditions. A fully electromagnetic model was developed that takes into account the radial density distribution of the plasma column as well as the antenna diagram of the rectangular emitting/receiving horn. Using this model the relative amplitude of ion-sound density fluctuations in the core of the helicon discharge is estimated as 11%. The role of nonlinear effects on formation of the scattering spectra due to the high fluctuation level in the plasma center is discussed. The findings also demonstrate that the CES diagnostic can be applied to diagnose fluctuations in spherical tokamak plasmas where the probing conditions resemble those of high-density helicon discharges. (C) 2005 American Institute of Physics.
机译:上部混合共振附近的相关增强散射(CES)已用于研究由螺线管放电中的rf场激发的小尺度等离子体密度波动。对于电子等离子体频率大大超过电子回旋加速器频率的条件,可诊断出湍流涨落。在等离子体芯以及在螺旋放电的外部区域都测量了波动的频率和波谱。频谱测量结果表明,短尺度波动是由参数衰减不稳定性引起的。低频波动服从离子-声音色散关系,而螺旋波频率的下边带满足Trivelpiece-Gould波色散关系。为了更深入地了解实验结果,尤其是估计波动水平,针对高密度等离子体条件,对散射过程进行了数值和解析分析。建立了一个全电磁模型,该模型考虑了等离子体柱的径向密度分布以及矩形发射/接收喇叭的天线图。使用此模型,在螺线管放电的核心中离子声密度波动的相对幅度估计为11%。讨论了由于等离子体中心的高波动水平,非线性效应对散射光谱形成的作用。研究结果还表明,CES诊断可用于诊断球形托卡马克等离子体中的波动,其中探测条件类似于高密度螺线管放电的探测条件。 (C)2005美国物理研究所。

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