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Density depletion caused by thermal instability in the electron cyclotron resonance heating plasmas

机译:由电子回旋共振加热等离子体中的热不稳定性引起的密度损耗

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Summary form only given. An unexpected electron density depletion was observed in experiments involving electron cyclotron heating (ECH) of toroidal devices. Both the horizontal and vertical line average density decreased by approximately 15% during the heating pulse period. This was an anomalously large value since the empirical transport code calculations predicted only a 2% decrease in the line average density. A thermal instability is proposed to explain the anomalous electron density depletion. Considering the fact that the background plasma has an elevated electron temperature and a localized heat source located near the electron cyclotron resonance layer, it is shown that density striations having a scale length electron cyclotron resonance 10 cm and larger can be excited via the thermal instability. The amplitude of the striations can grow by more than one e-folding during a 10 ms ECH pulse, which causes about 50% electron temperature elevation. An 1% temperature fluctuation excited by the thermal instability leads to about a 20 V/m fluctuation. Such a large electrostatic field can effectively cause anomalous plasma diffusion via E/spl I.oarr/ /spl times/ B/spl I.oarr/ drift and account for the observed 15% electron density depletion.
机译:仅提供摘要表格。在涉及环形装置的电子回旋加速器加热(ECH)的实验中观察到了意外的电子密度损耗。在加热脉冲期间,水平线和垂直线的平均密度都降低了约15%。这是一个异常大的值,因为经验传输代码计算预测线平均密度仅降低2%。提出了一种热不稳定性来解释异常的电子密度损耗。考虑到背景等离子体具有升高的电子温度和位于电子回旋共振层附近的局部热源这一事实,显示出可以通过热不稳定性激发具有标尺长度的电子回旋共振10cm以上的密度条纹。在10 ms ECH脉冲期间,条纹的幅度可能会通过多个电子折叠而增长,这会导致电子温度升高约50%。由热不稳定性引起的1%的温度波动会导致约20 V / m的波动。如此大的静电场可通过E / spl I.arr // spl次/ B / spl I.arr /漂移有效地引起异常的等离子体扩散,并占观察到的15%的电子密度损耗。

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