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Observations of rotation in JET plasmas with electron heating by ion cyclotron resonance heating

机译:利用离子回旋加速共振加热电子加热JET等离子体的旋转观察

摘要

The rotation of L-mode plasmas in the JET tokamak heated by waves in the ion cyclotron range of frequencies (ICRF) damped on electrons, is reported. The plasma in the core is found to rotate in the counter-current direction with a high shear and in the outer part of the plasma with an almost constant angular rotation. The core rotation is stronger in magnitude than observed for scenarios with dominating ion cyclotron absorption. Two scenarios are considered: the inverted mode conversion scenarios and heating at the second harmonic He-3 cyclotron resonance in H plasmas. In the latter case, electron absorption of the fast magnetosonic wave by transit time magnetic pumping and electron Landau damping (TTMP/ELD) is the dominating absorption mechanism. Inverted mode conversion is done in (He-3)-H plasmas where the mode converted waves are essentially absorbed by electron Landau damping. Similar rotation profiles are seen when heating at the second harmonic cyclotron frequency of He-3 and with mode conversion at high concentrations of He-3. The magnitude of the counter-rotation is found to decrease with an increasing plasma current. The correlation of the rotation with the electron temperature is better than with coupled power, indicating that for these types of discharges the dominating mechanism for the rotation is related to indirect effects of electron heat transport, rather than to direct effects of ICRF heating. There is no conclusive evidence that mode conversion in itself affects rotation for these discharges.
机译:据报道,在JET托卡马克中,L型等离子体的旋转受电子回旋的离子回旋加速器频率范围(ICRF)内的波加热。发现芯中的等离子体在高剪切下沿逆流方向旋转,而在等离子体的外部则以几乎恒定的角旋转旋转。核心旋转的强度要比离子回旋加速器占主导的情况下观察到的强度大。考虑了两种情况:倒模转换情况和H等离子体中二次谐波He-3回旋加速器共振的加热。在后一种情况下,主要的吸收机理是通过瞬变时间的磁泵浦和电子Landau阻尼(TTMP / ELD)吸收快速磁声波。倒模转换是在(He-3)-H等离子体中完成的,其中模转换波基本上被电子Landau阻尼吸收。当在He-3的二次谐波回旋加速器频率下加热并且在He-3的高浓度下进行模式转换时,可以看到类似的旋转曲线。发现反向旋转的幅度随着等离子体电流的增加而减小。旋转与电子温度的相关性要好于耦合功率,这表明对于这些类型的放电,旋转的主要机制与电子传热的间接作用有关,而不是与ICRF加热的直接作用有关。没有确凿证据表明模式转换本身会影响这些放电的旋转。

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