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ICRH of JET and LHD Majority Ions at Their Fundamental Cyclotron Frequency

机译:ICRH Jet和LHD大多数离子在其基本的回旋频

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Results of the experimental studies of ICRH at the fundamental cyclotron frequency of the majority deuterons in JET plasmas with near-tangential deuteron neutral beam injection (NBI) are presented. 1D, 2D and 3D ICRH modeling indicated that several ITER relevant mechanisms of heating may occur simultaneously in this heating scheme: fundamental ion cyclotron resonance heating of majority and beam D ions, impurity ion heating and electron heating due to Landau damping and TTMP. These mechanisms were studied in JET experiments with a ~90% D, 5% H plasma including traces of Be and Ar. Up to 2MW of ICRH power was applied at 25 MHz to NBI heated plasmas. In most of the discharges the toroidal magnetic field strength was 3.3T, but in one it was equal to 3.6T. The E+ component of the electric field governs the ion cyclotron heating of not too fast particles. The Doppler shifted RF absorption of the beam deuterons away from the cold resonance at which E+ is small was exploited to enhance the RF power absorption efficiency. Fundamental ICRH experiments were also carried out in LHD hydrogen plasma with high energy hydrogen NBI. ICRH was performed at 38MHz with injected power <1 MW. The effect of fundamental ICRH was clearly demonstrated in both machines.
机译:介绍了ICRH在射流等离子体中大多数氘核的基本回旋频的实验研究的结果,临时切向氘核中性光束注射(NBI)。图1D,2D和3D ICRH建模表明,在该加热方案中可以同时发生几个加热机制:多数和梁D离子的基本离子回旋谐振加热,由于Landau阻尼和TTMP引起的杂波加热和电子加热。在喷射实验中研究了这些机制,其中〜90%D,5%H等离子体,包括BE和Ar的痕迹。在25 MHz到NBI加热的等离子体中,高达2MW的ICRH电源。在大多数放电中,环形磁场强度为3.3T,但在一个等于3.6t时。电场的E +分量控制不太快粒子的离子回旋加热。多普勒移位梁氘的RF吸收远离e +小的冷振,被利用,以提高RF功率吸收效率。基本的ICRH实验也在LHD氢等离子体中进行高能量氢气NBI进行。 ICRH以38MHz进行,注入功率<1 MW。两种机器都清楚地证明了基础ICRH的效果。

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