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High frequency fast wave current drive for DEMO

机译:用于演示的高频快速波电流驱动器

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A steady-state tokamak reactor (SSTR) requires a high efficiency current drive system, from plug to driven mega-amps. RF systems working in the ion-cyclotron range of frequencies (ICRF) have high efficiency from plug to antenna but a limited current drive (CD) efficiency and centrally peaked CD profiles. The latter feature is not adequate for a SSTR where the current should be sufficiently broad to keep the central safety factor (possibly significantly) above 1. In addition, the fact that the fast wave (FW) is evanescent at the edge limits coupling, requiring high voltage operation, which makes the system dependent on plasma edge properties and prone to arcing, reducing its reliability. A possible way to overcome these weaknesses is to operate at higher frequency (10 times or more the cyclotron frequency). The advantages are: (1) The coupling can be much better (waves propagate in vacuum) if the parallel refractive index n_(//) is kept below one, (2) The FW group velocity tends to align to the magnetic field, so the power circumnavigates the magnetic axis and can drive off-axis current, (3) Due to the latter property, n_(//) can be upshifted along the wave propagation path, allowing low n_(//) launch (hence good coupling, large CD efficiency) with ultimately good electron absorption (which requires higher n_(//)). Note however that the n_(//) upshift is a self-organized feature, that electron absorption is in competition with alpha-particle absorption and that uncoupling of the FW from the lower hybrid resonance at the edge requires n_(//) slightly above one. The latter possibly counterproductive features might complicate the picture. The different aspects of this potentially attractive off-axis FWCD scheme are discussed.
机译:稳态托卡马克反应堆(SSTR)需要高效率的电流驱动系统,从插头到从动兆安培。在频率(ICRF)的离子回旋加速器范围工作的RF系统具有高的效率从插头向天线,但有限的电流驱动器(CD)的效率和中心峰CD谱。后一特征是不足够用于SSTR其中电流应足够宽,以保持上述1中央安全因子(可能显著)此外,以下事实:快波(FW)是倏逝在边缘限制联接,要求高电压操作,这使得该系统依赖于等离子体边缘特性和容易出现电弧放电,从而降低其可靠性。克服这些缺点的一种可能的方法是在较高的频率(10倍或更多的回旋频率)进行操作。其优点是:(1)耦合可以是更好的(波在真空中传播)如果并行折射率n _(//)保持低于一个,(2)的FW群速度趋于对准于磁场,所以功率环绕所述磁轴,并且可以驱除轴电流,(3)由于后一特性,正_(//)可沿着波传播路径升档,允许低电平_(//)发射(因此良好的耦合,大CD效率)与最终良好电子吸收(这需要高出n _(//))。然而要注意第n _(//)升档的自组织特征,即电子吸收与α粒子吸收竞争和从边缘处的下混合共振的FW的脱开需要n _(//)略高于一。后者可能适得其反功能可能使情况复杂。这种潜在的有吸引力的离轴FWCD方案的不同方面进行了讨论。

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