Influence of trapped thermal particles on internal kink modes in high temperature tokamaks

T. Antonsen, A. Bondeson
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引用次数: 14

Abstract

The effects of thermal trapped particles on the n=1 internal kink mode are studied using drift kinetic theory. Strong modifications of the magnetohydrodynamic (MHD) results are found, and marginal stability generally occurs at nonzero rotation frequency. For equal electron and ion temperatures, the trapped particles increase the marginal poloidal beta at q=1 substantially above the MHD value. For unequal electron and ion temperatures, the drift resonance with the hotter species becomes increasingly destabilizing and for sufficiently unequal temperatures, this leads to instability below the ideal‐MHD threshold. Treatment of trapped thermal particles requires consideration of the effects of an electrostatic potential. The potential is weakly stabilizing for the internal kink mode. Furthermore, finite beta couples unstable, nearly electrostatic, trapped particle modes to the internal kink mode. At high beta, thermal fluctuations of the trapped particle modes can lead to significant internal kink displacements.
高温托卡马克中捕获热粒子对内部扭结模式的影响
利用漂移动力学理论研究了热捕获粒子对n=1内扭结模式的影响。发现磁流体力学(MHD)结果有很强的修正,边缘稳定性通常发生在非零旋转频率。当电子和离子温度相等时,捕获粒子使q=1处的边际极向β大大高于MHD值。对于不相等的电子和离子温度,与较热物质的漂移共振变得越来越不稳定,对于足够不相等的温度,这导致不稳定低于理想- MHD阈值。对捕获热粒子的处理需要考虑静电势的影响。内部扭结模式的电位是弱稳定的。此外,有限β将不稳定的、近静电的、捕获的粒子模式耦合到内部扭结模式。在高β时,捕获粒子模式的热波动会导致显著的内部扭结位移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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