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Comprehensive control of resistive wall modes in DIII-D advanced tokamak plasmas

机译:DIII-D先进托卡马克等离子体中的电阻壁模式的综合控制

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The resistive wall mode (RWM) and neoclassical tearing mode (NTM) have been simultaneously suppressed in the DIII-D for durations of over 2 s at beta values 20% above the no-wall limit with modest electron cyclotron current drive and very low plasma rotation. The achieved plasma rotation was significantly lower than reported previously. However, in this regime where stable operation is obtained, it is not unconditionally guaranteed. Various MHD activities, such as edge localized modes (ELMs) and fishbones, begin to couple to the RWM branch near the no-wall limit; feedback has been useful in improving the discharge stability to such perturbations. Simultaneous operation of slow dynamic error field correction and fast feedback suppressed the pile-up of ELM-induced RWM at a series of ELM events. This result implies that successful feedback operation requires not only direct feedback against unstable RWM but also careful control of MHD-induced RWM aftermath, which is the dynamical response to a small-uncorrected error field near the no-wall beta limit. These findings are extremely useful in defining the challenge of control of the RWM and NTM in the unexplored physics territory of burning plasmas in ITER.
机译:在DIII-D中,在适度的电子回旋加速器电流驱动和非常低的等离子体下,在比无壁极限高20%的beta值下,DIII-D中的电阻壁模式(RWM)和新古典撕裂模式(NTM)被同时抑制了超过2 s的持续时间回转。实现的血浆旋转显着低于先前报道。但是,在这种获得稳定运行的状态下,并不能无条件地保证它。各种MHD活动(例如边缘局部模式(ELM)和鱼骨)开始在无墙限制附近耦合到RWM分支;反馈对于改善这种扰动的放电稳定性很有用。慢速动态误差场校正和快速反馈的同时运行抑制了一系列ELM事件中ELM引起的RWM的堆积。该结果表明,成功的反馈操作不仅需要针对不稳定的RWM的直接反馈,还需要对MHD引起的RWM后果进行仔细的控制,这是对无壁贝塔极限附近较小的未校正误差场的动态响应。这些发现对于确定ITER中燃烧等离子体的未探索物理领域中的RWM和NTM的控制挑战非常有用。

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