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Equilibrium and global MHD stability study of KSTAR high beta plasmas under passive and active mode control

机译:被动和主动模式控制下KSTAR高β等离子体的平衡和全局MHD稳定性研究

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The Korea Superconducting Tokamak Advanced Research, KSTAR, is designed to operate a steady-state, high beta plasma while retaining global magnetohydrodynamic (MHD) stability to establish the scientific and technological basis of an economically attractive fusion reactor. An equilibrium model is established for stability analysis of KSTAR. Reconstructions were performed for the experimental start-up scenario and experimental first plasma operation using the EFIT code. The VALEN code was used to determine the vacuum vessel current distribution. Theoretical high beta equilibria spanning the expected operational range are computed for various profiles including generic L-mode and DIII-D experimental H-mode pressure profiles. Ideal MHD stability calculations of toroidal mode number of unity using the DCON code shows a factor of 2 improvement in the wall-stabilized plasma beta limit at moderate to low plasma internal inductance. The planned stabilization system in KSTAR comprises passive stabilizing plates and actively cooled in-vessel control coils (IVCCs) designed for non-axisymmetric field error correction and stabilization of slow timescale MHD modes including resistive wall modes (RWMs). VALEN analysis using standard proportional gain shows that active stabilization near the ideal wall limit can be reached with feedback using the midplane segment of the IVCC. The RMS power required for control using both white noise and noise taken from NSTX active stabilization experiments is computed for beta near the ideal wall limit. Advanced state-space control algorithms yield a factor of 2 power reduction assuming white noise while remaining robust with respect to variations in plasma beta.
机译:韩国超导托卡马克高级研究机构KSTAR旨在运行稳态高β等离子体,同时保持全球磁流体动力学(MHD)稳定性,从而为经济上有吸引力的聚变反应堆奠定科学和技术基础。建立了用于KSTAR稳定性分析的平衡模型。使用EFIT代码对实验启动方案和实验首次等离子体操作进行了重建。 VALEN代码用于确定真空容器的电流分布。针对各种曲线(包括通用L模式和DIII-D实验H模式压力曲线)计算了跨越预期工作范围的理论高β平衡。使用DCON代码对环模数的理想MHD稳定性计算表明,在中等至低等离子内部电感的情况下,壁稳定的等离子β极限提高了2倍。 KSTAR计划中的稳定系统包括被动稳定板和主动冷却的船内控制线圈(IVCC),这些线圈设计用于非轴对称场误差校正和稳定慢时标MHD模式(包括电阻墙模式(RWM))。使用标准比例增益进行的VALEN分析表明,通过使用IVCC的中平面部分进行反馈,可以达到理想壁厚附近的主动稳定。对于β接近理想壁极限的情况,计算了使用白噪声和NSTX主动稳定实验获得的噪声进行控制所需的RMS功率。假设白噪声,先进的状态空间控制算法可将功率降低2倍,同时针对血浆β的变化保持鲁棒性。

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