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Toroidal modeling of plasma response and resonant magnetic perturbation field penetration

机译:等离子体响应和共振磁微扰场穿透的环形建模

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摘要

The penetration dynamics of the resonant magnetic perturbation (RMP) field is simulated in the full toroidal geometry, under realistic plasma conditions in MAST experiments. The physics associated with several aspects of the RMP penetration - the plasma response and rotational screening, the resonant and non-resonant torques and the toroidal momentum balance - are highlighted. In particular, the plasma response is found to significantly amplify the non-resonant component of the RMP field for some of the MAST plasmas. A fast rotating plasma, in response to static external magnetic fields, experiences a more distributed electromagnetic torque due to the resonance with continuum waves in the plasma. At fast plasma flow (such as for the MAST plasma), the electromagnetic torque is normally dominant over the neoclassical toroidal viscous (NTV) torque. However, at sufficiently slow plasma flow, the NTV torque can play a significant role in the toroidal momentum balance, thanks to the precession drift resonance enhanced, so-called superbanana plateau regime.
机译:在实际的等离子体条件下,在MAST实验中,在完整的环形几何体中模拟了共振磁扰动(RMP)场的穿透动力学。重点介绍了与RMP渗透的几个方面相关的物理过程-等离子体响应和旋转筛选,共振和非共振转矩以及环形动量平衡。特别是,对于某些MAST血浆,发现血浆反应会显着放大RMP场的非共振成分。响应于静态外部磁场,快速旋转的等离子体由于等离子体中连续波的共振而经受分布更广的电磁转矩。在快速血浆流动时(例如对于MAST血浆),电磁转矩通常比新古典环形粘度(NTV)转矩占主导地位。但是,在足够慢的血浆流量下,由于进动漂移共振增强(所谓的超级香蕉平稳状态),NTV扭矩可以在环形动量平衡中发挥重要作用。

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