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Inter-machine comparison of intrinsic toroidal rotation in tokamaks

机译:托卡马克中固有环形旋转的机器间比较

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Parametric scalings of the intrinsic (spontaneous, with no external momentum input) toroidal rotation observed on a large number of tokamaks have been combined with an eye towards revealing the underlying mechanism(s) and extrapolation to future devices. The intrinsic rotation velocity has been found to increase with plasma stored energy or pressure in JET, Alcator C-Mod, Tore Supra, DⅢ-D, JT-60U and TCV, and to decrease with increasing plasma current in some of these cases. Use of dimensionless parameters has led to a roughly unified scaling with M_A ∝ β_n, although a variety of Mach numbers works fairly well; scalings of the intrinsic rotation velocity with normalized gyro-radius or collisionality show no correlation. Whether this suggests the predominant role of MHD phenomena such as ballooning transport over turbulent processes in driving the rotation remains an open question. For an ITER discharge with β_N = 2.6, an intrinsic rotation Alfven Mach number of M_A approx= 0.02 may be expected from the above deduced scaling, possibly high enough to stabilize resistive wall modes without external momentum input.
机译:在大量的托卡马克上观察到的固有(自发的,没有外部动量输入)环形旋转的参数定标已经结合了揭示潜在机制和外推到未来设备的眼光。在某些情况下,已经发现在JET,Alcator C-Mod,Tore Supra,DⅢ-D,JT-60U和TCV中,固有转速随等离子体存储的能量或压力而增加,并随等离子体电流的增加而降低。使用无量纲参数导致了M_A ∝β_n的大致统一缩放,尽管各种Mach数工作得很好。固有旋转速度与归一化陀螺半径或碰撞度的比例关系没有相关性。这是否暗示了MHD现象的主要作用,例如在驱动旋转的过程中通过湍流进行热气球运输仍然是一个悬而未决的问题。对于β_N= 2.6的ITER放电,根据上述推导比例,可以预期M_A的固有旋转Alfven Mach数= 0.02,可能足够高,以稳定电阻壁模式而无需外部动量输入。

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