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Origin and evolution of spontaneous rotation in plasma under different magnetic field geometry in Tokamak quest

机译:不同磁场几何在托卡哈克任务下血浆自发旋转的起源和演变

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In ITER and future fusion reactors, intrinsic rotation will play a key role in stabilizing large scale instabilities, formation of transport barriers and reduction of divertor heat flux in the absence of significant NBI induced rotation at high injection energy. In order to utilize such intrinsic rotation property of plasma for the beneficial of a fusion grade reactors, one must understand the origin and external controlling parameters of this rotation dynamics. ECRH being one of the most indispensible and flexible heating device in tokamak, remains an attractive choice to initiate such rotations. In this paper we describe the spontaneous toroidal rotation of plasma in spherical tokamak QUEST with the help of ECRH. Several vertical magnetic field (B) configurations with varying mirror ratio (M) [1] (a measure of field curvature) is applied and evolution of rotation is studied with the help of Doppler spectroscopy of bulk and impurity ions. Significant toroidal rotation (V ~ 20 km/s) is initiated in the open magnetic field configuration even in the initial plasma breakdown phase, which is later sustained in closed magnetic field configuration in the steady state. Rotation velocity is primarily along co-current direction and is proportional to the B strength and resulting plasma current. High M and B are demonstrated to be two specific external controls by which, rotation can be initiated in plasma. Response to external gas puff perturbation is investigated as a function of density and transient rotation reversal from co to counter current direction is observed. Rotation dynamics is studied in several different equilibrium configurations like limiter, single null and natural divertor IPN equilibrium [2] in QUEST and the details will be presented in this paper
机译:在ITER和未来的聚变反应堆,内在旋转将在稳定大规模的不稳定性,在形成的交通障碍和在高喷射能量缺乏显著NBI引起的旋转的偏滤器减少热通量的关键作用。为了利用等离子体为有益的融合级反应器,例如本征旋转属性,必须了解这个转动动力学的起源和外部控制参数。 ECRH是托卡马克的最不可缺少的,灵活的加热装置之一,仍然是一个有吸引力的选择来发起这种旋转。在本文中,我们描述与ECRH的帮助下球形托卡马克等离子体QUEST的自发环向旋转。几个垂直磁场(B)具有不同镜比(M)[1](场曲的度量)的配置被施加并旋转的进化研究了体积和杂质离子的多普勒波谱的帮助。显著环向旋转(V约20公里/秒)在即使在初始等离子体击穿阶段的开放磁场配置中,这将在后面持续在闭合磁场结构在稳定状态下启动。旋转速度是主要沿着顺流方向和正比于乙强度和产生的等离子体电流。高M和B被证明是两个具体的外部控制由,旋转可以在等离子体被启动。响应于外部气体喷扰动研究作为从共密度和瞬时反向转动的一个函数来逆流方向观察。转动动力学进行了研究在几个不同的平衡构象限制器,单零和自然偏滤器IPN平衡[2]在QUEST和细节将在本文被呈现

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