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A four-field gyrofluid model with neoclassical effects for the study of the rotation velocity of magnetic islands in tokamaks

机译:一种四场陀螺流体模型,具有新古典效应的磁岛磁岛旋转速度研究

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A four-field system of equations which includes the neoclassical flow damping effects and the lowestorder finite-Larmor-radius (FLR) corrections is deduced from a system of gyrofluid equations. The FLR corrections to the poloidal flow damping are calculated by solving a simplified version of the gyrokinetic equation. This system of equations is applied to the study of a chain of freely rotating magnetic islands in a tokamak, resulting from the nonlinear evolution of a resistive tearing mode, to determine the island rotation velocity consistently with the fields' radial profiles close to the resonant surface. The island rotation velocity is determined by imposing the torque balance condition. The equations thus deduced are applied to the study of two different collisionality regimes, namely the weak-damping regime and the intermediate-damping regime. The equations reduce, in the weakdamping regime, to a form already obtained in previous works, while an additional term, containing the lowest order FLR corrections to the poloidal flow damping, appears in the intermediate-damping regime. The numerical integration of the final system of equations allows the determination of the dependence of the island rotation velocity on the plasma collisionality and the island width compared to the ion Larmor radius. The results show that, in the intermediate-damping regime, the island rotation velocity is almost completely determined by the neoclassical effects, with the island width playing a minor role. The parameter η_i=Ln=L_T, where L_n and L_T are the density and temperature gradient length scales, plays an important role in determining the island rotation velocity.
机译:方程组的一个四场系统,其包括新古典流动阻尼效果和最低阶有限拉莫尔半径(FLR)校正从gyrofluid方程系统推导出。所述FLR更正极向流动阻尼通过求解方程gyrokinetic的简化版本计算。该方程组被施加到自由转动的托卡马克磁岛,从电阻性撕裂模的非线性发展引起的链的研究,至接近确定岛旋转速度始终与字段径向分布到谐振表面。岛旋转速度由施加转矩平衡条件来确定。由此推导出的方程被施加到两个不同的碰撞性机制,即弱阻尼制度和阻尼中间制度的研究。方程减少,在weakdamping制度,以便在先前的工作已经获得的形式,而一个附加项,含有最低阶FLR更正极向流动阻尼,出现在阻尼中间制度。方程的最终系统的数值积分允许在等离子体碰撞性岛旋转速度和岛相比,离子半径拉莫尔宽度的依赖性的判定。结果表明,在阻尼中间制度,岛旋转速度几乎完全被新古典效果宽度发挥次要作用来确定,与岛。参数η_i= LN = L_T,其中L_N和L_T是密度和温度梯度的长度尺度,在确定岛旋转速度中起重要作用。

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