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Modelling of the penetration process of externally applied helical magnetic perturbation of the DED on the TEXTOR tokamak

机译:在TEXTOR托卡马克上对DED外部施加的螺旋磁扰​​动的穿透过程进行建模

摘要

The error-field penetration process of the dynamic ergodic divertor (DED) on the TEXTOR tokamak has been investigated analytically in terms of a single fluid MHD model with a finite plasma resistivity and viscosity in a cylindrical geometry. The linear model produces a localization of the induced current at the resonance surface and predicts a vortex structure of the velocity field near the resonance layer. Moreover, effects of the Alfven resonance for the error-field penetration are identified by two peaks in the radial profiles of the perturbed toroidal current and the perturbed magnetic flux when the relative rotation velocity between the DED and the rotating tokamak plasma is set to large. Fine structures of the vorticity induced by the DED in the vicinity of the rational surface disappear by introducing a finite plasma perpendicular viscosity. In addition, it is shown that the two peaks of the perturbed toroidal current overlap by an anomalous plasma perpendicular viscosity. Likewise, a bifurcation of the penetration process from the suppressed to the excited state is obtained by a quasi-linear approach taking into account modifications of the radial profiles of the equilibrium current and the plasma rotation due to the DED. A comparison with real experimental results of the DED on the TEXTOR tokamak is shown.
机译:已经对动态流体遍历偏滤器(DED)在TEXTOR tokamak上的误差场穿透过程进行了分析,并根据圆柱几何形状中具有有限等离子体电阻率和粘度的单个流体MHD模型进行了分析。线性模型在共振表面产生感应电流的局部化,并预测共振层附近速度场的涡旋结构。此外,当DED和旋转的托卡马克等离子体之间的相对旋转速度设置为较大时,通过扰动的环流和扰动的磁通量的径向轮廓中的两个峰可以确定Alfven共振对误差场穿透的影响。通过引入有限的等离子体垂直粘度,DED在合理表面附近引起的涡旋的精细结构消失了。另外,示出了被摄动的环形电流的两个峰由于异常的等离子体垂直粘度而重叠。同样,通过准线性方法,考虑到平衡电流的径向轮廓的修改和由于DED引起的等离子体旋转,可以实现从抑制状态到激发状态的穿透过程的分叉。显示了与TEXTOR托卡马克上DED的真实实验结果的比较。

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