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Impact of helical boundary conditions on nonlinear 3D magnetohydrodynamic simulations of reversed-field pinch

机译:螺旋边界条件对反向场收缩的非线性3D磁流体动力学模拟的影响

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Helical self-organized reversed-field pinch (RFP) regimes emerge both numerically - in 3D visco-resistive magnetohydrodynamic (MHD) simulations - and experimentally, as in the RFX-mod device at high current (IP above 1 MA). These states, called quasi-single helicity (QSH) states, are characterized by the action of a MHD mode that impresses a quasi-helical symmetry to the system, thus allowing a high degree of magnetic chaos healing. This is in contrast with the multiple helicity (MH) states, where magnetic fluctuations create a chaotic magnetic field degrading the confinement properties of the RFP. This paper reports an extensive numerical study performed in the frame of 3D visco-resistive MHD which considers the effect of helical magnetic boundary conditions, i.e. of a finite value of the radial magnetic field at the edge (magnetic perturbation, MP). We show that the system can be driven to a selected QSH state starting from both spontaneous QSH and MH regimes. In particular, a high enough MP can force a QSH helical self-organization with a helicity different from the spontaneous one. Moreover, MH states can be turned into QSH states with a selected helicity. A threshold in the amplitude of MP is observed above which is able to influence the system. Analysis of the magnetic topology of these simulations indicates that the dominant helical mode is able to temporarily sustain conserved magnetic structures in the core of the plasma. The region occupied by conserved magnetic surfaces increases reducing secondary modes' amplitude to experimental-like values.
机译:螺旋自组织反向场收缩(RFP)机制在数字上-在3D粘滞磁流体动力学(MHD)模拟中-以及在实验中都出现,例如在高电流(IP高于1 MA)的RFX-mod装置中。这些状态称为准单螺旋(QSH)状态,其特征在于MHD模式的作用,该模式将准螺旋对称性强加给系统,因此可以实现高度的电磁混沌愈合。这与多重螺旋(MH)状态相反,在多重螺旋状态下,磁波动会产生混沌磁场,从而降低RFP的限制性能。本文报道了在3D粘滞MHD框架中进行的广泛数值研究,该研究考虑了螺旋磁边界条件的影响,即边缘处径向磁场的有限值(磁扰动,MP)的影响。我们表明,系统可以从自发的QSH和MH机制开始被驱动到选定的QSH状态。特别是,足够高的MP可以强制QSH螺旋自组织,其螺旋度不同于自发螺旋。此外,可以将MH状态转换为具有选定螺旋度的QSH状态。观察到MP振幅阈值以上,该阈值能够影响系统。对这些模拟的磁拓扑的分析表明,优势螺旋模式能够暂时维持等离子体核心中的保守磁结构。守恒的磁性表面占据的区域增加,从而将次级模式的振幅减小到类似实验的值。

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