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A cylindrical model for rotational MHD instabilities in aluminum reduction cells

机译:铝电解槽中旋转MHD不稳定性的圆柱模型

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Large-scale horizontal vortices associated with deformations of the aluminum-electrolyte interface have been observed in operating aluminum reduction cells as well as in physical and numerical models. To expose their importance, we analyze a particular class of magnetohydrodynamic (MHD) interfacial instabilities which are induced by rotation. As we focus on a single vortex, a cylindrical geometry is preferred. Two analytical models are proposed. In a first model based on the MHD shallow-water approximation, we consider a vortex that has a solid rotation profile to obtain a wave equation and a dispersion relation. A more realistic second model includes a viscous rotation profile and the treatment of the base-state interface deformation. Energetics of the flow gives further insight on how an initial perturbation evolves as an oscillatory or a non-oscillatory instability, depending on the direction of rotation. We find that the mechanism at the very origin of these instabilities is neither due to a shear between the two layers—and are therefore not Kelvin–Helmholtz instabilities—nor simply due to magnetic force alone, but rather to the indirect action of the centripetal pressure due to the rotation induced by magnetic force.
机译:在运行的铝还原池以及物理和数值模型中,已经观察到与铝-电解质界面变形相关的大规模水平涡旋。为了揭示其重要性,我们分析了由旋转引起的一类特殊的磁流体动力学(MHD)界面不稳定性。由于我们专注于单个涡旋,因此首选圆柱几何形状。提出了两种分析模型。在基于MHD浅水近似的第一个模型中,我们考虑具有坚实旋转轮廓的涡流以获得波动方程和色散关系。更现实的第二个模型包括粘性旋转曲线和基态界面变形的处理。流动的能量学进一步揭示了初始扰动如何随着振荡或非振荡不稳定而演变,具体取决于旋转方向。我们发现,这些不稳定性的起因既不是由于两层之间的剪切所致,也不是开尔文-亥姆霍兹不稳定性所致,也不是仅仅由于磁力而引起的,而是归因于向心压力的间接作用由于磁力引起的旋转。

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