低罗斯比数和磁普朗特数下对流驱动的运动学发电机

M. Calkins, Louie Long, D. Nieves, K. Julien, S. Tobias
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引用次数: 17

摘要

大多数大尺度行星磁场被认为是由低磁普朗特数流体的低罗斯比数对流驱动的。本文研究了低磁普朗特数平面几何层的渐近快速旋转发电机模型。热普朗特数和瑞利数是变化的,以说明流动形式的基本变化,范围从层流细胞对流到地转湍流,其中存在逆能量级联。由于浮力的增加,产生发电机的对流效率降低,这是由临界磁雷诺数的增加所决定的。这种效率的下降可能是由于与所产生的日益无序的流动状态相关的相关性的丧失,以及边界层行为增强了局部磁扩散。我们发现$\alpha$的空间特征,以及大尺度磁场,仅对流动行为的变化有微弱的依赖性。然而,我们的结果仅限于线性的、运动的发电机体制,因此,未来的模拟包括洛伦兹力是必要的,以评估这一结果的鲁棒性。与大尺度磁场相反,小尺度磁场的行为直接依赖于小尺度对流流场,因此与小尺度对流流场表现出显著的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Convection-driven kinematic dynamos at low Rossby and magnetic Prandtl numbers
Most large-scale planetary magnetic fields are thought to be driven by low Rossby number convection of a low magnetic Prandtl number fluid. Here kinematic dynamo action is investigated with an asymptotic, rapidly rotating dynamo model for the plane layer geometry that is intrinsically low magnetic Prandtl number. The thermal Prandtl number and Rayleigh number are varied to illustrate fundamental changes in flow regime, ranging from laminar cellular convection to geostrophic turbulence in which an inverse energy cascade is present. A decrease in the efficiency of the convection to generate a dynamo, as determined by an increase in the critical magnetic Reynolds number, is observed as the buoyancy forcing is increased. This decreased efficiency may result from both the loss of correlations associated with the increasingly disordered states of flow that are generated, and boundary layer behavior that enhances magnetic diffusion locally. We find that the spatial characteristics of $\alpha$, and thus the large-scale magnetic field, is dependent only weakly on changes in flow behavior. However, our results are limited to the linear, kinematic dynamo regime, and future simulations including the Lorentz force are therefore necessary to assess the robustness of this result. In contrast to the large-scale magnetic field, the behavior of the small-scale magnetic field is directly dependent on, and therefore shows significant variations with, the small-scale convective flow field.
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