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A double-ring algorithm for modeling solar active regions : unifying kinematic dynamo models and surface flux-transport simulations.

机译:用于模拟太阳活动区域的双环算法:统一的运动发电机模型和表面通量传输模拟。

摘要

The emergence of tilted bipolar active regions (ARs) and the dispersal of their flux, mediated via processes such as diffusion, differential rotation, and meridional circulation, is believed to be responsible for the reversal of the Sun's polar field. This process (commonly known as the Babcock-Leighton mechanism) is usually modeled as a near-surface, spatially distributed α-effect in kinematic mean-field dynamo models. However, this formulation leads to a relationship between polar field strength and meridional flow speed which is opposite to that suggested by physical insight and predicted by surface flux-transport simulations. With this in mind, we present an improved double-ring algorithm for modeling the Babcock-Leighton mechanism based on AR eruption, within the framework of an axisymmetric dynamo model. Using surface flux-transport simulations, we first show that an axisymmetric formulation—which is usually invoked in kinematic dynamo models—can reasonably approximate the surface flux dynamics. Finally, we demonstrate that our treatment of the Babcock-Leighton mechanism through double-ring eruption leads to an inverse relationship between polar field strength and meridional flow speed as expected, reconciling the discrepancy between surface flux-transport simulations and kinematic dynamo models.
机译:倾斜的双极有源区(ARs)的出现和通量的扩散(通过扩散,差分旋转和子午环流等过程介导)被认为是造成太阳极性反转的原因。在运动学平均场发电机模型中,通常将此过程(通常称为Babcock-Leighton机制)建模为近表面,空间分布的α效应。但是,这种公式导致极场强度和子午流速度之间的关系,这与物理见解和表面通量传输模拟所预测的相反。考虑到这一点,我们提出了一种改进的双环算法,用于在轴对称发电机模型的框架内对基于AR爆发的Babcock-Leighton机制进行建模。使用表面通量传输模拟,我们首先表明,通常在运动学发电机模型中调用的轴对称公式可以合理地近似表面通量动力学。最后,我们证明了通过双环喷发对Babcock-Leighton机制的处理导致极场强度与子午流速之间的反比关系,这与表面磁通量传输模拟和运动动力学模型之间的差异相符。

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