论文标题

街机配置中多线程突出的动态形成

Dynamic formation of multi-threaded prominences in arcade configurations

论文作者

Jerčić, V., Keppens, R.

论文摘要

通过这项研究,我们旨在了解受隆起的性质,并受其形成过程的控制。我们在倾斜的磁场内使用最先进的螺纹突出模型。使用开源MPI-AMRVAC MHD工具包解决了非理想的磁性水力学(MHD)方程。与许多以前的1D模型不同,我们研究了固定形街机中的完整2D动力学。这允许侧向场变形和跨场热力学耦合。为了实现现实的设置,我们考虑了现场对齐的热传导,辐射冷却和加热,其中后者结合了稳定的背景和局部随机分量。随机分量模拟了在磁场脚下的时间和空间中定位的能量脉冲。我们改变了局部加热的高度和幅度,并观察它如何影响突出性,线程和整体动态。我们显示了随机局部加热在突出的演变及其螺纹结构中的重要性。随机加热强烈影响突出螺纹结构,区域,螺纹到达的质量,最低温度和平均密度的形态。更重要的是,局部加热的强度在维持凝结与排水之间的平衡方面起着作用,从而影响一般的突出稳定性。更强大的来源形成凝结的速度更快,并导致更大,更大的突出。我们展示了如何与加热输入的幅度缩放缩放率,并量化这些速率与观测值的值如何匹配。我们详细介绍了随机来源如何确定突出线的反流动流和振荡。

With this study, we aim to understand the nature of prominences, governed by their formation process. We use a state-of-the-art threaded prominence model within a dipped magnetic arcade. The non-ideal magnetohydrodynamic (MHD) equations are solved using the open-source MPI-AMRVAC MHD toolkit. Unlike many previous 1D models, we study the full 2D dynamics in a fixed-shaped arcade. This allows for sideways field deformations and cross-field thermodynamic coupling. To achieve a realistic setup we consider field-aligned thermal conduction, radiative cooling and heating, wherein the latter combines a steady background and a localized stochastic component. The stochastic component simulates energy pulses localized in time and space at the footpoints of the magnetic arcade. We vary the height and amplitude of the localized heating and observe how it influences the prominence, its threads, and its overall dynamics. We show the importance of random localized heating in the evolution of prominences and their threaded structure. Random heating strongly influences the morphology of the prominence threaded structure, the area, the mass the threads reach, their minimum temperature and their average density. More importantly, the strength of the localized heating plays a role in maintaining the balance between condensation and draining, affecting the general prominence stability. Stronger sources form condensations faster and result in larger and more massive prominences. We show how the condensation rates scale with the amplitude of the heating inputs and quantify how these rates match with values from observations. We detail how stochastic sources determine counterstreaming flows and oscillations of prominence threads.

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