论文标题
模拟表明,涡流流可以在太阳能中加热染色器
Simulations Show that Vortex Flows could Heat the Chromosphere in Solar Plage
论文作者
论文摘要
涡流在不同的空间尺度上流动的关系及其对染色层能量平衡的贡献尚未完全了解。我们使用穆拉姆代码对单极太阳斑点区域进行了三维(3D)辐射 - 磁性水动力学(MHD)模拟,使用Muram代码在10 km的空间分辨率下进行。我们使用主要检测仿真数据中最小的涡旋的旋转强度标准。我们还会降低模拟数据以平滑较小的涡旋,因此也可以检测到较大的空间尺度的涡旋。在我们的仿真数据中发现了各种空间尺度的涡流流,以实现不同的有效空间分辨率。我们得出的结论是,观察到的大涡流可能是尚未通过观察结果解决的较小涡流的簇。我们表明,垂直po循环磁通量随着有效的空间分辨率降低而迅速减少,并且主要由水平等离子体运动而不是垂直流动。由于小规模的水平运动或较小的涡度带有大部分能量,因此从低分辨率数据推导的涡流传输的能量被严重低估。在完整的分辨率模拟数据中,由于涡流引起的泛滥贡献足以补偿材料中的辐射损失,这表明它们对色层加热的重要性。
The relationship between vortex flows at different spatial scales and their contribution to the energy balance in the chromosphere is not yet fully understood. We perform three-dimensional (3D) radiation-magnetohydrodynamic (MHD) simulations of a unipolar solar plage region at a spatial resolution of 10 km using the MURaM code. We use the swirling-strength criterion that mainly detects the smallest vortices present in the simulation data. We additionally degrade our simulation data to smooth-out the smaller vortices, so that also the vortices at larger spatial scales can be detected. Vortex flows at various spatial scales are found in our simulation data for different effective spatial resolutions. We conclude that the observed large vortices are likely clusters of much smaller ones that are not yet resolved by observations. We show that the vertical Poynting flux decreases rapidly with reduced effective spatial resolutions and is predominantly carried by the horizontal plasma motions rather than vertical flows. Since the small-scale horizontal motions or the smaller vortices carry most of the energy, the energy transported by vortices deduced from low resolution data is grossly underestimated. In full resolution simulation data, the Poynting flux contribution due to vortices is more than adequate to compensate for the radiative losses in plage, indicating their importance for chromospheric heating.