2006/12/31 by T. Heinemann, Tobias Heinemann, Åke Nordlund +3 · 134 citations
Computer Science · Engineering · Physics and Astronomy · #Astrophysics #Computational physics #Flow (mathematics) #Fluid Dynamics and Turbulent Flows #Magnetic field #Magnetic structure #Magnetization #Magnetohydrodynamic drive #Magnetohydrodynamics #Mechanics #Optics #Outflow #Penumbra #Physics #Radiative transfer #Solar Radiation and Photovoltaics #Solar and Space Plasma Dynamics #Sunspot #astro-ph
paper · pdf · doi:10.1086/520827
published in The Astrophysical Journal 669(2), 1390-1394 (IOP Publishing) · 6 pages, 7 figures, submitted to ApJ
arxiv created 2007/01/12 · openalex publication_date 2007/11/10 · arxiv updated 2009/12/01 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
We present the results of numerical 3D magnetohydrodynamic (MHD) simulations with radiative energy transfer of fine structure in a small sunspot of about 4 Mm width. The simulations show the development of filamentary structures and flow patterns that are, except for the lengths of the filaments, very similar to those observed. The filamentary structures consist of gaps with reduced field strength relative to their surroundings. Calculated synthetic images show dark cores like those seen in the observations; the dark cores are the result of a locally elevated τ = 1 surface. The magnetic field in these cores is weaker and more horizontal than for adjacent brighter structures, and the cores support a systematic outflow. Accompanying animations show the migration of the dark-cored structures toward the umbra, and fragments of magnetic flux that are carried away from the spot by a large-scale "moat flow." We conclude that the simulations are in qualitative agreement with observed penumbra filamentary structures, Evershed flows, and moving magnetic features.