Testing solar surface flux transport models in the first days after active region emergence
Nils Gottschling, Hannah Schunker, Aaron C. Birch, Robert Cameron,, Laurent Gizon

TL;DR
This study evaluates the effectiveness of solar surface flux transport models in simulating the early magnetic evolution of active regions on the Sun, finding they are valid after most flux has emerged and diffusion dominates.
Contribution
It demonstrates that observed surface flows can accurately reproduce magnetic flux evolution in early AR development, validating SFTMs shortly after flux emergence.
Findings
SFTMs match observed magnetic flux evolution after 90% of flux emergence.
Diffusion models effectively describe supergranulation buffeting effects.
Converging flows are not crucial in the first five days post-emergence.
Abstract
Active regions (ARs) play an important role in the magnetic dynamics of the Sun. Solar surface flux transport models (SFTMs) are used to describe the evolution of the radial magnetic field at the solar surface. There is however uncertainty about using these models in the early stage of AR evolution. We aim to test the applicability of SFTMs in the first days after the emergence of ARs by comparing them with observations. The models we employ range from passive evolution to models where the inflows around ARs are included. We simulate the evolution of the surface magnetic field of 17 emerging active regions using a local surface flux transport simulation. We selected regions that do not form fully-fledged sunspots that exhibit moat flows. The simulation includes diffusion and advection. We use observed flows from local correlation tracking of solar granulation, as well as…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Fluid dynamics and aerodynamics studies · Scientific Research and Discoveries
