Modeling coronal magnetic field using spherical geometry: cases with several active regions
Tilaye Tadesse, T. Wiegelmann, K. Olson, P. J. MacNeice

TL;DR
This paper models the 3D coronal magnetic field of multiple active regions on the Sun using spherical NLFFF extrapolation, improving accuracy over Cartesian models and aligning well with EUV observations.
Contribution
It introduces a spherical NLFFF modeling approach for multiple active regions, addressing limitations of Cartesian models for large-scale solar magnetic fields.
Findings
Spherical NLFFF models accurately reconstruct magnetic configurations.
Models agree well with EUV observations.
Identifies trans-equatorial loops with electric currents.
Abstract
The magnetic fields in the solar atmosphere structure the plasma, store free magnetic energy and produce a wide variety of active solar phenomena, like flare and coronal mass ejections(CMEs). The distribution and strength of magnetic fields are routinely measured in the solar surface(photosphere). Therefore, there is considerable interest in accurately modeling the 3D structure of the coronal magnetic field using photospheric vector magnetograms. Knowledge of the 3D structure of magnetic field lines also help us to interpret other coronal observations, e.g., EUV images of the radiating coronal plasma. Nonlinear force-free field (NLFFF) models are thought to be viable tools for those task. Usually those models use Cartesian geometry. However, the spherical nature of the solar surface cannot be neglected when the field of view is large. In this work, we model the coronal magnetic field…
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