Nonlinear force-free field extrapolation in spherical geometry: improved boundary data treatment applied to a SOLIS/VSM vector magnetogram
Tilaye Tadesse, T. Wiegelmann, B. Inhester, A. Pevtsov

TL;DR
This paper introduces an improved nonlinear force-free field extrapolation method in spherical geometry, effectively handling measurement errors and data gaps in solar magnetic field data, applied to SOLIS/VSM observations.
Contribution
The authors develop a spherical geometry extrapolation method with enhanced boundary data treatment, incorporating measurement errors and data gaps, for more accurate coronal magnetic field modeling.
Findings
Better satisfaction of solenoidal and force-free conditions in models
Effective handling of measurement errors and data gaps
First application of the method to real SOLIS/VSM data
Abstract
Routine measurements of the solar magnetic field are mainly carried out in the photosphere. Therefore, one has to infer the field strength in the higher layers of the solar atmosphere from the measured photospheric field based on the assumption that the corona is force-free. Meanwhile, those measured data are inconsistent with the above force-free assumption. Therefore, one has to apply some transformations to these data before nonlinear force-free extrapolation codes can be applied. Extrapolation codes in cartesian geometry for modelling the magnetic field in the corona do not take the curvature of the Sun's surface into account and can only be applied to relatively small areas, e.g., a single active region. Here we apply a method for nonlinear force-free coronal magnetic field modelling and preprocessing of photospheric vector magnetograms in spherical geometry using the optimization…
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