Quantifying how Surface Complexity Influences Properties of the Solar Corona and Solar Wind

Fuente: arXiv
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Main Authors: Evans, Caroline L., Downs, Cooper, Schmit, Donald
Format: Preprint
Published: 2025
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author Evans, Caroline L.
Downs, Cooper
Schmit, Donald
author_facet Evans, Caroline L.
Downs, Cooper
Schmit, Donald
contents The Sun's magnetic field is a key driver in coronal heating and consequently solar wind acceleration. Remote measurement of the photosphere provides the magnetic surface boundary condition necessary for data-constrained 3D global coronal models. With one such model, we explore how the spatial resolution of the surface boundary condition influences the global properties of the magnetic field and coronal heating. Using spherical harmonic decomposition, we quantify how three different resolution simulations vary in the low and middle corona. Through examination of the magnetic field, the squashing factor, and the heating rate, we demonstrate that small-scale photospheric magnetic flux enhances heating across spatial regimes. We calculate 40% more heating in our best resolution simulation as compared to our base resolution. We describe a strong correlation between the structure of the magnetic field and structure of the heating rate in the low corona across resolutions. These results provide key information as to what more efficient, low-resolution models might inherently miss. This can provide context to incorporate the effects of unresolvable features in future modeling efforts.
format Preprint
id arxiv_https___arxiv_org_abs_2511_03011
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantifying how Surface Complexity Influences Properties of the Solar Corona and Solar Wind
Evans, Caroline L.
Downs, Cooper
Schmit, Donald
Solar and Stellar Astrophysics
The Sun's magnetic field is a key driver in coronal heating and consequently solar wind acceleration. Remote measurement of the photosphere provides the magnetic surface boundary condition necessary for data-constrained 3D global coronal models. With one such model, we explore how the spatial resolution of the surface boundary condition influences the global properties of the magnetic field and coronal heating. Using spherical harmonic decomposition, we quantify how three different resolution simulations vary in the low and middle corona. Through examination of the magnetic field, the squashing factor, and the heating rate, we demonstrate that small-scale photospheric magnetic flux enhances heating across spatial regimes. We calculate 40% more heating in our best resolution simulation as compared to our base resolution. We describe a strong correlation between the structure of the magnetic field and structure of the heating rate in the low corona across resolutions. These results provide key information as to what more efficient, low-resolution models might inherently miss. This can provide context to incorporate the effects of unresolvable features in future modeling efforts.
title Quantifying how Surface Complexity Influences Properties of the Solar Corona and Solar Wind
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2511.03011