Dependence of Spicule Properties on the Magnetic Field -- Results from Magnetohydrodynamics Simulations

Fuente: arXiv
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Main Authors: Kesri, Kartav, Dey, Sahel, Chatterjee, Piyali, Erdelyi, Robertus
Format: Preprint
Published: 2024
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author Kesri, Kartav
Dey, Sahel
Chatterjee, Piyali
Erdelyi, Robertus
author_facet Kesri, Kartav
Dey, Sahel
Chatterjee, Piyali
Erdelyi, Robertus
contents Solar spicules are plasma jets observed in the interface region between the visible solar surface and the corona. At any given time, there are millions of spicules present all over the Sun. While various models attempt to elucidate their origin and characteristics, here, we consider the one driven by the magneto-convection undulations. The radiative magneto-hydrodynamical (rMHD) equations are solved using PENCIL CODE with a spatial resolution of 16 km using various magnetic field strengths. The obtained rMHD simulation data are investigated to unveil the various trends in spicular properties as function of the applied magnetic fields. The important outcome of this study is the finding of a consistent reduction in both the number density and the maximum height reached by spicules as magnetic field strength increases. We also use parabolic fitting on time-distance curves of spicules that are taller than $75^\mathrm{th}$ percentile in the distribution, in order to find a relation between deceleration of the spicule tip and the magnetic field strength. Our results offer insights into the response of solar spicules to magnetic field strength.
format Preprint
id arxiv_https___arxiv_org_abs_2404_10720
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Dependence of Spicule Properties on the Magnetic Field -- Results from Magnetohydrodynamics Simulations
Kesri, Kartav
Dey, Sahel
Chatterjee, Piyali
Erdelyi, Robertus
Solar and Stellar Astrophysics
Solar spicules are plasma jets observed in the interface region between the visible solar surface and the corona. At any given time, there are millions of spicules present all over the Sun. While various models attempt to elucidate their origin and characteristics, here, we consider the one driven by the magneto-convection undulations. The radiative magneto-hydrodynamical (rMHD) equations are solved using PENCIL CODE with a spatial resolution of 16 km using various magnetic field strengths. The obtained rMHD simulation data are investigated to unveil the various trends in spicular properties as function of the applied magnetic fields. The important outcome of this study is the finding of a consistent reduction in both the number density and the maximum height reached by spicules as magnetic field strength increases. We also use parabolic fitting on time-distance curves of spicules that are taller than $75^\mathrm{th}$ percentile in the distribution, in order to find a relation between deceleration of the spicule tip and the magnetic field strength. Our results offer insights into the response of solar spicules to magnetic field strength.
title Dependence of Spicule Properties on the Magnetic Field -- Results from Magnetohydrodynamics Simulations
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2404.10720