Influence of the Magnetic Field Topology in the Evolution of Small-Scale Two-Fluid Jets in the Solar Atmosphere

Author:

Díaz-Figueroa Elton Everardo1ORCID,de Parga Gonzalo Ares1ORCID,González-Avilés José Juan2ORCID

Affiliation:

1. Escuela Superior de Física y Matemáticas, Instituto Politécnico Nacional, Mexico City C.P. 07738, Mexico

2. Investigadores por México-CONACYT, SCIESMEX, LANCE, Instituto de Geofísica, Universidad Nacional Autónoma de México, Morelia Michoacán C.P. 58190, Mexico

Abstract

In this paper, a series of numerical simulations is performed to recreate small-scale two-fluid jets using the JOANNA code, considering the magnetohydrodynamics of two fluids (ions plus electrons and neutral particles). First, the jets are excited in a uniform magnetic field by using velocity pulse perturbations located at y0= 1.3, 1.5, and 1.8 Mm, considering the base of the photosphere at y=0. Then, the excitation of the jets is repeated in a magnetic field that mimics a flux tube. Mainly, the jets excited at the upper chromosphere (y∼1.8 Mm) reach lower heights than those excited at the lower chromosphere (y∼1.3 Mm); this is due to the higher initial vertical location because of the lesser amount of plasma dragging. In both scenarios, the dynamics of the neutral particles and ions show similar behavior, however, one can still identify some differences in the velocity drift, which in the simulations here is of the order of 10−3 km/s at the tips of the jets once they reached their maximum heights. In addition, the heat due to the friction between ions and neutrals (Qi,nin) is estimated to be of the order of 0.002–0.06 W/m3. However, it hardly contributes to the heating of the surroundings of the solar corona. The jets in the two magnetic environments do not show substantial differences other than a slight variation in the maximum heights reached, particularly in the uniform magnetic field scenario. Finally, the maximum heights reached by the three different jets are found in the range of some morphological parameters corresponding to macrospicules, Type I spicules, and Type II spicules.

Funder

Consejo Nacional de Ciencia y Tecnología

Comisión de Operación y Fomento de Actividades Académicas (COFAA) del Instituto Polytécnico Nacional

Estímulo al Desempeño de los Investigadores (EDI) del IPN

Beca de Estímulo Institucional de Formación de Investigadores (BEIFI) del IPN

Investigadores por México-CONACYT

Consejo Nacional de Ciencia y Tecnología” (CONACYT), which partially supported this work, along with the program “Investigadores for México

Publisher

MDPI AG

Subject

General Physics and Astronomy

Reference56 articles.

1. Solar coronal jets: Observations, theory, and modeling;Raouafi;Space Sci. Rev.,2016

2. Observation and modelling of solar jets;Shen;Proc. R. Soc. Lond. A Math. Phys. Engin. Sci.,2021

3. Three-dimensional simulation of solar emerging flux using the Earth Simulator I. Magnetic Rayleigh-Taylor instability at the top of the emerging flux as the origin of filamentary structure;Isobe;Publ. Astron. Soc. Jpn.,2006

4. A model for solar polar jets;Pariat;Astrophys. J.,2009

5. Recurrent solar jets in active regions;Archontis;Astron. Astrophys.,2010

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