Vortex Flow Properties in Simulations of Solar Plage Region: Evidence for their role in chromospheric heating
arXiv:2010.14971 · doi:10.1051/0004-6361/202038965
Abstract
Vortex-flows exist across a broad range of spatial and temporal scales in the solar atmosphere. Small-scale vortices have been proposed to play an important role in energy transport in the solar atmosphere. However, their physical properties remain poorly understood due to the limited spatial resolution of the observations. We aim to explore and analyze the physical properties of small-scale vortices inside magnetic flux tubes using numerical simulations, and to investigate whether they contribute to heating the chromosphere in a plage region. Using the three-dimensional (3D) radiative magnetohydrodynamic (MHD) simulation code 'MURaM', we perform numerical simulations of a unipolar solar plage region. To detect and isolate vortices, we use the Swirling Strength criterion and select the locations where the fluid is rotating with an angular velocity greater than a certain threshold. We concentrate on small-scale as they are the strongest and carry most of the energy. We explore the spatial profiles of physical quantities viz. density, horizontal velocity, etc. inside these vortices. Moreover, to apprehend their general characteristics, a statistical investigation is performed. Magnetic flux tubes have a complex filamentary substructure harbouring an abundance of small-scale vortices. At the interfaces between vortices strong current sheets are formed that may dissipate and heat the solar chromosphere. Statistically, vortices have higher densities and higher temperatures than the average values at the same geometrical height in the chromosphere. We conclude that small-scale vortices are ubiquitous in solar plage regions, and they are denser and hotter structures that contribute to chromospheric heating, possibly by dissipation of the current sheets formed at their interfaces.
accepted for publication in A&A
References in corpus (13)
- Numerical simulations of quiet Sun magnetism: On the contribution from a small-scale dynamo
- Extension of the MURaM radiative MHD code for coronal simulations
- Convectively driven vortex flows in the Sun
- Multiwavelength studies of MHD waves in the solar chromosphere: An overview of recent results
- Quiet Sun mini-CMEs activated by supergranular flows
- Three-dimensional Magnetohydrodynamic Simulation of the Formation of Solar Chromospheric Jets with Twisted Magnetic Field Lines
- Magnetic Prandtl number dependence of kinetic to magnetic dissipation ratio
- Kelvin-Helmholtz instability in solar chromospheric jets: theory and observation
- Simulations Show that Vortex Flows could Heat the Chromosphere in Solar Plage
- Magnetic swirls and associated fast magnetoacoustic kink waves in a solar chromospheric flux tube
- Reversed dynamo at small scales and large magnetic Prandtl number
- Relationship between supergranulation flows, magnetic cancellation and network flares
- Dynamics of small-scale convective motions
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- Slow magneto-acoustic waves in simulations of a solar plage region carry enough energy to heat the chromosphere
- New approach for analysing dynamical processes on the surface of photospheric vortex tubes
- The non-ideal finite Larmor radius effect in the solar atmosphere
- The effect of linear background rotational flows on magnetoacoustic modes of a photospheric magnetic flux tube
- On the 5-Minute Oscillations of Photospheric and Chromospheric Swirls
- Viscous Heating and Instabilities in the Partially Ionized Solar Atmosphere
- Coherent structure detection and the inverse cascade mechanism in two-dimensional Navier-Stokes turbulence
- Cause of chromospheric opposite polarity intrusions discovered in Sunrise III/SCIP data: MURaM-ChE simulations point to twisted flux ropes