Energy transport and heating by torsional Alfvén waves propagating from the photosphere to the corona in the quiet Sun
arXiv:1812.01323 · doi:10.3847/1538-4357/aaf64c
Abstract
In the solar atmosphere, Alfvén waves are believed to play an important role in the transfer of energy from the photosphere to the corona and solar wind, and in the heating of the chromosphere. We perform numerical computations to investigate energy transport and dissipation associated with torsional Alfvén waves propagating in magnetic flux tubes that expand from the photosphere to the corona in quiet-Sun conditions. We place a broadband driver at the photosphere that injects a wave energy flux of erg cm s and consider Ohm's magnetic diffusion and ion-neutral collisions as dissipation mechanisms. We find that only a small fraction of the driven flux, erg cm s, is able to reach coronal heights, but it may be sufficient to partly compensate the total coronal energy loss. The frequency of maximal transmittance is mHz for a photospheric field strength of 1 kG and is shifted to smaller/larger frequencies for weaker/stronger fields. Lower frequencies are reflected at the transition region, while higher frequencies are dissipated producing enough heat to balance chromospheric radiative losses. Heating in the low and middle chromosphere is due to Ohmic dissipation, while ion-neutral friction dominates in the high chromosphere. Ohmic diffusion is enhanced by phase mixing because of the expansion of the magnetic field. This effect has the important consequence of increasing the chromospheric dissipation and, therefore, reducing the energy flux that reaches the corona. We provide empirical fits of the transmission coefficient that could be used as input for coronal models.
Accepted for publication in ApJ
References in corpus (17)
- Alfven Waves in the Lower Solar Atmosphere
- Multiwavelength studies of MHD waves in the solar chromosphere: An overview of recent results
- Hall magnetohydrodynamics of partially ionized plasmas
- Partially Ionized Plasmas in Astrophysics
- On the prevalence of small-scale twist in the solar chromosphere and transition region
- Fluid description of multi-component solar partially ionized plasma
- Three-dimensional simulations of solar magneto-convection including effects of partial ionization
- Two-dimensional Radiative Magnetohydrodynamic Simulations of Partial Ionization in the Chromosphere. II. Dynamics and Energetics of the Low Solar Atmosphere
- Heating of the partially ionized solar chromosphere by waves in magnetic structures
- Transverse Oscillations in Slender Ca II H Fibrils Observed with Sunrise/SuFI
- Overdamped Alfven waves due to ion-neutral collisions in the solar chromosphere
- Conditions for Photospherically Driven Alfvenic Oscillations to Heat the Solar Chromosphere by Pedersen Current Dissipation
- Observational evidence for buffeting induced kink waves in solar magnetic elements
- Multi-fluid Approach to High-frequency Waves in Plasmas. II. Small-amplitude Regime in Partially Ionized Media
- Enhanced phase mixing of Alfvén waves propagating in stratified and divergent coronal structures
- Multi-fluid approach to high-frequency waves in plasmas: I. Small-amplitude regime in fully ionized medium
- Characterizing the Motion of Solar Magnetic Bright Points at High Resolution
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- Propagating Kink Waves in an Open Coronal Magnetic Flux Tube with Gravitational Stratification: Magnetohydrodynamic Simulation and Forward Modelling
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- Future Prospects for Partially Ionised Solar Plasmas: the Prominence Case
- Alfvén wave propagation in the partially ionized lower solar atmosphere: a test of the single-fluid approximation
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- The Quiet-Sun DEM Under Kappa: Diagnostic Degeneracy and the Failure of the Conductive Closure