Acoustic emission from magnetic flux tubes in the solar network
arXiv:1304.5193 · doi:10.1088/1742-6596/440/1/012045
Abstract
We present the results of three-dimensional numerical simulations to investigate the excitation of waves in the magnetic network of the Sun due to footpoint motions of a magnetic flux tube. We consider motions that typically mimic granular buffeting and vortex flows and implement them as driving motions at the base of the flux tube. The driving motions generates various MHD modes within the flux tube and acoustic waves in the ambient medium. The response of the upper atmosphere to the underlying photospheric motion and the role of the flux tube in channeling the waves is investigated. We compute the acoustic energy flux in the various wave modes across different boundary layers defined by the plasma and magnetic field parameters and examine the observational implications for chromospheric and coronal heating.
To appear in Journal of Physics: Conference Series, proceedings of "Eclipse on the Coral Sea: Cycle 24 Ascending", Palm Cove, 2012. 7 pages, 4 figures
References in corpus (6)
- Alfven Waves in the Lower Solar Atmosphere
- Small-scale solar magnetic fields
- Numerical simulations of conversion to Alfven waves in sunspots
- Non-linear numerical simulations of magneto-acoustic wave propagation in small-scale flux tubes
- Dynamics of the Solar Magnetic Network. II. Heating the Magnetized Chromosphere
- 3D Simulations of Magnetohydrodynamic Waves in the Magnetized Solar Atmosphere