Competition between shock and turbulent heating in coronal loop system
arXiv:1606.06019 · doi:10.1093/mnras/stw2032
Abstract
2.5-dimensional magnetohydrodynamic (MHD) simulations are performed with high spatial resolution in order to distinguish between competing models of the coronal heating problem. A single coronal loop powered by Alfvén waves excited in the photosphere is the target of the present study. The coronal structure is reproduced in our simulations as a natural consequence of the transportation and dissipation of Alfvén waves. Further, the coronal structure is maintained as the spatial resolution is changed from 25 to 3 km, although the temperature at the loop top increases with the spatial resolution. The heating mechanisms change gradually across the magnetic canopy at a height of 4 Mm. Below the magnetic canopy, both the shock and the MHD turbulence are dominant heating processes. Above the magnetic canopy, the shock heating rate reduces to less than 10 % of the total heating rate while the MHD turbulence provides significant energy to balance the radiative cooling and thermal conduction loss or gain. The importance of compressibility shown in the present study would significantly impact on the prospects of successful MHD turbulence theory in the solar chromosphere.
11 pages, 10 figures, accepted for publications in MNRAS
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- The Effect of the Chromospheric Temperature on Coronal Heating
- Coronal Properties of Low-mass Population III Stars and the Radiative Feedback in the Early Universe
- A Global Survey of EUV Corona Power Spectra