Coronal Heating and Acceleration of the High/Low-Speed Solar Wind by Fast/Slow MHD Shock Trains
arXiv:astro-ph/0312573 · doi:10.1111/j.1365-2966.2004.07570.x
Abstract
We investigate coronal heating and acceleration of the high- and low-speed solar wind in the open field region by dissipation of fast and slow magnetohydrodynamical (MHD) waves through MHD shocks. Linearly polarized \Alfven (fast MHD) waves and acoustic (slow MHD) waves travelling upwardly along with a magnetic field line eventually form fast switch-on shock trains and hydrodynamical shock trains (N-waves) respectively to heat and accelerate the plasma. We determine one dimensional structure of the corona from the bottom of the transition region (TR) to 1AU under the steady-state condition by solving evolutionary equations for the shock amplitudes simultaneously with the momentum and proton/electron energy equations. Our model reproduces the overall trend of the high-speed wind from the polar holes and the low-speed wind from the mid- to low-latitude streamer except the observed hot corona in the streamer. The heating from the slow waves is effective in the low corona to increase the density there, and plays an important role in the formation of the dense low-speed wind. On the other hand, the fast waves can carry a sizable energy to the upper level to heat the outer corona and accelerate the high-speed wind effectively. We also study dependency on field strength, , at the bottom of the TR and non-radial expansion of a flow tube, , to find that large but small G are favorable for the high-speed wind and that small is required for the low-speed wind.
13 pages, including 5 figures, in MNRAS style, MNRAS in press
Cited by in corpus (23)
- Self-consistent Coronal Heating and Solar Wind Acceleration from Anisotropic Magnetohydrodynamic Turbulence
- On the Generation, Propagation, and Reflection of Alfven Waves from the Solar Photosphere to the Distant Heliosphere
- Making the corona and the fast solar wind: a self-consistent simulation for the low-frequency Alfven waves from photosphere to 0.3AU
- Solar Winds Driven by Nonlinear Low-Frequency Alfven Waves from the Photosphere : Parametric Study for Fast/Slow Winds and Disappearance of Solar Winds
- Extended MHD modeling of the steady solar corona and the solar wind
- Connecting the Sun and the Solar Wind: The Self-consistent Transition of Heating Mechanisms
- Propagating MHD waves in coronal holes
- Structured Red Giant Winds with Magnetized Hot Bubbles and the Corona/Cool Wind Dividing Line
- A self-consistent model of the coronal heating and solar wind acceleration including compressible and incompressible heating processes
- Frequency-dependent Alfvén-wave propagation in the solar wind: Onset and suppression of parametric decay instability
- Generation of Alfven Waves by Magnetic Reconnection
- Alfven Wave-Driven Proto-Neutron Star Winds And R-Process Nucleosynthesis
- Stellar Winds and Coronae of Low-mass Pop. II/III Stars
- The universally growing mode in the solar atmosphere: coronal heating by drift waves
- Drift waves in the corona: heating and acceleration of ions at frequencies far below the gyro frequency
- Electric fields in solar magnetic structures due to gradient driven instabilities: heating and acceleration of particles
- Self-consistent Simulations of Alfven Wave Driven Winds from the Sun and Stars
- Collisionless Damping of Fast MHD Waves in Magneto-rotational Winds
- Dispersive shock waves in partially ionised plasmas
- The Origin of Ripples in Cool Cores of Galaxy Clusters: Heating by MHD Waves?
- Flux-tube-dependent propagation of Alfvén waves in the solar corona
- Coronal Properties of Low-mass Population III Stars and the Radiative Feedback in the Early Universe
- Validity of using Elsässer variables to study the interaction of compressible solar wind fluctuations with a coronal mass ejection