Numerical Experiments on the Two-step Emergence of Twisted Magnetic Flux Tubes in the Sun
arXiv:1105.1904 · doi:10.1088/0004-637X/735/2/126
Abstract
We present the new results of the two-dimensional numerical experiments on the cross-sectional evolution of a twisted magnetic flux tube rising from the deeper solar convection zone (-20,000 km) to the corona through the surface. The initial depth is ten times deeper than most of previous calculations focusing on the flux emergence from the uppermost convection zone. We find that the evolution is illustrated by the two-step process described below: the initial tube rises due to its buoyancy, subject to aerodynamic drag due to the external flow. Because of the azimuthal component of the magnetic field, the tube maintains its coherency and does not deform to become a vortex roll pair. When the flux tube approaches the photosphere and expands sufficiently, the plasma on the rising tube accumulates to suppress the tube's emergence. Therefore, the flux decelerates and extends horizontally beneath the surface. This new finding owes to our large scale simulation calculating simultaneously the dynamics within the interior as well as above the surface. As the magnetic pressure gradient increases around the surface, magnetic buoyancy instability is triggered locally and, as a result, the flux rises further into the solar corona. We also find that the deceleration occurs at a higher altitude than in our previous experiment using magnetic flux sheets (Toriumi and Yokoyama). By conducting parametric studies, we investigate the conditions for the two-step emergence of the rising flux tube: field strength > 1.5x10^4 G and the twist > 5.0x10^-4 km^-1 at -20,000 km depth.
42 pages, 13 figures, 2 tables, accepted for publication in ApJ. High-resolution figures will appear in the published version
References in corpus (4)
- Solar surface emerging flux regions: a comparative study of radiative MHD modeling and Hinode SOT observations
- Magnetic flux emergence in granular convection: Radiative MHD simulations and observational signatures
- The effect of the relative orientation between the coronal field and new emerging flux: I Global Properties
- On the emergence of toroidal flux tubes: general dynamics and comparisons with the cylinder model
Cited by in corpus (24)
- Flare-productive active regions
- Numerical simulations of active region scale flux emergence: From spot formation to decay
- Numerical Simulations of Flare-productive Active Regions: delta-sunspots, Sheared Polarity Inversion Lines, Energy Storage, and Predictions
- Magnetic Flux Emergence and Decay Rates for Preceder and Follower Sunspots Observed with HMI
- Magnetohydrodynamic Simulation Code CANS+: Assessments and Applications
- Comparative Study of Data-driven Solar Coronal Field Models Using a Flux Emergence Simulation as a Ground-truth Data Set
- Detection of the Horizontal Divergent Flow prior to the Solar Flux Emergence
- The emergence of magnetic flux and its role on the onset of solar dynamic events
- Large-scale 3D MHD simulation on the solar flux emergence and the small-scale dynamic features in an active region
- Measurements with STEREO/COR1 data of drag forces acting on small-scale blobs falling in the intermediate corona
- Probing the Shallow Convection Zone: Rising Motion of Subsurface Magnetic Fields in the Solar Active Region
- Extended statistical analysis of emerging solar active regions
- Emergence of non-twisted magnetic fields in the Sun: Jets and atmospheric response
- Three-dimensional magnetohydrodynamic simulation of the solar magnetic flux emergence: Parametric study on the horizontal divergent flow
- Evolution of the Magnetic Field Distribution of Active Regions
- Active Region Emergence & Remote Flares
- Successful and Failed Flux Tube Emergence in the Solar Interior
- Analysis of the flux growth rate in emerging active regions on the Sun
- The Rise and Emergence of Untwisted Toroidal Flux Ropes on the Sun
- On the Lorentz Force and Torque of Solar Photospheric Emerging Magnetic Fields
- Effects of partial ionization on magnetic flux emergence in the Sun
- Numerical Simulation of Solar Magnetic Flux Emergence Using the AMR--CESE--MHD Code
- Solar Interior
- Least-Squares Fitting Methods for Estimating the Winding Rate in Twisted Magnetic-Flux Tubes