Sunspot rotation. II. Effects of varying the field strength and twist of an emerging flux tube
arXiv:1605.07378 · doi:10.1051/0004-6361/201628360
Abstract
Context. Observations of flux emergence indicate that rotational velocities may develop within sunspots. However, the dependence of this rotation on sub-photospheric field strength and twist remains largely unknown. Aims. We investigate the effects of varying the initial field strength and twist of an emerging sub-photospheric magnetic flux tube on the rotation of the sunspots at the photosphere. Methods. We consider a simple model of a stratified domain with a sub-photospheric interior layer and three overlying atmospheric layers. A twisted arched flux tube is inserted in the interior and is allowed to rise into the atmosphere. To achieve this, the MHD equations are solved using the Lagrangian-remap code, Lare3d. We perform a parameter study by independently varying the sub-photospheric magnetic field strength and twist. Results. Altering the initial field strength and twist significantly affects the tube's evolution and the rotational motions that develop at the photosphere. The rotation angle, vorticity, and current show a direct dependence on the initial field strength. We find that an increase in field strength increases the angle through which the fieldlines rotate, the length of fieldlines extending into the atmosphere, and the magnetic energy transported to the atmosphere. This also affects the amount of residual twist in the interior. The length of the fieldlines is crucial as we predict the twist per unit length equilibrates to a lower value on longer fieldlines. No such direct dependence is found when we modify the twist owing to the complex effect this has on the tension force acting on the tube. However, there is still a clear ordering in quantities such as the rotation angle, helicity, and free energy with higher initial twist cases being related to sunspots that rotate more rapidly, transporting more helicity and magnetic energy to the atmosphere.
References in corpus (4)
- Testing magnetic helicity conservation in a solar-like active event
- Validation and Benchmarking of a Practical Free Magnetic Energy and Relative Magnetic Helicity Budget Calculation in Solar Magnetic Structures
- On the emergence of toroidal flux tubes: general dynamics and comparisons with the cylinder model
- Sunspot rotation. I. A consequence of flux emergence
Cited by in corpus (11)
- Decoding the Pre-Eruptive Magnetic Field Configurations of Coronal Mass Ejections
- Relative magnetic helicity as a diagnostic of solar eruptivity
- Successive X-class flares and coronal mass ejections driven by shearing motion and sunspot rotation in active region NOAA 12673
- Threshold of non-potential magnetic helicity ratios at the onset of solar eruptions
- The eruption of a small-scale emerging flux rope as the driver of an M-class flare and a coronal mass ejection
- The Role of Twist in Kinked Flux Rope Emergence and Delta-Spot Formation
- The emergence of magnetic flux and its role on the onset of solar dynamic events
- Eruptions and Flaring Activity in Emerging Quadrupolar Regions
- Successful and Failed Flux Tube Emergence in the Solar Interior
- Recurrent CME-like Eruptions in Emerging Flux Regions. II. Scaling of Energy and Collision of Successive Eruptions
- On the Lorentz Force and Torque of Solar Photospheric Emerging Magnetic Fields