The mean tilt of sunspot bipolar regions: theory, simulations and comparison with observations
arXiv:2001.01932 · doi:10.1093/mnras/staa1047
Abstract
A theory of the mean tilt of sunspot bipolar regions (the angle between a line connecting the leading and following sunspots and the solar equator) is developed. A mechanism of formation of the mean tilt is related to the effect of Coriolis force on meso-scale motions of super-granular convection and large-scale meridional circulation. The balance between the Coriolis force and the Lorentz force (the magnetic tension) determines an additional contribution caused by the large-scale magnetic field to the mean tilt of the sunspot bipolar regions at low latitudes. The latitudinal dependence of the solar differential rotation affects the mean tilt which can explain deviations from the Joy's law for the sunspot bipolar regions at high latitudes. The obtained theoretical results and performed numerical simulations based on the nonlinear mean-field dynamo theory which takes into account conservation of the total magnetic helicity and the budget equation for the evolution of the Wolf number density, are in agreement with observational data of the mean tilt of sunspot bipolar regions over individual solar cycles 15 - 24.
12 pages, 4 figures, mn2e.cls , revised, final version
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Cited by in corpus (8)
- Sunspot tilt angles revisited: Dependence on the solar cycle strength
- Turbulent processes and mean-field dynamo
- Impact of Anomalous Active Regions on the Large-scale Magnetic Field of the Sun
- Turbulent magnetic helicity fluxes in solar convective zone
- On effects of surface bipolar magnetic regions on the convection zone dynamo
- Budget equations and astrophysical nonlinear mean-field dynamos
- Magnetic fields of low-mass main sequences stars: Nonlinear dynamo theory and mean-field numerical simulations
- Estimates of current helicity and tilt of solar active regions and Joy's law