Exploring cycle period and parity of stellar magnetic activity with dynamo modeling
Gopal Hazra, Jie Jiang, Bidya Binay Karak, Leonid Kitchatinov

TL;DR
This study uses a dynamo model to explain how stellar magnetic activity cycle periods and magnetic field parity vary with star rotation rates, matching observed trends in solar-type stars.
Contribution
It introduces a flux transport dynamo model with radial pumping and mean-field derived flows to replicate observed stellar magnetic activity patterns.
Findings
Cycle period decreases with rotation in slow rotators.
Cycle period slightly increases in fast rotators.
Magnetic field parity flips from dipolar to quadrupolar at short periods.
Abstract
Observations of chromospheric and coronal emissions from various solar-type stars show that the stellar magnetic activity varies with the rotation rates of the stars. The faster the star rotates, its magnetic activity gets stronger but activity cycle period does not show a straightforward variation with the rotation rate. For slowly rotating stars, the cycle period decreases with the increase of rotation rate, while for the fast rotators dependency of cycle period on rotation is presently quite complicated. We aim to provide an explanation of these observational trends of stellar magnetic activity using a dynamo model. We construct a theoretical dynamo model for stars of mass 1 based on the kinematic flux transport dynamo model including radial pumping near the surface of the stars. The inclusion of this near surface downward radial pumping is found to be necessary to match…
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