Sensitivity of a Babcock-Leighton Flux-Transport Dynamo to Magnetic Diffusivity Profiles
E.J. Zita

TL;DR
This study investigates how different depth-dependent magnetic diffusivity profiles affect the solar magnetic cycle in a flux-transport dynamo model, aiming to identify key factors influencing magnetic field evolution.
Contribution
The paper introduces a systematic analysis of various theoretically constructed diffusivity profiles and their impact on solar magnetic field evolution in a kinematic dynamo model.
Findings
Diffusivity profiles significantly influence cycle periods and field strengths.
Gradient location and slope affect the evolution of magnetic structures.
Certain profiles better match observed solar magnetic behavior.
Abstract
We study the influence of various magnetic diffusivity profiles on the evolution of the poloidal and toroidal magnetic fields in a kinematic flux transport dynamo model for the Sun. The diffusivity is a poorly understood ingredient in solar dynamo models. We mathematically construct various theoretical profiles of the depth-dependent diffusivity, based on constraints from mixing length theory and turbulence, and on comparisons of poloidal field evolution on the Sun with that from the flux-transport dynamo model. We then study the effect of each diffusivity profile in the cyclic evolution of the magnetic fields in the Sun, by solving the mean-field dynamo equations. We investigate effects on the solar cycle periods, the maximum tachocline field strengths, and the evolution of the toroidal and poloidal field structures inside the convection zone, due to different diffusivity profiles.…
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Taxonomy
TopicsSolar and Space Plasma Dynamics · Geomagnetism and Paleomagnetism Studies · Astro and Planetary Science
