3D simulations of rising magnetic flux tubes in a compressible rotating interior: The effect of magnetic tension
Yori Fournier, Rainer Arlt, Udo Ziegler, Klaus G. Strassmeier

TL;DR
This study develops a parameterization for the rise-time of magnetic flux tubes in solar-like stars, accounting for magnetic tension and non-axisymmetry, which can improve dynamo models and understanding of solar cycle variability.
Contribution
It introduces a control parameter based on magnetic tension and rotation effects, demonstrating its role in flux tube rise-time through numerical experiments, and provides a generalized relation for stellar applications.
Findings
Rise-time follows a power law with the control parameter.
Non-axisymmetry influences flux tube rise-time.
Compressibility does not significantly affect the rise of flux tubes.
Abstract
Context: Long-term variability in solar cycles represents a challenging constraint for theoretical models. Mean-field Babcock-Leighton dynamos that consider non-instantaneous rising flux tubes have been shown to exhibit long-term variability in their magnetic cycle. However a relation that parameterizes the rise-time of non-axisymmetric magnetic flux tubes in terms of stellar parameters is still missing. Aims: We aim to find a general parameterization of the rise-time of magnetic flux tubes for solar-like stars. Methods: By considering the influence of magnetic tension on the rise of non-axisymmetric flux tubes, we predict the existence of a control parameter referred as . This parameter is a measure of the balance between rotational effects and magnetic effects (buoyancy and tension) acting on the magnetic flux tube. We carry out two series of numerical…
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