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Full--Sphere Simulations of a Circulation--Dominated Solar Dynamo: Exploring the Parity Issue

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arxiv astro-ph/0405027 v1 pith:53CBGRV2 submitted 2004-05-03 astro-ph

Full--Sphere Simulations of a Circulation--Dominated Solar Dynamo: Exploring the Parity Issue

classification astro-ph
keywords solarfieldmodelparitydiffusedipolardynamoimportant
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We explore a two-dimensional kinematic solar dynamo model in a full sphere, based on the helioseismically determined solar rotation profile and with an $\alpha$ effect concentrated near the solar surface, which captures the Babcock--Leighton idea that the poloidal field is created from the decay of tilted bipolar active regions. The meridional circulation, assumed to penetrate slightly below the tachocline, plays an important role. Some doubts have recently been raised regarding the ability of such a model to reproduce solar-like dipolar parity. We specifically address the parity issue and show that the dipolar mode is preferred when certain reasonable conditions are satisfied, the most important condition being the requirement that the poloidal field should diffuse efficiently to get coupled across the equator. Our model is shown to reproduce various aspects of observational data, including the phase relation between sunspots and the weak, diffuse field.

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  1. Constraining the radial decay timescale of solar surface magnetic field through a comparative study of data-assimilative 2D surface flux transport and 3D dynamo models

    astro-ph.SR 2026-07 conditional novelty 6.0

    A comparative analysis of 2D surface flux transport and 3D dynamo models yields a mode-dependent radial decay spectrum with effective timescales τ≈2 yr (l=8) for magnetogram assimilation and τ≈7 yr (dipole) for active...