Constraining the outer boundary condition for the Babcock-Leighton dynamo models
arXiv:2512.09371 · doi:10.1051/0004-6361/202558038
Abstract
The evolution of the Sun's large-scale surface magnetic field is well captured by surface flux transport models, which can therefore provide a natural constraint on the outer boundary condition (BC) of Babcock-Leighton (BL) dynamo models. For the first time, we propose a zero radial diffusion BC for BL dynamo models, enabling their surface field evolution to align consistently with surface flux transport simulations. We derive a zero radial diffusion BC from the Magnetohydrodynamic induction equation and evaluate its effects in comparison with two alternatives: (i) a radial outer BC, and (ii) a radial outer BC combined with strong near-surface radial pumping. The comparison is carried out both for the evolution of a single bipolar magnetic region and within a full BL dynamo model. The zero radial diffusion outer BC effectively suppresses radial diffusion across the surface, ensuring consistency between the evolution of the bipolar magnetic region in the BL dynamo and the surface flux transport model. With this outer BC, the full BL dynamo model successfully reproduces the fundamental properties of the solar cycle. In addition, the model naturally produces a surface magnetic field that is not purely radial, in closer agreement with solar observations. The physically motivated zero radial diffusion boundary condition paves the way for deeper insight into the solar and stellar cycles.
8 pages, 4 figures, 1 table, accepted by A&A
References in corpus (33)
- The solar magnetic field
- Solar cycle prediction
- Sunspot group tilt angles and the strength of the solar cycle
- Full--Sphere Simulations of a Circulation--Dominated Solar Dynamo: Exploring the Parity Issue
- The crucial role of surface magnetic fields for the solar dynamo
- Magnetic Wreaths and Cycles in Convective Dynamos
- Magnetic Flux Transport at the Solar Surface
- Surface flux transport modeling for solar cycles 15--21: effects of cycle-dependent tilt angles of sunspot groups
- The solar magnetic field since 1700: I. Characteristics of sunspot group emergence and reconstruction of the butterfly diagram
- Magnetoconvection and dynamo coefficients: II. Field-direction dependent pumping of magnetic field
- Modelling the Global Solar Corona: Filament Chirality Observations and Surface Simulations
- Deciphering Solar Magnetic Activity I: On The Relationship Between The Sunspot Cycle And The Evolution Of Small Magnetic Features
- Buoyant Magnetic Loops Generated by Global Convective Dynamo Action
- Solar Cycle Variability Induced by Tilt Angle Scatter in a Babcock--Leighton Solar Dynamo Model
- Modeling Solar Cycles 15 to 21 Using a Flux Transport Dynamo
- Coronal Magnetic Field Evolution from 1996 to 2012: Continuous Non-Potential Simulations
- A Double-Ring Algorithm for Modeling Solar Active Regions: Unifying Kinematic Dynamo Models and Surface Flux-Transport Simulations
- Kinematic active region formation in a three-dimensional solar dynamo model
- Surface Flux Transport on the Sun
- Dynamo-driven plasmoid ejections above a spherical surface
- Babcock-Leighton solar dynamo: the role of downward pumping and the equatorward propagation of activity
- Surface flux evolution constraints for flux transport dynamos
- Nonlinear mechanisms that regulate the solar cycle amplitude
- The turbulent diffusion of toroidal magnetic flux as inferred from properties of the sunspot butterfly diagram
- Dynamo saturation through the latitudinal variation of bipolar magnetic regions in the Sun
- Sunspot tilt angles revisited: Dependence on the solar cycle strength
- Open and closed boundaries in large-scale convective dynamos
- A Babcock-Leighton-type Solar Dynamo Operating in the Bulk of the Convection Zone
- Exploring cycle period and parity of stellar magnetic activity with dynamo modeling
- The need for active region disconnection in 3D kinematic dynamo simulations
- Stellar dynamo models with prominent surface toroidal fields
- A Potential New Mechanism for the Butterfly Diagram of the Solar Cycle: Latitude-dependent Radial Flux Transport
- Minimal Roles of Solar Subsurface Meridional Flow in the distributed-shear Babcock-Leighton Dynamo