Optimization of surface flux transport models for the solar polar magnetic field
arXiv:1909.06125 · doi:10.1051/0004-6361/201936099
Abstract
The choice of free parameters in surface flux transport (SFT) models describing the evolution of the large-scale poloidal magnetic field of the Sun is critical for the correct reproduction of the polar magnetic flux built up during a solar cycle, which in turn is known to be a good predictor of the amplitude of the upcoming cycle. For an informed choice of parameters it is important to understand the effect and interplay of the various parameters and to optimize the models for the polar magnetic field. Here we present the results of a large-scale systematic study of the parameter space in an SFT model where the source term representing the net effect of tilted flux emergence was chosen to represent a typical, average solar cycle as described by observations. Comparing the results with observational constraints on the spatiotemporal variation of the polar magnetic field, as seen in magnetograms for the last four solar cycles, we mark allowed and excluded regions in the 3D parameter space defined by the flow amplitude u0, the magnetic diffusivity eta and the decay time scale tau, for three different assumed meridional flow profiles. Without a significant decay term in the SFT equation (i.e., for tau >10 yr) the global dipole moment reverses too late in the cycle for all flow profiles and parameters, providing independent supporting evidence for the need of a decay term, even in the case of identical cycles. An allowed domain is found to exist for tau values in the 5-10 yr range for all flow profiles considered. Generally higher values of eta (500-800 km^2/s) are preferred though some solutions with lower eta are still allowed.
11 pages, 10 figures; Astronomy and Astrophysics, accepted
References in corpus (7)
- Quiet Sun internetwork magnetic fields from the inversion of Hinode measurements
- Magnetic Flux Transport at the Solar Surface
- A Comprehensive Method to Measure Solar Meridional Circulation and Center-to-Limb Effect Using Time-Distance Helioseismology
- Improvement of solar cycle prediction: Plateau of solar axial dipole moment
- Solar Meridional Flow in the Shallow Interior during the Rising Phase of Cycle 24
- Parameter optimization for surface flux transport models
- The need for active region disconnection in 3D kinematic dynamo simulations
Cited by in corpus (13)
- The Solar Orbiter mission -- Science overview
- Surface Flux Transport on the Sun
- Nonlinear mechanisms that regulate the solar cycle amplitude
- Towards an algebraic method of solar cycle prediction I. Calculating the ultimate dipole contributions of individual active regions
- The polar precursor method for solar cycle prediction: comparison of predictors and their temporal range
- How good is the bipolar approximation of active regions for surface flux transport?
- a dynamo-based prediction of solar cycle 25
- Role of observable nonlinearities in solar cycle modulation
- A Babcock-Leighton-type Solar Dynamo Operating in the Bulk of the Convection Zone
- Surface Flux Transport Modeling using Physics Informed Neural Networks
- Effect of Nonlinear Surface Inflows into Activity Belts on Solar Cycle Modulation
- Narrowing the solar surface flux transport parameter space through nonlinear feedbacks
- Ultra-fast simulations of the solar dipole and open flux