Effect of Nonlinear Surface Inflows into Activity Belts on Solar Cycle Modulation
arXiv:2504.03283 · doi:10.1007/s11207-025-02466-4
Abstract
Converging flows are visible around bipolar magnetic regions (BMRs) on the solar surface, according to observations. Average flows are created by these inflows combined, and the strength of these flows depends on the amount of flux present during the solar cycle. In models of the solar cycle, this average flow can be depicted as perturbations to the meridional flow. In this article, we study the effects of introducing surface inflow to the surface flux transport models (SFT) as a possible nonlinear mechanism in the presence of latitude quenching for an inflow profile whose amplitude varies within a cycle depending on the magnetic activity. The results show that including surface inflows in the model in the presence of both LQ and tilt quenching (TQ) produced a polar field within a 1 of an average cycle polar field ( is the standard deviation) and a correlation coefficient of 0.85. We confirm that including inflows produces a lower net contribution to the dipole moment (10\,--\,25\%). Furthermore, the relative importance of LQ vs. inflows is inversely correlated with the dynamo effectivity range (). With no decay term, introducing inflows into the model resulted in a less significant net contribution to the dipole moment. Including inflows in the SFT model shows a possible nonlinear relationship between the surface inflows and the solar dipole moment, suggesting a potential nonlinear mechanism contributing to the saturation of the global dynamo. For lower ( 10 ), TQ always dominates LQ, and for higher LQ dominate. However, including inflows will make the domination a little bit earlier in case of having a decay term in the model.
21 pages, 10 figures, Solar Physics Journal, Accepted: 04 April 2025
References in corpus (14)
- Magnetic Flux Transport at the Solar Surface
- Predicting the Amplitude and Hemispheric Asymmetry of Solar Cycle 25 with Surface Flux Transport
- The Effect of "Rogue" Active Regions on the Solar Cycle
- Subsurface Meridional Circulation in the Active Belts
- Surface Flux Transport on the Sun
- Magnetoconvection and dynamo coefficients III: alpha-effect and magnetic pumping in the rapid rotation regime
- Improvement of solar cycle prediction: Plateau of solar axial dipole moment
- Nonlinear mechanisms that regulate the solar cycle amplitude
- Physical Models for Solar Cycle Predictions
- Parameter optimization for surface flux transport models
- Sunspot tilt angles revisited: Dependence on the solar cycle strength
- Role of observable nonlinearities in solar cycle modulation
- Optimization of surface flux transport models for the solar polar magnetic field
- Inflows towards active regions and the modulation of the solar cycle: a parameter study