Probing the variations in the timing of the Sun's polar magnetic field reversals through observations and surface flux transport simulations
arXiv:2307.13452 · doi:10.1093/mnras/stad2254
Abstract
The polar field reversal is a crucial process in the cyclic evolution of the large-scale magnetic field of the Sun.Various important characteristics of a solar cycle, such as its duration and strength, and also the cycle predictability, are determined by the polar field reversal time. While the regular measurements of solar magnetic field have been accumulated for more than half a century, there is no consensus in the heliophysics community concerning the interpretation of the Sun's polar field measurements and especially the determination of polar field reversal time. There exists a severe problem of non-reproducibility in the reported results even from studies of the same observational dataset, and this causes an obstacle to make more accurate forecasts of solar cycle. Here, we analyze the solar magnetograms from four instruments for the last four cycles, to provide a more correct interpretation of the polar field observations and to find more accurate time of the reversals. We show the absence of triple (multipolar) reversals in Cycles 21 - 24, significant variations in the time interval between reversals in the hemispheres and in the time interval between a reversal and a cycle beginning. In order to understand the origin of the reversal time variation, we perform Surface Flux Transport (SFT) simulations and find out that the presence of the 'anomalous' bipolar magnetic regions (BMRs) in different phases of a cycle can cause cycle-to-cycle variations of the reversal time within the similar range found in observations.
Accepted for publication in MNRAS
References in corpus (17)
- Predicting solar cycle 24 with a solar dynamo model
- On Polar Magnetic Field Reversal and Surface Flux Transport During Solar Cycle 24
- Effects of the scatter in sunspot group tilt angles on the large-scale magnetic field at the solar surface
- Solar Cycle Variability Induced by Tilt Angle Scatter in a Babcock--Leighton Solar Dynamo Model
- The Effect of "Rogue" Active Regions on the Solar Cycle
- Models for the long-term variations of solar activity
- Long-term modulation of solar cycles
- Re-examining Sunspot Tilt Angle to Include Anti-Hale Statistics
- Polar Network Index as a magnetic proxy for the solar cycle studies
- Magnetic field dependence of bipolar magnetic region tilts on the Sun: Indication of tilt quenching
- Comparison of Ground- and Space-based Longitudinal Magnetograms
- The polar precursor method for solar cycle prediction: comparison of predictors and their temporal range
- Solar Anti-Hale Bipolar Magnetic Regions: A Distinct Population with Systematic Properties
- Physical link of the polar field build-up with the Waldmeier effect broadens the scope of early solar cycle prediction: Cycle 25 is likely to be slightly stronger than Cycle 24
- Application of Synoptic Magnetograms to Global Solar Activity Forecast
- Toroidal flux loss due to flux emergence explains why solar cycles rise differently but decay in a similar way
- The nonuniformity of poleward flux transport on the solar surface: a statistical method applied to solar cycles 21-24