Projects per year
Abstract
Aims. Our aim is to examine the solar cycle variability of magnetically simple and complex active region.
Methods. We studied simple (alpha and beta) and complex (beta gamma and beta gamma delta) active regions based on the Mount Wilson magnetic classification by applying our newly developed daily approach. We analyzed the daily number of the simple active regions (SARs) and compared that to the abundance of the complex active regions (CARs) over the entire solar cycle 23 and cycle 24 until December 2018.
Results. We show that CARs evolve differently over the solar cycle from SARs. The time evolution of SARs and CARs on different hemispheres also shows differences, even though on average their latitudinal distributions are shown to be similar. The time evolution of SARs closely follows that of the sunspot number, and their maximum abundance was observed to occur during the early maximum phase, while that of the CARs was seen roughly two years later. We furthermore found that the peak of CARs was reached before the latitudinal width of the activity band starts to decease.
Conclusion. Our results suggest that the active region formation process is a competition between the large-scale dynamo (LSD) and the small-scale dynamo (SSD) near the surface, the former varying cyclically and the latter being independent of the solar cycle. During solar maximum, LSD is dominant, giving a preference to SARs, while during the declining phase the relative role of SSD increases. Therefore, a preference for CARs is seen due to the influence of the SSD on the emerging flux.
| Original language | English |
|---|---|
| Article number | A45 |
| Number of pages | 9 |
| Journal | Astronomy & Astrophysics |
| Volume | 629 |
| DOIs | |
| Publication status | Published - 4 Sept 2019 |
| MoE publication type | A1 Journal article-refereed |
Funding
We would like to thank the National Oceanic and Atmospheric Administration (NOAA) and the Heliophysics Integrated Observatory (HELIO) for providing the solar active region and sunspot data. We acknowledge the financial support by the Academy of Finland of the ReSoLVE Center of Excellence (project 307411) and Geoscientific infrastructure G-EPOS (project 293488). This project has also received funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program (grant agreement no. 818665). The authors thank the anonymous referee for valuable comments, which helped to improve the study.
Keywords
- Sun: magnetic fields
- Sun: activity
- Sun: photosphere
- sunspots
- MAGNETIC-STRUCTURE
- CLASSIFICATION
- FIELDS
- DEPENDENCE
- ORIGIN
- ISOON
Fingerprint
Dive into the research topics of 'Differences in the solar cycle variability of simple and complex active regions during 1996-2018'. Together they form a unique fingerprint.Projects
- 3 Finished
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ReSolve 2017-19
Käpylä, M. (Principal investigator), Rheinhardt, M. (Project Member), Käpylä, P. (Project Member), Olspert, N. (Project Member) & Gent, F. (Project Member)
01/01/2017 → 31/12/2019
Project: Academy of Finland: Other research funding
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ReSoLVE2
Tanskanen, E. (Principal investigator), Lakka, A. (Project Member), Peitso, P. (Project Member), Castrejon Suarez del Real, I. (Project Member), Nikbakhsh, S. (Project Member), Väänänen, M. (Project Member), Hynönen, R. (Project Member), Binios, A. (Project Member) & Jha, T. (Project Member)
01/01/2017 → 31/12/2019
Project: Academy of Finland: Other research funding
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ReSoLVE1
Tanskanen, E. (Principal investigator), Nikbakhsh, S. (Project Member) & Peitso, P. (Project Member)
01/05/2016 → 31/12/2016
Project: Academy of Finland: Other research funding
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