Magnetic Flux and Helicity of Magnetic Clouds
arXiv:1509.01068 · doi:10.1007/s11207-015-0836-3
Abstract
Magnetic clouds (MCs) are formed by flux ropes (FRs) launched from the Sun as part of coronal mass ejections (CMEs). They carry away an important amount of magnetic flux and helicity. The main aim of this study is to quantify these quantities from insitu measurements of MCs at 1 AU. The fit of these data by a local FR model provides the axial magnetic field strength, the radius, the magnetic flux and the helicity per unit length along the FR axis. We show that these quantities are statistically independent of the position along the FR axis. We then derive the generic shape and length of the FR axis from two sets of MCs. These results improve the estimation of magnetic helicity. Next, we evaluate the total magnetic flux and helicity crossing the sphere of radius of 1 AU, centered at the Sun, per year and during a solar cycle. We also include in the study two sets of small FRs which do not have all the typical characteristics of MCs. While small FRs are at least ten times more numerous than MCs, the magnetic flux and helicity are dominated by the contribution from the larger MCs. They carry in one year the magnetic flux of about 25 large active regions and the magnetic helicity of 200 of them. MCs carry away an amount of unsigned magnetic helicity comparable to the one estimated for the solar dynamo and the one measured in emerging active regions.
15 pages, 10 figures
References in corpus (6)
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Cited by in corpus (15)
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- Concept of the Solar Ring Mission: Overview
- Magnetic Flux Rope Identification and Characterization from Observationally-Driven Solar Coronal Models
- Magnetic twist profile inside magnetic clouds derived with a superposed epoch analysis
- A Helicity-Based Method to Infer the CME Magnetic Field Magnitude in Sun and Geospace: Generalization and Extension to Sun-Like and M-Dwarf Stars and Implications for Exoplanet Habitability
- A Sun-to-Earth analysis of magnetic helicity of the 17-18 March 2013 interplanetary coronal mass ejection
- Near-Sun and 1 AU magnetic field of coronal mass ejections: A parametric study
- Two Classes of Eruptive Events During Solar Minimum
- Quantitative model for the generic 3D shape of ICMEs at 1 AU
- The Minimal Helicity of Solar Coronal Magnetic Fields
- Additivity of relative magnetic helicity in finite volumes
- A Transient Coronal Sigmoid in Active Region NOAA 11909: Build-up Phase, M-class Eruptive Flare, and Associated Fast Coronal Mass Ejection
- Interaction of Trappist-1 exoplanets with coronal mass ejections: Joule heating, Poynting fluxes and the role of magnetic fields