How can a Negative Magnetic Helicity Active Region Generate a Positive Helicity Magnetic Cloud ?
arXiv:0910.0968 · doi:10.1007/s11207-009-9470-2
Abstract
The geoeffective magnetic cloud (MC) of 20 November 2003, has been associated to the 18 November 2003, solar active events in previous studies. In some of these, it was estimated that the magnetic helicity carried by the MC had a positive sign, as well as its solar source, active region (AR) NOAA 10501. In this paper we show that the large-scale magnetic field of AR 10501 had a negative helicity sign. Since coronal mass ejections (CMEs) are one of the means by which the Sun ejects magnetic helicity excess into the interplanetary space, the signs of magnetic helicity in the AR and MC should agree. Therefore, this finding contradicts what is expected from magnetic helicity conservation. However, using for the first time correct helicity density maps to determine the spatial distribution of magnetic helicity injection, we show the existence of a localized flux of positive helicity in the southern part of AR 10501. We conclude that positive helicity was ejected from this portion of the AR leading to the observed positive helicity MC.
26 pages, 11 figures, accepted in Solar Physics
References in corpus (3)
Cited by in corpus (43)
- Flare-productive active regions
- Magnetic Field Structures Triggering Solar Flares and Coronal Mass Ejections
- The Magnetic Field in the Solar Atmosphere
- Solar filament eruptions and their physical role in triggering Coronal Mass Ejections
- CME-CME Interactions as Sources of CME Geo-effectiveness: The Formation of the Complex Ejecta and Intense Geomagnetic Storm in Early September 2017
- Observation-based modelling of magnetised Coronal Mass Ejections with EUHFORIA
- Magnetic Flux Ropes in the Solar Corona: Structure and Evolution toward Eruption
- Homologous Flares and Magnetic Field Topology in Active Region NOAA 10501 on 20 November 2003
- On the injection of helicity by shearing motion of fluxes in relation to Flares and CMEs
- Global Dynamics of Subsurface Solar Active Regions
- Evolution of Solar Magnetic Field and Associated Multi-wavelength Phenomena: Flare events on 20 November 2003
- The origin of net electric currents in solar active regions
- Time Evolution of Coronal Magnetic Helicity in the Flaring Active Region NOAA 10930
- Double-Decker Filament Configuration Revealed by Mass Motions
- Direct evidence: twisted flux tube emergence creates solar active regions
- Can we explain non-typical solar flares?
- Photospheric Injection of Magnetic Helicity: Connectivity--based Flux Density Method
- Two Step Filament Eruption During 14-15 March 2015
- A Challenging Solar Eruptive Event of 18 November 2003 and the Causes of the 20 November Geomagnetic Superstorm. IV. Unusual Magnetic Cloud and Overall Scenario
- A Multiwavelength Study of Eruptive Events on January 23, 2012 Associated with a Major Solar Energetic Particle Event
- First observational application of a connectivity--based helicity flux density
- Successive Injection of Opposite Magnetic Helicity in Solar Active Region NOAA 11928
- A Challenging Solar Eruptive Event of 18 November 2003 and the Causes of the 20 November Geomagnetic Superstorm. II. CMEs, Shock Waves, and Drifting Radio Bursts
- The emergence of magnetic flux and its role on the onset of solar dynamic events
- A Challenging Solar Eruptive Event of 18 November 2003 and the Causes of the 20 November Geomagnetic Superstorm. I. Unusual History of an Eruptive Filament
- Extreme solar storms based on solar magnetic field
- Differences in periodic magnetic helicity injection behaviour between flaring and non-flaring Active Regions: Case Study
- Can We Determine the Filament Chirality by the Filament Footpoint Location or the Barb-bearing?
- Interactions of twisted -loops in a model solar convection zone
- Determining the Transport of Magnetic Helicity and Free Energy in the Sun's Atmosphere
- A Challenging Solar Eruptive Event of 18 November 2003 and the Causes of the 20 November Geomagnetic Superstorm. III. Catastrophe of the Eruptive Filament at a Magnetic Null Point and Formation of an Opposite-Handedness CME
- The Formation of a Magnetic Channel by the Emergence of Current-carrying Magnetic Fields
- Two Types of Long-duration Quasi-static Evolution of Solar Filaments
- Multiwavelength Study on Solar and Interplanetary Origins of the Strongest Geomagnetic Storm of Solar Cycle 23
- Filament Eruption Driving EUV Loop Contraction then Expansion above a Stable Filament
- A Survey of Changes in Magnetic Helicity Flux on the Photosphere During Relatively Low Class Flares
- Studying the transfer of magnetic helicity in solar active regions with the connectivity-based helicity flux density method
- Two successive partial mini-filament confined ejections
- Does a solar filament barb always correspond to a prominence foot?
- Homologous prominence non-radial eruptions: A case study
- Sympathetic Quiet and Active Region Filament Eruptions
- Covert connection of filaments
- The Observations of Magnetic Reconnection During the Interaction Process of Two Active Region Filaments