Determining the Intrinsic CME Flux Rope Type Using Remote-sensing Solar Disk Observations
arXiv:1701.08595 · doi:10.1007/s11207-017-1063-x
Abstract
A key aim in space weather research is to be able to use remote-sensing observations of the solar atmosphere to extend the lead time of predicting the geoeffectiveness of a coronal mass ejection (CME). In order to achieve this, the magnetic structure of the CME as it leaves the Sun must be known. In this article we address this issue by developing a method to determine the intrinsic flux rope type of a CME solely from solar disk observations. We use several well known proxies for the magnetic helicity sign, the axis orientation, and the axial magnetic field direction to predict the magnetic structure of the interplanetary flux rope. We present two case studies: the 2 June 2011 and the 14 June 2012 CMEs. Both of these events erupted from an active region and, despite having clear in situ counterparts, their eruption characteristics were relatively complex. The first event was associated with an active region filament that erupted in two stages, while for the other event the eruption originated from a relatively high coronal altitude and the source region did not feature the presence of a filament. Our magnetic helicity sign proxies include the analysis of magnetic tongues, soft X-ray and/or EUV sigmoids, coronal arcade skew, filament emission and absorption threads, and filament rotation. Since the inclination of the post-eruption arcades was not clear, we use the tilt of the polarity inversion line to determine the flux rope axis orientation, and coronal dimmings to determine the flux rope footpoints and, therefore, the direction of the axial magnetic field. The comparison of the estimated intrinsic flux rope structure to in situ observations at the Lagrangian point L1 indicated a good agreement with the predictions. Our results highlight the flux rope type determination techniques that are particularly useful for active region eruptions, where most geoeffective CMEs originate.
24 pages, 7 figures, accepted for publication in Solar Physics
References in corpus (11)
- Torus instability
- No Trace Left Behind: Stereo Observation of a Coronal Mass Ejection without Low Coronal Signatures
- Progressive transformation of a flux rope to an ICME
- Kinematic Evolution of a Slow CME in Corona Viewed by STEREO-B on 8 October 2007
- Flux Rope Formation Preceding Coronal Mass Ejection Onset
- The Counter-kink Rotation of a Non-Hale Active Region
- FRiED: A novel three-dimensional model of coronal mass ejections
- Predicting the magnetic vectors within coronal mass ejections arriving at Earth: 1. Initial Architecture
- Relationship between EIT Post Eruption Arcades, Coronal Mass Ejections, Coronal Neutral Line and Magnetic Clouds
- Planar magnetic structures in coronal mass ejection-driven sheath regions
- Prediction of Geomagnetic Storm Strength from Inner Heliospheric In Situ Observations
Cited by in corpus (21)
- 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
- Regularized Biot-Savart Laws for Modeling Magnetic Flux Ropes
- Implementation and validation of the FRi3D flux rope model in EUHFORIA
- CME Evolution in the Structured Heliosphere and Effects at Earth and Mars During Solar Minimum
- CME Magnetic Structure and IMF Preconditioning Affecting SEP Transport
- Modelling a multi-spacecraft coronal mass ejection encounter with EUHFORIA
- Modelling the Effect of Mass-Draining on Prominence Eruptions
- Using the Coronal Evolution to Successfully Forward Model CMEs' In Situ Magnetic Profiles
- Multipoint study of successive coronal mass ejections driving moderate disturbances at 1 AU
- An Observationally Constrained Analytical Model for Predicting the Magnetic Field Vectors of ICMEs at 1 AU
- Investigating Remote-sensing Techniques to Reveal Stealth Coronal Mass Ejections
- Optimization of Magnetic Flux Ropes Modeled with the RBSL method
- Forecasting Periods of Strong Southward Magnetic Field Following Interplanetary Shocks
- Over-expansion of coronal mass ejections modelled using 3D MHD EUHFORIA simulations
- Synoptic solar observations of the Solar Flare Telescope focusing on space weather
- The Magnetic Environment of a Stealth Coronal Mass Ejection
- Modeling CME encounters at Parker Solar Probe with OSPREI: Dependence on photospheric and coronal conditions
- New Observations Needed to Advance Our Understanding of Coronal Mass Ejections
- Predicting the Magnetic Fields of a Stealth CME Detected by Parker Solar Probe at 0.5 AU
- Magnetic Structure and Propagation of Two Interacting CMEs from the Sun to Saturn