Predicting the magnetic vectors within coronal mass ejections arriving at Earth: 1. Initial Architecture
arXiv:1502.02067 · doi:10.1002/2015SW001171
Abstract
The process by which the Sun affects the terrestrial environment on short timescales is predominately driven by the amount of magnetic reconnection between the solar wind and Earth's magnetosphere. Reconnection occurs most efficiently when the solar wind magnetic field has a southward component. The most severe impacts are during the arrival of a coronal mass ejection (CME) when the magnetosphere is both compressed and magnetically connected to the heliospheric environment. Unfortunately, forecasting magnetic vectors within coronal mass ejections remains elusive. Here we report how, by combining a statistically robust helicity rule for a CME's solar origin with a simplified flux rope topology the magnetic vectors within the Earth-directed segment of a CME can be predicted. In order to test the validity of this proof-of-concept architecture for estimating the magnetic vectors within CMEs, a total of eight CME events (between 2010 and 2014) have been investigated. With a focus on the large false alarm of January 2014, this work highlights the importance of including the early evolutionary effects of a CME for forecasting purposes. The angular rotation in the predicted magnetic field closely follows the broad rotational structure seen within the in situ data. This time-varying field estimate is implemented into a process to quantitatively predict a time-varying Kp index that is described in detail in paper II. Future statistical work, quantifying the uncertainties in this process, may improve the more heuristic approach used by early forecasting systems.
This paper has been published in Space Weather. Part two is currently under review
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Cited by in corpus (10)
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- Determining the Intrinsic CME Flux Rope Type Using Remote-sensing Solar Disk Observations
- Planar magnetic structures in coronal mass ejection-driven sheath regions
- Prediction of Geomagnetic Storm Strength from Inner Heliospheric In Situ Observations
- Eruptive Event Generator Based on the Gibson-Low Magnetic Configuration
- Using the Coronal Evolution to Successfully Forward Model CMEs' In Situ Magnetic Profiles
- An Observationally Constrained Analytical Model for Predicting the Magnetic Field Vectors of ICMEs at 1 AU
- 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
- Near-Sun and 1 AU magnetic field of coronal mass ejections: A parametric study
- Forecasting Periods of Strong Southward Magnetic Field Following Interplanetary Shocks