Modeling Interplanetary Expansion and Deformation of CMEs with ANTEATR-PARADE I: Relative Contribution of Different Forces
arXiv:2011.06030 · doi:10.1029/2020JA028911
Abstract
Coronal Mass Ejections (CMEs) are key drivers of space weather activity but most predictions have been limited to the expected arrival time of a CME, rather than the internal properties that affect the severity of an impact. Many properties, such as the magnetic field density and mass density, follow conservation laws and vary systematically with changes in the size of a CME. We present ANTEATR-PARADE, the newest version of the ANTEATR arrival time model, which now includes physics-driven changes in the size and shape of both the CME's central axis and its cross section. Internal magnetic and thermal and external drag forces affect the acceleration of the CME in different directions, inducing asymmetries between the radial and perpendicular directions. These improvements should lead to more realistic CME velocities, both bulk and expansion, sizes and shapes, and internal properties. We present the model details, an initial illustration of the general behavior, and a study of the relative importance of the different forces. The model shows a pancaking of both the cross section and central axis of the CME so that their radial extent becomes smaller than their extent in the perpendicular direction. We find that the initial velocities, drag, any form of cross section expansion, and the precise form of thermal expansion have strong effects. The results are less sensitive to axial forces and the specific form of the cross section expansion.
major revision resubmitted to JGR: Space Physics
References in corpus (6)
- Strong coronal channelling and interplanetary evolution of a solar storm up to Earth and Mars
- Ensemble modeling of CMEs using the WSA-ENLIL+Cone model
- Constraints on the Global Structure of Magnetic Clouds: Transverse Size and Curvature
- Global Trends of CME Deflections Based on CME and Solar Parameters
- FRiED: A novel three-dimensional model of coronal mass ejections
- Analysis of the Helical Kink Stability of Differently Twisted Magnetic Flux Ropes
Cited by in corpus (9)
- OSPREI: A Coupled Approach to Modeling CME-Driven Space Weather with Automatically-Generated, User-Friendly Outputs
- Drag-based CME modeling with heliospheric images incorporating frontal deformation: ELEvoHI 2.0
- Why are ELEvoHI CME arrival predictions different if based on STEREO-A or STEREO-B heliospheric imager observations?
- Internal Structure of the 2019 April 2 CME
- Investigating The Cross-section of Coronal Mass Ejections Through the Study of Non-Radial Flows with STEREO/PLASTIC
- Distorted-Toroidal Flux Rope model for Heliospheric Flux Ropes
- Modeling CME encounters at Parker Solar Probe with OSPREI: Dependence on photospheric and coronal conditions
- Interaction of coronal mass ejections and the solar wind. A force analysis
- Predicting the Magnetic Fields of a Stealth CME Detected by Parker Solar Probe at 0.5 AU