The Interaction of Two Coronal Mass Ejections: Influence of Relative Orientation
arXiv:1309.2210 · doi:10.1088/0004-637X/778/1/20
Abstract
We report on a numerical investigation of two coronal mass ejections (CMEs) which interact as they propagate in the inner heliosphere. We focus on the effect of the orientation of the CMEs relative to each other by performing four different simulations with the axis of the second CME rotated by 90 degrees from one simulation to the next. Each magneto-hydrodynamic (MHD) simulation is performed in three dimensions (3-D) with the Space Weather Modeling Framework (SWMF) in an idealized setting reminiscent of solar minimum conditions. We extract synthetic satellite measurements during and after the interaction and compare the different cases. We also analyze the kinematics of the two CMEs, including the evolution of their widths and aspect ratios. We find that the first CME contracts radially as a result of the interaction in all cases, but the amount of subsequent radial expansion depends on the relative orientation of the two CMEs. Reconnection between the two ejecta and between the ejecta and the interplanetary magnetic field (IMF) determines the type of structure resulting from the interaction. When a CME with a high inclination with respect to the ecliptic overtakes one with a low inclination, it is possible to create a compound event with a smooth rotation in the magnetic field vector over more than 180 degrees. Due to reconnection, the second CME only appears as an extended "tail", and the event may be mistaken for a glancing encounter with an isolated CME. This configuration differs significantly from the one usually studied of a multiple-magnetic cloud event, which we found to be associated with the interaction of two CMEs with the same orientation.
15 pages, 10 figures, 1 table; revised version to ApJ
References in corpus (8)
- Sympathetic Magnetic Breakout Coronal Mass Ejections from Pseudostreamers
- Global and local expansion of magnetic clouds in the inner heliosphere
- Linking two consecutive nonmerging magnetic clouds with their solar sources
- Solar-Terrestrial Simulation in the STEREO Era: The January 24-25, 2007 Eruptions
- Magnetohydrodynamic simulation of the interaction between two interplanetary magnetic clouds and its consequent geoeffectiveness
- Magnetohydrodynamic Simulation of the Interaction between Interplanetary Strong Shock and Magnetic Cloud and its Consequent Geoeffectiveness
- Magnetohydrodynamic simulation of the interaction between two interplanetary magnetic clouds and its consequent geoeffectiveness: 2. Oblique collision
- Magnetohydrodynamic Simulation of the Interaction between Interplanetary Strong Shock and Magnetic Cloud and its Consequent Geoeffectiveness 2: Oblique Collision
Cited by in corpus (25)
- The Interaction of Successive Coronal Mass Ejections: A Review
- CME-CME Interactions as Sources of CME Geo-effectiveness: The Formation of the Complex Ejecta and Intense Geomagnetic Storm in Early September 2017
- Chromosphere to 1 AU Simulation of the 2011 March 7th Event: A Comprehensive Study of Coronal Mass Ejection Propagation
- Factors Affecting the Geo-effectiveness of Shocks and Sheaths at 1 AU
- Shocks inside CMEs: A Survey of Properties from 1997 to 2006
- Investigating plasma motion of magnetic clouds at 1 AU through a velocity-modified cylindrical force-free flux rope model
- Asymmetry in the CME-CME interaction process for the events from 2011 February 14-15
- A New Class of Complex Ejecta Resulting from the Interaction of two CMEs and its Expected Geoeffectiveness
- A Numerical Study of Long-Range Magnetic Impacts during Coronal Mass Ejections
- On Sun-to-Earth Propagation of Coronal Mass Ejections: 2. Slow Events and Comparison with Others
- CME Magnetic Structure and IMF Preconditioning Affecting SEP Transport
- Using the Coronal Evolution to Successfully Forward Model CMEs' In Situ Magnetic Profiles
- Assessing the collision nature of coronal mass ejections in the inner heliosphere
- Causes and Consequences of Magnetic Complexity Changes within Interplanetary Coronal Mass Ejections: a Statistical Study
- Direct First PSP Observation of the Interaction of Two Successive Interplanetary Coronal Mass Ejections in November 2020
- On Understanding the Nature of Collision of Coronal Mass Ejections Observed by \textit{STEREO}
- Multi-Spacecraft Observations of the Evolution of Interplanetary Coronal Mass Ejections Between 0.3 and 2.2 AU: Conjunctions with the Juno Spacecraft
- Drag-based CME modeling with heliospheric images incorporating frontal deformation: ELEvoHI 2.0
- Effect of the solar wind density on the evolution of normal and inverse coronal mass ejections
- Evolution of CME Properties in the Inner Heliosphere: Prediction for Solar Orbiter and Parker Solar Probe
- Physics-Based Simulation of the 2013 April 11 Solar Energetic Particle Event
- Recurrent CME-like Eruptions in Emerging Flux Regions. II. Scaling of Energy and Collision of Successive Eruptions
- Magnetic interaction analysis of multiple interplanetary coronal mass ejections leading to a historic geomagnetic storm in May 2024
- Solving 3D Magnetohydrostatics with RBF-FD: Applications to the Solar Corona
- Magnetic Structure and Propagation of Two Interacting CMEs from the Sun to Saturn