Polarity relevance in flux rope deflections triggered by coronal holes
arXiv:2104.07127 · doi:10.1051/0004-6361/202141085
Abstract
Many observations show that coronal holes (CHs) deviate coronal mass ejections (CMEs) away from them. However, there are some peculiar events reported where the opposite occurs. To contribute to a space weather forecast efforts, in relation to the prediction of CME trajectories, we study the interaction between flux ropes (FRs) and CHs through numerical simulations. We perform 2.5D numerical simulations where FRs and CHs interact with different relative polarity configurations. We also reconstruct the trajectory and magnetic environment of a peculiar event occurred on 30 April 2012. The numerical simulations indicate that at low coronal levels, depending on the relative magnetic field polarity between the FR and the CH, the deflection will be attractive, i.e. the FR moves towards the CH (for anti-aligned polarities) or repulsive, i.e. the FR moves away to the CH (for aligned polarities). This is likely due to the formation of vanishing magnetic field regions or null points, located between the FR and the CH or, at the other side of the FR, respectively. The analysed observational event shows a double-deflection, first departing from the radial direction by approaching the CH and then moving away from it suggesting that the trajectory could result from a magnetic configuration with an anti-aligned polarity. We numerically reproduce the double deflection of the observed event, providing support to this conjecture.
References in corpus (7)
- Strong coronal channelling and interplanetary evolution of a solar storm up to Earth and Mars
- Sympathetic Magnetic Breakout Coronal Mass Ejections from Pseudostreamers
- Global Trends of CME Deflections Based on CME and Solar Parameters
- Origins of Rolling, Twisting and Non-Radial Propagation of Eruptive Solar Events
- Characteristics of Low-Latitude Coronal Holes near the Maximum of Solar cycle 24
- Analysis of large deflections of prominence-CME events during the rising phase of solar cycle 24
- Influence of coronal holes on CME deflections: numerical study