Over-expansion of coronal mass ejections modelled using 3D MHD EUHFORIA simulations
C. Verbeke, B. Schmieder, P. D\'emoulin, S. Dasso, B. Grison, E., Samara, C. Scolini, S. Poedts

TL;DR
This study uses 3D MHD EUHFORIA simulations to model the over-expansion of coronal mass ejections, explaining low-density observations at Earth and improving understanding of CME evolution during space weather events.
Contribution
It demonstrates how adjusting initial magnetic pressure in simulations accounts for CME over-expansion and low-density ICMEs, advancing modeling accuracy.
Findings
Over-expansion causes low-density ICMEs at 1 au.
Adjusting initial magnetic pressure improves simulation-observation agreement.
Magnetic configuration near the Sun influences CME evolution.
Abstract
Coronal mass ejections (CMEs) are large scale eruptions observed close to the Sun. They are travelling through the heliosphere and possibly interacting with the Earth environment creating interruptions or even damaging new technology instruments. Most of the time their physical conditions (velocity, density, pressure) are only measured in situ at one point in space, with no possibility to have information on the variation of these parameters during their journey from Sun to Earth. Our aim is to understand the evolution of internal physical parameters of a set of three particular fast halo CMEs. These CMEs were launched between 15 and 18 July 2002. Surprisingly, the related interplanetary CMEs (ICMEs), observed near Earth, have a low, and in one case even very low, plasma density. We use the EUropean Heliosphere FORecasting Information Asset (EUHFORIA) model to simulate the propagation…
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