Multi spacecraft study with the Icarus model: Modelling the propagation of CMEs to Mercury and Earth

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Hauptverfasser: Baratashvili, Tinatin, Grison, Benjamin, Schmieder, Brigitte, Demoulin, Pascal, Poedts, Stefaan
Format: Preprint
Veröffentlicht: 2024
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author Baratashvili, Tinatin
Grison, Benjamin
Schmieder, Brigitte
Demoulin, Pascal
Poedts, Stefaan
author_facet Baratashvili, Tinatin
Grison, Benjamin
Schmieder, Brigitte
Demoulin, Pascal
Poedts, Stefaan
contents Coronal Mass Ejections (CMEs) are the main drivers of the disturbances in interplanetary space. Understanding the CME interior magnetic structure is crucial for advancing space weather studies. Assessing the capabilities of a numerical heliospheric model is crucial, as understanding the nature and extent of its limitations can be used for improving the model and the space weather predictions based on it. The present paper aims to test the capabilities of the recently developed heliospheric model Icarus and the linear force-free spheromak model that has been implemented in it. To validate the Icarus space weather modeling tool, two CME events were selected that were observed by two spacecraft located near Mercury and Earth, respectively. This enables testing the heliospheric model computed with Icarus at two distant locations. The source regions for the CMEs were identified, and the CME parameters were determined and later optimized. Different adaptive mesh refinement levels were applied in the simulations to assess its performance by comparing the simulation results to in-situ measurements. The first CME event erupted on SOL2013-07-09T15:24. The modeled time series were in good agreement with the observations both at MESSENGER and ACE. The second CME event started on SOL2014-02-16T10:24 and was more complicated, as three CME interactions occurred in this event. It was impossible to recover the observed profiles without modeling the other two CMEs that were observed, one before the main CME and one afterward. For both CME studies, AMR level 3 was sufficient to reconstruct small-scale features near Mercury, while at Earth, AMR level 4 was necessary due to the radially stretched grid that was used.
format Preprint
id arxiv_https___arxiv_org_abs_2405_17988
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multi spacecraft study with the Icarus model: Modelling the propagation of CMEs to Mercury and Earth
Baratashvili, Tinatin
Grison, Benjamin
Schmieder, Brigitte
Demoulin, Pascal
Poedts, Stefaan
Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
Space Physics
Coronal Mass Ejections (CMEs) are the main drivers of the disturbances in interplanetary space. Understanding the CME interior magnetic structure is crucial for advancing space weather studies. Assessing the capabilities of a numerical heliospheric model is crucial, as understanding the nature and extent of its limitations can be used for improving the model and the space weather predictions based on it. The present paper aims to test the capabilities of the recently developed heliospheric model Icarus and the linear force-free spheromak model that has been implemented in it. To validate the Icarus space weather modeling tool, two CME events were selected that were observed by two spacecraft located near Mercury and Earth, respectively. This enables testing the heliospheric model computed with Icarus at two distant locations. The source regions for the CMEs were identified, and the CME parameters were determined and later optimized. Different adaptive mesh refinement levels were applied in the simulations to assess its performance by comparing the simulation results to in-situ measurements. The first CME event erupted on SOL2013-07-09T15:24. The modeled time series were in good agreement with the observations both at MESSENGER and ACE. The second CME event started on SOL2014-02-16T10:24 and was more complicated, as three CME interactions occurred in this event. It was impossible to recover the observed profiles without modeling the other two CMEs that were observed, one before the main CME and one afterward. For both CME studies, AMR level 3 was sufficient to reconstruct small-scale features near Mercury, while at Earth, AMR level 4 was necessary due to the radially stretched grid that was used.
title Multi spacecraft study with the Icarus model: Modelling the propagation of CMEs to Mercury and Earth
topic Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
Space Physics
url https://arxiv.org/abs/2405.17988