Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction

A key challenge in space weather forecasting is accurately predicting the magnetic field topology of interplanetary coronal mass ejections (ICMEs), specifically the north–south magnetic field component ( B _z ) for Earth-directed CMEs. Heliospheric MHD models typically use spheromaks to represent th...

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Published in:The Astrophysical Journal Supplement Series
Main Authors: Ranadeep Sarkar, Jens Pomoell, Emilia Kilpua, Eleanna Asvestari, Nicolas Wijsen, Anwesha Maharana, Stefaan Poedts
Format: Article
Language:English
Published: IOP Publishing 2024-01-01
Subjects:
Online Access:https://doi.org/10.3847/1538-4365/ad0df4
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author Ranadeep Sarkar
Jens Pomoell
Emilia Kilpua
Eleanna Asvestari
Nicolas Wijsen
Anwesha Maharana
Stefaan Poedts
author_facet Ranadeep Sarkar
Jens Pomoell
Emilia Kilpua
Eleanna Asvestari
Nicolas Wijsen
Anwesha Maharana
Stefaan Poedts
author_sort Ranadeep Sarkar
collection DOAJ
container_title The Astrophysical Journal Supplement Series
description A key challenge in space weather forecasting is accurately predicting the magnetic field topology of interplanetary coronal mass ejections (ICMEs), specifically the north–south magnetic field component ( B _z ) for Earth-directed CMEs. Heliospheric MHD models typically use spheromaks to represent the magnetic structure of CMEs. However, when inserted into the ambient interplanetary magnetic field, spheromaks can experience a phenomenon reminiscent of the condition known as the “spheromak tilting instability,” causing its magnetic axis to rotate. From the perspective of space weather forecasting, it is crucial to understand the effect of this rotation on predicting B _z at 1 au while implementing the spheromak model for realistic event studies. In this work, we study this by modeling a CME event on 2013 April 11 using the European Heliospheric Forecasting Information Asset. Our results show that a significant spheromak rotation up to 90° has occurred by the time it reaches 1 au, while the majority of this rotation occurs below 0.3 au. This total rotation resulted in poor predicted magnetic field topology of the ICME at 1 au. To address this issue, we further investigated the influence of spheromak density on mitigating rotation. The results show that the spheromak rotation is less for higher densities. Importantly, we observe a substantial reduction in the uncertainties associated with predicting B _z when there is minimal spheromak rotation. Therefore, we conclude that spheromak rotation adversely affects B _z prediction in the analyzed event, emphasizing the need for caution when employing spheromaks in global MHD models for space weather forecasting.
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spelling doaj-art-cfdfe45f5ba0477d97cb09e558ecd6442025-08-19T21:46:59ZengIOP PublishingThe Astrophysical Journal Supplement Series0067-00492024-01-0127021810.3847/1538-4365/ad0df4Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z PredictionRanadeep Sarkar0https://orcid.org/0000-0001-6457-5207Jens Pomoell1https://orcid.org/0000-0003-1175-7124Emilia Kilpua2Eleanna Asvestari3https://orcid.org/0000-0002-6998-7224Nicolas Wijsen4https://orcid.org/0000-0001-6344-6956Anwesha Maharana5https://orcid.org/0000-0002-4269-056XStefaan Poedts6https://orcid.org/0000-0002-1743-0651Department of Physics, University of Helsinki , Helsinki, Finland ; ranadeep.sarkar@helsinki.fiDepartment of Physics, University of Helsinki , Helsinki, Finland ; ranadeep.sarkar@helsinki.fiDepartment of Physics, University of Helsinki , Helsinki, Finland ; ranadeep.sarkar@helsinki.fiDepartment of Physics, University of Helsinki , Helsinki, Finland ; ranadeep.sarkar@helsinki.fiNASA Goddard Space Flight Center , Greenbelt, MD 20771, USA; Department of Astronomy, University of Maryland College Park , MD 20742, USACentre for Mathematical Plasma Astrophysics , KU Leuven, Leuven, Belgium; Royal Observatory of Belgium , B-1180 Uccle, BelgiumCentre for mathematical Plasma Astrophysics (CmPA)/Dept. of Mathematics , KU Leuven, B-3001 Leuven, Belgium; Institute of Physics, University of Curie-Skłodowska , ul. Radziszewskiego 10, 20-031 Lublin, PolandA key challenge in space weather forecasting is accurately predicting the magnetic field topology of interplanetary coronal mass ejections (ICMEs), specifically the north–south magnetic field component ( B _z ) for Earth-directed CMEs. Heliospheric MHD models typically use spheromaks to represent the magnetic structure of CMEs. However, when inserted into the ambient interplanetary magnetic field, spheromaks can experience a phenomenon reminiscent of the condition known as the “spheromak tilting instability,” causing its magnetic axis to rotate. From the perspective of space weather forecasting, it is crucial to understand the effect of this rotation on predicting B _z at 1 au while implementing the spheromak model for realistic event studies. In this work, we study this by modeling a CME event on 2013 April 11 using the European Heliospheric Forecasting Information Asset. Our results show that a significant spheromak rotation up to 90° has occurred by the time it reaches 1 au, while the majority of this rotation occurs below 0.3 au. This total rotation resulted in poor predicted magnetic field topology of the ICME at 1 au. To address this issue, we further investigated the influence of spheromak density on mitigating rotation. The results show that the spheromak rotation is less for higher densities. Importantly, we observe a substantial reduction in the uncertainties associated with predicting B _z when there is minimal spheromak rotation. Therefore, we conclude that spheromak rotation adversely affects B _z prediction in the analyzed event, emphasizing the need for caution when employing spheromaks in global MHD models for space weather forecasting.https://doi.org/10.3847/1538-4365/ad0df4Solar coronal mass ejectionsSpace weatherMagnetohydrodynamical simulationsInterplanetary magnetic fields
spellingShingle Ranadeep Sarkar
Jens Pomoell
Emilia Kilpua
Eleanna Asvestari
Nicolas Wijsen
Anwesha Maharana
Stefaan Poedts
Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
Solar coronal mass ejections
Space weather
Magnetohydrodynamical simulations
Interplanetary magnetic fields
title Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
title_full Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
title_fullStr Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
title_full_unstemmed Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
title_short Studying the Spheromak Rotation in Data-constrained Coronal Mass Ejection Modeling with EUHFORIA and Assessing Its Effect on the B z Prediction
title_sort studying the spheromak rotation in data constrained coronal mass ejection modeling with euhforia and assessing its effect on the b z prediction
topic Solar coronal mass ejections
Space weather
Magnetohydrodynamical simulations
Interplanetary magnetic fields
url https://doi.org/10.3847/1538-4365/ad0df4
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