Influence of Solar Polar Magnetic Fields on the Propagation of Coronal Mass Ejection

Fuente: arXiv
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Autori principali: Zhang, Xiao, Yang, Liping, Feng, Xueshang, Tian, Hui, Ma, Mengxuan, Shen, Fang, He, Jiansen, Zhang, Man, Zhou, Yufen, Wang, Ziwei, Ma, Xinyi, Zhang, Wangning
Natura: Preprint
Pubblicazione: 2026
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author Zhang, Xiao
Yang, Liping
Feng, Xueshang
Tian, Hui
Ma, Mengxuan
Shen, Fang
He, Jiansen
Zhang, Man
Zhou, Yufen
Wang, Ziwei
Ma, Xinyi
Zhang, Wangning
author_facet Zhang, Xiao
Yang, Liping
Feng, Xueshang
Tian, Hui
Ma, Mengxuan
Shen, Fang
He, Jiansen
Zhang, Man
Zhou, Yufen
Wang, Ziwei
Ma, Xinyi
Zhang, Wangning
contents Understanding the propagation of coronal mass ejections (CMEs) through interplanetary space is essential for space weather forecasting. Due to observational limitations, measurements of the photospheric polar magnetic fields remain highly uncertain, and their influence on CME propagation in the heliosphere is still poorly quantified. In this study, we systematically investigate how variations in the photospheric polar magnetic fields affect the Sun-Mars propagation of the 4 December 2021 CME using numerical simulations. The results show that stronger polar fields modify the background solar wind, producing higher plasma density, enhanced magnetic field strength, a flattened heliospheric current sheet, and weakened high-speed streams in the ecliptic plane. These changes markedly slow the CME's radial propagation and inhibit its lateral and radial expansion, leading to notably delayed arrivals at BepiColombo and MAVEN/Tianwen-1. Quantitatively, an enhancement of the polar magnetic fields with a peak value of 6 G at the pole decreases the mean propagation and expansion speeds by roughly 200 km s$^{-1}$ and halves the CME volume. Force analysis reveals that strengthening the polar fields produces only minor changes in the internal force balance of the CME, where the thermal pressure gradient force dominates over the Lorentz force, while it strongly affects the forces acting on the CME surface. At large heliocentric distances, the magnetic pressure of the background solar wind becomes comparable to or even exceeds the aerodynamic drag force, producing a strong confining effect that hinders the CME's motion.
format Preprint
id arxiv_https___arxiv_org_abs_2603_04928
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Influence of Solar Polar Magnetic Fields on the Propagation of Coronal Mass Ejection
Zhang, Xiao
Yang, Liping
Feng, Xueshang
Tian, Hui
Ma, Mengxuan
Shen, Fang
He, Jiansen
Zhang, Man
Zhou, Yufen
Wang, Ziwei
Ma, Xinyi
Zhang, Wangning
Solar and Stellar Astrophysics
Understanding the propagation of coronal mass ejections (CMEs) through interplanetary space is essential for space weather forecasting. Due to observational limitations, measurements of the photospheric polar magnetic fields remain highly uncertain, and their influence on CME propagation in the heliosphere is still poorly quantified. In this study, we systematically investigate how variations in the photospheric polar magnetic fields affect the Sun-Mars propagation of the 4 December 2021 CME using numerical simulations. The results show that stronger polar fields modify the background solar wind, producing higher plasma density, enhanced magnetic field strength, a flattened heliospheric current sheet, and weakened high-speed streams in the ecliptic plane. These changes markedly slow the CME's radial propagation and inhibit its lateral and radial expansion, leading to notably delayed arrivals at BepiColombo and MAVEN/Tianwen-1. Quantitatively, an enhancement of the polar magnetic fields with a peak value of 6 G at the pole decreases the mean propagation and expansion speeds by roughly 200 km s$^{-1}$ and halves the CME volume. Force analysis reveals that strengthening the polar fields produces only minor changes in the internal force balance of the CME, where the thermal pressure gradient force dominates over the Lorentz force, while it strongly affects the forces acting on the CME surface. At large heliocentric distances, the magnetic pressure of the background solar wind becomes comparable to or even exceeds the aerodynamic drag force, producing a strong confining effect that hinders the CME's motion.
title Influence of Solar Polar Magnetic Fields on the Propagation of Coronal Mass Ejection
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2603.04928