Forecasting the 8 April 2024 Total Solar Eclipse with Multiple Solar Photospheric Magnetograms

Fuente: arXiv
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Main Authors: Liu, Xianyu, Liu, Weihao, Manchester IV, Ward B., Welling, Daniel T., Tóth, Gábor, Gombosi, Tamas I., DeRosa, Marc L., Bertello, Luca, Pevtsov, Alexei A., Pevtsov, Alexander A., Reardon, Kevin, Wilbanks, Kathryn, Rewoldt, Amy, Zhao, Lulu
Format: Preprint
Published: 2025
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author Liu, Xianyu
Liu, Weihao
Manchester IV, Ward B.
Welling, Daniel T.
Tóth, Gábor
Gombosi, Tamas I.
DeRosa, Marc L.
Bertello, Luca
Pevtsov, Alexei A.
Pevtsov, Alexander A.
Reardon, Kevin
Wilbanks, Kathryn
Rewoldt, Amy
Zhao, Lulu
author_facet Liu, Xianyu
Liu, Weihao
Manchester IV, Ward B.
Welling, Daniel T.
Tóth, Gábor
Gombosi, Tamas I.
DeRosa, Marc L.
Bertello, Luca
Pevtsov, Alexei A.
Pevtsov, Alexander A.
Reardon, Kevin
Wilbanks, Kathryn
Rewoldt, Amy
Zhao, Lulu
contents The 8 April 2024 total solar eclipse (TSE) provides a unique opportunity to study the solar corona. This work presents our prediction of the solar corona at the time of the eclipse based on magnetohydrodynamic (MHD) modeling performed with the Alfvén Wave Solar Model-Realtime (AWSoM-R) in the Space Weather Modeling Framework, developed at the University of Michigan. We performed multiple simulations made with data input in the form of synchronic magnetograms from four sources, i.e., ADAPT-GONG, Lockheed Martin ESFAM, HipFT and NSO-NRT magnetograms. Simulations also include a higher-resolution model and a post-eclipse model incorporating newly emerged active regions. Our study fundamentally focuses on the limitations imposed by the lack of global solar observations, particularly on how these limitations affect coronal simulations. Specifically, we examine how differences among the magnetograms and the absence of observations from the east limb, due to the Sun's rotation, impact the accuracy of the predicted coronal structures. We synthesized a variety of representative observables, including the white-light and extreme-ultraviolet images from each model, and compared them with observations. The synthesized observables show remarkable differences because of the distinct magnetic coronal topologies, which stem from the varied magnetic flux distributions and the gaps in observational coverage. Our findings emphasize the need for comprehensive and multi-satellite magnetic field observations to improve future solar corona predictions.
format Preprint
id arxiv_https___arxiv_org_abs_2503_10974
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Forecasting the 8 April 2024 Total Solar Eclipse with Multiple Solar Photospheric Magnetograms
Liu, Xianyu
Liu, Weihao
Manchester IV, Ward B.
Welling, Daniel T.
Tóth, Gábor
Gombosi, Tamas I.
DeRosa, Marc L.
Bertello, Luca
Pevtsov, Alexei A.
Pevtsov, Alexander A.
Reardon, Kevin
Wilbanks, Kathryn
Rewoldt, Amy
Zhao, Lulu
Solar and Stellar Astrophysics
The 8 April 2024 total solar eclipse (TSE) provides a unique opportunity to study the solar corona. This work presents our prediction of the solar corona at the time of the eclipse based on magnetohydrodynamic (MHD) modeling performed with the Alfvén Wave Solar Model-Realtime (AWSoM-R) in the Space Weather Modeling Framework, developed at the University of Michigan. We performed multiple simulations made with data input in the form of synchronic magnetograms from four sources, i.e., ADAPT-GONG, Lockheed Martin ESFAM, HipFT and NSO-NRT magnetograms. Simulations also include a higher-resolution model and a post-eclipse model incorporating newly emerged active regions. Our study fundamentally focuses on the limitations imposed by the lack of global solar observations, particularly on how these limitations affect coronal simulations. Specifically, we examine how differences among the magnetograms and the absence of observations from the east limb, due to the Sun's rotation, impact the accuracy of the predicted coronal structures. We synthesized a variety of representative observables, including the white-light and extreme-ultraviolet images from each model, and compared them with observations. The synthesized observables show remarkable differences because of the distinct magnetic coronal topologies, which stem from the varied magnetic flux distributions and the gaps in observational coverage. Our findings emphasize the need for comprehensive and multi-satellite magnetic field observations to improve future solar corona predictions.
title Forecasting the 8 April 2024 Total Solar Eclipse with Multiple Solar Photospheric Magnetograms
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2503.10974