Langmuir Wave Excitation in Solar-wind Magnetic Holes

Fuente: arXiv
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Auteurs principaux: Liu, Jingting, Verscharen, Daniel, Coburn, Jesse, Nicolaou, Georgios, Wu, Xiangyu, Jiang, Wence, Pezzi, Oreste, Pucci, Francesco, Zuin, Matteo, Owen, Christopher J., Reid, Hamish
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Publié: 2025
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author Liu, Jingting
Verscharen, Daniel
Coburn, Jesse
Nicolaou, Georgios
Wu, Xiangyu
Jiang, Wence
Pezzi, Oreste
Pucci, Francesco
Zuin, Matteo
Owen, Christopher J.
Reid, Hamish
author_facet Liu, Jingting
Verscharen, Daniel
Coburn, Jesse
Nicolaou, Georgios
Wu, Xiangyu
Jiang, Wence
Pezzi, Oreste
Pucci, Francesco
Zuin, Matteo
Owen, Christopher J.
Reid, Hamish
contents Magnetic holes are structures commonly observed in various space plasma environments throughout the solar system, including the solar wind. These structures are characterized by a localized decrease in magnetic field strength, coincident with an increase in plasma density. Previous observational studies in the solar wind link the presence of Langmuir waves to magnetic holes, suggesting a strong correlation between these phenomena. We develop a model based on magnetic-moment conservation and its violation to explain the excitation of Langmuir waves in magnetic holes. Our model illustrates that magnetic holes induce changes in the electron velocity distribution function that emit electrostatic Langmuir waves due to the bump-on-tail instability. Using data from the Solar Orbiter spacecraft, we provide a comprehensive analysis of this process and test our predictions with observations. The consistency between the model and observations indicates that our proposed process is a viable mechanism for producing Langmuir waves in magnetic holes in the solar wind.
format Preprint
id arxiv_https___arxiv_org_abs_2507_02042
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Langmuir Wave Excitation in Solar-wind Magnetic Holes
Liu, Jingting
Verscharen, Daniel
Coburn, Jesse
Nicolaou, Georgios
Wu, Xiangyu
Jiang, Wence
Pezzi, Oreste
Pucci, Francesco
Zuin, Matteo
Owen, Christopher J.
Reid, Hamish
Space Physics
Solar and Stellar Astrophysics
Plasma Physics
Magnetic holes are structures commonly observed in various space plasma environments throughout the solar system, including the solar wind. These structures are characterized by a localized decrease in magnetic field strength, coincident with an increase in plasma density. Previous observational studies in the solar wind link the presence of Langmuir waves to magnetic holes, suggesting a strong correlation between these phenomena. We develop a model based on magnetic-moment conservation and its violation to explain the excitation of Langmuir waves in magnetic holes. Our model illustrates that magnetic holes induce changes in the electron velocity distribution function that emit electrostatic Langmuir waves due to the bump-on-tail instability. Using data from the Solar Orbiter spacecraft, we provide a comprehensive analysis of this process and test our predictions with observations. The consistency between the model and observations indicates that our proposed process is a viable mechanism for producing Langmuir waves in magnetic holes in the solar wind.
title Langmuir Wave Excitation in Solar-wind Magnetic Holes
topic Space Physics
Solar and Stellar Astrophysics
Plasma Physics
url https://arxiv.org/abs/2507.02042