Ion-Scale Solitary Structures in the Solar Wind Observed by Solar Orbiter and Parker Solar Probe

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Yang, Yufei, Horbury, Timothy S., Trotta, Domenico, Matteini, Lorenzo, Wang, Joseph H., Fedorov, Andrey, Louarn, Philippe, Bale, Stuart, Pulupa, Marc, Larson, Davin E., Livi, Roberto, Stevens, Michael, Maksimovic, Milan, Khotyaintsev, Yuri, Larosa, Andrea
Formato: Preprint
Publicado: 2024
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866908668663955456
author Yang, Yufei
Horbury, Timothy S.
Trotta, Domenico
Matteini, Lorenzo
Wang, Joseph H.
Fedorov, Andrey
Louarn, Philippe
Bale, Stuart
Pulupa, Marc
Larson, Davin E.
Livi, Roberto
Stevens, Michael
Maksimovic, Milan
Khotyaintsev, Yuri
Larosa, Andrea
author_facet Yang, Yufei
Horbury, Timothy S.
Trotta, Domenico
Matteini, Lorenzo
Wang, Joseph H.
Fedorov, Andrey
Louarn, Philippe
Bale, Stuart
Pulupa, Marc
Larson, Davin E.
Livi, Roberto
Stevens, Michael
Maksimovic, Milan
Khotyaintsev, Yuri
Larosa, Andrea
contents We investigate a class of ion-scale magnetic solitary structures in the solar wind, characterized by distinct magnetic field enhancements and bipolar rotations over spatial scales of several proton inertial lengths. These structures are revisited using high-resolution data from the Solar Orbiter and Parker Solar Probe missions. Using a machine learning-based method, we identified nearly a thousand such structures, providing new insights into their evolution and physical properties. Statistical analysis shows that these structures are more abundant closer to the Sun, with occurrence rates peaking around (30 - 40, R_sun) and decreasing farther out. High-cadence measurements reveal that these structures are predominantly found in low-beta (beta <= 1) environments, with consistent fluctuations in density, velocity, and magnetic field. Magnetic field enhancements are often accompanied by plasma density drops, which, under near pressure balance, limit field increases. This leads to small fractional field enhancements near the Sun (approximately 0.01 at 20 R_sun), making detection challenging. Magnetic field variance analysis indicates that these structures are primarily oblique to the local magnetic field. Alfvénic velocity-magnetic field correlations suggest that most of these structures, unlike most near-Sun solar wind fluctuations, exhibit sunward-directed Alfvénic polarization in the plasma frame. We compare these findings with previous studies, discussing possible generation mechanisms and their implications for the turbulent cascade in the near-Sun Alfvénic solar wind. While these structures might be Alfvénic solitons, vortices, or flux ropes, we refrain from a definitive classification pending further evidence. Further high-resolution observations and simulations are needed to fully understand their origins and impacts.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16824
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Ion-Scale Solitary Structures in the Solar Wind Observed by Solar Orbiter and Parker Solar Probe
Yang, Yufei
Horbury, Timothy S.
Trotta, Domenico
Matteini, Lorenzo
Wang, Joseph H.
Fedorov, Andrey
Louarn, Philippe
Bale, Stuart
Pulupa, Marc
Larson, Davin E.
Livi, Roberto
Stevens, Michael
Maksimovic, Milan
Khotyaintsev, Yuri
Larosa, Andrea
Space Physics
Solar and Stellar Astrophysics
Plasma Physics
We investigate a class of ion-scale magnetic solitary structures in the solar wind, characterized by distinct magnetic field enhancements and bipolar rotations over spatial scales of several proton inertial lengths. These structures are revisited using high-resolution data from the Solar Orbiter and Parker Solar Probe missions. Using a machine learning-based method, we identified nearly a thousand such structures, providing new insights into their evolution and physical properties. Statistical analysis shows that these structures are more abundant closer to the Sun, with occurrence rates peaking around (30 - 40, R_sun) and decreasing farther out. High-cadence measurements reveal that these structures are predominantly found in low-beta (beta <= 1) environments, with consistent fluctuations in density, velocity, and magnetic field. Magnetic field enhancements are often accompanied by plasma density drops, which, under near pressure balance, limit field increases. This leads to small fractional field enhancements near the Sun (approximately 0.01 at 20 R_sun), making detection challenging. Magnetic field variance analysis indicates that these structures are primarily oblique to the local magnetic field. Alfvénic velocity-magnetic field correlations suggest that most of these structures, unlike most near-Sun solar wind fluctuations, exhibit sunward-directed Alfvénic polarization in the plasma frame. We compare these findings with previous studies, discussing possible generation mechanisms and their implications for the turbulent cascade in the near-Sun Alfvénic solar wind. While these structures might be Alfvénic solitons, vortices, or flux ropes, we refrain from a definitive classification pending further evidence. Further high-resolution observations and simulations are needed to fully understand their origins and impacts.
title Ion-Scale Solitary Structures in the Solar Wind Observed by Solar Orbiter and Parker Solar Probe
topic Space Physics
Solar and Stellar Astrophysics
Plasma Physics
url https://arxiv.org/abs/2412.16824