Kinetic-Scale Physics of a Multi-Species Solar Wind

Fuente: arXiv
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Auteurs principaux: Moeslinger, Anja, Gunell, Herbert, Wieser, Gabriella Stenberg, Nilsson, Hans, Fatemi, Shahab
Format: Preprint
Publié: 2025
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author Moeslinger, Anja
Gunell, Herbert
Wieser, Gabriella Stenberg
Nilsson, Hans
Fatemi, Shahab
author_facet Moeslinger, Anja
Gunell, Herbert
Wieser, Gabriella Stenberg
Nilsson, Hans
Fatemi, Shahab
contents The solar wind affects the plasma environment around all solar system bodies. A strong solar wind dynamic pressure pushes plasma boundaries closer to these objects. For small objects kinetic effects on scales smaller than an ion gyroradius play an important role, and species with various mass-per-charge may act differently. In this case the solar wind composition can be important. Protons are the dominant ion species in the solar wind; however, sometimes the density of alpha particles increases significantly. We analyse the effect of different solar wind alpha-to-proton ratios on the plasma boundaries of the induced cometary magnetosphere. In addition, we investigate the energy transfer between the solar wind ions, the cometary ions, and the electromagnetic fields. Using the hybrid model Amitis, we simulate two different alpha-to-proton ratios and analyse the resulting plasma structures. We calculate the power density (E.J) of all three ion species (solar wind protons and alphas, and cometary ions) to identify load and generator regions. The integrated 1D power density shows the evolution of the power density from the upstream solar wind to downstream of the nucleus. A higher alpha-to-proton ratio leads to a larger comet magnetosphere but weaker magnetic field pile-up. The protons transfer energy to the fields and the cometary ions in the entire upstream region and the pile-up layer. Upstream of the nucleus, alphas are inefficient in transferring energy and can act as a load, especially for low alpha-to-proton ratios. The transfer of energy from alphas to cometary ions happens further downstream due to their larger inertia. For a multi-species solar wind the mass loading and energy transfer upstream of the pile-up layer will be most efficient for the species with the lowest inertia, typically protons, since different ion gyroradii give different flow patterns for the individual species.
format Preprint
id arxiv_https___arxiv_org_abs_2501_11479
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Kinetic-Scale Physics of a Multi-Species Solar Wind
Moeslinger, Anja
Gunell, Herbert
Wieser, Gabriella Stenberg
Nilsson, Hans
Fatemi, Shahab
Space Physics
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Plasma Physics
The solar wind affects the plasma environment around all solar system bodies. A strong solar wind dynamic pressure pushes plasma boundaries closer to these objects. For small objects kinetic effects on scales smaller than an ion gyroradius play an important role, and species with various mass-per-charge may act differently. In this case the solar wind composition can be important. Protons are the dominant ion species in the solar wind; however, sometimes the density of alpha particles increases significantly. We analyse the effect of different solar wind alpha-to-proton ratios on the plasma boundaries of the induced cometary magnetosphere. In addition, we investigate the energy transfer between the solar wind ions, the cometary ions, and the electromagnetic fields. Using the hybrid model Amitis, we simulate two different alpha-to-proton ratios and analyse the resulting plasma structures. We calculate the power density (E.J) of all three ion species (solar wind protons and alphas, and cometary ions) to identify load and generator regions. The integrated 1D power density shows the evolution of the power density from the upstream solar wind to downstream of the nucleus. A higher alpha-to-proton ratio leads to a larger comet magnetosphere but weaker magnetic field pile-up. The protons transfer energy to the fields and the cometary ions in the entire upstream region and the pile-up layer. Upstream of the nucleus, alphas are inefficient in transferring energy and can act as a load, especially for low alpha-to-proton ratios. The transfer of energy from alphas to cometary ions happens further downstream due to their larger inertia. For a multi-species solar wind the mass loading and energy transfer upstream of the pile-up layer will be most efficient for the species with the lowest inertia, typically protons, since different ion gyroradii give different flow patterns for the individual species.
title Kinetic-Scale Physics of a Multi-Species Solar Wind
topic Space Physics
Earth and Planetary Astrophysics
Solar and Stellar Astrophysics
Plasma Physics
url https://arxiv.org/abs/2501.11479