Cometary ion dynamics at 67P: A collisional test-particle approach with Rosetta data comparison

Fuente: arXiv
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Main Authors: Lewis, Zoe, Stephenson, Peter, Beth, Arnaud, Galand, Marina, Kallio, Esa, Moeslinger, Anja
Format: Preprint
Published: 2025
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author Lewis, Zoe
Stephenson, Peter
Beth, Arnaud
Galand, Marina
Kallio, Esa
Moeslinger, Anja
author_facet Lewis, Zoe
Stephenson, Peter
Beth, Arnaud
Galand, Marina
Kallio, Esa
Moeslinger, Anja
contents The Rosetta spacecraft escorted comet 67P/Churyumov-Gerasimenko for two years, gathering a rich and variable dataset. Amongst the data from the Rosetta Plasma Consortium (RPC) suite of instruments are measurements of the total electron density from the Mutual Impedance Probe (MIP) and Langmuir Probe (LAP). At low outgassing, the plasma density measurements can be explained by a simple balance between the production through ionisation and loss through transport. Ions are assumed to travel radially at the outflow speed of the neutral gas. Near perihelion, the assumptions of this field-free chemistry-free model are no longer valid, and plasma density is overestimated. This can be explained by enhanced ion transport by an ambipolar electric field inside the diamagnetic cavity, where the interplanetary magnetic field does not reach. In this study, we explore the transition between these two regimes, at intermediate outgassing ($5.4 \times10^{26}~\mathrm{s^{-1}}$), when the interaction between the cometary and solar wind plasma influences the transport of the ions. We use a 3D collisional test-particle model, adapted from Stephenson et al. 2022 to model the cometary ions with input electric and magnetic fields from a hybrid simulation for 2.5-3 au. The total plasma density from this model is then compared to data from MIP/LAP and to the field-free chemistry-free model. In doing so, we highlight the limitations of the hybrid approach and demonstrate the importance of modelling collisional cooling of the electrons to understand the ion dynamics close to the nucleus.
format Preprint
id arxiv_https___arxiv_org_abs_2507_10110
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Cometary ion dynamics at 67P: A collisional test-particle approach with Rosetta data comparison
Lewis, Zoe
Stephenson, Peter
Beth, Arnaud
Galand, Marina
Kallio, Esa
Moeslinger, Anja
Earth and Planetary Astrophysics
Space Physics
The Rosetta spacecraft escorted comet 67P/Churyumov-Gerasimenko for two years, gathering a rich and variable dataset. Amongst the data from the Rosetta Plasma Consortium (RPC) suite of instruments are measurements of the total electron density from the Mutual Impedance Probe (MIP) and Langmuir Probe (LAP). At low outgassing, the plasma density measurements can be explained by a simple balance between the production through ionisation and loss through transport. Ions are assumed to travel radially at the outflow speed of the neutral gas. Near perihelion, the assumptions of this field-free chemistry-free model are no longer valid, and plasma density is overestimated. This can be explained by enhanced ion transport by an ambipolar electric field inside the diamagnetic cavity, where the interplanetary magnetic field does not reach. In this study, we explore the transition between these two regimes, at intermediate outgassing ($5.4 \times10^{26}~\mathrm{s^{-1}}$), when the interaction between the cometary and solar wind plasma influences the transport of the ions. We use a 3D collisional test-particle model, adapted from Stephenson et al. 2022 to model the cometary ions with input electric and magnetic fields from a hybrid simulation for 2.5-3 au. The total plasma density from this model is then compared to data from MIP/LAP and to the field-free chemistry-free model. In doing so, we highlight the limitations of the hybrid approach and demonstrate the importance of modelling collisional cooling of the electrons to understand the ion dynamics close to the nucleus.
title Cometary ion dynamics at 67P: A collisional test-particle approach with Rosetta data comparison
topic Earth and Planetary Astrophysics
Space Physics
url https://arxiv.org/abs/2507.10110