14-moment maximum-entropy modelling of collisionless ions for Hall thruster discharges
Stefano Boccelli, James G. McDonald, Thierry E. Magin

TL;DR
This paper applies a 14-moment maximum-entropy model to simulate collisionless ion dynamics in Hall thrusters, demonstrating improved accuracy over simpler models with lower computational costs, suitable for capturing kinetic effects in low-collisionality plasmas.
Contribution
The work introduces and validates a 14-moment maximum-entropy model for collisionless ions in Hall thrusters, bridging kinetic and fluid approaches with enhanced accuracy and efficiency.
Findings
Maximum-entropy model outperforms cold ion and Euler models
Model accurately captures ion-wave trapping phenomena
Computational cost remains lower than kinetic simulations
Abstract
Ions in Hall effect thrusters are often characterized by a low collisionality. In the presence of acceleration fields and azimuthal electric field waves, this results in strong deviations from thermodynamic equilibrium, introducing kinetic effects. This work investigates the application of the 14-moment maximum-entropy model to this problem. This method consists in a set of 14 PDEs for the density, momentum, pressure tensor components, heat flux vector and fourth-order moment associated to the particle velocity distribution function. The model is applied to the study of collisionless ion dynamics in a Hall thruster-like configuration, and its accuracy is assessed against different models, including the Vlasov kinetic equation. Three test cases are considered: a purely axial acceleration problem, the problem of ion-wave trapping and finally the evolution of ions in the axial-azimuthal…
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Taxonomy
TopicsPlasma Diagnostics and Applications · Ionosphere and magnetosphere dynamics · Solar and Space Plasma Dynamics
