In this work the effects of different plasma kinetic models on the results of a corona discharge simulation are investigated. The discharge model is based on the time dependent drift-diffusion approximation and uses a quasi-2D finite volume approach. Simulations are carried out considering a wire-to-wire geometry, in which the electrode radii and their distance have been fixed. The electric current, number densities and the electro-hydro-dynamic force yielded by different treatments of the chemical source term in the continuity equation are compared. We find that the employed kinetic model has a significant impact on the computed electro-hydro-dynamic force. This is particularly important to accurately predict the performance of plasma devices for aerospace applications, such as ionic thrusters.

Quasi-2D Finite Volume Modeling of Corona Discharges for Ionic Propulsion: Comparison of Reduced Reaction Schemes

Barbante, Paolo;
2024-01-01

Abstract

In this work the effects of different plasma kinetic models on the results of a corona discharge simulation are investigated. The discharge model is based on the time dependent drift-diffusion approximation and uses a quasi-2D finite volume approach. Simulations are carried out considering a wire-to-wire geometry, in which the electrode radii and their distance have been fixed. The electric current, number densities and the electro-hydro-dynamic force yielded by different treatments of the chemical source term in the continuity equation are compared. We find that the employed kinetic model has a significant impact on the computed electro-hydro-dynamic force. This is particularly important to accurately predict the performance of plasma devices for aerospace applications, such as ionic thrusters.
2024
Proceedings of the 2024 IEEE 5th International Conference on Dielectrics, ICD 2024
corona discharge
drift-diffusion
electro-hydro-dynamic force
ionic-wind
quasi-2D model
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/1281556
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