Citation:
Ahedo, E., Correyero, S., Navarro-Cavallé, J., & Merino, M. (2020). Macroscopic and parametric study of a kinetic plasma expansion in a paraxial magnetic nozzle. Plasma Sources Science and Technology, 29(4), 045017.
xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
European Commission Ministerio de Ciencia e Innovación (España)
Sponsor:
This work was supported by the Spanish R&D National Plan (Grant No. PN ESP2016-75887) and by the European Union Horizon 2020 project MINOTOR, that has received funding from the research and innovation program under grant agreement No 730028. The authors thanks Dr Jesús Ramos for his interesting comments on this work.
A kinetic paraxial model of a collisionless plasma stationary expansion in a convergent-divergent magnetic nozzle (MN) is analyzed. Monoenergetic and Maxwellian velocity distribution functions of upstream ions are compared, leading to differences in the expansA kinetic paraxial model of a collisionless plasma stationary expansion in a convergent-divergent magnetic nozzle (MN) is analyzed. Monoenergetic and Maxwellian velocity distribution functions of upstream ions are compared, leading to differences in the expansion only on second and higher-order velocity moments. Individual and collective magnetic mirror effects are analyzed. Collective ones are small on the electron population since only a weak temperature anisotropy develops, but they are significant on the ions all over the nozzle. Momentum and energy equations for ions and electrons are assessed based on the kinetic solution. The ion response is different in the hot and cold limits, with the anisotropic pressure tensor being relevant in the first case. Heat fluxes of parallel and perpendicular energies have a dominant role in the electron energy equations. They do not fulfill a Fourier-type law; they are large even when electrons are near isothermal. A crude electron fluid closure based on a constant diffusion-to-convective thermal energy ratio is shown equivalent to the much invoked polytropic law. Analytical dimensionless parameter laws are derived for the nozzle total electric potential fall and the downstream residual electron temperature. Electron confinement and related current control by a thin Debye sheath and a semi-infinite divergent MN are compared.[+][-]
Description:
Correction to this article published in: Plasma Sources Science and Technology, 30(3), 039501. https://doi.org/10.1088/1361-6595/abe91b