Three-dimensional rotational plasma flows near solid surfaces in an axial magnetic field


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Abstract

A rotational flow of a conducting viscous medium near an extended dielectric disk in a uniform axial magnetic field is analyzed in the magnetohydrodynamic (MHD) approach. An analytical solution to the system of nonlinear differential MHD equations of motion in the boundary layer for the general case of different rotation velocities of the disk and medium is obtained using a modified Slezkin–Targ method. A particular case of a medium rotating near a stationary disk imitating the end surface of a laboratory device is considered. The characteristics of a hydrodynamic flow near the disk surface are calculated within the model of a finite-thickness boundary layer. The influence of the magnetic field on the intensity of the secondary flow is studied. Calculations are performed for a weakly ionized dense plasma flow without allowance for the Hall effect and plasma compressibility. An MHD flow in a rotating cylinder bounded from above by a retarding cap is considered. The results obtained can be used to estimate the influence of the end surfaces on the main azimuthal flow, as well as the intensities of circulating flows in various devices with rotating plasmas, in particular, in plasma centrifuges and laboratory devices designed to study instabilities of rotating plasmas.

About the authors

N. M. Gorshunov

National Research Center Kurchatov Institute

Author for correspondence.
Email: gorshunov_nm@nrcki.ru
Russian Federation, Moscow, 123182

E. P. Potanin

National Research Center Kurchatov Institute; National Research Nuclear University “MEPhI,”

Email: gorshunov_nm@nrcki.ru
Russian Federation, Moscow, 123182; Moscow, 115409

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