The present study consists mainly in determining the speed of a conducting jet in a special disk-shaped tube. The results show that the mobility of the ionized jet depends, among other things, on the form of its movement in the tube.
For specific electromagnetic parameters, and also for given dimensions of the tube, it is possible to obtain a movement where the conducting jet behaves as a body moving in a fluid medium (mode I). In this case, the speed of the jet is very high. On the other hand, for different specific electromagnetic and geometric parameters of the experimental system, it is possible to obtain a low speed of the ionized jet, and the fluid in the tube appears to move as a single whole (mode II).
It must be noted that in each of the two types of the jet movement, both laminar and turbulent motion can occur, with the transition between them determined by the critical Reynolds number, which differs markedly for the two modes.
An expression for the opposing force (due to viscosity) was derived from the experiments in both modes.