Slowdown of interpenetration of two counterpropagating plasma slab due to collective effects
arXiv:2109.00023 · doi:10.1103/PhysRevE.105.035204
Abstract
The nonlinear evolution of electromagnetic instabilities driven by the interpenetration of two plasma clouds is explored using {\it ab initio} kinetic plasma simulations. We show that the plasma clouds slow down due to both oblique and Weibel generated electromagnetic fields, which deflect the particle trajectories, transferring bulk forward momentum into transverse momentum and thermal velocity spread. This process causes the flow velocity to decrease approximately by a factor of in a time interval , where is the magnetic equipartition parameter determined by the non-linear saturation of the instabilities, is the initial flow speed, and is the plasma frequency. For the measured in our simulations, is close to the instability growth time. We show that as long as the plasma slab length , the plasma flow is expected to slow down by a factor close to .
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