PIC simulations of stable surface waves on a subcritical fast magnetosonic shock front
M E Dieckmann, C Huete, F Cobos, A Bret, D Folini, B Eliasson, R, Walder

TL;DR
This study uses PIC simulations to analyze the stability of fast magnetosonic shocks in collisionless plasma, revealing steady states, oscillations, and wave interactions that are relevant to space plasma phenomena.
Contribution
It demonstrates the formation of stable surface waves on a subcritical shock front and characterizes their oscillatory behavior and wave interactions using detailed 2D PIC simulations.
Findings
Shock reaches a steady state with oscillations at the lower-hybrid frequency.
Shock front oscillations are damped differently depending on simulation box size.
Perturbed magnetic fields can generate Whistler waves propagating along the shock.
Abstract
We study with particle-in-cell (PIC) simulations the stability of fast magnetosonic shocks. They expand across a collisionless plasma and an orthogonal magnetic field that is aligned with one of the directions resolved by the 2D simulations. The shock speed is 1.6 times the fast magnetosonic speed when it enters a layer with a reduced density of mobile ions, which decreases the shock speed by up to 15\% in 1D simulations. In the 2D simulations, the density of mobile ions in the layer varies sinusoidally perpendicularly to the shock normal. We resolve one sine period. This variation only leads to small changes in the shock speed evidencing a restoring force that opposes a shock deformation. As the shock propagates through the layer, the ion density becomes increasingly spatially modulated along the shock front and the magnetic field bulges out where the mobile ion density is lowest. The…
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Taxonomy
TopicsIonosphere and magnetosphere dynamics · Solar and Space Plasma Dynamics · Magnetic confinement fusion research
