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Electrostatic Waves and Electron Holes in Simulations of Low-Mach Quasi-Perpendicular Shocks

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arxiv 2408.01699 v1 pith:EJNK7AXJ submitted 2024-08-03 physics.space-ph astro-ph.HEphysics.plasm-ph

classification physics.space-phastro-ph.HEphysics.plasm-ph
keywords shockselectronsimulationswavesamplitudeelectrostaticshockapprox
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abstract

Collisionless low Mach number shocks are abundant in astrophysical and space plasma environments, exhibiting complex wave activity and wave-particle interactions. In this paper, we present 2D Particle-in-Cell (PIC) simulations of quasi-perpendicular nonrelativistic ($\vsh \approx (5500-22000)$ km/s) low Mach number shocks, with a specific focus on studying electrostatic waves in the shock ramp and the precursor regions. In these shocks, an ion-scale oblique whistler wave creates a configuration with two hot counter-streaming electron beams, which drive unstable electron acoustic waves (EAWs) that can turn into electrostatic solitary waves (ESWs) at the late stage of their evolution. By conducting simulations with periodic boundaries, we show that EAW properties agree with linear dispersion analysis. The characteristics of ESWs in shock simulations, including their wavelength and amplitude, depend on the shock velocity. When extrapolated to shocks with realistic velocities ($\vsh \approx 300$ km/s), the ESW wavelength is reduced to one tenth of the electron skin depth and the ESW amplitude is anticipated to surpass that of the quasi-static electric field by more than a factor of 100. These theoretical predictions may explain a discrepancy, between PIC and satellite measurements, in the relative amplitude of high- and low-frequency electric field fluctuations.

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  1. Kinetic simulations underestimate the effects of waves during magnetic reconnection

    physics.plasm-ph 2024-11 conditional novelty 6.0 of 10

    Lower-hybrid drift wave amplitudes relative to the reconnection field scale as sqrt(mi/me) in kinetic simulations, so reduced-mass-ratio runs underestimate wave-driven anomalous drag by up to an order of magnitude.

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