Kinetic simulation of magnetic field generation and collisionless shock formation in expanding laboratory plasmas
W. Fox, J. Matteucci, C. Moissard, D. B. Schaeffer, A. Bhattacharjee,, K. Germaschewski, S.X. Hu

TL;DR
This paper presents a comprehensive kinetic simulation model for magnetic field generation and collisionless shock formation in laboratory plasmas, bridging experimental observations with astrophysical phenomena.
Contribution
It introduces a first-principles kinetic simulation framework that captures magnetic field dynamics and shock processes in expanding plasmas, linking experiments and astrophysical conditions.
Findings
Simulation of Biermann battery magnetic field generation in expanding plasmas.
Modeling of magnetic reconnection via colliding Biermann-generated fields.
Simulation of collisionless shock formation with enhanced magnetic fields due to Biermann effect.
Abstract
Recent laboratory experiments with laser-produced plasmas have observed and studied a number of fundamental physical processes relevant to magnetized astrophysical plasmas, including magnetic reconnection, collisionless shocks, and magnetic field generation by Weibel instability, opening up new experimental platforms for laboratory astrophysics. We develop a fully kinetic simulation model for first-principles simulation of these systems including the dynamics of magnetic fields---magnetic field generation by the Biermann battery effect or Weibel instability; advection by the ion flow, Hall effect, and Nernst effect; and destruction of the field by dissipative mechanisms. Key dimensionless parameters describing the system are derived for scaling between kinetic simulation, recent experiments, and astrophysical plasmas. First, simulations are presented which model Biermann battery…
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