Kinetic simulation of magnetic field generation and collisionless shock formation in expanding laboratory plasmas
arXiv:1712.00152 · doi:10.1063/1.5050813
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 magnetic field generation in plasmas expanding from a thin target. Ablation of two neighboring plumes leads to the formation of a current sheet as the opposing Biermann-generated fields collide, modeling recent laser-driven magnetic reconnection experiments. Second, we simulate recent experiments on collisionless magnetized shock generation, by expanding a piston plasma into a pre-magnetized ambient plasma. For parameters considered, the Biermann effect generates additional magnetic fields in the curved shock front and thereby increases shock particle reflection. Both cases show the importance of kinetic processes in the interaction of plasmas with magnetic fields, and open opportunities to benchmark these important processes through comparison of theory and experiments.
17 pages, 6 figures
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Cited by in corpus (14)
- Particle Velocity Distributions in Developing Magnetized Collisionless Shocks in Laser-Produced Plasmas
- High-power laser experiment forming a supercritical collisionless shock in a magnetized uniform plasma at rest
- High-power laser experiment on developing supercritical shock propagating in homogeneously magnetized plasma of ambient gas origin
- The effects of collisions on the generation and suppression of temperature anisotropies and the Weibel instability
- Kinetic simulations of electron pre-energization by magnetized collisionless shocks in expanding laboratory plasmas
- Full particle-in-cell simulation of the interaction between two plasmas for laboratory experiments on the generation of magnetized collisionless shocks with high-power lasers
- Detection of current-sheet and bipolar ion flows in a self-generated antiparallel magnetic field of laser-produced plasmas for magnetic reconnection research
- dc electrical conductivity in strongly magnetized plasmas
- Saturation Level of Ion Weibel Instability and Isotropization Length Scale in Electron-Ion Weibel-Mediated Shocks
- Electron Weibel instability and~quasi-magnetostatic structures in~an~expanding collisionless plasma
- Multi-scale magnetic field structures in an expanding elongated plasma cloud with hot electrons subject to an external magnetic field
- Expansion-Driven Self-Magnetization of High-Energy-Density Plasmas
- X-ray imaging and electron temperature evolution in laser-driven magnetic reconnection experiments at the National Ignition Facility
- Ion Weibel Instability in the hybrid framework: the optimal resolution