Comparison of multi-fluid moment models with Particle-in-Cell simulations of collisionless magnetic reconnection
arXiv:1409.0262 · doi:10.1063/1.4906063
Abstract
We introduce an extensible multi-fluid moment model in the context of collisionless magnetic reconnection. This model evolves full Maxwell equations, and simultaneously moments of the Vlasov-Maxwell equation for each species in the plasma. Effects like electron inertia and pressure gradient are self-consistently embedded in the resulting multi-fluid moment equations, without the need to explicitly solving a generalized Ohms's law. Two limits of the multi-fluid moment model are discussed, namely, the five-moment limit that evolves a scalar pressures for each species, and the ten-moment limit that evolves the full anisotropic, non-gyrotropic pressure tensor for each species. We first demonstrate, analytically and numerically, that the five-moment model reduces to the widely used Hall Magnetohydrodynamics (Hall MHD) model under the assumptions of vanishing electron inertia, infinite speed of light, and quasi-neutrality. Then, we compare ten-moment and fully kinetic Particle-In-Cell (PIC) simulations of a large scale Harris sheet reconnection problem, where the ten-moment equations are closed with a local linear collisionless approximation for the heat flux. The ten-moment simulation gives reasonable agreement with the PIC results regarding the structures and magnitudes of the electron flows, the polarities and magnitudes of elements of the electron pressure tensor, and the decomposition of the generalized Ohm's law. Possible ways to improve the simple local closure towards a nonlocal fully three-dimensional closure are also discussed.
References in corpus (3)
Cited by in corpus (44)
- Discontinuous Galerkin algorithms for fully kinetic plasmas
- Global Ten-Moment Multifluid Simulations of the Solar Wind Interaction with Mercury: From the Planetary Conducting Core to the Dynamic Magnetosphere
- Dissipation measures in weakly-collisional plasmas
- Continuum Kinetic and Multi-Fluid Simulations of Classical Sheaths
- Electron Physics in 3D Two-Fluid Ten-Moment Modeling of Ganymede's Magnetosphere
- The island coalescence problem: scaling of reconnection in extended fluid models including higher-order moments
- Gauss's Law Satisfying Energy-Conserving Semi-Implicit Particle-in-Cell Method
- Modeling general-relativistic plasmas with collisionless moments and dissipative two-fluid magnetohydrodynamics
- Exact and Locally Implicit Source Term Solvers for Multifluid-Maxwell Systems
- Quantifying Energy Conversion in Higher Order Phase Space Density Moments in Plasmas
- The role of guide field in magnetic reconnection driven by island coalescence
- A Six-moment Multi-fluid Plasma Model
- Electron dynamics in small magnetospheres: insights from global fully-kinetic plasma simulations of planet Mercury
- Drift instabilities in thin current sheets using a two-fluid model with pressure tensor effects
- Machine-learning heat flux closure for multi-moment fluid modeling of nonlinear Landau damping
- In Search of a Data Driven Symbolic Multi-Fluid 10-Moment Model Closure
- Nonlinear Resistivity for Magnetohydrodynamical Models
- Using the maximum entropy distribution to describe electrons in reconnecting current sheets
- Magnetic Field Reconstruction for a Realistic Multi-Point, Multi-Scale Spacecraft Observatory
- An extended MHD study of the 16 October 2015 MMS diffusion region crossing
- Identification of high order closure terms from fully kinetic simulations using machine learning
- Numerical Study of Magnetic Island Coalescence Using Magnetohydrodynamics With Adaptively Embedded Particle-In-Cell Model
- Numerical study of non-gyrotropic electron pressure effects in collisionless magnetic reconnection
- The muphyII Code: Multiphysics Plasma Simulation on Large HPC Systems
- An Energy Conserving Vlasov Solver That Tolerates Coarse Velocity Space Resolutions: Simulation of MMS Reconnection Events
- Energy transport during 3D small-scale reconnection driven by anisotropic plasma turbulence
- Data-driven discovery of a heat flux closure for electrostatic plasma phenomena
- High-order two-fluid plasma solver for direct numerical simulations of plasma flows with full transport phenomena
- Electron cyclotron drift instability and anomalous transport: two-fluid moment theory and modeling
- A non-local fluid closure for modeling cyclotron resonance in collisionless magnetized plasmas
- Continuum kinetic investigation of the impact of bias potentials in the current saturation regime on sheath formation
- Fluid Simulations of Three-Dimensional Reconnection that Capture the Lower-Hybrid Drift Instability
- Role of electron inertia and electron/ion finite Larmor radius effects in low-beta, magneto-Rayleigh-Taylor instability
- Momentum transport and nonlocality in heat-flux-driven magnetic reconnection in high energy density plasmas
- Experimental study of Alfvén wave reflection from an Alfvén-speed gradient relevant to the solar coronal holes
- A Parallel-Kinetic-Perpendicular-Moment Model for Magnetized Plasmas
- A kinetic interpretation of the classical Rayleigh-Taylor instability
- Surrogate Modeling of Landau Damping with Deep Operator Networks
- Observation of a Knotted Electron Diffusion Region in Earth's Magnetotail Reconnection
- Electron neural closure for turbulent magnetosheath simulations: energy channels
- Multidimensional Hall magnetohydrodynamics with isotropic or anisotropic thermal pressure: numerical scheme and its validation using solitary waves
- Multiphysics simulations of collisionless plasmas
- The Machine Learning Approach to Moment Closure Relations for Plasma: A Review
- Optimal Landau-type closure parameters for two-fluid simulations of plasma turbulence at kinetic scales