Hamiltonian kinetic-Hall Magnetohydrodynamics with fluid and kinetic ions in the current and pressure coupling schemes
arXiv:2106.13060 · doi:10.1017/S0022377821000994
Abstract
We present two generalized hybrid kinetic-Hall magnetohydrodynamics (MHD) models describing the interaction of a two-fluid bulk plasma, which consists of thermal ions and electrons, with energetic, suprathermal ion populations described by Vlasov dynamics. The dynamics of the thermal components are governed by standard fluid equations in the Hall MHD limit with the electron momentum equation providing an Ohm's law with Hall and electron pressure terms involving a gyrotropic electron pressure tensor. The coupling of the bulk, low-energy plasma with the energetic particle dynamics is accomplished through the current density (current coupling scheme; CCS) and the ion pressure tensor appearing in the momentum equation (pressure coupling scheme; PCS) in the first and the second model, respectively. The CCS is a generalization of two well-known models, because in the limit of vanishing energetic and thermal ion densities we recover the standard Hall MHD and the hybrid kinetic-ions/fluid-electron model, respectively. This provides us with the capability to study in a continuous manner the global impact of the energetic particles in a regime extending from vanishing to dominant energetic particle densities. The noncanonical Hamiltonian structures of the CCS and PCS, which can be exploited to study equilibrium and stability properties through the energy-Casimir variational principle, are identified. As a first application here, we derive a generalized Hall MHD Grad--Shafranov--Bernoulli system for translationally symmetric equilibria with anisotropic electron pressure and kinetic effects owing to the presence of energetic particles using the PCS.
References in corpus (11)
- Acceleration and propagation of Solar Energetic Particles
- A general theory for gauge-free lifting
- Hamiltonian Formalism of Extended Magnetohydrodynamics
- Hamiltonian approach to hybrid plasma models
- Fast Magnetic Reconnection Due to Anisotropic Electron Pressure
- Variational approach to low-frequency kinetic-MHD in the current coupling scheme
- Bridging hybrid- and full-kinetic models with Landau-fluid electrons: I. 2D magnetic reconnection
- Structure and computation of two-dimensional incompressible extended MHD
- Energy-Casimir stability of hybrid Vlasov-MHD models
- A Lagrangian kinetic model for collisionless magnetic reconnection
- A class of three-dimensional gyroviscous magnetohydrodynamic models