A Spectral Canonical Electrostatic Algorithm
arXiv:1508.07344 · doi:10.1088/0741-3335/58/3/034007
Abstract
Studying single-particle dynamics over many periods of oscillations is a well-understood problem solved using symplectic integration. Such integration schemes derive their update sequence from an approximate Hamiltonian, guaranteeing that the geometric structure of the underlying problem is preserved. Simulating a self-consistent system over many oscillations can introduce numerical artifacts such as grid heating. This unphysical heating stems from using non-symplectic methods on Hamiltonian systems. With this guidance, we derive an electrostatic algorithm using a discrete form of Hamilton's Principle. The resulting algorithm, a gridless spectral electrostatic macroparticle model, does not exhibit the unphysical heating typical of most particle-in-cell methods. We present results of this using a two-body problem as an example of the algorithm's energy- and momentum-conserving properties.
19 pages, 8 figures, submitted to LPAW Special Edition of Plasma Physics and Controlled Fusion
Cited by in corpus (11)
- Explicit symplectic algorithms based on generating functions for charged particle dynamics
- Explicit high-order noncanonical symplectic algorithms for ideal two-fluid systems
- Explicit Structure-Preserving Geometric Particle-in-Cell Algorithm in Curvilinear Orthogonal Coordinate Systems and Its Applications to Whole-Device 6D Kinetic Simulations of Tokamak Physics
- A Symplectic Multi-Particle Tracking Model for Self-Consistent Space-Charge Simulation
- A symplectic particle-in-cell model for space-charge beam dynamics simulation
- Explicit symplectic algorithms based on generating functions for relativistic charged particle dynamics in time-dependent electromagnetic field
- Local Energy Conservation Law for Spatially-Discretized Hamiltonian Vlasov-Maxwell System
- High Order Explicit Lorentz Invariant Volume-preserving Algorithms for Relativistic Dynamics of Charged Particles
- Time simulation of the nonlinear wave-particle interaction in meters long traveling-wave tubes
- Symplectic particle-in-cell methods for hybrid plasma models with Boltzmann electrons and space-charge effects
- Symplectic Modeling of Beam Loading in Electromagnetic Cavities