An implicit particle code with \textit{exact} energy and charge conservation for electromagnetic studies of dense plasmas
From MaRDI portal
Publication:6095134
DOI10.1016/j.jcp.2023.112383OpenAlexW4384938578MaRDI QIDQ6095134
No author found.
Publication date: 27 November 2023
Published in: Journal of Computational Physics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.jcp.2023.112383
Basic methods in fluid mechanics (76Mxx) Numerical methods for partial differential equations, initial value and time-dependent initial-boundary value problems (65Mxx) Applications of statistical mechanics to specific types of physical systems (82Dxx)
Cites Work
- Fluid preconditioning for Newton-Krylov-based, fully implicit, electrostatic particle-in-cell simulations
- An energy- and charge-conserving, implicit, electrostatic particle-in-cell algorithm
- The energy conserving particle-in-cell method
- Direct implicit large time-step particle simulation of plasmas
- Performance and optimization of direct implicit particle simulation
- An implicit method for electromagnetic plasma simulation in two dimensions
- A binary collision model for plasma simulation with a particle code
- Jacobian-free Newton-Krylov methods: a survey of approaches and applications.
- Exactly energy conserving semi-implicit particle in cell formulation
- A semi-implicit, energy- and charge-conserving particle-in-cell algorithm for the relativistic Vlasov-Maxwell equations
- An energy-conserving and asymptotic-preserving charged-particle orbit implicit time integrator for arbitrary electromagnetic fields
- On numerical energy conservation for an implicit particle-in-cell method coupled with a binary Monte-Carlo algorithm for Coulomb collisions
- A semi-implicit electromagnetic FEM-PIC scheme with exact energy and charge conservation
- Fast nonlinear iterative solver for an implicit, energy-conserving, asymptotic-preserving charged-particle orbit integrator
- Gauss's law satisfying energy-conserving semi-implicit particle-in-cell method
- A multi-dimensional, energy- and charge-conserving, nonlinearly implicit, electromagnetic Vlasov-Darwin particle-in-cell algorithm
- A curvilinear, fully implicit, conservative electromagnetic PIC algorithm in multiple dimensions
- Numerical solution of initial boundary value problems involving maxwell's equations in isotropic media
- Exact charge conservation scheme for particle-in-cell simulation with an arbitrary form-factor
- ECsim-CYL: Energy conserving semi-implicit particle in cell simulation in axially symmetric cylindrical coordinates