Pegasus: A new hybrid-kinetic particle-in-cell code for astrophysical plasma dynamics
Abstract
We describe Pegasus, a new hybrid-kinetic particle-in-cell code tailored for the study of astrophysical plasma dynamics. The code incorporates an energy-conserving particle integrator into a stable, second-order-accurate, three-stage predictor-predictor-corrector integration algorithm. The constrained transport method is used to enforce the divergence-free constraint on the magnetic field. A δf scheme is included to facilitate a reduced-noise study of systems in which only small departures from an initial distribution function are anticipated. The effects of rotation and shear are implemented through the shearing-sheet formalism with orbital advection. These algorithms are embedded within an architecture similar to that used in the popular astrophysical magnetohydrodynamics code Athena, one that is modular, well-documented, easy to use, and efficiently parallelized for use on thousands of processors. We present a series of tests in one, two, and three spatial dimensions that demonstrate the fidelity and versatility of the code.
- Publication:
-
Journal of Computational Physics
- Pub Date:
- February 2014
- DOI:
- arXiv:
- arXiv:1311.4865
- Bibcode:
- 2014JCoPh.259..154K
- Keywords:
-
- Astrophysics - High Energy Astrophysical Phenomena;
- Physics - Computational Physics;
- Physics - Plasma Physics
- E-Print:
- 27 pages, 12 figures, accepted for publication in Journal of Computational Physics