Magnetohydrodynamic Simulation Code CANS+: Assessments and Applications
arXiv:1611.01775 · doi:10.1093/pasj/psz064
Abstract
We present a new magnetohydrodynamic (MHD) simulation code with the aim of providing accurate numerical solutions to astrophysical phenomena where discontinuities, shock waves, and turbulence are inherently important. The code implements the HLLD approximate Riemann solver, the fifth-order-monotonicity-preserving interpolation (MP5) scheme, and the hyperbolic divergence cleaning method for a magnetic field. This choice of schemes significantly improved numerical accuracy and stability, and saved computational costs in multidimensional problems. Numerical tests of one- and two-dimensional problems showed the advantages of using the high-order scheme by comparing with results from a standard second-order TVD MUSCL scheme. The present code enabled us to explore long-term evolution of a three-dimensional accretion disk around a black hole, in which compressible MHD turbulence caused continuous mass accretion via nonlinear growth of the magneto-rotational instability (MRI). Numerical tests with various computational cell sizes exhibited a convergent picture of the early nonlinear growth of the MRI in a global model, and indicated that the MP5 scheme has more than twice the resolution of the MUSCL scheme in practical applications.
45 pages, 18 figures, published in Publ. Astron. Soc. Japan
References in corpus (7)
- PLUTO: a Numerical Code for Computational Astrophysics
- Athena: A New Code for Astrophysical MHD
- Comparing Numerical Methods for Isothermal Magnetized Supersonic Turbulence
- Global Three-Dimensional MHD Simulations of Galactic Gaseous Disks: I. Amplification of Mean Magnetic Fields in Axisymmetric Gravitational Potential
- Magnetohydrodynamic structure of a plasmoid in fast reconnection in low-beta plasmas: Shock-shock interactions
- A high-order weighted finite difference scheme with a multi-state approximate Riemann solver for divergence-free magnetohydrodynamic simulations
- The Piecewise Cubic Method (PCM) for Computational Fluid Dynamics
Cited by in corpus (21)
- Jets from MRC 0600-399 bent by magnetic fields in the cluster Abell 3376
- Two-dimensional numerical study for magnetic field dependence of neutrino-driven core-collapse supernova models
- A -order accurate finite volume method for ideal classical and special relativistic MHD based on pointwise reconstructions
- Continuous Jets and Backflow Models for the Formation of W50/SS433 in Magnetohydrodynamics Simulations
- Multiphase Gas Nature in the Sub-parsec Region of the Active Galactic Nuclei I: Dynamical Structures of Dusty and Dust-free Outflow
- A Multistate Low-dissipation Advection Upstream Splitting Method for Ideal Magnetohydrodynamics
- Multiphase Circumnuclear Gas in a Low- Disk: Turbulence and Magnetic Field Reversals
- HOW-MHD: A High-Order WENO-Based Magnetohydrodynamic Code with a High-Order Constrained Transport Algorithm for Astrophysical Applications
- Magnetorotational neutron star kicks
- Two-temperature Magnetohydrodynamic simulations for sub-relativistic AGN jets:Dependence on the fraction of the electron heating
- Radiation Magnetohydrodynamic Simulations of Sub-Eddington accretion Flows in AGN: Origin of Soft X-ray Excess and Rapid Time Variabilities
- Magnetohydrodynamic Model of Late Accretion onto a Protoplanetary Disk: Cloudlet Encounter Event
- A Possible Origin of kHZ QPOs in Low-Mass X-ray Binaries
- Particle acceleration and magnetic field amplification by relativistic shocks in inhomogeneous media
- A Proper Discretization of Hydrodynamic Equations in the Cylindrical Coordinates for Astrophysical Simulations
- Soft X-Ray Imaging of Magnetopause Reconnection Outflows Under Low Plasma- Solar Wind Conditions
- Non-thermal emissions from a head-tail radio galaxy in 3D magnetohydrodynamic simulations
- A short note on reconstruction variables in shock capturing schemes for magnetohydrodynamics
- Property of downstream turbulence driven by the special relativistic shock-clump interaction
- Pseudo-spectral solver versus grid-based solver: A quantitative accuracy test using GMHD3D and PLUTO4.4
- Proposal of a Novel Physical Parameter Characterizing Solar Wind Speed in a Wave-Driven Model