A new code for orbit analysis and Schwarzschild modelling of triaxial stellar systems
arXiv:1307.8116 · doi:10.1093/mnras/stt1235
Abstract
We review the methods used to study the orbital structure and chaotic properties of various galactic models and to construct self-consistent equilibrium solutions by Schwarzschild's orbit superposition technique. These methods are implemented in a new publicly available software tool, SMILE, which is intended to be a convenient and interactive instrument for studying a variety of 2D and 3D models, including arbitrary potentials represented by a basis-set expansion, a spherical-harmonic expansion with coefficients being smooth functions of radius (splines), or a set of fixed point masses. We also propose two new variants of Schwarzschild modelling, in which the density of each orbit is represented by the coefficients of the basis-set or spline spherical-harmonic expansion, and the orbit weights are assigned in such a way as to reproduce the coefficients of the underlying density model. We explore the accuracy of these general-purpose potential expansions and show that they may be efficiently used to approximate a wide range of analytic density models and serve as smooth representations of discrete particle sets (e.g. snapshots from an N-body simulation), for instance, for the purpose of orbit analysis of the snapshot. For the variants of Schwarzschild modelling, we use two test cases - a triaxial Dehnen model containing a central black hole, and a model re-created from an N-body snapshot obtained by a cold collapse. These tests demonstrate that all modelling approaches are capable of creating equilibrium models.
MNRAS, 24 pages, 18 figures. Software is available at http://td.lpi.ru/~eugvas/smile/
References in corpus (12)
- Triaxial orbit based galaxy models with an application to the (apparent) decoupled core galaxy NGC 4365
- Performance Analysis of Direct N-Body Algorithms on Special-Purpose Supercomputers
- NMAGIC: Fast Parallel Implementation of a Chi-Squared-Made-to-Measure Algorithm for Modelling Observational Data
- An Iterative Method for Constructing Equilibrium Phase Models of Stellar Systems
- Dynamical models with a general anisotropy profile
- Multimass spherical structure models for N-body simulations
- A Hybrid N-Body Code Incorporating Algorithmic Regularization and Post-Newtonian Forces
- Chaos detection tools: application to a self-consistent triaxial model
- Multi-mass schemes for collisionless N-body simulations
- New biorthogonal potential--density basis functions
- Appropriate SCF basis sets for orbital studies of galaxies and a `quantum-mechanical' method to compute them
- Self-consistent triaxial de Zeeuw-Carollo Models
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