A new Monte Carlo method for dynamical evolution of non-spherical stellar systems
arXiv:1411.1757 · doi:10.1093/mnras/stu2360
Abstract
We have developed a novel Monte Carlo method for simulating the dynamical evolution of stellar systems in arbitrary geometry. The orbits of stars are followed in a smooth potential represented by a basis-set expansion and perturbed after each timestep using local velocity diffusion coefficients from the standard two-body relaxation theory. The potential and diffusion coefficients are updated after an interval of time that is a small fraction of the relaxation time, but may be longer than the dynamical time. Thus our approach is a bridge between the Spitzer's formulation of the Monte Carlo method and the temporally smoothed self-consistent field method. The primary advantages are the ability to follow the secular evolution of shape of the stellar system, and the possibility of scaling the amount of two-body relaxation to the necessary value, unrelated to the actual number of particles in the simulation. Possible future applications of this approach in galaxy dynamics include the problem of consumption of stars by a massive black hole in a non-spherical galactic nucleus, evolution of binary supermassive black holes, and the influence of chaos on the shape of galaxies, while for globular clusters it may be used for studying the influence of rotation.
13 pages; matches published paper
References in corpus (13)
- Stellar remnants in galactic nuclei: mass segregation
- Performance Analysis of Direct N-Body Algorithms on Special-Purpose Supercomputers
- A numerical study of vector resonant relaxation
- Binary dynamics near a massive black hole
- Erosion of Globular Cluster Systems: The Influence of Radial Anisotropy, Central Black Holes and Dynamical Friction
- Multimass spherical structure models for N-body simulations
- A Hybrid N-Body Code Incorporating Algorithmic Regularization and Post-Newtonian Forces
- Relativistic dynamics of stars near a supermassive black hole
- Expansion Techniques for Collisionless Stellar Dynamical Simulations
- Multi-mass schemes for collisionless N-body simulations
- Two-body relaxation driven evolution of the young stellar disc in the Galactic Centre
- Treatment of realistic tidal field in Monte Carlo simulations of star clusters
- A Full Loss Cone For Triaxial Galaxies
Cited by in corpus (9)
- A new Fokker-Planck approach for relaxation-driven evolution of galactic nuclei
- Monte Carlo simulations of multiple populations in globular clusters: constraints on the cooling flow vs. accretion scenario using million bodies simulations
- A flexible method to evolve collisional systems and their tidal debris in external potentials
- Evolution of supermassive black hole binaries and tidal disruption rates in nonspherical galactic nuclei
- Monte Carlo simulations of multiple populations in globular clusters: constraints on the initial size of the second generation from binary stars
- Tidal disruption rates in non-spherical galactic nuclei formed by galaxy mergers
- Dynamics of intermediate mass black holes in globular clusters. Wander radius and anisotropy profiles
- Non-resonant relaxation of anisotropic globular clusters
- Monte Carlo modelling of globular star clusters - many primordial binaries, IMBH formation