Black Hole Discs and Spheres in Galactic Nuclei -- Exploring the Landscape of Vector Resonant Relaxation Equilibria
arXiv:2202.07665 · doi:10.1093/mnras/stad016
Abstract
Vector resonant relaxation (VRR) is known to be the fastest gravitational process that shapes the geometry of stellar orbits in nuclear star clusters. This leads to the realignment of the orbital planes on the corresponding VRR time scale of a few million years, while the eccentricity and semimajor axis of the individual orbits are approximately conserved. The distribution of orbital inclinations reaches an internal equilibrium characterised by two conserved quantities, the total potential energy among stellar orbits, , and the total angular momentum, . On timescales longer than , the eccentricities and semimajor axes change slowly and the distribution of orbital inclinations are expected to evolve through a series of VRR equilibria. Using a Monte Carlo Markov Chain method, we determine the equilibrium distribution of orbital inclinations in the microcanonical ensemble with fixed and for isolated nuclear star clusters with a power-law distribution of , , and , where is the stellar mass. We explore the possible equilibria for representative -- pairs that cover the possible parameter space. For all cases, the equilibria show anisotropic mass segregation where the distribution of more massive objects is more flattened than that for lighter objects. Given that stellar black holes are more massive than the average main sequence stars, these findings suggest that black holes reside in disc-like structures within nuclear star clusters for a wide range of initial conditions.
Version accepted for publication in MNRAS
References in corpus (22)
- Intermediate and Extreme Mass-Ratio Inspirals -- Astrophysics, Science Applications and Detection using LISA
- Detection of the Schwarzschild precession in the orbit of the star S2 near the Galactic centre massive black hole
- Gravitational waves from scattering of stellar-mass black holes in galactic nuclei
- A stellar census in globular clusters with MUSE: The contribution of rotation to cluster dynamics studied with 200 000 stars
- A numerical study of vector resonant relaxation
- S62 and S4711: Indications of a population of faint fast moving stars inside the S2 orbit -- S4711 on a 7.6 year orbit around Sgr~A*
- Henize 2-10: the ongoing formation of a nuclear star cluster around a massive black hole
- On the rotation of nuclear star clusters formed by cluster-inspirals
- New constraints on the structure of the nuclear stellar cluster of the Milky Way from star counts and MIR imaging
- The young stars in the Galactic Center
- Stellar dynamical evidence against a cold disc origin for stars in the Galactic Centre
- Kinematic Structure of the Galactic Center S-cluster
- The complex kinematics of rotating star clusters in a tidal field
- The Kinematic Richness of Star Clusters I. Isolated Spherical Models with Primordial Anisotropy
- Star formation at the Galactic Centre: coevolution of multiple young stellar discs
- A numerical study of stellar discs in galactic nuclei
- An order-disorder phase transition in black-hole star clusters
- Orbital alignment and mass segregation in galactic nuclei via vector resonant relaxation
- Central Dynamics of Multi-mass Rotating Star Clusters
- Order-disorder phase transition in black-hole star clusters -- III. A mono-energetic cluster
- Order-disorder phase transition in black-hole star clusters. II. A scale-free cluster
- Apsidal Clustering following the Inclination Instability