The efficiency of resonant relaxation around a massive black hole
arXiv:0807.1430 · doi:10.1088/0004-637X/698/1/641
Abstract
Resonant relaxation (RR) is a rapid relaxation process that operates in the nearly-Keplerian potential near a massive black hole (MBH). RR dominates the dynamics of compact remnants that inspiral into a MBH and emit gravitational waves (extreme mass ratio inspiral events, EMRIs). RR can either increase the EMRI rate, or strongly suppress it, depending on its still poorly-determined efficiency. We use small-scale Newtonian N-body simulations to measure the RR efficiency and to explore its possible dependence on the stellar number density profile around the MBH, and the mass-ratio between the MBH and a star (a single-mass stellar population is assumed). We develop an efficient and robust procedure for detecting and measuring RR in N-body simulations. We present a suite of simulations with a range of stellar density profiles and mass-ratios, and measure the mean RR efficiency in the near-Keplerian limit. We do not find a statistically significant dependence on the density profile or the mass-ratio. Our numerical determination of the RR efficiency in the Newtonian, single-mass population approximations, suggests that RR will likely enhance the EMRI rate by a factor of a few over the rates predicted assuming only slow stochastic two-body relaxation.
5 pp, 6 figs, ApJ submitted
References in corpus (3)
Cited by in corpus (54)
- Relativistic Dynamics and Extreme Mass Ratio Inspirals
- Testing Properties of the Galactic Center Black Hole Using Stellar Orbits
- Rapid growth of seed black holes in the early universe by supra-exponential accretion
- Stellar Dynamics and Stellar Phenomena Near A Massive Black Hole
- Resonant relaxation and the warp of the stellar disc in the Galactic centre
- Stellar Dynamics of Extreme-Mass-Ratio Inspirals
- The impact of vector resonant relaxation on the evolution of binaries near a massive black hole: implications for gravitational wave sources
- Dynamical evolution of the young stars in the Galactic center: N-body simulations of the S-stars
- Steady state relativistic stellar dynamics around a massive black hole
- Level sets of the lapse function in static GR
- Secular Stellar Dynamics near a Massive Black Hole
- A numerical study of vector resonant relaxation
- Binary dynamics near a massive black hole
- Black Hole Disks in Galactic Nuclei
- The loss cone problem in axisymmetric nuclei
- The S-Star Cluster at the Center of the Milky Way: On the nature of diffuse NIR emission in the inner tenth of a parsec
- Influence of a stellar cusp on the dynamics of young stellar discs and the origin of the S-stars in the Galactic Centre
- Dynamical constraints on the origin of the young B-stars in the Galactic center
- The Combined Effects of Two-Body Relaxation Processes and the Eccentric Kozai-Lidov Mechanism on the EMRI Rate
- A rapid evolving region in the Galactic Center: Why S-stars thermalize and more massive stars are missing
- Stellar Energy Relaxation around A Massive Black Hole
- Scalar Resonant Relaxation of Stars Around a Massive Black Hole
- Relativistic dynamics of stars near a supermassive black hole
- Isotropic-Nematic Phase Transitions in Gravitational Systems
- The statistical mechanics of relativistic orbits around a massive black hole
- Expectations for extreme-mass-ratio bursts from the Galactic Centre
- Vector Resonant Relaxation of Stars around a Massive Black Hole
- Gravitational Encounters and the Evolution of Galactic Nuclei. I. Method
- Star Formation and Dynamics in the Galactic Centre
- Isotropic-Nematic Phase Transitions in Gravitational Systems II: Higher Order Multipoles
- Gravitational Encounters and the Evolution of Galactic Nuclei. IV. Captures Mediated by Gravitational-Wave Energy Loss
- The gravitational capture of compact objects by massive black holes
- Spin Evolution of Supermassive Black Holes and Galactic Nuclei
- Evolution of growing black holes in axisymmetric galaxy cores
- Secular Dynamical Anti-Friction in Galactic Nuclei
- Extreme mass ratio inspirals: perspectives for their detection
- Recoiled star clusters in the Milky Way halo: N-body simulations and a candidate search through SDSS
- The torquing of circumnuclear accretion disks by stars and the evolution of massive black holes
- Anisotropic Mass Segregation in Rotating Globular Clusters
- Resonant relaxation in globular clusters
- A numerical study of stellar discs in galactic nuclei
- Accretion disk warping by resonant relaxation: The case of maser disk NGC4258
- Statistical Mechanics of Gravitational Systems with Regular Orbits: Rigid Body Model of Vector Resonant Relaxation
- Gravitational Encounters and the Evolution of Galactic Nuclei. III. Anomalous Relaxation
- Black Hole Discs and Spheres in Galactic Nuclei -- Exploring the Landscape of Vector Resonant Relaxation Equilibria
- Evolution of eccentric stellar disks around supermassive black holes: the complex disk disruption dynamics and the milliparsec stars
- Young stellar cluster dilution near supermassive black holes: the impact of Vector Resonant Relaxation on neighbour separation
- Probing the formation of planetesimals in the Galactic Centre using Sgr A* flares
- Astrophysics with the Laser Interferometer Space Antenna
- The Galactic Center Black Hole Laboratory
- Non-resonant relaxation of rotating globular clusters
- Fake plunges are very eccentric real EMRIs in disguise ... they dominate the rates and are blissfully ignorant of angular momentum barriers
- Fractal Geometry of Angular Momentum Evolution in Near-Keplerian Systems
- Resonant Dynamical Friction in Nuclear Star Clusters: Rapid Alignment of an Intermediate-mass Black Hole with a Stellar Disk