Classification of Stellar Orbits in Axisymmetric Galaxies
arXiv:1412.2134 · doi:10.1088/0004-637X/811/1/25
Abstract
It is known that two supermassive black holes (SMBHs) cannot merge in a spherical galaxy within a Hubble time; an emerging picture is that galaxy geometry, rotation, and large potential perturbations may usher the SMBH binary through the critical three-body scattering phase and ultimately drive the SMBH to coalesce. We explore the orbital content within an N-body model of a mildly- flattened, non-rotating, SMBH-embedded elliptical galaxy. When used as the foundation for a study on the SMBH binary coalescence, the black holes bypassed the binary stalling often seen within spherical galaxies and merged on Gyr timescales (Khan et al. 2013). Using both frequency-mapping and angular momentum criteria, we identify a wealth of resonant orbits in the axisymmetric model, including saucers, that are absent from an otherwise identical spherical system and that can potentially interact with the binary. We quantified the set of orbits that could be scattered by the SMBH binary, and found that the axisymmetric model contained nearly seven times the number of these potential loss cone orbits compared to our equivalent spherical model. In this flattened model, the mass of these orbits is roughly 3 times of that of the SMBH, which is consistent with what the SMBH binary needs to scatter to transition into the gravitational wave regime.
7 pages, 9 figures and 1 table. Submitted to ApJ. Comments welcome
References in corpus (6)
- The influence of gas on the structure of merger remnants
- The structure of the nuclear stellar cluster of the Milky Way
- Dynamics of galaxy cores and supermassive black holes
- Long-Term Evolution of Massive Black Hole Binaries. III. Binary Evolution in Collisional Nuclei
- Stellar orbits in cosmological galaxy simulations: the connection to formation history and line-of-sight kinematics
- A Full Loss Cone For Triaxial Galaxies
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- Intermediate Mass Black Hole Binary Evolution in Nuclear Star Clusters: the effect of the stellar mass black hole population