Slow modes in Keplerian disks
arXiv:astro-ph/0011571 · doi:10.1086/319398
Abstract
Low-mass disks orbiting a massive body can support "slow" normal modes, in which the eigenfrequency is much less than the orbital frequency. Slow modes are lopsided, i.e., the azimuthal wavenumber m=1. We investigate the properties of slow modes, using softened self-gravity as a simple model for collective effects in the disk. We employ both the WKB approximation and numerical solutions of the linear eigenvalue equation. We find that all slow modes are stable. Discrete slow modes can be divided into two types, which we label g-modes and p-modes. The g-modes involve long leading and long trailing waves, have properties determined by the self-gravity of the disk, and are only present in narrow rings or in disks where the precession rate is dominated by an external potential. In contrast, the properties of p-modes are determined by the interplay of self-gravity and other collective effects. P-modes involve both long and short waves, and in the WKB approximation appear in degenerate leading/trailing pairs. Disks support a finite number---sometimes zero---of discrete slow modes, and a continuum of singular modes.
32 pages, 12 figures. To be published in Astronomical Journal
Cited by in corpus (59)
- How Do Massive Black Holes Get Their Gas?
- Eccentricity Evolution for Planets in Gaseous Disks
- An Analytic Model of Angular Momentum Transport by Gravitational Torques: From Galaxies to Massive Black Holes
- HST STIS spectroscopy of the triple nucleus of M31: two nested disks in Keplerian rotation around a Supermassive Black Hole
- Predictions for a planet just inside Fomalhaut's eccentric ring
- The Nuclear Stellar Disk in Andromeda: A Fossil from the Era of Black Hole Growth
- The Origins of AGN Obscuration: The 'Torus' as a Dynamical, Unstable Driver of Accretion
- Lopsided Spiral Galaxies
- Growth of eccentric modes in disc-planet interactions
- Eccentric-disk models for the nucleus of M31
- Gas and dust hydrodynamical simulations of massive lopsided transition discs - I. Gas distribution
- Secular stability and instability in stellar systems surrounding massive objects
- Three-dimensional eccentric discs around Be stars
- Long-Lived Eccentric Modes in Circumbinary Disks
- The Secular Evolution of the Primordial Kuiper Belt
- Local and global dynamics of eccentric astrophysical discs
- Fast Modes and Dusty Horseshoes in Transitional Disks
- On the Origin of the Eccentricities of Extrasolar Planets
- Dynamical Modeling of the Stellar Nucleus of M31
- A Simple Family of Models for Eccentric Keplerian Fluid Disks
- Global lopsided instability in a purely stellar galactic disc
- Hydrodynamic instability in eccentric astrophysical discs
- On the nature of the radial orbit instability in spherically symmetric collisionless stellar systems
- Long-lived lop-sided modes of annular disks orbiting a central mass
- Self-Gravitating Eccentric Disk Models for the Double Nucleus of M31
- One-armed spirals in locally isothermal, radially structured self-gravitating discs
- Density waves in debris discs and galactic nuclei
- Role of gas in supporting grand spiral structure
- Schrödinger Evolution of Self-Gravitating Disks
- Eccentric Modes in Disks With Pressure and Self-Gravity
- Counter-rotating stellar discs around a massive black hole: self-consistent, time-dependent dynamics
- Stellar Dynamics around a Massive Black Hole I: Secular Collisionless Theory
- A Simplified Model for the Secular Dynamics of Eccentric Discs and Applications to Planet-Disc Interactions
- The Doubling of Stellar Black Hole Nuclei
- Genesis of morpho-kinematic lopsidedness in minor merger of galaxies
- Potential softening and eccentricity dynamics in razor-thin, nearly-Keplerian discs
- A local prescription for the softening length in self-gravitating gaseous discs
- Nonlinear hydrodynamical evolution of eccentric Keplerian discs in two dimensions: validation of secular theory
- Long-Lived Eccentricities in Accretion Disks
- Effect of angular momentum distribution on gravitational loss-cone instability in stellar clusters around massive BH
- Ring Formation in Protoplanetary Disks Driven by an Eccentric Instability
- Secular Evolution Driven by Massive Eccentric Disks/Rings: An Apsidally Aligned Case
- Spiral Arms in Broad-line Regions of Active Galactic Nuclei. I. Reverberation and Differential Interferometric Signals of Tightly Wound Cases
- Electrically charged matter in permanent rotation around magnetized black hole: A toy model for self-gravitating fluid tori
- Effect of dark matter halo on global spiral modes in galaxies
- An Explanation for the Slopes of Stellar Cusps in Galaxy Spheroids
- Slow m=1 instabilities of softened gravity Keplerian discs
- Global Spiral Density Wave Modes in Protoplanetary Disks: Morphology of Spiral Arms
- Unstable modes of counter-rotating Keplerian discs
- Apsidal Clustering following the Inclination Instability
- Dynamical processes in galaxy centers
- Focusing of nonlinear eccentric waves in astrophysical discs
- On the formation of an eccentric disk via disruption of a bulge core near a massive black hole
- Negative Energy and Angular Momentum Modes of Thin Accretion Disks
- Secular Instabilities of Keplerian Stellar Discs
- Modal analysis of gravitational instabilities in nearly Keplerian, counter-rotating collisionless discs
- Effect of dark matter halo on global spiral modes in a collisionless galactic disc
- Eigenstates of Quasi-Keplerian Self-Gravitating Particle Discs
- A modified WKB formulation for linear eigenmodes of a collisionless self-gravitating disc in the epicyclic approximation