Mapping the stability of stellar rotating spheres via linear response theory
arXiv:1902.09299 · doi:10.1093/mnras/stz1227
Abstract
Rotation is ubiquitous in the Universe, and recent kinematic surveys have shown that early type galaxies and globular clusters are no exception. Yet the linear response of spheroidal rotating stellar systems has seldom been studied. This paper takes a step in this direction by considering the behaviour of spherically symmetric systems with differential rotation. Specifically, the stability of several sequences of Plummer spheres is investigated, in which the total angular momentum, as well as the degree and flavour of anisotropy in the velocity space are varied. To that end, the response matrix method is customised to spherical rotating equilibria. The shapes, pattern speeds and growth rates of the systems' unstable modes are computed. Detailed comparisons to appropriate N-body measurements are also presented. The marginal stability boundary is charted in the parameter space of velocity anisotropy and rotation rate. When rotation is introduced, two sequences of growing modes are identified corresponding to radially and tangentially-biased anisotropic spheres respectively. For radially anisotropic spheres, growing modes occur on two intersecting surfaces (in the parameter space of anisotropy and rotation), which correspond to fast and slow modes, depending on the net rotation rate. Generalised, approximate stability criteria are finally presented.
18 pages, 20 figures. Submitted to MNRAS
References in corpus (11)
- Overview of the SDSS-IV MaNGA Survey: Mapping Nearby Galaxies at Apache Point Observatory
- A stellar census in globular clusters with MUSE: The contribution of rotation to cluster dynamics studied with 200 000 stars
- The eye of Gaia on globular clusters kinematics: internal rotation
- Unexpected Dynamical Instabilities In Differentially Rotating Neutron Stars
- Action-based distribution functions for spheroidal galaxy components
- Triaxial orbit-based modelling of the Milky Way Nuclear Star Cluster
- The Kinematic Richness of Star Clusters I. Isolated Spherical Models with Primordial Anisotropy
- The intimate relation between the low T/W instability and the co-rotation point
- New biorthogonal potential--density basis functions
- On a role of corotation radius in the low dynamical instability of differentially rotating stars
- The Doubloon Models of Dark Haloes