Emergence of the Gaia Phase Space Spirals from Bending Waves
Abstract
We discuss the physical mechanism by which pure vertical bending waves in a stellar disc evolve to form phase space spirals similar to those discovered by Antoja et al. ( arXiv:1804.10196) in Gaia Data Release 2. These spirals were found by projecting Solar Neighbourhood stars onto the plane. Faint spirals appear in the number density of stars projected onto the plane, which can be explained by a simple model for phase wrapping. More prominent spirals are seen when bins across the plane are coloured by median or . We use both toy model and fully self-consistent simulations to show that the spirals develop naturally from vertical bending oscillations of a stellar disc. The underlying physics follows from the observation that the vertical energy of a star (essentially, its "radius" in the plane) correlates with its angular momentum or, alternatively, guiding radius. Moreover, at fixed physical radius, the guiding radius determines the azimuthal velocity. Together, these properties imply the link between in-plane and vertical motion that lead directly to the Gaia spirals. We show that the cubic coupling term in the effective potential is crucial for understanding the morphology of the spirals. This suggests that phase space spirals might be a powerful probe of the Galactic potential. In addition, we argue that self-gravity is necessary to properly model the evolution of the bending waves and their attendant phase space spirals.
Keywords
Cite
@article{arxiv.1807.11516,
title = {Emergence of the Gaia Phase Space Spirals from Bending Waves},
author = {Keir Darling and Lawrence M. Widrow},
journal= {arXiv preprint arXiv:1807.11516},
year = {2019}
}
Comments
7 Pages, 9 Figures, submitted to MNRAS on July 30, 2018