English

On the radial velocity wave in the Galactic disk

Astrophysics of Galaxies 2026-02-09 v1

Abstract

Stars in the Galactic disk have mean radial velocities vR\overline{v}_R that oscillate as a function of angular momentum JφJ_\varphi. This `JφJ_\varphi-vR{\overline{v}}_R wave' signal also exhibits a systematic phase shift when stars are binned by their dynamical temperatures. However, the origin of the wave is unknown. Here we use linear perturbation theory to derive a simple analytic formula for the JφJ_\varphi-vR\overline{v}_R signal that depends on the equilibrium properties of the Galaxy and the history of recent perturbations to it. The formula naturally explains the phase shift, but also predicts that different classes of perturbation should drive JφJ_\varphi-vR\overline{v}_R signals with very different morphologies. Ignoring the self-gravity of disk fluctuations, it suggests that neither a distant tidal kick (e.g., from the Sgr dwarf) nor a rigidly-rotating Galactic bar can produce a qualitatively correct JφJ_\varphi-vR\overline{v}_R wave signal. However, short-lived spiral arms can, and by performing an MCMC fit we identify a spiral perturbation that drives a JφJ_\varphi-vR{\overline{v}}_R signal in reasonable agreement with the data. We verify the analytic formula with test particle simulations, finding it to be highly accurate when applied to dynamically cold stellar populations. More work is needed to deal with hotter orbits, and to incorporate the fluctuations' self-gravity and the role of interstellar gas.

Keywords

Cite

@article{arxiv.2602.06182,
  title  = {On the radial velocity wave in the Galactic disk},
  author = {Chris Hamilton and Andrew Mummery and Joss Bland-Hawthorn},
  journal= {arXiv preprint arXiv:2602.06182},
  year   = {2026}
}

Comments

17pp, submitted to ApJ

R2 v1 2026-07-01T10:23:23.189Z