English

Keeping it Cool: Much Orbit Migration, yet Little Heating, in the Galactic Disk

Astrophysics of Galaxies 2020-06-17 v1

Abstract

A star in the Milky Way's disk can now be at a Galactocentric radius quite distant from its birth radius for two reasons: either its orbit has become eccentric through radial heating, which increases its radial action JRJ_R (`blurring'); or merely its angular momentum LzL_z has changed and thereby its guiding radius (`churning'). We know that radial orbit migration is strong in the Galactic low-α\alpha disk and set out to quantify the relative importance of these two effects, by devising and applying a parameterized model for the distribution p(Lz,JR,τ,[Fe/H])p(L_z, J_R, \tau, \mathrm[Fe/H]) in the stellar disk. This model describes the orbit evolution for stars of age τ\tau and metallicity [Fe/H], presuming coeval stars were initially born on (near-)circular orbits, and with a unique [Fe/H] at a given birth angular momentum and age. We fit this model to APOGEE red clump stars, accounting for the complex selection function of the survey. The best fit model implies changes of angular momentum of ΔLz2619kpc km/s (τ/6 Gyr)0.5\sqrt{\langle \Delta L_z \rangle^2} \approx 619\, \mathrm{kpc~km/s~}(\tau/\mathrm{6~Gyr})^{0.5}, and changes of radial action as ΔJR263kpc km/s (τ/6 Gyr)0.6\sqrt{\langle \Delta J_R \rangle^2} \approx 63\, \mathrm{kpc~km/s~} (\tau/\mathrm{6~Gyr})^{0.6} at 8 kpc. This suggests that the secular orbit evolution of the disk is dominated by diffusion in angular momentum, with radial heating being an order of magnitude lower.

Keywords

Cite

@article{arxiv.2002.04622,
  title  = {Keeping it Cool: Much Orbit Migration, yet Little Heating, in the Galactic Disk},
  author = {Neige Frankel and Jason Sanders and Yuan-Sen Ting and Hans-Walter Rix},
  journal= {arXiv preprint arXiv:2002.04622},
  year   = {2020}
}

Comments

Submitted to ApJ, comments are welcome

R2 v1 2026-06-23T13:38:46.638Z