Predicted trends in Milky Way bulge proper motion rotation curves: future prospects for HST and LSST

Author:

Gough-Kelly Steven1ORCID,Debattista Victor P1ORCID,Clarkson William I2ORCID,Gonzalez Oscar A3ORCID,Anderson Stuart R1ORCID,Gennaro Mario4ORCID,Calamida Annalisa4ORCID,Sahu Kailash C4ORCID

Affiliation:

1. Jeremiah Horrocks Institute, University of Central Lancashire, Preston PR1 2HE, UK

2. Department of Natural Sciences, University of Michigan-Dearborn, 4901 Evergreen Road, Dearborn, MI 48128, USA

3. UK Astronomy Technology Centre, Royal Observatory, Blackford Hill, Edinburgh EH9 3HJ, UK

4. Space Telescope Science Institute, 3700 San Martin Drive, Baltimore, MD 21218, USA

Abstract

ABSTRACT We use an N-body+smoothed particle hydrodynamics simulation of an isolated barred galaxy to study the age dependence of bulge longitudinal proper motion (μl) rotation curves. We show that close to the minor axis (|l| ∼ 0○) the relatively young stars rotate more rapidly than the old stars, as found by Hubble Space Telescope in the Milky Way’s (MW's) bulge. This behaviour would be expected also if the MW were unbarred. At larger |l| a different behaviour emerges. Because younger stars trace a strong bar, their galactocentric radial motions dominate their μl at |l| ∼ 6○, leading to a reversal in the sign of $\langle {\rm{\mu _l}}\rangle $. This results in a rotation curve with forbidden velocities (negative $\langle {\rm{\mu _l}}\rangle $ at positive longitudes, and positive $\langle {\rm{\mu _l}}\rangle $ at negative longitudes). The old stars, instead, trace a much weaker bar and thus their kinematics are more axisymmetric, resulting in no forbidden velocities. We develop metrics of the difference in the $\langle {\rm{\mu _l}}\rangle $ rotation curves of young and old stars, and forbidden velocities. We use these to predict the locations where rotation curve reversals can be observed by HST and the Vera Rubin Telescope. Such measurements would represent support for the amplitude of the bar being a continuous function of age, as predicted by kinematic fractionation, in which the bar strength variations are produced purely by differences in the random motions of stellar populations at bar formation.

Funder

STFC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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