The tilt of the velocity ellipsoid in the Milky Way disk
arXiv:1407.4808 · doi:10.1093/mnras/stv1314
Abstract
Accurate determination of the local dark matter density is important for understanding the nature and distribution of dark matter in the universe. This requires that the local velocity distribution is characterised correctly. Here, we present a kinematic study of 16,276 SEGUE G-type dwarf stars in the solar neighbourhood, with which we determine the shape of the velocity ellipsoid in the meridional plane. We separate our G-dwarf stars based on their [Fe/H] and [alpha/Fe] abundances and infer the local velocity distribution independently for each sub-sample using a maximum-likelihood method that accounts for possible contaminants. We show by constructing vertical Jeans models that the different sub-samples yield consistent results only when we allow the velocity ellipsoid in the disk to be tilted, demonstrating that the common assumption of decoupled radial and vertical motions in the disk is incorrect. Further, we obtain that the tilt of the velocity ellipsoid is consistent among the different sub-samples. We find that increase in the tilt with height is well described by the relation alpha_tilt = (-0.90 +- 0.04) arctan(|z|/R_sun) - (0.01 +- 0.005), which is close to alignment with the spherical coordinate system and hence a velocity ellipsoid pointing to the Galactic centre. We also confirm earlier findings that the sub-samples behave almost isothermally with both radial and vertical velocity dispersion approximately constant with height. We conclude that the coupling between radial and vertical motion captured in the velocity ellipsoid tilt cannot be ignored when considering dynamical models of the solar neighbourhood. In a subsequent paper, we will develop a new modelling scheme informed by these results and make an improved determination of the local dark matter density.
accepted by MNRAS; 14 pages
References in corpus (11)
- New constraints on the chemical evolution of the solar neighbourhood and Galactic disc(s). Improved astrophysical parameters for the Geneva-Copenhagen Survey
- Two Stellar Components in the Halo of the Milky Way
- The Milky Way Tomography with SDSS: II. Stellar Metallicity
- The wobbly Galaxy: kinematics north and south with RAVE red clump giants
- Actions for axisymmetric potentials
- The Gravitational Potential Near the Sun From SEGUE K-dwarf Kinematics
- Radial and vertical flows induced by galactic spiral arms: likely contributors to our "wobbly Galaxy''
- The Stellar Metallicity Distribution Function of the Galactic Halo from SDSS Photometry
- Estimation of the Tilt of the Stellar Velocity Ellipsoid from RAVE and Implications for Mass Models
- Galactic kinematics and dynamics from RAVE stars
- Very Metal-Poor Outer-Halo Stars with Round Orbits
Cited by in corpus (36)
- Dynamical heating across the Milky Way disc using APOGEE and
- The Milky Way's rotation curve out to 100 kpc and its constraint on the Galactic mass distribution
- Dark matter local density determination: recent observations and future prospects
- Using Gaia DR2 to Constrain Local Dark Matter Density and Thin Dark Disk
- The Local Dark Matter Density from SDSS-SEGUE G-dwarfs
- Evidence of a dynamically evolving Galactic warp
- The age-velocity dispersion relation of the Galactic discs from LAMOST-Gaia data
- Measuring the local dark matter density with LAMOST DR5 and Gaia DR2
- Determining the local dark matter density with LAMOST data
- The SAMI Galaxy Survey: The internal orbital structure and mass distribution of passive galaxies from triaxial orbit-superposition Schwarzschild models
- The dynamically selected stellar halo of the Galaxy with Gaia and the tilt of the velocity ellipsoid
- Planets Across Space and Time (PAST). I. Characterizing the Memberships of Galactic Components and Stellar Ages: Revisiting the Kinematic Methods and Applying to Planet Host Stars
- Measuring the local matter density using Gaia DR2
- A unified model for age-velocity dispersion relations in Local Group galaxies: Disentangling ISM turbulence and latent dynamical heating
- A non-parametric method for measuring the local dark matter density
- Mass modelling globular clusters in the Gaia era: a method comparison using mock data from an -body simulation of M4
- The Tilt of the Local Velocity Ellipsoid as Seen by Gaia
- The velocity ellipsoid in the Galactic disc using Gaia DR1
- Action-based Dynamical Modelling for the Milky Way Disk
- Revisiting the Stellar Velocity Ellipsoid - Hubble type relation: observations versus simulations
- Weighing the Galactic disk in sub-regions of the solar neighbourhood using Gaia DR2
- The tilt of the velocity ellipsoid in the Milky Way with Gaia DR2
- The vertical force in the Solar Neighbourhood using red clump stars in TGASxRAVE - Constraints on the local dark matter density
- How Close Dark Matter Halos and MOND Are to Each Other: Three-Dimensional Tests Based on Gaia DR2
- The Panchromatic Hubble Andromeda Treasury XX: The Disk of M31 is Thick
- Vertical structure of Galactic disk kinematics from LAMOST K giants
- Stellar kinematics using a third integral of motion: method and application on the Andromeda galaxy
- Calibrating the BHB Star Distance Scale and the Halo Kinematic Distance to the Galactic Centre
- Quantifying the influence of bars on action-based dynamical modelling of disc galaxies
- The tilt of the velocity ellipsoid of different Galactic disk populations
- Measuring the Matter Density of the Galactic Disk Using Stellar Streams
- Local variations of the Stellar Velocity Ellipsoid-I: the disc of galaxies in the Auriga simulations
- Local dark matter density from Gaia DR3 K-dwarfs using Gaussian processes
- Local variations of the Stellar Velocity Ellipsoid-II: the effect of the bar in the inner regions of Auriga galaxies
- Estimating the baryonic masses of face-on spiral galaxies from stellar kinematics
- The chemical and spatial variations of the bulge's velocity ellipsoids