Published October 2020 | Version Submitted + Published
Journal Article Open

Measuring dynamical masses from gas kinematics in simulated high-redshift galaxies

  • 1. ROR icon Northwestern University
  • 2. ROR icon University of Connecticut
  • 3. ROR icon University of Zurich
  • 4. ROR icon California Institute of Technology
  • 5. ROR icon University of California, San Diego

Abstract

Advances in instrumentation have recently extended detailed measurements of gas kinematics to large samples of high-redshift galaxies. Relative to most nearby, thin disc galaxies, in which gas rotation accurately traces the gravitational potential, the interstellar medium (ISM) of z ≳ 1 galaxies is typically more dynamic and exhibits elevated turbulence. If not properly modelled, these effects can strongly bias dynamical mass measurements. We use high-resolution FIRE-2 cosmological zoom-in simulations to analyse the physical effects that must be considered to correctly infer dynamical masses from gas kinematics. Our analysis covers a range of galaxy properties from low-redshift Milky-Way-mass galaxies to massive high-redshift galaxies (M⋆ > 10¹¹ M⊙ at z = 1). Selecting only snapshots where a disc is present, we calculate the rotational profile v_ϕ(r) of the cool (⁠10^(3.5) < T <10^(4.5) K⁠) gas and compare it to the circular velocity v_c = √GM_(enc)/r⁠. In the simulated galaxies, the gas rotation traces the circular velocity at intermediate radii, but the two quantities diverge significantly in the centre and in the outer disc. Our simulations appear to over-predict observed rotational velocities in the centres of massive galaxies (likely from a lack of black hole feedback), so we focus on larger radii. Gradients in the turbulent pressure at these radii can provide additional radial support and bias dynamical mass measurements low by up to 40 per cent. In both the interior and exterior, the gas' motion can be significantly non-circular due to e.g. bars, satellites, and inflows/outflows. We discuss the accuracy of commonly used analytic models for pressure gradients (or 'asymmetric drift') in the ISM of high-redshift galaxies.

Additional Information

© 2020 The Author(s). Published by Oxford University Press on behalf of the Royal Astronomical Society. This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model). Accepted 2020 July 21. Received 2020 July 6; in original form 2019 August 13. Published: 06 August 2020. SW is supported by the Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA) at Northwestern University through the CIERA Postdoctoral Fellowship Program. CAFG was supported by NSF through grants AST-1517491, AST-1715216, and CAREER award AST-1652522; by NASA through grant 17-ATP17-0067; by STScI through grant HST-AR-14562.001; and by a Cottrell Scholar Award from the Research Corporation for Science Advancement. DAA acknowledges support by the Flatiron Institute, which is supported by the Simons Foundation. RF acknowledges financial support from the Swiss National Science Foundation (grant no. 157591). Support for PFH was provided by an Alfred P. Sloan Research Fellowship, NSF Collaborative Research Grant No. 1715847, and CAREER grant no. 1455342, and NASA grants NNX15AT06G, JPL 1589742, and 17-ATP17-0214. DK was supported by NSF grant AST-1715101 and the Cottrell Scholar Award from the Research Corporation for Science Advancement. Numerical calculations were run on the Quest computing cluster at Northwestern University; the Wheeler computing cluster at Caltech; XSEDE allocations TG-AST130039, TG-AST120025, TG-AST140023, and TG-AST160048; and Blue Waters PRAC allocation NSF.1713353. Data Availability: The data supporting the plots within this panels are available on reasonable request to the corresponding author. A public version of the GIZMO code is available at http://www.tapir.caltech.edu/phopkins/Site/GIZMO.html. Additional data including simulation snapshots, initial conditions, and derived data products are available at https://fire.northwestern.edu/data/.

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Submitted - 1908.05274.pdf

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Additional details

Identifiers

Eprint ID
101855
Resolver ID
CaltechAUTHORS:20200311-130218946

Funding

Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA)
Northwestern University
NSF
AST-1517491
NSF
AST-1715216
NSF
AST-1652522
NASA
17-ATP17-0067
NASA
HST-AR-14562.001
Cottrell Scholar of Research Corporation
Flatiron Institute
Simons Foundation
Swiss National Science Foundation (SNSF)
157591
Alfred P. Sloan Foundation
NSF
AST-1715847
NSF
AST-1455342
NASA
NNX15AT06G
JPL
1589742
JPL
17-ATP17-0214
NSF
AST-1715101
NSF
TG-AST130039
NSF
TG-AST120025
NSF
TG-AST140023
NSF
TG-AST160048
NSF
OAC-1713353

Dates

Created
2020-03-11
Created from EPrint's datestamp field
Updated
2021-11-16
Created from EPrint's last_modified field

Caltech Custom Metadata

Caltech groups
Astronomy Department , TAPIR