Published August 2020 | Version Published + Submitted
Journal Article Open

Simulating the Diverse Instabilities of Dust in Magnetized Gas

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon University of Otago
  • 3. ROR icon Yale University

Abstract

Recently, Squire & Hopkins showed that charged dust grains moving through magnetized gas under the influence of a uniform external force (such as radiation pressure or gravity) are subject to a spectrum of instabilities. Qualitatively distinct instability families are associated with different Alfvén or magnetosonic waves and drift or gyro motion. We present a suite of simulations exploring these instabilities, for grains in a homogeneous medium subject to an external acceleration. We vary parameters such as the ratio of Lorentz-to-drag forces on dust, plasma β, size scale, and acceleration. All regimes studied drive turbulent motions and dust-to-gas fluctuations in the saturated state, rapidly amplify magnetic fields into equipartition with velocity fluctuations, and produce instabilities that persist indefinitely (despite random grain motions). Different parameters produce diverse morphologies and qualitatively different features in dust, but the saturated gas state can be broadly characterized as anisotropic magnetosonic or Alfvénic turbulence. Quasi-linear theory can qualitatively predict the gas turbulent properties. Turbulence grows from small to large scales, and larger scale modes usually drive more vigorous gas turbulence, but dust velocity and density fluctuations are more complicated. In many regimes, dust forms structures (clumps, filaments, sheets) that reach extreme overdensities (up to ≫10⁹ times mean), and exhibit substantial substructure even in nearly incompressible gas. These can be even more prominent at lower dust-to-gas ratios. In other regimes, dust self-excites scattering via magnetic fluctuations that isotropize and amplify dust velocities, producing fast, diffusive dust motions.

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 April 16. Received 2020 April 14; in original form 2019 April 26. Published: 24 April 2020. We thank Alexander Kaurov and Ulrich Steinwandel for a number of enlightening discussions and useful comments. Support for PFH was provided by an Alfred P. Sloan Research Fellowship, NSF Collaborative Research Grant #1715847 and CAREER grant #1455342, and NASA grants NNX15AT06G, JPL 1589742, 17-ATP17-0214. Support for JS was provided by Marsden Fund grant UOO1727 and a Rutherford Discovery Fellowship, managed through the Royal Society Te Aparangi. Numerical calculations were run on the Caltech compute cluster 'Wheeler', allocations from XSEDE TG-AST130039 and PRAC NSF.1713353 supported by the NSF, and NASA HEC SMD-16-7592.

Attached Files

Published - staa1046.pdf

Submitted - 1904.11494.pdf

Files

1904.11494.pdf

Files (50.2 MB)

Name Size
md5:456a524589818dad8da56af8cdf43817
13.6 MB Preview Download
md5:69522b9308f2ec1384d2fe429fd2055a
36.6 MB Preview Download

Additional details

Identifiers

Eprint ID
97435
Resolver ID
CaltechAUTHORS:20190726-092908062

Related works

Funding

Alfred P. Sloan Foundation
NSF
AST-1715847
NSF
AST-1455342
NASA
NNX15AT06G
JPL
1589742
JPL
17-ATP17-0214
Marsden Fund of the Royal Society of New Zealand
UOO1727
NSF
TG-AST130039
NSF
PRAC-1713353
NASA
SMD-16-7592

Dates

Created
2019-07-26
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