Effect of dust on Kelvin-Helmholtz instabilities
arXiv:1401.6774 · doi:10.1051/0004-6361/201322322
Abstract
Dust is present in a large variety of astrophysical fluids, from tori around supermassive black holes to molecular clouds, protoplanetary discs, and cometary outflows. In many such fluids, shearing flows are present, leading to the formation of Kelvin-Helmholtz instabilities (KHI) and changing the properties and structures of the fluid through processes such as mixing and clumping of dust. We investigate how dust changes the growth rates of the KHI in 2D and 3D and how the it redistributes and clumps dust. We investigate if similarities can be found between the structures in 3D KHI and those seen in observations of molecular clouds. We do this by performing numerical hydrodynamical dust+gas simulations with in addition to gas a number of dust fluids. Each dust fluid represents a portion of the particle size-distribution. We study how dust-to-gas mass density ratios between 0.01 and 1 alter the growth rate in the linear phase of the KHI. We do this for a wide range of perturbation wavelengths, and compare these values to the analytical gas-only growth rates. As the formation of high-density dust structures is of interest in many astrophysical environments, we scale our simulations with physical quantities similar to values in molecular clouds. Large differences in dynamics are seen for different grain sizes. We demonstrate that high dust-to-gas ratios significantly reduce the growth rate of the KHI, especially for short wavelengths. We compare the dynamics in 2D and 3D simulations, where the latter demonstrates additional full 3D instabilities during the non-linear phase, leading to increased dust densities. We compare the structures formed by the KHI in 3D simulations with those in molecular clouds and see how the column density distribution of the simulation shares similarities with log-normal distributions with power-law tails sometimes seen in observations of molecular clouds.
14 pages, 20 figures
References in corpus (5)
- Dust flow in gas disks in the presence of embedded planets
- Dust sedimentation and self-sustained Kelvin-Helmholtz turbulence in protoplanetary disk mid-planes. I. Radially symmetric simulations
- Shattering and coagulation of dust grains in interstellar turbulence
- Computing the dust distribution in the bowshock of a fast moving, evolved star
- Three-Dimensional Simulations of Kelvin-Helmholtz Instability in Settled Dust Layers in Protoplanetary Disks
Cited by in corpus (15)
- MPI-AMRVAC for Solar and Astrophysics
- MPI-AMRVAC 2.0 for Solar and Astrophysical Applications
- MPI-AMRVAC 3.0: updates to an open-source simulation framework
- Astrophysical hydrodynamics with a high-order discontinuous Galerkin scheme and adaptive mesh refinement
- Dust capture and long-lived density enhancements triggered by vortices in 2D protoplanetary disks
- Jumping the Gap: The Formation Conditions and Mass Function of Pebble-Pile Planetesimals
- IRAM-30m large scale survey of CO(2-1) and CO(2-1) emission in the Orion molecular cloud
- Pinwheels in the sky, with dust: 3D modeling of the Wolf-Rayet 98a environment
- Some Stars are Totally Metal: A New Mechanism Driving Dust Across Star-Forming Clouds, and Consequences for Planets, Stars, and Galaxies
- Spontaneous concentrations of solids through two-way drag forces between gas and sedimenting particles
- The moving mesh code Shadowfax
- Modelling ripples in Orion with coupled dust dynamics and radiative transfer
- Are the Formation and Abundances of Metal-Poor Stars the Result of Dust Dynamics?
- Dust evolution during the protostellar collapse: influence on the coupling between the neutral gas and the magnetic field
- Magnetic clumping of charged dust in the dense interstellar medium