Resonant Drag Instabilities for Polydisperse Dust, I. The Acoustic Resonant Drag Instability
arXiv:2503.05359 · doi:10.1051/0004-6361/202453495
Abstract
Dust grains embedded in gas flow give rise to a class of hydrodynamic instabilities that can occur whenever there exists a relative velocity between gas and dust. These instabilities have predominantly been studied for single grain sizes, for which a strong interaction can be found between drifting dust and a travelling gas wave, leading to fast-growing perturbations (growth rates ) even at small dust-to-gas ratios . They are called resonant drag instabilities. We focus on the acoustic resonant drag instability, which is potentially important in AGB star outflows, around supernova remnants and star clusters in starburst galaxies. We study the acoustic resonant drag instability, taking into account a continuous spectrum of grain sizes, to determine whether it survives in the polydisperse regime and how the resulting growth rates compare to the monodisperse case. We solve the linear equations for a polydisperse fluid for the acoustic drag instability, focusing on small dust-to-gas ratios. Size distributions of realistic width turn the fast-growing perturbations of the monodisperse limit into slower growing perturbations due to the fact that the backreaction on the gas involves an integration over the resonance. Furthermore, the large wave numbers that grow fastest in the monodisperse regime are stabilized by a size distribution, severely limiting the growth rates in the polydisperse regime. The acoustic resonant drag instability turns from a singularly perturbed problem in in the monodisperse limit into a regular perturbation for a sufficiently wide size distribution. It can still grow exponentially in the polydisperse regime, but at a slower pace compared to the single size case.
11 pages, 7 figures, accepted for publication in A&A
References in corpus (13)
- Array Programming with NumPy
- Dust Masses, PAH Abundances, and Starlight Intensities in the SINGS Galaxy Sample
- Dust size distributions in coagulation/fragmentation equilibrium: Numerical solutions and analytical fits
- 2D Models for Dust-driven AGB Star Winds
- Streaming Instability for Particle-Size Distributions
- Streaming Instability with Multiple Dust Species: I. Favourable Conditions for the Linear Growth
- Polydisperse Streaming Instability I. Tightly coupled particles and the terminal velocity approximation
- Outflows Driven by Direct and Reprocessed Radiation Pressure in Massive Star Clusters
- Polydisperse Streaming Instability III. Dust evolution encourages fast instability
- Stratified and vertically-shearing streaming instabilities in protoplanetary disks
- Polydisperse Streaming Instability II. Methods for solving the linear stability problem
- Dust in the Wind with Resonant Drag Instabilities: I. The Dynamics of Dust-Driven Outflows in GMCs and HII Regions
- On the optical properties of Resonant Drag Instabilities: Variability of Asymptotic Giant Branch and R Coronae Borealis stars