On the grain-size distribution of turbulent dust growth
arXiv:2010.01953 · doi:10.1093/mnras/staa3114
Abstract
It has recently been shown that turbulence in the interstellar medium (ISM) can significantly accelerate the growth of dust grains by accretion of molecules, but the turbulent gas-density distribution also plays a crucial role in shaping the grain-size distribution. The growth velocity, i.e., the rate of change of the mean grain radius, is proportional to the local gas density if the growth species (molecules) are well-mixed in the gas. As a consequence, grain growth happens at vastly different rates in different locations, since the gas-density distribution of the ISM shows a considerable variance. Here, it is shown that grain-size distribution (GSD) rapidly becomes a reflection of the gas-density distribution, irrespective of the shape of the initial GSD. This result is obtained by modelling ISM turbulence as a Markov process, which in the special case of an Ornstein-Uhlenbeck process leads to a lognormal gas-density distribution, consistent with numerical simulations of isothermal compressible turbulence. This yields an approximately lognormal GSD; the sizes of dust grains in cold ISM clouds may thus not follow the commonly adopted power-law GSD with index -3.5, but corroborates the use of a log-nomral GSD for large grains, suggested by several studies. It is also concluded that the very wide range of gas densities obtained in the high Mach-number turbulence of molecular clouds must allow formation of a tail of very large grains reaching radii of several microns.
9 pages, 7 figures, accepted for publication in MNRAS
References in corpus (12)
- A Unified Representation of Gas-Phase Element Depletions in the Interstellar Medium
- The evolution of amorphous hydrocarbons in the ISM: dust modelling from a new vantage point
- A dusty, normal galaxy in the epoch of reionization
- The cycle of interstellar dust in galaxies of different morphological types
- Shattering and coagulation of dust grains in interstellar turbulence
- Dust-depletion sequences in damped Lyman-α absorbers: a unified picture from low-metallicity systems to the Galaxy
- Herschel-ATLAS: Properties of dusty massive galaxies at low and high redshifts
- Where does galactic dust come from?
- On the (in)variance of the dust-to-metals ratio in galaxies
- Galactic dust evolution with rapid dust formation in the interstellar medium due to hypersonic turbulence
- Dust-depletion sequences in damped Ly-α absorbers II. The composition of cosmic dust, from low-metallicity systems to the Galaxy
- Coagulation of inertial particles in supersonic turbulence
Cited by in corpus (6)
- Dust depletion of of metals from local to distant galaxies II: Cosmic dust-to-metal ratio and dust composition
- An inflationary disk phase to explain extended protoplanetary dust disks
- Dependence of Dust Formation on the Supernova Explosion
- Inhibited destruction of dust by supernova in a clumpy medium
- Supernova dust destruction in the magnetized turbulent ISM
- Description of turbulent dynamics in the interstellar medium: Multifractal microcanonical analysis: II. Sparse filtering of Herschel observation maps and visualization of filamentary structures at different length scales