Coagulation of inertial particles in supersonic turbulence
arXiv:2002.12172 · doi:10.1051/0004-6361/202040068
Abstract
Coagulation driven by supersonic turbulence is primarily an astrophysical problem because coagulation processes on Earth are normally associated with incompressible fluid flows at low Mach numbers, while dust aggregation in the interstellar medium (ISM) for instance is an example of the opposite regime. We study coagulation of inertial particles in compressible turbulence using high-resolution direct and shock-capturing numerical simulations with a wide range of Mach numbers from nearly incompressible to moderately supersonic. The particle dynamics is simulated by representative particles and the effects on the size distribution and coagulation rate due to increasing Mach number is explored. We show that the time evolution of particle size distribution mainly depends on the compressibility (Mach number). We find that the average coagulation kernel scales linearly with the average Mach number multiplied by the combined size of the colliding particles, that is, , which is qualitatively consistent with expectations from analytical estimates. A quantitative correction is proposed and can serve as a benchmark for future studies. We argue that the coagulation rate is also enhanced by compressibility-induced compaction of particles.
References in corpus (15)
- Heavy particle concentration in turbulence at dissipative and inertial scales
- The Fractal Density Structure in Supersonic Isothermal Turbulence: Solenoidal versus Compressive Energy Injection
- The Pencil Code, a modular MPI code for partial differential equations and particles: multipurpose and multiuser-maintained
- Caustic activation of rain showers
- Shattering and coagulation of dust grains in interstellar turbulence
- The dust budget crisis in high-redshift submillimetre galaxies
- A representative particle approach to coagulation and fragmentation of dust aggregates and fluid droplets
- Multifractal concentrations of inertial particles in smooth random flows
- Mach number dependence of the onset of dynamo action
- Turbulence-Induced Relative Velocity of Dust particles IV: the Collision Kernel
- Turbulence-Induced Relative Velocity of Dust Particles II: The Bidisperse Case
- Turbulence-Induced Relative Velocity of Dust Particles III: The Probability Distribution
- Advective collisions
- Driving solar coronal MHD simulations on high-performance computers
- Small-scale clustering of nano-dust grains in supersonic turbulence