English

Length and Velocity Scales in Protoplanetary Disk Turbulence

Earth and Planetary Astrophysics 2024-02-26 v1

Abstract

In the theory of protoplanetary disk turbulence, a widely adopted \emph{ansatz}, or assumption, is that the turnover frequency of the largest turbulent eddy, ΩL\Omega_L, is the local Keplerian frequency ΩK\Omega_K. In terms of the standard dimensionless Shakura-Sunyaev α\alpha parameter that quantifies turbulent viscosity or diffusivity, this assumption leads to characteristic length and velocity scales given respectively by αH\sqrt{\alpha}H and αc\sqrt{\alpha}c, in which HH and cc are the local gas scale height and sound speed. However, this assumption is not applicable in cases when turbulence is forced numerically or driven by some natural processes such as Vertical Shear Instability. Here we explore the more general case where ΩLΩK\Omega_L\ge\Omega_K and show that under these conditions, the characteristic length and velocity scales are respectively α/RH\sqrt{\alpha/R'}H and αRc\sqrt{\alpha R'}c, where RΩL/ΩKR'\equiv \Omega_L/\Omega_K is twice the Rossby number. It follows that α=\alphat/R\alpha=\alphat/R', where \alphatc\sqrt{\alphat} c is the root-mean-square average of the turbulent velocities. Properly allowing for this effect naturally explains the reduced particle scale heights produced in shearing box simulations of particles in forced turbulence, and may help with interpreting recent edge-on disk observations; more general implications for observations are also presented. For R>1R'>1 the effective particle Stokes numbers are increased, which has implications for particle collision dynamics and growth, as well as for planetesimal formation.

Keywords

Cite

@article{arxiv.2402.15475,
  title  = {Length and Velocity Scales in Protoplanetary Disk Turbulence},
  author = {Debanjan Sengupta and Jeffrey N. Cuzzi and Orkan M. Umurhan and Wladimir Lyra},
  journal= {arXiv preprint arXiv:2402.15475},
  year   = {2024}
}

Comments

Accepted for publication in ApJ