English

Streaming Instability and Turbulence: Conditions for Planetesimal Formation

Earth and Planetary Astrophysics 2023-12-21 v1

Abstract

The streaming instability (SI) is a leading candidate for planetesimal formation, which can concentrate solids through two-way aerodynamic interactions with the gas. The resulting concentrations can become sufficiently dense to collapse under particle self-gravity, forming planetesimals. Previous studies have carried out large parameter surveys to establish the critical particle to gas surface density ratio (ZZ), above which SI-induced concentration triggers planetesimal formation. The threshold ZZ depends on the dimensionless stopping time (τs\tau_s, a proxy for dust size). However, these studies neglected both particle self-gravity and external turbulence. Here, we perform 3D stratified shearing box simulations with both particle self-gravity and turbulent forcing, which we characterize via αD\alpha_D that measures turbulent diffusion. We find that forced turbulence, at amplitudes plausibly present in some protoplanetary disks, can increase the threshold ZZ by up to an order of magnitude. For example, for τs=0.01\tau_s = 0.01, planetesimal formation occurs when Z0.06Z \gtrsim 0.06, 0.1\gtrsim 0.1, and 0.2\gtrsim 0.2 at αD=104\alpha_D = 10^{-4}, 103.510^{-3.5}, and 10310^{-3}, respectively. We provide a single fit to the critical ZZ as a function of αD\alpha_D and τs\tau_s required for the SI to work (though limited to the range τs=0.01\tau_s = 0.01--0.1). Our simulations also show that planetesimal formation requires a mid-plane particle-to-gas density ratio that exceeds unity, with the critical value being independent of αD\alpha_D. Finally, we provide the estimation of particle scale height that accounts for both particle feedback and external turbulence.

Keywords

Cite

@article{arxiv.2312.12508,
  title  = {Streaming Instability and Turbulence: Conditions for Planetesimal Formation},
  author = {Jeonghoon Lim and Jacob B. Simon and Rixin Li and Philip J. Armitage and Daniel Carrera and Wladimir Lyra and David G. Rea and Chao-Chin Yang and Andrew N. Youdin},
  journal= {arXiv preprint arXiv:2312.12508},
  year   = {2023}
}

Comments

27 pages, 13 figures, submitted to The Astrophysical Journal