English

Stratified and vertically-shearing streaming instabilities in protoplanetary disks

Earth and Planetary Astrophysics 2021-02-04 v1

Abstract

Under the right conditions, the streaming instability between imperfectly coupled dust and gas is a powerful mechanism for planetesimal formation as it can concentrate dust grains to the point of gravitational collapse. In its simplest form, the streaming instability can be captured by analyzing the linear stability of unstratified disk models, which represent the midplane of protoplanetary disks. We extend such studies by carrying out vertically-global linear stability analyses of dust layers in protoplanetary disks. We find the dominant form of instability in stratified dust layers is one driven by the vertical gradient in the rotation velocity of the dust-gas mixture, but also requires partial dust-gas coupling. These vertically-shearing streaming instabilities grow on orbital timescales and occur on radial length scales 103Hg\sim10^{-3}H_\mathrm{g}, where HgH_\mathrm{g} is the local pressure scale height. The classic streaming instability, associated with the relative radial drift between dust and gas, occur on radial length scales 102Hg\sim10^{-2}H_\mathrm{g}, but have much smaller growth rates than vertically-shearing streaming instabilities. Including gas viscosity is strongly stabilizing and leads to vertically-elongated disturbances. We briefly discuss the potential effects of vertically-shearing streaming instabilities on planetesimal formation.

Keywords

Cite

@article{arxiv.2011.12300,
  title  = {Stratified and vertically-shearing streaming instabilities in protoplanetary disks},
  author = {Min-Kai Lin},
  journal= {arXiv preprint arXiv:2011.12300},
  year   = {2021}
}

Comments

Accepted by ApJ; project source codes are hosted at https://github.com/minkailin/stratsi; for a lay summary, see https://minkailin.wixsite.com/minkailin/post/streaming-instabilities-in-stratified-protoplanetary-disks

R2 v1 2026-06-23T20:29:04.682Z