English

The Streaming Instability in 3D: Conditions for Strong Clumping

Earth and Planetary Astrophysics 2025-09-24 v1

Abstract

The streaming instability (SI) is a leading mechanism for planetesimal formation, driving the aerodynamic concentration of solids in protoplanetary disks. The SI triggers strong clumping (i.e., strong enough for clumps to collapse) when the solid-to-gas column density ratio, ZZ, exceeds a threshold, \Zcrit\Zcrit. This threshold depends on the dimensionless stopping time, τs\tau_s. Although the strong-clumping threshold has been explored over the last decade, it has been determined largely through 2D axisymmetric simulations. In this work, we perform a suite of 3D, vertically stratified simulations to establish a clumping threshold across 103τs1.010^{-3} \leq \tau_s \leq 1.0. Additionally, we study SI-driven concentration that is unique to 3D. We find that \Zcrit\Zcrit is as low as 0.002\approx 0.002 at τs=0.1\tau_s=0.1 and exceeds 0.03\approx 0.03 at τs=103\tau_s=10^{-3}. Compared to 2D, our 3D results yield lower \Zcrit\Zcrit for τs>0.02\tau_s > 0.02, but higher for τs0.02\tau_s \leq 0.02, with a sharp transition between τs=0.02\tau_s = 0.02 and 0.03. This transition correlates with midplane density ratio (ϵ\epsilon): ϵ<1\epsilon < 1 where 3D gives lower thresholds, and ϵ>1\epsilon > 1 where 3D gives higher thresholds. We also find a filaments-in-filaments structure when ϵ<1\epsilon < 1, which enhances clumping compared to 2D. By contrast, when ϵ>1\epsilon > 1 and τs0.03\tau_s \leq 0.03, dust filaments in 3D do not drift inward, suppressing filament mergers and strong clumping. In 2D, filaments drift inward regardless of ϵ\epsilon, triggering strong clumping easier in this regime. Our results underscore the necessity of 3D simulations for accurately capturing SI-driven concentration and building the strong-clumping threshold.

Keywords

Cite

@article{arxiv.2509.18270,
  title  = {The Streaming Instability in 3D: Conditions for Strong Clumping},
  author = {Jeonghoon Lim and Jacob B. Simon and Rixin Li and Olivia Brouillette and David G. Rea and Wladimir Lyra},
  journal= {arXiv preprint arXiv:2509.18270},
  year   = {2025}
}

Comments

28 pages, 15 figures, submitted to the Astrophysical Journal

R2 v1 2026-07-01T05:50:40.424Z