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Thresholds for Particle Clumping by the Streaming Instability

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arxiv 2105.06042 v2 pith:4Z7IVWF3 submitted 2021-05-13 astro-ph.EP

Thresholds for Particle Clumping by the Streaming Instability

classification astro-ph.EP
keywords particleclumpingcriticalmetallicitysimulationssizesvaluedisk
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The streaming instability (SI) is a mechanism to aerodynamically concentrate solids in protoplanetary disks and trigger the formation of planetesimals. The SI produces strong particle clumping if the ratio of solid to gas surface density -- an effective metallicity -- exceeds a critical value. This critical value depends on particle sizes and disk conditions such as radial drift-inducing pressure gradients and levels of turbulence. To quantify these thresholds, we perform a suite of vertically-stratified SI simulations over a range of dust sizes and metallicities. We find a critical metallicity as low as 0.4% for the optimum particle sizes and standard radial pressure gradients (normalized value of $\Pi = 0.05$). This sub-Solar metallicity is lower than previous results due to improved numerical methods and computational effort. We discover a sharp increase in the critical metallicity for small solids, when the dimensionless stopping time (Stokes number) is $\leq 0.01$. We provide simple fits to the size-dependent SI clumping threshold, including generalizations to different disk models and levels of turbulence. We also find that linear, unstratified SI growth rates are a surprisingly poor predictor of particle clumping in non-linear, stratified simulations, especially when the finite resolution of simulations is considered. Our results widen the parameter space for the SI to trigger planetesimal formation.

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Cited by 1 Pith paper

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  1. Interpreting ALMA Multiwavelength Continuum Observations of PDS 70 c: An Optically Thick Dust Ring in the Circumplanetary Disk

    astro-ph.EP 2026-07 conditional novelty 6.0

    An optically thick dust ring in the CPD of PDS 70 c reproduces the observed near-flat spectral index under reasonable parameters, while a ring-less drift model requires implausibly high dust inflow.