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Probing Conditions for Strong Clumping by the Streaming Instability: Small Dust Grains and Low Dust-to-gas Density Ratio

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arxiv 2410.17319 v2 pith:SQ4E6HWZ submitted 2024-10-22 astro-ph.EP

classification astro-ph.EP
keywords clumpingcritdensityresultsstrongdust-to-gasinstabilitylayer
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abstract

The streaming instability (SI) is a leading mechanism for concentrating solid particles into regions dense enough to form planetesimals. Its efficiency in clumping particles depends primarily on the dimensionless stopping time ($\tau_s$, a proxy for particle size) and dust-to-gas surface density ratio ($Z$). Previous simulations identified a critical $Z$ ($Z_{\rm{crit}}$) above which strong clumping occurs, where particle densities exceed the Hill density (thus satisfying a condition for gravitational collapse), over a wide range of $\tau_s$. These works found that for $\tau_s \leq 0.01$, $Z_{\rm{crit}}$ was above the ISM value $(\sim 0.01)$. In this work, we reexamine the clumping threshold using 2D axisymmetric, stratified simulations at high resolution and with relatively large (compared to many previous simulations) domain sizes. Our main results are as follows: First, when $\tau_s = 0.01$, strong clumping occurs even at $Z \lesssim 0.01$, lower than $Z_{\rm{crit}}$ found in all previous studies. Consequently, we revise a previously published fit to the $Z_{\rm{crit}}$ curve to account for this updated $Z_{\rm{crit}}$. Second, higher resolution results in a thicker dust layer, which may result from other instabilities manifesting, such as the vertical shearing streaming instability. Third, despite this thicker layer, higher resolution can lead to strong clumping even with lower midplane dust-to-gas density ratios (which results from the thicker particle layer) so long as $Z \gtrsim Z_{\rm{crit}}$. Our results demonstrate the efficiency of the SI in clumping small particles at $Z \sim 0.01$, which is a significant refinement of the conditions for planetesimal formation by the SI.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Solving for the 2D Water Snowline with Hydrodynamic Simulations. Emergence of gas outflow, water cycle and temperature plateau

    astro-ph.EP 2025-02 conditional novelty 7.0 of 10

    2D hydrodynamic simulations show vapor-driven outflows and a vertical water cycle strengthen ice pile-up at the water snowline, while latent heat cooling broadens the pile-up and creates a possible continuum dip.

  2. Polydisperse Formation of Planetesimals: The dust size distribution in clumps

    astro-ph.EP 2025-02 conditional novelty 6.0 of 10

    Polydisperse streaming instability simulations show dense dust clumps have a peaked size distribution, with the largest grains pushed just outside the densest regions.

  3. Strong clumping in global streaming instability simulations with a dusty fluid

    astro-ph.EP 2025-01 conditional novelty 6.0 of 10

    Global dust-fluid simulations of the streaming instability find clumps reaching only about 30% of the Hill density after 160 orbits, with gravitational collapse estimated to need roughly 480 to 1000 orbits.

  4. Dust characterization of protoplanetary disks: a guide to multi-wavelength analyses and accurate dust mass measurements

    astro-ph.EP 2025-01 conditional novelty 6.0 of 10

    Simulated multi-wavelength observations show that accurate dust characterization requires optically thin emission beyond 3 mm, and a new double-resolution SED approach can recover high-resolution dust properties using...

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