Investigating the Bouncing Barrier with Collision Simulations of Compressed Dust Aggregates

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Main Authors: Oshiro, Haruto, Tatsuuma, Misako, Okuzumi, Satoshi, Tanaka, Hidekazu
Format: Preprint
Published: 2025
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author Oshiro, Haruto
Tatsuuma, Misako
Okuzumi, Satoshi
Tanaka, Hidekazu
author_facet Oshiro, Haruto
Tatsuuma, Misako
Okuzumi, Satoshi
Tanaka, Hidekazu
contents The collision outcomes of dust aggregates in protoplanetary disks dictate how planetesimals form. Experimental and numerical studies have suggested that bouncing collisions occurring at low impact velocities may limit aggregate growth in the disks, but the conditions under which bouncing occurs have yet to be fully understood. In this study, we perform a suite of collision simulations of moderately compact dust aggregates with various impact velocities, aggregate radii, and filling factors ranging between 0.4 and 0.5. Unlike previous simulations, we generate compact aggregates by compressing more porous ones, mimicking the natural processes through which compact aggregates form. We find that the compressed aggregates bounce above a threshold mass, which decreases with impact velocity. The threshold mass scales with impact velocity as the $-4/3$ power, consistent with the findings of previous experiments. We also find that the threshold aggregate mass for bouncing depends strongly on filling factor, likely reflecting the strong filling-factor dependence of the compressive strength of compressed aggregates. Our energy analysis reveals that nearly 90\% of the initial impact energy is dissipated during the initial compression phase, and over 70\% of the remaining energy is dissipated during the subsequent stretching phase, regardless of whether the collision results in sticking or bouncing. Our results indicate that dust aggregates with a filling factor of 0.4 cease to grow beyond 100 $\mathrm{μm}$ as a result of the bouncing barrier.
format Preprint
id arxiv_https___arxiv_org_abs_2502_03107
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Investigating the Bouncing Barrier with Collision Simulations of Compressed Dust Aggregates
Oshiro, Haruto
Tatsuuma, Misako
Okuzumi, Satoshi
Tanaka, Hidekazu
Earth and Planetary Astrophysics
Soft Condensed Matter
The collision outcomes of dust aggregates in protoplanetary disks dictate how planetesimals form. Experimental and numerical studies have suggested that bouncing collisions occurring at low impact velocities may limit aggregate growth in the disks, but the conditions under which bouncing occurs have yet to be fully understood. In this study, we perform a suite of collision simulations of moderately compact dust aggregates with various impact velocities, aggregate radii, and filling factors ranging between 0.4 and 0.5. Unlike previous simulations, we generate compact aggregates by compressing more porous ones, mimicking the natural processes through which compact aggregates form. We find that the compressed aggregates bounce above a threshold mass, which decreases with impact velocity. The threshold mass scales with impact velocity as the $-4/3$ power, consistent with the findings of previous experiments. We also find that the threshold aggregate mass for bouncing depends strongly on filling factor, likely reflecting the strong filling-factor dependence of the compressive strength of compressed aggregates. Our energy analysis reveals that nearly 90\% of the initial impact energy is dissipated during the initial compression phase, and over 70\% of the remaining energy is dissipated during the subsequent stretching phase, regardless of whether the collision results in sticking or bouncing. Our results indicate that dust aggregates with a filling factor of 0.4 cease to grow beyond 100 $\mathrm{μm}$ as a result of the bouncing barrier.
title Investigating the Bouncing Barrier with Collision Simulations of Compressed Dust Aggregates
topic Earth and Planetary Astrophysics
Soft Condensed Matter
url https://arxiv.org/abs/2502.03107