Positive Feedback: How a Synergy Between the Streaming Instability and Dust Coagulation Forms Planetesimals

Fuente: arXiv
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Main Authors: Carrera, Daniel, Lim, Jeonghoon, Eriksson, Linn E. J., Lyra, Wladimir, Simon, Jacob B.
Format: Preprint
Published: 2025
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author Carrera, Daniel
Lim, Jeonghoon
Eriksson, Linn E. J.
Lyra, Wladimir
Simon, Jacob B.
author_facet Carrera, Daniel
Lim, Jeonghoon
Eriksson, Linn E. J.
Lyra, Wladimir
Simon, Jacob B.
contents One of the most important open questions in planet formation is how dust grains in a protoplanetary disk manage to overcome growth barriers and form the $\sim$100km planet building blocks that we call planetesimals. There appears to be a gap between the largest grains that can be produce by coagulation, and the smallest grains that are needed for the streaming instability (SI) to form planetesimals. Here we explore a novel hypothesis: That dust coagulation and the SI work in tandem. That they form a feedback loop where each one boosts the action of the other to bridge the gap between dust grains and planetesimals. We develop a semi-analytical model of dust concentration due to the SI, and an analytic model of how the SI affects the fragmentation and radial drift barriers. We then combine those to model our proposed feedback loop. In the fragmentation-limited regime, we find a powerful synergy between the SI and dust growth that drastically increases both grain sizes and densities. We find that a midplane dust-to-gas ratio of $ε\ge 0.3$ is a sufficient condition for the feedback loop to reach the planetesimal-forming region for turbulence values $10^{-4} \le α\le 10^{-3}$ and grain sizes $0.01 \le {\rm St} \le 0.1$. In contrast, the drift-limited regime only shows grain growth, without significant dust accumulation. Planet formation in the drift-limited portion of the disk may require other processes (particle traps) to halt radial drift.
format Preprint
id arxiv_https___arxiv_org_abs_2503_03105
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Positive Feedback: How a Synergy Between the Streaming Instability and Dust Coagulation Forms Planetesimals
Carrera, Daniel
Lim, Jeonghoon
Eriksson, Linn E. J.
Lyra, Wladimir
Simon, Jacob B.
Earth and Planetary Astrophysics
One of the most important open questions in planet formation is how dust grains in a protoplanetary disk manage to overcome growth barriers and form the $\sim$100km planet building blocks that we call planetesimals. There appears to be a gap between the largest grains that can be produce by coagulation, and the smallest grains that are needed for the streaming instability (SI) to form planetesimals. Here we explore a novel hypothesis: That dust coagulation and the SI work in tandem. That they form a feedback loop where each one boosts the action of the other to bridge the gap between dust grains and planetesimals. We develop a semi-analytical model of dust concentration due to the SI, and an analytic model of how the SI affects the fragmentation and radial drift barriers. We then combine those to model our proposed feedback loop. In the fragmentation-limited regime, we find a powerful synergy between the SI and dust growth that drastically increases both grain sizes and densities. We find that a midplane dust-to-gas ratio of $ε\ge 0.3$ is a sufficient condition for the feedback loop to reach the planetesimal-forming region for turbulence values $10^{-4} \le α\le 10^{-3}$ and grain sizes $0.01 \le {\rm St} \le 0.1$. In contrast, the drift-limited regime only shows grain growth, without significant dust accumulation. Planet formation in the drift-limited portion of the disk may require other processes (particle traps) to halt radial drift.
title Positive Feedback: How a Synergy Between the Streaming Instability and Dust Coagulation Forms Planetesimals
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2503.03105