Characterizing the variable dust permeability of planet-induced gaps
Philipp Weber, Pablo Ben\'itez-Llambay, Oliver Gressel, Leonardo Krapp, and Martin E. Pessah

TL;DR
This study uses long-term numerical simulations to analyze how planetary gaps in protoplanetary disks selectively filter dust grains based on size, affecting material flow and planet formation.
Contribution
It provides a systematic characterization of dust permeability in planet-induced gaps, highlighting how disk and planetary parameters influence dust filtration.
Findings
Small dust follows gas through the gap.
Critical dust size depends on disk and planetary parameters.
Higher viscosity and smaller planets increase the critical size.
Abstract
Aerodynamic theory predicts that dust grains in protoplanetary disks will drift radially inward on comparatively short timescales. In this context, it has long been known that the presence of a gap opened by a planet can alter the dust dynamics significantly. In this paper, we carry out a systematic study employing long-term numerical simulations aimed at characterizing the critical particle-size for retention outside a gap as a function of particle size and for various key parameters defining the protoplanetary disk model. To this end, we perform multifluid hydrodynamical simulations in two dimensions, including different dust species, which we treat as pressureless fluids. We initialize the dust outside of the planet's orbit and study under which conditions dust grains are able to cross the gap carved by the planet. In agreement with previous work, we find that the permeability of the…
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