Gas dynamics around dust asymmetries in turbulent disks

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Flores-Rivera, Lizxandra, Manger, Natascha, Lambrechts, Michiel, Flock, Mario, Lorek, Sebastian, Johansen, Anders, Klahr, Hubert
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866918407772831744
author Flores-Rivera, Lizxandra
Manger, Natascha
Lambrechts, Michiel
Flock, Mario
Lorek, Sebastian
Johansen, Anders
Klahr, Hubert
author_facet Flores-Rivera, Lizxandra
Manger, Natascha
Lambrechts, Michiel
Flock, Mario
Lorek, Sebastian
Johansen, Anders
Klahr, Hubert
contents High-resolution ALMA observations have revealed asymmetric dust crescents in several protoplanetary disks, suggesting efficient dust trapping mechanisms potentially linked to gas vortices. While such features have been associated with vortices--whether induced by massive planets, turbulence , or other disk processes--their origin remains unclear. In this study, we investigate the viability of dust trapping by vortices that are self-sustained in disks dominated by Vertical Shear Instability (VSI) turbulence. We perform 3D hydrodynamic simulations using the PLUTO code with Lagrangian particles of three sizes (1 mm, 500~$μ$m, 100~$μ$m) to analyze the gas-dust dynamics around vortices. Our simulations reveal the formation of multiple vortices, including two characteristic large-scale, long-lived vortices that are able to capture the dust particles. We also find that dust vertical diffusion is reduced within vortices, suggesting that these structures preferentially enhance radial and azimuthal motions. Finally we generate synthetic dust continuum images at different wavelength bands and velocity residuals to compare the observable properties with ALMA observations. No clear spiral features are observed in either the synthetic dust images or the velocity residuals, unlike in vortices triggered by planets. Projection effects at high disk inclinations can obscure dust asymmetries, implying that more disks may host dust crescents than currently reported.
format Preprint
id arxiv_https___arxiv_org_abs_2603_24184
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Gas dynamics around dust asymmetries in turbulent disks
Flores-Rivera, Lizxandra
Manger, Natascha
Lambrechts, Michiel
Flock, Mario
Lorek, Sebastian
Johansen, Anders
Klahr, Hubert
Earth and Planetary Astrophysics
High-resolution ALMA observations have revealed asymmetric dust crescents in several protoplanetary disks, suggesting efficient dust trapping mechanisms potentially linked to gas vortices. While such features have been associated with vortices--whether induced by massive planets, turbulence , or other disk processes--their origin remains unclear. In this study, we investigate the viability of dust trapping by vortices that are self-sustained in disks dominated by Vertical Shear Instability (VSI) turbulence. We perform 3D hydrodynamic simulations using the PLUTO code with Lagrangian particles of three sizes (1 mm, 500~$μ$m, 100~$μ$m) to analyze the gas-dust dynamics around vortices. Our simulations reveal the formation of multiple vortices, including two characteristic large-scale, long-lived vortices that are able to capture the dust particles. We also find that dust vertical diffusion is reduced within vortices, suggesting that these structures preferentially enhance radial and azimuthal motions. Finally we generate synthetic dust continuum images at different wavelength bands and velocity residuals to compare the observable properties with ALMA observations. No clear spiral features are observed in either the synthetic dust images or the velocity residuals, unlike in vortices triggered by planets. Projection effects at high disk inclinations can obscure dust asymmetries, implying that more disks may host dust crescents than currently reported.
title Gas dynamics around dust asymmetries in turbulent disks
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2603.24184