Rossby Wave Instability and Substructure Formation in 3D Non-Ideal MHD Wind-Launching Disks

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Hauptverfasser: Hsu, Chun-Yen, Li, Zhi-Yun, Tu, Yisheng, Hu, Xiao, Lin, Min-Kai
Format: Preprint
Veröffentlicht: 2024
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author Hsu, Chun-Yen
Li, Zhi-Yun
Tu, Yisheng
Hu, Xiao
Lin, Min-Kai
author_facet Hsu, Chun-Yen
Li, Zhi-Yun
Tu, Yisheng
Hu, Xiao
Lin, Min-Kai
contents Rings and gaps are routinely observed in the dust continuum emission of protoplanetary discs (PPDs). How they form and evolve remains debated. Previous studies have demonstrated the possibility of spontaneous gas rings and gaps formation in wind-launching disks. Here, we show that such gas substructures are unstable to the Rossby Wave Instability (RWI) through numerical simulations. Specifically, shorter wavelength azimuthal modes develop earlier, and longer wavelength ones dominate later, forming elongated (arc-like) anti-cyclonic vortices in the rings and (strongly magnetized) cyclonic vortices in the gaps that persist until the end of the simulation. Highly elongated vortices with aspect ratios of 10 or more are found to decay with time in our non-ideal MHD simulation, in contrast with the hydro case. This difference could be caused by magnetically induced motions, particularly strong meridional circulations with large values of the azimuthal component of the vorticity, which may be incompatible with the columnar structure preferred by vortices. The cyclonic and anti-cyclonic RWI vortices saturate at moderate levels, modifying but not destroying the rings and gaps in the radial gas distribution of the disk. In particular, they do not shut off the poloidal magnetic flux accumulation in low-density regions and the characteristic meridional flow patterns that are crucial to the ring and gap formation in wind-launching disks. Nevertheless, the RWI and their associated vortices open up the possibility of producing non-axisymmetric dust features observed in a small fraction of protoplanetary disks through non-ideal MHD, although detailed dust treatment is needed to explore this possibility.
format Preprint
id arxiv_https___arxiv_org_abs_2407_08032
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Rossby Wave Instability and Substructure Formation in 3D Non-Ideal MHD Wind-Launching Disks
Hsu, Chun-Yen
Li, Zhi-Yun
Tu, Yisheng
Hu, Xiao
Lin, Min-Kai
Earth and Planetary Astrophysics
Rings and gaps are routinely observed in the dust continuum emission of protoplanetary discs (PPDs). How they form and evolve remains debated. Previous studies have demonstrated the possibility of spontaneous gas rings and gaps formation in wind-launching disks. Here, we show that such gas substructures are unstable to the Rossby Wave Instability (RWI) through numerical simulations. Specifically, shorter wavelength azimuthal modes develop earlier, and longer wavelength ones dominate later, forming elongated (arc-like) anti-cyclonic vortices in the rings and (strongly magnetized) cyclonic vortices in the gaps that persist until the end of the simulation. Highly elongated vortices with aspect ratios of 10 or more are found to decay with time in our non-ideal MHD simulation, in contrast with the hydro case. This difference could be caused by magnetically induced motions, particularly strong meridional circulations with large values of the azimuthal component of the vorticity, which may be incompatible with the columnar structure preferred by vortices. The cyclonic and anti-cyclonic RWI vortices saturate at moderate levels, modifying but not destroying the rings and gaps in the radial gas distribution of the disk. In particular, they do not shut off the poloidal magnetic flux accumulation in low-density regions and the characteristic meridional flow patterns that are crucial to the ring and gap formation in wind-launching disks. Nevertheless, the RWI and their associated vortices open up the possibility of producing non-axisymmetric dust features observed in a small fraction of protoplanetary disks through non-ideal MHD, although detailed dust treatment is needed to explore this possibility.
title Rossby Wave Instability and Substructure Formation in 3D Non-Ideal MHD Wind-Launching Disks
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2407.08032