Pebble Trapping in Vortices: Three-dimensional Simulations

被引:27
|
作者
Raettig, Natalie [1 ]
Lyra, Wladimir [2 ]
Klahr, Hubert [1 ]
机构
[1] Max Planck Inst Astron, Konigstuhl 17, D-69117 Heidelberg, Germany
[2] New Mexico State Univ, Dept Astron, POB 30001,MSC 4500, Las Cruces, NM 88001 USA
来源
ASTROPHYSICAL JOURNAL | 2021年 / 913卷 / 02期
关键词
ROSSBY-WAVE INSTABILITY; VERTICAL SHEAR INSTABILITY; DUST GROWTH PEBBLES; DEAD ZONE; PROTOPLANETARY DISKS; CONVECTIVE OVERSTABILITY; VORTEX FORMATION; ACCRETION DISKS; PLANETESIMALS; TURBULENCE;
D O I
10.3847/1538-4357/abf739
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Disk vortices have been heralded as promising routes for planet formation due to their ability to trap significant amounts of pebbles. While the gas motions and trapping properties of two-dimensional vortices have been studied in enough detail in the literature, pebble trapping in three dimensions has received less attention, due to the higher computational demand. Here we use the PENCIL CODE to study 3D vortices generated by convective overstability and the trapping of solids within them. The gas is unstratified whereas the pebbles settle to the midplane due to vertical gravity. We find that for pebbles of normalized friction times of St = 0.05 and St = 1, and dust-to-gas ratio epsilon = 0.01, the vortex column in the midplane is strongly perturbed. Yet when the initial dust-to-gas ratio is decreased the vortices remain stable and function as efficient pebble traps. Streaming instability is triggered even for the lowest dust-to-gas ratio (epsilon(0) = 10(-4)) and smallest pebble sizes (St = 0.05) we assumed, showing a path for planetesimal formation in vortex cores from even extremely subsolar metallicity. To estimate if the reached overdensities can be held together solely by their own gravity we estimate the Roche density at different radii. Depending on disk model and radial location of the pebble clump we do reach concentrations higher than the Roche density. We infer that if self-gravity was included for the pebbles then gravitational collapse would likely occur.
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页数:14
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