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Are protoplanetary disks born with vortices? -- Rossby wave instability driven by protostellar infall

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arxiv 1503.02694 v1 pith:XGXDQEKD submitted 2015-03-09 astro-ph.EP

classification astro-ph.EP
keywords infallvorticesvortexdisksinstabilitylocalorbitalprotostellar
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abstract

We carry out two-fluid, two-dimensional global hydrodynamic simulations to test whether protostellar infall can trigger Rossby wave instability (RWI) in protoplanetry disks. Our results show that infall can trigger the RWI and generate vortices near the outer edge of the mass landing on the disk (i.e. centrifugal radius). We find that the RWI is triggered under a variety of conditions, although the details depend on the disk parameters and the infall pattern. The common key feature of triggering the RWI is the steep radial gradient of the azimuthal velocity induced by the local increase in density at the outer edge of the infall region. Vortices form when the instability enters the nonlinear regime. In our standard model where self-gravity is neglected, vortices merge together to a single vortex within $\sim 20$ local orbital times, and the merged vortex survives for the remaining duration of the calculation ($> 170$ local orbital times). The vortex takes part in outward angular momentum transport, with a Reynolds stress of $\lesssim10^{-2}$. Our two-fluid calculations show that vortices efficiently trap dust particles with stopping times of the order of the orbital time, locally enhancing the dust to gas ratio for particles of the appropriate size by a factor of $\sim 40$ in our standard model. When self-gravity is considered, however, vortices tend to be impeded from merging and may eventually dissipate. We conclude it may well have that protoplanetary disks have favorable conditions for vortex formation during the protostellar infall phase, which might enhance early planetary core formation.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Accretion across scales: streamers, surface-layer transport, and rapid replenishment in young protoplanetary discs

    astro-ph.EP 2026-08 conditional novelty 6.0 of 10

    Cloud-fed ideal-MHD zoom-in simulations of nine young stars show discs are replenished on ~10,000-year timescales via surface-layer accretion and can be truncated by massive streamers.

  2. Origin of compact exoplanetary systems during disk infall

    astro-ph.EP 2025-05 conditional novelty 6.0 of 10

    Compact exoplanetary systems may form during late disk infall, with planet masses set by a balance between solid accretion and gas-driven inward migration.

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