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Shadows Wreak Havocs in Transition Disks

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arxiv 2407.09613 v2 pith:PCHYW3VB submitted 2024-07-12 astro-ph.EP

classification astro-ph.EP
keywords disksdiskeccentricobservedringsshadowshadowstwisted
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We demonstrate that shadows cast on a proto-planetary disk can drive it eccentric. Stellar irradiation dominates heating across much of these disks, so an uneven illumination can have interesting dynamical effects. Here, we focus on transition disks. We carry out 3D Athena++ simulations, using a constant thermal relaxation time to describe the disk's response to changing stellar illumination. We find that an asymmetric shadow, a feature commonly observed in real disks, perturbs the radial pressure gradient and distorts the fluid streamlines into a set of twisted ellipses. Interactions between these streamlines have a range of consequences. For a narrow ring, an asymmetric shadow can sharply truncate its inner edge, possibly explaining the steep density drop-offs observed in some disks and obviating the need for massive perturbers. For a wide ring, such a shadow can dismantle it into two (or possibly more) eccentric rings. These rings continuously exert torque on each other and drive gas accretion at a healthy rate, even in the absence of disk viscosity. Signatures of such twisted eccentric rings may have already been observed as, e.g., twisted velocity maps inside gas cavities. We advocate for more targeted observations, and for a better understanding on the origin of such shadows.

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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. Geometry of dust rings in protoplanetary disks: the case of LkCa 15

    astro-ph.EP 2026-08 conditional novelty 7.0 of 10

    The 69 au dust ring in LkCa 15 is broad and thick at 0.88 mm and progressively narrower and thinner at 1.34 and 3.08 mm, implying a massive population of small grains alongside a more concentrated large-grain population.

  2. Asymmetric Temperature Variations In Protoplanetary disks: I. Linear Theory, Corotating Spirals, and Ring Formation

    astro-ph.EP 2024-12 conditional novelty 7.0 of 10

    Rotating azimuthal temperature variations launch corotating spiral density waves at Lindblad resonances and, through radially oscillating angular momentum flux, can build rings in protoplanetary disks.

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