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The physical and chemical conditions in young protoplanetary disks set the boundary conditions for planet formation. Although the dust in disks is relatively easily detected as a far-IR photometric ``excess'' over the expected photospheric…

星系天体物理 · 物理学 2015-05-14 Javier R. Goicoechea , Bruce Swinyard

Understanding the collapse of clouds and the formation of protoplanetary disks is essential to understanding the formation of stars and planets. Infall and accretion, the mass-aggregation processes that occur at envelope and disk scales,…

Spatial distribution and growth of dust in a clumpy protoplanetary disk subject to vigorous gravitational instability and fragmentation is studied numerically with sub-au resolution using the FEOSAD code. Hydrodynamics equations describing…

太阳与恒星天体物理 · 物理学 2019-10-16 Eduard I. Vorobyov , Vardan G. Elbakyan

Aerodynamic theory predicts that dust grains in protoplanetary disks will drift radially inward on comparatively short timescales. In this context, it has long been known that the presence of a gap opened by a planet can alter the dust…

地球与行星天体物理 · 物理学 2018-02-28 Philipp Weber , Pablo Benítez-Llambay , Oliver Gressel , Leonardo Krapp , Martin E. Pessah

Debris rings of dust are found around young luminous stars such as HR4796A and HD141569. Some of these entities have sharp edges and gaps which have been interpreted as evidence for the presence of shepherding and embedded planets. Here we…

天体物理学 · 物理学 2009-11-10 H. Klahr , D. N. C. Lin

Observations of protoplanetary discs have revealed dust rings which are likely due to the presence of pressure bumps in the disc. Because these structures tend to trap drifting pebbles, it has been proposed that pressure bumps may play an…

地球与行星天体物理 · 物理学 2024-02-09 Arnaud Pierens , Sean N. Raymond

The extent of the gas in protoplanetary disks is observed to be universally larger than the extent of the dust. This is often attributed to radial drift and grain growth of the mm grains, but line optical depth produces a similar…

地球与行星天体物理 · 物理学 2019-09-25 L. Trapman , S. Facchini , M. R. Hogerheijde , E. F. van Dishoeck , S. Bruderer

Context: The global size and spatial distribution of dust is an important ingredient in the structure and evolution of protoplanetary disks and in the formation of larger bodies, such as planetesimals. Aims: We aim to derive simple…

地球与行星天体物理 · 物理学 2012-03-12 T. Birnstiel , H. Klahr , B. Ercolano

High resolution ALMA observations of protoplanetary disks have revealed that many, if not all primordial disks consist of ring-like dust structures. The origin of these dust rings remains unclear, but a common explanation is the presence of…

地球与行星天体物理 · 物理学 2018-11-07 Nienke van der Marel , Jonathan Williams , Simon Bruderer

We analyze how the process of dust settling affects the spectral energy distribution and optical appearance of protoplanetary disks. Using simple analytic estimates on the one hand, and detailed 1+1-D models on the other hand, we show that,…

天体物理学 · 物理学 2009-11-10 C. P. Dullemond , C. Dominik

Multi-wavelength spectroscopy can be used to constrain the dust and gas properties in debris disks. Circumstellar dust absorbs and scatters incident stellar light. The scattered light is sometimes resolved spatially at visual and…

地球与行星天体物理 · 物理学 2015-05-13 Christine H. Chen

Proto-planetary disc surveys conducted with ALMA are measuring disc radii in multiple star forming regions. The disc radius is a fundamental quantity to diagnose whether discs undergo viscous spreading, discriminating between viscosity or…

地球与行星天体物理 · 物理学 2019-05-08 Giovanni P. Rosotti , Marco Tazzari , Richard A. Booth , Leonardo Testi , Giuseppe Lodato , Cathie Clarke

Gas and dust in inclined orbits around binaries experience precession induced by the binary gravitational torque. The difference in precession between gas and dust alters the radial drift of weakly coupled dust and leads to density…

地球与行星天体物理 · 物理学 2021-10-13 Hossam Aly , Jean-François Gonzalez , Rebecca Nealon , Cristiano Longarini , Giuseppe Lodato , Daniel J. Price

We calculate the physical structure of protoplanetary disks by evaluating the gas density and temperature self-consistently and solving separately for the dust temperature. The effect of grain growth is taken into account by assuming a…

天体物理学 · 物理学 2009-11-11 Yuri Aikawa , Hideko Nomura

Spatially resolved observations of protoplanetary discs are revealing that their inner regions can be warped or broken from the outer disc. A few mechanisms are known to lead to such 3D structures; among them, the interaction with a stellar…

太阳与恒星天体物理 · 物理学 2017-12-06 Stefano Facchini , Attila Juhász , Giuseppe Lodato

Substructures are ubiquitous in high resolution (sub-)millimeter continuum observations of circumstellar disks. They are possibly caused by forming planets embedded in the disk. To investigate the relation between observed substructures and…

地球与行星天体物理 · 物理学 2021-07-19 Fabian Binkert , Judit Szulágyi , Til Birnstiel

Substructures in protoplanetary disks can act as dust traps that shape the radial distribution of pebbles. By blocking the passage of pebbles, the presence of gaps in disks may have a profound effect on pebble delivery into the inner disk,…

Observational data on the dust content of circumstellar disks show that the median dust content in disks around pre-main sequence stars in nearby star forming regions seem to increase from about 1 Myr to about 2 Myr, and then decline with…

地球与行星天体物理 · 物理学 2022-03-01 Lia Marta Bernabò , Diego Turrini , Leonardo Testi , Francesco Marzari , Danai Polychroni

We consider the mechanism of photophoretic transport in protoplanetary disks that are optically thick to radiation. Here, photophoresis is not caused by the central star but by temperature fluctuations that subject suspended solid…

地球与行星天体物理 · 物理学 2016-09-29 Christoph Loesche , Gerhard Wurm , Thorben Kelling , Jens Teiser , Denton S. Ebel

ALMA surveys have suggested that the dust in Class II disks may not be enough to explain the averaged solid mass in exoplanets, under the assumption that the mm disk continuum emission is optically thin. This optically thin assumption seems…