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| DOI | 10.1093/MNRASL/SLZ059 | ||||
| Año | 2019 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
The mass of the gaseous reservoir in young circumstellar discs is a crucial initial condition for the formation of planetary systems, but estimates vary by orders of magnitude. In some discs with resolvable cavities, sharp inner disc warps cast two-sided shadows on the outer rings; can the cooling of the gas as it crosses the shadows bring constraints on its mass? The finite cooling time-scale should result in dust temperature decrements shifted ahead of the optical/IR shadows in the direction of rotation. However, some systems show temperature drops, while others do not. The depth of the drops and the amplitude of the shift depend on the outer disc surface density Sigma through the extent of cooling during the shadow crossing time, and also on the efficiency of radiative diffusion. These phenomena may bear observational counterparts, which we describe with a simple D model. An application to the HD 142527 disc suggests an asymmetry in its shadows, and predicts a greater than or similar to 10 deg shift for a massive gaseous disc, with peak Sigma > 8.3 g cm(-) (2). Another application to the DoAr 44 disc limits the peak surface density to Sigma < 13 g cm(-2).
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | CASASSUS-MONTERO, SIMON PABLO | Hombre |
Universidad de Chile - Chile
Nucleo Milenio Discos Protoplanetarios - Chile |
| 2 | PEREZ-MARQUEZ, SEBASTIAN | Hombre |
Universidad de Chile - Chile
Nucleo Milenio Discos Protoplanetarios - Chile Universidad de Santiago de Chile - Chile |
| 3 | OSSES-ALVARADO, AXEL ESTEBAN | Hombre |
Universidad de Chile - Chile
|
| 4 | Marino, Sebastian | Hombre |
Max Planck Inst Astron - Alemania
Max Planck Institute for Astronomy - Alemania |
| Fuente |
|---|
| FONDECYT |
| Fondo Nacional de Desarrollo Científico y Tecnológico |
| Millennium Nucleus |
| Fondo de Fomento al Desarrollo Científico y Tecnológico |
| Consejo Nacional de Innovacion, Ciencia y Tecnologia |
| Fondo Nacional de Desarrollo CientÃfico y Tecnológico |
| Ministry of Economy |
| Canada Millennium Scholarship Foundation |
| Brelka cluster (FONDEQUIP project) |
| Millennium Nucleus (Chilean Ministry of Economy) |
| CONICYT-Gemini |
| Instituto Millenium |
| Agradecimiento |
|---|
| The referee, Kees Dullemond, provided important and constructive input on the disk optical depth and the limits of the Rosseland approximation. We acknowledge further useful comments from Zhaohuan Zhu, Wladimir Lyra, and Philipp Weber. Support was provided by Millennium Nucleus RC130007 (Chilean Ministry of Economy), FONDECYT grants 1171624 and 1151512, and by CONICYT-Gemini grant 32130007. This work used the Brelka cluster (FONDEQUIP project EQM140101) hosted at DAS/U. de Chile. |
| The referee, Kees Dullemond, provided important and constructive input on the disk optical depth and the limits of the Rosseland approximation. We acknowledge further useful comments from Zhaohuan Zhu, Wladimir Lyra, and Philipp Weber. Support was provided by Millennium Nucleus RC130007 (Chilean Ministry of Economy), FONDECYT grants 1171624 and 1151512, and by CONICYT-Gemini grant 32130007. This work used the Brelka cluster (FONDEQUIP project EQM140101) hosted at DAS/U. de Chile. |