Breathing Life Into Dead-Zones

The terrestrial planet formation regions of protoplanetary disks are generally sufficiently cold to be con- sidered non-magnetized and, consequently, dynamically inactive. However, recent investigations of these so-called “Dead-Zones” indicate the possibility that disks with strong mean radial te...

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Main Authors: Gressel Oliver, Nelson Richard P., Umurhan Orkan M.
Format: Article
Language:English
Published: EDP Sciences 2013-04-01
Series:EPJ Web of Conferences
Online Access:http://dx.doi.org/10.1051/epjconf/20134603003
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spelling doaj-ff14f10bb354456cad71fa562e06038e2021-08-02T02:02:28ZengEDP SciencesEPJ Web of Conferences2100-014X2013-04-01460300310.1051/epjconf/20134603003Breathing Life Into Dead-ZonesGressel OliverNelson Richard P.Umurhan Orkan M.The terrestrial planet formation regions of protoplanetary disks are generally sufficiently cold to be con- sidered non-magnetized and, consequently, dynamically inactive. However, recent investigations of these so-called “Dead-Zones” indicate the possibility that disks with strong mean radial temperature gradients can support instabilities associated with disk-normal gradients of the basic Keplerian shear profile. This process, known as the Goldreich-Schubert-Fricke (GSF) instability, is the instability of short radial wavelength inertial modes and depends wholly on the presence of vertical gradients of the mean Keplerian (zonal) flow. We report here high resolution fully nonlinear axisymmetric numerical studies of this instability and find a number of features including how, in the nonlinear saturated state, unstable discs become globally distorted, with strong vertical oscillations occurring at all radii due to local instability. We find that nonaxisymmetric numerical experiments are accompanied by significant amounts angular momentum transport (α ~ 0001). This instability should be operating in the Dead-Zones of protoplanetary disks at radii greater than 10-15 AU in minimum mass solar nebula models. http://dx.doi.org/10.1051/epjconf/20134603003
collection DOAJ
language English
format Article
sources DOAJ
author Gressel Oliver
Nelson Richard P.
Umurhan Orkan M.
spellingShingle Gressel Oliver
Nelson Richard P.
Umurhan Orkan M.
Breathing Life Into Dead-Zones
EPJ Web of Conferences
author_facet Gressel Oliver
Nelson Richard P.
Umurhan Orkan M.
author_sort Gressel Oliver
title Breathing Life Into Dead-Zones
title_short Breathing Life Into Dead-Zones
title_full Breathing Life Into Dead-Zones
title_fullStr Breathing Life Into Dead-Zones
title_full_unstemmed Breathing Life Into Dead-Zones
title_sort breathing life into dead-zones
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2013-04-01
description The terrestrial planet formation regions of protoplanetary disks are generally sufficiently cold to be con- sidered non-magnetized and, consequently, dynamically inactive. However, recent investigations of these so-called “Dead-Zones” indicate the possibility that disks with strong mean radial temperature gradients can support instabilities associated with disk-normal gradients of the basic Keplerian shear profile. This process, known as the Goldreich-Schubert-Fricke (GSF) instability, is the instability of short radial wavelength inertial modes and depends wholly on the presence of vertical gradients of the mean Keplerian (zonal) flow. We report here high resolution fully nonlinear axisymmetric numerical studies of this instability and find a number of features including how, in the nonlinear saturated state, unstable discs become globally distorted, with strong vertical oscillations occurring at all radii due to local instability. We find that nonaxisymmetric numerical experiments are accompanied by significant amounts angular momentum transport (α ~ 0001). This instability should be operating in the Dead-Zones of protoplanetary disks at radii greater than 10-15 AU in minimum mass solar nebula models.
url http://dx.doi.org/10.1051/epjconf/20134603003
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