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Convection without eddy viscosity: An attempt to model the interiors of giant planetsIn the theory of hydrostatic quasi-geostrophic flow in the Earth's atmosphere the principal results do not depend on the eddy viscosity. This contrasts with published theories of convection in deep rotating fluid spheres, where the wavelength of the fastest growing disturbance varies as E sup 1/3, where E, the Ekman number, is proportional to the eddy viscosity. A new theory of quasi-columnar motions in stably stratified fluid spheres attempts to capture the luck of the meteorologists. The theory allows one to investigate the stability of barotropic and baroclinic zonal flows that extend into the planetary interior. It is hypothesized that the internal heat Jupiter and Saturn comes out not radially but on sloping surfaces defined by the internal entropy distribution. To test the hypothesis one searches for basic states in which the wavelength of the fastest-growing disturbance remains finite as E tends to zero, and is which the heat flux vector is radially outward and poleward.
Document ID
19870008192
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Ingersoll, A. P.
(California Inst. of Tech. Pasadena, CA, United States)
Date Acquired
September 5, 2013
Publication Date
October 1, 1986
Publication Information
Publication: NASA. Goddard Inst. for Space Studies The Jovian Atmospheres
Subject Category
Lunar And Planetary Exploration
Accession Number
87N17625
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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