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Eddy heat fluxes and stability of planetary waves. I, IIThe stability of baroclinic Rossby waves in a zonal shear flow was analyzed by a linear, quasigeostrophic, two-level, adiabatic, and frictionless midlatitude beta-plane model. The ratio of the basic wave scale and the radius of deformation together with two nondimensional parameters which describe the amplitudes of the barotropic and baroclinic components of the basic wave constitute the three parameters of the stability problem. The parameter space is partitioned according to the dominant energy source for instability; the Lorenz and Kim conditions are characterized by significant horizontal and vertical shears of the basic wave, while the Phillips regime has a strong zonal flow. The stability analysis is then applied to the atmosphere, with the primary motivation being to examine the midlatitude planetary scale (zonal wavenumbers 1, 2, 3) transient waves that transport heat. It is found that the most unstable mode consists of a spectrum of waves, with a maximum amplitude at wavenumber 3; the response is thus maximum at a zonal scale intermediate between the basic wave scale and the radius of deformation.
Document ID
19810036108
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Lin, C. A.
(Canadian Climate Centre Downsview, Ontario, Canada)
Date Acquired
August 11, 2013
Publication Date
November 1, 1980
Publication Information
Publication: Journal of the Atmospheric Sciences
Volume: 37
Subject Category
Meteorology And Climatology
Accession Number
81A20512
Funding Number(s)
CONTRACT_GRANT: NGR-22-009-727
Distribution Limits
Public
Copyright
Other

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