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The delta-Eddington approximation for radiative flux transferSimple approximations, like the Eddington, are often incapable of coping with the highly asymmetric phase functions typical of particulate scattering. A simple yet accurate method called the delta-Eddington approximation is proposed for determining monochromatic radiative fluxes in an absorbing-scattering atmosphere. In this method, the governing phase function is approximated by a Dirac delta function forward scatter peak and a two-term expansion of the phase function. The fraction of scattering into the truncated forward peak is taken proportional to the square of the phase function asymmetry factor, which distinguishes the delta-Eddington approximation from others of similar nature. The transmission, reflection, and absorption predicted by the delta-Eddington approximation are compared with doubling method calculations for realistic ranges of optical depth, single-scattering albedo, surface albedo, sun angle and asymmetry factor. The approximation is shown to provide an accurate and analytically simple parameterization of radiation to replace the empirism currently encountered in many general circulation and climate models.
Document ID
19770033965
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Joseph, J. H.
(National Center for Atmospheric Research Boulder, CO, United States)
Wiscombe, W. J.
(National Center for Atmospheric Research Boulder, Colo., United States)
Weinman, J. A.
(Wisconsin, University Madison, Wis., United States)
Date Acquired
August 9, 2013
Publication Date
December 1, 1976
Publication Information
Publication: Journal of the Atmospheric Sciences
Volume: 33
Subject Category
Geophysics
Accession Number
77A16817
Funding Number(s)
CONTRACT_GRANT: NASA 1057
Distribution Limits
Public
Copyright
Other

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