Article ID Journal Published Year Pages File Type
5427514 Journal of Quantitative Spectroscopy and Radiative Transfer 2016 10 Pages PDF
Abstract

•For the first time the group-theoretical approach is applied in radiative transfer.•The concept of the media composition groups is introduced.•The layers adding method is generalized to inhomogeneous media.•The concept of the depth translation group is introduced.•The method was applied to the transfer of radiation in a semi-infinite atmosphere.•The method is used to find the addition law for the mean number of scatterings.

The paper presents a group-theoretical description of radiation transfer in inhomogeneous and multi-component atmospheres with the plane-parallel geometry. It summarizes and generalizes the results obtained recently by the author for some standard transfer problems of astrophysical interest with allowance of the angle and frequency distributions of the radiation field. We introduce the concept of composition groups for media with different optical and physical properties. Group representations are derived for two possible cases of illumination of a composite finite atmosphere. An algorithm for determining the reflectance and transmittance of inhomogeneous and multi-component atmospheres is described. The group theory is applied also to determining the field of radiation inside an inhomogeneous atmosphere. The concept of a group of optical depth translations is introduced. The developed theory is illustrated with the problem of radiation diffusion with partial frequency distribution assuming that the inhomogeneity is due to depth-variation of the scattering coefficient. It is shown that once reflectance and transmittance of a medium are determined, the internal field of radiation in the source-free atmosphere is found without solving any new equations. The transfer problems for a semi-infinite atmosphere and an atmosphere with internal sources of energy are discussed. The developed theory allows to derive summation laws for the mean number of scattering events underwent by the photons in the course of diffusion in the atmosphere.

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Physical Sciences and Engineering Chemistry Spectroscopy
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