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A Discrete Probability Function Method for the Equation of Radiative TransferA discrete probability function (DPF) method for the equation of radiative transfer is derived. The DPF is defined as the integral of the probability density function (PDF) over a discrete interval. The derivation allows the evaluation of the PDF of intensities leaving desired radiation paths including turbulence-radiation interactions without the use of computer intensive stochastic methods. The DPF method has a distinct advantage over conventional PDF methods since the creation of a partial differential equation from the equation of transfer is avoided. Further, convergence of all moments of intensity is guaranteed at the basic level of simulation unlike the stochastic method where the number of realizations for convergence of higher order moments increases rapidly. The DPF method is described for a representative path with approximately integral-length scale-sized spatial discretization. The results show good agreement with measurements in a propylene/air flame except for the effects of intermittency resulting from highly correlated realizations. The method can be extended to the treatment of spatial correlations as described in the Appendix. However, information regarding spatial correlations in turbulent flames is needed prior to the execution of this extension.
Document ID
19930047624
Acquisition Source
Headquarters
Document Type
Reprint (Version printed in journal)
Authors
Sivathanu, Y. R.
Gore, J. P.
(Purdue Univ. West Lafayette, IN, United States)
Date Acquired
August 16, 2013
Publication Date
March 1, 1993
Publication Information
Publication: Journal of Quantitative Spectroscopy & Radiative Transfer
Volume: 49
Issue: 3
ISSN: 0022-4073
Subject Category
Inorganic And Physical Chemistry
Report/Patent Number
E-8799
Accession Number
93A31621
Funding Number(s)
CONTRACT_GRANT: NSF CTS-89-14520
CONTRACT_GRANT: NSF CTS-91-57920
Distribution Limits
Public
Copyright
Other

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