Discrete Ordinates and Monte Carlo Methods for Radiative Transfer Simulation Applied to Computational Fluid Dynamics Combustion Modeling

Author:

Joseph David1,Perez Patrice1,El Hafi Mouna2,Cuenot Bénédicte3

Affiliation:

1. Centre de Recherche d’Albi en génie des Procédés des Solides Divisés, de l’Energie et de l’Environnement, 81000 Albi, France; HPC-SA, 3 Chemin du Pigeonnier de la Cépière, 31100 Toulouse, France

2. Centre de Recherche d’Albi en génie des Procédés des Solides Divisés, de l’Energie et de l’Environnement, 81013 Albi, France

3. CERFACS, 42 Avenue Gaspard Coriolis, 31057 Toulouse, France

Abstract

Modeling radiative heat transfer in combustion applications involving complex geometries and detailed spectral properties of radiative gaseous species remains a difficult challenge, especially when full coupling with detailed chemistry and fluid dynamics is required. The Monte Carlo method (MCM) usually considered as a reference “exact” method for the computation of radiative transfer is however very demanding in CPU-time. An alternative is the discrete ordinates method (DOM), based on a finite volume approach, that is more suitable for a direct coupling with computational fluid dynamics but may lack accuracy. The aim of the present paper is to propose and demonstrate the efficiency of a methodology for radiative transfer calculation, combining the advantages of both MCM and DOM. In this approach, the fast DOM is used to compute the radiative solution, and its accuracy is controlled by comparison with the exact MCM solution at a selected controlling points. A first application of the proposed methodology to an industrial burner prototype shows its validity and potential for the direct coupling of radiation calculations with unsteady reacting flow computations.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference36 articles.

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