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Large eddy simulation of a nonpremixed reacting jet: Application and assessment of subgrid-scale combustion models

 

作者: Paul E. DesJardin,   Steven H. Frankel,  

 

期刊: Physics of Fluids  (AIP Available online 1998)
卷期: Volume 10, issue 9  

页码: 2298-2314

 

ISSN:1070-6631

 

年代: 1998

 

DOI:10.1063/1.869749

 

出版商: AIP

 

数据来源: AIP

 

摘要:

Results from large eddy simulations (LES) and direct numerical simulations (DNS) of a two-dimensional, spatially developing, compressible planar free jet undergoing an idealized, exothermic, chemical reaction of the typeF+rOx→(1+r)Pare presented in order to assess several subgrid-scale (SGS) combustion models. Botha priorianda posterioriassessments are conducted. The SGS turbulence model used is the dynamic Smagorinsky model (DSM). Two classes of SGS combustion models are employed in this study. These include the conserved scalar approach and the direct closure approach. Specifically, the SGS combustion models involve several forms of direct filtered reaction rate closures, including ascale similarity filtered reaction rate model(SSFRRM), and a mixing controlledstrained laminar flamelet model(SLFM) in the form of thermochemical state relationships, obtained from the DNS, and two assumed forms for the subgrid mixture fraction filtered density function (FDF). In general, LES results are in reasonable agreement with DNS results and highlight the performance of the various SGS combustion models. In particular, in the context of the present study, it is found that: (1) the SLFM cases overpredict product formation due to their inability to capture finite-rate chemistry effects; (2) due to the relatively low values of the SGS mixture fraction variance in the flow under study, the SLFM results are not sensitive to the form of the assumed FDF; and (3) in comparison to the other models investigated, the SSFRRM combustion model provides the best agreement with the DNS for product formation. ©1998 American Institute of Physics.

 

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