4.7 Article

Comparative study of micromixing models in transported scalar PDF simulations of turbulent nonpremixed bluff body flames

Journal

COMBUSTION AND FLAME
Volume 146, Issue 1-2, Pages 109-130

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.combustflame.2006.04.010

Keywords

numerical simulations; nonpremixed bluff body flames HM1-HM3; transported scalar PDF; micromixing models (CD, EMST)

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Numerical simulation results are presented for turbulent jet diffusion flames with various levels of turbulence-chemistry interaction, stabilized behind a bluff body (Sydney Flames HM1-3). Interaction between turbulence and combustion is modeled with the transported joint-scalar PDF approach. The mass density function transport equation is solved in a Lagrangian manner. A second-moment-closure turbulence model is applied to obtain accurate mean flow and turbulent mixing fields. The behavior of two micromixing models is discussed: the Euclidean minimum spanning tree model and the modified Curl coalescence dispersion model. The impact of the micromixing model choice on the results in physical space is small, although some influence becomes visible as the amount of local extinction increases. Scatter plots and profiles of conditional means and variances of thermochemical quantities, conditioned on the mixture fraction, are discussed both within and downstream of the recirculation region. A distinction is made between local extinction and incomplete combustion, based on the CO species mass fraction. The differences in qualitative behavior between the micromixing models are explained and quantitative comparison to experimental data is made. (c) 2006 The Combustion Institute. Published by Elsevier Inc. All rights reserved.

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