Local and Global Uncertainty Analyses of a Methane Flame Model
Local and global uncertainty analyses of a flat, premixed, stationary, laminar methane flame model were
carried out using the Leeds methane oxidation mechanism at lean (� ) 0.70), stoichiometric (� ) 1.00), and
rich (� ) 1.20) equivalence ratios. Uncertainties of laminar flame velocity, maximal flame temperature, and
maximal concentrations of radicals H, O, OH, CH, and CH2 were investigated. Global uncertainty analysis
methods included the Morris method, the Monte Carlo analysis with Latin hypercube sampling, and an improved
version of the Sobol’ method. Assumed probability density functions (pdf’s) were assigned to the rate
coefficients of all the 175 reactions and to the enthalpies of formation of the 37 species. The analyses provided
the following answers: approximate pdf’s and standard deviations of the model results, minimum and maximum
values of the results at any physically realistic parameter combination, and the contribution of the uncertainty
of each parameter to the uncertainty of the model result. The uncertainty of a few rate parameters and a few
enthalpies of formation causes most of the uncertainty of the model results. Most uncertainty comes from the
inappropriate knowledge of kinetic data, but the uncertainty caused by thermodynamic data is also significant.
SALTELLI Andrea;
TARANTOLA Stefano;
RATTO Marco;
ZÁDOR J.;
ZSÉLY I.G;
TURÁNYI T.;
2005-12-20
AMER CHEMICAL SOC
JRC30900
https://publications.jrc.ec.europa.eu/repository/handle/JRC30900,
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