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However, with the rapid evolution of emission regulations and fuel formulation, more and more physics is expected in combustion models.
Individual reaction rate and thermodynamic parameters of species were varied using values encountered in combustion models from recent literature.
In addition, the transformation behavior of hazardous substance (F, Cl, and heavy metals) in solid waste should also be considered in combustion models in the future.
The chapter illustrates that there have been considerable developments in combustion models for fossil fuels that are used for design purposes by means of CFD modeling of combustors in power stations.
In combustion models employing tabulated or global kinetics, the prediction of thermal NO is usually performed by either the direct resolution of Zel'dovich mechanism or the tabulation of the NO reaction rate using a laminar flamelet database and a progress variable representative of the fuel oxidation reactions, for instance temperature or a linear combination of major products mass fractions.
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Progress in combustion modelling for both homogeneous and stratified charge modes is discussed thoroughly.
One such model, which is often applied in combustion modelling, is the weighted-sum-of-grey-gases (WSGG) model.
In combustion modeling, it is desirable to know how sensitive the predictions are to certain parameters in the model formulation.
Recent studies have identified uncertainties in fuel diffusion coefficients as a source of significant uncertainty in combustion modeling.
Modified Arrhenius representations of the calculated rate constants are given and should be used in combustion modeling.
Lennard Jones parameters for use in combustion modeling, as transport parameters and in pressure-dependent rate-coefficient calculations as collision rate parameters, are calculated from accurate full-dimensional intermolecular potentials.
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