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Several assumptions of atmospheric-pressure (atmospheric-p) single-phase turbulent reaction rate models are examined for high-p reactive flows having turbulent characteristics.
The rate data have been analyzed by linear as well as non-linear least squares regression combined with other considerations to discriminate among possible reaction rate models.
Thermochemical and mean reaction rate models are developed, assuming a thermal quenching mechanism to be operative, and the resulting expressions are evaluated with the help of a presumed pdf for product temperature.
Ramped thermogravimetry/derivative thermogravimetry (TG/DTG) and differential scanning calorimetry (DSC) experiments and isothermal TG experiments with different temperature intervals were used to characterize LTO behavior and to obtain kinetic parameters determined by Ozawa Flynn Wall (OFW) and general reaction rate models.
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"On the application of the infinite reaction rate model in the simulation of the dynamics of exothermic mixing layers". Combustion Science and Technology.
Combustion is modeled using an infinite reaction rate model based on the Schvab-Zeldovich formulation.
A step-function reaction rate model is used to study the problem of steady, 1D, planar two-reactant premixed flames.
A new reaction rate model has been developed and validated for premixed turbulent combustion in spark-ignition (SI) engines.
The results from parameter estimation demonstrate that a competitive reaction rate model describes the experimental data with varying water concentration best.
This paper describes a conversion procedure, independent of reaction rate model or mechanism, that manages to keep noise amplification under control.
A hybrid reaction rate model, a zwitterion mechanism for MEA and a pseudo first-order reaction model for MDEA was used to model the kinetic data.
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