Parameter estimation of an empirical kinetic model for CO preferential oxidation

2014 
In this work the application of genetic algorithms (GA) for solving the parameter estimation problem in a nonlinear empirical kinetic model for CO preferential oxidation is reported. Kinetic models with nonlinear rate equations often suffer of considerable parameter uncertainty which can lead to inaccurate predictions. Here, after the parameter vector is obtained, a statistical study is performed in order to show how accurate the parameter estimations are deter- mined. The unknown model parameters are obtained by fitting the model pre- dictions against our laboratory observations measured under a range of experi- mental conditions using a novel Au/TiO2 catalyst.
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