In this thesis, a novel universal approach towards the modelling of aerosol mitigation via solid aluminosilicate additive particles in one-dimensional and three-dimensional environments was developed. The model is fitted to entrained flow experiments, accounts for chemical reactions in the solid particles' surroundings, as well as the thermodynamic behaviour inside the particle. Comparisons with measurements from both a small-scale laboratory entrained flow reactor as well as large-scale power plant show good agreement, allowing for the prediction of additive behaviour in the boiler.
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In this thesis, a novel universal approach towards the modelling of aerosol mitigation via solid aluminosilicate additive particles in one-dimensional and three-dimensional environments was developed. The model is fitted to entrained flow experiments, accounts for chemical reactions in the solid particles' surroundings, as well as the thermodynamic behaviour inside the particle. Comparisons with measurements from both a small-scale laboratory entrained flow reactor as well as large-scale power p...
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