Fluidization XVI
Modeling of Oxy Gasification of High Ash Coal in Fluidized Bed Gasifier
Authors
With this context, the present study thus envisages on developing a mathematical model to predict the exit syngas composition, temperature distribution, and carbon conversion. The model considers eight significant reactions: four each of homogeneous and heterogeneous. To incorporate the effect of bed hydrodynamics, a two-phase description of fluidized beds is considered, wherein it is assumed that the coal (heterogeneous) reactions take place in the emulsion phase, whereas, the gaseous (homogenous) phase reactions occur in both the emulsion as well as the bubble phase [2,3]. It was further assumed that the devolatilization of the incoming fresh coal feed was instantaneous as compared to the actual char gasification reactions. Pure oxygen was used a gasifying medium with molar ratio with steam being maintained at 2. When the bed was run at atmospheric pressure and 900 oC, preliminary results indicate that with an increase in the height the molar concentrations of CO and H2 increase in both bubbles as well as the emulsion phase. Once such an analysis is performed in a non-isothermal bed, it is further expected to yield temperature distributions of coal particles which can be indicative of their tendency to agglomerate. A detailed analysis of the model with the influence of pressure and inlet oxygen concentration will be discussed in the final presentation.
References
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