2017 Annual Meeting
(236a) A DEM Modeling of Biomass Fast Pyrolysis in a Double Screw Reactor
In this research, we proposed an extended DEM method for modeling the reactive granular flow in a double screw reactor. A semi-detailed biomass devolatilization kinetics is adopted in the simulation and the decomposition dynamics of the major biomass components and pyrolysis products are analyzed at different operating conditions. The heat transfer coefficient information is extracted from the DEM simulation and provided as heat transfer boundary conditions for a single particle model. The intra-particle heat and mass transport phenomena are modeled and the effects on the biomass pyrolysis process are evaluated. We report that the heat transfer coefficient in the double screw reactor varies within a wide range of 20 to 90 W/(m2K) for different operating conditions. Results also indicate the particle-fluid-particle conductive heat transfer pathways are the dominant contributors to the total heat flux, which accounts for 70%-80% in the total heat flux. Radiation heat transfer contributes 14%-26% to the total heat flux. The reported result is helpful for reactor performance evaluation and reactor design optimization.
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