کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
235823 | 465650 | 2014 | 7 صفحه PDF | دانلود رایگان |
• The CFD model for turbulent two-phase flows in a LSCFB riser is proposed in this work.
• k–ε dispersed turbulence model is more efficient than other k-ε multiphase models.
• A model to predict the solid and liquids residence time distributions (RTDS) is developed.
A detailed study on the hydrodynamics of liquid–solid circulating fluidized bed (LSCFB) reactors is crucial in the efficient design and scale-up of these reactors. In this paper, an axisymmetric CFD model is developed to simulate the flow field in a LSCFB riser. The model is based on Eulerian–Eulerian approach incorporating the kinetic theory of granular flow. The predicted results agree well with our earlier experimental data. Furthermore, it is found that the dispersed k–ε multiphase turbulence model is more accurate and computationally efficient than other k–ε multiphase turbulence models. Also, the model predicts the residence time of both liquid and solid phases in the riser by using a Pulse technique. Finally, the proposed CFD model is used to investigate the effects of the liquid stream velocity and the solids circulation rate on the performance of the LSCFB. It is demonstrated that the proposed CFD model can be a robust tool for the scale-up and design of industrial LSCFB reactors.
• An axisymmetric CFD model is developed to simulate the turbulent flow field in a LSCFB riser.
• The model is based on Eulerian–Eulerian approach incorporating the kinetic theory of granular flow.
• The CFD model is able to predict the residence time of both the liquid stream and the solid particles in the riser with a Pulse technique.Figure optionsDownload as PowerPoint slide
Journal: Powder Technology - Volume 260, July 2014, Pages 52–58