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CFD simulations of bubbling/collapsing fluidized beds for three geldart groups

机译:三个geldart组鼓泡/塌陷流化床的CFD模拟

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A multiphase computational fluid dynamics (CFD) model was applied to a commonly used industrial experiment known as the collapsing fludized-bed experiment. The experiment involves several hydrodynamic regimes including the bed expansion,bubbling,sedimentation,and consolidation of the fluidized bed. The CFD model is capable of predicting all four of these regimes. The three Geldart Groups,C,A,and B were simulated in a bubbling and subsequently collapsing fluidized be. Results show that hydrodynamic Models A and B,the use of the modified Ergun equationor the MFIX code drag modesl,and solids rheology have limited impact on the bubbling-and collapsing-bed simulations. The major finding of this study is that the solids modulus,G,is the controlling parameter during the consolidation regime. The simulated bubble sizes and bed collapse rates for all three Geldart groups were found to be within reported experimental error. The computed high turbulent intensity of Geldart Group A particles also agrees with data in the literature measured using an acoustic shot nose probe. It is also demonstrated that the traditional inter pretation of the collapsing bed as consisting of separate bubble escape and sedimentation regimes is incorrect and that,in fact,they occur simultaneously.
机译:将多相计算流体动力学(CFD)模型应用于称为塌陷流化床实验的常用工业实验。该实验涉及几种流体力学方案,包括流化床的膨胀,鼓泡,沉淀和固结。 CFD模型能够预测所有这四种情况。在鼓泡中随后模拟了三个Geldart组C,A和B,然后塌陷了流化be。结果表明,流体动力学模型A和B,使用改进的Ergun方程或MFIX代码拖曳模型以及固体流变学对鼓泡床和塌陷床模拟的影响有限。这项研究的主要发现是固结模量G是固结过程中的控制参数。发现所有三个Geldart组的模拟气泡大小和床坍塌率均在报告的实验误差范围内。 Geldart A组颗粒的高湍流强度计算值也与使用声发射鼻探头测得的文献数据相符。还证明了由分开的气泡逸出和沉降机制组成的对塌陷床的传统解释是不正确的,并且实际上它们同时发生。

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