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Assessment of gas-particle flow models for pseudo-2D fluidized bed applications

机译:伪2D流化床应用的气体颗粒流模型评估

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The aim of this work is to provide more insight into the general modeling criteria for simulating pseudo-2D bubbling fluidized beds. For this purpose, two experimental-based problems are studied. First, a fluidized bed with a high-speed central jet problem is analyzed. A qualitative study of the first bubble indicates that the bubble shape prediction is highly sensitive to the frictional model adopted. The most accurate results in terms of bubble shape and detachment time are given by a frictional model that relates the strain-rate fluctuations with the granular temperature. Second, a uniformly fluidized bed problem in bubbling regime is considered. For this case, the drag models and boundary conditions for the particulate phase are investigated. Time-averaged solid phase velocity profiles are compared with the results of the literature where it is found that no-slip conditions (or partial slip with a high specularity coefficient) are more appropriate than slip conditions at the walls for these regimes. Regarding the drag force, although none of the models presented could match the experimental velocity predictions for low gas velocities at the lower region of the bed, the Di Felice model produces the most accurate results for the whole range of regimes considered.
机译:这项工作的目的是提供更多关于模拟伪2D鼓泡流化床的一般建模标准的洞察。为此目的,研究了两个基于实验的问题。首先,分析了具有高速中央喷射问题的流化床。对第一气泡的定性研究表明气泡形状预测对所采用的摩擦模型非常敏感。在气泡形状和脱离时间方面的最准确的结果由摩擦模型给出,该模型与粒状温度相关的应变速率波动。其次,考虑了鼓泡制度的均匀流化床问题。对于这种情况,研究了颗粒相的阻力模型和边界条件。将时间平均固相管速度分布与文献的结果进行比较,在那里发现其在这些制度的壁上比滑动条件更适合于壁的空滑条件(或具有高镜面系数的部分滑移)。关于阻力,尽管所呈现的模型都没有与床下部区域的低气体速度匹配的实验速度预测,但DI Felice模型为所考虑的整个制度产生最准确的结果。

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