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Numerical simulation of the gas-liquid flow in a laboratory scale bubble column Influence of bubble size distribution and non-drag forces

机译:实验室规模气泡塔内气液流动的数值模拟气泡尺寸分布和非拖曳力的影响

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In the present work, a computational model based on an Eulerian-Eulerian approach was used for the simulation of the transient two-phase flow in a rectangular partially aerated bubble column. Superficial gas velocities (U_G) ranging from 0.24 to 2.30 cm/s were used throughout both the experiments and the simulations. The calculated results were verified by comparing them with experimental data including measurements of gas hold-up, plume oscillation period (POP) and Sauter mean bubble diameter. The study shows the effect of mesh refinement, time-step and physical model selection, the latter regarding the role of bubble size distribution and non-drag forces, on the computational results. According to the results presented here, the representation of bubble populations using multiple size groups (MUSIG model) instead of a single group improves the prediction of the experimental parameters under study. Additionally, the results obtained after including the virtual mass force term do not differ considerably from those obtained including only the drag force. On the contrary, as a consequence of introducing the lift force term into the model, the gas hold-up is overestimated and a non-symmetric bubble plume oscillation appears, a fact that is not experimentally observed.
机译:在目前的工作中,基于欧拉-欧拉方法的计算模型被用于模拟部分充气矩形鼓泡塔中的瞬态两相流。在整个实验和模拟过程中,使用的表观气体速度(U_G)为0.24至2.30 cm / s。通过将计算结果与包括气体滞留量,羽流振荡周期(POP)和Sauter平均气泡直径的测量值的实验数据进行比较,验证了计算结果。研究显示了网格细化,时间步长和物理模型选择对计算结果的影响,后者涉及气泡尺寸分布和非拖动力的作用。根据此处显示的结果,使用多个大小组(MUSIG模型)而不是单个组来表示气泡总体可改善对所研究实验参数的预测。另外,在包括虚拟质量力项之后获得的结果与仅包括阻力的结果没有很大的不同。相反,由于将升力项引入模型中,气体滞留率被高估,并且出现了不对称的气泡羽流振荡,这一事实在实验中还没有观察到。

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