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Modeling turbulent flow in stirred tanks with CFD: the influence of the modeling approach, turbulence model and numerical scheme

机译:使用CFD对搅拌槽中的湍流进行建模:建模方法,湍流模型和数值方案的影响

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摘要

Single phase turbulent flow in a tank stirred by a down- and an up-pumping pitched blade turbine has been simulated using computational fluid dynamics. The effect of the modeling approach, discretization scheme and turbulence model off mean velocities, turbulent kinetic energy and global quantities, such as the power and circulation numbers, has been investigated. The results have been validated by laser doppler velocimetry (LDV) data. The stationary and time-dependent modeling approaches were found to have little effect on the turbulent flow, however the choice of the numerical scheme was found to be important, especially for the predicted turbulent kinetic energy. A first-order method was found to highly underestimate LDV data compared with higher order methods. The type of the turbulence model was limited to the k-epsilon and RNG models due to convergence difficulties encountered with a Reynolds stress model and there was found to be little effect of these models on the mean flow and turbulent kinetic energy. This latter quantity was found to be largely under-predicted in the discharge region of the down-pumping impeller in comparison with LDV data. Better agreement was found for the up-pumping pitched blade turbine. Estimated power numbers were found generally to be in good agreement for the down- and up-pumping data. However, the circulation number tended to be over-predicted by about 30%, and 40%, for the down- and up-pumping agitators, respectively. (C) 2003 Elsevier Inc. All rights reserved. [References: 48]
机译:使用计算流体动力学模拟了由向下和向上泵送的变桨叶片涡轮搅拌的水箱中的单相湍流。研究了建模方法,离散化方案和湍流模型对平均速度,湍动能和整体量(例如功率和循环数)的影响。激光多普勒测速(LDV)数据验证了结果。静态和时间相关的建模方法被发现对湍流影响很小,但是数值方案的选择被发现是重要的,特别是对于预测的湍动能。与高阶方法相比,发现一阶方法会大大低估LDV数据。由于雷诺应力模型遇到的收敛困难,湍流模型的类型仅限于k-ε和RNG模型,并且发现这些模型对平均流和湍动能几乎没有影响。与LDV数据相比,发现在后抽式叶轮的排放区域中,后一种数量的预测严重不足。对于向上泵送的变桨叶片涡轮机,找到了更好的协议。通常,估计的功率值与上下泵送数据非常吻合。然而,对于向下和向上泵送的搅拌器,循环次数往往被高估了约30%和40%。 (C)2003 Elsevier Inc.保留所有权利。 [参考:48]

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