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CFD ANALYSES OF THE MIXING CHARACTERISTICS IN BUBBLE COLUMNS AND AIRLIFT REACTORS

机译:鼓泡塔和气浮反应器混合特性的CFD分析

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The mixing characteristics in bubble columns and airlift reactors are analyzed using computational fluid dynamics. In the simulations, an Eulerian-Eulerian approach was used to model air as the dispersed phase within a continuous phase of water using the commercial software FLUENT. The Schiller-Naumann drag model was employed along with virtual mass and the standard k - ∈ turbulence model. An effective bubble diameter was specified for each case studied and depended on the inlet gas velocity specified.The predicted flow field in the airlift geometry showed a regular oscillation of the gas flow due to flow recirculating from the downcomer and connectors, whereas the bubble column oscillations were random and resulted in flow moving through the center of the column. The profiles of gas holdup, gas velocity, and liquid velocity versus column width showed that the airlift reactor flow is asymmetric and the profile shape varied along the height of the column. The bubble column flow became independent of height after 20 cm above the inlet because there was less mixing than the airlift reactor. It was shown that the airlift reactor increased the mixing of the gas-liquid flow due to the addition of the downcomer. The airlift reactor showed less gas holdup in the riser than the bubble column but its velocity and gas holdup never became independent of column diameter like in the bubble column. The gas and liquid flow field showed increased mixing with increasing inlet velocity.
机译:使用计算流体动力学分析了鼓泡塔和气举反应器中的混合特性。在模拟中,使用商业软件FLUENT,使用欧拉-欧拉方法对空气作为水的连续相中的分散相进行建模。将Schiller-Naumann阻力模型与虚拟质量和标准k-ε湍流模型一起使用。在每种情况下都指定了有效的气泡直径,并取决于所指定的进气速度。在空运几何中的预测流场显示,由于从降液管和连接器回流的气流,气流有规律的振荡,而气泡塔的振荡是随机的,导致流动通过柱子的中心。气体滞留量,气体速度和液体速度与塔宽的关系曲线表明,气举反应器的流动是不对称的,并且轮廓形状沿塔的高度变化。气泡塔的流量在入口上方20 cm之后变得不受高度的影响,这是因为混合少于吹气反应器。结果表明,由于增加了降液管,空运反应器增加了气液流的混合。气提反应器在提升管中的气体滞留率比气泡塔小,但其速度和气体滞留率从未像气泡塔那样独立于塔直径。气体和液体流场显示出随着入口速度的增加而增加的混合。

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