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Gas–liquid flow in stirred reactors: Trailing vortices and gas accumulation behind impeller blades

机译:搅拌反应器中的气液流动:叶轮叶片后面的涡流和气体积聚

摘要

In a gas–liquid stirred reactor, gas tends to accumulate in low-pressure regions behind the impeller blades. Such gas accumulation significantly alters impeller performance characteristics. We have computationally investigated gas–liquid flow generated by a Rushton (disc) turbine. Rotating Rushton turbine generates trailing vortices behind the blades, which influence the gas accumulation in the impeller region. Characteristics of these trailing vortices were first investigated by considering a model problem of flow over a single impeller blade. Predicted results were compared with the published experimental data. Circulation velocity and turbulent kinetic energy of the trailing vortices were found to scale with blade tip velocity. Several numerical experiments were carried out to understand interaction of gas bubbles and trailing vortices. Gas–liquid flow in stirred vessel was then simulated by extending the computational snapshot approach of Ranade and Dometti (Chem. Engng Res. Des., 74, 476–484, 1996). The approach was able to capture the main features of gas–liquid flow in stirred vessels. The detailed analysis of predicted results with reference to experimental data and the results obtained for flow over a single impeller blade will be useful for extending the scope of computational fluid dynamics (CFD) based tools for engineering gas–liquid stirred reactors.
机译:在气液搅拌反应器中,气体倾向于积聚在叶轮叶片后面的低压区域。这种气体积聚会显着改变叶轮的性能特征。我们已经对Rushton(盘式)涡轮机产生的气液流动进行了计算研究。旋转的Rushton涡轮在叶片后面产生尾部涡流,这会影响叶轮区域中的气体积聚。首先通过考虑单个叶轮上的流动模型问题研究了这些尾随涡流的特性。将预测结果与已发布的实验数据进行了比较。发现尾随涡流的循环速度和湍动能与叶尖速度成比例。进行了几个数值实验,以了解气泡和尾随涡的相互作用。然后通过扩展Ranade和Dometti的计算快照方法来模拟搅拌容器中的气液流动(Chem。Engng Res。Des。,74,476-484,1996)。该方法能够捕获搅拌容器中气液流动的主要特征。参照实验数据对预测结果进行详细分析,并获得在单个叶轮叶片上流动的结果,这将有助于扩展基于工程流体-液体搅拌反应器的基于计算流体动力学(CFD)的工具的范围。

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