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Evaluation of a gas-liquid stirred reactor emulator via network models

机译:通过网络模型评估气液搅拌反应器模拟器

摘要

Backmixed stirred reactor has always been the first choice equipment for carrying out gas-liquid reactions. However, they may not be the best, mainly because of the non-uniform gas distribution in the vessel. Moreover, the gas liquid flow behaviour is not clearly understood partly due to the complex interactions between gas and liquid. Due to these reasons, a model which can first predict the internal behaviour of two-phase flow accurately is needed. A2-D experimental rig has been used to study the liquid flow behaviour. From photographic evaluations, valuable insight of the gas-liquid flow in the vessel is obtained. Two models have been tested to evaluate the experimental results. The models are able to predict the local gas hold-up, which is an important variable to predict gas-liquid flow pattern. The first model is the simple zones-in-loops based on the gas and liquid flowing in loops through a series of eight backmixed zones in the half 2-D stirred vessel. The second model is a more complex equal sized square cells network which accommodates a more realistic liquid flow pattern and thus, a more successful prediction of the two-phase flow behaviour. The predicted local gas hold-ups are exhibited on a unique 3-D spatial map. They display very encouraging predictive values in comparison with the experimental results. With improvements in the bubble detection techniques and also by assuming non-uniform bubble size the model has a potential to predict accurately not only the hydrodynamics characteristics, but also the physico-chemical interactions.
机译:回混搅拌反应器一直是进行气液反应的首选设备。但是,它们可能不是最好的,主要是因为容器中的气体分布不均匀。此外,由于气液之间的复杂相互作用,气液的流动行为还没有得到清楚的理解。由于这些原因,需要一种可以首先准确预测两相流内部行为的模型。 A2-D实验台已用于研究液体流动行为。通过摄影评估,可以获得有关容器中气液流动的有价值的见解。已经测试了两个模型以评估实验结果。该模型能够预测局部气体滞留量,这是预测气液流动模式的重要变量。第一个模型是简单的环内区域,基于气体和液体在半二维搅拌容器中流过一系列八个反向混合区域的环路中流动。第二个模型是一个更复杂的等尺寸正方形单元网络,该网络可以容纳更实际的液体流动模式,因此可以更成功地预测两相流动行为。预测的局部气体滞留率显示在唯一的3-D空间图上。与实验结果相比,它们显示出非常令人鼓舞的预测值。随着气泡检测技术的改进以及通过假设气泡大小不均匀,该模型不仅可以准确预测流体力学特性,而且还可以准确预测物理化学相互作用。

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