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Experimental and numerical investigation of an air pocket immersed and immobilized in a horizontal water duct flow

机译:浸没并固定在水平水管流中的气穴的实验和数值研究

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In this work, we carry out an experimental and numerical study of a horizontal elongated air bubble (air pocket) immersed in a liquid flow. For this purpose, an air pocket of large aspect ratio is immobilized in a main liquid duct flow. This particular geometry differs from that of previous works since the air pocket is not influenced by the presence of other bubbles (slug/plug flow). The characteristic zones of the air-water interface are identified experimentally and discussed as a function of the Reynolds number up to 26,000. Two-dimensional and unsteady numerical calculations without mass transfer across the air-water interface are carried out in order to study the behaviour of the air pocket under the same conditions as in the experiment. The features of the results are that the shape of the air pocket and its front are quite well reconstructed by the numerical calculations. However, the comparison of the air pocket length evolution with the experimental data shows a slightly different behaviour attributed to the mass transfer across the air-water interface. The numerical study provides a further insight into the wavy behaviour of the interface that is responsible for the vortices in the air pocket.
机译:在这项工作中,我们对浸入液体流中的水平细长气泡(气穴)进行了实验和数值研究。为此,将长径比大的气穴固定在主液体管道流中。这种特殊的几何形状与以前的工作有所不同,因为气穴不受其他气泡(团状/塞流)的影响。实验确定了空气-水界面的特征区域,并将其作为雷诺数最多26,000的函数进行了讨论。为了研究气袋在与实验相同的条件下的行为,进行了二维的和非稳态的数值计算,没有通过气-水界面的传质。结果的特征是通过数值计算可以很好地重建气囊的形状及其前部。但是,气穴长度演变与实验数据的比较表明,通过空气-水界面的传质引起的行为略有不同。数值研究提供了对界面的波浪行为的进一步了解,该界面是气袋中涡流的原因。

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