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Experimental Analysis of a Bubble Wake Influenced by a Vortex Street

机译:涡街影响的气泡唤醒实验分析

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摘要

Bubble column reactors are ubiquitous in engineering processes. They are used in waste water treatment, as well as in the chemical, pharmaceutical, biological and food industry. Mass transfer and mixing, as well as biochemical or chemical reactions in such reactors are determined by the hydrodynamics of the bubbly flow. The hydrodynamics of bubbly flows is dominated by bubble wake interactions. Despite the fact that bubble wakes have been investigated intensively in the past, there is still a lack of knowledge about how mass transfer from bubbles is influenced by bubble wake interactions in detail. The scientific scope of this work is to answer the question how bubble wakes are influenced by external flow structures like a vortex street behind a cylinder. For this purpose, the flow field in the vicinity of a single bubble is investigated systematically with high spatial and temporal resolution. High-speed Particle Image Velocimetry (PIV) measurements are conducted monitoring the flow structure in the equatorial plane of the single bubble. It is shown that the root mean square (RMS) velocity profiles downstream the bubble are influenced significantly by the interaction of vortices. In the presence of a vortex street, the deceleration of the fluid behind the bubble is compensated earlier than in the absence of a vortex street. This happens due to momentum transfer by cross-mixing. Both effects indicate that the interaction of vortices enhances the cross-mixing close to the bubble. Time series of instantaneous velocity fields show the formation of an inner shear layer and coupled vortices. In conclusion, this study shows in detail how the bubble wake is influenced by a vortex street and gives deep insights into possible effects on mixing and mass transfer in bubbly flows.
机译:鼓泡塔反应器在工程过程中无处不在。它们用于废水处理以及化学,制药,生物和食品工业。此类反应器中的传质和混合以及生化或化学反应取决于气泡流的流体动力学。气泡流的流体动力学主要受气泡唤醒相互作用的影响。尽管过去已经对泡沫尾流进行了深入研究,但仍然缺乏有关气泡尾流相互作用如何详细影响泡沫传质的知识。这项工作的科学范围是回答以下问题:气泡唤醒如何受到外部流动结构(如圆柱体后面的涡街)的影响。为此,以高时空分辨率系统地研究了单个气泡附近的流场。进行高速粒子图像测速(PIV)测量,以监测单个气泡在赤道平面内的流动结构。结果表明,气泡下游的均方根(RMS)速度分布受到涡旋相互作用的显着影响。在存在涡街的情况下,比在没有涡街的情况下更早地补偿了气泡后面的流体的减速度。这是由于通过交叉混合传递动量而发生的。两种效果都表明,涡流的相互作用增强了气泡附近的交叉混合。瞬时速度场的时间序列显示了内部剪切层和耦合涡的形成。总而言之,这项研究详细显示了气泡尾流如何受到涡街的影响,并深入研究了气泡流对混合和传质的可能影响。

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