首页> 外文期刊>Journal of The institution of engineers (India), Series C >The Effect of Small Bubbles on Resistance Reduction of Water Flow in Co-axial Cylinders with an Inner Rotating Cylinder
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The Effect of Small Bubbles on Resistance Reduction of Water Flow in Co-axial Cylinders with an Inner Rotating Cylinder

机译:小气泡对带内旋转圆筒的同轴气缸中水流阻力减小的影响

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摘要

Drawing on effective experiments and measurement technology, the present study seeks to discuss the interaction between liquid turbulent boundary layer and a crowded group of small bubbles. Experiments are carried out using a circulating water Couette-Taylor system especially designed for small bubble experiments. Couette-Taylor system has a detailed test section, which allows measuring the effect of persistent head resistance reduction caused by small bubbles in the streamwise direction. Pressure difference is measured using sensors which are mounted at the bottom and top of the system to calculate head resistance. Pressure difference and bubble behavior are measured as a function of rotational Reynolds number up to 67.8 × 10~3. Small bubbles are injected constantly into annulus gap using two injectors installed at the bottom of the system and they are lifted through an array of vertical cells. Water is used to avoid uncertain interfacial property of bubbles and to produce relatively mono-sized bubble distributions. The bubble sizes range approximately from 0.9 to 1.4 mm, which are identified by the image processing method. The results suggest that head resistance is decreased after the injection of small bubble in all rotational Reynolds number under study, changing from 7,000 to 67.8 × 10~3. Moreover, void fraction is increased from 0 to 10.33%. A head resistance reduction greater than 75% was achieved in this study after the maximum measured volume of air fraction was injected into fluid flow while bubbles were distinct without making any gas layer.
机译:利用有效的实验和测量技术,本研究试图讨论液体湍流边界层与拥挤的小气泡群之间的相互作用。使用专门为小气泡实验设计的循环水Couette-Taylor系统进行实验。 Couette-Taylor系统具有详细的测试部分,该部分可以测量由沿流向的小气泡引起的持久的头部阻力降低的效果。使用安装在系统底部和顶部的传感器测量压差,以计算压头电阻。测得的压差和气泡行为是高达67.8×10〜3的旋转雷诺数的函数。使用安装在系统底部的两个注入器,将小气泡不断注入环隙中,然后将其提升通过一系列垂直单元。使用水来避免气泡的不确定界面特性并产生相对单一尺寸的气泡分布。气泡大小约为0.9到1.4毫米,这是通过图像处理方法确定的。结果表明,在所研究的所有旋转雷诺数中,注入小气泡后头部阻力均减小,从7,000变为67.8×10〜3。此外,空隙率从0增加到10.33%。在将最大测量体积的空气部分注入到流体流中后,气泡清晰可见而没有形成任何气体层的情况下,在本研究中实现了大于75%的磁头电阻降低。

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