Taylor Bubbles of Viscous Slug Flow in Inclined Pipes

L. Dafyak, B. Hewakandamby, Ahad Fayyaz, D. Hann
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Abstract

Unique structures are formed when gases and liquids flow simultaneously in pipelines. The geometric characteristics of these structures are fundamental parameters in intermittent flow regimes. The length of liquid slugs and Taylor bubbles are inputs to mechanistic and empirical models for pressure drop estimation, slug catcher sizing and determination of the periods of no or low liquid in pipelines. Although slug flow has been studied for decades, there still exists a lack of comprehensive understanding of flow structures dynamics due to the complex interactions between the gas and liquid phases in two-phase flow. This study investigates the influence of pipe inclination on the length and hydrodynamics of large gas structures in intermittent flows, particularly, ‘Taylor bubbles’ in slug flow regime. An experimental study was conducted in a 67 mm ID pipe to estimate the bubble lengths of an air-silicone oil mixture from void fraction measurement using a twin-plane Electrical Capacitance Tomography (ECT) tool. The results show that the pipe inclination, gas and liquid flow rates have a substantial effect on the length of large bubbles in slug flow. Taylor bubbles get longer when the void fraction increases, or the pipe inclination deviates towards the horizontal pipe orientation. The influence of pipe inclination on bubble length is quite significant; this variation in bubble length with pipe inclination is attributed to the expansion or compression of large gas structures when there is an alteration on the forces acting on the bubble nose. The weight of the liquid column above the bubble nose which has been often neglected in earlier models was identified to have a notable effect on the volume occupied by the large bubbles and consequently, its length. A semi-mechanistic model is proposed based on the analysis of forces acting on the Taylor bubble nose in a quiescence liquid phase. A comparative analysis of the model and previous models shows that the proposed model outperforms existing mechanistic and empirical models across all pipe inclinations. This study gives an insight into the effect of pipe inclination on the length of large bubbles during slugging in pipes, as these bubbles can be up to 10 times longer in horizontal pipes compared to vertical pipes at the same flow conditions. The proposed model has the potential of estimating the length of large bubbles across all pipe inclinations in upward slug flow with acceptable accuracy, particularly for pipelines installed in undulating terrains.
倾斜管道中粘性段塞流的泰勒气泡
当气体和液体在管道中同时流动时,会形成独特的结构。这些结构的几何特性是间歇流型的基本参数。液体段塞和泰勒气泡的长度是压降估算、段塞流捕集器尺寸以及确定管道中无液或低液周期的机械和经验模型的输入。尽管对段塞流的研究已经有几十年的历史,但由于两相流中气液两相之间复杂的相互作用,对其流动结构动力学的认识还不够全面。本研究探讨了管道倾角对间歇流动中大型气体结构的长度和流体动力学的影响,特别是段塞流中的“泰勒气泡”。在67 mm内径的管道中进行了一项实验研究,利用双平面电容断层扫描(ECT)工具,通过空隙率测量来估计空气-硅油混合物的气泡长度。结果表明,在段塞流中,管道倾角、气液流量对大气泡的长度有较大的影响。当空隙率增加或管道倾角向水平方向偏移时,泰勒气泡变长。管道倾角对气泡长度的影响非常显著;当作用在气泡鼻上的力发生变化时,气泡长度随管道倾角的变化可归因于大型气体结构的膨胀或压缩。在早期的模型中,气泡鼻上方的液体柱的重量经常被忽略,这对大气泡所占的体积及其长度有显著影响。通过对静止液相中作用在泰勒气泡鼻上的力的分析,提出了一种半机械模型。将该模型与之前的模型进行对比分析表明,该模型在所有管道倾斜度上都优于现有的力学和经验模型。该研究深入了解了管道倾角对管道段塞流过程中大气泡长度的影响,因为在相同流量条件下,水平管道中的大气泡长度可能是垂直管道的10倍。所提出的模型有可能以可接受的精度估算出在向上段塞流中所有管道倾斜度上的大气泡长度,特别是对于安装在起伏地形中的管道。
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