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Wide Range Simulation Study of Taylor Bubbles in Circular Milli and Microchannels

机译:圆形毫通道和微通道中泰勒气泡的大范围模拟研究

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摘要

A deep knowledge of the hydrodynamics of two-phase flow in millichannels and microchannels is relevant to the design and control of micro structured equipment. While there is plenty of work published in this area, there is a lack of studies over a wide range of dimensionless numbers and some factors have not been properly addressed, such as the role of the Reynolds number, the features of recirculation regions in the liquid slug and the liquid film development length. Therefore, a wide range parametric study of isolated gas Taylor bubbles flowing in co-current with liquid in circular milli- and microchannels is presented, in a wide range of Capillary (CaB) (0.01–2) and Reynolds numbers (ReB) (0.01–700). The shape and velocity of the bubbles are, together with the flow patterns in the flowing liquid, analyzed and compared with numerical and experimental correlations available in the literature. For low values of CaB, the streamlines (moving reference frame (MRF)) in the liquid slug show semi-infinite recirculations occupying a large portion of the cross-section of the channel. The mean velocity of the fluid moving inside the external envelope of the semi-infinite streamlines is equal to the bubble velocity. For high values of CaB, there are no recirculations and the bubble is moving faster or at least at the velocity of the liquid in the center of the tube; this flow pattern is often called bypass flow. The results also indicate that the liquid film surrounding the bubbles is for low CaB and ReB numbers almost stagnant, and its thickness accurately estimated with existing correlations. The stagnant film hypothesis developed provides an accurate approach to estimate the velocity of the bubble, in particular for low values of CaB. The asymptotic behavior of the studied parameters enables the extrapolation of data for CaB lower than 0.01. In addition to the simulations of isolated bubbles, simulations with two consecutive bubbles were also carried out; coalescence was only observed in very specific conditions. The results obtained in this study are directly applicable to co-current slug flow in milli- and microchannels for 0.1 < ReB < 1000 and 0.02 < CaB < 2.
机译:对微通道和微通道中两相流的流体力学的深入了解与微结构化设备的设计和控制有关。尽管在该领域有大量工作发表,但缺乏对无因次数的广泛研究,并且未适当解决某些因素,例如雷诺数的作用,液体中回流区域的特征弹头和液膜的显影长度。因此,在大范围的毛细管(CaB)(0.01–2)和雷诺数(ReB)(0.01)中,提出了在圆形毫通道和微通道中与液体并流流动的孤立气体泰勒气泡的广泛参数研究。 –700)。分析气泡的形状和速度,以及流动液体中的流动模式,并与文献中可用的数值和实验相关性进行比较。对于低的CaB值,液塞中的流线(移动参考系(MRF))显示半无限循环,占据通道横截面的很大一部分。在半无限流线的外壳内移动的流体的平均速度等于气泡速度。对于较高的CaB值,没有再循环,并且气泡以更快的速度或至少以试管中心的液体速度运动。这种流动方式通常称为旁路流动。结果还表明,气泡周围的液膜对于低CaB和ReB值几乎停滞不前,并且利用现有的相关性可以准确地估计其厚度。所开发的停滞膜假说提供了一种准确的方法来估算气泡的速度,尤其是对于低CaB值而言。研究参数的渐近行为使CaB的数据外推低于0.01。除了模拟孤立的气泡外,还进行了两个连续气泡的仿真。仅在非常特定的条件下才观察到合并。在本研究中获得的结果直接适用于0.1≤ReB <1000和0.02

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