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Numerical study on the effect of initial flow velocity on liquid film thickness of accelerated slug flow in a micro tube

机译:初始流速对微管内加速段塞流液膜厚度影响的数值研究

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Numerical simulation of air-water slug flows accelerated from steady states with different initial velocities in a micro tube is conducted. It is shown that the liquid film formed between the gas bubble and the wall in an accelerated flow is significantly thinner than that in a steady flow at the same instantaneous capillary number. Specifically, the liquid film thickness is kept almost unchanged just after the onset of acceleration, and then gradually increases and eventually converges to that of an accelerated flow from zero initial velocity. Due to the flow acceleration, the Stokes layer is generated from the wall, and the instant velocity profile can be given by superposition of the Stokes layer and the initial parabolic velocity profile of a steady flow. It is found that the velocity profile inside a liquid slug away from the bubble can be well predicted by the analytical solution of a single-phase flow with acceleration. The change of the velocity profile in an accelerated flow changes the balance between the inertia, surface tension and viscous forces around the meniscus region, and thus the resultant liquid film thickness. By introducing the displacement thickness, the existing correlation for liquid film thickness in a steady flow (Han and Shikazono, 2009) is extended so that it can be applied to a flow with acceleration from an arbitrary initial velocity. It is demonstrated that the proposed correlation can predict liquid film thickness at Re <4600 within the range of +/- 10% accuracy. (C) 2015 Elsevier Inc. All rights reserved.
机译:进行了微管中从不同初始速度的稳态加速的空气-水弹团流动的数值模拟。结果表明,在相同的瞬时毛细管数下,在加速流动中气泡和壁之间形成的液膜比在稳定流动中形成的液膜明显薄。具体地,刚开始加速后,液膜厚度几乎保持不变,然后逐渐增加并最终从零初始速度收敛到加速流的厚度。由于流动加速度,斯托克斯层是从壁上生成的,瞬时速度分布可以通过斯托克斯层和稳定流的初始抛物线速度分布的叠加来给出。已经发现,通过带加速度的单相流的解析解,可以很好地预测远离气泡的液体团块内部的速度分布。加速流中速度分布的变化改变了弯液面区域周围的惯性,表面张力和粘性力之间的平衡,从而改变了液膜厚度。通过引入位移厚度,可以扩展稳定流中液膜厚度的现有相关性(Han和Shikazono,2009年),从而可以将其应用于具有任意初始速度加速度的流中。结果表明,所提出的相关性可以预测Re <4600时液膜厚度在+/- 10%精度范围内。 (C)2015 Elsevier Inc.保留所有权利。

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