NUMERICAL INVESTIGATION OF LIQUID FILM INSTABILITIES AND EVAPORATION IN CONFINED OSCILLATING SLUG-PLUG FLOWS

M. Andredaki, A. Georgoulas, Nicolas Miché, M. Marengo
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引用次数: 2

Abstract

An enhanced volume of fluid (VOF)-based numerical simulation framework that accounts for conjugate heat transfer between solid and two-phase flow regions and phase-change due to boiling/condensation, is utilised in order to investigate the effect of flow oscillation amplitude and frequency on the liquid film evaporation and instability formation in slug-plug flows within heated channels, in saturated flow boiling conditions. Various series of parametric numerical simulations are performed, for different values of flow oscillation amplitude and frequency for a variety of working fluids. For one of the working fluids two different channel diameters are also tested. The oscillations in each case are induced by applying an oscillating pressure boundary condition at the inlet of the channel, keeping the pressure constant at the outlet, after an initial period of constant pressure drop between the inlet and the outlet. Capillary ridges that are initiated at the liquid film, in the vicinity of the leading edge of the considered vapour slugs, are identified as a result of the imposed oscillations, which are translated in the form of capillary waves towards the rear end of the bubbles. It is shown that the formation frequency as well as the geometric characteristics of the generated ridges, are directly related to the corresponding frequency and amplitude of the induced flow oscillations. Furthermore, it is shown that in the initial stages of the bubble fate after the application of the oscillations liquid film evaporation is enhanced with the increase of the oscillation amplitude while it degrades as the frequency of the oscillation becomes higher. However, for large oscillation amplitudes and channel diameters, liquid jets penetrate into the elongated bubbles leading in a lot of cases to bubble break-up.
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密闭振荡段塞流中液膜不稳定性和蒸发的数值研究
利用基于增强流体体积(VOF)的数值模拟框架,考虑固体和两相流动区域之间的共轭传热以及沸腾/冷凝引起的相变,研究了在饱和流动沸腾条件下,加热通道内段塞流中流动振荡幅度和频率对液膜蒸发和不稳定形成的影响。针对不同工作流体的不同流动振荡幅值和频率值,进行了一系列参数化数值模拟。对于其中一种工质,还测试了两种不同的通道直径。每种情况下的振荡都是通过在通道入口施加振荡压力边界条件,保持出口压力恒定,在入口和出口之间的初始压降恒定后引起的。在考虑的蒸汽段塞前缘附近的液膜处产生的毛细脊被确定为施加振荡的结果,这些振荡以毛细波的形式向气泡的后端转化。结果表明,地层频率以及所产生脊的几何特征与相应的诱导流振荡频率和幅值直接相关。在气泡形成初期,液膜蒸发随振荡振幅的增大而增强,随振荡频率的增大而减弱。然而,当振荡幅度和通道直径较大时,液体射流会穿透到细长的气泡中,在很多情况下导致气泡破裂。
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