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Flow regime independent, high resolution multi-field modelling of near-horizontal gas-liquid flows in pipelines

机译:独立于流态的管道中近水平气液流的高分辨率多场建模

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For fully-developed two-phase flows, maps that correlate experimental and semi-empirical expressions for flow regimes are widely used. For calculations of the various important two-phase flow parameters, this in turn requires correlations for various interfacial and wall interaction effects that are flow regime dependent. For many systems of practical interest, however, the evolution of flow regimes (such as slug flow in oil-gas pipelines) is of interest because the development lengths are long and flow regimes may change in regions where pipeline inclination changes due to the terrain. It is shown here that for slow transients in near-horizontal pipes, the one-dimensional multi-field model, when solved with sufficient resolution, does not require flow regimes to be specified or flow regime dependent closure relationships. The formulation predicts the development of flow regimes and various flow parameters without the need for maps, or the need to change closure relationships. To accomplish this, the model includes four fields, i.e. continuous and dispersed liquid, continuous and dispersed gas, as well as a set of appropriate closure relationships from the literature. For the main application considered here, i.e. slow transients in oil-gas pipelines, order of magnitude analyses indicate that certain inertial terms in the model are very small and can be neglected in comparison to the others. Advantage is taken of this to simplify both the structure of the mathematical problem and the solution procedure, which is sufficiently accurate that mass is conserved for each of the four fields. Furthermore, the calculations require high spatial resolution, so a fast, easily-parallelizable numerical procedure has been applied. The results indicate that the development of certain flow regimes, including transitions from bubbly to stratified flow and vice versa, slug flow including slug frequency and length, and the evolution of these parameters along a pipeline are well predicted by the model when compared to experimental data. As part of the validation it is also shown that the model predicts, without need to change closure relationships, flow regimes in fully-developed near-horizontal two-phase flows in good agreement with existing flow regime maps. This suggests that for slow transients in flows for which one-dimensional effects dominate, predictions can be made without requirements for flow regime maps and closure relationships that depend on them. (C) 2008 Elsevier Ltd. All rights reserved.
机译:对于完全发展的两相流,广泛使用了与流态的实验和半经验表达式相关的映射。为了计算各种重要的两相流动参数,这反过来需要各种依赖于流动状态的界面和壁相互作用的相关性。然而,对于许多具有实际意义的系统而言,流动方式(例如油气管道中的塞流)的演变是令人感兴趣的,因为开发长度较长,并且在因地形而导致管道倾斜度变化的区域中,流动方式可能会发生变化。此处显示,对于近水平管道中的缓慢瞬变,一维多场模型在以足够的分辨率求解时,不需要指定流动状态或取决于流动状态的闭合关系。该公式可预测流态和各种流参数的发展,而无需绘制地图或更改封闭关系。为此,该模型包括四个领域,即连续和分散的液体,连续和分散的气体,以及文献中的一组适当的闭合关系。对于此处考虑的主要应用(即,油气管道中的缓慢瞬变),数量级分析表明,模型中的某些惯性项很小,与其他惯性项相比可以忽略不计。利用这一点简化了数学问题的结构和求解过程,这是足够精确的,以至于对于四个领域中的每一个领域,质量都是守恒的。此外,计算需要较高的空间分辨率,因此已应用了快速,易于并行化的数值程序。结果表明,与实验数据相比,该模型很好地预测了某些流态的发展,包括从气泡流向分层流的转变,反之亦然,包括段塞频率和长度的段塞流以及沿管道的这些参数的演变。 。作为验证的一部分,该模型还表明,该模型无需更改闭合关系即可预测完全开发的近水平两相流中的流态,并与现有流态图完全吻合。这表明,对于一维效应起主导作用的缓慢的瞬态流动,可以进行预测,而无需依赖于它们的流态图和闭合关系。 (C)2008 Elsevier Ltd.保留所有权利。

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