首页> 外文期刊>Experimental Thermal and Fluid Science: International Journal of Experimental Heat Transfer, Thermodynamics, and Fluid Mechanics >Void fraction prediction and one-dimensional drift-flux analysis for horizontal two-phase flow in different pipe sizes
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Void fraction prediction and one-dimensional drift-flux analysis for horizontal two-phase flow in different pipe sizes

机译:不同管道尺寸下水平两相流量的空隙分数预测和一维漂移通量分析

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摘要

The current work seeks to perform the one-dimensional drift-flux analysis for horizontal gas-dispersed flow, to provide closure models for void fraction and to investigate the relative motion between gas and liquid phases. A reliable experimental database for void fraction and bubble velocity is first established over a wide range of flow conditions for bubbly, plug and slug flows in different pipe sizes, due to the limitations of existing database. It is found that the effects of flow regime and pipe size on the drift-flux analysis are insignificant. The drift velocity is found to be negative in horizontal bubbly flow. This is consistent with the conclusion by the alpha-beta analysis, where the slope is found to be greater than one. This indicates that the gas phase moves slower than the liquid phase in horizontal bubbly flow. The analysis also indicates that the horizontal plug and slug flows are relatively more homogeneous than horizontal bubbly flow. As such, the homogeneous flow model can predict the void fraction better for plug and slug flows. The current drift-flux analysis provides closure relations for C-0 and V-gi that can be employed in TRACE, while existing closure relations are developed for vertical flow and cannot be used for horizontal flow prediction. In addition, various void fraction models in literature are evaluated. It is found that the correlations modified from vertical flow generally cannot predict the void fraction well for horizontal flow. The correlations for plug and slug flows by Franca and Lahey, and Lamari underestimate the void fraction, which may be because these correlations are developed for relatively low j(f) conditions, while the current work focuses on conditions at j(f) greater than 2.0 m/s.
机译:目前的工作寻求对水平气体分散的流动进行一维漂移通量分析,以提供空隙分数的闭合模型,并研究气体阶段之间的相对运动。由于现有数据库的限制,首先在宽范围内建立用于空隙分数和气泡速度的可靠实验数据库。结果发现,流动制度和管道尺寸对漂移通量分析的影响是微不足道的。发现漂移速度在水平气泡流中是负的。这与&α和gt的结论一致。 - & beta&分析,发现斜坡大于一个。这表明气相移动比水平气泡流动的液相慢。分析还表明水平插头和裂隙流比水平气泡流相对较为均匀。因此,均匀流动模型可以更好地预测塞子和裂隙流的空隙率。电流漂移通量分析提供C-0的闭合关系和& V-GI&&可以在迹线中使用,而现有的闭合关系是为垂直流动而开发的,并且不能用于水平流量预测。此外,评估文献中的各种空隙率模型。发现从垂直流动修改的相关性通常不能预测水平流量的空隙率。 FRANCA和LAHEY的插头和块状流量的相关性,LAMARI低估了空隙率,这可能是因为这些相关性用于相对较低的J(F)条件,而当前工作侧重于J(F)的条件大于2.0 m / s。

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