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A flow pattern independent drift flux model based void fraction correlation for a wide range of gas–liquid two phase flow

机译:广泛的气液两相流基于空隙率相关性的独立于流型的漂移通量模型

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The main objective of this study is to present new equations for a flow pattern independent drift flux model based void fraction correlation applicable to gas–liquid two phase flow covering a wide range of fluid combinations and pipe diameters. Two separate sets of equations are proposed for drift flux model parameters namely, the distribution parameter (C_o) and the drift velocity eUgmT. These equations for C_o and U_(gm) are defined as a function of several two phase flow variables and are shown to be in agreement with the two phase flow physics. The underlying data base used for the performance verification of the proposed correlation consists of experimentally measured 8255 data points collected from more than 60 sources that consists of air–water, argon–water, natural gas–water, air–kerosene, air–glycerin, argon–acetone, argon–ethanol, argon–alcohol, refrigerants (R11, R12, R22, R134a, R114, R410A, R290 and R1234yf), steam–water and air–oil fluid combinations. It is shown that the proposed correlation successfully predicts the void fraction with desired accuracy for hydraulic pipe diameters in a range of 0.5–305 mm (circular, annular and rectangular pipe geometries), pipe orientations in a range of -90°≤ h ≤ 90°, liquid viscosity in a range of 0.0001–0.6 Pa-s, system pressure in a range of 0.1–18.1 MPa and two phase Reynolds number in a range of 10 to 5 × 10~6. Moreover, the accuracy of the proposed correlation is also compared with some of the existing top performing correlations based on drift flux and separated flow models. Based on this comparison, it is found that the proposed correlation consistently gives better performance over the entire range of the void fraction (0 < a < 1) and is recommended to predict void fraction without any reference to flow regime maps.
机译:这项研究的主要目的是为基于流动模式的独立漂移通量模型提供基于空隙率相关性的新方程式,该方程适用于气液两相流,涵盖各种流体组合和管道直径。针对漂移通量模型参数,提出了两个独立的方程组,即分布参数(C_o)和漂移速度eUgmT。 C_o和U_(gm)的这些方程式定义为几个两个相流变量的函数,并显示与两个相流物理学一致。用于验证所提出的相关性的基础数据库包括从60多个来源收集的实验测量的8255个数据点,这些数据点包括空气-水,氩气-水,天然气-水,空气-煤油,空气-甘油,氩气-丙酮,氩气-乙醇,氩气-酒精,制冷剂(R11,R12,R22,R134a,R114,R410A,R290和R1234yf),蒸汽-水和空气-油流体的组合。结果表明,所提出的相关性成功地预测了液压管道直径在0.5-305毫米(圆形,环形和矩形管道几何形状),管道方向在-90°≤h≤90范围内的空隙率,并具有所需的精度。 °,液体粘度在0.0001-0.6 Pa-s的范围内,系统压力在0.1-18.1 MPa的范围内,两相雷诺数在10到5×10〜6的范围内。此外,还基于漂移通量和分离流模型,将提出的相关性的准确性与一些现有的性能最高的相关性进行了比较。基于此比较,发现建议的相关性在空隙率的整个范围内始终具有更好的性能(0 <1),建议在不参考流态图的情况下预测空隙率。

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