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Axial Development of Vertical Upward Bubbly Flow in a Minipipe
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Accurate prediction of the interfacial area concentration is essential to successful development of the interfacial transfer terms in the two-fluid model. Mechanistic modeling of the interfacial area concentration entirely relies on accurate local flow measurements over extensive flow conditions and channel geometries. From this point of view, accurate measurements of flow parameters such as void fraction, interfacial area concentration, gas velocity, bubble Sauter mean diameter, and bubble number density were performed by the image processing method at five axial locations in vertical upward bubbly flows using a 1.02 mm-diameter pipe. The frictional pressure loss was also measured by a differential pressure cell. In the experiment, the superficial liquid velocity and the void fraction ranged from 1.02 m/s to 4.89 m/s and from 0.980% to 24.6%, respectively. The obtained data give near complete information on the time-averaged local hydrodynamic parameters of two-phase flow. These data can be used for the development of reliable constitutive relations which reflect the true transfer mechanisms in two-phase flow. As the first step to understand the flow characteristics in mini-channels, the applicability of the existing drift-flux model, interfacial area correlation, and frictional pressure correlation was examined by the data obtained in the mini-channel.
Title: Axial Development of Vertical Upward Bubbly Flow in a Minipipe
Description:
Accurate prediction of the interfacial area concentration is essential to successful development of the interfacial transfer terms in the two-fluid model.
Mechanistic modeling of the interfacial area concentration entirely relies on accurate local flow measurements over extensive flow conditions and channel geometries.
From this point of view, accurate measurements of flow parameters such as void fraction, interfacial area concentration, gas velocity, bubble Sauter mean diameter, and bubble number density were performed by the image processing method at five axial locations in vertical upward bubbly flows using a 1.
02 mm-diameter pipe.
The frictional pressure loss was also measured by a differential pressure cell.
In the experiment, the superficial liquid velocity and the void fraction ranged from 1.
02 m/s to 4.
89 m/s and from 0.
980% to 24.
6%, respectively.
The obtained data give near complete information on the time-averaged local hydrodynamic parameters of two-phase flow.
These data can be used for the development of reliable constitutive relations which reflect the true transfer mechanisms in two-phase flow.
As the first step to understand the flow characteristics in mini-channels, the applicability of the existing drift-flux model, interfacial area correlation, and frictional pressure correlation was examined by the data obtained in the mini-channel.
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