Published May 1991 | Version v1
Journal article

Phase distribution during gas-liquid flow through horizontal dividing junctions

  • 1. Amsterdam Univ. (Netherlands). Dept. of Chemical Engineering

Description

A model has been developed for the description and prediction of the phase distribution during gas-liquid flow with small liquid holdup values (εL<0.06) through horizontal tubes with a horizontal branch. This so-called Double Stream Model has been derived from the steady-state macroscopic mechanical energy balance (extended Bernoulli equation), applied to the 'inlet-to-run' stream and the 'inlet-to-branch' stream of both the gas phase and the liquid phase. From the formulation of the Double Stream Model it follows that the branch liquid mass intake fraction λL, which can be calculated according to the procedure given in appendix A, is a function of: the branch gas mass intake fraction λG, the geometry of the junction, and the ratio K of kinetic energies per unit of volume of gas and liquid respectively in the inlet. The value of K, can be calculated from the densities and mass flow rates of gas and liquid, the liquid holdup and the velocity profiles of both gas and liquid in the inlet of the junction. The Double Stream Model has been verified with data obtained from experiments carried out at the University of Amsterdam and at institutes in Tulsa and Manitoba. (orig.)

Additional details

Publishing Information

Journal Title
Nuclear Engineering and Design
Journal Volume
126
Journal Issue
3
Series
Nucl. Eng. Des.
Journal Page Range
293-312
ISSN
0029-5493
CODEN
NEDEA

INIS

Country of Publication
Netherlands
Country of Input or Organization
Netherlands
INIS RN
22080977
Subject category
S42: ENGINEERING;
Descriptors DEI
BERNOULLI LAW; FLOW MODELS; FLOW RATE; FRICTION FACTOR; FROUDE NUMBER; GEOMETRY; MASS TRANSFER; PHASE TRANSFORMATIONS; PIPE JOINTS; REYNOLDS NUMBER; TWO-PHASE FLOW
Descriptors DEC
FLUID FLOW; JOINTS; MATHEMATICAL MODELS; MATHEMATICS