Published October 1990 | Version v1
Journal article

On the development of a model for predicting phase separation phenomena in dividing two-phase flow

  • 1. McMaster Univ., Hamilton, Ontario (Canada). Dept. of Mechanical Engineering

Description

A model to predict the dividing flow characteristics for annular flow in a T-junction is proposed consisting of mixture and vapour phase continuity equations, two pressure change correlations and a closure relationship. The pressure change from the inlet through the run of the T is modelled by way of a balance of axial momentum at the junction based on a separated flow assumption. The branch pressure change is modelled using a balance of mechanical energy for the branching flow consisting of reversible and irreversible components. The closure relationship links the phase separation characteristics with the junction pressure changes. It involves a balance between pressure and inertia forces within the junction volume defining a dividing surface for each phase between the run and branch flows. The branch quality is then determined using a well-defined inlet flow distribution. The model is capable of predicting the experimentally observed phase separation characteristics from three independent studies of annular/steam-water and air-water flow in dividing T-junctions. (orig.)

Additional details

Publishing Information

Journal Title
Nuclear Engineering and Design
Journal Volume
123
Journal Issue
1
Series
Nucl. Eng. Des.
Journal Page Range
67-75
ISSN
0029-5493
CODEN
NEDEA

Conference

Title
26. ASME/AIChE national heat transfer conference and NHT exposition.
Dates
6-9 Aug 1989.
Place
Philadelphia, PA (USA).

INIS

Country of Publication
Netherlands
Country of Input or Organization
Netherlands
INIS RN
22019355
Subject category
S42: ENGINEERING;
Resource subtype / Literary indicator
Conference
Descriptors DEI
BINARY MIXTURES; COMPARATIVE EVALUATIONS; CONTINUITY EQUATIONS; CORRELATIONS; FLOW RATE; GRAVITATION; MATHEMATICAL MODELS; PHASE TRANSFORMATIONS; PIPE JOINTS; PRESSURE DEPENDENCE; SEPARATION PROCESSES; TWO-PHASE FLOW
Descriptors DEC
DIFFERENTIAL EQUATIONS; DISPERSIONS; EQUATIONS; EVALUATION; FLUID FLOW; JOINTS; MIXTURES; PARTIAL DIFFERENTIAL EQUATIONS