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Main Author: Firouzi, Mahshid
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2506.10270
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author Firouzi, Mahshid
author_facet Firouzi, Mahshid
contents Annular two-phase flow involving upward-moving gas and downward-flowing liquid within a vertical annular geometry is a common configuration in various engineering systems. In such systems, accurately predicting the pressure gradient is essential for understanding flow stability, equipment performance, and system design under counter-current conditions. This paper presents a general mechanistic model to predict the pressure gradient in counter-current annular flow within a vertical annular space. The model accounts for liquid film behaviour, droplet entrainment, and interfacial shear. Model predictions show that the pressure gradient increases with rising gas flow rate. The increase in pressure gradient is attributed to a higher entrainment of liquid droplets into the gas core and enhanced interfacial forces between the phases.
format Preprint
id arxiv_https___arxiv_org_abs_2506_10270
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Modelling of Counter-Current Gas-Liquid Annular Flow in a Vertical Annulus
Firouzi, Mahshid
Fluid Dynamics
Annular two-phase flow involving upward-moving gas and downward-flowing liquid within a vertical annular geometry is a common configuration in various engineering systems. In such systems, accurately predicting the pressure gradient is essential for understanding flow stability, equipment performance, and system design under counter-current conditions. This paper presents a general mechanistic model to predict the pressure gradient in counter-current annular flow within a vertical annular space. The model accounts for liquid film behaviour, droplet entrainment, and interfacial shear. Model predictions show that the pressure gradient increases with rising gas flow rate. The increase in pressure gradient is attributed to a higher entrainment of liquid droplets into the gas core and enhanced interfacial forces between the phases.
title Modelling of Counter-Current Gas-Liquid Annular Flow in a Vertical Annulus
topic Fluid Dynamics
url https://arxiv.org/abs/2506.10270