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  4. Unified macro-to-microscale method to predict two-phase frictional pressure drops of annular flows
 
research article

Unified macro-to-microscale method to predict two-phase frictional pressure drops of annular flows

Cioncolini, Andrea  
•
Thome, John R.  
•
Lombardi, Carlo
2009
International Journal of Multiphase Flow

The study considers the prediction of pressure gradients in adiabatic gas-liquid annular two-phase flow in the macro-to-microscale range Twenty-four empirical correlations have been tested against an experimental data bank drawn together in this study containing 3908 points for eight different gas-liquid combinations and 22 different tube diameters, covering microscale and macroscale channels from 0.517 to 31.7 mm in diameter. The correlations of Lombardi, Friedel and Baroczy-Chisholm were found to be the best existing methods when considering macroscale data only, while the microscale database was best predicted by the correlations of Lombardi, Muller-Steinhagen and Heck and the homogeneous model with the two-phase viscosity defined according to Cicchitti. A new correlating approach based on the vapor core Weber number, capable of providing physical insight into the flow. was proposed and worked better than any of the existing methods for the macroscale database This new macroscale method was then extended to cover microscale conditions, resulting in one unified method for predicting annular flows from the macroscale to the microscale covering both laminar and turbulent liquid films. The macroscale method optimized for microchannels worked better than any of the other methods considered (C) 2009 Elsevier Ltd. All rights reserved.

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Type
research article
DOI
10.1016/j.ijmultiphaseflow.2009.07.005
Web of Science ID

WOS:000271250900006

Author(s)
Cioncolini, Andrea  
Thome, John R.  
Lombardi, Carlo
Date Issued

2009

Publisher

Elsevier

Published in
International Journal of Multiphase Flow
Volume

35

Issue

12

Start page

1138

End page

1148

Subjects

Annular two-phase flow

•

Pressure gradient

•

Pressure drop

•

Microchannels

•

Boiling Heat-Transfer

•

Gas-Liquid Flow

•

Vertical Tubes

•

Channels

•

Pipes

•

Mixtures

•

Friction

•

Microchannels

•

Phase

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTCM  
Available on Infoscience
March 19, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/48323
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