Review and Modeling of Two-Phase Frictional Pressure Gradient at Microgravity Conditions

Author:

Awad M. M.1,Muzychka Y. S.2

Affiliation:

1. Mansoura University, Mansoura, Egypt

2. Memorial University of Newfoundland, St. John’s, NL, Canada

Abstract

First, a detailed review of two-phase frictional pressure gradient at microgravity conditions is presented. Then, a simple semi-theoretical method for calculating two-phase frictional pressure gradient at microgravity conditions using asymptotic analysis is presented. Two-phase frictional pressure gradient is expressed in terms of the asymptotic single-phase frictional pressure gradients for liquid and gas flowing alone. In the present model, the two-phase frictional pressure gradient for x ≅ 0 is nearly identical to single-phase liquid frictional pressure gradient. Also, the two-phase frictional pressure gradient for x ≅ 1 is nearly identical to single-phase gas frictional pressure gradient. The proposed model can be transformed into either a two-phase frictional multiplier for liquid flowing alone (φl2) or two-phase frictional multiplier for gas flowing alone (φg2) as a function of the Lockhart-Martinelli parameter, X. Comparison of the asymptotic model with experimental data at microgravity conditions is presented.

Publisher

ASMEDC

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1. Soft-ANN based correlation for air-water two-phase flow pressure drop estimation in a vertical mini-channel;Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science;2021-08-26

2. Experimental Investigation of the Effect of Gravity on Heat Transfer and Instability in Parallel Mini-channel Heat Exchanger;Microgravity Science and Technology;2018-06-26

3. Flow boiling in tube under normal gravity and microgravity conditions;International Journal of Multiphase Flow;2014-04

4. Prediction of wall friction factor in horizontal annular flow using the asymptotic method;Annals of Nuclear Energy;2014-03

5. Correlations for two-phase friction pressure drop under microgravity;International Journal of Heat and Mass Transfer;2013-01

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