Analysis and identification of gas-liquid two-phase flow pattern based on multi-scale power spectral entropy and pseudo-image encoding
Author:
Funder
National Natural Science Foundation of China
Publisher
Elsevier BV
Subject
General Energy,Pollution,Mechanical Engineering,Building and Construction,Electrical and Electronic Engineering,Industrial and Manufacturing Engineering,Civil and Structural Engineering
Reference63 articles.
1. Slug length for high viscosity oil-gas flow in horizontal pipes: experiments and prediction;Baba;J Petrol Sci Eng,2018
2. Investigation of mass and heat transfer transitional processes of water droplets in wet gas flow in the framework of energy recovery technologies for biofuel combustion and flue gas removal;Miliauskas;Energy,2019
3. Numerical and experimental study of two-phase flow uniformity in channels of parallel PEM fuel cells with modified Z-type flow-fields;Ashrafi;Energy,2018
4. Gas/particle two-phase flow characteristics of a down-fired 350MWe supercritical utility boiler at different tertiary air ratios;Liu;Energy,2016
5. Flow pattern identification and measurement techniques in gas-liquid-liquid three-phase flow: a review;Yaqub;Flow Meas Instrum,2020
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