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Analytical Modelling of a Spray Column Three-Phase Direct Contact Heat Exchanger
Author(s) -
Hameed B. Mahood,
Adel O. Sharif,
Seyed Ali Hosseini,
Rex B. Thorpe
Publication year - 2013
Publication title -
isrn chemical engineering
Language(s) - English
Resource type - Journals
ISSN - 2090-861X
DOI - 10.1155/2013/457805
Subject(s) - mechanics , thermodynamics , heat transfer coefficient , heat transfer , work (physics) , heat exchanger , vaporization , control volume , drop (telecommunication) , materials science , drag coefficient , drag , chemistry , physics , telecommunications , computer science
An analytical model for the temperature distribution of a spray column, three-phase direct contact heat exchanger is developed. So far there were only numerical models available for this process; however to understand the dynamic behaviour of these systems, characteristic models are required. In this work, using cell model configuration and irrotational potential flow approximation characteristic models has been developed for the relative velocity and the drag coefficient of the evaporation swarm of drops in an immiscible liquid, using a convective heat transfer coefficient of those drops included the drop interaction effect, which derived by authors already. Moreover, one-dimensional energy equation was formulated involving the direct contact heat transfer coefficient, the holdup ratio, the drop radius, the relative velocity, and the physical phases properties. In addition, time-dependent drops sizes were taken into account as a function of vaporization ratio inside the drops, while a constant holdup ratio along the column was assumed. Furthermore, the model correlated well against experimental data.

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