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Performance evaluation on regeneration of high-salt solutions used in air conditioning systems by electrodialysis.

Authors :
Sun, Bo
Zhang, Muxing
Huang, Shifang
Su, Wei
Zhou, Junming
Zhang, Xiaosong
Source :
Journal of Membrane Science. Jul2019, Vol. 582, p224-235. 12p.
Publication Year :
2019

Abstract

Electrodialysis (ED) is an alternative to the conventional thermal regeneration of high-salt solutions used in air conditioning systems (ACSs). In this work, a simplified mathematical model was developed to describe the solute and water transport. The solute hydration number and free water content were proposed to characterize the solute hydration properties. A laboratory-scale ED regeneration system was set up to investigate the regeneration performance of three kinds of high-salt solutions (aqueous LiCl, LiBr and CaCl 2 solutions) at various initial concentrations and current densities. The results demonstrate good agreement between numerical and experimental findings. The initial concentration and applied current density have great impacts on ED performance. Firstly, higher initial concentration generally results in lower membrane permselectivity, current efficiency, solute and water transfer rate, and higher energy consumption. Secondly, higher current density has a positive effect on solute and water transport but leads to more energy consumption. The solute hydration number and free water content both decrease with increasing initial concentration. The appropriate mass concentrations of 15%, 25% and 15% are respectively suggested for aqueous LiCl, LiBr and CaCl 2 solutions when applying ED in ACSs to ensure responsible performance. • Performance of regeneration of high-salt solutions was experimentally investigated. • Idea based on the solute hydration number and free water content was proposed. • Simplified model was established to describe the solute and water transport. • Solute hydration number and free water content were quantified based on model. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03767388
Volume :
582
Database :
Academic Search Index
Journal :
Journal of Membrane Science
Publication Type :
Academic Journal
Accession number :
136271566
Full Text :
https://doi.org/10.1016/j.memsci.2019.04.004