A thermodynamic modeling of 2-bed adsorption desalination to promote main equipment performance
Author(s) -
Amirhossein Amirfakhraei,
Jamshid Khorshidi,
Taleb Zarei
Publication year - 2021
Publication title -
journal of water reuse and desalination
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.548
H-Index - 16
eISSN - 2408-9370
pISSN - 2220-1319
DOI - 10.2166/wrd.2021.059
Subject(s) - evaporator , condenser (optics) , adsorption , desalination , low temperature thermal desalination , water vapor , thermodynamics , desorption , mass transfer , process engineering , chemistry , environmental science , chemical engineering , waste management , engineering , heat exchanger , physics , light source , biochemistry , organic chemistry , membrane , optics
Adsorption desalination utilizes the discrete adsorption of the water vapor from the evaporator, and is capable of being discharged to the condenser. This study illuminated an advanced cycle of mass and heat recovery among beds, condensers, and evaporators. Morover, the thermodynamic modeling of adsorption desalination systems (ADS) under different operating conditions was investigated. Furthermore, its effect on the evaporator vapor production and the water vapor adsorption and desorption in the adsorption beds were accounted for. Parenthetically, the mathematical model of ADS thermodynamics was validated with the experimental data. Besides, the advanced ADS modeling was conducted via mass and heat recovery among beds, condensers, and evaporators. In addition to the amount of desalinated water, the time history chart of the equipment applied in the process with and without the thermal and mass recovery is also illustrated. Finally, under such operating conditions, the specific daily water production (SDWP) advanced ADS is 153% higher than conventional ADS.
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