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AuthorPakari, Ali
AuthorGhani, Saud
Available date2024-11-18T04:33:19Z
Publication Date2022
Publication NameEnergies
ResourceScopus
Identifierhttp://dx.doi.org/10.3390/en15051758
ISSN19961073
URIhttp://hdl.handle.net/10576/61237
AbstractIn this study, using response surface methodology and central composite design, regression models were developed relating 12 input factors to the supply air outlet humidity ratio and temperature of 4-fluid internally-cooled liquid desiccant dehumidifiers. The selected factors are supply air inlet temperature, supply air inlet humidity ratio, exhaust air inlet temperature, exhaust air inlet humidity ratio, liquid desiccant inlet temperature, liquid desiccant concentration, liquid desiccant flow rate, supply air mass flow rate, the ratio of exhaust to supply air mass flow rate, the thickness of the channel, the channel length, and the channel width of the dehumidifier. The designed experiments were performed using a numerical two-dimensional heat and mass transfer model of the liquid desiccant dehumidifier. The numerical model predicted the measured values of the supply air outlet humidity ratio within 6.7%. The regression model's predictions of the supply air outlet humidity ratio matched the numerical model's predictions and measured values within 4.5% and 7.9%, respectively. The results showed that the input factors with the most significant effect on the dehumidifying process in order of significance from high to low are as follows: supply air inlet humidity ratio, liquid desiccant concertation, length of channels, and width of channels. The developed regression models provide a straightforward means for performance prediction and optimization of internally-cooled liquid desiccant dehumidifiers.
SponsorFunding: This work was supported by the Qatar National Research Fund under its National Priorities Research Program (grant number NPRP11S-0114-180295). The contents of this work are solely the responsibility of the authors and do not necessarily represent the official views of the Qatar National Research Fund.
Languageen
PublisherMDPI
SubjectCCD
Dehumidification
Heat and mass transfer model
Liquid desiccant
RSM
Statistical model
TitleRegression Models for Performance Prediction of Internally-Cooled Liquid Desiccant Dehumidifiers
TypeArticle
Issue Number5
Volume Number15
dc.accessType Open Access


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