LAPSE:2019.0473
Published Article
LAPSE:2019.0473
Integration of Process Modeling, Design, and Optimization with an Experimental Study of a Solar-Driven Humidification and Dehumidification Desalination System
Mohammed Alghamdi, Faissal Abdel-Hady, A. K. Mazher, Abdulrahim Alzahrani
April 8, 2019
Solar energy is becoming a promising source of heat and power for electrical generation and desalination plants. In this work, an integrated study of modeling, optimization, and experimental work is undertaken for a parabolic trough concentrator combined with a humidification and dehumidification desalination unit. The objective is to study the design performance and economic feasibility of a solar-driven desalination system. The design involves the circulation of a closed loop of synthetic blend motor oil in the concentrators and the desalination unit heat input section. The air circulation in the humidification and dehumidification unit operates in a closed loop, where the circulating water runs during the daytime and requires only makeup feed water to maintain the humidifier water level. Energy losses are reduced by minimizing the waste of treated streams. The process is environmentally friendly, since no significant chemical treatment is required. Design, construction, and operation are performed, and the system is analyzed at different circulating oil and air flow rates to obtain the optimum operating conditions. A case study in Saudi Arabia is carried out. The study reveals unit capability of producing 24.31 kg/day at a circulating air rate of 0.0631 kg/s and oil circulation rate of 0.0983 kg/s. The tradeoff between productivity, gain output ratio, and production cost revealed a unit cost of 12.54 US$/m³. The impact of the circulating water temperature has been tracked and shown to positively influence the process productivity. At a high productivity rate, the humidifier efficiency was found to be 69.1%, and the thermal efficiency was determined to be 82.94%. The efficiency of the parabolic trough collectors improved with the closed loop oil circulation, and the highest performance was achieved from noon until 14:00 p.m.
Keywords
dehumidification, desalination, design, experimental, humidification
Suggested Citation
Alghamdi M, Abdel-Hady F, Mazher AK, Alzahrani A. Integration of Process Modeling, Design, and Optimization with an Experimental Study of a Solar-Driven Humidification and Dehumidification Desalination System. (2019). LAPSE:2019.0473
Author Affiliations
Alghamdi M: Chemical and Materials Engineering Department, King Abdulaziz University, Jeddah 21589, Saudi Arabia
Abdel-Hady F: Chemical and Materials Engineering Department, King Abdulaziz University, Jeddah 21589, Saudi Arabia [ORCID]
Mazher AK: Nuclear Engineering Department, King Abdulaziz University, Jeddah 21589, Saudi Arabia
Alzahrani A: Chemical and Materials Engineering Department, King Abdulaziz University, Jeddah 21589, Saudi Arabia
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Journal Name
Processes
Volume
6
Issue
9
Article Number
E163
Year
2018
Publication Date
2018-09-07
Published Version
ISSN
2227-9717
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Original Submission
Other Meta
PII: pr6090163, Publication Type: Journal Article
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LAPSE:2019.0473
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doi:10.3390/pr6090163
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Apr 8, 2019
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CC BY 4.0
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Calvin Tsay
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