Impacts of variable operating conditions on flux and energy efficiency of air gap membrane distillation for brine management

Bibliographic Information
Authors: Mohamed E.S.; Azzam A.M.; Mohamed A.T.; Ragab A.; Ahmed G.; Sheta O.; Kamel M.S.; Seif E.; El-Batt T.
Journal: Scientific Reports
Publisher: Nature Research
Publication Date: 6 April 2026
Volume / Issue: Volume 16 / Issue 1
Article No.: 12028
ISSN: 20452322
DOI: 10.1038/s41598-026-36621-z
Scopus: View on Scopus
PubMed: 41942458
Document Type: Article
Access: All Open Access; Gold Open Access; Green Open Access
Authors and Affiliations
Mohamed E.S., Institute of Global Health and Human Ecology, The American University in Cairo, New Cairo, Egypt; Azzam A.M., Institute of Global Health and Human Ecology, The American University in Cairo, New Cairo, Egypt, Environmental Research Department, Theodor Bilharz Research Institute (TBRI), Giza, Egypt; Mohamed A.T., Department of Environmental Engineering, The American University in Cairo, New Cairo, Egypt; Ragab A., Department of Computer Science and Engineering, The American University in Cairo, New Cairo, Egypt; Ahmed G., Department of Computer Science and Engineering, The American University in Cairo, New Cairo, Egypt; Sheta O., Department of Computer Science and Engineering, The American University in Cairo, New Cairo, Egypt; Kamel M.S., Institute of Global Health and Human Ecology, The American University in Cairo, New Cairo, Egypt; Seif E., Department of Environmental Engineering, The American University in Cairo, New Cairo, Egypt; El-Batt T., Department of Computer Science and Engineering, The American University in Cairo, New Cairo, Egypt
Abstract
In this research paper, we investigate the efficiency of brine treatment using Air Gap Membrane Distillation (AGMD) under varying operational conditions. The study evaluates the performance of the AGMD by examining key metrics, i.e., flux, Salt Rejection Rate (SRR), and Specific Thermal Energy Consumption (STEC) across different flow rates starting from 0.5 L/min to 3.0 L/min and brine salinities ranging from 45 to 65 g/L. To ensure a comprehensive assessment, the membrane was subjected to Scanning Electron Microscopy (SEM) imaging and Fourier-Transform Infrared Spectroscopy (FTIR), both before and after 72 h of testing, providing insights into morphological changes and fouling. Flux varied between 4.7 and 14.0 kg/h/m2, SRR ranged from 80 to 99.9%, and STEC values were lowest at 1.0 L/min. Optimal performance was observed at 2.0 L/min with brine concentration up to 55 g/L, achieving flux of 9.8 kg/h/m2, SRR > 98%, and STEC between 28,793 and 46,069 kWh/m2. SEM and FTIR analysis further highlight the impact of operational parameters on membrane integrity and durability. Experiments were limited to six-hour runs, sufficient for initial fouling dynamics but not long-term degradation. This study offers valuable contributions to the optimization of AGMD processes, aiming to enhance the efficiency and sustainability of desalination technologies. © The Author(s) 2026.
Keywords
Air gap membrane distillation; Brine management; Membrane characterization; Thermal energy efficiency; air; article; distillation; energy; membrane
Citation Information
Scopus Citations: 0
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