Optimization of atmospheric water harvesting cycles for sustainable water supply in arid regions

被引:0
作者
El-Sharkawy, Ibrahim I. [1 ,2 ]
Haridy, Salah [3 ,4 ]
Hassan, M. [5 ,6 ]
Radwan, Ali [1 ,2 ]
Abd-Elhady, Mahmoud M. [7 ]
机构
[1] Sustainable and Renewable Energy Engineering Department, College of Engineering, University of Sharjah, United Arab Emirates, Sharjah
[2] Mechanical Power Engineering Department, Faculty of Engineering, Mansoura University, El-Mansoura
[3] Department of Industrial Engineering and Engineering Management, College of Engineering, University of Sharjah, United Arab Emirates, Sharjah
[4] Benha Faculty of Engineering, Benha University, Benha
[5] Department of Mechanical Engineering, College of Engineering, Jazan University, Jazan
[6] Department of Mechanical Engineering, Faculty of Energy Engineering, Aswan University, Aswan
[7] Department of Mechanical Engineering, Faculty of Engineering, Damietta University, New Damietta, Damietta
来源
International Journal of Thermofluids | 2024年 / 24卷
关键词
Atmospheric water harvesting; Fresh water; MOF; Optimization; Silica gel;
D O I
10.1016/j.ijft.2024.100977
中图分类号
学科分类号
摘要
Water shortages in arid areas threaten daily human needs. Extracting water from moist air offers a promising solution for communities facing water scarcity in these areas. This study theoretically evaluates the performance of six different adsorbent materials used for atmospheric water harvesting (AWH). A comprehensive parametric analysis is performed to assess the impact of various operating conditions on key performance indicators, including water yield (WY), energy consumption (EC), and cycle thermal efficiency. Additionally, the study evaluates the adsorption uptake of six adsorbents under varying temperatures and relative humidity levels, mapping the estimated adsorption capacities onto a psychrometric chart. This approach helps identify the most suitable adsorbents for different climatic conditions. Moreover, the response surface methodology is applied in this study to develop a regression model, optimize AWH cycle performance using a desirability optimization technique, and evaluate the most significant design factors affecting the WY and cycle efficiency. Optimization is conducted for two adsorbents, silica gel RD and MOF MIL-101(Cr). The results show that MOF MIL-101(Cr) can achieve a water yield of up to 1.08 kgwater/kgads/cycle, alongside a cycle efficiency of 79.3 %, whereas silica gel RD exhibits a water yield of up to 0.429 kgwater/kgads/cycle with an efficiency of 79.6 %. This study is essential for designing efficient AWH systems. © 2024 The Author(s)
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