Techno-Economic Analysis of Atmospheric Water Generation by Hybrid Nanofluids to Mitigate Global Water Scarcity
Abstract
:1. Introduction
2. Methods
2.1. Description of the System
2.2. Thermodynamic Analysis
- All system components are operated under steady-state conditions;
- Kinetic and potential energy changes are negligible;
- Pumps’ and blowers’ energy requirements are negligible;
- The isothermal compressor is operated at an efficiency of 85%;
- The coefficient of performance is 2.5;
- LiCl leaves the scrubber and flash vessel in a saturation state.
2.3. Mathematical Modeling
3. Results and Discussion
3.1. Economic Analysis
3.2. Directions for Future Research
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Values | Parameters | Values |
---|---|---|---|
33 wt.% | 37.65 kJ kg−1 | ||
36.7 wt.% | 0.7 | ||
2.69 kJ kg−1 K−1 | 4.0 | ||
349.15 K | 1.99 kJ kg−1 K−1 | ||
300.15 K | 1.4 | ||
264.35 kJ kg−1 | 2.5 | ||
0.7 | negligible |
AWG Configuration | Desiccant Solution | Sensible Load (kJ/kgH2O) | Latent Load (kJ/kgH2O) | Compressor Load (kJ/kgH2O) | |
---|---|---|---|---|---|
AWG with latent + sensible recovery | LiCl | 342 | 271 | 398 | 1.06 |
AWG with latent + sensible recovery | LiCl + 0.5 vol.% MWCNTs | 175 | 271 | 398 | 0.88 |
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Kode, V.R.; Stuckenberg, D.J.; Went, E.K.; Erickson, O.M.; Plumer, E. Techno-Economic Analysis of Atmospheric Water Generation by Hybrid Nanofluids to Mitigate Global Water Scarcity. Liquids 2022, 2, 183-195. https://doi.org/10.3390/liquids2030012
Kode VR, Stuckenberg DJ, Went EK, Erickson OM, Plumer E. Techno-Economic Analysis of Atmospheric Water Generation by Hybrid Nanofluids to Mitigate Global Water Scarcity. Liquids. 2022; 2(3):183-195. https://doi.org/10.3390/liquids2030012
Chicago/Turabian StyleKode, Venkateswara R., David J. Stuckenberg, Erick K. Went, Owen M. Erickson, and Ethan Plumer. 2022. "Techno-Economic Analysis of Atmospheric Water Generation by Hybrid Nanofluids to Mitigate Global Water Scarcity" Liquids 2, no. 3: 183-195. https://doi.org/10.3390/liquids2030012