The Role of Renewable Energy Resources in Sustainability of Water Desalination as a Potential Fresh-Water Source: An Updated Review
Abstract
:1. Introduction
2. Technical Aspect
2.1. Desalination Technologies
2.1.1. Phase-Change Desalination
2.1.2. Single-Phase Desalination
2.1.3. Hybrid Desalination
2.2. Renewable Energy and Desalination
2.3. System Configuration
- Initial response time: the response duration time to a change in a power set-point.
- Ramp rate: the change rate of power consumption.
- Settling time: the settle time duration after an operating power set-point change.
- Duration: the period after settling time required to maintain the settled changed power set-point.
- Power capacity: the rated power points for operating the flexible load resources, which vary from kilowatts to megawatts.
- Minimum turn-down: the lowest operating point of the flexible load, below which the flexible load resource must be turned off.
3. Economic Aspect
3.1. Desalination Technology and Plant Size
3.2. Feed-Water
3.3. Target Product Water Quality
3.4. Energy
4. Environmental Aspect
4.1. Intake-Related Environmental Impacts
4.2. Effluent-Related Environmental Impacts
4.3. GHG Emissions of the Desalination Process
5. Social Aspects
5.1. Role of Culture
5.2. Policy-Making
6. Results and Discussion
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Mekonnen, M.M.; Hoekstra, A.Y. Four billion people facing severe water scarcity. Sci. Adv. 2016, 2, e1500323. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- United Nations Environment Programme (UNEP). Options for Decoupling Economic Growth from Water Use and Water Pollution. 2017. Available online: https://www.resourcepanel.org/reports/options-decoupling-economic-growth-water-use-and-water-pollution (accessed on 7 May 2020).
- Katz, D. Book Review: “Let There Be Water: Israel’s Solution for a Water-Starved World”. Water Econ. Policy 2017, 3, 4. [Google Scholar] [CrossRef]
- World Bank. The Role of Desalination in an Increasingly Water-Scarce World; Water Papers; World Bank: Washington, DC, USA, 2019. [Google Scholar] [CrossRef] [Green Version]
- Ahmadi, E.; McLellan, B.; Ogata, S.; Mohammadi-Ivatloo, B.; Tezuka, T. An Integrated Planning Framework for Sustainable Water and Energy Supply. Sustainability 2020, 12, 4295. [Google Scholar] [CrossRef]
- Aliewi, A.; El-Sayed, E.; Akbar, A.; Hadi, K.; Al-Rashed, M. Evaluation of desalination and other strategic management options using multi-criteria decision analysis in Kuwait. Desalination 2017, 413, 40–51. [Google Scholar] [CrossRef]
- ALMAR Water Solution. Desalination Technologies and Economics: CAPEX, OPEX & Technological Game Changers to Come. 2017. Available online: https://www.cmimarseille.org/knowledge-library/desalination-technologies-and-economics-capex-opex-technological-game-changers-0 (accessed on 15 June 2020).
- Khan, J.; Arsalan, M.H. Solar power technologies for sustainable electricity generation: A review. Renew. Sustain. Energy Rev. 2016, 55, 414–425. [Google Scholar] [CrossRef]
- Gude, V. Desalination and sustainability—An appraisal and current perspective. Water Res. 2016, 89, 87–106. [Google Scholar] [CrossRef]
- Alkaisi, A.; Mossad, R.; Sharifian-Barforoush, A. A Review of the Water Desalination Systems Integrated with Renewable Energy. Energy Procedia 2017, 110, 268–274. [Google Scholar] [CrossRef]
- International Energy Agency. In World Energy Outlook 2016; Organisation for Economic Co-Operation and Development OECD: Paris, France, 2016; p. 684. [CrossRef]
- Pakdel, M.J.V.; Sohrabi, F.; Mohammadi-Ivatloo, B. Multi-objective optimization of energy and water management in networked hubs considering transactive energy. J. Clean. Prod. 2020, 2020, 121936. [Google Scholar] [CrossRef]
- Kılkış, Ş. Sustainable development of energy, water and environment systems index for Southeast European cities. J. Clean. Prod. 2016, 130, 222–234. [Google Scholar] [CrossRef]
- Cai, Y.; Cai, J.; Xu, L.; Tan, Q.; Xu, Q. Integrated risk analysis of water–energy nexus systems based on systems dynamics, orthogonal design and copula analysis. Renew. Sustain. Energy Rev. 2019, 99, 125–137. [Google Scholar] [CrossRef]
- Xie, X.; Jia, B.; Han, G.; Wu, S.; Dai, J.; Weinberg, J. A historical data analysis of water–energy nexus in the past 30 years urbanization of Wuxi city, China. Environ. Prog. Sustain. Energy 2017, 37, 46–55. [Google Scholar] [CrossRef]
- Stokes-Draut, J.; Taptich, M.; Kavvada, O.; Horvath, A. Evaluating the electricity intensity of evolving water supply mixes: The case of California’s water network. Environ. Res. Lett. 2017, 12, 11400. [Google Scholar] [CrossRef]
- Sperling, J.B.; Ramaswami, A. Cities and budget-based management of the energy-water-climate nexus: Case studies in transportation policy, infrastructure systems, and urban utility risk management. Environ. Prog. Sustain. Energy 2015, 37, 91–107. [Google Scholar] [CrossRef]
- Stokes, J.; Horvath, A. Energy and air emission effects of water supply. Environ. Sci. Technol. 2009, 43, 2680–2687. [Google Scholar] [CrossRef] [Green Version]
- Valek, A.M.; Sušnik, J.; Grafakos, S. Quantification of the urban water–energy nexus in Mexico City, Mexico, with an assessment of water-system related carbon emissions. Sci. Total Environ. 2017, 590–591, 258–268. [Google Scholar] [CrossRef]
- Bolwig, S.; Bazbauers, G.; Klitkou, A.; Lund, P.D.; Blumberga, A.; Gravelsins, A.; Blumberga, D. Review of modelling energy transitions pathways with application to energy system flexibility. Renew. Sustain. Energy Rev. 2019, 101, 440–452. [Google Scholar] [CrossRef]
- Cherp, A.; Vinichenko, V.; Jewell, J.; Brutschin, E.; Sovacool, B. Integrating techno-economic, socio-technical and political perspectives on national energy transitions: A meta-theoretical framework. Energy Res. Soc. Sci. 2018, 37, 175–190. [Google Scholar] [CrossRef]
- Stercke, S.D.; Mijic, A.; Buytaert, W.; Chaturvedi, V. Modelling the dynamic interactions between London’s water and energy systems from an end-use perspective. Appl. Energy 2018, 230, 615–626. [Google Scholar] [CrossRef]
- Li, Z.; Siddiqi, A.; Anadon, L.D.; Narayanamurti, V. Towards sustainability in water–energy nexus: Ocean energy for seawater desalination. Renew. Sustain. Energy Rev. 2018, 82, 3833–3847. [Google Scholar] [CrossRef] [Green Version]
- Kalogirou, S. Seawater desalination using renewable energy sources. Prog. Energy Combust. Sci. 2005, 31, 242–281. [Google Scholar] [CrossRef]
- Zhang, W.; Mossad, M.; Yazdi, J.S.; Zou, L. A statistical experimental investigation on arsenic removal using capacitive deionization. Desalin. Water Treat. 2016, 57, 3254–3260. [Google Scholar] [CrossRef]
- Zhang, W.; Jia, B. Toward anti-fouling capacitive deionization by using visible-light reduced TiO2/graphene nanocomposites. MRS Commun. 2015, 5, 613–617. [Google Scholar] [CrossRef]
- Tokui, Y.; Moriguchi, H.; Nishi, Y. Comprehensive environmental assessment of seawater desalination plants: Multistage flash distillation and reverse osmosis membrane types in Saudi Arabia. Desalination 2014, 351, 145–150. [Google Scholar] [CrossRef]
- Vakilifard, N.; Anda, M.; Bahri, P.A.; Ho, G. The role of water–energy nexus in optimising water supply systems: Review of techniques and approaches. Renew. Sustain. Energy Rev. 2018, 82, 1424–1432. [Google Scholar] [CrossRef]
- Kharraz, J.; Richards, B.; Schafer, A. Autonomous Solar-Powered Desalination Systems for Remote Communities. In Desalination Sustainability: A Technical, Socioeconomic, and Environmental Approach; Elsevier: Amsterdam, The Netherlands, 2017; pp. 75–125. [Google Scholar] [CrossRef]
- Slocum, A.H.; Haji, M.N.; Trimble, A.Z.; Ferrara, M.; Ghaemsaidi, S.J. Integrated Pumped Hydro Reverse Osmosis systems. Sustain. Energy Technol. Assess. 2016, 18, 80–99. [Google Scholar] [CrossRef] [Green Version]
- Aminfard, S.; Davidson, F.; Webber, M. Multi-layered spatial methodology for assessing the technical and economic viability of using renewable energy to power brackish groundwater desalination. Desalination 2019, 450, 12–20. [Google Scholar] [CrossRef]
- Ramos, A.; Chatzopoulou, M.A.; Guarracino, I.; Freeman, J.; Markides, C.N. Hybrid photovoltaic-thermal solar systems for combined heating, cooling and power provision in the urban environment. Energy Convers. Manag. 2017, 150, 838–850. [Google Scholar] [CrossRef]
- Kang, C.-N.; Cho, S.-H. Thermal and Electrical Energy Mix Optimization(EMO) Method for Real Large-scaled Residential Town Plan. J. Electr. Eng. Technol. 2018, 13, 513–520. [Google Scholar]
- Tarroja, B.; Chiang, F.; AghaKouchak, A.; Samuelsen, S. Assessing future water resource constraints on thermally based renewable energy resources in California. Appl. Energy 2018, 226, 49–60. [Google Scholar] [CrossRef]
- Uche, J.; Acevedo, L.; Cirez, F.; Uson, S.; Martinez-Gracia, A.; Bayod-Rujula, A. Analysis of a domestic trigeneration scheme with hybrid renewable energy sources and desalting techniques. J. Clean. Prod. 2019, 212, 1409–1422. [Google Scholar] [CrossRef] [Green Version]
- Al-Kaabi, A.; Mackey, H. Environmental assessment of intake alternatives for seawater reverse osmosis in the Arabian Gulf. J. Environ. Manag. 2019, 242, 22–30. [Google Scholar] [CrossRef] [PubMed]
- Birge, D.; Berger, A. Transitioning to low-carbon suburbs in hot-arid regions: A case-study of Emirati villas in Abu Dhabi. Build. Environ. 2019, 147, 77–96. [Google Scholar] [CrossRef]
- Ghorbani, N.; Aghahosseini, A.; Breyer, C. Transition towards a 100% Renewable Energy System and the Role of Storage Technologies: A Case Study of Iran. Energy Procedia 2017, 135, 23–36. [Google Scholar] [CrossRef]
- Caldera, U.; Bogdanov, D.; Afanasyeva, S.; Breyer, C. Role of Seawater Desalination in the Management of an Integrated Water and 100% Renewable Energy Based Power Sector in Saudi Arabia. Water 2018, 10, 3. [Google Scholar] [CrossRef] [Green Version]
- Caldera, U.; Breyer, C. Impact of Battery and Water Storage on the Transition to an Integrated 100% Renewable Energy Power System for Saudi Arabia. Energy Procedia 2017, 135, 126–142. [Google Scholar] [CrossRef]
- Abdelshafy, A.M.; Hassan, H.; Jurasz, J. Optimal design of a grid-connected desalination plant powered by renewable energy resources using a hybrid PSO-GWO approach. Energy Convers. Manag. 2018, 173, 331–347. [Google Scholar] [CrossRef]
- Salama, L.; Abdalla, K. Design and analysis of a solar photovoltaic powered seawater reverse osmosis plant in the southern region of the gaza strip. Desalin. Water Treat. 2019, 143, 96–101. [Google Scholar] [CrossRef] [Green Version]
- Li, Q.; Loy-Benitez, J.; Nam, K.; Hwangbo, S.; Rashidi, J.; Yoo, C. Sustainable and reliable design of reverse osmosis desalination with hybrid renewable energy systems through supply chain forecasting using recurrent neural networks. Energy 2019, 178, 277–292. [Google Scholar] [CrossRef]
- Jaime Sadhwani, J.; Sagaseta de Ilurdoz, M. Primary energy consumption in desalination: The case of Gran Canaria. Desalination 2019, 452, 219–229. [Google Scholar] [CrossRef]
- Marini, M.; Palomba, C.; Rizzi, P.; Casti, E.; Marcia, A.; Paderi, M. A multicriteria analysis method as decision-making tool for sustainable desalination: The asinara island case study. Desalin. Water Treat. 2017, 61, 274–283. [Google Scholar] [CrossRef]
- Katz, D.; Shafran, A. Transboundary exchanges of renewable energy and desalinatedwater in the Middle East. Energies 2019, 12, 1455. [Google Scholar] [CrossRef] [Green Version]
- Corsini, A.; Tortora, E.; Cima, E. Preliminary assessment of wave energy use in an off-grid minor island desalination plant. Energy Procedia 2015, 82, 789–796. [Google Scholar] [CrossRef] [Green Version]
- Mentis, D.; Karalis, G.; Zervos, A.; Howells, M.; Taliotis, C.; Bazilian, M.; Rogner, H. Desalination using renewable energy sources on the arid islands of South Aegean Sea. Energy 2016, 94, 262–272. [Google Scholar] [CrossRef]
- Fornarelli, R.; Shahnia, F.; Anda, M.; Bahri, P.A.; Ho, G. Selecting an economically suitable and sustainable solution for a renewable energy-powered water desalination system: A rural Australian case study. Desalination 2018, 435, 128–139. [Google Scholar] [CrossRef]
- Shahabi, M.; McHugh, A.; Anda, M.; Ho, G. Environmental life cycle assessment of seawater reverse osmosis desalination plant powered by renewable energy. Renew. Energy 2014, 67, 53–58. [Google Scholar] [CrossRef] [Green Version]
- Nagaraj, R.; Murthy, D.; Rajput, M. Modeling Renewables Based Hybrid Power System with Desalination Plant Load Using Neural Networks. Distrib. Gener. Altern. Energy J. 2019, 34, 32–46. [Google Scholar] [CrossRef]
- Sadiqa, A.; Gulagi, A.; Breyer, C. Energy transition roadmap towards 100% renewable energy and role of storage technologies for Pakistan by 2050. Energy 2018, 147, 518–533. [Google Scholar] [CrossRef]
- Khan, M.; Rehman, S.; Al-Sulaiman, F. A hybrid renewable energy system as a potential energy source for water desalination using reverse osmosis: A review. Renew. Sustain. Energy Rev. 2018, 97, 456–477. [Google Scholar] [CrossRef]
- Hamilton, J.; Negnevitsky, M.; Wang, X.; Lyden, S. High penetration renewable generation within Australian isolated and remote power systems. Energy 2019, 168, 684–692. [Google Scholar] [CrossRef]
- Vakilifard, N.; Bahri, P.A.; Anda, M.; Ho, G. An interactive planning model for sustainable urban water and energy supply. Appl. Energy 2019, 235, 332–345. [Google Scholar] [CrossRef]
- Cavalcante, R., Jr.; Freitas, M.; da Silva, N.; de Azevedo Filho, F. Sustainable groundwater exploitation aiming at the reduction of water vulnerability in the Brazilian semi-arid region. Energies 2019, 12, 904. [Google Scholar] [CrossRef] [Green Version]
- Gencer, E.; Agrawal, R. Toward supplying food, energy, and water demand: Integrated solar desalination process synthesis with power and hydrogen coproduction. Resour. Conserv. Recycl. 2018, 133, 331–342. [Google Scholar] [CrossRef]
- Gold, G.; Webber, M. The energy-water nexus: An analysis and comparison of various configurations integrating desalination with renewable power. Resources 2015, 4, 227–276. [Google Scholar] [CrossRef] [Green Version]
- Kim, J.; Chen, J.; Garcia, H. Modeling, control, and dynamic performance analysis of a reverse osmosis desalination plant integrated within hybrid energy systems. Energy 2016, 112, 52–66. [Google Scholar] [CrossRef] [Green Version]
- De Barbosa, L.; Bogdanov, D.; Vainikka, P.; Breyer, C. Hydro, wind and solar power as a base for a 100% renewable energy supply for South and Central America. PLoS ONE 2017, 12, e0173820. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mata-Torres, C.; Escobar, R.; Cardemil, J.; Simsek, Y.; Matute, J. Solar polygeneration for electricity production and desalination: Case studies in Venezuela and northern Chile. Renew. Energy 2017, 101, 387–398. [Google Scholar] [CrossRef]
- Aghahosseini, A.; Bogdanov, D.; Barbosa, L.; Breyer, C. Analysing the feasibility of powering the Americas with renewable energy and inter-regional grid interconnections by 2030. Renew. Sustain. Energy Rev. 2019, 105, 187–205. [Google Scholar] [CrossRef]
- Jijakli, K.; Arafat, H.; Kennedy, S.; Mande, P.; Theeyattuparampil, V. How green solar desalination really is? Environmental assessment using life-cycle analysis (LCA) approach. Desalination 2012, 287, 123–131. [Google Scholar] [CrossRef]
- Ng, K.C.; Shahzad, M.W. Sustainable desalination using ocean thermocline energy. Renew. Sustain. Energy Rev. 2018, 82, 240–246. [Google Scholar] [CrossRef]
- Heidary, B.; Hashjin, T.; Ghobadian, B.; Roshandel, R. Optimal integration of small scale hybrid solar wind RO-MSF desalination system. Renew. Energy Focus 2018, 27, 120–134. [Google Scholar] [CrossRef]
- Maleki, A. Design and optimization of autonomous solar-wind-reverse osmosis desalination systems coupling battery and hydrogen energy storage by an improved bee algorithm. Desalination 2018, 435, 221–234. [Google Scholar] [CrossRef]
- Peng, W.; Maleki, A.; Rosen, M.A.; Azarikhah, P. Optimization of a hybrid system for solar-wind-based water desalination by reverse osmosis: Comparison of approaches. Desalination 2018, 442, 16–31. [Google Scholar] [CrossRef]
- Darawsheh, I.; Islam, M.; Banat, F. Experimental characterization of a solar powered MSF desalination process performance. Therm. Sci. Eng. Prog. 2019, 10, 154–162. [Google Scholar] [CrossRef]
- Mostafaeipour, A.; Qolipour, M.; Rezaei, M.; Babaee-Tirkolaee, E. Investigation of off-grid photovoltaic systems for a reverse osmosis desalination system: A case study. Desalination 2019, 454, 91–103. [Google Scholar] [CrossRef]
- Rezk, H.; Sayed, E.; Al-Dhaifallah, M.; Obaid, M.; El-Sayed, A.; Abdelkareem, M.; Olabi, A. Fuel cell as an effective energy storage in reverse osmosis desalination plant powered by photovoltaic system. Energy 2019, 175, 423–433. [Google Scholar] [CrossRef] [Green Version]
- Astolfi, M.; Mazzola, S.; Silva, P.; Macchi, E. A synergic integration of desalination and solar energy systems in stand-alone microgrids. Desalination 2017, 419, 169–180. [Google Scholar] [CrossRef]
- Fernandez-Gonzalez, C.; Dominguez-Ramos, A.; Ibanez, R.; Irabien, A. Sustainability assessment of electrodialysis powered by photovoltaic solar energy for freshwater production. Renew. Sustain. Energy Rev. 2015, 47, 604–615. [Google Scholar] [CrossRef]
- Fernandez Prieto, L.; Rodriguez Rodriguez, G.; Schallenberg Rodiguez, J. Wave energy to power a desalination plant in the north of Gran Canaria Island: Wave resource, socioeconomic and environmental assessment. J. Environ. Manag. 2019, 231, 546–551. [Google Scholar] [CrossRef]
- Karavas, C.S.; Arvanitis, K.; Papadakis, G. Optimal technical and economic configuration of photovoltaic powered reverse osmosis desalination systems operating in autonomous mode. Desalination 2019, 466, 97–106. [Google Scholar] [CrossRef]
- Calise, F.; Macaluso, A.; Piacentino, A.; Vanoli, L. A novel hybrid polygeneration system supplying energy and desalinated water by renewable sources in Pantelleria Island. Energy 2017, 137, 1086–1106. [Google Scholar] [CrossRef]
- Kyriakarakos, G.; Dounis, A.; Arvanitis, K.; Papadakis, G. Design of a Fuzzy Cognitive Maps variable-load energy management system for autonomous PV-reverse osmosis desalination systems: A simulation survey. Appl. Energy 2017, 187, 575–584. [Google Scholar] [CrossRef]
- Li, Q.; Moya, W.; Janghorban Esfahani, I.; Rashidi, J.; Yoo, C. Integration of reverse osmosis desalination with hybrid renewable energy sources and battery storage using electricity supply and demand-driven power pinch analysis. Process. Saf. Environ. Prot. 2017, 111, 795–809. [Google Scholar] [CrossRef]
- Kofinas, P.; Dounis, A.I.; Vouros, G.A. Fuzzy Q-Learning for multi-agent decentralized energy management in microgrids. Appl. Energy 2018, 219, 53–67. [Google Scholar] [CrossRef]
- Giudici, F.; Castelletti, A.; Garofalo, E.; Giuliani, M.; Maier, H. Dynamic, multi-objective optimal design and operation of water–energy systems for small, off-grid islands. Appl. Energy 2019, 250, 605–616. [Google Scholar] [CrossRef]
- Meschede, H. Increased utilisation of renewable energies through demand response in the water supply sector—A case study. Energy 2019, 175, 810–817. [Google Scholar] [CrossRef]
- Padron, I.; Avila, D.; Marichal, G.; Rodriguez, J. Assessment of Hybrid Renewable Energy Systems to supplied energy to Autonomous Desalination Systems in two islands of the Canary Archipelago. Renew. Sustain. Energy Rev. 2019, 101, 221–230. [Google Scholar] [CrossRef]
- Trapanese, M.; Frazitta, V. Desalination in small islands: The case study of Lampedusa (Italy). In Proceedings of the OCEANS 2018 MTS/IEEE Charleston, Charleston, SC, USA, 22–25 October 2019. [Google Scholar] [CrossRef]
- El-Kady, M.; El-Shibini, F. Desalination in Egypt and the future application in supplementary irrigation. Desalination 2001, 136, 63–72. [Google Scholar] [CrossRef]
- Gulagi, A.; Bogdanov, D.; Breyer, C. The role of storage technologies in energy transition pathways towards achieving a fully sustainable energy system for India. J. Energy Storage 2018, 17, 525–539. [Google Scholar] [CrossRef]
- Alghoul, M.; Poovanaesvaran, P.; Mohammed, M.; Fadhil, A.; Muftah, A.; Alkilani, M.; Sopian, K. Design and experimental performance of brackish water reverse osmosis desalination unit powered by 2 kW photovoltaic system. Renew. Energy 2016, 93, 101–114. [Google Scholar] [CrossRef]
- Park, C.D.; Lim, B.J.; Chung, K.Y.; Lee, S.S.; Kim, Y.M. Experimental evaluation of hybrid solar still using waste heat. Desalination 2016, 379, 1–9. [Google Scholar] [CrossRef]
- Thompson, M.; Baker, R.; Yong, N. Technical and economic evaluation of an off-grid solar desalination system in Myanmar. J. Water Supply: Res. Technol.-AQUA 2016, 65, 354–360. [Google Scholar] [CrossRef]
- Gokcek, M. Integration of hybrid power (wind-photovoltaic-diesel-battery) and seawater reverse osmosis systems for small-scale desalination applications. Desalination 2018, 435, 210–220. [Google Scholar] [CrossRef]
- Liu, W.; Wang, D.; Yu, X.; Wang, W.; Lan, Y.; Wang, X.; Yu, J. Multi-objective planning research on micro energy network considering desalination. Energy Procedia 2019, 158, 6502–6507. [Google Scholar] [CrossRef]
- Ye, B.; Jiang, J.; Cang, Y. Technical and economic feasibility analysis of an energy and fresh water coupling model for an isolated island. Energy Procedia 2019, 158, 6373–6377. [Google Scholar] [CrossRef]
- Stuber, M. Optimal design of fossil-solar hybrid thermal desalination for saline agricultural drainage water reuse. Renew. Energy 2016, 89, 552–563. [Google Scholar] [CrossRef]
- Elimelech, M.; Phillip, W.A. The Future of Seawater Desalination: Energy, Technology, and the Environment. Science 2011, 333, 712–717. [Google Scholar] [CrossRef]
- Caldera, U.; Bogdanov, D.; Breyer, C. Local cost of seawater RO desalination based on solar PV and wind energy: A global estimate. Desalination 2016, 385, 207–216. [Google Scholar] [CrossRef]
- Ahmadi, E.; McLellan, B.; Ogata, S.; Tezuka, T. Modelling the water–energy-nexus to assist the design of economic and regulatory support instruments towards sustainability. In Proceedings of the Chemeca 2019: Chemical Engineering Megatrends and Elements, Sydney, Australia, 29 September–2 October 2019; p. 550. [Google Scholar]
- Freire-Gormaly, M.; Bilton, A.M. Experimental quantification of the effect of intermittent operation on membrane performance of solar powered reverse osmosis desalination systems. Desalination 2018, 435, 188–197. [Google Scholar] [CrossRef]
- Freire-Gormaly, M.; Bilton, A. Design of photovoltaic powered reverse osmosis desalination systems considering membrane fouling caused by intermittent operation. Renew. Energy 2019, 135, 108–121. [Google Scholar] [CrossRef]
- Xue, Y.; Ge, Z.; Yang, L.; Du, X. Peak shaving performance of coal-fired power generating unit integrated with multi-effect distillation seawater desalination. Appl. Energy 2019, 250, 175–184. [Google Scholar] [CrossRef]
- Gude, V. Geothermal source potential for water desalination—Current status and future perspective. Renew. Sustain. Energy Rev. 2016, 57, 1038–1065. [Google Scholar] [CrossRef]
- Giwa, A.; Akther, N.; Housani, A.; Haris, S.; Hasan, S. Recent advances in humidification dehumidification (HDH) desalination processes: Improved designs and productivity. Renew. Sustain. Energy Rev. 2016, 57, 929–944. [Google Scholar] [CrossRef]
- Voutchkov, N. Desalination Project Cost Estimating and Management; CRC Press: Boca Raton, FL, USA, 2018. [Google Scholar]
- Gopi, G.; Arthanareeswaran, G.; Ismail, A.F. Perspective of renewable desalination by using membrane distillation. Chem. Eng. Res. Des. 2019, 144, 520–537. [Google Scholar] [CrossRef]
- Gude, V. Energy storage for desalination processes powered by renewable energy and waste heat sources. Appl. Energy 2015, 137, 877–898. [Google Scholar] [CrossRef]
- Bhojwani, S.; Topolski, K.; Mukherjee, R.; Sengupta, D.; El-Halwagi, M. Technology review and data analysis for cost assessment of water treatment systems. Sci. Total Environ. 2019, 651, 2749–2761. [Google Scholar] [CrossRef]
- Solomon, A.; Bogdanov, D.; Breyer, C. Solar driven net zero emission electricity supply with negligible carbon cost: Israel as a case study for Sun Belt countries. Energy 2018, 155, 87–104. [Google Scholar] [CrossRef]
- Molinos-Senante, M.; González, D. Evaluation of the economics of desalination by integrating greenhouse gas emission costs: An empirical application for Chile. Renew. Energy 2019, 133, 1327–1337. [Google Scholar] [CrossRef]
- Zhou, Y.; Tol, R.S.J. Evaluating the costs of desalination and water transport. Water Resour. Res. 2005, 41, 10. [Google Scholar] [CrossRef]
- Gude, G. Renewable Energy Powered Desalination Handbook: Application and Thermodynamics; Butterworth-Heinemann: Oxford, UK, 2018. [Google Scholar]
- World Bank. Beyond Scarcity: Water Security in the Middle East and North Africa; World Bank Group: Washington, DC, USA, 2017. [Google Scholar]
- Negewo, B.D. Renewable Energy Desalination: An Emerging Solution to Close the Water Gap in the Middle East and North Africa; World Bank Publications: Washington, DC, USA, 2012. [Google Scholar]
- Parrillo, V.N. Encyclopedia of Social Problems; Sage publications: Southend Oaks, CA, USA, 2008. [Google Scholar]
- Rodriquez, M. California Environmental Protection Agency, Water Quality Control Plan Ocean Waters of California. 2015. Available online: https://www.waterboards.ca.gov/water_issues/programs/ocean/docs/cop2015.pdf (accessed on 7 May 2020).
- Meerganz von Medeazza, G. “Direct” and socially-induced environmental impacts of desalination. Desalination 2005, 185, 57–70. [Google Scholar] [CrossRef]
- Grubert, E.; Stillwell, A.; Webber, M. Where does solar-aided seawater desalination make sense? A method for identifying sustainable sites. Desalination 2014, 339, 10–17. [Google Scholar] [CrossRef] [Green Version]
- Van der Merwe, R.; Lattemann, S.; Amy, G. A review of environmental governance and its effects on concentrate discharge from desalination plants in the Kingdom of Saudi Arabia. Desalin. Water Treat. 2013, 51, 262–272. [Google Scholar] [CrossRef]
- Raluy, R.; Serra, L.; Uche, J. Life cycle assessment of desalination technologies integrated with renewable energies. Desalination 2005, 183, 81–93. [Google Scholar] [CrossRef]
- Fang, A.J.; Newell, J.P.; Cousins, J.J. The energy and emissions footprint of water supply for Southern California. Environ. Res. Lett. 2015, 10, 114002. [Google Scholar] [CrossRef]
- Chhipi-Shrestha, G.; Hewage, K.; Sadiq, R. water–energy-Carbon Nexus Modeling for Urban Water Systems: System Dynamics Approach. J. Water Resour. Plan. Manag. 2017, 143, 04017016. [Google Scholar] [CrossRef]
- Werner, M.; Schafer, A. Social aspects of a solar-powered desalination unit for remote Australian communities. Desalination 2007, 203, 375–393. [Google Scholar] [CrossRef]
- Von Medeazza, G. Water desalination as a long-term sustainable solution to alleviate global freshwater scarcity? A North-South approach. Desalination 2004, 169, 287–301. [Google Scholar] [CrossRef]
- Giwa, A.; Dindi, A. An investigation of the feasibility of proposed solutions for water sustainability and security in water-stressed environment. J. Clean. Prod. 2017, 165, 721–733. [Google Scholar] [CrossRef]
- Lam, K.L.; Lant, P.A.; O’Brien, K.R.; Kenway, S.J. Comparison of water–energy trajectories of two major regions experiencing water shortage. J. Environ. Manag. 2016, 181, 403–412. [Google Scholar] [CrossRef] [Green Version]
- Brent, A.; Mokheseng, M.; Amigun, B.; Tazvinga, H.; Musango, J. Systems dynamics modelling to assess the sustainability of renewable energy technologies in developing countries. WIT Trans. Ecol. Environ. 2011, 143, 13–24. [Google Scholar] [CrossRef] [Green Version]
- Gibbons, J.; Papapetrou, M.; Epp, C. Assessment of EU policy: Implications for the implementation of autonomous desalination units powered by renewable resources in the Mediterranean region. Desalination 2008, 220, 422–430. [Google Scholar] [CrossRef]
- Sozen, S.; Teksoy, S.; Papapetrou, M. Assessment of institutional and policy conditions in Turkey: Implications for the implementation of autonomous desalination systems. Desalination 2008, 220, 441–454. [Google Scholar] [CrossRef]
- Siddiqi, A.; Kajenthira, A.; Anadon, L.D. Bridging decision networks for integrated water and energy planning. Energy Strategy Rev. 2013, 2, 46–58. [Google Scholar] [CrossRef]
- Foteinis, S.; Tsoutsos, T. Strategies to improve sustainability and offset the initial high capital expenditure of wave energy converters (WECs). Renew. Sustain. Energy Rev. 2017, 70, 775–785. [Google Scholar] [CrossRef]
- Azhar, M.; Rizvi, G.; Dincer, I. Integration of renewable energy based multigeneration system with desalination. Desalination 2017, 404, 72–78. [Google Scholar] [CrossRef]
- Sahin, O.; Siems, R.; Richards, R.; Helfer, F.; Stewart, R. Examining the potential for energy-positive bulk-water infrastructure to provide long-term urban water security: A systems approach. J. Clean. Prod. 2017, 143, 557–566. [Google Scholar] [CrossRef] [Green Version]
- Gulagi, A.; Choudhary, P.; Bogdanov, D.; Breyer, C. Electricity system based on 100% renewable energy for India and SAARC. PLoS ONE 2017, 12, e0180611. [Google Scholar] [CrossRef] [Green Version]
- Mollahosseini, A.; Abdelrasoul, A.; Sheibany, S.; Amini, M.; Salestan, S. Renewable energy-driven desalination opportunities—A case study. J. Environ. Manag. 2019, 239, 187–197. [Google Scholar] [CrossRef]
- Artz, G.M.; Hoque, M.; Orazem, P.F.; Shah, U. Urban-Rural Wage Gaps, Inefficient Labor Allocations, and GDP per Capita, Iowa State University Digital Repository. 2016. Available online: https://lib.dr.iastate.edu/cgi/viewcontent.cgi?article=1006&context=econ_workingpapers (accessed on 24 June 2020).
- Mossad, M.; Zhang, W.; Zou, L. Using capacitive deionisation for inland brackish groundwater desalination in a remote location. Desalination 2013, 308, 154–160. [Google Scholar] [CrossRef]
- Zhang, W.; Mossad, M.; Zou, L. A study of the long-term operation of capacitive deionisation in inland brackish water desalination. Desalination 2013, 320, 80–85. [Google Scholar] [CrossRef]
- Jia, B.; Zhang, W. Preparation and application of electrodes in capacitive deionization (CDI): A state-of-art review. Nanoscale Res. Lett. 2016, 11, 64. [Google Scholar] [CrossRef] [Green Version]
Model Type | Energy Resource | Desalination Technology | Scale | Ref. | |||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Solar Electricity | Solar Thermal | Wind Turbine | Geothermal | Ocean Energy | Hydro Power | Diesel Generator | Hydrogen | ||||
On-grid | 🗸 | - | - | - | - | - | - | - | RO | Full plant | [36] |
🗸 | - | - | - | - | - | - | - | RO | Pilot scale | [37] | |
🗸 | - | - | - | - | - | - | - | RO | Full plant | [38] | |
🗸 | - | 🗸 | - | - | - | - | - | RO and MED | Full plant | [39] | |
🗸 | - | - | - | - | - | - | - | RO | Full plant | [40] | |
🗸 | - | 🗸 | - | - | - | 🗸 | 🗸 | RO | Pilot scale | [41] | |
🗸 | - | - | - | - | - | - | - | RO | Pilot scale | [42] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [43] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Full plant | [44] | |
🗸 | - | 🗸 | - | - | - | - | - | RO, MVC | Pilot scale | [45] | |
🗸 | 🗸 | - | - | - | - | - | - | RO | Full plant | [46] | |
- | - | - | - | 🗸 | - | - | - | RO | Pilot scale | [47] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [48] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [49] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Full plant | [50] | |
🗸 | - | 🗸 | 🗸 | - | 🗸 | - | - | RO | Pilot scale | [51] | |
🗸 | - | - | - | - | - | - | - | RO | Full plant | [52] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Full plant | [53] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [54] | |
🗸 | - | - | - | - | - | - | - | RO | Full plant | [55] | |
🗸 | - | - | - | - | - | - | - | RO | Lab scale | [56] | |
🗸 | 🗸 | - | - | - | - | - | - | RO | Full plant | [18] | |
🗸 | 🗸 | - | - | - | - | - | 🗸 | MSF | lab scale | [57] | |
🗸 | - | 🗸 | - | - | - | - | 🗸 | RO | Full plant | [31] | |
🗸 | 🗸(Water preheating) | 🗸 | - | - | - | - | - | RO | Lab scale | [58] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [59] | |
🗸 | - | 🗸 | - | - | 🗸 | - | - | RO | Full plant | [60] | |
- | 🗸 | - | - | - | - | - | - | MED | Full plant | [61] | |
🗸 | - | 🗸 | 🗸 | - | 🗸 | - | - | MED | Full plant | [62] | |
🗸 | 🗸 | 🗸 | - | - | - | - | - | RO and MED | Full plant | [5] | |
Total number | 28 | 6 | 17 | 2 | 1 | 3 | 1 | 3 | 31 | ||
Solar electricity | Solar thermal | Wind turbine | Geothermal | Ocean energy | Hydro power | Diesel generator | Hydrogen | ||||
Off-grid | 🗸 | - | - | - | - | - | - | - | RO, Solar-still | Lab scale | [63] |
- | - | - | - | 🗸 | - | - | - | MED | Lab scale | [64] | |
🗸 | 🗸 | 🗸 | - | - | - | - | - | RO, MSF | Lab scale | [65] | |
🗸 | - | 🗸 | - | - | - | - | 🗸 | RO | Lab scale | [66] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Lab scale | [67] | |
- | 🗸 | - | - | - | - | - | - | MSF | Lab scale | [68] | |
🗸 | - | - | - | - | - | - | - | RO | Pilot scale | [69] | |
🗸 | - | - | - | - | - | - | 🗸 | RO | Lab scale | [70] | |
🗸 | 🗸 | - | - | - | - | 🗸 | - | RO, MED | Lab scale | [71] | |
🗸 | - | - | - | - | - | - | - | ED | Full plant | [72] | |
- | - | - | - | 🗸 | - | - | - | RO | Full plant | [73] | |
🗸 | - | - | - | - | - | - | - | RO | Pilot scale | [74] | |
- | 🗸 | - | 🗸 | - | - | - | - | MED | Pilot scale | [75] | |
🗸 | - | - | - | - | - | - | - | RO | Lab scale | [76] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [77] | |
🗸 | - | - | - | - | - | 🗸 | 🗸 | RO | Lab scale | [78] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [79] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [80] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [81] | |
🗸 | - | 🗸 | - | - | - | - | - | RO, MD | Pilot scale | [35] | |
🗸 | - | 🗸 | - | 🗸 | - | - | - | RO | Pilot scale | [82] | |
- | - | - | - | - | - | - | - | Solar-still | Full plant | [83] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Full plant | [84] | |
🗸 | - | - | - | - | - | - | - | RO | Lab scale | [85] | |
- | 🗸 | - | - | - | - | 🗸 | - | MED, Solar-still | Lab scale | [86] | |
🗸 | - | - | - | - | - | - | - | RO | Full plant | [87] | |
🗸 | - | 🗸 | - | - | - | 🗸 | - | RO | Pilot scale | [88] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [89] | |
🗸 | - | 🗸 | - | - | - | - | - | RO | Pilot scale | [90] | |
- | 🗸 | - | - | - | - | - | - | MED | Full plant | [91] | |
Total number | 23 | 6 | 13 | 1 | 3 | 0 | 4 | 3 | 30 | ||
On-grid | Off-grid | RO | MED | MSF | Solar still | lab scale | Pilot scale | Full plant | |||
Number of studies/Total studies | 30/60 | 30/60 | 56/60 | 9/60 | 3/60 | 3/60 | 15 /60 | 23/60 | 22/60 |
Energy Sector Description | Water Sector Description | Type of Analysis | Ref. | ||
---|---|---|---|---|---|
Model Type | Energy Type | Application | Scale | ||
Centralized | Electricity | Potable | Small | Theoretical | [49] |
Electricity | Potable | Small | Theoretical | [43] | |
Electricity | Potable and Agriculture | Small | Experimental | [56] | |
Electricity | Potable | Large | Theoretical | [36] | |
Electricity | Potable | Large | Experimental | [50] | |
Electricity | Potable | Large | Theoretical | [38] | |
Electricity | Potable | Small | Theoretical | [45] | |
Electricity | Potable | Large | Theoretical | [46] | |
Electricity | Potable | Large | Theoretical | [18] | |
Electricity | Potable | Large | Theoretical | [39] | |
Electricity and thermal | Potable | Large | Theoretical | [57] | |
Electricity | Potable | Large | Theoretical | [84] | |
Electricity | Potable | Large | Theoretical | [31] | |
Electricity | Potable | Small | Theoretical | [74] | |
Electricity | Potable | Small | Theoretical | [47] | |
Electricity and thermal | Potable | Large | Theoretical | [58] | |
Electricity | Potable | Small | Experimental | [85] | |
Electricity | Overall | Large | Theoretical | [93] | |
Electricity | Potable | Large | Theoretical | [59] | |
Electricity | Potable | Small to Large | Theoretical | [48] | |
Thermal | Potable | Small | Experimental | [48] | |
Thermal | Agriculture | Large | Pilot-project | [91] | |
Electricity | Potable | Large | Theoretical | [40] | |
Electricity | Potable | Large | Theoretical | [60] | |
Thermal | Potable | Large | Theoretical | [61] | |
Electricity | Potable | Large | Theoretical | [41] | |
Electricity and thermal | Potable | Laboratory scale | Experimental | [65] | |
Electricity | Potable | Large | Theoretical | [52] | |
Electricity | Potable | Small | Theoretical | [79] | |
Electricity | Potable | Small | Theoretical | [42] | |
Electricity | Potable | Small | Theoretical | [82] | |
Electricity and thermal | Overall | Mega | Theoretical | [94] | |
Decentralized | Electricity | Potable | Small | Theoretical | [63] |
Electricity | Agriculture and Potable | Small | Theoretical | [73] | |
Solar-stills | Agriculture | Small | Theoretical | [83] | |
Electricity | Potable | Small | Theoretical | [87] | |
Electricity | Potable | Small | Theoretical | [67] | |
Electricity | Potable | Small | Theoretical | [89] | |
Electricity | Potable | Small | Theoretical | [80] | |
Electricity | Potable | Small | Theoretical | [69] | |
Electricity | Potable | Small | Theoretical | [81] | |
Electricity | Agriculture | Small | Theoretical | [70] | |
Electricity | Potable | Small | Experimental | [35] | |
Electricity | Potable | Small to large | Theoretical | [55] | |
Decentralized and Centralized | Electricity and thermal | Potable | Small to large | Theoretical | [5] |
Thermal | Agriculture | Small | Experimental | ||
Number of studies/Total studies | 8/45 | 7/45 | 25/45 | 7/45 |
Technology | Total Cost USD/m | Amortised Capital (%) | Electrical Energy (%) | Thermal Energy (%) | Membranes (%) | Labor (%) | Chemicals (%) | Miscellaneous (%) |
---|---|---|---|---|---|---|---|---|
RO | 0.6–2.86 | 38.2 | 31.6 | - | 3.9 | 13.2 | 9.2 | 3.9 |
MED | 1.12–1.5 | 34.9 | 7.2 | 37.3 | - | 9.6 | 9.6 | 1.2 |
MSF | 1.02–1.74 | 39.3 | 18.7 | 29 | - | 7.5 | 4.7 | 0.9 |
Technology | H/DH | MSF | MED | VC | RO | FD | ED | MD |
---|---|---|---|---|---|---|---|---|
Thermal energy KWh/m3 | 45–100 | 7.5–11 | 4–7 | 0 (MVC) 51.9–63 (TVC) | - | 8–24 | - | 30–240 |
Electricity KWh/m3 | - | 2.5–3.5 | 1.5–2.5 | 7–15 (MVC) 1.6–1.80 (TVC) | 1.8–6 | - | 2.46–5.5 | 0.6–1.8 |
Parameters | 2016 | Within 5 Years | Within 20 Years |
---|---|---|---|
Cost of product water (USD/m3) | 0.8–3 | 0.6–1.0 | 0.3–0.5 |
Electricity requirement (KWh/m3) | 3–4 | 1.8–3.2 | 1.1–2.4 |
Membrane productivity (m3/membrane) | 28–47 | 35–55 | 95–120 |
City, Country | Distance (km) | Elevation (m) | Transport Cost (USD/m) |
---|---|---|---|
Beijing, China | 135 | 100 | 1.1 |
Mexico City, Mexico | 225 | 2500 | 2.4 |
Yemen, Sana | 135 | 2500 | 2.2 |
Mexico City, Mexico | 280 | 320 | 2.4 |
Crateus, Brazil | 240 | 350 | 1.3 |
Zaragoza, Spain | 163 | 500 | 1.4 |
Riyadh, Saudi Arabia | 350 | 750 | 1.6 |
New Delhi, India | 1050 | 500 | 1.9 |
Horizon | Description of the System | Nexus | Approach | Analysis | Uncertainty Level | Geographical Scale | Ref. |
---|---|---|---|---|---|---|---|
Review/ Understanding | • Applying ocean-based energy generation as an energy resource for desalination plant | Technical and Environmental | Optimization | Qualitative | - | - | [23] |
• Sustainable solutions to meet future water demand in the UAE | Social | Discussion | Qualitative | - | National | [120] | |
• Investigation the policies regarding to autonomous desalination in the EU | Social | Discussion | Qualitative | - | Regional | [123] | |
• Investigation the policies regarding to autonomous desalination in Turkey | Social | Discussion | Qualitative | - | National | [124] | |
• Evaluating the social acceptance of RO units powering by solar electricity using surveys | Social | Discussion | Qualitative | - | Rural | [118] | |
• Proposing a framework to evaluate water-energy polices | Policy | Discussion | Qualitative | - | Regional | [122] | |
• Studying decentralized solar-powered desalination systems in remote regions | Sustainability | Review | Qualitative | - | - | [29] | |
• Integrating wave energy converters with desalination technologies for commercialization of wave energy | Technical and Economic | Review | Qualitative | - | Island (remote) | [126] | |
• Investigating the potential and development of ocean-based power generation for desalination systems | Sustainability | Review | Qualitative | - | - | [23] | |
Short-Term/ Operation | • Integration of MSF desalination, solar thermal power, and hydrogen production processes to achieve synergy | Technical | Process simulation | Quantitative | Deterministic | City | [57] |
• Co-locating pumped hydro storage with reverse osmosis desalination plant | Technical and Environmental | Optimization | Quantitative | Deterministic | City | [30] | |
• Operating an MED desalination process by ocean energy (thermal energy which is harnessed from seawater temperature gradient) | Technical | Process simulation | Quantitative | Deterministic | Stand-alone | [64] | |
• Proposing a tool for operating a reverse electrodialysis system to produce power (salinity gradient power) | Technical | Process simulation | Quantitative | Deterministic | Laboratory scale | [51] | |
• Studying optimal climate conditions for operating small-scaled RO desalination units coupled with PV systems | Technical | Experimental | Quantitative | Deterministic | Laboratory scale | [85] | |
• Studying the capability of an RO desalination plant to manage the variability of renewable energy production | Technical | Process simulation | Quantitative | Deterministic | City | [59] | |
• Studying the performance of a combination of the MED process with solar still desalination powered by solar thermal and waste heat | Technical | Experimental | Quantitative | Deterministic | Laboratory scale | [86] | |
• Operating an MSF desalination unit powered with a hybrid energy system including solar, geothermal, and ocean thermal energy | Technical | Process design | Quantitative | Deterministic | - | [127] | |
• Modeling the integration of MED unit with solar and geothermal resources | Technical | Process simulation | Quantitative | Deterministic | Island | [40] | |
• Introducing an energy management and control system for an RO desalination connected to a DC micro-grid (PV-Battery) | Technical and Economic | Fuzzy optimization | Quantitative | Deterministic | Island | [76] | |
• Using concentrating solar power for a MED process and electricity production as a hybrid system | Technical and Economic | Process design | Quantitative | Deterministic | City | [61] | |
• Evaluating the optimal operation of an MSF desalination system powered by solar thermal energy | Technical and Economic | Experimental | Quantitative | Deterministic | Laboratory scale | [68] | |
• Considering membrane fouling during intermittent operation in designing PV powered RO installations | Technical and Economic | Process simulation | Quantitative | Deterministic | Laboratory scale | [96] | |
• Shifting load using desalination demand as a flexible load for increasing the share of renewable resources in the energy system | Technical and Economic | Optimization | Quantitative | Deterministic | Island | [54] | |
• Evaluating the potential of water desalination and distribution for load shifting in an off-grid remote energy system | Technical | Linear optimization | Quantitative | Monte-Carlo | Island | [80] | |
Long-Term/ Planning | • Design a cost-effective energy system for small desalination plant | Economic | Optimization | Quantitative | Deterministic | Rural | [49] |
• Coupling PV and CSP with RO and MED plants to minimize the cost and to maximize the RE penetration in an island | Economic | Optimization | Quantitative | Deterministic | Island | [71] | |
• Investigating the potential of RO plants to meet future water demand | Economic-Environmental | System dynamics | Quantitative | Deterministic | State | [128] | |
• Proposing scenarios to achieve an electricity system with net-zero emission | Economic | LP Optimization | Quantitative | Deterministic | National | [104] | |
• Minimizing the total cost and GHG emissions of a hybrid energy system coupled with an RO plant | Economic and Environmental | Multi-object Optimization | Quantitative | Stochastic | - | [43] | |
• Evaluating life cycle GHG emissions of different desalination technologies coupling with renewables | Environmental | LCA | Quantitative | Deterministic | - | [115] | |
• Evaluating the environmental impacts of different desalination technologies coupling with solar resources | Environmental | LCA | Quantitative | Deterministic | Rural | [63] | |
• Considering carbon tax as an external cost of desalination process | Economic | - | Quantitative | Deterministic | National | [105] | |
• Identifying regions that are suitable for deployment of RO units coupled with solar energy supplies | Economic and Technical | GIS | Quantitative | Deterministic | Global | [113] | |
• Evaluating the potential of wave energy resources to provide the power demand of desalination plants | Environmental and Technical | - | Quantitative | Deterministic | Island | [73] | |
• Evaluating the environmental impacts for open-intake pretreatment and subsurface intake pretreatment of RO desalination plants | Environmental | LCA | Quantitative | Deterministic | City | [36] | |
• Evaluating the environmental impacts RO desalination plants powered by hybrid renewable energy resources and the electricity grid | Environmental | LCA | Quantitative | Deterministic | City | [50] | |
• Studying the scenarios to achieve 100% RE in Iran by considering electricity demand of RO desalination by 2050 | Economic | LP Optimization | Quantitative | Deterministic | National | [38] | |
• Designing a sustainable desalination system powered with renewable energy resources | Sustainability | AHP | Quantitative | Deterministic | Island | [45] | |
• Evaluating the feasibility of exchanging desalinated water with renewable electricity | Technical and Economic | Optimization | Quantitative | Deterministic | Multi-national | [46] | |
• Evaluating the GHG emissions of different water sources | Environmental | LCA | Quantitative | Deterministic | City | [18] | |
• Investigation on the economic impacts and CO2 footprint of desalination units | Environmental and Economic | Triple-I light | Quantitative | Deterministic | City | [27] | |
• Investigating the role of the desalination sector to achieve a 100 percent renewable energy system in Saudi Arabia | Technical and Economic | linear optimization | Quantitative | Deterministic | National | [39,40] | |
• Achieving 100 percent renewable energy in India by considering desalination demand | Technical and Economic | linear optimization | Quantitative | Deterministic | National | [84] | |
• Proposing a spatial model to assess potential technical and economically viable site locations for RO desalination facilities powered by renewables | Technical and Economic | Multi-criteria | Quantitative | Deterministic | Regional | [31] | |
• Finding the optimal size and configuration of a small-scaled RO desalination unit coupled with a PV system (including battery storage and water storage) | Technical and Economic | Fuzzy Optimization | Quantitative | Deterministic | Island | [74] | |
• Technical feasibility of using RO desalination units powered by wave energy as an alternative for imported water | Technical | Optimization | Quantitative | Deterministic | Island | [47] | |
• Calculating the optimal size of renewable energy supply (wind turbine and PV) for RO desalination units with a solar preheating water system | Technical and Economic | Optimization | Quantitative | Deterministic | Regional | [58] | |
• Estimating the cost of providing water demand using renewable-powered RO desalination plants for regions facing water scarcity in 2030 | Economic | Linear Optimization | Quantitative | Deterministic | Global | [93] | |
• Developing a tool for sizing RO desalination plants powered by renewables units | Economic | Optimization | Quantitative | Deterministic | Island | [48] | |
• Investigating the economic feasibility of desalinating agriculture drainage water using the MED process powered by solar thermal resources | Economic | Optimization | Quantitative | Deterministic | Region | [91] | |
• Evaluating the technical and economic feasibility of RO desalination units powered by distributed PV-battery systems in Myanmar | Technical and Economic | Optimization | Quantitative | Deterministic | National | [87] | |
• Considering desalination energy demand in the transition to a 100 percent renewable system in South and Central America | Technical and Economic | Optimization | Quantitative | Deterministic | Multi-National | [60] | |
• Studying the benefits of the integration of RO desalination energy demand in the transition to a 100 percent renewable energy system for India and the South Asian Association for Regional Cooperation | Technical and Economic | Optimization | Quantitative | Deterministic | Multi-National | [129] | |
• Minimizing the cost and CO2 emissions of an energy system including PV, wind turbine, hydrogen electrolyzer, battery, and hydrogen storage coupled with an RO desalination unit | Economic and Environmental | Heuristic optimization | Quantitative | Deterministic | City | [41] | |
• Investigating the role of RO desalination demand in the transition to a 100 percent solar electricity system in Pakistan by 2050 | Economic | Linear optimization | Quantitative | Deterministic | National | [52] | |
• Proposing a dynamic approach to consider the operation of an RO plant in sizing the PV and wind turbine energy system | Technical and Economic | Multi-objective optimization | Quantitative | Deterministic | Island | [79] | |
• Forecasting CO2 emissions from different energy systems providing desalination power demand for an Island by 2020 | Environmental | Scenario-based | Quantitative | Deterministic | Island | [44] | |
• Estimating the potential amount of desalination water powering with solar and wind electricity in Iran | Technical and Economic | Scenario-based | Quantitative | Deterministic | National | [130] | |
• Investigating the technical and economic feasibility of RO units powered by off-grid PV systems in remote case studies in Iran | Technical and Economic | Fuzzy optimization | Quantitative | Deterministic | Rural | [69] | |
• Evaluating on-grid decentralized or distributed renewable-powered desalination systems for sustainable water and energy supply planning | Sustainability | Hybrid approach | Quantitative | Deterministic | National | [5] | |
• Comparing a centralized water desalination system to a distributed desalination system powered by solar electricity resources in Australia | Technical and Economic | Optimization | Quantitative | Deterministic | National | [55] | |
Technical | Environmental | Economic | Social | Qualitative | Quantitative | ||
Number of studies/ Total studies | 38/61 | 10/61 | 37/61 | 10/61 | 9/61 | 52/61 |
Sustainability Aspect | Decentralized Desalination System | Centralized Desalination System |
---|---|---|
Technical | • The technology is under development • High potential to compensate the fluctuation due to VRE • High reliability | • The technology is mature • Needs energy storage to operate with VRE |
Economic | • High capital cost • Low maintenance cost • Saving cost from water distribution and transfer | • Low capital cost • High maintenance cost |
Environmental | • Less thermal pollution • No need for diffuser to decrease the salinity of effluent • Multiple site locations to decrease the environmental impacts • Difficult to monitor the effluent (regulations) | • Impacts on marine ecosystem due to thermal pollution • Need for diffuser to decrease the salinity of effluent • Producing water in one location • It is practical to monitor effluent (regulations) |
Social | • High reliability and security • Wealth distribution and equity | • Has less of a financial burden on society |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ahmadi, E.; McLellan, B.; Mohammadi-Ivatloo, B.; Tezuka, T. The Role of Renewable Energy Resources in Sustainability of Water Desalination as a Potential Fresh-Water Source: An Updated Review. Sustainability 2020, 12, 5233. https://doi.org/10.3390/su12135233
Ahmadi E, McLellan B, Mohammadi-Ivatloo B, Tezuka T. The Role of Renewable Energy Resources in Sustainability of Water Desalination as a Potential Fresh-Water Source: An Updated Review. Sustainability. 2020; 12(13):5233. https://doi.org/10.3390/su12135233
Chicago/Turabian StyleAhmadi, Esmaeil, Benjamin McLellan, Behnam Mohammadi-Ivatloo, and Tetsuo Tezuka. 2020. "The Role of Renewable Energy Resources in Sustainability of Water Desalination as a Potential Fresh-Water Source: An Updated Review" Sustainability 12, no. 13: 5233. https://doi.org/10.3390/su12135233
APA StyleAhmadi, E., McLellan, B., Mohammadi-Ivatloo, B., & Tezuka, T. (2020). The Role of Renewable Energy Resources in Sustainability of Water Desalination as a Potential Fresh-Water Source: An Updated Review. Sustainability, 12(13), 5233. https://doi.org/10.3390/su12135233