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  4. Brackish water desalination using reverse osmosis and capacitive deionization at the water-energy nexus
 
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Brackish water desalination using reverse osmosis and capacitive deionization at the water-energy nexus

Journal
Water Research
Journal Volume
183
Date Issued
2020
Author(s)
SHU-YUAN PAN  
Haddad, A.Z.
Kumar, A.
Wang, S.-W.
DOI
10.1016/j.watres.2020.116064
URI
https://www.scopus.com/inward/record.url?eid=2-s2.0-85088860283&partnerID=40&md5=ee87b2ce58b7c835e138bfd41f6e7cb4
https://scholars.lib.ntu.edu.tw/handle/123456789/548266
Abstract
In this article, we present a critical review of the reported performance of reverse osmosis (RO) and capacitive deionization (CDI) for brackish water (salinity < 5.0 g/L) desalination from the aspects of engineering, energy, economy and environment. We first illustrate the criteria and the key performance indicators to evaluate the performance of brackish water desalination. We then systematically summarize technological information of RO and CDI, focusing on the effect of key parameters on desalination performance, as well as energy-water efficiency, economic costs and environmental impacts (including carbon footprint). We provide in-depth discussion on the interconnectivity between desalination and energy, and the trade-off between kinetics and energetics for RO and CDI as critical factors for comparison. We also critique the results of technical-economic assessment for RO and CDI plants in the context of large-scale deployment, with focus on lifetime-oriented consideration to total costs, balance between energy efficiency and clean water production, and pretreatment/post-treatment requirements. Finally, we illustrate the challenges and opportunities for future brackish water desalination, including hybridization for energy-efficient brackish water desalination, co-removal of specific components in brackish water, and sustainable brine management with innovative utilization. Our study reveals that both RO and CDI should play important roles in water reclamation and resource recovery from brackish water, especially for inland cities or rural regions. © 2020 Elsevier Ltd
Subjects
Brine utilization; Carbon footprint; Electrokinetics; Energy consumption; Hybridization; Water productivity
SDGs

[SDGs]SDG6

[SDGs]SDG7

[SDGs]SDG11

[SDGs]SDG13

Other Subjects
Benchmarking; Carbon footprint; Costs; Economic and social effects; Energy efficiency; Environmental impact; Hydroelectric power plants; Reverse osmosis; Wastewater reclamation; Water filtration; Brackish water desalinations; Capacitive deionization; Economic assessments; Interconnectivity; Key performance indicators; Large-scale deployment; Resource recovery; Specific component; Desalination; brackish water; salt water; water; brackish water; desalination; energy efficiency; innovation; pollutant removal; reaction kinetics; reverse osmosis; trade-off; carbon footprint; climate change; controlled study; cost effectiveness analysis; desalination; energy consumption; energy resource; energy transfer; environmental impact; human; hybridization; hydropower; mathematical model; priority journal; recycling; reverse osmosis; Review; salinity; water supply; filtration; osmosis; water management; Filtration; Osmosis; Saline Waters; Water; Water Purification
Type
review

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