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Electrodialytic Processes

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Electrodialytic Processes ( electrodialytic-processes )

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Membranes 2020, 10, 221 69 of 72 270. Cipollina, A.; Micale, G.; Tamburini, A.; Tedesco, M.; Gurreri, L.; Veerman, J.; Grasman, S. 5—Reverse electrodialysis: Applications. In Sustainable Energy from Salinity Gradients; Cipollina, A., Micale, G., Eds.; Woodhead Publishing: Cambridge, UK, 2016; pp. 135–180. ISBN 978-0-08-100312-1. 271. Gómez-Coma,L.;Ortiz-Martínez,V.M.;Fallanza,M.;Ortiz,A.;Ibañez,R.;Ortiz,I.Blueenergyforsustainable water reclamation in WWTPs. J. Water Process Eng. 2020, 33, 101020. [CrossRef] 272. Post, J.W.; Goeting, C.H.; Valk, J.; Goinga, S.; Veerman, J.; Hamelers, H.V.M.; Hack, P.J.F.M. Towards implementation of reverse electrodialysis for power generation from salinity gradients. Desalin. Water Treat. 2010, 16, 182–193. [CrossRef] 273. Vermaas,D.A.;Bajracharya,S.;Sales,B.B.;Saakes,M.;Hamelers,B.;Nijmeijer,K.Cleanenergygeneration using capacitive electrodes in reverse electrodialysis. Energy Environ. Sci. 2013, 6, 643–651. [CrossRef] 274. Veerman,J.;Vermaas,D.A.4—Reverseelectrodialysis:Fundamentals.InSustainableEnergyfromSalinity Gradients; Cipollina, A., Micale, G., Eds.; Woodhead Publishing: Cambridge, UK, 2016; pp. 77–133. ISBN 978-0-08-100312-1. 275. Zhu,H.;Xu,W.;Tan,G.;Whiddon,E.;Wang,Y.;Arges,C.G.;Zhu,X.Carbonizedpeatmosselectrodesfor efficient salinity gradient energy recovery in a capacitive concentration flow cell. Electrochim. Acta 2019, 294, 240–248. [CrossRef] 276. Liu, F.; Coronell, O.; Call, D.F. Electricity generation using continuously recirculated flow electrodes in reverse electrodialysis. J. Power Sources 2017, 355, 206–210. [CrossRef] 277. Zhang,B.;Gao,H.;Chen,Y.EnhancedIonicConductivityandPowerGenerationUsingIon-ExchangeResin Beads in a Reverse-Electrodialysis Stack. Environ. Sci. Technol. 2015, 49, 14717–14724. [CrossRef] 278. Lopez, A.M.; Dunsworth, H.; Hestekin, J.A. Reduction of the shadow spacer effect using reverse electrodeionization and its applications in water recycling for hydraulic fracturing operations. Sep. Purif. Technol. 2016, 162, 84–90. [CrossRef] 279. Chen,X.;Jiang,C.;Zhang,Y.;Wang,Y.;Xu,T.StorablehydrogenproductionbyReverseElectro-Electrodialysis (REED). J. Membr. Sci. 2017, 544, 397–405. [CrossRef] 280. Xia,J.;Eigenberger,G.;Strathmann,H.;Nieken,U.Acid-BaseFlowBattery,BasedonReverseElectrodialysis with Bi-Polar Membranes: Stack Experiments. Processes 2020, 8, 99. [CrossRef] 281. Liu,X.;He,M.;Calvani,D.;Qi,H.;Gupta,K.B.S.S.;deGroot,H.J.M.;Sevink,G.J.A.;Buda,F.;Kaiser,U.; Schneider, G.F. Power generation by reverse electrodialysis in a single-layer nanoporous membrane made from core–rim polycyclic aromatic hydrocarbons. Nat. Nanotechnol. 2020, 15, 307–312. [CrossRef] [PubMed] 282. ISO (International Organization for Standardization). 14045: Environmental Management—Ecoefficiency Assessment of Product Systems—Principles, Requirements and Guidelines; International Organization for Standardization: Geneva, Switzerland, 2012. 283. ISO(InternationalOrganizationforStandardization).14044:ManagementEnvironnemental-AnalyseduCyclede vie-Exigences et Lignes Directrices; International Organization for Standardization: Geneva, Switzerland, 2012. 284. Chaudron,C.;Faucher,M.;Bazinet,L.;Margni,M.Thecostisnotenough—Analternativeeco-efficiency approach applied to cranberry de-acidification. J. Clean. Prod. 2019, 232, 391–399. [CrossRef] 285. AlMarzooqi,F.A.;AlGhaferi,A.A.;Saadat,I.;Hilal,N.ApplicationofCapacitiveDeionisationinwater desalination: A review. Desalination 2014, 342, 3–15. [CrossRef] 286. Ho,C.;Wood,J.Design,ConstructionandOperationofa6730gpmRO/CEDISystemforConEdison’sEast River Repowering Project. In Proceedings of the 67th Annual International Water Conference, Pittsburgh, Pennsylvania, 22–26 October 2006; p. 9. 287. Arar, Ö.; Yüksel, Ü.; Kabay, N.; Yüksel, M. Demineralization of geothermal water reverse osmosis (RO) permeate by electrodeionization (EDI) with layered bed configuration. Desalination 2013, 317, 48–54. [CrossRef] 288. Bunani, S.; Arda, M.; Kabay, N. Effect of operational conditions on post-treatment of RO permeate of geothermal water by using electrodeionization (EDI) method. Desalination 2018, 431, 100–105. [CrossRef] 289. Patel, S.K.; Qin, M.; Walker, W.S.; Elimelech, M. Energy Efficiency of Electro-Driven Brackish Water Desalination: Electrodialysis Significantly Outperforms Membrane Capacitive Deionization. Environ. Sci. Technol. 2020, 54, 3663–3677. [CrossRef] 290. Bond,R.;Batchelor,B.;Davis,T.;Klayman,B.ZeroLiquidDischargeDesalinationofBrackishWaterwithan Innovative Form of Electrodialysis: Electrodialysis Metathesis. Fla. Water Resour. J. 2011, 63, 36–44.

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