Electrodialytic Processes

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Electrodialytic Processes ( electrodialytic-processes )

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Membranes 2020, 10, 221 63 of 72 145. Trivedi,J.S.;Bhadja,V.;Makwana,B.S.;Jewrajka,S.K.;Chatterjee,U.Sustainableprocessforthepreparation of potassium sulfate by electrodialysis and its concentration and purification by a nanofiltration process. RSC Adv. 2016, 6, 71807–71817. [CrossRef] 146. Jaroszek,H.;Dydo,P.Potassiumnitratesynthesisbyelectrodialysis-metathesis:Theeffectofmembrane type. J. Membr. Sci. 2018, 549, 28–37. [CrossRef] 147. Rottiers,T.;VanderBruggen,B.;Pinoy,L.Synthesisandtransportofimpuritiesinelectrodialysismetathesis: Production of choline dihydrogen phosphate. J. Membr. Sci. 2017, 541, 550–557. [CrossRef] 148. Zhang, X.; Han, X.; Yan, X.; Chen, X.; Jin, Z.; Hu, X. Continuous synthesis of high purity KNO3 through electrodialysis metathesis. Sep. Purif. Technol. 2019, 222, 85–91. [CrossRef] 149. Camacho, L.M.; Fox, J.A.; Ajedegba, J.O. Optimization of electrodialysis metathesis (EDM) desalination using factorial design methodology. Desalination 2017, 403, 136–143. [CrossRef] 150. Rottiers, T.; De la Marche, G.; Van der Bruggen, B.; Pinoy, L. Co-ion fluxes of simple inorganic ions in electrodialysis metathesis and conventional electrodialysis. J. Membr. Sci. 2015, 492, 263–270. [CrossRef] 151. Han, X.; Yan, X.; Wang, X.; Ran, J.; Wu, C.; Zhang, X. Preparation of chloride-free potash fertilizers by electrodialysis metathesis. Sep. Purif. Technol. 2018, 191, 144–152. [CrossRef] 152. Sharma, P.P.; Gahlot, S.; Rajput, A.; Patidar, R.; Kulshrestha, V. Efficient and Cost Effective Way for the Conversion of Potassium Nitrate from Potassium Chloride Using Electrodialysis. ACS Sustain. Chem. Eng. 2016, 4, 3220–3227. [CrossRef] 153. Chen,Q.-B.;Ren,H.;Tian,Z.;Sun,L.;Wang,J.Conversionandpre-concentrationofSWROrejectbrineinto high solubility liquid salts (HSLS) by using electrodialysis metathesis. Sep. Purif. Technol. 2019, 213, 587–598. [CrossRef] 154. Panagopoulos,A.;Haralambous,K.-J.;Loizidou,M.Desalinationbrinedisposalmethodsandtreatment technologies—A review. Sci. Total Environ. 2019, 693, 133545. [CrossRef] 155. Zhang, Y.; Paepen, S.; Pinoy, L.; Meesschaert, B.; Van der Bruggen, B. Selectrodialysis: Fractionation of divalent ions from monovalent ions in a novel electrodialysis stack. Sep. Purif. Technol. 2012, 88, 191–201. [CrossRef] 156. Zhang,Y.;Rottiers,T.;Meesschaert,B.;Pinoy,L.;VanderBruggen,B.WastewaterTreatmentbyRenewable Energy Driven Membrane Processes. In Current Trends and Future Developments on (Bio-) Membranes; Elsevier: Amsterdam, The Netherlands, 2019; pp. 1–19. ISBN 978-0-12-813545-7. 157. Reig,M.;Vecino,X.;Valderrama,C.;Gibert,O.;Cortina,J.L.Applicationofselectrodialysisfortheremoval of as from metallurgical process waters: Recovery of Cu and Zn. Sep. Purif. Technol. 2018, 195, 404–412. [CrossRef] 158. Galama,A.H.;Daubaras,G.;Burheim,O.S.;Rijnaarts,H.H.M.;Post,J.W.Fractioningelectrodialysis:Acurrent induced ion exchange process. Electrochim. Acta 2014, 136, 257–265. [CrossRef] 159. Bazinet,L.;Lamarche,F.;Ippersiel,D.;Mahdavi,B.;Amiot,J.Effectofcationicmembranepermselectivityon the efficiency of skim milk electroacidification. J. Agric. Food Chem. 2000, 48, 2595–2601. [CrossRef] [PubMed] 160. Bazinet, L.; Ippersiel, D.; Montpetit, D.; Mahdavi, B.; Amiot, J.; Lamarche, F. Effect of membrane permselectivity on the fouling of cationic membranes during skim milk electroacidification. J. Membr. Sci. 2000, 174, 97–110. [CrossRef] 161. Tran,A.T.K.;Zhang,Y.;Lin,J.;Mondal,P.;Ye,W.;Meesschaert,B.;Pinoy,L.;VanderBruggen,B.Phosphate pre-concentration from municipal wastewater by selectrodialysis: Effect of competing components. Sep. Purif. Technol. 2015, 141, 38–47. [CrossRef] 162. Liu,R.;Wang,Y.;Wu,G.;Luo,J.;Wang,S.Developmentofaselectiveelectrodialysisfornutrientrecovery and desalination during secondary effluent treatment. Chem. Eng. J. 2017, 322, 224–233. [CrossRef] 163. Tran, A.T.K.; Zhang, Y.; De Corte, D.; Hannes, J.-B.; Ye, W.; Mondal, P.; Jullok, N.; Meesschaert, B.; Pinoy, L.; Van der Bruggen, B. P-recovery as calcium phosphate from wastewater using an integrated selectrodialysis/crystallization process. J. Clean. Prod. 2014, 77, 140–151. [CrossRef] 164. Zhang, Y.; Desmidt, E.; Van Looveren, A.; Pinoy, L.; Meesschaert, B.; Van der Bruggen, B. Phosphate Separation and Recovery from Wastewater by Novel Electrodialysis. Environ. Sci. Technol. 2013, 47, 5888–5895. [CrossRef] 165. Wang, W.; Liu, R.; Tan, M.; Sun, H.; Niu, Q.J.; Xu, T.; Nikonenko, V.V.; Zhang, Y. Evaluation of the ideal selectivity and the performance of selectrodialysis by using TFC ion exchange membranes. J. Membr. Sci. 2019, 582, 236–245. [CrossRef]

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