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|a 660/.28424
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|a TXAM
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| 245 |
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|a Electrochemical membrane technology /
|c edited by Adewale Giwa.
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| 260 |
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|a [S.l.] :
|b Elsevier,
|c 2024.
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| 300 |
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|a 1 online resource
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| 336 |
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|a text
|b txt
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|a online resource
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|a Front Cover -- Electrochemical Membrane Technology -- Copyright Page -- Contents -- List of contributors -- Preface -- 1 Introduction to electrochemical membrane technology -- Abbreviations -- Nomenclature -- 1.1 Introduction -- 1.2 Fundamentals of electrochemical membrane technology -- 1.2.1 Terms and descriptions -- 1.2.1.1 Electrodes -- 1.2.1.2 Ion exchange membrane -- 1.2.1.3 Applied voltage -- 1.2.1.4 Concentration polarization -- 1.2.1.5 Temperature polarization -- 1.2.1.6 Permeate Flux -- 1.2.1.7 Membrane fouling -- 1.2.1.8 Specific energy consumption -- 1.2.1.9 Selectivity
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| 505 |
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|a 1.2.1.10 Voltammetry -- 1.2.1.11 Electrochemical impedance -- 1.2.2 Flux equations -- 1.2.3 Electrochemical equilibrium -- 1.3 Electrochemical membrane systems -- 1.3.1 Electrothermal membranes or Joule heaters -- 1.3.2 Bioelectrochemical systems -- 1.3.2.1 Anode -- 1.3.2.2 Cathode -- 1.3.2.3 BES membranes -- 1.3.3 Electrodialysis and membrane capacitive deionization -- 1.3.3.1 Electrodialysis -- 1.3.3.2 Membrane capacitive deionization -- 1.3.4 Electro-membrane bioreactors -- 1.3.5 Electro-forward osmosis -- 1.3.5.1 Two treatment stages -- 1.3.5.2 Electrodes placed in feed and draw solution
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|a 1.3.5.3 Conductive forward osmosis membranes -- 1.4 Applications of electrochemical membrane technology -- 1.4.1 Water-related applications -- 1.4.1.1 Potable water production -- 1.4.1.2 Ultrapure water production by continuous electro-deionization -- 1.4.1.3 Production of industrial water -- 1.4.2 Energy conversion and storage -- 1.4.2.1 Fuel cells -- 1.4.2.2 Fuel cells for space missions -- 1.4.2.3 Fuel cells for electric vehicles -- 1.4.2.4 Reverse electrodialysis for power generation -- 1.4.3 Resource recovery -- 1.4.3.1 Recovery of heavy metals -- Nickel recovery -- Copper and zinc recovery
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|a Chromium and cadmium recovery -- 1.4.3.2 Acid/base recovery -- 1.4.3.3 Produced water recovery -- 1.4.3.4 Recovery of water in cooling processes -- 1.4.3.5 Recovery of nutrients from wastewater treatment plants -- 1.4.3.6 Table salt production (salt recovery) -- 1.4.4 Chemical synthesis -- 1.4.4.1 Production of caustic soda -- 1.4.4.2 Production of acids and bases -- 1.5 Conclusion and perspectives -- References -- 2 Electrochemical membrane pretreatment and posttreatment processes -- Symbols and abbreviations -- 2.1 Introduction -- 2.2 Pretreatment
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|a 2.2.1 Removal of CaSO4 and CaCO3 for scaling prevention -- 2.2.2 Removal of organic reverse osmosis foulants -- 2.2.3 Removal of total hardness, silicate, turbidity, and fecal coliforms -- 2.2.4 Leachate pretreatment -- 2.3 Posttreatment -- 2.3.1 pH adjustment -- 2.3.2 Boron removal -- 2.3.3 Trace refractory organics -- 2.3.4 Bacteria and viruses -- 2.3.5 Removal of heavy metals -- 2.3.6 Sludge recovery -- 2.3.7 Algae feed posttreatment -- 2.4 Conclusion -- References -- 3 Electro-forward osmosis and electro-reverse osmosis -- Symbols and Abbreviations -- 3.1 Introduction
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| 520 |
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|a Electrochemical Membrane Technology will have a strong impact on electrochemical and membrane separation research in the future and will contribute significantly to academic training and the well-being of human society.
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| 650 |
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|a Membranes (Technology)
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| 650 |
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|a Electrochemistry.
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| 650 |
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6 |
|a Membranes (Technologie)
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| 650 |
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|a Électrochimie.
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| 655 |
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|a Electronic books.
|2 local
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|a ScienceDirect (Online service)
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|c Original
|z 0443140057
|z 9780443140051
|w (OCoLC)1389879256
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|z Connect to the full text of this electronic book
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|a Elsevier ScienceDirect 2026-2027
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|a Texas A&M University
|b College Station
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|h Library of Congress classification
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| 998 |
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f |
|a TP159.M4
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|l Available Online
|