Development in wastewater treatment research and processes : advances in industrial wastewater treatment technologies : removal of contaminants and recovery of resources /
Cellular Lipid in Health and Disease presents a comprehensive and systematic coverage of the various roles lipids play in human biology.This book is organized in four parts covering the foundational concepts of lipid biology all the way to the therapeutic opportunities they present. The first part i...
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| Format: | eBook |
| Language: | English |
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[S.l.] :
Elsevier,
2023.
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| Online Access: | Connect to the full text of this electronic book |
Table of Contents:
- Front Cover
- Development in Wastewater Treatment Research and Processes
- Development in Wastewater Treatment Research and Processes: Advances in Industrial Wastewater Treatment Technologies: Removal ...
- Copyright
- Contents
- List of contributors
- 1
- Removal of heavy metals from wastewater using bioremedial techniques
- 1. Introduction
- 2. Heavy metals: toxicity, fate, and transport
- 3. Microbial bioremediation
- 3.1 Microbial biotransformation of heavy metals
- 3.2 Microbial uptake of heavy metals
- 3.2.1 Bioaccumulation
- 3.2.2 Biosorption
- 4. Bacterial bioremediation of heavy metals
- 5. Fungal bioremediation of heavy metals
- 6. Algal bioremediation of heavy metals
- 7. Conclusion
- References
- 2
- Electrocoagulation process for wastewater treatment: applications, challenges, and prospects
- 1. Introduction
- 2. Coagulation processes
- 2.1 Chemical coagulation
- 2.2 Electrocoagulation
- 3. Mechanism of electrocoagulation process
- 4. Factors affecting the electrocoagulation process
- 4.1 Effect of current density
- 4.2 Effect of electrode spacing
- 4.3 Effect of electrode configuration
- 5. Optimization and modeling of electrocoagulation treatment process
- 6. Application of Electrocoagulation process for the removal of wastewater contaminants
- 6.1 Organic contaminants
- 6.2 Inorganic contaminants
- 6.3 Emerging contaminants
- 6.4 Oil and emulsion
- 7. Challenges facing the electrocoagulation technique
- 8. Techno-economic analysis of the electrocoagulation process
- 9. Conclusion and future perspective
- References
- 3
- Phosphorus recovery from municipal wastewater treatment plants
- 1. Introduction
- 2. Chemical processes of phosphorus recovery
- 2.1 Recovery from the liquid phase
- 2.1.1 Chemical precipitation
- 2.1.2 Adsorption
- 2.2 Recovery from sludge phase.
- 2.2.1 Wet-chemical treatment
- 2.2.1.1 Alkali treatment
- 2.2.1.1 Alkali treatment
- 2.2.1.2 Acid treatment
- 2.2.1.2 Acid treatment
- 2.2.2 Thermo-chemical treatment
- 3. Enhanced biological phosphorus removal (EBPR)
- 3.1 Microbial community of EBPR
- 3.1.1 Polyphosphate accumulating organisms (PAO)
- 3.1.2 Glycogen accumulating organisms (GAO)
- 3.2 Factors affecting the PAO
- 3.2.1 Metabolic factors
- 3.2.1.1 Polyphosphate metabolism
- 3.2.1.1 Polyphosphate metabolism
- 3.2.1.2 Carbon utilization
- 3.2.1.2 Carbon utilization
- 3.2.2 Environmental factors
- 3.3 Biochemical model
- 4. Application of recovered phosphate products
- 4.1 Magnesium ammonium phosphate (struvite)
- 4.2 Calcium phosphate (Ca-P)
- 4.3 Vivianite
- 5. Significance of phosphorus recovery
- 6. Challenges of P recovery
- 7. Economic feasibility of P recovery
- 8. Conclusion and future perspectives
- References
- 4
- Techniques in removal of organics and emerging contaminants from wastewater for water reuse application
- 1. Introduction
- 2. Types of emerging contaminants and their environmental effects
- 3. Treatment technologies
- 3.1 Biological treatment
- 3.2 Physicochemical treatment
- 3.3 Advanced treatment process
- 3.3.1 Membrane bioreactor process
- 3.3.2 Nanofiltration technology
- 3.3.3 MBR-induced hybrid separation technique
- 3.3.3.1 MBR-UV oxidation process in rejection of TrOC
- 3.3.3.1 MBR-UV oxidation process in rejection of TrOC
- 3.3.3.2 MBR-NF/RO treatment for TrOC rejection
- 3.3.3.2 MBR-NF/RO treatment for TrOC rejection
- 3.3.4 UV/chlorine advanced oxidation treatment
- 3.3.4.1 Process description
- 3.3.4.1 Process description
- 4. Zeolite-rich composite in removal of emerging contaminants
- 5. Photocatalysis for removal of emerging organic compounds from wastewater
- 5.1 Photocatalysis.
- 5.2 Photocatalytic mechanisms
- 5.3 Parameters effected on photocatalysis
- 5.3.1 Source of light
- 5.3.2 Effect of pH
- 5.3.3 Presence of oxidants
- 5.4 Modification of photocatalyst
- 5.4.1 Doping
- 5.4.2 Semiconductor components
- 5.4.3 Deposition of valuable metals
- 6. Conclusion
- References
- 5
- Microbial fuel cell: a paradigm shifts in wastewater treatment
- 1. Introduction
- 2. Microbial fuel cells
- 2.1 Structure of microbial fuel cells
- 2.1.1 Anode chamber
- 2.1.2 Cathode chamber
- 2.1.3 Membrane in microbial fuel cells
- 2.1.4 pH in microbial fuel cells
- 2.1.5 Temperature in microbial fuel cells
- 3. Types of microbial fuel cells
- 3.1 Single-chambered microbial fuel cells
- 3.2 Double-chamber microbial fuel cells
- 3.3 Mediator-dependent MFCs
- 3.4 Mediator less MFCs
- 3.5 Thermophilic MFCs
- 3.6 Mesophilic MFCs
- 3.7 Phototrophic MFCs
- 3.8 Heterotrophic MFCs
- 3.9 Mixotrophic MFCs
- 3.10 Light-mediated anodic MFCs
- 3.11 Light-mediated cathodic MFCs
- 3.12 Up flow MFCs
- 3.13 Tubular MFCs
- 3.14 Stacked MFCs
- 4. Factors affecting of microbial fuel cells
- 5. Application of microbial fuel cells
- 5.1 Generation of bioelectricity
- 5.2 Biohydrogen production
- 5.3 Biosensor
- 6. Recent advances in the use of wastewater treatment as substrate in microbial fuel cells
- 6.1 Food processing wastewater
- 6.2 Tomato industry pomace
- 6.3 Beer brewery wastewater
- 6.4 Dairy industry wastewater
- 6.5 Cheese whey
- 6.6 Complex or undefined wastewater substrates
- 6.7 Yoghurt wastewater
- 6.8 Mustard tuber wastewater
- 6.9 Petrochemical industry wastewater
- 6.10 Paper recycling industry wastewater
- 6.11 Molasses wastewater
- 7. Future perspective of microbial fuel cells
- 8. Conclusion
- References
- 6
- Immobilized microbial biomass as advanced anammox strategy
- 1. Introduction.
- 2. Immobilized anammox biomass for nitrogen removal
- 3. Conclusion and future perspectives
- References
- 7
- Microbiology and application of the anammox process
- 1. Introduction
- 2. Physiology and ecology of planctomycetales
- 3. Mechanism of anaerobic ammonium oxidation
- 4. Applications of anammox process
- 5. Significance of the anammox process
- 6. Conclusions
- References
- 8
- Agriculture pesticide and their remediation
- 1. Introduction
- 1.1 Pesticide in agriculture practice
- 1.2 Hazards of pesticides/disadvantages of pesticides
- 1.3 Major pesticide
- 1.4 Remediation techniques for the removal of pesticides
- 1.5 Chemical treatment techniques
- 1.6 Iron-enhanced sand filters
- 1.7 Chlorination
- 1.8 Advanced oxidation processes
- 1.9 Free radicals
- 1.10 Ozonation
- 1.11 Fenton
- 1.12 Adsorption
- 1.13 Remediation by physical processes
- 1.14 Clays
- 1.15 Activated carbon
- 1.16 Zeolites
- 1.17 Polymeric materials
- 1.18 Remediation by biological processes
- 1.19 Bacterial remediation
- 1.20 Fungicides treatment by bioaugmentation and ligninolytic fungi
- 1.21 Biological treatment techniques
- 1.22 Biopesticides
- 2. Conclusion
- References
- Further reading
- 9
- Recent update on chlorophenols bioremediation
- 1. Introduction
- 1.1 Chlorophenols
- 1.2 Fate and effect on the environment
- 1.3 Remediation of chlorophenols
- 1.4 Microbiology and biochemistry of chlorophenol degradation
- 1.4.1 Aerobic bacterial cometabolism of chlorophenols
- 1.4.2 Aerobic bacterial growth on chlorophenols as a sole source of carbon and energy
- 1.4.3 Anaerobic degradation of chlorinated phenols
- 1.4.4 Anaerobic metabolism of chlorophenols serving as carbon and energy source
- 1.5 Factors affecting chlorophenol degradation
- 1.5.1 Recent progress on chlorophenol remediation
- 2. Future perspective.