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El. knyga: Microalgae in Waste Water Remediation [Taylor & Francis e-book]

(RCP Universe Group of Institutions, India), (Dept. of Environ. Microbiology, Babasaheb Bhimrao Ambedkar Uni.)
  • Formatas: 244 pages, 31 Tables, black and white; 6 Line drawings, color; 13 Line drawings, black and white; 6 Illustrations, color; 13 Illustrations, black and white
  • Išleidimo metai: 01-Jul-2021
  • Leidėjas: CRC Press
  • ISBN-13: 9780429298080
  • Taylor & Francis e-book
  • Kaina: 258,50 €*
  • * this price gives unlimited concurrent access for unlimited time
  • Standartinė kaina: 369,29 €
  • Sutaupote 30%
  • Formatas: 244 pages, 31 Tables, black and white; 6 Line drawings, color; 13 Line drawings, black and white; 6 Illustrations, color; 13 Illustrations, black and white
  • Išleidimo metai: 01-Jul-2021
  • Leidėjas: CRC Press
  • ISBN-13: 9780429298080
"This book emphasizes the use of micro-algae and cyanobacteria for treatment of waste water by considering different approaches and discusses integration of this approach of micro-algae mediated remediation with traditional approach of STPs and ETPs. Thebook discusses how to make these STPs and ETPs a factory to make microalgal and cyanobacterial biomass which can be used for production of biofertilizer, biofuels and various industrial products. It would be an economical way to achieve environmental sustainability"--

Microalgae in Waste Water Remediation aims to point out trends and current topics concerning the use of microalgae in wastewater treatment and to identify potential paths for future research regarding microalgae-based bioremediation. To achieve this goal, the book also assessing and analyzes the topics that attract attention among the scientific community and their evolution through time. This book will be useful to the students, scientists and policy makers concerned with the microalgae mediated management of water-water effluents and its applications in overall future sustainable development.

Preface iii
1 Microalgae I: Origin, Distribution and Morphology
1(20)
Introduction
1(1)
Origin and Evolution
2(3)
Phylogeny and Classification
5(6)
Ecology and Distribution
11(3)
Morphology, Colony Features and Adaptations
14(2)
Conclusion
16(5)
2 Microalgae II: Cell Structure, Nutrition and Metabolism
21(20)
Introduction
21(1)
Cell Structure: Prokaryotic Microalgae
22(1)
Cell Structure: Eukaryotic Microalgae
23(2)
Nutrition Mode
25(1)
Photosynthesis: Process, Components and Reactions
26(5)
Uptake and Assimilation of Nutrients
31(5)
Conclusion
36(5)
3 Microalgae III: Stress Response and Wastewater Remediation
41(20)
Introduction
41(1)
Physical Stress
42(6)
Nutritional Stress
48(3)
Synergistic Effects of Combinations of Physical and Nutritional Stress
51(1)
Microalgae Mediated Wastewater Remediation
52(2)
Conclusion
54(7)
4 Municipal Wastewater
61(20)
Introduction
61(1)
Municipal Wastewater: Characteristics and Specific Pollutants
62(3)
Impact on the Environment and Public Health
65(1)
Current Treatment Technologies and Their Challenges
65(2)
Microalgal Remediation
67(4)
Microalgae/Microalgae-Bacteria Consortia
71(1)
Microalgal Biofilms
72(1)
Conclusion
72(9)
5 Petroleum Wastewater
81(20)
Introduction
81(1)
Crude Oil: Composition and Types
82(1)
Petroleum Industry: A Brief Description
82(2)
Petroleum Wastewater: Characteristics and Specific Pollutants
84(3)
Impacts on the Environment and Public Health
87(1)
Current Treatment and Challenges
87(1)
Microalgal Remediation
88(2)
Mechanism of Degradation of PAHs
90(2)
Role of Cyanobacteria Mats in Oil Degradation
92(1)
Conclusion
93(8)
6 Distillery and Sugar Mill Wastewater
101(18)
Introduction
101(1)
Distillery and Sugar Mills: A Brief Description
102(1)
Distillery and Sugar Mill Wastewater: Characteristics and Specific Pollutants
103(3)
Impacts on Environment and Public Health
106(1)
Current Treatment and Its Challenges
107(1)
Microalgal Bioremediation
108(1)
Removal of Lignin and Tannins
109(1)
Melanoidin Degradation
110(1)
Enzymes Involved in Lignin and Melonidin Degradation
111(1)
Conclusion
112(7)
7 Tannery Wastewater
119(20)
Introduction
119(1)
Tannery Industry: A Brief Description
120(2)
Tannery Wastewater: Characteristics and Specific Pollutants
122(3)
Impacts on Environment and Public Health
125(1)
Current Treatment and Challenges
126(1)
Microalgal Remediation
126(2)
Metal Biosorption Mechanism
128(1)
Role of pH in Metal Biosorption
129(1)
Role of Immobilized Microalgae
129(1)
Conclusion
130(9)
8 Pulp and Paper Wastewater
139(17)
Introduction
139(1)
Pulp and Paper Industry: A Brief Description
140(2)
Pulp and Paper Industry Wastewater: Characteristics and Specific Pollutants
142(2)
Impacts on Environment and Public Health
144(1)
Current Treatment and Its Challenges
145(1)
Microalgal Bioremediation
146(1)
Phenol and Their Derivatives Degradation
147(2)
Role of Light in Phenol Degradation
149(1)
AOX Removal
150(1)
Conclusion
150(6)
9 Textile Wastewater
156(19)
Introduction
156(1)
Textile Industry: A Brief Description
157(1)
Textile Dyes: Classification and Characteristics
158(1)
Textile Wastewater: Characteristics and Specific Pollutants
159(3)
Impacts on the Environment and Public Health
162(1)
Current Treatment and Challenges
163(1)
Microalgal Remediation
163(1)
Dye Discoloration and Degradation
164(1)
Mechanism of Dye Degradation
164(4)
Conclusion
168(7)
10 Food Processing Wastewater
175(20)
Introduction
175(1)
Food Processing Industry: Types and Their Brief Description
176(4)
Food Industry Wastewater: Characteristics and Specific Pollutants
180(2)
Impacts on the Environment and Public Health
182(1)
Current Treatment and Challenges
183(2)
Microalgal Remediation
185(1)
Role of Microalgae Consortia in Nutrient Removal
185(1)
Thermophilic, Psychrophilic or Acidophilic Microalgae
186(1)
Benefits of Micro-Algal Activated Sludge Process (MAAS)
187(1)
Conclusion
188(7)
11 Integrated Microalgal Wastewater Remediation and Microalgae Cultivation
195(22)
Introduction
195(1)
Conventional Wastewater Treatment: A Brief Description
196(2)
Sludge Problem and Its Management
198(1)
Conventional or Modern Wastewater Treatment Systems
199(3)
Integration of Microalgal Remediation with Wastewater Treatment: An Opportunity for Microalgal Biomass Cultivation
202(1)
Microalgal Biomass Cultivation Systems
203(4)
Harvesting of Microalgal Biomass
207(3)
Biomass Processing and its Valorization
210(2)
Conclusion
212(5)
12 Microalgal Biomass: An Opportunity For Sustainable Industrial Production
217(24)
Introduction
217(1)
Food Supplements and Animal Feed
218(2)
Pharmaceuticals
220(2)
Natural Colorants
222(2)
Bio-plastics (Poly-hydroxybutyrate)
224(1)
Biofertilizers
225(2)
Biodiesel
227(1)
Bio-ethanol
227(1)
Biomethane or Biogas
228(2)
Biohydrogen
230(1)
Conclusion
231(10)
Index 241
Dr. Arun Kumar is currently working in the field of Microalgal ecology and their applications in bioremediation and sustainable environment. Dr. Kumar has published various research and review papers in reputed journals like Frontier in Microbiology, Frontiers in Biosciences (Landmark) and Environment and Sustainability Indicators (Elsevier); in the area of microalgal bioremediation, biofuels and bioproducts production from microalgae. He obtained his doctoral degree in Environmental Microbiology from Babasaheb Bhimrao Ambedkar University, Lucknow, India. In his doctoral work, Dr. Kumar successfully metabolized a widely used and hazardous insecticide Chlorpyrifos by cyanobacterial strain Oscillatoria sp. CYA8 CPF isolated from paddy fields; which could be useful to decontaminate the pesticide residue from paddy fields and also provide a means to fix the atmospheric nitrogen.

Dr. Jay Shankar Singh is faculty member at Department of Environmental Microbiology, Babasaheb Bhimrao Ambedkar University, India. Dr. Singh has contributed significantly to the subject of land uses, restoration ecology and natural resource management. He is acquainted with the area of natural resource management and demonstrated that application of beneficial microbes, pyrite, coal fly ash (FA), crop residues based farm yard manure (FYM) and rice husk biochar (RHB) amendments in enhancement of paddy crop productivity, green house gas CH4 mitigation and restoration of degraded soil. Dr. Singh has published his research outputs in international journals (Trends in Biotechnology, Agriculture Ecosystem and Environment, Frontiers, Journal of Environmental Management, etc.) with high impact factors and good citations on Scopus, Google Scholar (Total citation as on December 10, 2020=>3968; h-index=32; i10 index=64) and other scientific databases. He is also actively serving as member of various scientific committees, holding editorial responsibilities for journals. He has published several books from Springer, Taylor & Francis, Elsevier, among others.