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Resource recovery from wastewater : a research agenda : WERF research report series /

Traditionally wastewater treatment involved the removal of pollutants from wastewater to allow it to be discharged to the environment. This initially concentrated on carbon removal, but as environmental requirements became more stringent it was expanded to cover nitrogen and phosphorus removal. With...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autores principales: Burn, Stewart (Autor), Muster, T. H. (Timothy Harvey), 1973- (Autor), Kaksonen, Anna (Autor), Tjanatmadja, Grace (Autor)
Autor Corporativo: CSIRO (Australia) (sponsoring body.)
Formato: Electrónico eBook
Idioma:Inglés
Publicado: Alexandria, VA : London, United Kingdom : Water Environment Research Foundation ; IWA Publishing, 2014.
Temas:
Acceso en línea:Texto completo

MARC

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245 0 0 |a Resource recovery from wastewater :  |b a research agenda : WERF research report series /  |c by Stewart Burn, Tim Muster, Anna Kaksonen, Grace Tjanatmadja, CSIRO. 
264 1 |a Alexandria, VA :  |b Water Environment Research Foundation ;  |a London, United Kingdom :  |b IWA Publishing,  |c 2014. 
300 |a 1 online resource 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
504 |a Includes bibliographical references. 
588 0 |a Online resource; title from PDF title page (Ebsco, viewed on August 3, 2015). 
520 |a Traditionally wastewater treatment involved the removal of pollutants from wastewater to allow it to be discharged to the environment. This initially concentrated on carbon removal, but as environmental requirements became more stringent it was expanded to cover nitrogen and phosphorus removal. With increasing energy costs, more stringent environmental discharge limits and greater implementation of water sensitive urban design the economic viability of recovering water, energy and resources from wastewater is being considered more seriously. There are many examples worldwide of wastewater reuse and the methodologies are well known for the recovery of water which represents the most valuable resource in wastewater. On the contrary, the widespread application of energy, nitrogen and phosphorus recovery is just beginning to gain traction. A range of technological options for recovery of resources from wastewater are discussed in this report and in order of recovered value they include: 1) energy from methane capture, 2) direct phosphorus recovery, and 3) biosolids with improved phosphorus bioavailability. At this stage it is considered that the recovery of nitrogen via ammonia requires a step-change in technology for energy-efficient capture. Anaerobic wastewater treatment and more efficient anaerobic digestion of sludge offers major opportunities to improve the energy efficiency of the wastewater sector and to decrease biosolids levels, especially if additional sources of carbon can be included in the digestion process. However this raises the issue of the biologically un-available (refractory) carbon and how it can be converted to make it biologically available. 
505 0 |a Cover; Copyright; Acknowledgments; Abstract and Benefits; Table of Contents; List of Tables; List of Figures; List of Acronyms; Executive Summary; Chapter 1.0: Introduction; Chapter 2.0: Environmental Legislation and Targets; Chapter 3.0: The Current State of Wastewater Treatment; 3.1 Developments in Secondary Treatment -- Carbon Removal and Recovery; 3.2 Developments in Tertiary Treatment -- Nutrient Removal; 3.2.1 Biological Nitrogen Removal; 3.2.2 Physical and Chemical Nitrogen Removal; 3.2.3 Phosphorus Removal; 3.3 Developments in Wastewater Treatment -- Sludge Production and Utilization. 
505 8 |a 3.3.1 Anaerobic Sludge Digestion3.3.2 Biosolids for Land Application; 3.3.3 Composting; 3.3.4 Vermiculture; 3.3.5 Biosolids -- Thermal Processing; Chapter 4.0: State of the Science -- Towards Resource Recovery Factories; 4.1 Large-Scale Treatment Systems for C, N, and P Recovery; 4.1.1 Anaerobic Digestion for Energy Recovery; 4.1.2 Methods for the Concentration and Recovery of N and P; 4.2 Small-Scale Systems for C, N, and P Recovery; 4.2.1 Bioelectrochemical and Electrochemical Systems; 4.2.2 Macrophyte and Microalgal Systems; 4.3 Alternative System Designs. 
590 |a ProQuest Ebook Central  |b Ebook Central Academic Complete 
650 0 |a Water reuse. 
650 0 |a Water  |x Purification. 
650 2 |a Water Purification 
650 6 |a Eau  |x Épuration. 
650 7 |a TECHNOLOGY & ENGINEERING  |x Environmental  |x General.  |2 bisacsh 
650 7 |a Water  |x Purification  |2 fast 
650 7 |a Water reuse  |2 fast 
700 1 |a Burn, Stewart,  |e author. 
700 1 |a Muster, T. H.  |q (Timothy Harvey),  |d 1973-  |e author.  |1 https://id.oclc.org/worldcat/entity/E39PCjDRtpb7PxKhVJKPpRBfpX 
700 1 |a Kaksonen, Anna,  |e author. 
700 1 |a Tjanatmadja, Grace,  |e author. 
710 2 |a CSIRO (Australia),  |e sponsoring body. 
758 |i has work:  |a Resource recovery from wastewater (Text)  |1 https://id.oclc.org/worldcat/entity/E39PCGvGDTt8YvMYybfCWFqb3P  |4 https://id.oclc.org/worldcat/ontology/hasWork 
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