top

  Info

  • Utilizzare la checkbox di selezione a fianco di ciascun documento per attivare le funzionalità di stampa, invio email, download nei formati disponibili del (i) record.

  Info

  • Utilizzare questo link per rimuovere la selezione effettuata.
Advanced Technologies in Wastewater Treatment : Food, Pharmaceutical and Chemical Industry
Advanced Technologies in Wastewater Treatment : Food, Pharmaceutical and Chemical Industry
Autore Castro-Muñoz Roberto
Edizione [1st ed.]
Pubbl/distr/stampa San Diego : , : Elsevier, April 2025
Descrizione fisica 1 online resource (344 pages)
Disciplina 628.3
Altri autori (Persone) BasileAngelo
CassanoAlfredo
ISBN 0-443-26501-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover -- Advanced Technologies in Wastewater Treatment -- Copyright Page -- Contents -- List of contributors -- Preface -- 1 An overview of wastewater production and management -- 1.1 Introduction -- 1.1.1 Objective of wastewater treatment -- 1.2 Wastewater characteristics -- 1.2.1 Treatment levels for wastewater -- 1.3 Techniques for treating wastewater -- 1.3.1 Conventional techniques -- 1.3.1.1 Trickling filter -- 1.3.1.2 Activated sludge -- 1.3.1.3 Membrane bioreactors -- 1.3.1.4 Rotating biological contactors -- 1.3.2 Nonconventional techniques -- 1.3.2.1 Constructed wetlands -- 1.3.2.2 Waste stabilization ponds -- 1.3.2.3 Upflow anaerobic sludge blanket -- 1.3.2.4 Oxidation ditches -- 1.3.3 Treatment and disposal of feces -- 1.4 The difficulties in managing wastewater -- 1.4.1 Water source contamination -- 1.4.2 Infrastructure -- 1.4.3 Selecting the appropriate technology -- 1.4.4 Reuse -- 1.4.5 Sludge production -- 1.5 Conclusions and future trends -- List of acronyms -- References -- 2 Recent advances in the removal of pharmaceutical residues in anaerobic digesters -- 2.1 Introduction -- 2.2 Removal of pharmaceutical residues in single- and two-stage anaerobic digesters -- 2.3 Pretreatments for the enhancement of anaerobic digestion-based pharmaceuticals removal -- 2.4 Effect of additives used in anaerobic digestion on the removal of pharmaceutic residues -- 2.5 A microbiological analysis for the removal of pharmaceutical residues in anaerobic digesters -- 2.6 Mechanisms of biotransformation and removal of pharmaceuticals in anaerobic digesters -- 2.7 Challenges and future trends -- 2.8 Concluding remarks -- Acknowledgments -- List of acronyms -- References -- 3 Adsorption-assisted technologies for wastewater treatment -- 3.1 Introduction -- 3.2 Microwave technology -- 3.2.1 Microwave definition and fundamentals.
3.2.2 Microwave radiation-assisted adsorbent synthesis and adsorption process -- 3.2.3 Microwave radiation-assisted desorption process -- 3.2.4 Important operating parameters -- 3.3 Ultrasound combined with adsorption process -- 3.3.1 Ultrasound in adsorbent preparation and modification -- 3.3.2 Ultrasound-assisted adsorption -- 3.3.3 Ultrasound regeneration of adsorbents -- 3.4 Methods of the advanced oxidative process combined with an adsorption process -- 3.4.1 Combined adsorption method with the Fenton process for contaminant removal -- 3.4.2 Integrated adsorption method with photo-Fenton process -- 3.4.3 Synergistic removal: adsorption-assisted ozonation for enhanced water purification -- 3.5 Combined adsorption method with membranes -- 3.6 Magnetic field-assisted adsorption -- 3.7 Ionic micellar flocculation-assisted adsorption and adsorptive micellar flocculation -- 3.8 Adsorption and subcritical and supercritical conditions -- 3.9 Microbiological methods couple to adsorption systems -- 3.10 Conclusions and future trends -- List of acronyms -- References -- 4 Advanced oxidation processes (AOPs) in wastewater treatments -- 4.1 Introduction -- 4.2 Generation mechanism -- 4.3 Various advanced oxidation processes methods -- 4.3.1 Photocatalytic oxidation -- 4.3.2 Sulfate radical-based advanced oxidation processes -- 4.3.2.1 Activation methods of persulfate -- 4.3.2.1.1 Energy input activation -- 4.3.2.1.2 Heat activation -- 4.3.2.1.3 Ultraviolet radiation activation -- 4.3.2.1.4 Ultrasound irradiation activation -- 4.3.2.1.5 Homogeneous activation -- 4.3.2.2 Heterogeneous activation -- 4.3.2.2.1 Heterogeneous activation with metal catalysts -- 4.3.2.2.2 Heterogeneous activation with metal-free catalysts -- 4.3.2.3 Alkaline activation -- 4.3.2.4 Pathways of contaminant degradation in persulfate-based advanced oxidation processes.
4.3.2.4.1 Radical pathways -- 4.3.2.4.2 Nonradical pathways -- 4.3.2.5 Factors influencing efficiency and effectiveness of persulfate degradation reactions -- 4.3.2.5.1 Effects of pH on contaminant degradation -- 4.3.2.5.2 Interfering effects of ions on persulfate degradation reactions -- 4.3.3 Ozone oxidation -- 4.3.3.1 Advanced oxidation by ozone nanobubbles -- 4.3.3.2 Application of ozone nanobubbles in wastewater treatment -- 4.3.4 Other oxidation methods -- 4.3.4.1 Fenton oxidation -- 4.3.4.2 Catalytic wet air oxidation -- 4.3.4.3 Sonochemical oxidation -- 4.3.4.4 Electrochemical oxidation -- 4.4 Applications in wastewater treatment -- 4.4.1 Degradation of organic pollutants -- 4.4.2 Removal of microbial contaminants -- 4.5 Advantages of advanced oxidation processes -- 4.6 Challenges faced -- 4.7 Summary/key points -- 4.8 Conclusion and future trends -- Abbreviation -- References -- 5 Hydrodynamic cavitation in wastewater treatment -- 5.1 Introduction -- 5.2 The cavitation process for the degradation of organic pollutants -- 5.2.1 Hydrodynamic cavitation -- 5.2.1.1 Factors influencing the bubble size in hydrodynamic cavitation -- 5.2.1.2 Various hydrodynamic cavitation reactors -- 5.2.2 Degradation of pollutants with hybrid advanced oxidation processes coupled with hydrodynamic cavitation -- 5.2.2.1 Synergistic effect of hydrodynamic cavitation and ozone -- 5.2.2.2 Synergistic effect of hydrodynamic cavitation and H2O2 -- 5.2.2.3 Synergistic effect of hydrodynamic cavitation and Fenton's process -- 5.2.2.4 Synergistic effect of hydrodynamic cavitation and persulfate process -- 5.2.2.5 Synergistic effect of hydrodynamic cavitation and photocatalysis -- 5.3 Intermediate product formation in the hydrodynamic cavitation process -- 5.4 Conclusions and future trends -- Acknowledgment -- List of acronyms -- List of symbols -- References.
6 Pressure-driven membrane technologies for the treatment and recovery of bioactive substances from agri-food wastewaters -- 6.1 Introduction -- 6.2 Fundamentals of pressure-driven membrane processes -- 6.3 Application of pressure-driven membrane processes for recovering biomolecules from agri-food wastewater and by-products -- 6.4 Conclusions and future trends -- Acknowledgments -- List of acronyms -- References -- 7 Cleaning up wastewater through algae and its integration with other processes -- 7.1 Introduction -- 7.2 Algae in wastewater treatment -- 7.2.1 Types of wastewater -- 7.2.1.1 Municipal wastewater -- 7.2.1.2 Agricultural wastewater -- 7.2.1.3 Industrial wastewater -- 7.3 Microalgae cultivation -- 7.3.1 Open pond culture system -- 7.3.2 Photobioreactors -- 7.3.3 Tubular photobioreactors -- 7.3.4 Flat panel photobioreactor -- 7.4 Traditional wastewater management process -- 7.4.1 Activated sludge process -- 7.4.2 Constructed wetlands -- 7.4.3 Membrane bioreactors -- 7.5 Modern wastewater treatment approaches -- 7.6 Bioremediation of heavy metals -- 7.7 Monitoring and control systems -- 7.8 Conclusions and future trends -- Acknowledgments -- List of symbols -- References -- 8 Membrane bioreactors and biochar for water treatment -- 8.1 Introduction -- 8.2 Membrane bioreactors -- 8.3 Materials for the synthesis of biochar -- 8.4 Organics and pollutants removal performance of biochar-amended membrane bioreactors -- 8.5 Fouling mitigation in biochar-amended membrane bioreactors -- 8.6 Conclusions and future trends -- Abbreviations -- References -- 9 Advances in engineered composite materials for wastewater treatment -- 9.1 Introduction -- 9.2 Advanced water and wastewater treatment technologies -- 9.3 Various engineered composites -- 9.3.1 Chitosan-engineered composites -- 9.3.2 Metal oxide-engineered composites.
9.3.3 Graphene oxide-engineered composites -- 9.3.4 Layered double hydroxide-engineered composites -- 9.3.5 Polymer-engineered composites -- 9.3.6 Carbon nanotube-engineered composites -- 9.3.7 Biochar-engineered composites -- 9.4 Conclusion and future trends -- List of acronyms -- References -- 10 Ultrasound-assisted electrochemical processes for wastewater treatment -- 10.1 Introduction -- 10.2 Ultrasound-assisted treatment of wastewater -- 10.2.1 Limitation of ultrasound-based wastewater treatment -- 10.3 Electrochemical method for wastewater treatment -- 10.3.1 Electrocoagulation -- 10.3.2 Electroflotation -- 10.3.3 Electrodialysis -- 10.3.4 Electrodeposition -- 10.3.5 Electrochemical oxidation -- 10.3.5.1 Challenges or limitations of electrochemical wastewater treatment -- 10.4 Sonoelectrochemical methods for wastewater treatment -- 10.5 Important factors in sono-electrochemical process -- 10.5.1 Electrode materials and design -- 10.5.2 Design of reactor and operational mode -- 10.5.3 Ultrasound power -- 10.5.4 Ultrasound frequency -- 10.5.5 Current density -- 10.5.6 Applied voltage -- 10.5.7 Solution pH -- 10.5.8 Electrolyte and its concentration -- 10.5.9 System temperature -- 10.5.10 Nature of organic compounds -- 10.5.11 Case studies and energy consumption -- 10.6 Advantages of sono-electrochemical methods over traditional methods -- 10.7 Conclusions and future trends -- Abbreviation -- List symbols -- References -- 11 Advanced strategies for dairy wastewater treatment: a perspective -- 11.1 Introduction -- 11.2 Analyzing the bibliographic data of wastewater treatment -- 11.3 Strategies for dairy wastewater treatment -- 11.3.1 Existing treatment methodologies for treating wastewater from the dairy sector -- 11.3.1.1 Biological processes -- 11.3.1.2 More about the biological processes -- 11.3.1.3 Process for aerobic biological treatment.
11.3.1.4 Process for anaerobic biological treatment.
Record Nr. UNINA-9911054524603321
Castro-Muñoz Roberto  
San Diego : , : Elsevier, April 2025
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Advances in membrane technologies for water treatment : materials, processes and applications / / edited by Angelo Basile, Alfredo Cassano and Navin K. Rastogi ; contributors W. L. Ang [and forty nine others]
Advances in membrane technologies for water treatment : materials, processes and applications / / edited by Angelo Basile, Alfredo Cassano and Navin K. Rastogi ; contributors W. L. Ang [and forty nine others]
Pubbl/distr/stampa Amsterdam, [Netherlands] : , : Woodhead Publishing, , 2015
Descrizione fisica 1 online resource (667 p.)
Disciplina 628.1674
Collana Woodhead Publishing Series in Energy
Soggetto topico Water - Purification - Membrane filtration
Membranes (Technology)
ISBN 1-78242-126-2
1-78242-121-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover; Related titles; Advances in Membrane Technologies for Water Treatment; Copyright; Contents; List of contributors; Woodhead Publishing Series in Energy; Preface; Part 1 - Novel membrane materials and advances in membrane operations; 1 - Advances in polymeric membranes for water treatment; 1.1 Introduction; 1.2 Advances in polymeric membranes; 1.3 Applications for water treatment; 1.4 Concluding remarks and future trends; Abbreviations; Greek symbol; References; 2 - Advances in ceramic membranes for water treatment; 2.1 Introduction
2.2 Development in ceramic membranes and their fabrication processes2.3 Development in membrane modules and units; 2.4 Ceramic membranes for water treatment; 2.5 Ceramic membrane cleaning; 2.6 Prospects and challenges; Abbreviations; Acknowledgements; References; 3 - Advances in water treatment by microfiltration, ultrafiltration, and nanofiltration; 3.1 Introduction; 3.2 Water treatment by MF, UF, and NF; 3.3 Pretreatment requirements; 3.4 Advances in membrane materials for water treatment by MF, UF, and NF
3.5 Advances in membrane modules and system configurations for water treatment by MF, UF, and NF3.6 Applications of water treatment by MF, UF, and NF; 3.7 Future trends; 3.8 Sources of further information and advice; 3.9 Conclusion; List of acronyms; List of symbols; References; 4 - Water treatment by reverse and forward osmosis; 4.1 Introduction; 4.2 Thermal or membrane desalination; 4.3 Difference between osmosis, RO, and FO; 4.4 Fundamentals of water treatment by RO; 4.5 Conventional and membrane pretreatment for RO feed water; 4.6 Fundamentals of water treatment by FO
4.7 Membranes for FO4.8 Desalination by FO; 4.9 Conclusion; List of symbols; Abbreviations; References; 5 - Membrane bioreactors for water treatment; 5.1 Introduction; 5.2 Fundamentals; 5.3 Aerobic MBR; 5.4 Anaerobic MBRs; 5.5 Forward osmosis MBRs; 5.6 Conclusion and perspectives; List of abbreviations; References; 6 - Advances in electrodialysis for water treatment; 6.1 Introduction; 6.2 Fundamentals of electrodialysis for water treatment; 6.3 Advances in membrane materials for electrodialysis for water treatment
6.4 Advances in membrane modules and system configurations for electrodialysis for water treatment6.5 Applications of electrodialysis for water treatment; 6.6 Future trends; Sources of further information and advice; References; 7 - Photocatalytic membrane reactors for water treatment; 7.1 Introduction; 7.2 Fundamentals of PMRs for water treatment; 7.3 Advances in membrane modules and system configurations for PMRs for water treatment; 7.4 Applications of PMRs for water treatment; 7.5 Advantages and limitations of PMRs in water treatment; 7.6 Conclusion; 7.7 Future trends
7.8 Sources of further information
Record Nr. UNINA-9910797066903321
Amsterdam, [Netherlands] : , : Woodhead Publishing, , 2015
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Advances in membrane technologies for water treatment : materials, processes and applications / / edited by Angelo Basile, Alfredo Cassano and Navin K. Rastogi ; contributors W. L. Ang [and forty nine others]
Advances in membrane technologies for water treatment : materials, processes and applications / / edited by Angelo Basile, Alfredo Cassano and Navin K. Rastogi ; contributors W. L. Ang [and forty nine others]
Pubbl/distr/stampa Amsterdam, [Netherlands] : , : Woodhead Publishing, , 2015
Descrizione fisica 1 online resource (667 p.)
Disciplina 628.1674
Collana Woodhead Publishing Series in Energy
Soggetto topico Water - Purification - Membrane filtration
Membranes (Technology)
ISBN 1-78242-126-2
1-78242-121-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover; Related titles; Advances in Membrane Technologies for Water Treatment; Copyright; Contents; List of contributors; Woodhead Publishing Series in Energy; Preface; Part 1 - Novel membrane materials and advances in membrane operations; 1 - Advances in polymeric membranes for water treatment; 1.1 Introduction; 1.2 Advances in polymeric membranes; 1.3 Applications for water treatment; 1.4 Concluding remarks and future trends; Abbreviations; Greek symbol; References; 2 - Advances in ceramic membranes for water treatment; 2.1 Introduction
2.2 Development in ceramic membranes and their fabrication processes2.3 Development in membrane modules and units; 2.4 Ceramic membranes for water treatment; 2.5 Ceramic membrane cleaning; 2.6 Prospects and challenges; Abbreviations; Acknowledgements; References; 3 - Advances in water treatment by microfiltration, ultrafiltration, and nanofiltration; 3.1 Introduction; 3.2 Water treatment by MF, UF, and NF; 3.3 Pretreatment requirements; 3.4 Advances in membrane materials for water treatment by MF, UF, and NF
3.5 Advances in membrane modules and system configurations for water treatment by MF, UF, and NF3.6 Applications of water treatment by MF, UF, and NF; 3.7 Future trends; 3.8 Sources of further information and advice; 3.9 Conclusion; List of acronyms; List of symbols; References; 4 - Water treatment by reverse and forward osmosis; 4.1 Introduction; 4.2 Thermal or membrane desalination; 4.3 Difference between osmosis, RO, and FO; 4.4 Fundamentals of water treatment by RO; 4.5 Conventional and membrane pretreatment for RO feed water; 4.6 Fundamentals of water treatment by FO
4.7 Membranes for FO4.8 Desalination by FO; 4.9 Conclusion; List of symbols; Abbreviations; References; 5 - Membrane bioreactors for water treatment; 5.1 Introduction; 5.2 Fundamentals; 5.3 Aerobic MBR; 5.4 Anaerobic MBRs; 5.5 Forward osmosis MBRs; 5.6 Conclusion and perspectives; List of abbreviations; References; 6 - Advances in electrodialysis for water treatment; 6.1 Introduction; 6.2 Fundamentals of electrodialysis for water treatment; 6.3 Advances in membrane materials for electrodialysis for water treatment
6.4 Advances in membrane modules and system configurations for electrodialysis for water treatment6.5 Applications of electrodialysis for water treatment; 6.6 Future trends; Sources of further information and advice; References; 7 - Photocatalytic membrane reactors for water treatment; 7.1 Introduction; 7.2 Fundamentals of PMRs for water treatment; 7.3 Advances in membrane modules and system configurations for PMRs for water treatment; 7.4 Applications of PMRs for water treatment; 7.5 Advantages and limitations of PMRs in water treatment; 7.6 Conclusion; 7.7 Future trends
7.8 Sources of further information
Record Nr. UNINA-9910821640503321
Amsterdam, [Netherlands] : , : Woodhead Publishing, , 2015
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Compendium of Hydrogen Energy : Hydrogen Use, Safety and the Hydrogen Economy
Compendium of Hydrogen Energy : Hydrogen Use, Safety and the Hydrogen Economy
Autore Ball Michael
Pubbl/distr/stampa Burlington, : Elsevier Science, 2015
Descrizione fisica 1 online resource (386 p.)
Disciplina 665.81
Altri autori (Persone) BasileAngelo
VeziroğluT. Nejat
Collana Woodhead Publishing Series in Energy
Soggetto topico Hydrogen as fuel
ISBN 1-78242-386-9
1-78242-364-8
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover; Compendium of Hydrogen Energy: Volume 4 Hydrogen Use, Safety and the Hydrogen Economy; Copyright; Contents; List of contributors; Woodhead Publishing Series in Energy; Part One: Hydrogen applications in transport and industry ; Chapter 1: Hydrogen-fueled road automobiles - Passenger cars and buses; 1.1 Introduction; 1.2 Comparison of different hydrogen-fueled drive systems; 1.3 Technical solutions for FCEVs; 1.3.1 Lean FCEV; 1.3.2 Hybridized FCEV; 1.3.3 Plug-in FCEV; 1.3.4 Range extender FCEV; 1.4 Technical approaches for the main components of FCEVs
1.4.1 Fuel cell stacks1.4.2 Air supply systems; 1.4.3 Hydrogen supply; 1.4.4 Electric motors and power electronics; 1.4.5 Batteries; 1.5 Challenges for FCEVs - Consideration of main markets; 1.6 Summary and future trends; 1.7 Sources of further information and advice; Books; Major trade/professional bodies; Websites; References; Chapter 2: Hydrogen-fueled motorcycles, bicycles, and industrial trucks; 2.1 Introduction; 2.2 Hydrogen motorcycles and bicycles; 2.3 Hydrogen industrial trucks; 2.4 Conclusions; References; Chapter 3: Hydrogen-fueled marine transportation
3.1 Market environment3.1.1 Environmental requirements; 3.1.1.1 International environmental requirements; 3.1.1.2 European environmental requirements; 3.1.1.3 Further measures for the reduction of ship-based emissions; 3.1.2 Regulatory requirements; 3.1.3 Infrastructure requirements; 3.1.4 Market trends; 3.2 Requirements for marine FCs; 3.2.1 Operational concepts for marine FC systems; 3.2.1.1 Basic load coverage with parallel operation; 3.2.1.2 Auxiliary power supply with hybrid application; 3.2.1.3 Direct propulsion for small vessel with hybrid application
3.2.2 General requirements for maritime FC systems3.2.2.1 Environmental conditions; 3.2.2.2 Power demand and efficiency; 3.2.2.3 System integration into a vessel; 3.2.2.4 Supply of essential consumers; 3.2.3 Pleasure craft; 3.2.4 Merchant vessels; 3.2.5 Navy vessels; 3.3 Suitable FC systems; 3.3.1 Required developments for maritime FC systems; 3.3.2 Hydrogen storage alternatives on board; 3.3.2.1 Suitable fuels for maritime FC systems; 3.3.2.2 Cost perspective; 3.4 FC integration in ships; 3.4.1 Possible markets; 3.4.1.1 Overview of the global ship market
3.4.1.2 Start markets for FC systems3.4.1.3 Remaining merchant fleet; 3.4.2 Safety; 3.4.3 Fuel supply; 3.4.4 Engine room layout; 3.4.5 Operational aspects; 3.5 Marine FC projects; 3.5.1 Pleasure craft and small passenger vessels; 3.5.2 Merchant vessels; 3.5.3 Navy vessels; 3.5.3.1 Surface vessels; 3.5.3.2 Submarines; 3.6 Future trends; References; Chapter 4: Hydrogen-fueled aeroplanes; 4.1 Introduction to hydrogen vs. traditional technologies: Differences and similarities, advantages, and disadvantag ...; 4.2 Hydrogen fuel on aircraft-Challenges and requirements
4.3 Advantages and disadvantages of hydrogen storage methods in aeronautics
Record Nr. UNINA-9910583087503321
Ball Michael  
Burlington, : Elsevier Science, 2015
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Compendium of hydrogen energy . Volume 2 Hydrogen storage, distribution and infrastructure / / edited by Ram B. Gupta, Angelo Basile and T. Nejat Veziroglu
Compendium of hydrogen energy . Volume 2 Hydrogen storage, distribution and infrastructure / / edited by Ram B. Gupta, Angelo Basile and T. Nejat Veziroglu
Pubbl/distr/stampa Cambridge, England : , : Woodhead Publishing, , 2016
Descrizione fisica 1 online resource (438 p.)
Disciplina 665.81
Collana Woodhead Publishing Series in Energy
Soggetto topico Hydrogen as fuel
ISBN 1-78242-384-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover; Compendium of Hydrogen Energy: Volume 2: Hydrogen Storage, Distribution and Infrastructure; Copyright; Contents; List of contributors; Woodhead Publishing Series in Energy; Part One: Hydrogen Storage in Pure Form; Chapter 1: Introduction to hydrogen storage; 1.1. Introduction; 1.2. Physical storage; 1.2.1. Compressed hydrogen; 1.2.2. Cold-compressed hydrogen; 1.2.3. Liquid hydrogen; 1.2.4. Cryo-compressed hydrogen; 1.3. Material-based hydrogen storage; 1.3.1. Transition metal hydrides; 1.3.2. Complex hydrides; 1.3.3. Chemical hydrogen storage; 1.3.4. Hydrogen sorbents; References
Chapter 2: Hydrogen liquefaction and liquid hydrogen storage2.1. Introduction: Why liquefying hydrogen?; 2.2. Basics of cryogenic liquefaction; 2.2.1. Fundamental cooling effects; 2.2.2. Fundamental liquefaction cycles; 2.3. Hydrogen thermodynamic properties at ambient and low temperatures; 2.3.1. Elemental hydrogen; 2.3.2. Molecular hydrogen; 2.3.3. Modifications of molecular hydrogen; 2.3.4. Thermodynamics of molecular hydrogen modifications; 2.4. Large-scale hydrogen liquefaction and storage; 2.4.1. Today's technology; 2.4.2. Future technologies; 2.5. Advantages and disadvantages
2.6. Current uses of liquid hydrogen2.7. Sources of further information and advice; Acknowledgments; References; Chapter 3: Slush hydrogen production, storage, and transportation; 3.1. Introduction: What is slush hydrogen?; 3.2. Hydrogen energy system using slush hydrogen; 3.3. Thermophysical properties of slush hydrogen; 3.4. Process of producing and storing slush hydrogen; 3.4.1. Hydrogen liquefaction by magnetic refrigeration; 3.4.2. Slush hydrogen production; 3.5. Density and mass flow meters for slush hydrogen; 3.5.1. Density meter; 3.5.2. Mass flow meter
3.6. Advantages and disadvantages of transporting slush hydrogen via pipeline3.6.1. Transfer pump for slush hydrogen; 3.6.2. Pressure drop and heat transfer in pipe flow; 3.6.3. Pressure drop in flow restrictions; 3.6.4. Pressure drop in corrugated pipes; 3.7. Uses of stored slush and liquid hydrogen; 3.7.1. Nucleate pool boiling heat transfer to slush and liquid hydrogen; 3.8. Conclusions; 3.9. Future trends; 3.10. Sources of future information and advice; Appendix A. Production; Appendix B. Flow and heat transfer; Appendix C. Measurement instrumentation; References
Chapter 4: Underground and pipeline hydrogen storage4.1. Underground hydrogen storage as an element of energy cycle; 4.1.1. Industrial needs in underground hydrogen storage (UHS); 4.1.2. Conversion of hydrogen into other forms of energy and vice versa; 4.1.3. Four principle types of UHS; 4.1.4. Storage in salt caverns and porous media; 4.2. Scientific problems related to UHS; 4.2.1. State of the art; 4.2.2. Recent research throughout the world; 4.3. Biochemical transformations of underground hydrogen; 4.3.1. Respiratory and constructive metabolism of microorganisms
4.3.2. Four kinds of hydrogenotrophic biotic reactions
Record Nr. UNINA-9910797404603321
Cambridge, England : , : Woodhead Publishing, , 2016
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Compendium of hydrogen energy . Volume 2 Hydrogen storage, distribution and infrastructure / / edited by Ram B. Gupta, Angelo Basile and T. Nejat Veziroglu
Compendium of hydrogen energy . Volume 2 Hydrogen storage, distribution and infrastructure / / edited by Ram B. Gupta, Angelo Basile and T. Nejat Veziroglu
Pubbl/distr/stampa Cambridge, England : , : Woodhead Publishing, , 2016
Descrizione fisica 1 online resource (438 p.)
Disciplina 665.81
Collana Woodhead Publishing Series in Energy
Soggetto topico Hydrogen as fuel
ISBN 1-78242-384-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto Front Cover; Compendium of Hydrogen Energy: Volume 2: Hydrogen Storage, Distribution and Infrastructure; Copyright; Contents; List of contributors; Woodhead Publishing Series in Energy; Part One: Hydrogen Storage in Pure Form; Chapter 1: Introduction to hydrogen storage; 1.1. Introduction; 1.2. Physical storage; 1.2.1. Compressed hydrogen; 1.2.2. Cold-compressed hydrogen; 1.2.3. Liquid hydrogen; 1.2.4. Cryo-compressed hydrogen; 1.3. Material-based hydrogen storage; 1.3.1. Transition metal hydrides; 1.3.2. Complex hydrides; 1.3.3. Chemical hydrogen storage; 1.3.4. Hydrogen sorbents; References
Chapter 2: Hydrogen liquefaction and liquid hydrogen storage2.1. Introduction: Why liquefying hydrogen?; 2.2. Basics of cryogenic liquefaction; 2.2.1. Fundamental cooling effects; 2.2.2. Fundamental liquefaction cycles; 2.3. Hydrogen thermodynamic properties at ambient and low temperatures; 2.3.1. Elemental hydrogen; 2.3.2. Molecular hydrogen; 2.3.3. Modifications of molecular hydrogen; 2.3.4. Thermodynamics of molecular hydrogen modifications; 2.4. Large-scale hydrogen liquefaction and storage; 2.4.1. Today's technology; 2.4.2. Future technologies; 2.5. Advantages and disadvantages
2.6. Current uses of liquid hydrogen2.7. Sources of further information and advice; Acknowledgments; References; Chapter 3: Slush hydrogen production, storage, and transportation; 3.1. Introduction: What is slush hydrogen?; 3.2. Hydrogen energy system using slush hydrogen; 3.3. Thermophysical properties of slush hydrogen; 3.4. Process of producing and storing slush hydrogen; 3.4.1. Hydrogen liquefaction by magnetic refrigeration; 3.4.2. Slush hydrogen production; 3.5. Density and mass flow meters for slush hydrogen; 3.5.1. Density meter; 3.5.2. Mass flow meter
3.6. Advantages and disadvantages of transporting slush hydrogen via pipeline3.6.1. Transfer pump for slush hydrogen; 3.6.2. Pressure drop and heat transfer in pipe flow; 3.6.3. Pressure drop in flow restrictions; 3.6.4. Pressure drop in corrugated pipes; 3.7. Uses of stored slush and liquid hydrogen; 3.7.1. Nucleate pool boiling heat transfer to slush and liquid hydrogen; 3.8. Conclusions; 3.9. Future trends; 3.10. Sources of future information and advice; Appendix A. Production; Appendix B. Flow and heat transfer; Appendix C. Measurement instrumentation; References
Chapter 4: Underground and pipeline hydrogen storage4.1. Underground hydrogen storage as an element of energy cycle; 4.1.1. Industrial needs in underground hydrogen storage (UHS); 4.1.2. Conversion of hydrogen into other forms of energy and vice versa; 4.1.3. Four principle types of UHS; 4.1.4. Storage in salt caverns and porous media; 4.2. Scientific problems related to UHS; 4.2.1. State of the art; 4.2.2. Recent research throughout the world; 4.3. Biochemical transformations of underground hydrogen; 4.3.1. Respiratory and constructive metabolism of microorganisms
4.3.2. Four kinds of hydrogenotrophic biotic reactions
Record Nr. UNINA-9910814848203321
Cambridge, England : , : Woodhead Publishing, , 2016
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Current trends and future developments on (bio-) membranes : carbon dioxide separation/capture by using membranes / / edited by Angelo Basile, Evangelos P. Favvas
Current trends and future developments on (bio-) membranes : carbon dioxide separation/capture by using membranes / / edited by Angelo Basile, Evangelos P. Favvas
Pubbl/distr/stampa Amsterdam, Netherlands : , : Elsevier, , [2018]
Descrizione fisica 1 online resource (670 pages)
Disciplina 660.28424
Soggetto topico Membranes (Technology)
Carbon dioxide - Separation
ISBN 0-12-813646-4
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910583396003321
Amsterdam, Netherlands : , : Elsevier, , [2018]
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Enriched Methane : The First Step Towards the Hydrogen Economy / / edited by Marcello De Falco, Angelo Basile
Enriched Methane : The First Step Towards the Hydrogen Economy / / edited by Marcello De Falco, Angelo Basile
Edizione [1st ed. 2016.]
Pubbl/distr/stampa Cham : , : Springer International Publishing : , : Imprint : Springer, , 2016
Descrizione fisica 1 online resource (259 p.)
Disciplina 622.5
Collana Green Energy and Technology
Soggetto topico Renewable energy resources
Chemical engineering
Energy systems
Renewable and Green Energy
Industrial Chemistry/Chemical Engineering
Energy Systems
ISBN 3-319-22192-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto From the Contents: Enriched Methane: a sustainable solution -- Enriched Methane production through solar energy: METISOL project -- Bio-hythane production from food waste by dark fermentation coupled with anaerobic digestion process -- Biological hydrogen production via anaerobic fermentation.
Record Nr. UNINA-9910253990303321
Cham : , : Springer International Publishing : , : Imprint : Springer, , 2016
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Ethanol : science and engineering / / edited by Angelo Basile [et al.]
Ethanol : science and engineering / / edited by Angelo Basile [et al.]
Pubbl/distr/stampa Amsterdam : , : Elsevier, , [2019]
Descrizione fisica 1 online resource (695 pages)
Disciplina 665.7
Soggetto topico Methane - Environmental aspects
Methane
ISBN 0-12-811536-X
0-12-811458-4
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Nota di contenuto pt. 1. Science and production pt. 2. Application and innovation pt. 3. Modeling and technology pt. 4. Environment and economy
Record Nr. UNINA-9910583070603321
Amsterdam : , : Elsevier, , [2019]
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
EVALITA Evaluation of NLP and Speech Tools for Italian : Proceedings of the Final Workshop 12-13 December 2018, Naples / / Tommaso Caselli, Nicole Novielli, Viviana Patti, Paolo Rosso
EVALITA Evaluation of NLP and Speech Tools for Italian : Proceedings of the Final Workshop 12-13 December 2018, Naples / / Tommaso Caselli, Nicole Novielli, Viviana Patti, Paolo Rosso
Autore Ahluwalia Resham
Pubbl/distr/stampa Torino, : Accademia University Press, 2019
Descrizione fisica 1 online resource (281 p.)
Altri autori (Persone) AndersonJacob
ArslanPinar
BaiXiaoyu
BakarovAmir
BalaramanVevake
BarbieriFrancesco
BasileAngelo
BasilePierpaolo
BasileValerio
BasiliRoberto
BenniciMauro
BianchiniGiulio
BiondiGiulio
BonavitaIlaria
BoscoCristina
BuscaldiDavide
CabrioElena
CallowEdward
CardiffJohn
CaselliTommaso
ChiusaroliFrancesca
CignarellaAlessandra Teresa
CignarellaAlessandra Teresa
CiminoAndrea
CockMartine De
ComanAndrei Catalin
CorazzaMichele
CroceDanilo
CutugnoFrancesco
Dell’OrlettaFelice
DelmonteRodolfo
De la Peña SarracénGretel Liz
Di BariGabriele
Di MaroMaria
Di RosaEmanuele
DuranteAlberto
DwyerGareth
FalconeSara
FerriLorenzo
FersiniElisabetta
FortunaPaula
FrendaSimona
GallicchioClaudio
GemmisMarco de
GhanemBilal
GiorniTommaso
GirardiDaniela
GiudiceValentino
GueriniMarco
Guzmán-FalcónEstefanía
MagniniBernardo
MagnoliniSimone
MatteiLorenzo De
Medina PagolaJosé E
MeniniStefano
MerendaFlavio
MicheliAlessio
MilaniAlfredo
MohammadSaif M
Montes-y-GómezManuel
MontiJohanna
Muñiz CuzaCarlos Enrique
NascimentoAnderson
NechaevYaroslav
NicolaGiancarlo
NissimMalvina
NovielliNicole
NozzaDebora
NunesSérgio
OrigliaAntonio
Ortega-BuenoReynier
PamungkasEndang Wahyu
PamungkasEndang Wahyu
PascucciAntonio
PattiViviana
PolettoFabio
PolignanoMarco
PonsReynaldo Gil
RonzanoFrancesco
RossoPaolo
RubagottiChiara
SangatiFederico
SanguinettiManuela
SantilliAndrea
SantucciValentino
SarliDaniele Di
Seijas PortocarreroXileny
Seijas PortocarreroXileny
SemeraroGiovanni
ShushkevichElena
SicilianiLucia
SoniHimani
SpinaStefania
SprugnoliRachele
SquadroneLuca
TesconiMaurizio
TonelliSara
Villaseñor-PinedaLuis
VillataSerena
ZaghiClaudia
ZaraGiacomo
Soggetto topico Language & Linguistics
elaborazione del linguaggio naturale
strumenti del linguaggio
traitement du langage naturel
outils du langage
Natural Language Processing
Speech Tools
Soggetto non controllato Speech Tools
Natural Language Processing
ISBN 88-31978-69-1
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910324951003321
Ahluwalia Resham  
Torino, : Accademia University Press, 2019
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui