Electrochemical power sources : batteries, fuel cells, and supercapacitors / / Vladimir S. Bagotsky, Alexander M. Skundin, Yurij V. Volfkovich |
Autore | Bagot͡skiĭ V. S (Vladimir Sergeevich) |
Pubbl/distr/stampa | Hoboken, New Jersey : , : John Wiley & Sons, , 2015 |
Descrizione fisica | 1 online resource (815 p.) |
Disciplina | 621.31242 |
Altri autori (Persone) | VolfkovichYurij M. <1940-> |
Collana | Electrochemical Society Series |
Soggetto genere / forma | Electronic books. |
Soggetto non controllato |
Fuel cells
Supercapacitors Electric batteries |
ISBN |
1-5231-1064-3
1-118-94253-1 1-118-94251-5 1-118-94285-X |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
""2.3 The Zinc Electrode in Alkaline Solutions""""2.4 Alkaline Manganese�Zinc Batteries""; ""2.5 Lead Acid Batteries""; ""2.6 Alkaline Nickel Storage Batteries""; ""2.7 Silver�Zinc Batteries""; ""References""; ""Monographs and Reviews""; ""Chapter 3: Performance""; ""3.1 Electrical Characteristics of Batteries""; ""3.2 Electrical Characteristics of Storage Batteries""; ""3.3 Comparative Characteristics""; ""3.4 Operational Characteristics""; ""References""; ""Chapter 4: Miscellaneous Batteries""; ""4.1 Mercury�Zinc Batteries""; ""4.2 Compound Batteries""
""4.3 Batteries with Water as Reactant""""4.4 Standard Cells""; ""4.5 Reserve Batteries""; ""Reference""; ""Reviews and Monographs""; ""Chapter 5: Design and Technology""; ""5.1 Balance in Batteries""; ""5.2 Scale Factors""; ""5.3 Separators""; ""5.4 Sealing""; ""5.5 Ohmic Losses""; ""5.6 Thermal Processes in Batteries""; ""Chapter 6: Applications of Batteries""; ""6.1 Automotive Equipment Starter and Auxiliary Batteries""; ""6.2 Traction Batteries""; ""6.3 Stationary Batteries""; ""6.4 Domestic and Portable Systems""; ""6.5 Special Applications""; ""Chapter 7: Operational Problems"" ""7.1 Discharge and Maintenance of Primary Batteries""""7.2 Maintenance of Storage Batteries""; ""7.3 General Aspects of Battery Maintenance""; ""Chapter 8: Outlook for Batteries with Aqueous Electrolyte""; ""References""; ""Part II: Batteries with Nonaqueous Electrolytes""; ""Chapter 9: Different Kinds of Electrolytes""; ""9.1 Electrolytes Based on Aprotic Nonaqueous Solutions""; ""9.2 Ionically Conducting Molten Salts""; ""9.3 Ionically Conducting Solid Electrolytes""; ""References""; ""Chapter 10: Insertion Compounds""; ""Monographs and Reviews""; ""Chapter 11: Primary Lithium Batteries"" ""11.1 General Information: Brief History""""11.2 Current-Producing and Other Processes in Primary Power Sources""; ""11.3 Design of Primary Lithium Cells""; ""11.4 Fundamentals of the Technology of Manufacturing of Lithium Primary Cells""; ""11.5 Electric Characteristics of Lithium Cells""; ""11.6 Operational Characteristics of Lithium Cells""; ""11.7 Features of Primary Lithium Cells of Different Electrochemical Systems""; ""Monographs""; ""Chapter 12: Lithium Ion Batteries""; ""12.1 General Information: Brief History"" ""12.2 Current-Producing and Other Processes in Lithium Ion Batteries"" |
Record Nr. | UNINA-9910132397203321 |
Bagot͡skiĭ V. S (Vladimir Sergeevich) | ||
Hoboken, New Jersey : , : John Wiley & Sons, , 2015 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
|
Electrochemical power sources : batteries, fuel cells, and supercapacitors / / Vladimir S. Bagotsky, Alexander M. Skundin, Yurij V. Volfkovich |
Autore | Bagot͡skiĭ V. S (Vladimir Sergeevich) |
Pubbl/distr/stampa | Hoboken, New Jersey : , : John Wiley & Sons, , 2015 |
Descrizione fisica | 1 online resource (815 p.) |
Disciplina | 621.31242 |
Altri autori (Persone) | VolfkovichYurij M. <1940-> |
Collana | Electrochemical Society Series |
Soggetto non controllato |
Fuel cells
Supercapacitors Electric batteries |
ISBN |
1-5231-1064-3
1-118-94253-1 1-118-94251-5 1-118-94285-X |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
""2.3 The Zinc Electrode in Alkaline Solutions""""2.4 Alkaline Manganese�Zinc Batteries""; ""2.5 Lead Acid Batteries""; ""2.6 Alkaline Nickel Storage Batteries""; ""2.7 Silver�Zinc Batteries""; ""References""; ""Monographs and Reviews""; ""Chapter 3: Performance""; ""3.1 Electrical Characteristics of Batteries""; ""3.2 Electrical Characteristics of Storage Batteries""; ""3.3 Comparative Characteristics""; ""3.4 Operational Characteristics""; ""References""; ""Chapter 4: Miscellaneous Batteries""; ""4.1 Mercury�Zinc Batteries""; ""4.2 Compound Batteries""
""4.3 Batteries with Water as Reactant""""4.4 Standard Cells""; ""4.5 Reserve Batteries""; ""Reference""; ""Reviews and Monographs""; ""Chapter 5: Design and Technology""; ""5.1 Balance in Batteries""; ""5.2 Scale Factors""; ""5.3 Separators""; ""5.4 Sealing""; ""5.5 Ohmic Losses""; ""5.6 Thermal Processes in Batteries""; ""Chapter 6: Applications of Batteries""; ""6.1 Automotive Equipment Starter and Auxiliary Batteries""; ""6.2 Traction Batteries""; ""6.3 Stationary Batteries""; ""6.4 Domestic and Portable Systems""; ""6.5 Special Applications""; ""Chapter 7: Operational Problems"" ""7.1 Discharge and Maintenance of Primary Batteries""""7.2 Maintenance of Storage Batteries""; ""7.3 General Aspects of Battery Maintenance""; ""Chapter 8: Outlook for Batteries with Aqueous Electrolyte""; ""References""; ""Part II: Batteries with Nonaqueous Electrolytes""; ""Chapter 9: Different Kinds of Electrolytes""; ""9.1 Electrolytes Based on Aprotic Nonaqueous Solutions""; ""9.2 Ionically Conducting Molten Salts""; ""9.3 Ionically Conducting Solid Electrolytes""; ""References""; ""Chapter 10: Insertion Compounds""; ""Monographs and Reviews""; ""Chapter 11: Primary Lithium Batteries"" ""11.1 General Information: Brief History""""11.2 Current-Producing and Other Processes in Primary Power Sources""; ""11.3 Design of Primary Lithium Cells""; ""11.4 Fundamentals of the Technology of Manufacturing of Lithium Primary Cells""; ""11.5 Electric Characteristics of Lithium Cells""; ""11.6 Operational Characteristics of Lithium Cells""; ""11.7 Features of Primary Lithium Cells of Different Electrochemical Systems""; ""Monographs""; ""Chapter 12: Lithium Ion Batteries""; ""12.1 General Information: Brief History"" ""12.2 Current-Producing and Other Processes in Lithium Ion Batteries"" |
Record Nr. | UNINA-9910677382603321 |
Bagot͡skiĭ V. S (Vladimir Sergeevich) | ||
Hoboken, New Jersey : , : John Wiley & Sons, , 2015 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
|
Fuel cells : problems and solutions / / Vladimir S. Bagotsky |
Autore | Bagot͡skiĭ V. S (Vladimir Sergeevich) |
Edizione | [2nd ed.] |
Pubbl/distr/stampa | Hoboken, New Jersey : , : Wiley, , 2011 |
Descrizione fisica | 1 online resource (408 p.) |
Disciplina |
621.31/2429
621.312429 |
Collana | The Electrochemical Society Series |
Soggetto topico | Fuel cells |
Soggetto genere / forma | Electronic books. |
ISBN |
1-78539-326-X
1-280-58827-6 9786613618108 1-118-19133-1 1-118-19132-3 1-118-19131-5 |
Classificazione | TEC031000 |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
FUEL CELLS; CONTENTS; PREFACE; PREFACE TO THE FIRST EDITION; SYMBOLS; ABBREVIATIONS AND ACRONYMS; PART I INTRODUCTION; Introduction; What Is a Fuel Cell? Definition of the Term Significance of Fuel Cells for the Economy; 1 The Working Principles of a Fuel Cell; 1.1 Thermodynamic Aspects; 1.2 Schematic Layout of Fuel Cell Units; 1.3 Types of Fuel Cells; 1.4 Layout of a Real Fuel Cell: The Hydrogen-Oxygen Fuel Cell with Liquid Electrolyte; 1.5 Basic Parameters of Fuel Cells; Reference; 2 The Long History of Fuel Cells; 2.1 The Period Prior to 1894; 2.2 The Period from 1894 to 1960
2.3 The Period from 1960 to the 1990s2.4 The Period After the 1990s; References; PART II MAJOR TYPES OF FUEL CELLS; 3 Proton-Exchange Membrane Fuel Cells; 3.1 History of the PEMFC; 3.2 Standard PEMFC Version from the 1990s; 3.3 Special Features of PEMFC Operation; 3.4 Platinum Catalyst Poisoning by Traces of CO in the Hydrogen; 3.5 Commercial Activities in Relation to PEMFCs; 3.6 Future Development of PEMFCs; 3.7 Elevated-Temperature PEMFCs; References; 4 Direct Liquid Fuel Cells; Part A: Direct Methanol Fuel Cells; 4.1 Methanol as a Fuel for Fuel Cells 4.2 Current-Producing Reactions and Thermodynamic Parameters4.3 Anodic Oxidation of Methanol; 4.4 Milestones in DMFC Development; 4.5 Membrane Penetration by Methanol (Methanol Crossover); 4.6 Varieties of DMFCs; 4.7 Special Operating Features of DMFCs; 4.8 Practical Models of DMFCs and Their Features; 4.9 Problems to Be Solved in Future DMFCs; Part B: Direct Liquid Fuel Cells; 4.10 The Problem of Replacing Methanol; 4.11 Fuel Cells Using Organic Liquids as Fuels; 4.12 Fuel Cells Using Inorganic Liquids as Fuels; References; 5 Phosphoric Acid Fuel Cells 5.1 Early Work on Phosphoric Acid Fuel Cells5.2 Special Features of Aqueous Phosphoric Acid Solutions; 5.3 Construction of PAFCs; 5.4 Commercial Production of PAFCs; 5.5 Development of Large Stationary Power Plants; 5.6 The Future of PAFCs; 5.7 Importance of PAFCs for Fuel Cell Development; References; 6 Alkaline Fuel Cells; 6.1 Hydrogen-Oxygen AFCs; 6.2 Alkaline Hydrazine Fuel Cells; 6.3 Anion-Exchange (Hydroxyl Ion-Conducting) Membranes; 6.4 Methanol Fuel Cells with Anion-Exchange Membranes; 6.5 Methanol Fuel Cell with an Invariant Alkaline Electrolyte 6.6 Direct Ammonia Fuel Cell with an Anion-Exchange MembraneReferences; 7 Molten Carbonate Fuel Cells; 7.1 Special Features of High-Temperature Fuel Cells; 7.2 Structure of Hydrogen-Oxygen MCFCs; 7.3 MCFCs with Internal Fuel Reforming; 7.4 Development of MCFC Work; 7.5 The Lifetime of MCFCs; References; 8 Solid-Oxide Fuel Cells; 8.1 Schematic Design of Conventional SOFCs; 8.2 Tubular SOFCs; 8.3 Planar SOFCs; 8.4 Monolithic SOFCs; 8.5 Varieties of SOFCs; 8.6 Utilization of Natural Fuels in SOFCs; 8.7 Interim-Temperature SOFCs; 8.8 Low-Temperature SOFCs 8.9 Factors Influencing the Lifetime of SOFCs |
Record Nr. | UNINA-9910139700303321 |
Bagot͡skiĭ V. S (Vladimir Sergeevich) | ||
Hoboken, New Jersey : , : Wiley, , 2011 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
|
Fuel cells : problems and solutions / / Vladimir S. Bagotsky |
Autore | Bagot͡skiĭ V. S (Vladimir Sergeevich) |
Edizione | [2nd ed.] |
Pubbl/distr/stampa | Hoboken, New Jersey : , : Wiley, , 2011 |
Descrizione fisica | 1 online resource (408 p.) |
Disciplina |
621.31/2429
621.312429 |
Collana | The Electrochemical Society Series |
Soggetto topico | Fuel cells |
ISBN |
1-78539-326-X
1-280-58827-6 9786613618108 1-118-19133-1 1-118-19132-3 1-118-19131-5 |
Classificazione | TEC031000 |
Formato | Materiale a stampa |
Livello bibliografico | Monografia |
Lingua di pubblicazione | eng |
Nota di contenuto |
FUEL CELLS; CONTENTS; PREFACE; PREFACE TO THE FIRST EDITION; SYMBOLS; ABBREVIATIONS AND ACRONYMS; PART I INTRODUCTION; Introduction; What Is a Fuel Cell? Definition of the Term Significance of Fuel Cells for the Economy; 1 The Working Principles of a Fuel Cell; 1.1 Thermodynamic Aspects; 1.2 Schematic Layout of Fuel Cell Units; 1.3 Types of Fuel Cells; 1.4 Layout of a Real Fuel Cell: The Hydrogen-Oxygen Fuel Cell with Liquid Electrolyte; 1.5 Basic Parameters of Fuel Cells; Reference; 2 The Long History of Fuel Cells; 2.1 The Period Prior to 1894; 2.2 The Period from 1894 to 1960
2.3 The Period from 1960 to the 1990s2.4 The Period After the 1990s; References; PART II MAJOR TYPES OF FUEL CELLS; 3 Proton-Exchange Membrane Fuel Cells; 3.1 History of the PEMFC; 3.2 Standard PEMFC Version from the 1990s; 3.3 Special Features of PEMFC Operation; 3.4 Platinum Catalyst Poisoning by Traces of CO in the Hydrogen; 3.5 Commercial Activities in Relation to PEMFCs; 3.6 Future Development of PEMFCs; 3.7 Elevated-Temperature PEMFCs; References; 4 Direct Liquid Fuel Cells; Part A: Direct Methanol Fuel Cells; 4.1 Methanol as a Fuel for Fuel Cells 4.2 Current-Producing Reactions and Thermodynamic Parameters4.3 Anodic Oxidation of Methanol; 4.4 Milestones in DMFC Development; 4.5 Membrane Penetration by Methanol (Methanol Crossover); 4.6 Varieties of DMFCs; 4.7 Special Operating Features of DMFCs; 4.8 Practical Models of DMFCs and Their Features; 4.9 Problems to Be Solved in Future DMFCs; Part B: Direct Liquid Fuel Cells; 4.10 The Problem of Replacing Methanol; 4.11 Fuel Cells Using Organic Liquids as Fuels; 4.12 Fuel Cells Using Inorganic Liquids as Fuels; References; 5 Phosphoric Acid Fuel Cells 5.1 Early Work on Phosphoric Acid Fuel Cells5.2 Special Features of Aqueous Phosphoric Acid Solutions; 5.3 Construction of PAFCs; 5.4 Commercial Production of PAFCs; 5.5 Development of Large Stationary Power Plants; 5.6 The Future of PAFCs; 5.7 Importance of PAFCs for Fuel Cell Development; References; 6 Alkaline Fuel Cells; 6.1 Hydrogen-Oxygen AFCs; 6.2 Alkaline Hydrazine Fuel Cells; 6.3 Anion-Exchange (Hydroxyl Ion-Conducting) Membranes; 6.4 Methanol Fuel Cells with Anion-Exchange Membranes; 6.5 Methanol Fuel Cell with an Invariant Alkaline Electrolyte 6.6 Direct Ammonia Fuel Cell with an Anion-Exchange MembraneReferences; 7 Molten Carbonate Fuel Cells; 7.1 Special Features of High-Temperature Fuel Cells; 7.2 Structure of Hydrogen-Oxygen MCFCs; 7.3 MCFCs with Internal Fuel Reforming; 7.4 Development of MCFC Work; 7.5 The Lifetime of MCFCs; References; 8 Solid-Oxide Fuel Cells; 8.1 Schematic Design of Conventional SOFCs; 8.2 Tubular SOFCs; 8.3 Planar SOFCs; 8.4 Monolithic SOFCs; 8.5 Varieties of SOFCs; 8.6 Utilization of Natural Fuels in SOFCs; 8.7 Interim-Temperature SOFCs; 8.8 Low-Temperature SOFCs 8.9 Factors Influencing the Lifetime of SOFCs |
Record Nr. | UNINA-9910677087703321 |
Bagot͡skiĭ V. S (Vladimir Sergeevich) | ||
Hoboken, New Jersey : , : Wiley, , 2011 | ||
Materiale a stampa | ||
Lo trovi qui: Univ. Federico II | ||
|