RF power semiconductor generator application in heating and energy utilization. (2020)
- Record Type:
- Book
- Title:
- RF power semiconductor generator application in heating and energy utilization. (2020)
- Main Title:
- RF power semiconductor generator application in heating and energy utilization
- Further Information:
- Note: Satoshi Horikoshi, Nick Serpone, editors.
- Other Names:
- Horikoshi, Satoshi
Serpone, Nick, 1939- - Contents:
- Intro -- Preface -- Contents -- About the Editors -- Part I Solid State RF -- 1 RF Energy System with Solid State Device -- 1.1 Introduction -- 1.2 Basic Technology of a Microwave Amplifier with a Solid State Device -- 1.3 Recent Research and Development Status of Microwave Amplifiers -- 1.4 Recent Commercial High Power Microwave Amplifiers -- 1.5 New Microwave Heating Systems with Solid State Devices -- 1.6 Concluding Remarks -- References -- 2 Solid-State RF Power Generators -- 2.1 Introduction -- 2.1.1 The Magnetron -- 2.1.2 Benefits of the Solid-State Generator 2.1.3 The Need for a Systems Approach -- 2.2 RF Power Semiconductors -- 2.2.1 LDMOS -- 2.2.2 GaN -- 2.2.3 Reliability and Thermal Behaviour -- 2.2.4 Ruggedness -- 2.2.5 Internal Impedance Matching -- 2.2.6 Simulation Models -- 2.3 RF Power Amplifier Design -- 2.3.1 Key Performance Parameters -- 2.3.2 Power Amplifier Classes -- 2.3.3 Power Amplifier Packaging -- 2.3.4 Impedance Matching -- 2.3.5 Bias and Control -- 2.3.6 Pulse Considerations -- 2.3.7 Power Monitoring -- 2.3.8 Integrated Power Amplifier Devices -- 2.4 Generator Architecture -- 2.4.1 Gain Budgeting -- 2.4.2 RF Power Oscillators 2.4.3 Power Combining -- 2.4.4 Signal Sources -- 2.4.5 Coherent Measurements -- 2.4.6 Thermal Management -- 2.5 Design Tools -- References -- Part II Heating Applications -- 3 Mechanism of Microwave Heating of Matter -- 3.1 What Is Heat? -- 3.2 Difference Between Microwave Frequency and Vibrations of Atoms/Molecules -- 3.3Intro -- Preface -- Contents -- About the Editors -- Part I Solid State RF -- 1 RF Energy System with Solid State Device -- 1.1 Introduction -- 1.2 Basic Technology of a Microwave Amplifier with a Solid State Device -- 1.3 Recent Research and Development Status of Microwave Amplifiers -- 1.4 Recent Commercial High Power Microwave Amplifiers -- 1.5 New Microwave Heating Systems with Solid State Devices -- 1.6 Concluding Remarks -- References -- 2 Solid-State RF Power Generators -- 2.1 Introduction -- 2.1.1 The Magnetron -- 2.1.2 Benefits of the Solid-State Generator 2.1.3 The Need for a Systems Approach -- 2.2 RF Power Semiconductors -- 2.2.1 LDMOS -- 2.2.2 GaN -- 2.2.3 Reliability and Thermal Behaviour -- 2.2.4 Ruggedness -- 2.2.5 Internal Impedance Matching -- 2.2.6 Simulation Models -- 2.3 RF Power Amplifier Design -- 2.3.1 Key Performance Parameters -- 2.3.2 Power Amplifier Classes -- 2.3.3 Power Amplifier Packaging -- 2.3.4 Impedance Matching -- 2.3.5 Bias and Control -- 2.3.6 Pulse Considerations -- 2.3.7 Power Monitoring -- 2.3.8 Integrated Power Amplifier Devices -- 2.4 Generator Architecture -- 2.4.1 Gain Budgeting -- 2.4.2 RF Power Oscillators 2.4.3 Power Combining -- 2.4.4 Signal Sources -- 2.4.5 Coherent Measurements -- 2.4.6 Thermal Management -- 2.5 Design Tools -- References -- Part II Heating Applications -- 3 Mechanism of Microwave Heating of Matter -- 3.1 What Is Heat? -- 3.2 Difference Between Microwave Frequency and Vibrations of Atoms/Molecules -- 3.3 Interaction Between Microwaves (Electromagnetic Waves) and Matter -- 3.4 Heating Mechanism by the Microwaves' Electric (E-) Field -- 3.4.1 Molecules (Mainly Liquids) -- 3.4.2 Inorganic Solids -- 3.5 Mechanism of Heating by the Microwaves' Magnetic (H-) Field 3.5.1 Electric Conductor -- 3.5.2 Ferromagnetic Materials -- 3.5.3 Distinction Between Induction Current (Ohmic) Loss and Magnetic Loss -- 3.6 Converting Mechanisms of Microwave Energy into Heat -- References -- 4 Microwave Flow Chemistry -- 4.1 Introduction -- 4.1.1 Microwave Heating Devices -- 4.1.2 Microwave Heating in Chemical Synthesis -- 4.1.3 Flow Chemistry: Principles and Benefits -- 4.1.4 Synergy of Flow Chemistry and Microwave Heating -- 4.1.5 Merits of a Semiconductor Microwave Generator in Flow Chemistry -- 4.2 Semiconductor Generators: Microwave Flow Chemistry Applications 4.2.1 Reported Reactor Configurations and Capabilities -- 4.2.2 High-Temperature Rearrangements and Cycloadditions -- 4.2.3 High-Temperature Alkylation Reactions -- 4.2.4 Heterogeneous Catalytic Reactions -- 4.2.5 Reaction Optimization -- 4.3 Summary and Outlook -- References and Notes -- 5 Curing of Adhesives and Resins with Microwaves -- 5.1 Molecular Polarization and Rotation -- 5.2 Reaction Kinetics -- 5.3 Thermodynamics -- 5.4 Field Size and Uniformity Effects -- 5.5 Variable Frequency Microwaves {VFM} -- 5.6 Temperature Control of Adhesion -- 5.7 Unique Polymerization Characteristics … (more)
- Publisher Details:
- Singapore : Springer
- Publication Date:
- 2020
- Extent:
- 1 online resource (240 p.)
- Subjects:
- 621.3815/2
Semiconductors
Semiconductors
Electronic books
Electronic books - Languages:
- English
- ISBNs:
- 9789811535482
9811535485
9811535477
9789811535475
9789811535499
9811535493
9789811535505
9811535507 - Related ISBNs:
- 9789811535475
- Access Rights:
- Legal Deposit; Only available on premises controlled by the deposit library and to one user at any one time; The Legal Deposit Libraries (Non-Print Works) Regulations (UK).
- Access Usage:
- Restricted: Printing from this resource is governed by The Legal Deposit Libraries (Non-Print Works) Regulations (UK) and UK copyright law currently in force.
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library HMNTS - ELD.DS.511185
- Ingest File:
- 03_091.xml