Produktbild: High Power Microwave Sources and Technologies Using Metamaterials

High Power Microwave Sources and Technologies Using Metamaterials

179,99 €

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Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

02.12.2021

Herausgeber

John W. Luginsland + weitere

Verlag

John Wiley & Sons

Seitenzahl

304

Maße (L/B/H)

26,3/18,8/2,5 cm

Gewicht

719 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-1-119-38444-1

Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

02.12.2021

Herausgeber

Verlag

John Wiley & Sons

Seitenzahl

304

Maße (L/B/H)

26,3/18,8/2,5 cm

Gewicht

719 g

Auflage

1. Auflage

Sprache

Englisch

ISBN

978-1-119-38444-1

Herstelleradresse

Libri GmbH
Europaallee 1
36244 Bad Hersfeld
DE

Email: gpsr@libri.de

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  • Produktbild: High Power Microwave Sources and Technologies Using Metamaterials
  • Editor Biographies xi
     
    List of Contributors xiii
     
    Foreword xvii
     
    Preface xix
     
    1 Introduction and Overview of the Book 1
    Rebecca Seviour
     
    1.1 Introduction 1
     
    1.2 Electromagnetic Materials 2
     
    1.3 Effective-Media Theory 4
     
    1.4 History of Effective Materials 4
     
    1.4.1 Artificial Dielectrics 4
     
    1.4.2 Artificial Magnetic Media 5
     
    1.5 Double Negative Media 7
     
    1.5.1 DNG Realization 9
     
    1.6 BackwardWave Propagation 9
     
    1.7 Dispersion 10
     
    1.8 Parameter Retrieval 12
     
    1.9 Loss 13
     
    1.10 Summary 14
     
    References 14
     
    2 Multitransmission Line Model for Slow Wave Structures Interacting with Electron Beams and Multimode Synchronization 17
    Ahmed F. Abdelshafy, Mohamed A.K. Othman, Alexander Figotin, and Filippo Capolino
     
    2.1 Introduction 17
     
    2.2 Transmission Lines: A Preview 18
     
    2.2.1 Multiple Transmission Line Model 18
     
    2.3 Modeling ofWaveguide Propagation Using the Equivalent Transmission Line Model 20
     
    2.3.1 Propagation in UniformWaveguides 21
     
    2.3.2 Propagation in PeriodicWaveguides 22
     
    2.3.3 Floquet's Theorem 24
     
    2.4 Pierce Theory and the Importance of Transmission Line Model 25
     
    2.5 Generalized Pierce Model for Multimodal SlowWave Structures 28
     
    2.5.1 Multitransmission Line FormulationWithout Electron Beam: "Cold SWS" 28
     
    2.5.2 Multitransmission Line Interacting with an Electron Beam: "Hot SWS" 30
     
    2.6 Periodic Slow-Wave Structure and Transfer Matrix Method 32
     
    2.7 Multiple Degenerate Modes Synchronized with the Electron Beam 34
     
    2.7.1 Multimode Degeneracy Condition 34
     
    2.7.2 Degenerate Band Edge (DBE) 34
     
    2.7.3 Super Synchronization 35
     
    2.7.4 Complex Dispersion Characteristics of a Periodic MTL Interacting with an Electron Beam 38
     
    2.8 Giant Amplification Associated to Multimode Synchronization 39
     
    2.9 Low Starting Electron Beam Current in Multimode Synchronization-Based Oscillators 42
     
    2.10 SWS Made by Dual Nonidentical Coupled Transmission Lines Inside aWaveguide 46
     
    2.10.1 Dispersion Engineering Using Dual Nonidentical Pair of TLs 47
     
    2.10.2 BWO Design Using Butterfly Structure 49
     
    2.11 Three-Eigenmode Super Synchronization: Applications in Amplifiers 50
     
    2.12 Summary 53
     
    References 54
     
    3 Generalized Pierce Model from the Lagrangian 57
    Alexander Figotin and Guillermo Reyes
     
    3.1 Introduction 57
     
    3.2 Main Results 59
     
    3.2.1 Lagrangian Structure of the Standard Pierce Model 59
     
    3.2.2 Multiple Transmission Lines 60
     
    3.2.3 The Amplification Mechanism and Negative Potential Energy 60
     
    3.2.4 Beam Instability and Degenerate Beam Lagrangian 61
     
    3.2.5 Full Characterization of the Existence of an Amplifying Regime 61
     
    3.2.6 Energy Conservation and Fluxes 62
     
    3.2.7 Negative Potential Energy and General Gain Media 62
     
    3.3 Pierce's Model 63
     
    3.4 Lagrangian Formulation of Pierce's Model 65
     
    3.4.1 The Lagrangian 65
     
    3.4.2 Generalization to Multiple Transmission Lines 67
     
    3.5 Hamiltonian Structure of the MTLB System 68
     
    3.5.1 Hamiltonian Forms for Quadratic Lagrangian Densities 68
     
    3.5.2 The MTLB System 70
     
    3.6 The Beam as a Source of Amplification: The Role of Instability 71
     
    3.6.1 Space ChargeWave Dynamics: Eigenmodes and Stability Issues 71
     
    3.7 Amplification for the Homogeneous Case 74
     
    3.7.1 Asymptotic Behavior of the Amplification Factor as chi--> 0 and as chi--> infinity 77