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Tsimring, Shulim E. Electron Beams and Microwave Vacuum Electronics
Levertijd: 5 tot 11 werkdagen


Shulim E. Tsimring

Electron Beams and Microwave Vacuum Electronics

€ 223.95

This book focuses on a fundamental feature of vacuum electronics: the strong interaction of the physics of electron beams and vacuum microwave electronics, including millimeter wave electronics. The author guides readers from the roots of classical vacuum electronics to the most recent achievements in the field.


Taal / Language : English

Inhoudsopgave:
PREFACE xix
Introduction 1(14)
I.1 Outline of the Book
1(4)
I.2 List of Symbols
5(1)
I.3 Electromagnetic Fields and Potentials
6(1)
I.4 Principle of Least Action. Lagrangian. Generalized Momentum. Lagrangian Equations
7(2)
I.5 Hamiltonian. Hamiltonian Equations
9(1)
I.6 Lionville Theorem
10(2)
I.6.1 Lionville Theorem for Interaction Particles
10(1)
I.6.2 Lionville Theorem for Noninteraction Identical Particles
11(1)
I.6.3 Lionville Theorem for a Phase Space of Lesser Dimensions
12(1)
I.7 Emittance. Brightness
12(223)
I.7.1 Emittance in a Zero Magnetic Field
12(1)
I.7.2 Brightness
13(1)
I.7.3 Maximum Langmuir Brightness for Thermionic Emitters
14(1)
PART I ELECTRON BEAMS 15(220)
1 Motion of Electrons in External Electric and Magnetic Static Fields
17(30)
1.1 Introduction
17(1)
1.2 Energy of a Charged Particle
17(1)
1.3 Potential Velocity Relation (Static Fields)
18(2)
1.4 Electrons in a Linear Electric Field e0E = kx
20(1)
1.4.1 Nonrelativistic Approximation
20(1)
1.4.2 Relativistic Oscillator
20(1)
1.5 Motion of Electrons in Homogeneous Static Fields
21(10)
1.5.1 Electric Field
21(2)
1.5.2 Magnetic Field
23(2)
1.5.3 Parallel Electric and Magnetic Fields
25(2)
1.5.4 Perpendicular Fields E and B
27(3)
1.5.5 Arbitrary Orientation of Fields E and B. Nonrelativistic Approximation
30(1)
1.6 Motion of Electrons in Weakly Inhomogeneous Static Fields
31(10)
1.6.1 Small Variations in Electromagnetic Fields Acting on Moving Charged Particles
32(1)
1.6.2 Adiabatic Invariants
33(4)
1.6.3 Motion of the Guiding Center
37(4)
1.7 Motion of Electrons in Fields with Axial and Plane Symmetry. Busch`s Theorem
41(6)
1.7.1 Systems with Axial Symmetry. Busch`s Theorem
41(2)
1.7.2 Formation of Helical Trajectories at a Jump in a Magnetic Field
43(1)
1.7.3 Systems with Plane Symmetry
44(3)
2 Electron Lenses
47(66)
2.1 Introduction
47(1)
2.2 Maupertuis`s Principle. Electron-Optical Refractive index. Differential Equations of Trajectories
48(3)
2.2.1 Maupertuis`s Principle. Differential Equations of Trajectories
48(2)
2.2.2 General Properties of Charged-Particle Trajectories in Electromagnetic Fields
50(1)
2.3 Differential Equations of Trajectories in Axially Symmetric Fields
51(2)
2.4 Differential Equations of Paraxial Trajectories in Axially Symmetric Fields Without a Space Charge
53(3)
2.5 Formation of Images by Paraxial Trajectories
56(5)
2.5.1 Linearization of Trajectory Equations
56(1)
2.5.2 Rotation of an Image. Stigmatic Imaging. Image Similarity
57(2)
2.5.3 Magnifications
59(2)
2.6 Electrostatic Axially Symmetric Lenses
61(15)
2.6.1 Classification of Electrostatic Lenses
61(2)
2.6.2 Immersion and Unipotential Lenses
63(2)
2.6.3 Cardinal Elements of a Lens with Limited Field Extent
65(2)
2.6.4 Focal Length of Thin Unipotential and Immersion Lenses
67(2)
2.6.5 Aperture Lenses
69(4)
2.6.6 Applications of Cathode Lenses
73(3)
2.7 Magnetic Axially Symmetric Lenses
76(11)
2.7.1 Equations of Paraxial Trajectories. Classification of Magnetic Lenses
76(1)
2.7.2 Short Magnetic Lenses
77(3)
2.7.3 Strong Magnetic Lenses
80(6)
2.7.4 Long Magnetic Lenses
86(1)
2.8 Aberrations of Axially Symmetric Lenses
87(10)
2.8.1 Geometric Aberrations
87(7)
2.8.2 Chromatic Aberration
94(2)
2.8.3 Disturbances of Axial Symmetry
96(1)
2.8.4 Space-Charge Fields
96(1)
Extra informatie: 
Hardback
574 pagina's
Januari 2006
953 gram
241 x 159 x 32 mm
Wiley-Blackwell us

Levertijd: 5 tot 11 werkdagen