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020 _a9780470544662
_qelectronic
020 _z0780360311
_qprint
020 _z1601194005
_qelectronic book
020 _z9780780360310
_qprint
020 _z9781601194008
_qelectronic book
020 _z047054466X
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024 7 _a10.1109/9780470544662
_2doi
035 _a(CaBNVSL)mat05265446
035 _a(IDAMS)0b000064810c5371
040 _aCaBNVSL
_beng
_erda
_cCaBNVSL
_dCaBNVSL
050 4 _aTK7876
_b.C645 2001eb
082 0 4 _a621.381/3
_222
100 1 _aCollin, Robert E.,
_eauthor.
_926968
245 1 0 _aFoundations for microwave engineering /
_cRobert E. Collin.
250 _a2nd ed.
264 1 _aNew York :
_bIEEE Press,
_cc2001.
264 2 _a[Piscataqay, New Jersey] :
_bIEEE Xplore,
_c[2001]
300 _a1 PDF (xix, 924 pages) :
_billustrations.
336 _atext
_2rdacontent
337 _aelectronic
_2isbdmedia
338 _aonline resource
_2rdacarrier
490 1 _aIEEE Press series on electromagnetic wave theory ;
_v11
500 _aOriginally published: New York : McGraw Hill, c1992.
500 _a"An IEEE Press classic reissue."
504 _aIncludes bibliographical references and indexes.
505 0 _aPreface -- 1 Introduction -- 1.1 Microwave Frequencies -- 1.2 Microwave Applications -- 1.3 Microwave Circuit Elements and Analysis -- 2 Electromagnetic Theory -- 2.1 Maxwell's Equations -- 2.2 Constitutive Relations -- 2.3 Static Fields -- 2.4 Wave Equation -- 2.5 Energy and Power -- 2.6 Boundary Conditions -- 2.7 Plane Waves -- 2.8 Reflection from a Dielectric Interface -- 2.9 Reflection from a Conducting Plane -- 2.10 Potential Theory -- 2.11 Derivation of Solution for Vector Potential -- 2.12 Lorentz Reciprocity Theorem -- 3 Transmission Lines and Waveguides -- Part 1 Waves on Transmission Lines -- 3.1 Waves on An Ideal Transmission Line -- 3.2 Terminated Transmission Line: Resistive Load -- 3.3 Capacitive Termination -- 3.4 Steady-State Sinusoidal Waves -- 3.5 Waves on a Lossy Transmission Line -- 3.6 Terminated Transmission Line: Sinusoidal Waves -- Part 2 Field Analysis of Transmission Lines -- 3.7 Classification of Wave Solutions -- 3.8 Transmission Lines (Field Analysis) -- 3.9 Transmission-Line Parameters -- 3.10 Inhomogeneously Filled Parallel-Plate Transmission Line -- 3.11 Planar Transmission Lines -- 3.12 Microstrip Transmission Line -- 3.13 Coupled Microstrip Lines -- 3.14 Strip Transmission Lines -- 3.15 Coupled Strip Lines -- 3.16 Coplanar Transmission Lines -- Part 3 Rectangular and Circular Waveguides -- 3.17 Rectangular Waveguide -- 3.18 Circular Waveguides -- 3.19 Wave Velocities -- 3.20 Ridge Waveguide -- 3.21 Fin Line -- 4 Circuit Theory for Waveguiding Systems -- 4.1 Equivalent Voltages and Currents -- 4.2 Impedance Description of Waveguide Elements and Circuits -- 4.3 Foster's Reactance Theorem -- 4.4 Even and Odd Properties of Zin -- 4.5 iV-Port Circuits -- 4.6 Two-Port Junctions -- 4.7 Scattering-Matrix Formulation -- 4.8 Scattering Matrix for a Two-Port Junction -- 4.9 Transmission-Matrix Representation -- 4.10 Signal Flow Graphs -- 4.11 Generalized Scattering Matrix for Power Waves -- 4.12 Excitation of Waveguides -- 4.13 Waveguide Coupling by Apertures.
505 8 _a5 Impedance Transformation and Matching -- 5.1 Smith Chart -- 5.2 Impedance Matching with Reactive Elements -- 5.3 Double-Stub Matching Network -- 5.4 Triple-Stub Tuner -- 5.5 Impedance Matching with Lumped Elements -- 5.6 Design of Complex Impedance Terminations -- 5.7 Invariant Property of Impedance Mismatch Factor -- 5.8 Waveguide Reactive Elements -- 5.9 Quarter-Wave Transformers -- 5.10 Theory of Small Reflections -- 5.11 Approximate Theory for Multisection Quarter-Wave Transformers -- 5.12 Binomial Transformer -- 5.13 Chebyshev Transformer -- 5.14 Chebyshev Transformer (Exact Results) -- 5.15 Filter Design Based on Quarter-Wave-Transformer Prototype Circuit -- 5.16 Tapered Transmission Lines -- 5.17 Synthesis of Transmission-Line Tapers -- 5.18 Chebyshev Taper -- 5.19 Exact Equation for the Reflection Coefficient -- 6 Passive Microwave Devices -- 6.1 Terminations -- 6.2 Attenuators -- 6.3 Phase Shifters -- 6.4 Directional Couplers -- 6.5 Hybrid Junctions -- 6.6 Power Dividers -- 6.7 Microwave Propagation in Ferrites -- 6.8 Faraday Rotation -- 6.9 Microwave Devices Employing Faraday Rotation -- 6.10 Circulators -- 6.11 Other Ferrite Devices -- 7 Electromagnetic Resonators -- 7.1 Resonant Circuits -- 7.2 Transmission-Line Resonant Circuits -- 7.3 Microstrip Resonators -- 7.4 Microwave Cavities -- 7.5 Dielectric Resonators -- 7.6 Equivalent Circuits for Cavities -- 7.7 Field Expansion in a General Cavity -- 7.8 Oscillations in a Source-Free Cavity -- 7.9 Excitation of Cavities -- 7.10 Cavity Perturbation Theory -- 8 Periodic Structures and Filters -- 8.1 Capacitively Loaded Transmission-Line-Circuit Analysis -- 8.2 Wave Analysis of Periodic Structures -- 8.3 Periodic Structures Composed of Unsymmetrical Two-Port Networks -- 8.4 Terminated Periodic Structures -- 8.5 Matching of Periodic Structures -- 8.6 k0-aL Diagram -- 8.7 Group Velocity and Energy Flow -- 8.8 Floquet's Theorem and Spatial Harmonics -- 8.9 Periodic Structures for Traveling-Wave Tubes.
505 8 _a8.10 Sheath Helix -- 8.11 Some General Properties of a Helix -- 8.12 Introduction to Microwave Filters -- 8.13 Image-Parameter Method of Filter Design -- 8.14 Filter Design by Insertion-Loss Method -- 8.15 Specification of Power Loss Ratio -- 8.16 Some Low-Pass-Filter Designs -- 8.17 Frequency Transformations -- 8.18 Impedance and Admittance Inverters -- 8.19 A Microstrip Half-Wave Filter -- 8.20 Microstrip Parallel Coupled Filter -- 8.21 Quarter-Wave-Coupled Cavity Filters -- 8.22 Direct-Coupled Cavity Filters -- 8.23 Other Types of Filters -- 9 Microwave Tubes -- 9.1 Introduction -- 9.2 Electron Beams with dc Conditions -- 9.3 Space-Charge Waves on Beams with Confined Flow -- 9.4 Space-Charge Waves on Unfocused Beams -- 9.5 Ac Power Relations -- 9.6 Velocity Modulation -- 9.7 Two-Cavity Klystron -- 9.8 Reflex Klystron -- 9.9 Magnetron -- 9.10 O-Type Traveling-Wave Tube -- 9.11 M-Type Traveling-Wave Tube -- 9.12 Gyrotrons -- 9.13 Other Types of Microwave Tubes -- 10 Solid-State Amplifiers -- 10.1 Bipolar Transistors -- 10.2 Field-Effect Transistors -- 10.3 Circle-Mapping Properties of Bilinear Transformations -- 10.4 Microwave Amplifier Design Using Sij Parameters -- 10.5 Amplifier Power Gain -- 10.6 Amplifier Stability Criteria -- 10.7 Constant Power-Gain Circles -- 10.8 Basic Noise Theory -- 10.9 Low-Noise Amplifier Design -- 10.10 Constant Mismatch Circles -- 10.11 Microwave Amplifier Design -- 10.12 Other Aspects of Microwave Amplifier Design -- 11 Parametric Amplifiers -- 11.1 p-n Junction Diodes -- 11.2 Manley-Rowe Relations -- 11.3 Linearized Equations for Parametric Amplifiers -- 11.4 Parametric Up-Converter -- 11.5 Negative-Resistance Parametric Amplifier -- 11.6 Noise Properties of Parametric Amplifiers -- 12 Oscillators and Mixers -- 12.1 Gunn Oscillators -- 12.2 IMPATT Diodes -- 12.3 Transistor Oscillators -- 12.4 Three-Port Description of a Transistor -- 12.5 Oscillator Circuits -- 12.6 Oscillator Design -- 12.7 Mixers -- 12.8 Mixer Noise Figure -- 12.9 Balanced Mixers.
505 8 _a12.10 Other Types of Mixers -- 12.11 Mixer Analysis Using Harmonic Balancing -- Appendixes -- I Useful Relations from Vector Analysis -- I.1 Vector Algebra -- I.2 Vector Operations in Common Coordinate Systems -- I.3 Vector Identities -- I.4 Green's Identities -- II Bessel Functions -- II.1 Ordinary Bessel Functions -- II.2 Modified Bessel Functions -- III Conformal Mapping Techniques -- III.1 Conformal Mapping -- III.2 Elliptic Sine Function -- III.3 Capacitance between Two Parallel Strips -- III.4 Strip Transmission Line -- III.5 Conductor Loss -- III.6 Conductor Losses for a Microstrip Transmission Line -- III.7 Attenuation for a Coplanar Line -- IV Physical Constants and Other Data -- IV.1 Physical Constants -- IV.2 Conductivities of Materials -- IV.3 Dielectric Constants of Materials -- IV.4 Skin Depth in Copper -- Index.
506 1 _aRestricted to subscribers or individual electronic text purchasers.
520 _a"FOUNDATIONS FOR MICROWAVE ENGINEERING, Second Edition, covers the major topics of microwave engineering. Its presentation defines the accepted standard for both advanced undergraduate and graduate level courses on microwave engineering. An essential reference book for the practicing microwave engineer, it features:. Planar transmission lines, as well as an appendix that describes in detail conformal mapping methods for their analysis and attenuation characteristics. Small aperture coupling and its application in practical components such as directional couplers and cavity coupling. Printed circuit components with an emphasis on techniques such as even and odd mode analysis and the use of symmetry properties. Microwave linear amplifier and oscillator design using solid-state circuits such as varactor devices and transistors FOUNDATIONS FOR MICROWAVE ENGINEERING, Second Edition, has extensive coverage of transmission lines, waveguides, microwave circuit theory, impedance matching and cavity resonators. It devotes an entire chapter to fundamental microwave tubes, in addition to chapters on periodic structures, microwave filters, small signal solid-state microwave amplifier and oscillator design, and negative resistance devices and circuits. Completely updated in 1992, it is being reissued by the IEEE Press in response to requests from our many members, who found it an invaluable textbook and an enduring reference for practicing microwave engineers. About the Author Robert E. Collin is the author or coauthor of more than 150 technical papers and five books on electromagnetic theory and applications. His classic text, Field Theory of Guided Waves, is also a volume in the series. Professor Collin has had a long and distinguished academic career at Case Western Reserve University. In addition to his professional duties, he has served as chairman of the Department of Electrical Engineering and as interim dean of engineering. Professor Collin is a life fellow of the IEEE and a member of the Microwave Theory and Techniques Society and the Antennas and Propagation Society (APS). He is a member of U.S. Commission B of URSI and a member of the Geophysical Society. Other honors include the Diekman Award from Case Western Reserve University for distinguished graduate teaching , the IEEE APS Distinguished Career Award (1992), the IEEE Schelkunoff Prize Paper Award (1992), the IEEE Electromagnetics Award (1998), and an IEEE Third Millennium Medal in 2000. In 1990 Professor Collin was elected to the National Academy of Engineering." Sponsored by: IEEE Antennas and Propagation Society, IEEE Microwave Theory and Techniques Society An Instructor's Manual presenting detailed solutions to all the problems in the book is available upon request from the Wiley Makerting Department.
530 _aAlso available in print.
538 _aMode of access: World Wide Web
588 _aDescription based on PDF viewed 12/21/2015.
650 0 _aMicrowave devices.
_97832
655 0 _aElectronic books.
_93294
695 _aAcceleration
695 _aAdmittance
695 _aAlgebra
695 _aArgon
695 _aArtificial intelligence
695 _aAttenuators
695 _aBipolar transistors
695 _aBismuth
695 _aCapacitance
695 _aCharge carrier processes
695 _aCircuit theory
695 _aConductivity
695 _aConductors
695 _aConformal mapping
695 _aCopper
695 _aCurrent density
695 _aCyclotrons
695 _aDifferential equations
695 _aElectric fields
695 _aElectromagnetic waveguides
695 _aElectron beams
695 _aElectron tubes
695 _aEquations
695 _aFiltering theory
695 _aFrequency measurement
695 _aFrequency modulation
695 _aGenerators
695 _aGermanium
695 _aGold
695 _aGunn devices
695 _aImpedance
695 _aIndexes
695 _aJunctions
695 _aLaplace equations
695 _aMagnetic field measurement
695 _aMagnetic fields
695 _aMagnetic flux
695 _aMaterials
695 _aMathematical model
695 _aMeasurement
695 _aMicrowave amplifiers
695 _aMicrowave circuits
695 _aMicrowave communication
695 _aMicrowave filters
695 _aMicrowave integrated circuits
695 _aMicrowave oscillators
695 _aMicrowave ovens
695 _aMicrowave theory and techniques
695 _aMicrowave transistors
695 _aMixers
695 _aOscillators
695 _aPeriodic structures
695 _aPower transmission lines
695 _aPresses
695 _aPropagation
695 _aRLC circuits
695 _aRadar
695 _aRadio frequency
695 _aReflection
695 _aResistance
695 _aResonant frequency
695 _aSemiconductor diodes
695 _aShunt (electrical)
695 _aSilver
695 _aSkin
695 _aStrips
695 _aTime frequency analysis
695 _aTransistors
695 _aTransmission line matrix methods
695 _aTransmission lines
695 _aWaveguide discontinuities
695 _aZinc
710 2 _aJohn Wiley & Sons,
_epublisher.
_96902
710 2 _aIEEE Xplore (Online service),
_edistributor.
_926969
776 0 8 _iPrint version:
_z9780780360310
830 0 _aIEEE Press series on electromagnetic wave theory ;
_v11
_97592
856 4 2 _3Abstract with links to resource
_uhttps://ieeexplore.ieee.org/xpl/bkabstractplus.jsp?bkn=5265446
942 _cEBK
999 _c73928
_d73928