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High Frequency Techniques: An Introduction to RF and Microwave Design and Computer Simulation (IEEE Press) - Hardcover

 
9780471455912: High Frequency Techniques: An Introduction to RF and Microwave Design and Computer Simulation (IEEE Press)

Synopsis

This textbook is an introduction to microwave engineering. The scope of this book extends from topics for a first course in electrical engineering, in which impedances are analyzed using complex numbers, through the introduction of transmission lines that are analyzed using the Smith Chart, and on to graduate level subjects, such as equivalent circuits for obstacles in hollow waveguides, analyzed using Green’s Functions. This book is a virtual encyclopedia of circuit design methods.

Despite the complexity, topics are presented in a conversational manner for ease of comprehension. The book is not only an excellent text at the undergraduate and graduate levels, but is as well a detailed reference for the practicing engineer.

Consider how well informed an engineer will be who has become familiar with these topics as treated in High Frequency Techniques: (in order of presentation)

Brief history of wireless (radio) and the Morse code
U.S. Radio Frequency Allocations
Introduction to vectors
AC analysis and why complex numbers and impedance are used
Circuit and antenna reciprocity
Decibel measure
Maximum power transfer
Skin effect
Computer simulation and optimization of networks
LC matching of one impedance to another
Coupled Resonators
Uniform transmission lines for propagation
VSWR, return Loss and mismatch error
The Telegrapher Equations (derived)
Phase and Group Velocities
The Impedance Transformation Equation for lines (derived)
Fano's and Bode's matching limits
The Smith Chart (derived)
Slotted Line impedance measurement
Constant Q circles on the Smith Chart
Approximating a transmission line with lumped L's and C's
ABCD, Z, Y and Scattering matrix analysis methods for circuits
Statistical Design and Yield Analysis of products
Electromagnetic Fields
Gauss's Law
Vector Dot Product, Divergence and Curl
Static Potential and Gradient
Ampere's Law and Vector Curl
Maxwell's Equations and their visualization
The Laplacian
Rectangular, cylindrical and spherical coordinates
Skin Effect
The Wave Equation
The Helmholtz Equations
Plane Propagating Waves
Rayleigh Fading
Circular (elliptic) Polarization
Poynting's Theorem
EM fields on Transmission Lines
Calculating the impedance of coaxial lines
Calculating and visualizing the fields in waveguides
Propagation constants and waveguide modes
The Taylor Series Expansion
Fourier Series and Green's Functions
Higher order modes and how to suppress them
Vector Potential and Retarded Potentials
Wire and aperture antennas
Radio propagation and path loss
Electromagnetic computer simulation of structures
Directional couplers
The Rat Race Hybrid
Even and Odd Mode Analysis applied to the backward wave coupler
Network analyzer impedance and transmission measurements
Two-port Scattering Parameters (s matrix)
The Hybrid Ring coupler
The Wilkinson power divider
Filter design: Butterworth, Maximally flat & Tchebyscheff responses
Filter Q
Diplexer, Bandpass and Elliptic filters
Richard's Transformation & Kuroda’s Identities
Mumford's transmission line stub filters
Transistor Amplifier Design: gain, biasing, stability, and conjugate matching
Noise in systems, noise figure of an amplifier cascade
Amplifier non-linearity, and spurious free dynamic range
Statistical Design and Yield Analysis

"synopsis" may belong to another edition of this title.

About the Author

Joseph F. White, PhD, is an instructor and consultant at JFW Industries, Inc. He has twenty-five years of design experience, was technical director at M/A-COM, Inc., and received the IEEE Microwave Theory and Techniques Society's Application Award for "Contributions to Phased Array Antennas." He edited the Microwave Journal and Applied Microwave and Wireless magazines, wrote Microwave Semiconductor Engineering, and is a Fellow of the IEEE. He can be reached at jfwhite@ieee.org.

From the Back Cover

A practical guide for today's wireless engineer

High Frequency Techniques: An Introduction to RF and Microwave Engineering is a clearly written classical circuit and field theory text illustrated with modern computer simulation software. The book's ten chapters cover:

  • The origins and current uses of wireless transmission
  • A review of AC analysis, Kirchhoff's laws, RLC elements, skin effect, and introduction to the use of computer simulation software
  • Resonators, Q definitions, and Q-based impedance matching
  • Transmission lines, waves, VSWR, reflection phenomena, Fano’s reflection bandwidth limits, telegrapher, and impedance transformation equations
  • Development and in-depth use of the Smith Chart
  • Matrix algebra with Z, Y, ABCD, S, and T matrix applications
  • An unusually thorough introduction to electromagnetic field theory, step-by-step development of vector calculus, Maxwell's equations, waveguides, propagation, and antennas
  • Backward wave, branch line, rat race and Wilkinson couplers, impedance measurements, and detailed even and odd mode analysis
  • Filter designs for Butterworth, Chebyshev, Bessel and elliptic responses, Kuroda’s identities, Richards's transformation, and computer optimized designs
  • Transistor amplifier design using Unilateral Gain, Simultaneous Match, Available Gain and Operating Gain approaches, insuring stability, cascading stages, broadbanding, noise theory, and intermodulation effects

Using informal language, High Frequency Techniques takes the reader step-by- step through RF and microwave theory and design, providing a lasting practical reference for the practicing wireless engineer.

From the Inside Flap

A practical guide for today’s wireless engineer

High Frequency Techniques: An Introduction to RF and Microwave Engineering is a clearly written classical circuit and field theory text illustrated with modern computer simulation software. The book’s ten chapters cover:

  • The origins and current uses of wireless transmission
  • A review of AC analysis, Kirchhoff’s laws, RLC elements, skin effect, and introduction to the use of computer simulation software
  • Resonators, Q definitions, and Q-based impedance matching
  • Transmission lines, waves, VSWR, reflection phenomena, Fano’s reflection bandwidth limits, telegrapher, and impedance transformation equations
  • Development and in-depth use of the Smith Chart
  • Matrix algebra with Z, Y, ABCD, S, and T matrix applications
  • An unusually thorough introduction to electromagnetic field theory, step-by-step development of vector calculus, Maxwell’s equations, waveguides, propagation, and antennas
  • Backward wave, branch line, rat race and Wilkinson couplers, impedance measurements, and detailed even and odd mode analysis
  • Filter designs for Butterworth, Chebyshev, Bessel and elliptic responses, Kuroda’s identities, Richards’s transformation, and computer optimized designs
  • Transistor amplifier design using Unilateral Gain, Simultaneous Match, Available Gain and Operating Gain approaches, insuring stability, cascading stages, broadbanding, noise theory, and intermodulation effects

Using informal language, High Frequency Techniques takes the reader step-by- step through RF and microwave theory and design, providing a lasting practical reference for the practicing wireless engineer.

"About this title" may belong to another edition of this title.

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9781119244509: High Frequency Techniques: An Introduction to RF and Microwave Design and Computer Simulation (IEEE Press)

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ISBN 10:  1119244501 ISBN 13:  9781119244509
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Hardcover. Condition: new. Hardcover. This textbook is an introduction to microwave engineering. The scope of this book extends from topics for a first course in electrical engineering, in which impedances are analyzed using complex numbers, through the introduction of transmission lines that are analyzed using the Smith Chart, and on to graduate level subjects, such as equivalent circuits for obstacles in hollow waveguides, analyzed using Greens Functions. This book is a virtual encyclopedia of circuit design methods. Despite the complexity, topics are presented in a conversational manner for ease of comprehension. The book is not only an excellent text at the undergraduate and graduate levels, but is as well a detailed reference for the practicing engineer. Consider how well informed an engineer will be who has become familiar with these topics as treated in High Frequency Techniques: (in order of presentation) Brief history of wireless (radio) and the Morse codeU.S. Radio Frequency AllocationsIntroduction to vectorsAC analysis and why complex numbers and impedance are usedCircuit and antenna reciprocityDecibel measureMaximum power transferSkin effectComputer simulation and optimization of networksLC matching of one impedance to anotherCoupled ResonatorsUniform transmission lines for propagationVSWR, return Loss and mismatch errorThe Telegrapher Equations (derived)Phase and Group VelocitiesThe Impedance Transformation Equation for lines (derived)Fano's and Bode's matching limitsThe Smith Chart (derived)Slotted Line impedance measurementConstant Q circles on the Smith ChartApproximating a transmission line with lumped L's and C'sABCD, Z, Y and Scattering matrix analysis methods for circuitsStatistical Design and Yield Analysis of productsElectromagnetic FieldsGauss's LawVector Dot Product, Divergence and CurlStatic Potential and GradientAmpere's Law and Vector CurlMaxwell's Equations and their visualizationThe LaplacianRectangular, cylindrical and spherical coordinatesSkin EffectThe Wave EquationThe Helmholtz EquationsPlane Propagating WavesRayleigh FadingCircular (elliptic) PolarizationPoynting's TheoremEM fields on Transmission LinesCalculating the impedance of coaxial linesCalculating and visualizing the fields in waveguidesPropagation constants and waveguide modesThe Taylor Series ExpansionFourier Series and Green's FunctionsHigher order modes and how to suppress themVector Potential and Retarded PotentialsWire and aperture antennasRadio propagation and path lossElectromagnetic computer simulation of structuresDirectional couplersThe Rat Race HybridEven and Odd Mode Analysis applied to the backward wave couplerNetwork analyzer impedance and transmission measurementsTwo-port Scattering Parameters (s matrix)The Hybrid Ring couplerThe Wilkinson power dividerFilter design: Butterworth, Maximally flat & Tchebyscheff responsesFilter QDiplexer, Bandpass and Elliptic filtersRichard's Transformation & Kurodas IdentitiesMumford's transmission line stub filtersTransistor Amplifier Design: gain, biasing, stability, and conjugate matchingNoise in systems, noise figure of an amplifier cascadeAmplifier non-linearity, and spurious free dynamic rangeStatistical Design and Yield Analysis This practical reference discusses a host of practical considerations such as circuit yield, component selection, and noise. * Author has a wealth of experience in the field of RF engineering* Packed with useful physical and design insights (including such topics Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. Seller Inventory # 9780471455912

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