Advanced Engineering Electromagnetics (inbunden)
Format
Inbunden (Hardback)
Språk
Engelska
Antal sidor
1040
Utgivningsdatum
2012-02-20
Upplaga
2 ed
Förlag
John Wiley & Sons Inc
Medarbetare
Balanis
Illustratör/Fotograf
Illustrations
Illustrationer
Illustrations
Volymtitel
v. 2 Advanced Engineering Electromagnetics Traditions
Dimensioner
257 x 180 x 41 mm
Vikt
1621 g
Antal komponenter
1
Komponenter
68:B&W 7 x 10 in or 254 x 178 mm Case Laminate on White w/Gloss Lam
ISBN
9780470589489

Advanced Engineering Electromagnetics

The Construction of the French Past

Inbunden,  Engelska, 2012-02-20
1031
Tillfälligt slut – klicka "Bevaka" för att få ett mejl så fort boken går att köpa igen.
Balanis second edition of Advanced Engineering Electromagnetics a global best-seller for over 20 years covers the advanced knowledge engineers involved in electromagnetic need to know, particularly as the topic relates to the fast-moving, continually evolving, and rapidly expanding field of wireless communications. The immense interest in wireless communications and the expected increase in wireless communications systems projects (antenna, microwave and wireless communication) points to an increase in the number of engineers needed to specialize in this field. In addition, the Instructor Book Companion Site contains a rich collection of multimedia resources for use with this text. Resources include: Ready-made lecture notes in Power Point format for all the chapters. Forty-nine MATLAB programs to compute, plot and animate some of the wave phenomena Nearly 600 end-of-chapter problems, that's an average of 40 problems per chapter (200 new problems; 50% more than in the first edition) A thoroughly updated Solutions Manual 2500 slides for Instructors are included.
Visa hela texten

Kundrecensioner

Har du läst boken? Sätt ditt betyg »

Fler böcker av Constantine A Balanis

Övrig information

Constantine A. Balanis (born 1938) is a Greek born American scientist. Born in Trikala, Greece on October 29, 1938. He emigrated to the United States in 1955, where he studied Electrical Engineering. He received United States citizenship in 1960. Balanis received the Bachelor of Science degree from Virginia Polytechnic Institute and State University, in 1964, the Master of Science degree from the University of Virginia, in 1966, and the Doctor of Philosophy degree in Electrical Engineering from Ohio State University, in 1969, and an Honorary Doctorate from the Aristotle University of Thessaloniki in 2004. From 1964 to 1970 he was with the National Aeronautics and Space Administration (NASA) Langley Research Center in Hampton, Virginia and from 1970 to 1983 he was with the Department of Electrical Engineering, West Virginia University, Morgantown, WV.

Innehållsförteckning

Preface xvii 1 Time-Varying and Time-Harmonic Electromagnetic Fields 1 1.1 Introduction 1 1.2 Maxwell's Equations 1 1.3 Constitutive Parameters and Relations 5 1.4 Circuit-Field Relations 7 1.5 Boundary Conditions 12 1.6 Power and Energy 18 1.7 Time-Harmonic Electromagnetic Fields 21 1.8 Multimedia 29 2 Electrical Properties of Matter 39 2.1 Introduction 39 2.2 Dielectrics, Polarization, and Permittivity 41 2.3 Magnetics, Magnetization, and Permeability 48 2.4 Current, Conductors, and Conductivity 55 2.5 Semiconductors 59 2.6 Superconductors 64 2.7 Matamaterials 66 2.8 Linear, Homogeneous, Isotropic, and Nondispersive Media 67 2.9 A.C. Variations in Materials 68 2.10 Multimedia 89 3 Wave Equation and its Solutions 99 3.1 Introduction 99 3.2 Time-Varying Electromagnetic Fields 99 3.3 Time-Harmonic Electromagnetic Fields 101 3.4 Solution to the Wave Equation 102 4 Wave Propagation and Polarization 123 4.1 Introduction 123 4.2 Transverse Electromagnetic Modes 123 4.3 Transverse Electromagnetic Modes in Lossy Media 138 4.4 Polarization 146 4.5 Multimedia 166 5 Reflection and Transmission 173 5.1 Introduction 173 5.2 Normal IncidenceLossless Media 173 5.3 Oblique IncidenceLossless Media 177 5.4 Lossy Media 198 5.5 Reflection and Transmission of Multiple Interfaces 205 5.6 Polarization Characteristics on Reflection 220 5.7 Metamaterials 227 5.8 Multimedia 245 6 Auxiliary Vector Potentials, Construction of Solutions, and Radiation and Scattering Equations 259 6.1 Introduction 259 6.2 The Vector Potential A 260 6.3 The Vector Potential F 262 6.4 The Vector Potentials A and F 263 6.5 Construction of Solutions 265 6.6 Solution of the Inhomogeneous Vector Potential Wave Equation 279 6.7 Far-Field Radiation 283 6.8 Radiation and Scattering Equations 284 6.9 Multimedia 305 7 Electromagnetic Theorems and Principles 311 7.1 Introduction 311 7.2 Duality Theorem 311 7.3 Uniqueness Theorem 313 7.4 Image Theory 315 7.5 Reciprocity Theorem 323 7.6 Reaction Theorem 325 7.7 Volume Equivalence Theorem 326 7.8 Surface Equivalence Theorem: Huygens'S Principle 328 7.9 Induction Theorem (Induction Equivalent) 333 7.10 Physical Equivalent and Physical Optics Equivalent 337 7.11 Induction and Physical Equivalent Approximations 339 7.12 Multimedia 344 8 Rectangular Cross-Section Waveguides and Cavities 351 8.1 Introduction 351 8.2 Rectangular Waveguide 352 8.3 Rectangular Resonant Cavities 382 8.4 Hybrid (LSE and LSM) Modes 390 8.5 Partially Filled Waveguide 393 8.6 Transverse Resonance Method 405 8.7 Dielectric Waveguide 408 8.8 Artificial Impedance Surfaces 436 8.9 Stripline and Microstrip Lines 455 8.10 Ridged Waveguide 466 8.11 Multimedia 470 9 Circular Cross-Section Waveguides and Cavities 483 9.1 Introduction 483 9.2 Circular Waveguide 483 9.3 Circular Cavity 500 9.4 Radial Waveguides 509 9.5 Dielectric Waveguides and Resonators 516 9.6 Multimedia 541 10 Spherical Transmission Lines and Cavities 549 10.1 Introduction 549 10.2 Construction of Solutions 549 10.3 Biconical Transmission Line 557 10.4 The Spherical Cavity 561 10.5 Multimedia 569 11 Scattering 575 11.1 Introduction 575 11.2 Infinite Line-Source Cylindrical Wave Radiation 575 11.3 Plane Wave Scattering by Planar Surfaces 583 11.4 Cylindrical Wave Transformations and Theorems 599 11.5 Scattering by Circular Cylinders 607 11.6 Scattering By a Conducting Wedge 640 11.7 Spherical Wave Orthogonalities, Transformations, and Theorems 650 11.8 Scattering by a Sphere 655 11.9 Multimedia 665 12 Integral Equations and the Moment Method 679 12.1 Introduction 679 12.2 Integral Equation Method 679 12.3 Electric and Magnetic Field Integral Equations 703 12.4 Finite Diameter Wires 723 12.5 Computer Codes 732 12.6 Multimedia 735 13 Geometrical Theory of Diffraction 741 13.1 Introduc