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Physical Theory of Diffraction.

Author: Pyotr Ya Ufimtsev
Publisher: Hoboken : Wiley, 2014.
Edition/Format:   eBook : Document : English : 2nd edView all editions and formats
Summary:
A complete presentation of the modern physical theory of diffraction and its applications, by the world's leading authority on the topic Extensive revisions and additions to the first edition yield a second edition that is 492 pages in length, with 122 figures New sections examine the nature of polarization coupling, and extend the theory of shadow radiation and reflection to opaque objects This book features  Read more...
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Genre/Form: Electronic books
Additional Physical Format: Print version:
Ufimtsev, Pyotr Ya.
Physical Theory of Diffraction.
Hoboken : Wiley, ©2014
Material Type: Document, Internet resource
Document Type: Internet Resource, Computer File
All Authors / Contributors: Pyotr Ya Ufimtsev
ISBN: 9781118753712 1118753712
OCLC Number: 877771882
Notes: 6.2.2 Relationships Between Acoustic and Electromagnetic PO Fields.
Description: 1 online resource (497 pages)
Contents: Fundamentals of the Physical Theory of Diffraction; Contents; Preface; Foreword to the First Edition; Preface to the First Edition; Acknowledgments; Introduction; 1 Basic Notions in Acoustic and Electromagnetic Diffraction Problems; 1.1 Formulation of the Diffraction Problem; 1.2 Scattered Field in the Far Zone; 1.3 Physical Optics; 1.3.1 Definition of Physical Optics; 1.3.2 Total Scattering Cross-Section; 1.3.3 Optical Theorem; 1.3.4 Introducing Shadow Radiation; 1.3.5 Shadow Contour Theorem and the Total Scattering Cross-Section; 1.3.6 Shadow Radiation and Reflected Field in the Far Zone. 1.3.7 Shadow Radiation and Reflection from Opaque Objects1.4 Electromagnetic Waves; 1.4.1 Basic Field Equations and PO Backscattering; 1.4.2 PO Field Components: Reflected Field and Shadow Radiation; 1.4.3 Electromagnetic Reflection and Shadow Radiation from Opaque Objects; 1.5 Physical Interpretations of Shadow Radiation; 1.5.1 Shadow Field and Transverse Diffusion; 1.5.2 Fresnel Diffraction and Forward Scattering; 1.6 Summary of Properties of Physical Optics Approximation; 1.7 Nonuniform Component of an Induced Surface Field; Problems; 2 Wedge Diffraction: Exact Solution and Asymptotics. 2.1 Classical Solutions2.2 Transition to Plane Wave Excitation; 2.3 Conversion of the Series Solution to The Sommerfeld Integrals; 2.4 The Sommerfeld Ray Asymptotics; 2.5 The Pauli Asymptotics; 2.6 Uniform Asymptotics: Extension of the Pauli Technique; 2.7 Fast Convergent Integrals and Uniform Asymptotics: The "Magic Zero" Procedure; Problems; 3 Wedge Diffraction: The Physical Optics Field; 3.1 Original PO Integrals; 3.2 Conversion of PO Integrals to the Canonical Form; 3.3 Fast Convergent Integrals and Asymptotics for the PO Diffracted Field; Problems. 4 Wedge Diffraction: Radiation by Fringe Components of Surface Sources4.1 Integrals and Asymptotics; 4.2 Integral Forms of Functions and; 4.3 Oblique Incidence of a Plane Wave at a Wedge; 4.3.1 Acoustic Waves; 4.3.2 Electromagnetic Waves; Problems; 5 First-Order Diffraction at Strips and Polygonal Cylinders; 5.1 Diffraction at a Strip; 5.1.1 Physical Optics Part of a Scattered Field; 5.1.2 Total Scattered Field; 5.1.3 Numerical Analysis of a Scattered Field; 5.1.4 First-Order PTD with Truncated Scattering Sources; 5.2 Diffraction at a Triangular Cylinder. 5.2.1 Symmetric Scattering: PO Approximation5.2.2 Backscattering: PO Approximation; 5.2.3 Symmetric Scattering: First-Order PTD Approximation; 5.2.4 Backscattering: First-Order PTD Approximation; 5.2.5 Numerical Analysis of a Scattered Field; Problems; 6 Axially Symmetric Scattering of Acoustic Waves at Bodies of Revolution; 6.1 Diffraction at a Canonical Conic Surface; 6.1.1 Integrals for the Scattered Field; 6.1.2 Ray Asymptotics; 6.1.3 Focal Fields; 6.1.4 Bessel Interpolations for the Field; 6.2 Scattering at a Disk; 6.2.1 Physical Optics Approximation.

Abstract:

A complete presentation of the modern physical theory of diffraction and its applications, by the world's leading authority on the topic Extensive revisions and additions to the first edition yield a second edition that is 492 pages in length, with 122 figures New sections examine the nature of polarization coupling, and extend the theory of shadow radiation and reflection to opaque objects This book features end-of-chapter problems and a solutions manual for university professors and graduate students MATLAB codes presented in appendices allow for quick numeric.

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