<span>A wave is one of the basic physics phenomena observed by mankind since ancient time. The wave is also one of the most-studied physics phenomena that can be well described by mathematics. The study may be the best illustration of what is βscienceβ, which approximates the laws of nature by using
Wave Propagation and Diffraction: Mathematical Methods and Applications
β Scribed by Igor T. Selezov,Yuriy G. Kryvonos,Ivan S. Gandzha (auth.)
- Publisher
- Springer Singapore
- Year
- 2018
- Tongue
- English
- Leaves
- 251
- Series
- Foundations of Engineering Mechanics
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
This book presents two distinct aspects of wave dynamics β wave propagation and diffraction β with a focus on wave diffraction. The authors apply different mathematical methods to the solution of typical problems in the theory of wave propagation and diffraction and analyze the obtained results. The rigorous diffraction theory distinguishes three approaches: the method of surface currents, where the diffracted field is represented as a superposition of secondary spherical waves emitted by each element (the HuygensβFresnel principle); the Fourier method; and the separation of variables and WienerβHopf transformation method.
Chapter 1 presents mathematical methods related to studying the problems of wave diffraction theory, while Chapter 2 deals with spectral methods in the theory of wave propagation, focusing mainly on the Fourier methods to study the Stokes (gravity) waves on the surface of inviscid fluid. Chapter 3 then presents some results of modeling the refraction of surf
ace gravity waves on the basis of the ray method, which originates from geometrical optics. Chapter 4 is devoted to the diffraction of surface gravity waves and the final two chapters discuss the diffraction of waves by semi-infinite domains on the basis of method of images and present some results on the problem of propagation of tsunami waves.Lastly, it provides insights into directions for further developing the wave diffraction theory.
β¦ Table of Contents
Front Matter ....Pages i-xv
Some Analytical and Numerical Methods in the Theory of Wave Propagation and Diffraction (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 1-24
Spectral Methods in the Theory of Wave Propagation (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 25-75
Ray Method of Investigating the Wave Evolution over Arbitrary Topography (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 77-111
Analytical and Numerical Solutions to the Wave Diffraction Problems (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 113-162
Wave Diffraction by Convex Bodies in Semi-infinite Domains (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 163-200
Propagation and Evolution of Transient Water Waves (Igor T. Selezov, Yuriy G. Kryvonos, Ivan S. Gandzha)....Pages 201-235
Back Matter ....Pages 237-241
β¦ Subjects
Continuum Mechanics and Mechanics of Materials
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