<p><span>Wave Fields in Real Media: Wave Propagation in Anisotropic, Anelastic, Porous and Electromagnetic Media</span><span> examines the differences between an ideal and a real description of wave propagation, starting with the introduction of relevant constitutive relations. The differential form
Wave Fields in Real Media, Third Edition: Wave Propagation in Anisotropic, Anelastic, Porous and Electromagnetic Media
β Scribed by J. M. Carcione
- Publisher
- Elsevier Science
- Year
- 2014
- Tongue
- English
- Leaves
- 669
- Series
- Handbook of Geophysical Exploration. Seismic Exploration
- Edition
- 3
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
Authored by the internationally renowned JosΓ© M. Carcione, Wave Fields in Real Media: Wave Propagation in Anisotropic, Anelastic, Porous and Electromagnetic Media examines the differences between an ideal and a real description of wave propagation, starting with the introduction of relevant stress-strain relations. The combination of this relation and the equations of momentum conservation lead to the equation of motion. The differential formulation is written in terms of memory variables, and Biots theory is used to describe wave propagation in porous media. For each rheology, a plane-wave analysis is performed in order to understand the physics of wave propagation.
This book contains a review of the main direct numerical methods for solving the equation of motion in the time and space domains. The emphasis is on geophysical applications for seismic exploration, but researchers in the fields of earthquake seismology, rock acoustics, and material science - including many branches of acoustics of fluids and solids - may also find this text useful.
New to this edition: This new edition presents the fundamentals of wave propagation in Anisotropic, Anelastic, Porous Media while also incorporating the latest research from the past 7 years, including that of the author. The author presents all the equations and concepts necessary to understand the physics of wave propagation. These equations form the basis for modeling and inversion of seismic and electromagnetic data. Additionally, demonstrations are given, so the book can be used to teach post-graduate courses. Addition of new and revised content is approximately 30%.
- Examines the fundamentals of wave propagation in anisotropic, anelastic and porous media
- Presents all equations and concepts necessary to understand the physics of wave propagation, with examples
- Emphasizes geophysics, particularly, seismic exploration for hydrocarbon reservoirs, which is essential for exploration and production of oil
β¦ Table of Contents
Content:
Front Matter, Pages i-ii
Copyright, Page iv
Dedication, Page xii
Prefaceβ, Pages xiii-xix
About the Author, Page xxi
Basic Notation, Page xxiii
Glossary of Main Symbols, Page xxv
Chapter 1 - Anisotropic Elastic Media, Pages 1-62
Chapter 2 - Viscoelasticity and Wave Propagation, Pages 63-122
Chapter 3 - Isotropic Anelastic Media, Pages 123-175
Chapter 4 - Anisotropic Anelastic Media, Pages 177-229
Chapter 5 - The Reciprocity Principle, Pages 231-246
Chapter 6 - Reflection and Transmission of Plane Waves, Pages 247-298
Chapter 7 - Biot Theory for Porous Media, Pages 299-420
Chapter 8 - The Acoustic-Electromagnetic Analogy, Pages 421-508
Chapter 9 - Numerical Methods, Pages 509-573
Examinations, Pages 575-578
Chronology of Main Discoveriesβ, Pages 579-589
Leonardoβs Manuscripts β, Pages 591-595
A List of Scientists, Pages 597-605
Bibliography, Pages 607-635
Name Index, Pages 637-649
Subject Index, Pages 651-663
π SIMILAR VOLUMES
This book examines the differences between an ideal and a real description of wave propagation, where ideal means an elastic (lossless), isotropic and single-phase medium, and real means an anelastic, anisotropic and multi-phase medium. The analysis starts by introducing the relevant stress-strain r
This book examines the differences between an ideal and a real description of wave propagation, where ideal means an elastic (lossless), isotropic and single-phase medium, and real means an anelastic, anisotropic and multi-phase medium. The analysis starts by introducing the relevant stress-strain r
This book examines the differences between an ideal and a real description of wave propagation, where ideal means an elastic (lossless), isotropic and single-phase medium, and real means an anelastic, anisotropic and multi-phase medium. The analysis starts by introducing the relevant stress-strain r
This book examines the differences between an ideal and a real description of wave propagation, where ideal means an elastic (lossless), isotropic and single-phase medium, and real means an anelastic, anisotropic and multi-phase medium. The analysis starts by introducing the relevant stress-strain r
This book examines the differences between an ideal and a real description of wave propagation, where ideal means an elastic (lossless), isotropic and single-phase medium, and real means an anelastic, anisotropic and multi-phase medium. The analysis starts by introducing the relevant stress-strain r