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Based on a course by the author at the University of Cambridge, this comprehensive text on turbulence and fluid dynamics is aimed at year 4 undergraduates and graduates in applied mathematics, physics and engineering and provides an ideal reference for industry professionals and researchers. It bridges the gap between elementary accounts of turbulence found in undergraduate texts and more rigorous accounts given in monographs on the subject. Containing exercises and many examples, the author combines the maximum of physical insight with the minimum of mathematical detail where possible. The text is highly illustrated throughout, and includes color plates; all required mathematical techniques are covered in extensive appendices. The text is divided into three parts: Part I consists of a traditional introduction to the classical aspects of turbulence, the nature of turbulence, and the equations of fluid mechanics. Mathematics is kept to a minimum, presupposing only an elementary knowledge of fluid mechanics and statistics. Part II tackles the problem of homogeneous turbulence with a focus on numerical methods. Part III covers certain special topics rarely discussed in introductory texts. Many geophysical and astrophysical flows are dominated by the effects of body forces, such as buoyancy, Coriolis and Lorentz forces. Moreover, certain large-scale flows are approximately two-dimensional and this has led to a concerted investigation of two-dimensional turbulence over the last few years. Both the influence of body forces and two-dimensional turbulence are discussed.
- Sales Rank: #241751 in Books
- Published on: 2004-07-08
- Original language: English
- Number of items: 1
- Dimensions: 7.30" h x 1.20" w x 9.70" l, 3.54 pounds
- Binding: Paperback
- 678 pages
Review
"The author's lucid approach puts the reader right in the front seat. Davidson's book is highly recommended for its ability to capture the fundamental naure of turbulence in the first three chapters."--CHOICE
"...[T]his is a very readable book, and the mathematics should be well within the capacity of a graduate engineer or physicist...A reader with time to read it from cover to cover will find the time well spent."--AIAA Journal
"...Davidson presents a thoughtful and detailed discussion of the basic physics of incompressible fluid turbulence. He is careful...in emphasizing the many places where our knowledge about the field is far from certain. For someone who wants to understand the fundamentals of turbulence, this book is a good start."--Physics Today
About the Author
P. A. Davidson is a Reader in Fluid Mechanics at the University of Cambridge. He is an associate editor of the Journal of Fluid Mechanics and was awarded the Institute of Materials prize in 1996.
Most helpful customer reviews
12 of 13 people found the following review helpful.
Excellent Book
By Aleksandar
This book is really great! The complex things in turbulence are explained in that way I've never seen it before. There are a lot of great figures that are explaining a lot of things - for example, vorticity dynamics is followed with great pictures. Main topic of this book is physical aspect of turbulence, and that's great.
If you're dealing (better to say coping) with turbulence in some way, you should have this book - specially if you're a novice in this area.
10 of 11 people found the following review helpful.
A good book for graduate students
By Amazon Customer
This text is well-written and presents a lot of advanced material in relatively short order. However, the mathematics involved are quite advanced and the book is certainly intended only for people with some background in fluids - it is far from an "introductory" text!
2 of 2 people found the following review helpful.
TURBULENCE
By Jet Lagged
I would regard this book as one of the "bibles" of Turbulence.
There is the paradox that the sheer comprehensiveness of this work reminds us all that there is, as yet, still no overall Theory of Turbulence.
As Davidson says in the Preface:-
"Turbulence holds a unique place in the field of classical mechanics. Despite the fact that the governing equations have been known since 1845, there is still surprisingly little we can predict with relative certainty. The situation is reminiscent of the state of electromagnetism before it was transformed by Faraday and Maxwell."
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