Kinetic Theory and Transport Phenomena
Series: Oxford Master Series in Physics; 25;
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Product details:
- Publisher OUP Oxford
- Date of Publication 28 April 2016
- ISBN 9780198716051
- Binding Hardback
- No. of pages288 pages
- Size 247x195x19 mm
- Weight 786 g
- Language English
- Illustrations 120 0
Categories
Short description:
This book presents the fundamentals and predictions of kinetic theory, considering classical paradigmatic examples as well as modern applications.
MoreLong description:
One of the questions about which humanity has often wondered is the arrow of time. Why does temporal evolution seem irreversible? That is, we often see objects break into pieces, but we never see them reconstitute spontaneously. This observation was first put into scientific terms by the so-called second law of thermodynamics: entropy never decreases. However, this law does not explain the origin of irreversibly; it only quantifies it. Kinetic theory gives a consistent explanation of irreversibility based on a statistical description of the motion of electrons, atoms, and molecules. The concepts of kinetic theory have been applied to innumerable situations including electronics, the production of particles in the early universe, the dynamics of astrophysical plasmas, quantum gases or the motion of small microorganisms in water, with excellent quantitative agreement. This book presents the fundamentals of kinetic theory, considering classical paradigmatic examples as well as modern applications. It covers the most important systems where kinetic theory is applied, explaining their major features. The text is balanced between exploring the fundamental concepts of kinetic theory (irreversibility, transport processes, separation of time scales, conservations, coarse graining, distribution functions, etc.) and the results and predictions of the theory, where the relevant properties of different systems are computed.
MoreTable of Contents:
Basic concepts
Distribution functions
The Lorentz model for the classical transport of charges
The Boltzmann equation for dilute gases
Brownian motion
Plasmas and gravitational systems
Quantum gases
Quantum electronic transport in solids
Semiconductors and interband transitions
Numerical and semianalytical methods