Kinetic Theory of Nonequilibrium Ensembles, Irreversible Thermodynamics, and Generalized Hydrodynamics
Eu, Byung Chan
Produktnummer:
1839bdbf31227141fd9cae9e711fa6cb31
Autor: | Eu, Byung Chan |
---|---|
Themengebiete: | Generalized hydrodynamic equations Irreversible transport processes Nonequilibrium statistical mechanics Nonequilibrium thermodynamics Nonrelativistic kinetic theory Postulational kinetic theories Simple dense fluid Simple fluid mixture Time-reversal symmetry breakling |
Veröffentlichungsdatum: | 12.08.2016 |
EAN: | 9783319411460 |
Sprache: | Englisch |
Seitenzahl: | 603 |
Produktart: | Gebunden |
Verlag: | Springer International Publishing |
Untertitel: | Volume 1. Nonrelativistic Theories |
Produktinformationen "Kinetic Theory of Nonequilibrium Ensembles, Irreversible Thermodynamics, and Generalized Hydrodynamics"
This book presents the fundamentals of irreversible thermodynamics for nonlinear transport processes in gases and liquids, as well as for generalized hydrodynamics extending the classical hydrodynamics of Navier, Stokes, Fourier, and Fick. Together with its companion volume on relativistic theories, it provides a comprehensive picture of the kinetic theory formulated from the viewpoint of nonequilibrium ensembles in both nonrelativistic and, in Vol. 2, relativistic contexts.Theories of macroscopic irreversible processes must strictly conform to the thermodynamic laws at every step and in all approximations that enter their derivation from the mechanical principles. Upholding this as the inviolable tenet, the author develops theories of irreversible transport processes in fluids (gases or liquids) on the basis of irreversible kinetic equations satisfying the H theorem. They apply regardless of whether the processes are near to or far removed from equilibrium, or whether they are linear or nonlinear with respect to macroscopic fluxes or thermodynamic forces. Both irreversible Boltzmann and generalized Boltzmann equations are used for deriving theories of irreversible transport equations and generalized hydrodynamic equations, which rigorously conform to the tenet. All observables described by the so-formulated theories therefore also strictly obey the tenet.

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