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Maximum Dissipation Non-Equilibrium Thermodynamics and its Geometric Structure (Hardcover, 2011 ed.): Henry W. Haslach Jr. Maximum Dissipation Non-Equilibrium Thermodynamics and its Geometric Structure (Hardcover, 2011 ed.)
Henry W. Haslach Jr.
R6,830 Discovery Miles 68 300 Ships in 10 - 15 working days

Maximum Dissipation: Non-Equilibrium Thermodynamics and its Geometric Structure explores the thermodynamics of non-equilibrium processes in materials. The book develops a general technique created in order to construct nonlinear evolution equations describing non-equilibrium processes, while also developing a geometric context for non-equilibrium thermodynamics. Solid materials are the main focus in this volume, but the construction is shown to also apply to fluids. This volume also: * Explains the theory behind thermodynamically-consistent construction of non-linear evolution equations for non-equilibrium processes * Provides a geometric setting for non-equilibrium thermodynamics through several standard models, which are defined as maximum dissipation processes * Emphasizes applications to the time-dependent modeling of soft biological tissue Maximum Dissipation: Non-Equilibrium Thermodynamics and its Geometric Structure will be valuable for researchers, engineers and graduate students in non-equilibrium thermodynamics and the mathematical modeling of material behavior.

Maximum Dissipation Non-Equilibrium Thermodynamics and its Geometric Structure (Paperback, 2011 ed.): Henry W. Haslach Jr. Maximum Dissipation Non-Equilibrium Thermodynamics and its Geometric Structure (Paperback, 2011 ed.)
Henry W. Haslach Jr.
R6,648 Discovery Miles 66 480 Ships in 10 - 15 working days

Maximum Dissipation: Non-Equilibrium Thermodynamics and its Geometric Structure explores the thermodynamics of non-equilibrium processes in materials. The book develops a general technique created in order to construct nonlinear evolution equations describing non-equilibrium processes, while also developing a geometric context for non-equilibrium thermodynamics. Solid materials are the main focus in this volume, but the construction is shown to also apply to fluids. This volume also: * Explains the theory behind thermodynamically-consistent construction of non-linear evolution equations for non-equilibrium processes * Provides a geometric setting for non-equilibrium thermodynamics through several standard models, which are defined as maximum dissipation processes * Emphasizes applications to the time-dependent modeling of soft biological tissue Maximum Dissipation: Non-Equilibrium Thermodynamics and its Geometric Structure will be valuable for researchers, engineers and graduate students in non-equilibrium thermodynamics and the mathematical modeling of material behavior.

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