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Heat Transfer Physics

AUTHOR Kaviany, Massoud
PUBLISHER Cambridge University Press (07/06/2010)
PRODUCT TYPE eBook (Open Ebook)

Description
This is a graduate textbook describing atomic-level kinetics (mechanisms and rates) of thermal energy storage; transport (conduction, convection, and radiation); and transformation (various energy conversions) by principal energy carriers. These carriers are: phonon (lattice vibration wave also treated as quasi-particle), electron (as classical or quantum entity), fluid particle (classical particle with quantum features), and photon (classical electromagnetic wave also as quasi-particle). The approach combines the fundamentals of the following fields: molecular orbitals-potentials, statistical thermodynamics, computational molecular dynamics, quantum energy states, transport theories, solid-state and fluid-state physics, and quantum optics. These are rationally connected to atomic-level heat transfer and thermal energy conversion. This textbook presents a unified theory, over fine-structure/molecular-dynamics/Boltzmann/macroscopic length and time scales, of heat transfer kinetics in terms of transition rates and relaxation times, and modern applications, including nano- and microscale size effects. Numerous examples, illustrations, and homework problems with answers enhance learning.
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Product Details
ISBN-13: 9780511754586
ISBN-10: 0511754582
Content Language: English
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Carton Quantity: 0
Feature Codes: Price on Product, Illustrated
Country of Origin: US
Subject Information
BISAC Categories
Science | Mechanics - Thermodynamics
Science | Mechanical
Dewey Decimal: 536.2
Descriptions, Reviews, Etc.
publisher marketing
This is a graduate textbook describing atomic-level kinetics (mechanisms and rates) of thermal energy storage; transport (conduction, convection, and radiation); and transformation (various energy conversions) by principal energy carriers. These carriers are: phonon (lattice vibration wave also treated as quasi-particle), electron (as classical or quantum entity), fluid particle (classical particle with quantum features), and photon (classical electromagnetic wave also as quasi-particle). The approach combines the fundamentals of the following fields: molecular orbitals-potentials, statistical thermodynamics, computational molecular dynamics, quantum energy states, transport theories, solid-state and fluid-state physics, and quantum optics. These are rationally connected to atomic-level heat transfer and thermal energy conversion. This textbook presents a unified theory, over fine-structure/molecular-dynamics/Boltzmann/macroscopic length and time scales, of heat transfer kinetics in terms of transition rates and relaxation times, and modern applications, including nano- and microscale size effects. Numerous examples, illustrations, and homework problems with answers enhance learning.
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Author: Kaviany, Massoud
Massoud Kaviany is a Professor in the Department of Mechanical Engineering and in the Applied Physics Program at the University of Michigan, where he has been since 1986. His area of teaching and research is heat transfer physics, with a particular interest in porous media. His current projects include atomic structural metrics in high-performance thermoelectric materials (both electron and phonon transport) and in laser cooling of solids (including ab initio calculations of photon-electron and electron-phonon couplings), and the effect of pore water in polymer electrolyte transport and fuel cell performance. His integration of research into education is currently focused on heat transfer physics, treating the atomic-level kinetics of transport and interaction of phonon, electron, fluid particle, and photon, in a unified manner. This combines ab initio (fine structure), molecular dynamics, Boltzmann transport, and macroscopic treatments, but on increasing length and time scales. He is author of the monographs Principles of Heat Transfer in Porous Media, 2nd edition, and Principles of Convective Heat Transfer, 2nd edition, and the undergraduate textbooks Principles of Heat Transfer and Essentials of Heat Transfer. He received the College of Engineering's Education Excellence Award in 2003. He is an editor of the Journal of Nanoscale and Microscale Thermophysical Engineering, and is on the editorial board of the International Journal of Heat and Mass Transfer and several other international journals. He is an ASME Fellow (since 1992) and an APS Fellow (since 2011), was Chair of the Committee on Theory and Fundamental Research in Heat Transfer (1995 8), and is the recipient of the 2002 ASME Heat Transfer Memorial Award (Science) and the 2010 Harry Potter Gold Medal (Thermodynamics Science).
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eBook
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