Fr. 189.00

Irreversible Phenomena - Ignitions, Combustion and Detonation Waves

English · Paperback / Softback

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Ideals are simple and able to be easily understood, but never exist in reality. In this book a theory based on the second law of thermodynamics and its applications are described. In thermodynamics there is a concept of an ideal gas which satisfies a mathematical formula PV = RT. This formula can appro- mately be applied to the real gas, so far as the gas has not an especially high pressure and low temperature. In connection with the second law of thermo- namics there is also a concept of reversible and irreversible processes. The reversible process is a phenomenon proceeding at an infinitely low velocity, while the irreversible process is that proceeding with a finite velocity. Such a process with an infinitely slow velocity can really never take place, and all processes observed are always irreversible, therefore, the reversible process is an ideal process, while the irreversible process is a real process. According to the first law of thermodynamics the energy increase dU of the thermodynamic system is a sum of the heat dQ added to the system and work dW done in the system. Practically, however, the mathematical formula of the law is often expressed by the equation , or some similar equations derived from this formula, is applied to many phenomena. Such formulae are, however, th- retically only applicable to phenomena proceeding at an infinitely low velocity, that is, reversible processes or ideal processes.

List of contents

Classical Ignition Theories.- Stochastic Theory of Irreversible Phenomena.- Nucleation in Phase Transition.- Shock Tubes.- Stochastic Ignition Theory.- Ignition in a Fuel Spray.- Ignition by Electric Sparks.- Nonequilibrium State.- Interaction Between Combustion and Pressure or Shock Waves.- Gaseous Detonation Waves.- Industrial Applications of Detonation Waves.

Summary

Ideals are simple and able to be easily understood, but never exist in reality. In this book a theory based on the second law of thermodynamics and its applications are described. In thermodynamics there is a concept of an ideal gas which satisfies a mathematical formula PV = RT. This formula can appro- mately be applied to the real gas, so far as the gas has not an especially high pressure and low temperature. In connection with the second law of thermo- namics there is also a concept of reversible and irreversible processes. The reversible process is a phenomenon proceeding at an infinitely low velocity, while the irreversible process is that proceeding with a finite velocity. Such a process with an infinitely slow velocity can really never take place, and all processes observed are always irreversible, therefore, the reversible process is an ideal process, while the irreversible process is a real process. According to the first law of thermodynamics the energy increase dU of the thermodynamic system is a sum of the heat dQ added to the system and work dW done in the system. Practically, however, the mathematical formula of the law is often expressed by the equation , or some similar equations derived from this formula, is applied to many phenomena. Such formulae are, however, th- retically only applicable to phenomena proceeding at an infinitely low velocity, that is, reversible processes or ideal processes.

Additional text

From the reviews:

"This book is focused on the latter applications and offers a rather unique viewpoint in comparison with the existing combustion literature. … the central argument of the book and the subsequent applications are clearly laid out and discussed, resulting in a very interesting read. … The book provides valuable access to numerous experimental and theoretical results less readily available in the English literature. … The book should be considered a specialist … ." (Joanna M. Austin, AIAA Journal, Vol. 46 (2), 2008)
"In his book, Prof. K. Terao develops a theory based on the second law of thermodynamics and which intends to model irreversible phenomena. … The paper ends with a list of references covering both the history and the current development of ignition processes. … The book will surely be useful to engineers … . Researchers will also find the description of experimental devices and experimental data concerning these irreversible phenomena." (Alain Brillard, Zentralblatt MATH, Vol. 1165, 2009)

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From the reviews:

"This book is focused on the latter applications and offers a rather unique viewpoint in comparison with the existing combustion literature. ... the central argument of the book and the subsequent applications are clearly laid out and discussed, resulting in a very interesting read. ... The book provides valuable access to numerous experimental and theoretical results less readily available in the English literature. ... The book should be considered a specialist ... ." (Joanna M. Austin, AIAA Journal, Vol. 46 (2), 2008)
"In his book, Prof. K. Terao develops a theory based on the second law of thermodynamics and which intends to model irreversible phenomena. ... The paper ends with a list of references covering both the history and the current development of ignition processes. ... The book will surely be useful to engineers ... . Researchers will also find the description of experimental devices and experimental data concerning these irreversible phenomena." (Alain Brillard, Zentralblatt MATH, Vol. 1165, 2009)

Product details

Authors Kunio Terao
Publisher Springer, Berlin
 
Languages English
Product format Paperback / Softback
Released 12.10.2010
 
EAN 9783642080685
ISBN 978-3-642-08068-5
No. of pages 409
Dimensions 155 mm x 22 mm x 235 mm
Weight 634 g
Illustrations X, 409 p.
Subjects Natural sciences, medicine, IT, technology > Technology > Heat, energy and power station engineering

C, engineering, Classical mechanics, Thermodynamics, Engineering Thermodynamics, Heat and Mass Transfer, Classical and Continuum Physics, Physical Chemistry, Continuum physics, Fluid mechanics, Engineering Fluid Dynamics, Mechanics of fluids, Heat engineering, Heat transfer, Mass transfer

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