Books on the topic 'Thermodynamic behaviors'

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1

1975-, Michel M., and Mahler Günter, eds. Quantum thermodynamics: Emergence of thermodynamic behavior within composite quantum systems. New York: Springer, 2004.

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2

1975-, Michel M. (Mathias), and Mahler Günter, eds. Quantum thermodynamics: Emergence of thermodynamic behavior within composite quantum systems. 2nd ed. Heidelberg: Springer, 2009.

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3

Time's arrow: The origins of thermodynamic behavior. New York: Springer-Verlag, 1991.

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4

Mackey, Michael C. Time's arrow: The origins of thermodynamic behavior. New York: Springer-Verlag, 1992.

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5

Mackey, Michael C. Time’s Arrow: The Origins of Thermodynamic Behavior. New York, NY: Springer New York, 1992. http://dx.doi.org/10.1007/978-1-4613-9524-9.

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6

H, Salje Ekhard K., and North Atlantic Treaty Organization. Scientific Affairs Division., eds. Physical properties and thermodynamic behaviour of minerals. Dordrecht: D. Reidel Pub. Co., 1988.

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7

Salje, Ekhard K. H., ed. Physical Properties and Thermodynamic Behaviour of Minerals. Dordrecht: Springer Netherlands, 1988. http://dx.doi.org/10.1007/978-94-009-2891-6.

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8

Carlson, Donald E., and Yi-Chao Chen, eds. Advances in Continuum Mechanics and Thermodynamics of Material Behavior. Dordrecht: Springer Netherlands, 2000. http://dx.doi.org/10.1007/978-94-010-0728-3.

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9

library, Wiley online, ed. Critical behavior of non-ideal systems. Weinheim: Wiley-VCH, 2008.

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10

Berdichevskiĭ, V. L. Thermodynamics of chaos and order. Harlow, Essex, England: Longman Scientific & Technical, 1997.

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11

Atkins, P. W. The second law. New York: Scientific American Library, 1994.

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12

Beck, Christian. Thermodynamics of chaotic systems: An introduction. Cambridge [England]: Cambridge University Press, 1993.

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13

Soltanieh, Mansour. Thermodynamics of oxygen behaviour in pure cobalt and cobalt-nickel alloys. Ottawa: National Library of Canada, 1994.

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14

1920-, Germain Paul, Maugin G. A. 1944-, Drouot Raymonde, and Sidoroff François, eds. Continuum thermomechanics: The art and science of modelling material behaviour. Dordrecht: Kluwer Academic Publishers, 2000.

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15

L, Christensen Peter, ed. Phase behavior of petroleum reservoir fluids. Boca Raton: CRC/Taylor & Francis, 2007.

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16

Lenard, John G. Modelling Hot Deformation of Steels: An Approach to Understanding and Behaviour. Berlin, Heidelberg: Springer Berlin Heidelberg, 1989.

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17

Verrilli, Michael J. High temperature fatigue behavior of tungsten copper composites. [Washington, D.C.]: NASA, 1990.

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18

Ichikawa, Yasuaki. Transport Phenomena in Porous Media: Aspects of Micro/Macro Behaviour. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012.

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19

Carlson, Donald E. Advances in Continuum Mechanics and Thermodynamics of Material Behavior: In Recognition of the 60th Birthday of Roger L. Fosdick. Dordrecht: Springer Netherlands, 2000.

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20

Castelli, Michael G. Thermomechanical testing techniques for high-temperature composites: TMF behavior of SiC(SCS-6)/Ti-15-3. [Washington, D.C.]: NASA, 1990.

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21

Michael, Bremer, and SpringerLink (Online service), eds. Thermal Design and Thermal Behaviour of Radio Telescopes and their Enclosures. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2010.

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22

Meinköhn, Dirk. Dissipative Structures in Transport Processes and Combustion: Interdisciplinary Seminar, Bielefeld, July 17-21, 1989. Berlin, Heidelberg: Springer Berlin Heidelberg, 1990.

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23

International Conference TAQMSB (2000 Naples, Italy). Time's arrows, quantum measurement, and superluminal behavior: International Conference TAQMSB : Palazzo Serra di Cassano, Via Monte di Dio 14, 80132 Napoli, October 3-5, 2000. Edited by Mugnai D, Ranfagni A, Schulman L. S. 1941-, Istituto italiano per gli studi filosofici., and Istituto di ricerca sulle onde elettromagnetiche (Italy). Roma: Consiglio nazionale delle ricerche, 2001.

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24

Oden, J. Tinsley. [Analysis and development of finite element methods for the study of nonlinear thermomechanical behavior of structural components]. [Washington, D.C: National Aeronautics and Space Administration, 1995.

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25

International Conference on Irreversible Processes and Dissipative Structures. (4th 1989 Wilhelm-Pieck-Universität, Rostock). Irreversible processes and selforganization: Proceedings of the Fourth International Conference on Irreversible Processes and Selforganization, held at the Wilhelm-Pieck-Universität, Rostock, GDR, February 20-24, 1989. Leipzig: BSB B.G. Teubner Verlagsgesellschaft, 1989.

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26

Marcel, Clerc, Residori Stefania, Assanto Gaetano, and SpringerLink (Online service), eds. Localized States in Physics: Solitons and Patterns. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2011.

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27

Deterministic chaos in infinite quantum systems. Berlin: Springer-Verlag, 1993.

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28

Hyperbolic dynamics, fluctuations, and large deviations. Providence, Rhode Island: American Mathematical Society, 2015.

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29

Mori, Hazime. Dissipative structures and chaos. Berlin: Springer, 1998.

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30

Mori, Hazime. Dissipative structures and chaos. Berlin: Springer, 1998.

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31

Kaye, Brian H. Chaos & complexity: Discovering the surprising patterns of science and technology. Weinheim: VCH Verlagsgesellschaft, 1993.

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32

Chaos & complexity: Discovering the surprising patterns of science and technology. Weinheim: VCH, 1993.

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33

Nielsen, C. V. Modeling of Thermo-Electro-Mechanical Manufacturing Processes: Applications in Metal Forming and Resistance Welding. London: Springer London, 2013.

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34

Quantum thermodynamics : emergence of thermodynamic behavior within composite quantum systems - 2. ed. Springer, 2009.

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35

Rau, Jochen. Thermodynamic Limit. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199595068.003.0005.

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When one describes systems which are homogeneous, stable, and macroscopic in size, it no longer matters whether macroscopic data are given as sharp constraints or as expectation values. This is the thermodynamic limit. The behaviour of matter in this limit is governed by four laws, pertaining respectively to the properties of equilibrium (zeroth law), energy (first law), entropy (second law), and the ground state (third law). This chapter provides the mathematical criteria for homogeneity and stability and explores their respective consequences. In particular, it discusses the distinction between extensive and intensive variables, as well as the Gibbs–Duhem relation. It introduces the three thermodynamic ensembles—microcanonical, canonical, and grand canonical—and shows their equivalence in the thermodynamic limit. Finally, this chapter shows how, in the thermodynamic limit, the four laws of thermodynamics arise naturally within the statistical framework.
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36

Mahler, G., Jochen Gemmer, and M. Michel. Quantum Thermodynamics: Emergence of Thermodynamic Behavior Within Composite Quantum Systems (Lecture Notes in Physics). Springer, 2005.

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37

Mackey, M. C., and Michael C. Mackey. Time's Arrow: Origins of Thermodynamic Behavior. Springer, 1993.

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38

Mackey, Michael C. Time's Arrow: The Origins of Thermodynamic Behavior. Dover Publications, Incorporated, 2011.

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39

Mackey, Michael C. Time's Arrow: The Origins of Thermodynamic Behavior. Dover Publications, 2003.

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40

Salje, Ekhard K. H. Physical Properties and Thermodynamic Behaviour of Minerals. Springer, 1988.

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41

Salje, Ekhard K. H. Physical Properties and Thermodynamic Behaviour of Minerals. Springer Netherlands, 2011.

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42

Physical Properties and Thermodynamic Behaviour of Minerals. Springer, 2011.

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43

Salje, Ekhard K. H. Physical Properties and Thermodynamic Behaviour of Minerals. Springer, 2012.

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44

Lee, Won Peter. The thermodynamic behavior of magnetite in non-ferrous smelting. 1999.

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45

Mackey, Michael C. Time's Arrow: The Origins of Thermodynamic Behavior (Springer Study Edition). Springer, 1993.

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46

Schögl, Friedrich, and Christian Beck. Thermodynamics of Chaotic Systems: An Introduction. Cambridge University Press, 2011.

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47

Schögl, Friedrich, and Christian Beck. Thermodynamics of Chaotic Systems: An Introduction. Cambridge University Press, 2009.

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48

Thermodynamic behavior of nano-sized gold clusters on the (001) surface. Hampton, VA: ICASE, NASA Langley Research Center, 2001.

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49

Ivanov, Dmitry Yu. Critical Behavior of Non-Ideal Systems. Wiley & Sons, Incorporated, John, 2008.

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50

Hryn, John Nicholas *. Electrochemical and thermodynamic behaviour of tantalum in alkali halide molten salts. 1991.

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