Books on the topic 'Non-homogeneous'

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1

Marc, Deschamps, and SpringerLink (Online service), eds. Ultrasonic Wave Propagation in Non Homogeneous Media. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009.

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2

Muravskii, B. Grigori. Mechanics of Non-Homogeneous and Anisotropic Foundations. Berlin, Heidelberg: Springer Berlin Heidelberg, 2001. http://dx.doi.org/10.1007/978-3-540-44573-9.

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3

Leger, Alain, and Marc Deschamps, eds. Ultrasonic Wave Propagation in Non Homogeneous Media. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-540-89105-5.

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4

Muravskii, B. Grigori. Mechanics of Non-Homogeneous and Anisotropic Foundations. Berlin, Heidelberg: Springer Berlin Heidelberg, 2001.

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5

Kobayashi, Toshiyuki. On discontinuous group actions on non-Riemannian homogeneous spaces. Kyoto, Japan: Kyōto Daigaku Sūri Kaiseki Kenkyūjo, 2006.

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6

Wang, Bao-lin. Coupled thermo-electro-magneto-mechanical cracking of non-homogeneous media. New York: Nova Science Publishers, 2008.

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7

Manolis, George D., Petia S. Dineva, Tsviatko V. Rangelov, and Frank Wuttke. Seismic Wave Propagation in Non-Homogeneous Elastic Media by Boundary Elements. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-45206-7.

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8

Tolsa, Xavier. Analytic Capacity, the Cauchy Transform, and Non-homogeneous Calderón–Zygmund Theory. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-00596-6.

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9

Analytic capacity, the Cauchy transform, and non-homogeneous Calderón-Zygmund theory. Heidelberg: Birkhäuser, 2014.

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10

Karihaloo, B. L., ed. IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials. Dordrecht: Springer Netherlands, 2002. http://dx.doi.org/10.1007/978-94-017-0081-8.

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11

Aulin-Ahmavaara, Pirkko. A dynamic input-output model with non-homogeneous labour for evaluation of technical change. Helsinki: Suomalainen Tiedeakatemia, 1987.

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12

Montgomery, Erin James. Statistical estimation for non-homogeneous stochastic population models with particular application to manpower planning. [s.l: The Author], 1998.

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13

Norman, John M. Final report of NASA research grant entitled Directional reflectance modeling of non-homogeneous plant canopies: September 16, 1987 [i.e. 1986] - September 15, 1986 [i.e. 1987]. [Greenbelt, Md.?: NASA Goddard Space Flight Center, 1987.

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14

IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials (2001 Cardiff, Wales). IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials: Proceedings of the IUTAM symposium held in Cardiff, U.K., 18-22 June 2001. Dordrecht: Kluwer Academic Publishers, 2002.

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15

Karihaloo, B. L. IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials: Proceedings of the IUTAM Symposium held in Cardiff, U.K., 18-22 June 2001. Dordrecht: Springer Netherlands, 2002.

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16

Nicola, Garofalo, and Nhieu Duy-Minh 1966-, eds. Non-doubling Ahlfors measures, perimeter measures, and the characterization of the trace spaces of Sobolev functions in Carnot-caratheodory spaces. Providence, RI: American Mathematical Society, 2006.

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17

Teichert, Johannes F. Homogeneous Hydrogenation with Non-Precious Catalysts. Wiley & Sons, Incorporated, John, 2019.

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18

Sanchez-Palencia, Enrique. Non-Homogeneous Media and Vibration Theory. Springer, 2014.

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19

Teichert, Johannes F. Homogeneous Hydrogenation with Non-Precious Catalysts. Wiley-VCH Verlag GmbH, 2019.

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20

Teichert, Johannes F. Homogeneous Hydrogenation with Non-Precious Catalysts. Wiley & Sons, Incorporated, John, 2019.

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21

Teichert, Johannes F. Homogeneous Hydrogenation with Non-Precious Catalysts. Wiley & Sons, Incorporated, John, 2019.

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22

Teichert, Johannes F., ed. Homogeneous Hydrogenation with Non‐Precious Catalysts. Wiley, 2019. http://dx.doi.org/10.1002/9783527814237.

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23

Deschamps, Marc, and Alain Leger. Ultrasonic Wave Propagation in Non Homogeneous Media. Springer, 2010.

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24

Polyzos, George C. Tree conflict resolution algorithms: the non-homogeneous case. 1985.

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25

Lions, Jacques Louis. Non-Homogeneous Boundary Value Problems and Applications: Volume II. Brand: Springer, 2011.

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26

Polycrystalline and Spatially Non-Homogeneous Amorphous Semiconductors and Insulators. Nova Science Publishers, Incorporated, 2017.

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27

Lions, Jacques Louis. Non-Homogeneous Boundary Value Problems and Applications: Volume III. Springer London, Limited, 2012.

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28

Lions, Jacques Louis. Non-Homogeneous Boundary Value Problems and Applications: Volume II. Springer London, Limited, 2012.

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29

Vassiliou, Panos C. G. Non-Homogeneous Markov Chains and Systems: Theory and Applications. Taylor & Francis Group, 2022.

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30

Vassiliou, P.-C. G. Non-Homogeneous Markov Chains and Systems: Theory and Applications. Taylor & Francis Group, 2022.

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31

Lions, Jacques Louis, Enrico Magenes, and P. Kenneth. Non-Homogeneous Boundary Value Problems and Applications: Volume III. Springer, 2011.

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32

Vassiliou, P.-C. G. Non-Homogeneous Markov Chains and Systems: Theory and Applications. Taylor & Francis Group, 2022.

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33

Lions, Jacques Louis. Non-Homogeneous Boundary Value Problems and Applications: Vol. 1. Springer London, Limited, 2012.

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34

Vassiliou, P.-C. G. Non-Homogeneous Markov Chains and Systems: Theory and Applications. Taylor & Francis Group, 2022.

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35

Vassiliou, P.-C. G. Non-Homogeneous Markov Chains and Systems: Theory and Applications. Taylor & Francis Group, 2022.

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36

Lions, Jacques Louis, Enrico Magenes, and P. Kenneth. Non-Homogeneous Boundary Value Problems and Applications: Vol. 1. Springer, 2011.

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37

Xian-He, Sun, and Langley Research Center, eds. Distributed computing feasiblity in a non-dedicated homogeneous distributed system. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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38

Distributed computing feasiblity in a non-dedicated homogeneous distributed system. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1993.

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39

Muravskii, B. Grigori. Mechanics of Non-Homogeneous and Anisotropic Foundations (Foundations of Engineering Mechanics). Springer, 2001.

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40

Manolis, George D., Petia S. Dineva, Tsviatko V. Rangelov, and Frank Wuttke. Seismic Wave Propagation in Non-Homogeneous Elastic Media by Boundary Elements. Springer, 2018.

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41

Manolis, George D., Petia S. Dineva, Tsviatko V. Rangelov, and Frank Wuttke. Seismic Wave Propagation in Non-Homogeneous Elastic Media by Boundary Elements. Springer, 2016.

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42

Tolsa, Xavier. Analytic Capacity, the Cauchy Transform, and Non-Homogeneous Calderón-Zygmund Theory. Springer International Publishing AG, 2016.

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43

Karihaloo, B. L. IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials. Springer, 2002.

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44

Wade, Andrew, Mikhail Menshikov, and Serguei Popov. Non-Homogeneous Random Walks: Lyapunov Function Methods for near-Critical Stochastic Systems. University of Cambridge ESOL Examinations, 2016.

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45

Wade, Andrew, Mikhail Menshikov, and Serguei Popov. Non-Homogeneous Random Walks: Lyapunov Function Methods for near-Critical Stochastic Systems. Cambridge University Press, 2017.

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46

Wade, Andrew, Mikhail Menshikov, and Serguei Popov. Non-Homogeneous Random Walks: Lyapunov Function Methods for near-Critical Stochastic Systems. Cambridge University Press, 2017.

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47

Chalyi, A. V., and A. G. Lebed. Non-Homogeneous Liquids Near the Critical Point and the Boundary of Stability and Theory of Percolation and Superconductivity of Ceramics (Soviet Sci). M.E. Sharpe, 1992.

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48

Karihaloo, B. L. IUTAM Symposium on Analytical and Computational Fracture Mechanics of Non-Homogeneous Materials: Proceedings of the IUTAM Symposium held in Cardiff, U.K., 18-22 June 2001. Springer, 2014.

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49

Horing, Norman J. Morgenstern. Random Phase Approximation Plasma Phenomenology, Semiclassical and Hydrodynamic Models; Electrodynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0010.

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Chapter 10 reviews both homogeneous and inhomogeneous quantum plasma dielectric response phenomenology starting with the RPA polarizability ring diagram in terms of thermal Green’s functions, also energy eigenfunctions. The homogeneous dynamic, non-local inverse dielectric screening functions (K) are exhibited for 3D, 2D, and 1D, encompassing the non-local plasmon spectra and static shielding (e.g. Friedel oscillations and Debye-Thomas-Fermi shielding). The role of a quantizing magnetic field in K is reviewed. Analytically simpler models are described: the semiclassical and classical limits and the hydrodynamic model, including surface plasmons. Exchange and correlation energies are discussed. The van der Waals interaction of two neutral polarizable systems (e.g. physisorption) is described by their individual two-particle Green’s functions: It devolves upon the role of the dynamic, non-local plasma image potential due to screening. The inverse dielectric screening function K also plays a central role in energy loss spectroscopy. Chapter 10 introduces electromagnetic dyadic Green’s functions and the inverse dielectric tensor; also the RPA dynamic, non-local conductivity tensor with application to a planar quantum well. Kramers–Krönig relations are discussed. Determination of electromagnetic response of a compound nanostructure system having several nanostructured parts is discussed, with applications to a quantum well in bulk plasma and also to a superlattice, resulting in coupled plasmon spectra and polaritons.
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50

Allen, Michael P., and Dominic J. Tildesley. Nonequilibrium molecular dynamics. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198803195.003.0011.

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This chapter explains some of the fundamental issues associated with applying perturbations to a molecular dynamics simulation, along with practical details of methods for studying systems out of equilibrium. The main emphasis is on fluid flow and viscosity measurements. Spatially homogeneous perturbations are described to study shear and extensional flow. Non-equilibrium methods are applied to the study of heat flow and the calculation of the thermal conductivity. Issues of thermostatting, and the modelling of surface-fluid interactions for inhomogeneous systems, are discussed. The measurement of free energy changes through non-equilibrium work expressions such as those of Jarzynski and Crooks is also explained.
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