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1

Barshteĭn, R. S. Kataliticheskai͡a︡ polikondensat͡s︡ii͡a︡. Moskva: "Khimii͡a︡", 1988.

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2

Daszkiewicz, Zdzisław. Aromatyczne nitraminy: Synteza, struktura, właściwości, przegrupowanie. Opole: Wydaw. UO, 2004.

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3

Erickson, Wayne D. Finite-rate water condensation in combustion-heated wind tunnels. Hampton, Va: Langley Research Center, 1988.

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4

Kenji Mizoguchi: Un art de la condensation. Berne: P. Lang, 1991.

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5

E, Carraher Charles, Swift Graham 1939-, American Chemical Society. Division of Polymeric Materials: Science and Engineering., and American Chemical Society Meeting, eds. Functional condensation polymers. New York: Kluwer Academic/Plenum Publishers, 2002.

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6

E, Carraher Charles, Swift Graham 1939-, American Chemical Society. Division of Polymeric Materials: Science and Engineering., and American Chemical Society Meeting, eds. Functional condensation polymers. New York: Kluwer Academic/Plenum Publishers, 2002.

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7

Jr, Charles E. Carraher, and Graham G. Swift. Functional Condensation Polymers. Springer, 2002.

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8

Stoĭko, Fakirov, ed. Handbook of condensation thermoplastic elastomers. Weinheim: Wiley-VCH, 2005.

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9

Fakirov, Stoyko. Handbook of Condensation Thermoplastic Elastomers. Wiley-VCH Verlag GmbH, 2006.

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10

Fakirov, Stoyko. Handbook of Condensation Thermoplastic Elastomers. Wiley & Sons, Incorporated, John, 2006.

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11

Mahrwald, Rainer. Modern Methods in Stereoselective Aldol Reactions. Wiley & Sons, Incorporated, John, 2013.

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12

Mahrwald, Rainer. Modern Methods in Stereoselective Aldol Reactions. Wiley & Sons, Incorporated, John, 2013.

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13

Mahrwald, Rainer. Modern Methods in Stereoselective Aldol Reactions. Wiley & Sons, Limited, John, 2013.

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14

Mahrwald, Rainer. Modern Methods in Stereoselective Aldol Reactions. Wiley & Sons, Incorporated, John, 2013.

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15

Modern Methods In Stereoselective Aldol Reactions. Wiley-VCH Verlag GmbH, 2013.

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16

McAfee, Lyle Vernon. Cocondensation products of molybdenum trioxide with water, carbon disulfide, and various small organic molecules. 1985.

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17

Duda, Christopher Allen. Potential energies and transition dipole moment functions of the potassium dimer. 1986.

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18

Whalley, P. B. Boiling, Condensation, and Gas-Liquid Flow (Oxford Engineering Science Series). Oxford University Press, USA, 1990.

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19

Group, Research. The 2000 World Market Forecasts for Imported Condensation, Polycondensation and Polyaddition Products. Icon Group International, 2000.

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20

H, Mall Gerald, Prabhu Ramadas K, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Branch., eds. Finite-rate water condensation in combustion-heated wind tunnels. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1988.

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21

Finite-rate water condensation in combustion-heated wind tunnels. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1988.

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22

H, Mall Gerald, Prabhu Ramadas K, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Branch., eds. Finite-rate water condensation in combustion-heated wind tunnels. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1988.

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23

Group, Research, Polycondensation The Condensation, and Polyaddition Products Research Group. The 2000 World Forecasts of Condensation, Polycondensation and Polyaddition Products Export Supplies (World Trade Report). 2nd ed. Icon Group International, 2000.

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24

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in Oceana (World Trade Report). 2nd ed. Icon Group International, 2000.

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25

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in Africa (World Trade Report). 2nd ed. Icon Group International, 2000.

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26

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in Europe (World Trade Report). 2nd ed. Icon Group International, 2000.

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27

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in Asia (World Trade Report). 2nd ed. Icon Group International, 2000.

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28

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in Latin America (World Trade Report). 2nd ed. Icon Group International, 2000.

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29

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in The Middle East (World Trade Report). 2nd ed. Icon Group International, 2000.

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30

Condensation, Polycondensation The, Polyaddition Products Research Group, and Polycondensatio And The Condensation. The 2000 Import and Export Market for Condensation, Polycondensation and Polyaddition Products in N. America & Caribbean (World Trade Report). 2nd ed. Icon Group International, 2000.

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31

Zeitlin, Vladimir. Rotating Shallow-Water Models with Moist Convection. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198804338.003.0015.

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It is shown how the standard RSW can be ’augmented’ to include phase transitions of water. This chapter explains how to incorporate extra (convective) vertical fluxes in the model. By using Lagrangian conservation of equivalent potential temperature condensation of the water vapour, which is otherwise a passive tracer, is included in the model and linked to convective fluxes. Simple relaxational parameterisation of condensation permits the closure of the system, and surface evaporation can be easily included. Physical and mathematical properties of thus obtained model are explained, and illustrated on the example of wave scattering on the moisture front. The model is applied to ’moist’ baroclinic instability of jets and vortices. Condensation is shown to produce a transient increase of the growth rate. Special attention is paid to the moist instabilities of hurricane-like vortices, which are shown to enhance intensification of the hurricane, increase gravity wave emission, and generate convection-coupled waves.
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32

Horing, Norman J. Morgenstern. Superfluidity and Superconductivity. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0013.

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Chapter 13 addresses Bose condensation in superfluids (and superconductors), which involves the field operator ψ‎ having a c-number component (<ψ(x,t)>≠0), challenging number conservation. The nonlinear Gross-Pitaevskii equation is derived for this condensate wave function<ψ>=ψ−ψ˜, facilitating identification of the coherence length and the core region of vortex motion. The noncondensate Green’s function G˜1(1,1′)=−i<(ψ˜(1)ψ˜+(1′))+> and the nonvanishing anomalous correlation function F˜∗(2,1′)=−i<(ψ˜+(2)ψ˜+(1′))+> describe the dynamics and elementary excitations of the non-condensate states and are discussed in conjunction with Landau’s criterion for viscosity. Associated concepts of off-diagonal long-range order and the interpretation of <ψ> as a superfluid order parameter are also introduced. Anderson’s Bose-condensed state, as a phase-coherent wave packet superposition of number states, resolves issues of number conservation. Superconductivity involves bound Cooper pairs of electrons capable of Bose condensation and superfluid behavior. Correspondingly, the two-particle Green’s function has a term involving a product of anomalous bound-Cooper-pair condensate wave functions of the type F(1,2)=−i<(ψ(1)ψ(2))+>≠0, such that G2(1,2;1′,2′)=F(1,2)F+(1′,2′)+G˜2(1,2;1′,2′). Here, G˜2 describes the dynamics/excitations of the non-superfluid-condensate states, while nonvanishing F,F+ represent a phase-coherent wave packet superposition of Cooper-pair number states and off-diagonal long range order. Employing this form of G2 in the G1-equation couples the condensed state with the non-condensate excitations. Taken jointly with the dynamical equation for F(1,2), this leads to the Gorkov equations, encompassing the Bardeen–Cooper–Schrieffer (BCS) energy gap, critical temperature, and Bogoliubov-de Gennes eigenfunction Bogoliubons. Superconductor thermodynamics and critical magnetic field are discussed. For a weak magnetic field, the Gorkov-equations lead to Ginzburg–Landau theory and a nonlinear Schrödinger-like equation for the pair wave function and the associated supercurrent, along with identification of the Cooper pair density. Furthermore, Chapter 13 addresses the apparent lack of gauge invariance of London theory with an elegant variational analysis involving re-gauging the potentials, yielding a manifestly gauge invariant generalization of the London equation. Consistency with the equation of continuity implies the existence of Anderson’s acoustic normal mode, which is supplanted by the plasmon for Coulomb interaction. Type II superconductors and the penetration (and interaction) of quantized magnetic flux lines are also discussed. Finally, Chapter 13 addresses Josephson tunneling between superconductors.
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