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1

Charru, François. Hydrodynamic instabilities. Cambridge: Cambridge University Press, 2011.

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2

C, Godrèche, and Manneville P. 1946-, eds. Hydrodynamics and nonlinear instabilities. New York: Cambridge University Press, 1998.

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3

Moiseev, S. S. Nonlinear instabilities in plasmas and hydrodynamics. Bristol: Institute of Physics, 2000.

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4

Liang, Yu. Fundamental Studies of Shock-Driven Hydrodynamic Instabilities. Singapore: Springer Nature Singapore, 2022. http://dx.doi.org/10.1007/978-981-19-2992-2.

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5

Swinney, Harry L., and Jerry P. Gollub, eds. Hydrodynamic Instabilities and the Transition to Turbulence. Berlin, Heidelberg: Springer Berlin Heidelberg, 1985. http://dx.doi.org/10.1007/3-540-13319-4.

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6

Constructive modeling of structural turbulence and hydrodynamic instabilities. New Jersey: World Scientific, 2009.

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7

Belot͡serkovskiĭ, O. M. Constructive modeling of structural turbulence and hydrodynamic instabilities. New Jersey: World Scientific, 2009.

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8

Belot︠s︡erkovskiĭ, O. M. Constructive modeling of structural turbulence and hydrodynamic instabilities. New Jersey: World Scientific, 2009.

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9

B, Hooper M., ed. Laser-plasma interactions 4: Proceedings of the thirty-fifth Scottish Universities' Summer School in Physics, St. Andrews, August 1988. Edinburgh, Scotland: The School, 1989.

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10

Igochine, Valentin, ed. Active Control of Magneto-hydrodynamic Instabilities in Hot Plasmas. Berlin, Heidelberg: Springer Berlin Heidelberg, 2015. http://dx.doi.org/10.1007/978-3-662-44222-7.

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11

Charru, François, and Patricia de Forcrand-Millard. Hydrodynamic Instabilities. Cambridge University Press, 2011.

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12

Charru, François, and Patricia de Forcrand-Millard. Hydrodynamic Instabilities. Cambridge University Press, 2011.

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13

Forcrand-Millard, Patricia De, and François Charru. Hydrodynamic Instabilities. Cambridge University Press, 2011.

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14

Charru, François, and Patricia de Forcrand-Millard. Hydrodynamic Instabilities. Cambridge University Press, 2011.

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15

Godrèche, Claude, and Paul Manneville, eds. Hydrodynamics and Nonlinear Instabilities. Cambridge University Press, 1998. http://dx.doi.org/10.1017/cbo9780511524608.

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16

Manneville, Paul, and Claude Godrèche. Hydrodynamics and Nonlinear Instabilities. Cambridge University Press, 2009.

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17

Manneville, Paul, and Claude Godrèche. Hydrodynamics and Nonlinear Instabilities. Cambridge University Press, 2011.

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18

Oraevsky, V. N. Non-Linear Instabilities in Plasmas and Hydrodynamics. CRC Press LLC, 2017.

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19

Non-Linear Instabilities in Plasmas and Hydrodynamics. CRC Press LLC, 2017.

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20

Non-Linear Instabilities in Plasmas and Hydrodynamics. Routledge, 2017. http://dx.doi.org/10.1201/9780203745557.

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21

Oraevsky, V. N. Non-Linear Instabilities in Plasmas and Hydrodynamics. CRC Press LLC, 2017.

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22

Oraevsky, V. N. Non-Linear Instabilities in Plasmas and Hydrodynamics. CRC Press LLC, 2017.

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23

1939-, Swinney H. L., and Gollub J. P. 1944-, eds. Hydrodynamic instabilities and the transition to turbulence. 2nd ed. Berlin: Springer-Verlag, 1985.

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24

United States. National Aeronautics and Space Administration., ed. The generation of capillary instabilities by external disturbances in a liquid jet. [Washington, D.C.]: National Aeronautics and Space Administration, 1985.

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25

Moiseev, S. S., V. N. Oraevsky, and V. G. Pungin. Non-Linear Instabilities in Plasmas and Hydrodynamics (Series on Plasma Physics). Taylor & Francis, 1999.

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26

(Editor), Claude Godrèche, and Paul Manneville (Editor), eds. Hydrodynamics and Nonlinear Instabilities (Collection Alea-Saclay: Monographs and Texts in Statistical Physics). Cambridge University Press, 2005.

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27

Busse, F. H., H. L. Swinney, and P. A. Davies. Hydrodynamic Instabilities and the Transition to Turbulence. Springer, 2014.

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28

Liang, Yu. Fundamental Studies of Shock-Driven Hydrodynamic Instabilities. Springer, 2022.

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29

Hydrodynamic Instabilities And The Transition To Turbulence. Springer, 1985.

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30

Belotserkovskii, O. M. Constructive Modeling of Structural Turbulence and Hydrodynamic Instabilities. World Scientific Publishing Co Pte Ltd, 2009.

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31

Zeitlin, Vladimir. Instabilities of Jets and Fronts and their Nonlinear Evolution. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198804338.003.0010.

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Notions of linear and nonlinear hydrodynamic (in)stability are explained and criteria of instability of plane-parallel flows are presented. Instabilities of jets are investigated by direct pseudospectral collocation method in various flow configurations, starting from the classical barotropic and baroclinic instabilities. Characteristic features of instabilities are displayed, as well as typical patterns of their nonlinear saturation. It is shown that in the Phillips model of Chapter 5, new ageostrophic Rossby–Kelvin and shear instabilities appear at finite Rossby numbers. These instabilities are interpreted in terms of resonances among waves counter-propagating in the flow. It is demonstrated that the classical inertial instability is a specific case of ageostrophic baroclinic instability. At the equator it appears also in the barotropic configuration, and is related to resonances of Yanai waves. The nature of the inertial instability in terms of trapped modes is established. A variety of instabilities of density fronts is displayed.
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32

Igochine, Valentin. Active Control of Magneto-Hydrodynamic Instabilities in Hot Plasmas. Springer London, Limited, 2014.

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33

Igochine, Valentin. Active Control of Magneto-hydrodynamic Instabilities in Hot Plasmas. Igochine Valentin, 2014.

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34

Igochine, Valentin. Active Control of Magneto-Hydrodynamic Instabilities in Hot Plasmas. Springer Berlin / Heidelberg, 2016.

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