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1

Sharpe, G. J. Solving problems in fluid dynamics. Harlow, Essex, England: Longman Scientific & Technical, 1994.

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2

D, Whyman, ed. Problems in fluid flow. London: E. Arnold, 1986.

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3

Round, G. F. Applications of fluid dynamics. London: E. Arnold, 1986.

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4

Fluid mechanics: Problems and solutions. Berlin: Springer, 1997.

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5

Fluid mechanics. Berlin: Springer, 1997.

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6

F, Hughes William. Schaum'soutline of theory and problems of fluid dynamics. 2nd ed. New York: McGraw-Hill, 1991.

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7

Khoo, Boo Cheong, Zhilin Li, and Ping Lin, eds. Moving Interface Problems and Applications in Fluid Dynamics. Providence, Rhode Island: American Mathematical Society, 2008. http://dx.doi.org/10.1090/conm/466.

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8

F, Hughes William. Schaum's outline of theory and problems of fluid dynamics. 2nd ed. New York: McGraw-Hill, 1991.

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9

Chossat, Pascal. The Couette-Taylor problem. New York: Springer-Verlag, 1994.

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10

Dorfman, A. Sh. Conjugate problems in convective heat transfer. Boca Raton, FL: CRC Press, 2009.

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11

Spurk, Joseph H. Strömungslehre: Einführung in die Theorie der Strömungen. Berlin: Springer-Verlag, 1987.

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12

Warsi, Z. U. A. Solutions manual and notes for Fluid dynamics: Theoretical and computational approaches. Boca Raton, Fla: CRC Press, 1992.

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13

V, Kazhikhov A., and Monakhov V. N, eds. Boundary value problems in mechanics of nonhomogeneous fluids. Amsterdam: North-Holland, 1990.

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14

Zeytounian, Radyadour Kh. Five Decades of Tackling Models for Stiff Fluid Dynamics Problems. Berlin, Heidelberg: Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-39541-3.

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15

Vsesoi͡uznai͡a, konferent͡sii͡a Problemy stratifit͡sirovannykh techeniĭ (1991 Kaniv Ukraine). Vsesoi͡uznai͡a konferent͡sii͡a Problemy stratifit͡sirovannykh techeniĭ: Kanev, 14-18 mai͡a 1991 goda : tezisy dokladov. Kanev: Institut gidromekhaniki AN USSR, 1991.

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16

1959-, Huerta Antonio, ed. Finite element methods for flow problems. Chichester: Wiley, 2003.

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17

Verhoff, August. Far field computational boundary conditions for internal flow problems. Monterey, Calif: Naval Postgraduate School, 1988.

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18

The Navier-Stokes problem in the 21st century. Boca Raton: Taylor & Francis, 2016.

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19

A primer in fluid mechanics: Dynamics of flows in one space dimension. Boca Raton, FL: CRC Press, 1999.

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20

Sod, Gary A. Numerical methods in fluid dynamics: Initial and initial boundary-value problems. Cambridge [Cambridgeshire]: Cambridge University Press, 1985.

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21

K, Maslov V., Silʹvestrov S. V, Trokhan A. M, NPO Vsesoi͡uznyĭ nauchno-issledovatelʹskiĭ institut fiziko-tekhnicheskikh i radiotekhnicheskikh izmereniĭ (Soviet Union), and Gosudarstvennyĭ metrologicheskiĭ t͡sentr gidroakusticheskikh izmereniĭ (Russia), eds. Problemy metrologii gidrofizicheskikh izmereniĭ: Tezisy dokladov nauchno-tekhnicheskoĭ konferent͡sii stran SNG. Moskva: NPO "VNIIFTRI", 1992.

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22

Nuri, Aksel, ed. Strömungslehre: Einführung in die Theorie der Strömungen. 7th ed. Dordrecht: Springer, 2007.

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23

Physics of continuous media: A collection of problems with solutions for physics students. Bristol: Philadelphia, 1991.

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24

Gallopoulos, E. J. Processor arrays for problems in computational physics. Urbana, Ill: Dept. of Computer Science, University of Illinois at Urbana-Champaign, 1985.

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25

Modern fluid dynamics: Basic theory and selected applications in macro- and micro-fluidics. Dordrecht: Springer, 2010.

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26

E, Nakori͡akov V., and Institut teplofiziki (Akademii͡a nauk SSSR), eds. V Vsesoi͡uznai͡a shkola molodykh uchenykh i spet͡sialistov "Sovremennye problemy teplofiziki": Mart 1988 g. : tezisy dokladov. Novosibirsk: Akademii͡a nauk SSSR, Sibirskoe otd-nie, In-t teplofiziki, 1988.

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27

Shaw, Scott. The application of computational fluid dynamics to problems in rotorcraft aerodynamics: A literature review. Cranfield, England: Dept. of Aerospace Science, College of Aeronautics, Cranfield University, 1995.

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28

National Heat Transfer Conference (29th 1993 Atlanta, Ga.). Solutions to CFD benchmark problems in electronic packaging: Presented at the 29th National Heat Transfer Conference, Atlanta, Georgia, August 8-11, 1993. New York, N.Y: American Society of Mechanical Engineers, 1993.

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29

Skiba, Yuri N. Mathematical Problems of the Dynamics of Incompressible Fluid on a Rotating Sphere. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-65412-6.

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30

Conjugate problems in convective heat transfer. Boca Raton: CRC Press, 2010.

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31

Verhoff, August. Second-order far field computational boundary conditions for inviscid duct flow problems. Monterey, Calif: Naval Postgraduate School, 1990.

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32

Hirsch, Ch. Numerical computation of internal and external flows. Chichester [England]: Wiley, 1988.

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33

Numerical computation of internal and external flows: Fundamentals of computational fluid dynamics. 2nd ed. Oxford: Elsevier/Butterworth-Heinemann, 2007.

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34

Hirsch, Ch. Numerical computation of internal and external flows. Chichester: Wiley, 1990.

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35

Pelant, Jaroslav. Inverse problem for two-dimensional flow around a profile. Letnany, Czech Republic: Information Centre for Aeronautics, 1998.

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36

Maklakov, D. V. Nelineĭnye zadachi gidrodinamiki potent͡s︡ialʹnykh techeniĭ s neizvestnymi granit͡s︡ami. Moskva: "I͡A︡nus-K", 1997.

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37

International Conference on Computational Modelling of Free and Moving Boundary Problems (3rd 1995 Bled, Slovenia). Computational modelling of free and moving boundary problems III. Edited by Wrobel L. C. 1952-, Šarler B, Brebbia C. A, Wessex Institute of Technology, and Univerza v Ljubljani. Laboratory for Fluid Dynamics and Thermodynamics. Southampton: Computational Mechanics Publications, 1995.

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38

E, Nakori͡akov V., and Institut teplofiziki (Akademii͡a nauk SSSR), eds. Sovremennye problemy teplofiziki: Materialy IV Vsesoi͡uznoĭ shkoly molodykh uchenykh i spet͡sialistov, Novosibirsk, mart 1986 goda. Novosibirsk: Akademii͡a nauk SSSR, Sibirskoe otd-nie, In-t teplofiziki, 1987.

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39

Institut teplofiziki (Akademii͡a nauk SSSR), ed. IV Vsesoi͡uznai͡a shkola molodykh uchenykh i spet͡sialistov "Sovremennye problemy teplofiziki": Mart 1986 g. : tezisy dokladov. Novosibirsk: In-t teplofiziki, 1986.

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40

Pelant, Jaroslav. Inverse problem for two-dimensional flow through cascades. Letnany, Czech Republic: Information Centre for Aeronautics, 1998.

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41

Hirsch, Ch. Numerical computation of internal and external flows: Fundamentals of computational fluid dynamics. 2nd ed. Oxford: Elsevier/Butterworth-Heinemann, 2007.

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42

Vserossiĭskai︠a︡, konferent︠s︡ii︠a︡ molodykh uchenykh "Problemy mekhaniki-teorii︠a︡ ėksperiment i. novye tekhnologii" (7th 2009 Novosibirsk Russia). Problemy mekhaniki: Teorii︠a︡, ėksperiment i novye tekhnologii : VII Vserossiĭskai︠a︡ konferent︠s︡ii︠a︡ molodykh uchenykh, 25-28 mai︠a︡ 2009 g. : tezisy dokladov. Novosibirsk: Sibirskoe nauch. izd-vo, 2009.

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43

Furbish, David Jon. Fluid Physics in Geology. Oxford University Press, 1997. http://dx.doi.org/10.1093/oso/9780195077018.001.0001.

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Fluid Physics in Geology is aimed at geology students who are interested in understanding fluid behavior and motion in the context of a wide variety of geological problems, and who wish to pursue related work in fluid physics. The book provides an introductory treatment of the physical and dynamical behaviors of fluids by focusing first on how fluids behave in a general way, then looking more specifically at how they are involved in certain geological processes. The text is written so students may concentrate on the sections that are most relevant to their own needs. Helpful problems following each chapter illustrate applications of the material to realistic problems involving groundwater flows, magma dynamics, open-channel flows, and thermal convection. Fluid Physics in Geology is ideal for graduate courses in all areas of geology, including hydrology, geomorphology, sedimentology, and petrology.
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44

Zeitlin, Vladimir. Geophysical Fluid Dynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198804338.001.0001.

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The book explains the key notions and fundamental processes in the dynamics of the fluid envelopes of the Earth (transposable to other planets), and methods of their analysis, from the unifying viewpoint of rotating shallow-water model (RSW). The model, in its one- or two-layer versions, plays a distinguished role in geophysical fluid dynamics, having been used for around a century for conceptual understanding of various phenomena, for elaboration of approaches and methods, to be applied later in more complete models, for development and testing of numerical codes and schemes of data assimilations, and many other purposes. Principles of modelling of large-scale atmospheric and oceanic flows, and corresponding approximations, are explained and it is shown how single- and multi-layer versions of RSW arise from the primitive equations by vertical averaging, and how further time-averaging produces celebrated quasi-geostrophic reductions of the model. Key concepts of geophysical fluid dynamics are exposed and interpreted in RSW terms, and fundamentals of vortex and wave dynamics are explained in Part 1 of the book, which is supplied with exercises and can be used as a textbook. Solutions of the problems are available at Editorial Office by request. In-depth treatment of dynamical processes, with special accent on the primordial process of geostrophic adjustment, on instabilities in geophysical flows, vortex and wave turbulence and on nonlinear wave interactions follows in Part 2. Recently arisen new approaches in, and applications of RSW, including moist-convective processes constitute Part 3.
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45

Ruban, Anatoly I. Fluid Dynamics Pt. 2: Asymptotic Problems of Fluid Dynamics. Oxford University Press, 2015.

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46

United States. National Aeronautics and Space Administration., ed. Problems in fluid dynamics: Final report. Providence, R.I: Division of Applied Mathematics, Brown University, 1988.

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47

M, Belot͡s︡erkovskiĭ O., and Shidlovskiĭ V. P, eds. Current problems in computational fluid dynamics. Moscow: Mir Publishers, 1986.

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48

Perez-De-Tejada, Hector, ed. Vortex Structures in Fluid Dynamic Problems. InTech, 2017. http://dx.doi.org/10.5772/67197.

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49

Modeling and Analysis of Modern Fluid Problems. Elsevier Science & Technology Books, 2017.

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50

1914-, Struminskiĭ Vladimir Vasilʹevich, and Akademii͡a︡ nauk SSSR. Sektor mekhaniki neodnorodnykh sred., eds. Problemy turbulentnykh techeniĭ. Moskva: "Nauka", 1987.

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