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1

Cuthbert, C. M. An attempt to simulate the hydrodynamic shear forces. Manchester: UMIST, 1993.

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2

Eccles, Thomas John. Measurement of hydrodynamic forces and moments and flow field mapping of a model in coning motion. Springfield, Va: Available from the National Technical Information Service, 1990.

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3

Sarpkaya, Turgut. Wave forces on offshore structures. Cambridge: Cambridge University Press, 2010.

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4

Sarpkaya, Turgut. Wave forces on offshore structures. New York: Cambridge University Press, 2010.

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5

Moberg, Göran. Wave forces on a vertical slender cylinder. Göteborg, Sweden: Dept. of Hydraulics, Chalmers University of Technology, 1988.

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6

Wave forces on offshore structures. Cambridge: Cambridge University Press, 2010.

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7

Hsu, Ming-kuang. Random wave forces on cylinders: Report for The National Science Foundation and The Oregon State University Sea Grant Program. Corvallis, Ore: Dept. of Civil Engineering, Ocean Engineering Program, Oregon State University, 1986.

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8

United States. National Aeronautics and Space Administration., ed. Experimental study of unsteady hydrodynamic force matrices on whirling centrifugal pump impellers. Pasadena, Calif: California Institute of Technology, 1986.

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9

United States. National Aeronautics and Space Administration, ed. Experimental study of unsteady hydrodynamic force matrices on whirling centrifugal pump impellers. Pasadena, Calif: California Institute of Technology, 1986.

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10

American Society of Civil Engineers. Committee on Waves and Wave Forces. Task Committee on Forces on Inclined and Vertical Wall Structures., ed. Wave forces on inclined and vertical wall structures. New York: American Society of Civil Engineers, 1995.

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11

Sarpkaya, Turgut. In-line and transverse forces on smooth and rough cylinders in oscillatory flow at high Reynolds numbers. Monterey, Calif: Naval Postgraduate School, 1986.

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12

DellaCorte, Christopher. A new foil air bearing test rig for use to 700⁰C and 70,000 rpm 8. [Washington, DC]: National Aeronautics and Space Administration, 1997.

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13

Telste, John G. Calculation of two-dimensional nonlinear fluid flow resulting from large-amplitude forced heave motion of a u-shaped cylinder in a free surface. Bethesda, Md: David W. Taylor Naval Ship Research and Devlopment Center, 1985.

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14

Shilyaev, Mihail, Elena Hromova, Aleksandr Bogomolov, A. Pavlenko, and V. Butov. Modeling of hydrodynamics and heat and mass transfer in dispersed media. ru: INFRA-M Academic Publishing LLC., 2022. http://dx.doi.org/10.12737/1865376.

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The monograph presents methods for calculating the dehydration of wet granular materials in industrial centrifuges, filter presses and vacuum filters under the influence of gravitational forces, as well as by purging the granular layer with dry air with elevated temperature; physical and mathematical models of gas absorption and the theory of capturing submicron dust by condensation in foam, centrifugal bubbling apparatus and hollow nozzle scrubbers, packing columns and tubular absorbers; physical and mathematical models of dry adsorption of gases in packing columns and flues by injecting a dispersed adsorbent into the flow are presented, a method for determining the phase equilibrium constants of sorption processes based on the developed models is proposed; physical and mathematical modeling and analysis of the combustion process of dispersed solid ash fuel in a four-stage cyclone gorenje is carried out. the furnace. It can be useful in the educational process for a number of specialties, in particular thermal power engineering, chemical-technological, metallurgical profiles, environmentalists, as well as for researchers and graduate students and in engineering practice.
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15

Force-free magnetic fields: Solutions, topology and applications. Singapore: World Scientific, 1996.

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16

Technology, Society for Underwater, ed. Environmental forces on offshore structures and their prediction: Papers presented at a conference organized by the Society for Underwater Technology and held in London, UK, November 28-29, 1990. Dordrecht, Netherlands: Kluwer Academic, 1990.

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17

Francesca, Debolini, ed. Leonardo: Un uomo universale agli estremi confini della mente e dell'arte. Milano: Leonardo arte, 1998.

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18

1950-, Desmond Michael, Pedretti Carlo, Leonardo da Vinci 1452-1519, and Powerhouse Museum, eds. Leonardo da Vinci: The Codex Leicester--notebook of a genius. Sydney, N.S.W: Powerhouse, 2000.

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19

1953-, Perissa Torrini Annalisa, and Gallerie dell'Accademia di Venezia, eds. Leonardo: L'Uomo vitruviano fra arte e scienza. Venice: Marsilio, 2009.

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20

Leonardo. Leonardo: Anatomia. Firenze: Giunti, 1997.

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21

Leonardo. Leonardo Da Vinci. London ; New York, NY: DK Pub., 1999.

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22

C, Marani Pietro, Fiorio Maria Teresa, and Castello sforzesco, eds. Leonardo: Dagli studi di proporzioni al Trattato della pittura. Milano: Electa, 2007.

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23

1942-, Kemp Martin, and National Gallery of Scotland, eds. Leonardo da Vinci: The mystery of the Madonnaof the yarnwinder. [Edinburgh]: National Gallery of Scotland, 1992.

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24

Paolo, Galluzzi, and Montreal Museum of Fine Arts., eds. Leonardo Da Vinci: Engineer and architect. [Montreal]: Montreal Museum of Fine Arts, 1987.

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25

Leonardo. Leonardo da Vinci: The Codex Leicester : an exhibition at the Chester Beatty Library 12 June - 12 August 2007. London: Scala, 2007.

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26

Leonardo: The art of drawing. Firenze, Italia: Giunti, 2014.

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27

Leonardo. Leonardo: Un hombre universal en los límites extremos de la mente y del arte. Madrid: Electa, 1999.

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28

Carlo, Pedretti, Melani Margherita, and Basilique nationale du Sacré-Coeur (Belgium), eds. Leonardo da Vinci: The European genius : paintings and drawings : exhibition in the Basilica of Koekelberg, Brussels, in celebration of the 50th anniversary of the Treaty of Rome for the constitution of the European Community (1957-2007). Foligno (PG) [i.e. Perugia, Italy]: Cartei & Bianchi, 2007.

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29

Leonardo. Leonardo da Vinci: Engineer and architect. [Montreal]: Montreal Museum of Fine Arts, 1987.

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30

Leonardo. Leonardo da Vinci: Capolavori in mostra. Milano: Electa, 2006.

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31

Leonardo. Leonardo: Tutta la pittura. Firenze: Nardini, 1988.

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32

Leonardo. Leonardo da Vinci: Maschine Mensch. Ostfildern-Ruit: Edition Völklinger Hütte im Quantum Books, 2002.

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33

Leonardo. Leonardo da Vinci: I manoscritti dell'Istituto di Francia. Edited by Govi Gilberto 1826-1889, Poli Capri Paola, and Istituto di Francia. Roma: H. van der Poel, 2000.

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34

Leonardo. Leonardo da Vinci: Die Madonna mit der Nelke. München: Schirmer/Mosel, 2006.

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35

K, Kustodieva T., Strinati Claudio M, Palazzo ducale (Venice Italy), Palazzo del Quirinale (Rome, Italy), and Gosudarstvennyĭ Ėrmitazh (Russia), eds. Leonardo: La Madonna Litta dall'Ermitage di San Pietroburgo. Roma: De Luca, 2003.

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36

Leonardo. Leonardo da Vinci: Attualità e mito = Leonardo da Vinci : aktualitás és mítosz. [S.l.]: Museo Ideale, 1991.

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37

Leonardo. Leonardo da Vinci: Künstler, Erfinder, Wissenschaftler. Speyer: Historisches Museum der Pfalz, 1995.

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38

Escudier, Marcel. Linear momentum equation and hydrodynamic forces. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198719878.003.0009.

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In this chapter a method is shown for calculating the external reaction force which must be applied to a duct to counteract the hydrodynamic forces generated by a fluid flowing through it. Newton’s second law of motion applied to fluid flow through a duct of arbitrary shape leads to the linear momentum equation for fluid flow. This shows that the change in the momentum flowrate of the fluid is equal to the net force exerted on the fluid. The individual forces which contribute to the net force are the pressure forces at inlet and outlet, and the forces which arise due to the static pressure and shear stress distributed over the wetted interior surface of the duct. The condition of static equilibrium for the duct is used to relate the external restraining force to the force exerted by the flowing fluid on the wetted surface, which is termed the fluid-structure interaction force.
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39

Naudascher, Eduard. Hydrodynamic Forces: IAHR Hydraulic Structures Design Manuals 3. CRC Press LLC, 2017.

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40

Naudascher, Eduard. Hydrodynamic Forces: IAHR Hydraulic Structures Design Manuals 3. CRC Press LLC, 2017.

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41

Naudascher, Eduard. Hydrodynamic Forces: IAHR Hydraulic Structures Design Manuals 3. CRC Press LLC, 2017.

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42

Naudascher, Eduard. Hydrodynamic Forces: IAHR Hydraulic Structures Design Manuals 3. CRC Press LLC, 2017.

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43

HYDRODYNAMIC FORCES (Hydraulic Structures Design Manual No 3). Taylor & Francis, 1991.

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44

Ali, Abdulmuhsen H. The hydrodynamic theory of mass transport and matter forces of water. 1995.

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45

Succi, Sauro. LBE for Generalized Hydrodynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199592357.003.0025.

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This chapter presents the main techniques to incorporate the effects of external and/or internal forces within the LB formalism. This is a very important task, for it permits us to access a wide body of generalized hydrodynamic applications whereby fluid motion couples to a variety of additional physical aspects, such as gravitational and electric fields, potential energy interactions, chemical reactions and many others. It should be emphasized that while hosting a broader and richer phenomenology than “plain” hydrodynamics, generalized hydrodynamics still fits the hydrodynamic picture of weak departure from suitably generalized local equilibria. This class is all but an academic curiosity; for instance, it is central to the fast-growing science of Soft Matter, a scientific discipline which has received an impressive boost in the past decades, under the drive of micro- and nanotechnological developments and major strides in biology and life sciences at large.
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46

Hydrodynamic forces on tainter gates and stilling basin Old River Control Auxiliary Structure: Hydraulic model investigation. Vicksburg, Miss: US Army Corps of Engineers, Hydraulics Laboratory, 1988.

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47

Hsu, Ming-kuang. Random wave forces on cylinders. 1986.

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48

Janssen, Ted, Gervais Chapuis, and Marc de Boissieu. Physical properties. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198824442.003.0005.

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Physical properties of aperiodic crystals present some theoretical challenges due to the lack of three-dimensional periodicity. For the description of the structure there is a periodic representation in higher-dimensional space. For physical properties, however, this scheme cannot be used because the mapping between interatomic forces and the high-dimensional representation is not straightforward. In this chapter methods are described to deal with these problems. First, the hydrodynamic theory of aperiodic crystals and then the phonons and phasons theory are developed and illustrated with some examples. The properties of electrons in aperiodic crystals are also presented. Finally, the experimental findings of phonon and phason modes for modulated and quasicrystals are presented. The chapter also discusses diffuse scattering, the Debye–Waller factor, and electrical conductivity.
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49

Sarpkaya, Turgut 'Sarp'. Wave Forces on Offshore Structures. Cambridge University Press, 2014.

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50

Sarpkaya, Turgut 'Sarp'. Wave Forces on Offshore Structures. Cambridge University Press, 2014.

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