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1

Yoshizawa, Akira. Hydrodynamic and magnetohydrodynamic turbulent flows: Modelling and statistical theory. Dordrecht: Kluwer Academic, 1998.

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2

1953-, Tsanis Ioannis K., ed. Environmental hydraulics: Hydrodynamic and pollutant transport modelling of lakes and coastal waters. Amsterdam: Elsevier, 2007.

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3

Los, Hans. Eco-hydrodynamic modelling of primary production in coastal waters and lakes using BLOOM. Amsterdam: IOS Press, 2009.

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4

1930-, Noye John, and Workshop on Numerical Modelling of Marine Systems (1986 : University of Adelaide), eds. Numerical modelling: Applications to marine systems. Amsterdam: North-Holland, 1987.

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5

Hussey, Michael T. Numerical modelling of cohesive sediment transport. Dublin: University College Dublin, 1996.

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6

Hervouet, Jean-Michel. Hydrodynamics of free surface flows: Modelling with the finite element method. Chichester, UK: John Wiley & Sons, 2006.

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7

Jin, X. Y. Quasi-three-dimensional numerical modelling of flow and dispersion in shallow water. [Delft, Netherlands]: Faculty of Civil Engineering, Delft University of Technology, 1993.

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8

Blokhin, A. M. Mathematical modelling in the theory of multivelocity continuum. Commack, N.Y: Nova Science Publishers, 1995.

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9

Centre, Bhabha Atomic Research, ed. Numerical simulations of radiation hydrodynamics and modelling of hingh temperature hohlraum cavities. Mumbai: Bhabha Atomic Research Centre, 2003.

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10

Velickov, Slavco. Nonlinear dynamics and chaos with applications to to hydrodynamics and hydrological modelling. Delft, the Netherlands: A.A. Balkema, 2004.

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11

Nachbin, A. Modelling of water waves in shallow channels. Southampton, UK: Computational Mechanics Publications, 1993.

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12

Nachbin, A. Modelling of water waves in shallow channels. Southampton, UK: Computational Mechanics Publications, 1993.

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13

IAHR Symposium on Mathematical Modelling of Sediment Transport in the Coastal Zone (1988 Copenhagen, Denmark). Proceedings: IAHR Symposium on Mathematical Modelling of Sediment Transport in the Coastal Zone, Copenhagen, Denmark, 30 May - 1 June 1988. Hørsholm: Danish Hydraulic Institute, 1988.

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14

Dirk, Roose, Vollebregt E. A, Bentamy A, and Hantel Michael, eds. I. Modelling large scale marine systems on high performance computers: A challenge for hydrodynamics, ecology and scientific computing. Oxford: Pergamon, 1998.

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15

Chanson, Hubert. The hydraulics of open channel flow: An introduction ; basic principles, sediment motion, hydraulic modelling, design of hydraulic structures. 2nd ed. Oxford [UK]: Elsevier Butterworth Heinemann, 2004.

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16

1942-, Bois Pierre-Antoine, and Guiraud Jean-Pierre, eds. Asymptotic modelling in fluid mechanics: Proceedings of a symposium in honour of Professor Jean-Pierre Guiraud, held at the Université Pierre et Marie Curie, Paris France, 20-22 April 1994. Berlin: Springer, 1995.

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17

Hydrodynamic Modelling and Granular Dynamics. Bookboon.com, 2013.

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18

Hydrodynamic Modelling and Granular Dynamics. Bookboon, 2013.

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19

Hydrodynamic Modelling and Granular Dynamics. Bookboon.com, 2013.

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20

Hydrodynamic Modelling and Granular Dynamics. Bookboon.com, 2013.

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21

Navarro, Pilar Garcia, and Enrique Playan. Numerical Modelling of Hydrodynamics for Water Resources: Proceedings of the Conference on Numerical Modelling of Hydrodynamic Systems. Taylor & Francis Group, 2007.

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22

Navarro, Pilar Garcia, and Enrique Playan. Numerical Modelling of Hydrodynamics for Water Resources: Proceedings of the Conference on Numerical Modelling of Hydrodynamic Systems. Taylor & Francis Group, 2007.

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23

Navarro, Pilar Garcia, Playán Enrique, and Enrique Playán. Numerical Modelling of Hydrodynamics for Water Resources: Proceedings of the Conference on Numerical Modelling of Hydrodynamic Systems. Taylor & Francis Group, 2007.

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24

徴, 吉澤. Hydrodynamic and Magnetohydrodynamic Turbulent Flows: Modelling and Statistical Theory. Springer, 2013.

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25

Hydrodynamic and Magnetohydrodynamic Turbulent Flows: Modelling and Statistical Theory. Dordrecht: Springer Netherlands, 1998.

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26

Environmental Hydraulics - Hydrodynamic and Pollutant Transport Modelling of Lakes and Coastal Waters. Elsevier, 2006. http://dx.doi.org/10.1016/s0167-5648(06)x5600-9.

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27

Navarro, Pilar Garcia, and Enrique Playan, eds. Numerical Modelling of Hydrodynamics for Water Resources. CRC Press, 2007. http://dx.doi.org/10.1201/9781482288513.

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28

Numerical Modelling of Hydrodynamics for Water Resources. Routledge, 2007. http://dx.doi.org/10.4324/9780203932179.

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29

Sanz-Ramos, M., L. Cea, E. Bladé, D. López-Gómez, E. Sañudo, G. Corestein, G. García-Alén, and J. Aragón-Hernández. Iber v3. Reference manual and user's interface of the new implementations. CIMNE, 2022. http://dx.doi.org/10.23967/iber.2022.01.

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Iber is a two-dimensional hydraulic model for the simulation of free surface flow in rivers and estuaries, and the simulation of environmental processes in fluvial hydraulics. Since the release of the first version of Iber, which included a hydrodynamic calculation engine fully coupled with sediment transport processes and turbulence, it has evolved to become a free surface flow modelling tool for highly complex environmental processes. This document presents the developments made for version 3, where the advances are applied mainly in four current research lines: a new urban drainage module, a significant advance in the capabilities of the hydrological process module, a new soil erosion module, and a new module for calculating sediment transport considering non-uniform material (mixtures). Likewise, all the work has been accompanied by a cross-cutting task of improving the interface, both for existing modules and the creation of new windows and menus for new modules aiming to improve the whole workflow.
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30

Modelling of intakes, cavitation, and pressure surges: A bibliography of modelling processes involved in intakes, inlets, outlets, cavitation, and pressure surge phenomena. Cranfield, Bedford: BHRA (Information Services), Fluid Engineering Centre, 1989.

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31

Lesser, Giles. Approach to Medium-Term Coastal Morphological Modelling. Taylor & Francis Group, 2009.

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32

Eimanis, Mārcis. Usage of Double-Helical Propulsion Principle in Underwater Vehicles. RTU Press, 2022. http://dx.doi.org/10.7250/9789934227370.

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The Thesis describes a new underwater vehicle propulsion type developed by the author. Flow and vehicle interaction dynamics are studied, and factors impacting the flow, control methods and the ability to move in other media (in addition to fluid) are reviewed. A geometry of the propulsion system was created by studying its hydrodynamic properties using special CFD software. A mathematical model for the control system was created. The dynamics of the underwater vehicle were modelled with the multibody dynamics modelling software MSC Adams, using the developed control system and the water resistance model developed with CFD software. Flow dynamics were combined with multibody mechanism dynamics using the metamodeling and numerical experiment approach. Numerical experiments in bulk or granular media were performed using the discrete element method, simulating the vehicle movement using the EDEM software. Within the framework of the Thesis, a prototype of the model was also created for observing the model behaviour in real-life conditions. High-quality and good fit results were obtained from the mathematical model and the physical prototype dynamics, proving the performance of both the new propulsion principle and the control system.
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33

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley, 2013.

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34

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley & Sons, Incorporated, John, 2013.

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35

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley & Sons, Incorporated, John, 2013.

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36

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley & Sons, Incorporated, John, 2013.

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37

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley & Sons, Incorporated, John, 2013.

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38

Jovic, Vinko. Analysis and Modelling of Non-Steady Flow in Pipe and Channel Networks. Wiley & Sons, Limited, John, 2013.

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39

Hervouet, Jean-michel. Hydrodynamics of Free Surface Flows: Modelling With the Finite Element Method. John Wiley & Sons Inc, 2007.

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40

Lesser, Giles. Approach to Medium-Term Coastal Morphological Modelling: UNESCO-IHE PhD Thesis. Taylor & Francis Group, 2017.

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41

Velickov, Slavco. Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. Taylor & Francis Group, 2017.

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42

Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. Routledge, 2004. http://dx.doi.org/10.4324/9780203024324.

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43

Hervouet, Jean-Michel. Hydrodynamics of Free Surface Flows: Modelling with the Finite Element Method. Wiley, 2007.

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44

Velickov, Slavco. Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. Taylor & Francis Group, 2004.

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45

Velickov, Slavco. Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. Taylor & Francis Group, 2014.

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46

Hervouet, Jean-Michel. Hydrodynamics of Free Surface Flows: Modelling with the Finite Element Method. Wiley & Sons, Incorporated, John, 2007.

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47

Velichov, S. Nonlinear Dynamics and Chaos with Applications to Hydrodynamics andf Hydrological Modelling. Taylor & Francis, 2004.

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48

Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. Taylor & Francis Group, 2014.

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49

Nonlinear Dynamics and Chaos with Applications to Hydrodynamics and Hydrological Modelling. CRC Press LLC, 2012.

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50

Numerical Modelling Of Hydrodynamics For Water Resources Proceedings Of The International Workshop On Numerical Modelling Of Hydrodynamics For Water Resources Zaragoza Spain June 1821 2007. Taylor & Francis Group, 2007.

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