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1

Lee, Cheng-Haw. Fluid flow in discontinuous rocks. London: Chapman & Hall, 1993.

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2

Barenblatt, G. I. Theory of fluid flows through natural rocks. Dordrecht: Kluwer Academic Publishers, 1990.

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3

Flow and reactions in permeable rocks. Cambridge [England]: Cambridge University Press, 1991.

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4

Phillips, O. M. Geological fluid dynamics: Sub-surface flow and reactions. Cambridge, UK: Cambridge University Press, 2009.

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5

Phillips, O. M. Geological fluid dynamics: Sub-surface flow and reactions. Cambridge, UK: Cambridge University Press, 2009.

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6

V, Marasanova N., Nauchnyĭ sovet po problemam geologii i geokhimii nefti i gaza (Akademii︠a︡ nauk SSSR), and Institut geologii i razrabotki gori︠u︡chikh iskopaemykh (Russia), eds. Fli︠u︡idodinamicheskiĭ faktor v tektonike i neftegazonosnosti osadochnykh basseĭnov. Moskva: "Nauka", 1989.

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7

Peach, Colin Jack. Influence of deformation on the fluid transport properties of salt rocks. [Utrecht: Facultiet Aardwetenschappen der Rijksuniversiteit Utrecht], 1991.

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8

1970-, Liu Weiqun, and Chen Zhanqing 1961-, eds. Cai dong yan ti shen liu li lun. Beijing: Ke xue chu ban she, 2004.

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9

J, Sanderson D., ed. Numerical modelling and analysis of fluid flow and deformation of fractured rock masses. Amsterdam: Pergamon, 2002.

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10

Rasmussen, T. C. Fluid flow and solute transport modeling through three-dimensional networks of variably saturated discrete fractures. Washington, DC: Division of Engineering, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1989.

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11

International Symposium on multi-field coupling theory of rock and soil media and its applications (2010 Chengdu City, China). Multi-field coupling theory of rock and soil media and its applications: Proceedings of the International Symposium, Chengdu City, China. Edited by Liu Jianjun, Zhang Henry, and Zhao Ruimei. Marrickville, N.S.W: Orient Academic Forum, 2010.

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12

Corey, A. T. Mechanics of immiscible fluids in porous media. 3rd ed. Highlands Ranch, Colo: Water Resources Publications, 1994.

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13

Corey, A. T. Mechanics of immiscible fluids in porous media. 2nd ed. Littleton, Colo., U.S.A: Water Resources Publications, 1986.

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14

Johannes Petrus Bernardus Nicolaas Derks. Cold fluid driven crack propagation: Thermo-mechanical behaviour of rock caverns. Delft, The Netherlands: Delft University Press, 1997.

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15

International Workshop on Rock Scour Due to High-Velocity Jets (2002 Lausanne, Switzerland). Rock scour due to falling high-velocity jets: Proceedings of the International Workshop on Rock Scour Due to High-Velocity Jets, Lausanne, Switzerland, 25-28 September 2002. Lisse: A.A. Balkema, 2002.

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16

International Workshop on Geomechanics (2000 Paris, France). Hydromechanical and thermohydromechanical behaviour of deep argillaceous rock: Theory and experiments : proceedings of the International Workshop on Geomechanics, Paris, France, 11-12 October 2000. Lisse: A.A. Balkema, 2002.

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17

Platov, Nikolay. Fundamentals of engineering Geology. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1091050.

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The theoretical and practical foundations of engineering geology, the geological structure and origin of the Earth are described, the minerals of rocks and the rocks themselves of igneous, sedimentary and metamorphic origin are considered. Considerable attention is paid to the geomorphological, geodynamic, and hydrogeological conditions of the construction site with the allocation of three types of underground water: upper water, ground water, and inter-reservoir. The dynamics of the development of various forms of relief caused by endogenous and exogenous processes is given. The zonal elements of engineering and geological conditions of any construction site are given. Meets the requirements of the federal state educational standards of secondary vocational education of the latest generation. For students of secondary vocational education institutions studying engineering geology.
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18

B, Jamtveit, and Yardley B. W. D, eds. Fluid flow and transport in rocks: Mechanisms and effects. London: Chapman & Hall, 1997.

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19

(Editor), B. Jamtveit, and B. W. Yardley (Editor), eds. Fluid Flow and Transport in Rocks: Mechanisms and Effects. Springer, 1996.

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20

C, Goff J., Williams B. P. J, Geological Society of London. Petroleum Specialist Group., and Geological Society of London. Hydrogeological Specialist Group., eds. Fluid flow in sedimentary basins and aquifers. Oxford, OX: Published for the Geological Society by Blackwell Scientific Publications, 1987.

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21

Tim, Pharaoh, Beckinsale R. D, Rickard David T. 1943-, Geological Society of London, International Lithosphere Program, and International Geological Correlation Programme. Project 217, Proterozoic Geochemistry., eds. Geochemistry and mineralization of Proterozoic volcanic suites. Oxford: Published for the Geological Society by Blackwell Scientific Publications, 1987.

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22

Barenblatt, G. I., V. M. Ryzhik, and V. M. Entov. Theory of Fluid Flows Through Natural Rocks. Barenblatt G I Entov V M Ryzhik V M, 2010.

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23

Jamtveit, Bjørn. Fluid Flow and Transport in Rocks: Mechanisms and effects. Brand: Springer, 2011.

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24

Ken, McCaffrey, Lonergan Lidia, and Wilkinson Jamie, eds. Fractures, fluid flow, and mineralization. Bath: Geological Society, 1999.

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25

Siliciclastic diagenesis and fluid flow: Concepts and applications. Tulsa, Okla: SEPM (Society for Sedimentary Geology), 1996.

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26

Parnell, J. Geofluids: Origin, Migration and Evolution of Fluids in Sedimentary Basins (Geological Society Special Publication). Geological Society Publishing House, 1994.

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27

National Research Council (U.S.). Committee on Fracture Characterization and Fluid Flow., ed. Rock fractures and fluid flow: Contemporary understanding and applications. Washington, D.C: National Academy Press, 1996.

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28

(US), National Research Council. Rock Fractures and Fluid Flow: Contemporary Understanding and Applications. National Academies Press, 1996.

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29

Theory of Linear Poroelasticity with Applications to Geomechanics and Hydrogeology. Princeton University Press, 2000.

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30

Wang, Herbert F. Theory of Linear Poroelasticity with Applications to Geomechanics and Hydrogeology. Princeton University Press, 2017.

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31

Flow in Porous Rocks: Energy and Environmental Applications. Cambridge University Press, 2014.

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32

Corey, T. Arthur. Mechanics of Immiscible Fluids in Porous Media. 2nd ed. Water Resources Pubns, 1986.

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33

Hans-Joachim, Kümpel, ed. Thermo-hydro-mechanical coupling in fractured rock. Basel: Birkhäuser, 2003.

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34

Subterranean Flow and Reactions. Cambridge University Press, 2008.

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35

Berkowitz, Brian. Dispersion in Heterogeneous Geological Formations. Springer, 2001.

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36

A, Borisov A., Kadik A. A, and Institut geokhimii i analiticheskoĭ khimii im. V.I. Vernadskogo., eds. Fli͡u︡idy i okislitelʹno-vosstanovitelʹnye ravnovesii͡a︡ v magmaticheskikh sistemakh. Moskva: "Nauka", 1991.

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37

1938-, Stephansson Ove, Jing Lanru, and Tsang Chin-Fu, eds. Coupled thermo-hydro-mechanical processes of fractured media: Mathematical and experimental studies : recent developments of DECOVALEX project for radioactive waste repositories. Amsterdam: Elsevier, 1996.

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38

Ove, Stephansson, Jing Lanru, and Tsang Chin-Fu, eds. Coupled thermo-hydro-mechanical processes of fractured media: Mathematicaland experimental studies : recent developments of DECOVALEX project for radioactive waste repositories. New York: Elsevier, 1996.

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