Libri sul tema "Reservoirs – Mathematical models"

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1

Archibald, T. W. Controlling multi-reservoirsystems. Edinburgh: University of Edinburgh Management School, 1996.

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2

Optimizing reservoir resources: Including a new model for reservoir reliability. New York: Wiley, 1999.

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3

Nekotorye voprosy upravlenii͡a vodokhranilishchami. Moskva: Vychislitelʹnyĭ t͡sentr AN SSSR, 1986.

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4

N, Chaban A., a cura di. Dispetcherskie pravila upravlenii͡a︡ vodokhranilishchem mnogoletnego regulirovanii͡a︡. Moskva: Vychislitelʹnyĭ t͡s︡entr AN SSSR, 1985.

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5

Kl̓účovská, Jelica. Dvojrozmerné matematické modelovanie prúdenia v nádržiach. Bratisłava: Výskumný ústav vodného hospodárstva, 1992.

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6

Integrated flow modeling. Amsterdam: Elsevier Science B.V., 2000.

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7

Ślusarczyk, Zbigniew. Numeryczne modele transformacji fal powodziowych przez zbiorniki retencyjne. Kraków: Politechnika Krakowska, 1992.

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8

Wolski, Piotr. Application of reservoir modelling to hydrotopes identified by remote sensing. Enschede, the Netherlands: International Institute for Aerospace Survey and Earth Sciences (ITC), 1999.

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9

Chang, Ming. Model simulation of the Manasquan water-supply system in Monmouth County, New Jersey. West Trenton, N.J: U.S. Dept. of the Interior, U.S. Geological Survey, 2001.

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10

Effler, Steven W. Origins, behavior, and modeling of THM precursors in lakes and reservoirs. Denver, Colo: Awwa Research Foundation, 2005.

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11

Restrepo, Darío Valencia. Teoría de control en sistemas de recursos hidráulicos. Medellín, Colombia: Universidad Nacional de Colombia Facultad de Minas, 1991.

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12

Chang, Ming. Model simulation of the Manasquan water-supply system in Monmouth County, New Jersey. West Trenton, N.J: U.S. Dept. of the Interior, U.S. Geological Survey, 2001.

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13

U.S. Army Engineer Waterways Experiment Station., a cura di. MAC3D: Numerical model for reservoir hydrodynamics with application to bubble diffusers. Vicksburg, Miss: US Army Corps of Engineers, Waterways Experiment Station, 1998.

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14

Pʹi︠a︡nkov, S. V. GIS i matematiko-kartograficheskoe modelirovanie pri issledovanii vodokhranilishch: Na primere Kamskikh : monografii︠a︡. Permʹ: Permskiĭ gosudarstvennyĭ universitet, 2011.

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15

Green, W. Reed. Analysis of ambient conditions and simulation of hydrodynamics, constituent transport, and water-quality characteristics in Lake Maumelle, Arkansas, 1991-92. Little Rock, Ark: U.S. Dept. of the Interior, U.S. Geological Survey, 2001.

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16

Wurbs, Ralph Allen. Modeling and analysis of reservoir system operations. Upper Saddle River, NJ: Prentice Hall PTR, 1996.

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17

Fogg, Graham E. Reservoir modeling of restricted platform carbonates: Geologic/geostatistical characterization of interwell-scale reservoir heterogeneity, Dune Field, Crane County, Texas. Austin, Tex: Bureau of Economic Geology, University of Texas at Austin, 1990.

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18

Chernykh, V. A. Matematicheskai︠a︡ gidrogeomekhanika plastov i skvazhin: Mathematical hydrogeomechanics of the reservoirs and wells. Moskva: Neftʹ i gaz, 2012.

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19

D, Kreĭman K., e Institut ozerovedenii͡a︡ (Rossiĭskai͡a︡ akademii͡a︡ nauk), a cura di. Modelirovanie prot͡s︡essov teplomassoperenosa v vodoeme i na ego vodosbore. Sankt-Peterburg: "Nauka," S.-Peterburgskoe otd-nie, 1992.

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20

California. Department of Water Resources. Division of Planning. Central Valley future water supplies for use in DWRSIM. [Sacramento]: State of California, Resources Agency, Dept. of Water Resources, Division of Planning, 1995.

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21

Changmin, Zhang, e Yin Yanshu, a cura di. Chu ceng jian mo suan fa pou xi. Beijing: Shi you gong ye chu ban she, 2012.

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22

Deep-water processes and facies models: Implications for sandstone petroleum reservoirs]. Amsterdam: Elsevier, 2006.

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23

V, Panfilova I., a cura di. Osrednennye modeli filtrat͡s︡ionnykh prot͡s︡essov s neodnorodnoĭ vnutrenneĭ strukturoĭ. Moskva: "Nauka", 1996.

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24

Wenqing, Pan, a cura di. Lie feng di zhi jian mo ji li xue ji zhi. Beijing: Ke xue chu ban she, 2013.

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25

Haggard, Brian E. Simulation of hydrodynamics, temperature, and dissolved oxygen in Beaver Lake, Arkansas, 1994-1995. Little Rock, Ark: U.S. Dept. of the Interior, U.S. Geological Survey, 2002.

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26

Haggard, Brian E. Simulation of hydrodynamics, temperature, and dissolved oxygen in Beaver Lake, Arkansas, 1994-1995. Little Rock, Ark: U.S. Geological Survey, 2002.

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27

L, Stoudt Emily, e Harris Paul M. 1949-, a cura di. Hydrocarbon reservoir characterization: Geologic framework and flow unit modeling. Tulsa, Okla: Society for Sedimentary Geology, 1995.

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28

Robertson, Dale M. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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29

Robertson, Dale M. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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30

Robertson, Dale M. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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31

Robertson, Dale M. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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32

M, Robertson Dale. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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33

M, Robertson Dale. One-dimensional simulation of stratification and dissolved oxygen in McCook Reservoir, Illinois. Middleton, Wis: U.S. Dept. of the Interior, U.S. Geological Survey, 2000.

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34

Raschet pravil upravlenii͡a︡ kaskadom vodokhranilishch irrigat͡s︡ionno-ėnergeticheskogo naznachenii͡a︡. Moskva: Vychislitelʹnyĭ t͡s︡entr AN SSSR, 1986.

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35

De-Xing, Chen, e United States. Bureau of Reclamation. Denver Office., a cura di. Assessment of responses of hydrilla verticillata to atmospheric change with modeling predictions for four western United States reservoirs. Denver, Colo: U.S. Dept. of the Interior, Bureau of Reclamation, Denver Office, 1995.

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36

Feltrin, Glauco. Absorbing boundaries for the time-domain analysis of dam-reservoir-foundation systems. Zurich: Institut für Baustatik und Konstruktion ETH Zürich, 1997.

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37

Zsuffa, István. Reservoir sizing by transition probabilities: Theory, methodology, application. Littleton, Colo., USA: Water Resources Publications, 1987.

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38

Kofi, Asante-Duah D., e Zsuffa István, a cura di. Hydrological dimensioning and operation of reservoirs: Practical design concepts and principles. Dordrecht: Kluwer Academic Publishers, 2002.

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39

Bender, David A. LakeVOC, a computer model to estimate the concentration of volatile organic compounds in lakes and reservoirs. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 2003.

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40

Bender, David A. LakeVOC, a computer model to estimate the concentration of volatile organic compounds in lakes and reservoirs. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 2003.

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41

Bender, David A. LakeVOC, a computer model to estimate the concentration of volatile organic compounds in lakes and reservoirs. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 2003.

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42

Bender, David A. LakeVOC, a computer model to estimate the concentration of volatile organic compounds in lakes and reservoirs. [Reston, Va.]: U.S. Dept. of the Interior, U.S. Geological Survey, 2003.

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43

Pointe, P. R. La, e Y. Zee Ma. Uncertainty analysis and reservoir modeling. Tulsa, OK: American Association of Petroleum Geologists, 2011.

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44

International, Symposium on Modeling Environmental Flows (1985 Albuquerque N. M. ). International Symposium on Modeling Environmental Flows. New York, N.Y. (345 E. 47th St., New York 10017): American Society of Mechanical Engineers, 1985.

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45

Metod fundamentalʹnykh resheniĭ v geomekhanike dobychi nefti i gaza: Method of fundamental solutions in geomechanic of reservoirs and wells. Moskva: RUDN, 2013.

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46

Lerche, I. Inverse and risking methods in hydrocarbon exploration: A compendium. Essex, UK: Multi-Science Publishing Co., Ltd., 2005.

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47

Sullivan, Annett B. Modeling water quality effects of structural and operational changes to Scoggins Dam and Henry Hagg Lake, Oregon. Reston, Va: U.S. Geological Survey, 2006.

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48

H, Abou-Kassem Jamal, a cura di. Reservoir simulations handbook: Understanding reservoir simulation development. Houston, TX: Gulf Pub. Co., 2006.

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49

Mazo, Aleksandr, e Konstantin Potashev. The superelements. Modeling of oil fields development. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1043236.

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Abstract (sommario):
This monograph presents the basics of super-element modeling method of two-phase fluid flows occurring during the development of oil reservoir. The simulation is performed in two stages to reduce the spatial and temporal scales of the studied processes. In the first stage of modeling of development of oil deposits built long-term (for decades) the model of the global dynamics of the flooding on the super-element computational grid with a step equal to the average distance between wells (200-500 m). Local filtration flow, caused by the action of geological and technical methods of stimulation, are modeled in the second stage using a special mathematical models using computational grids with high resolution detail for the space of from 0.1 to 10 m and time — from 102 to 105 C. The results of application of the presented models to the solution of practical tasks of development of oil reservoir. Special attention is paid to the issue of value transfer in filtration-capacitive properties of the reservoir, with a detailed grid of the geological model on the larger grid reservoir models. Designed for professionals in the field of mathematical and numerical modeling of fluid flows occurring during the development of oil fields and using traditional commercial software packages, as well as developing their own software. May be of interest to undergraduate and graduate students studying in areas such as "Mechanics and mathematical modeling", "Applied mathematics", "Oil and gas".
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50

Cooper, Clay A. Tritium transport at the Rulison Site, a nuclear-stimulated low-permeability natural gas reservoir. [Reno, Nev.]: Desert Research Institute, 2007.

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