Modeling of viscous fluid flow in the vertical main fracture with permeable walls
Matematičeskoe modelirovanie, Tome 28 (2016) no. 7, pp. 65-80.

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The paper descrıbes a hydraulic model of the tracer fluid flow in a vertical main fracture considering inertia forces, non-uniform in time and space fluid leak-offs into formations through fracture walls, friction on the fracture walls, as well as variations in fluid momentum due to its leakoff into the formation (from the formation). The model equations are solved numerically based on the control volume approach and algorithm SIMPLE, which have been modified relative to the problem of permeable walls.
Mots-clés : main fracture
Keywords: tracer tests, fluid leakoff in reservoir, control volume method.
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A. M. Ilyasov; G. T. Bulgakova. Modeling of viscous fluid flow in the vertical main fracture with permeable walls. Matematičeskoe modelirovanie, Tome 28 (2016) no. 7, pp. 65-80. http://geodesic.mathdoc.fr/item/MM_2016_28_7_a5/

[1] E. V. Sokolovsky, G. B. Soloviev, Iu. I. Trenchikov, Indikatornye metody izucheniia neftegazonosnykh plastov, Nedra, M., 1986, 157 pp.

[2] G. M. Shook, “A Simple Fast Method of Estimating Fractured Reservoir Geometry from Tracer Tests”, Transactions Geothermal Resources Council, 26 (2003), 407–411

[3] M. S. Khozyainov, E. V. Sokolovsky, D. A. Chernokogev, Indikatornye filtratsionnye issledovaniia neftyanykh mestorozhdeney, Palmarium Academic Publishing, Saarbrucken, Germany, 2014, 180 pp.

[4] P. Yu. Tomin, “O primenenii trasserov dlia vyiavleniya ocobennostey sredy v mezhskvazhinnom prostranstve”, Keldysh Institute preprints, 2010, 086, 12 pp.

[5] M. S. Khozyainov, D. A. Chernokogev, “Kompiuternoe modelirovanie filtratsii mechenoi zhidkosti c tseliu utochneniia geologicheskoi modeli ekspluatiruemogo neftianogo plasta”, Karotazhnik, 116–117 (2004), 293–294

[6] D. A. Chernokogev, “Interpretatsiia rezultatov kompiuternogo modelirovaniia filtratsii vody, nefti i otorochki mechenoi zhidkosti dlia zonalno-neodnorodnogo i sloisto-neodnorodnogo neftianogo plasta-kollectora”, Geoinformatika, 2004, no. 1, 15–22

[7] L. Guan, Y. Du, S. G. Johnson, M. Choudhary, “Advances of Interwell Tracer Modelling in Petroleum Industry”, Journal of Canadian Petroleum Technology, 44:5 (2005), 12–15 | DOI

[8] A. H. de Zwart, D. W. van Batenburg, M. Stoll et. al., Numerical Interpretation of Single Well Chemical Tracer Tests for ASP injection, 141557-MS SPE Conference Paper, 2011

[9] P. X. Bu, A. M. AlSofi, Jim Liu et al., Simulation of Single Well Tracer Tests for Surfactant-Polymer Flooding, 172229-MS SPE Conference Paper, 2014

[10] S. V. Patankar, Numerical Heat Transfer and Fluid Flow, McGraw-Hill Book Co., New York, 1980, 197 pp. | Zbl

[11] I. A. Charny, Neustanovivsheesia dvizhenie realnoi zhidkosti v trubakh, GITTL, M.–L., 1951, 224 pp.

[12] L. I. Sedov, Mekhanika sploshnoi sredy, v. 1, Nauka, M., 1970, 492 pp. | MR

[13] I. V. Meshersky, Raboty po mekhanike tel peremennoi massy, Izd. 2-e, GITTL, M., 1952, 280 pp. | MR

[14] Loitsianskii L. G., And Fluid Mechanics Gas, Drofa, M., 2003, 840 pp. (in Russian)