dc.contributor | Mejía-Cárdenas, Juan Manuel | |
dc.contributor | Universidad Nacional de Colombia - Sede Medellín | |
dc.contributor | Dinámicas de Flujo y Transporte en Medios Porosos | |
dc.creator | Loaiza-Cano, Cristian Stiven | |
dc.date.accessioned | 2020-05-05T21:48:12Z | |
dc.date.accessioned | 2022-09-21T17:08:44Z | |
dc.date.available | 2020-05-05T21:48:12Z | |
dc.date.available | 2022-09-21T17:08:44Z | |
dc.date.created | 2020-05-05T21:48:12Z | |
dc.date.issued | 2020-02-14 | |
dc.identifier | Loaiza, C. (2020). Simulación de procesos de recobro químico mejorado con inyección de polímero y surfactante potencializados con nanotecnología. MSc thesis. | |
dc.identifier | Loaiza, C. (2020). Simulación de procesos de recobro químico mejorado con inyección de polímero y surfactante potencializados con nanotecnología. Tesis de maestría. Universidad Nacional de Colombia | |
dc.identifier | Loaiza, C. (2020). Simulación de procesos de recobro químico mejorado con inyección de polímero y surfactante potencializados con nanotecnología. Tesis de maestría. Universidad Nacional de Colombia | |
dc.identifier | https://repositorio.unal.edu.co/handle/unal/77477 | |
dc.identifier.uri | http://repositorioslatinoamericanos.uchile.cl/handle/2250/3398295 | |
dc.description.abstract | En esta Tesis de Maestría se desarrolla un modelo de simulación numérica de yacimientos capaz de simular procesos de recobro químico mejorado mediante inyección de polímeros y surfactantes potencializados con nanotecnología. A partir de la identificación de los principales fenómenos y mecanismos físicos presentes en este tipo de operaciones, se propuso el modelo matemático. Se llevó a cabo una detallada metodología para obtener solución numérica al conjunto de ecuaciones. Finalmente, se construyó una herramienta computacional que permitió simular diferentes casos de estudio. Este modelo se validó satisfactoriamente con datos reportados en literatura especializada, datos de pruebas de laboratorio y resultados obtenidos mediante simuladores comerciales. | |
dc.description.abstract | A model for numerical reservoir simulation capable of modeling chemical Enhanced Oil Recovery processes by polymer and surfactant flooding reinforced with nanotechnology is developed in this Master's Thesis. The mathematical model was proposed from the identification of the main phenomena and physical mechanisms present in this kind of operation. A detailed methodology was carried out to get a numerical solution to that set of equations. Finally, a computational tool was built to simulate different case studies. This model was successfully validated with data reported in specialized literature, laboratory tests data, and results obtained by commercial simulators. | |
dc.language | spa | |
dc.publisher | Medellín - Minas - Maestría en Ingeniería - Ingeniería de Petróleos | |
dc.publisher | Departamento de Procesos y Energía | |
dc.publisher | Universidad Nacional de Colombia - Sede Medellín | |
dc.relation | Abou-Kassem, J., Farouq Ali, S., and Islam, M. (2006). A basic approach to reservoir simulation. | |
dc.relation | Ahmadi, M. A. (2016). Use of nanoparticles to improve the performance of sodium dodecyl sulfate ooding in a sandstone reservoir. The European Physical Journal Plus, 131(12):435. | |
dc.relation | Ahmadi, M. A. and Shadizadeh, S. R. (2012). Adsorption of novel nonionic surfactant and particles mixture in carbonates: enhanced oil recovery implication. Energy & Fuels, 26(8):4655{4663. | |
dc.relation | Ahrens, J., Geveci, B., and Law, C. (2005). Paraview: An end-user tool for large data visualization. The visualization handbook, 717. | |
dc.relation | Ali, J. A., Kolo, K., Manshad, A. K., and Mohammadi, A. H. (2018). Recent advances in application of nanotechnology in chemical enhanced oil recovery: E_ects of nanoparticles on wettability alteration, interfacial tension reduction, and ooding. Egyptian journal of petroleum | |
dc.relation | Amin, B. M. and Peyman, P. (2015). Improvement of surfactant ooding performance by application of nanoparticles in sandstone reservoirs. Journal of the Japan Petroleum Institute, 58(2):97{102. | |
dc.relation | Ayatollahi, S., Zerafat, M. M., et al. (2012). Nanotechnology-assisted eor techniques: New solutions to old challenges. In SPE international oil_eld nanotechnology conference and exhibition. Society of Petroleum Engineers. | |
dc.relation | Bayat, A. E., Junin, R., Shamshirband, S., and Chong, W. T. (2015). Transport and retention of engineered al 2 o 3, tio 2, and sio 2 nanoparticles through various sedimentary rocks. Scienti_c reports, 5:14264. | |
dc.relation | Bennetzen, M. V., Mogensen, K., et al. (2014). Novel applications of nanoparticles for future enhanced oil recovery. In International petroleum technology conference. International Petroleum Technology Conference. | |
dc.relation | Bueno, N. (2019). Desarrollo de un modelo de simulación térmica y composicional para estudiar el impacto en el recobro de crudo y cambios de composición durante la coinfección de vapor y gases no condensables en yacimientos de crudo pesado. | |
dc.relation | Carreau, P. J. (1972). Rheological equations from molecular network theories. Transactions of the Society of Rheology, 16(1):99{127 | |
dc.relation | Chen, F., Gu, J., Jiang, H., Yao, X., and Li, Y. (2018). Laboratory evaluation and numerical simulation of the alkali{surfactant{polymer synergistic mechanism in chemical ooding. RSC advances, 8(47):26476{26487.. | |
dc.relation | Delshad, M., Najafabadi, N. F., Anderson, G. A., Pope, G. A., Sepehrnoori, K., et al. (2006). Modeling wettability alteration in naturally fractured reservoirs. In SPE/DOE Symposium on Improved Oil Recovery. Society of Petroleum Engineers | |
dc.relation | El-Amin, M., Salama, A., and Sun, S. (2015). Numerical and dimensional analysis of nanoparticles transport with two-phase ow in porous media. Journal of Petroleum Science and Engineering, 128:53{64. | |
dc.relation | Emadi, S., Shadizadeh, S. R., Manshad, A. K., Rahimi, A. M., and Mohammadi, A. H. (2017). E_ect of nano silica particles on interfacial tension (ift) and mobility control of natural surfactant (cedr extraction) solution in enhanced oil recovery process by nanosurfactant ooding. Journal of Molecular Liquids, 248:163{167 | |
dc.relation | Fortenberry, R., Li, Z., Huh, C., Delshad, M., Lu, J., Chen, M., et al. (2017). Polymer degradation{holistic modeling of chemical and mechanical phenomena. In SPE Reservoir Characterisation and Simulation Conference and Exhibition. Society of Petroleum Engineers.. | |
dc.relation | Giraldo, L. J., Giraldo, M. A., Llanos, S., Maya, G., Zabala, R. D., Nassar, N. N., Franco, C. A., Alvarado, V., and Cort_es, F. B. (2017). The e_ects of sio2 nanoparticles on the thermal stability and rheological behavior of hydrolyzed polyacrylamide based polymeric solutions. Journal of Petroleum Science and Engineering, 159:841{852. | |
dc.relation | Hendraningrat, L., Li, S., Torsater, O., et al. (2013b). A coreood investigation of nanouid enhanced oil recovery in low-medium permeability berea sandstone. In SPE International Symposium on Oil_eld Chemistry. Society of Petroleum Engineers. | |
dc.relation | Khabashesku, V., Kuznetsov, O., Agrawal, D., Suresh, R., and Darugar, Q. (2017). Nanosilica enabled reduction of surfactant adsorption in porous media under reservoir temperatura and salinity. Recent Adv Petrochem Sci, 3(5):555623. | |
dc.relation | Khalilinezhad, S. S., Cheraghian, G., Karambeigi, M. S., Tabatabaee, H., and Roayaei, E. (2016). Characterizing the role of clay and silica nanoparticles in enhanced heavy oil recovery during polymer ooding. Arabian Journal for Science and Engineering, 41(7):2731{2750 | |
dc.relation | Khezrnejad, A., James, L., and Johansen, T. (2015). Nanouid enhanced oil recovery{ mobility ratio, surface chemistry, or both. In Int. Symp. of the Society of Core Analysts, pages 16{21.. | |
dc.relation | Le, N. Y. T., Pham, D. K., Le, K. H., and Nguyen, P. T. (2011). Design and screening of synergistic blends of sio2 nanoparticles and surfactants for enhanced oil recovery in hightemperature reservoirs. Advances in Natural Sciences: Nanoscience and Nanotechnology, 2(3):035013. | |
dc.relation | Llanos, S., Giraldo, L. J., Santamaria, O., Franco, C. A., and Cort_es, F. B. (2018). E_ect of sodium oleate surfactant concentration grafted onto sio2 nanoparticles in polymer ooding processes. ACS Omega, 3(12):18673{18684. | |
dc.relation | Moukalled, F., Mangani, L., Darwish, M., et al. (2016). The _nite volume method in computational uid dynamics. An advanced introduction with OpenFoam R and Matlab R. Nueva York: Springer. Recuperado de http://www. gidropraktikum. narod. ru/Moukalled-et-al- FVM-OpenFOAM-Matlab. pdf. | |
dc.relation | Olajire, A. A. (2014). Review of asp eor (alkaline surfactant polymer enhanced oil recovery) technology in the petroleum industry: Prospects and challenges. Energy, 77:963{982. | |
dc.relation | Rahimi, K. and Adibifard, M. (2015). Experimental study of the nanoparticles e_ect on surfactant absorption and oil recovery in one of the iranian oil reservoirs. Petroleum Science and Technology, 33(1):79{85. | |
dc.relation | Seright, R., Wang, D., Lerner, N., Nguyen, A., Sabid, J., Tochor, R., et al. (2018). Bene_cial relative permeabilities for polymer ooding. In SPE Improved Oil Recovery Conference. Society of Petroleum Engineers. | |
dc.relation | Solano, R. (2019). Modelamiento de la generaci_on, transporte y destrucci_on de espumas formadas por gasodispersiones en yacimientos naturalmente fracturados para aplicaciones de recobro mejorado. | |
dc.relation | Tajmiri, M. and Ehsani, M. R. (2017). Wettability alteration of oil-wet and water-wet of iranian heavy oil reservoir by cuo nanoparticles. Iranian Journal of Chemistry and Chemical Engineering (IJCCE), 36(4):171{182. | |
dc.relation | Torsater, O., Engeset, B., Hendraningrat, L., Suwarno, S., et al. (2012). Improved oil recovery by nanouids ooding: an experimental study. In SPE Kuwait international petroleum conference and exhibition. Society of Petroleum Engineers. | |
dc.relation | Wu, Y., Chen, W., Dai, C., Huang, Y., Li, H., Zhao, M., He, L., and Jiao, B. (2017). Reducing surfactant adsorption on rock by silica nanoparticles for enhanced oil recovery. Journal of Petroleum Science and Engineering, 153:283{287 | |
dc.relation | Zhang, T., Davidson, D., Bryant, S. L., Huh, C., et al. (2010). Nanoparticle-stabilized emulsions for applications in enhanced oil recovery. In SPE improved oil recovery symposium. Society of Petroleum Engineers. | |
dc.rights | Atribución-SinDerivadas 4.0 Internacional | |
dc.rights | Atribución-SinDerivadas 4.0 Internacional | |
dc.rights | Acceso abierto | |
dc.rights | http://creativecommons.org/licenses/by-nd/4.0/ | |
dc.rights | info:eu-repo/semantics/openAccess | |
dc.rights | Derechos reservados - Universidad Nacional de Colombia | |
dc.title | Simulación de procesos de recobro químico mejorado con inyección de polímero y surfactante potencializados con nanotecnología | |
dc.type | Otros | |