Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The scientific aim of the paper is the characteristics of various types of nanoparticles, their physical and chemical parameters. In the article authors give examples of various nanoparticles used in reservoir engineering and EOR methods. The results of laboratory measurements of the impact of nanoparticles on the change of reservoir parameters and the increase of oil recovery of sandstones and carbonates are presented. In the article have been shown the possibilities of using nanotechnology, including the achievements of different authors. It presents a general literature review of modern research methodologies of nanoparticles in the global oil industry.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
107--124
Opis fizyczny
Bibliogr. 49 poz., rys., wykr.
Twórcy
autor
- AGH University of Science and Technology, Faculty of Drilling, Oil and Gas, Krakow, Poland
autor
- AGH University of Science and Technology, Faculty of Drilling, Oil and Gas, Krakow, Poland
autor
- National Technical University of Oil and Gas, Institute of Petroleum Engineering, Ivano-Frankivsk, Ukraine
Bibliografia
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- [6] Li S., Hendraningrat L., Torsćter O.: Improved Oil Recovery by Hydrophilic Silica Nanoparticles Suspension: 2-Phase Flow Experimental Studies. International Petroleum Technology Conference, Beijing, China, 26–28 March 2013.
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- [11] Cao N., Mohammed M.A., Babadagli T.: Wettability Alteration of Heavy-Oil/Bitumen Containing Carbonates Using Solvents, high pH Solutions and Nano/Ionic Liquids. Offshore Technology Conference, Rio de Janeiro, Brazil, 27–29 October 2015.
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- [16] Amanullah M.D., Al-Tahini A.M.: Nanotechnology – its significance in smart fluid development for oil and gas field application. SPE Saudi Arabia Section Technical Symposium, Al-Khobar, Saudi Arabia, 9–11 May 2009.
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- [18] Ahmadi M.A., Shadizadeh S.R.: Induced effect of adding nano silica on adsorption of a natural surfactant onto sandstone rock: experimental and theoretical study. Journal Petroleum Science and Engineering, 112, 2013, pp. 239–247.
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- [20] Salem R.A.M., Hannora A.E.A.: Comparative investigation of nanoparticle effects for improved oil recovery-experimental work. Proceedings of the SPE Kuwait Oil and Gas Show and Conference, Mishref, Kuwait, 11–14 October 2015.
- [21] Tarek M.: Investigating Nano-fluid Mixture Effects to Enhance Oil Recovery. SPE Annual Technical Conference and Exhibition, Houston, Texas, USA, 28–30 September 2015.
- [22] Almohsin A., Bai B., Imqam A., Wei M., Kang W., Delshad M., Sepehrnoori K.: Transport of Nanogel through Porous Media and Its Resistance to Water flow. SPE Improved Oil Recovery Symposium, Tulsa, Oklahoma, USA, 12–16 April 2014.
- [23] Dębińska E.: Wpływ nanokrzemionki na parametry mechaniczne kamienia cementowego, Nafta-Gaz, 4, 2014, pp. 229–235.
- [24] Chengara A., Nikolov A.D., Wasan D.T., Trokhymchuk A., Henderson D.: Spreading of nanofluids driven by the structural disjoining pressure gradient. Available: www.sciencedirect.com.
- [25] Wasan D., Nikolov A., Kondiparty K.: The Wetting and Spreading of Nanofluids on Solids: Role of the Structural Disjoining Pressure. Department of Chemical and Biological Engineering, Illinois Institute of Technology, Chicago, USA, 2011.
- [26] Baoliang P., Zhang L., Luo J., Ding P. W. B., Zengc M., Cheng Z.: A review of nanomaterials for nanofluid enhanced oil recovery. RSC Advances, 7, 2017, pp. 32246–32254.
- [27] Kamal M.S., Adewunmi A.A., Sultan A.S., Al-Hamad M.F., Mehmood U.: Recent Advances in Nanoparticles Enhanced Oil Recovery: Rheology, Interfacial Tension, Oil Recovery,and Wettability Alteration. Journal of Nanomaterials, 2017, 15 pp.
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- [29] Ehtesabi H., Ahadian M.M., Taghikhani W., Ghazanfari M.H.: Enhanced Heavy Oil Recovery in Sandstone Cores Using TiO2 Nanofluids. Energy & Fuels, www.pubs.acs.org/EF, Teheran, Iran, 2013.
- [30] Metin C., Bonnecaze R.T., Nguyen Q.P.: The Viscosity of Silica Nanoparticle Dispersions in Permeable Media. SPE International Oilfield Nanotechnology Conference and Exhibition, The Netherlands, 12–14 June 2012.
- [31] Ahmadi M.A., Galedarzadeh M., Shadizadeh S.R.: Wettability alteration in carbonate rocks by implementing new derived natural surfactant: enhanced oil recovery applications. Transport in Porous Media, 106, 3, 2015, pp. 645–667.
- [32] Mullins O.C., Sheu E.Y.: Structure and Dynamics of Asphaltenes. Springer, New York 1998.
- [33] Al-Anssari S., Nwidee L.N., Ali M., Sangwai S.J., Wang S., Barifcani A., Iglauer S.: Retention of Silica Nanoparticles in Limestone Porous Media. SPE/IATMI Asia Pacific Oil & Gas Conference and Exhibition, Jakarta, Indonesia, 17–19 October 2017.
- [34] Nazari M.R., Bahramian A., Fakhroueian Z., Karimi A., Arya S.: Comparative study of using nanoparticles for enhanced oil recovery: wettability alteration of carbonate rocks. Energy and Fuels, 29, 4, 2015, pp. 2111–2119.
- [35] Karimi A., Fakhroueian Z., Bahramian A., Khiabani N.P., Darabad J.B., Azin R., Arya S.: Wettability Alteration in Carbonates using Zirconium Oxide Nanofluids: EOR Implications. Energy Fuels, 26, 2012, pp. 1028–1036.
- [36] Sepehrinia K., Mohammadi A.: Wettability Alteration Properties of Fluorinated Silica Nanoparticles in Liquid-Loaded Pores: An Atomistic Simulation. Applied Surface Science, 371, 2016, pp. 349–59.
- [37] Tola S., Sasaki K., Sugai Y.: Wettability alteration of sandstone with zinc oxide nano-particles. The 23rd Formation Evaluation Symposium of Japan, 11–12 October 2017.
- [38] Bayat A.E., Junin R., Samsuri A., Piroozian A., Hokmabadi M.: Impact of metal oxide nanoparticles on enhanced oil recovery from limestone media at several temperatures. Energy and Fuels, 28, 10, 2014, pp. 6255–6266.
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- [40] Gu C.-Y., Di Q.-F., Fang H.-P.: Slip Velocity Model of Porous Walls Absorbed by Hydrophobic Nanoparticles SiO2. Journal of Hydrodynamics, 19 (3), 2007, pp. 365–371.
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- [42] Bazazi P., Gates I.D., Nezhad A.S., Hejazi S.H.: Silica-Based Nanofluid Heavy Oil Recovery A Microfluidic Approach. SPE Canada Heavy Oil Technical Conference, Calgary, Alberta, Canada, 15–16 February 2017.
- [43] Kazemzadeh Y., Eshraghi S.E., Kazemi K., Sourani S., Mehrabi M., Ahmadi Y.: Behavior of asphaltene adsorption onto the metal oxide nanoparticle surface and its effect on heavy oil recovery. Industrial and Engineering Chemistry Research, 54, 1, 2015, pp. 233–239.
- [44] Alomair O.A., Matar K.M., Alsaeed Y.H.: Nanofluids application for heavy oil recovery. Proceedings of the SPE Asia Pacific Oil and Gas Conference and Exhibition – Changing the Game: Opportunities, Challenges and Solutions, APOGCE 2014, October 2014, pp. 1346–1363.
- [45] Roustaei A., Saffarzadeh S., Mohammadi M.: An evaluation of modified silica nanoparticles’ efficiency in enhancing oil recovery of light and intermediate oil reservoirs. Egyptian Journal of Petroleum, 22, 3, 2013, pp. 427–433.
- [46] Hendraningrat L., Li S., Torsaeter O.: A coreflood investigation of nanofluid enhanced oil recovery. Journal of Petroleum Science and Engineering, 111, 2013, pp. 128–138.
- [47] Ogolo N.A., Olafuyi O.A., Onyekonwu M.O.: Enhanced Oil Recovery Using Nanoparticles. SPE Saudi Arabia section technical symposium and exhibition, Al-Khobar, Saudi Arabia, 2012, p. 9.
- [48] Li S., Genys M., Wang K., Trosaeter O.: Experimental study of wettability alteration during nanofluid enhanced oil recovery process and its effect on oil recovery. SPE Reservoir Characterisation and Simulation Conference and Exhibition, Abu Dhabi, UAE, 14–16 September 2015.
- [49] Sun X., Zhang Y., Chen G., Gai Z.: Application of Nanoparticles in Enhanced Oil Recovery: A Critical Review of Recent Progress. Energies, 10(3), 2017, p. 345.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a982371c-6e16-4d26-baa5-178a6b771c70