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      Cardanol /SiO 2 Nanocomposites for Inhibition of Formation Damage by Asphaltene Precipitation/Deposition in Light Crude Oil Reservoirs. Part II: Nanocomposite Evaluation and Coreflooding Test

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          Abstract

          This study aims to evaluate the behavior of Cardanol/SiO 2 nanocomposites in the inhibition of the asphaltene damage based on the coreflooding test at reservoir conditions. The nanocomposite design was performed in Part I ( https://doi.org/10.1021/acs.energyfuels.0c01114), leading to SiO 2 nanoparticles functionalized with different mass fractions of cardanol on the surface of 5 (5CSN), 7 (7CSN), and 9% (9CSN). In this part of the study, the nanocomposite/reservoir fluid interactions were evaluated through interfacial tension measurements and nanocomposite/rock surface interactions using water imbibition and contact angle measurements. Results showed that the designed nanocomposite leads to a reduction of interfacial tension of 82.6, 61.7, and 51.4% for 5CSN, 7CSN, and 9CSN regarding silica support (SN). Whereas, the reduction of the Si–OH functional groups from SiO 2 nanoparticles due to the increase of the cardanol content affects the effectiveness of the wettability alteration for 7CSN and 9CSN. Nevertheless, when 5CSN is evaluated, the system is altered from an oil-wet to a mixed-wet state. Coreflooding tests at reservoir conditions were performed to evaluate the oil recovery after asphaltene damage, after damage removal and nanofluid injection, and after induction of a second asphaltene damage to check inhibition. Results show that the selected nanocomposites at a dosage of 300 mg·L –1 enhance the oil recovery in comparison with the baseline conditions via the reduction of the interfacial/surface forces at the pore scale and wettability alteration. It is worth to remark that this improvement remains after the second asphaltene damage induction, which proves the high inhibitory capacity of the designed nanocomposite for the asphaltene precipitation/deposition. Also, the use of the nanocomposites favors the oil recovery more than 50% compared to the asphaltene damage scenario.

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          A coreflood investigation of nanofluid enhanced oil recovery

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            Is Open Access

            Application of Nanoparticles in Enhanced Oil Recovery: A Critical Review of Recent Progress

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              Application of nanotechnology by means of nanoparticles and nanodispersions in oil recovery - A comprehensive review

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                Author and article information

                Journal
                ACS Omega
                ACS Omega
                ao
                acsodf
                ACS Omega
                American Chemical Society
                2470-1343
                23 October 2020
                03 November 2020
                : 5
                : 43
                : 27800-27810
                Affiliations
                []Grupo de Investigación en Fenómenos de Superficie − Michael Polanyi, Facultad de Minas, Universidad Nacional de Colombia , sede Medellín 050041216, Colombia
                []COPPE, Programa de Engenharia Metalúrgica e de Materiais, Universidade Federal do Rio de Janeiro , Av. Horácio Macedo, 2030, bloco F, Rio de Janeiro, RJ 21941-598, Brazil
                [§ ]Instituto de Macromoléculas, Laboratório de Macromoléculas e Colóides na Indústria de Petróleo, Universidade Federal do Rio de Janeiro , Rua Moniz Aragão, 360 bloco 8G/CT2, Rio de Janeiro, RJ 21941-594, Brazil
                []Enhanced Oil Recovery Research Center, IOR-EOR Research Institute, Shiraz University , Shiraz 7193616511, Iran
                []Grupo de Investigación de Yacimientos de Hidrocarburos, Facultad de Minas, Universidad Nacional de Colombia , sede Medellín 050034, Colombia
                Author notes
                Article
                10.1021/acsomega.0c02722
                7643095
                ef608f73-6385-4c53-9a06-8f2e4a1f75aa
                © 2020 American Chemical Society

                This is an open access article published under an ACS AuthorChoice License, which permits copying and redistribution of the article or any adaptations for non-commercial purposes.

                History
                : 09 June 2020
                : 25 September 2020
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