[1] G.A. Al-Muntasheri, H.A. Nasr-El-Din, J.A. Peters, P.L.J. Zitha, Investigation of a high-temperature organic water-shutoff gel:Reaction mechanisms, SPE J. 11(2006) 497-504. [2] G.D. Lullo, P. Rae, J. Curtis, New insights into water control:A review of the state of the art-part, SPE Asia Pacific Oil and Gas Conference and Exhibition, Society of Petroleum Engineers, Melbourne, 2002.. [3] S.M. Vargas-Vasquez, L.B. Romero-Zeron, A review of the partly hydrolyzed polyacrylamide Cr (III) acetate polymer gels, Pet. Sci. Technol. 26(2008) 481-498. [4] R.S. Seright, Disproportionate permeability reduction with pore-filling gels, SPE J. 14(2009) 5-13. [5] K.S.M. El-Karsani, G.A. Al-Muntasheri, I.A. Hussein, Polymer systems for water shutoff and modification:a review over the last decade, SPE J. 19(2014) 135-149. [6] B. Wei, L. Romero-Zeron, D. Rodrigue, Oil displacement mechanisms of viscoelastic polymers in enhanced oil recovery (EOR):A review, J. Pet. Explor. Prod. Technol. 40(2014) 113-121. [7] R. Banerjee, B. Ghosh, K.C. Khilar, F. Boukadi, A. Bemani, Field application of phenol-formaldehyde gel in oil reservoir matrix for water shut-off purposes, Energy Sources, Part A 30(2008) 1779-1787. [8] M. Cordova, M. Cheng, J. Trejo, S.J. Johnson, G.P. Willhite, J.T. Liang, C. Berkland, Delayed HPAM gelation via transient sequestration of chromium in polyelectrolyte complex nanoparticles, Macromolecules 41(2008) 4398-4404. [9] G.A. Al-Muntasheri, H.A. Nasr-El-Din, I.A. Hussein, A rheological investigation of a high temperature organic gel used for water shut-off treatments, J. Pet. Sci. Eng. 59(2007) 73-83. [10] L. Eoff, D. Dalrymple, D. Everett, J. Vasquez, Worldwide field applications of a polymeric gel system for conformance applications, SPE Prod. Oper. 22(2007) 231-235. [11] B. Sengupta, V.P. Sharma, G. Udayabhanu, Gelation studies of an organically cross-linked polyacrylamide water shut-off gel system at different temperatures and pH, J. Pet. Sci. Eng. 81(2012) 145-150. [12] H. Jia, W.F. Pu, J.Z. Zhao, F.Y. Jin, Research on the gelation performance of low toxic PEI cross-linking PHPAM gel systems as water shutoff agents in low temperature reservoirs, Ind. Eng. Chem. Res. 49(2010) 9618-9624. [13] C.J. Wang, H.Q. Liu, Q. Zheng, Y.G. Liu, X.H. Dong, C. Hong, A new high temperature gel for profile control in heavy oil reservoirs, ASME J. Energy Resour. Technol. 138(2016) 125-134. [14] R. Qiao, R. Zhang, W. Zhu, P. Gong, Lab simulation of profile modification and enhanced oil recovery with a quaternary ammonium cationic polymer, J. Ind. Eng. Chem. 18(2012) 111-115. [15] K. Haraguchi, T. Takehisa, S. Fan, Effects of clay content on the properties of nanocomposite hydrogels composed of poly (N-isopropylacrylamide) and clay, Macromolecules 35(2002) 10162-10171. [16] A.A. Moradi, A review of thermally stable gels for fluid diversion in petroleum production, J. Petrol. Sci. Eng. 26(1) (2000) 1-10. [17] Q. Zhang, X. Li, Y. Zhao, L. Chen, Preparation and performance of nanocomposite hydrogels based on different clay, Appl. Clay Sci. 46(2009) 346-350. [18] N. Lai, X. Guo, N. Zhou, Shear resistance properties of modified nano-SiO2/AA/AM 22 copolymer oil displacement agent, Energies 9(12) (2016) 1037-1044. [19] Y. Liu, C. Dai, K. Wang, C. Zou, M. Gao, Y. Fang, M. Zhao, Y. Wu, Q. You, Study on a novel cross-linked polymer gel strengthened with silica nanoparticles, Energy Fuels 31(9) (2017) 9152-9161. [20] A.A. Adewunmi, S. Ismail, A.S. Sultan, Study on strength and gelation time of polyacrylamide/polyethyleneimine composite gels reinforced with coal fly ash for water shut-off treatment, J. Appl. Polym. Sci. 132(2015) 41392-41402. [21] A.A. Adewunmi, S. Ismail, A.S. Sultan, A. Zulkifli, Performance of fly ash based polymer gels for water reduction in enhanced oil recovery:Gelation kinetics and dynamic rheological studies, Korean J. Chem. Eng. 34(6) (2017) 1638-1650. [22] A.A. Adewunmi, S. Ismail, T.O. Owolabi, A.S. Sultan, S.O. Olatunji, A. Zulkifli, Modeling the thermal behavior of coal fly ash based polymer gel system for water reduction in oil and gas wells, J. Petrol. Sci. Eng. 157(2017) 430-440. [23] P. Tongwa, R. Nygaard, B. Bai, Evaluation of a nanocomposite hydrogel for water shut-off in enhanced oil recovery applications:Design, synthesis and characterization, J. Appl. Polym. Sci. 128(2013) 787-794. [24] P. Zhang, X. Wang, S.P. Li, H.L. Dai, Nanocomposite hydrogels with high mechanical strength and high swelling ratio by RAFT polymerization, Int. J. Polymer. Mater. 62(2013) 10-16. [25] W.F. Pu, Y. Yang, C.D. Yuan, Gelation performance of poly (ethylene imine) crosslinking polymer-layered silicate nanocomposite gel system for potential water-shutoff use in high-temperature reservoirs, J. Appl. Polym. Sci. 44243(2016) 1-10. [26] Z. Kargozarfard, M. Riazi, S. Ayatollahi, S. Shahnazar, Performance of polyacrylamide/Cr (III) gel polymer in oil recovery from heterogeneous porous media:An experimental study, Korean J. Chem. Eng. 33(12) (2016) 3350-3358. [27] R.S. Seright, An alternative view of filter-cake formation in fractures inspired by Cr (III)-acetate-HPAM gel extrusion, SPE Prod. Facil. 18(2003) 65-72. [28] B. ZareNezhad, Prediction of CO2 freezing points for the mixtures of CO2-CH4, at cryogenic conditions of NGL extraction plants, Korean J. Chem. Eng. 23(2006) 827-831. [29] A. Stavland, E. Steinar, K.O. Hettervik, S.R. Jakobsen, T. Schmidt, B. Schilling, Water shut-off:simulation and laboratory evaluation, SPE Reserv. Eval. Eng. 1(1998) 359-360. [30] J.T. Liang, R.S. Seright, Wall-effect/gel-droplet model of disproportionate permeability reduction, 3rd, 6, SPE J., Tulsa, USA, 2001, pp. 268-272. [31] S.J. Ganguly, Rupture of polyacrylamide gel in a tube in response to aqueous pressure gradients, Soft Mater 7(2009) 37-53. [32] S.J. Ganguly, Effect of pressure gradient on the flow of oil and water in gelfilled pore, Chem. Eng. Res. Des. 89(2011) 2380-2388. [33] K. Spildo, A. Skauge, T. kauge, Propagation of Colloidal Dispersion Gels (CDG) in Laboratory Corefloods, in:SPE Improved Oil Recovery Symposium, Tulsa, 2010. [34] B. ZareNezhad, A. Aminian, An artificial neural network model for design of wellhead chokes in gas condensate production fields, Petrol. Sci. Technol. 29(2011) 579-587. [35] H. Liu, H. Hongxue, Granular Gel-Polymer Treatment Successful in Daqing Oilfield, in:SPE, 87071, Kuala Lumpur, 2004. [36] D. Gupta, Three-Dimensional Simulation of Chemical Flooding, M.S. Thesis, Univ. of Texas, Austin, 1985. [37] R.D. Sydansk, P. Argabright, US Pat. 4683949(1987). [38] B. Ghosh, A.S. Bemani, Y.M. Wahaibi, H. Hadrami, F.H. Boukadi, Development of a novel chemical water shut-off method for fractured reservoirs:Laboratory development and verification through core flow experiments, J. Petrol. Sci. Eng. 96(2011) 176-184. [39] M. Vafaei Sefti, M. Baghban Salehi, H. Naderi, M. Simjou, Modeling and investigation of gel-polymer performance in porous media, J. Model. Eng. 2(16) (2008) 55-70, https://doi.org/10.22075/JME.2017.1526. |