Open Access
Issue
E3S Web of Conf.
Volume 462, 2023
International Scientific Conference “Fundamental and Applied Scientific Research in the Development of Agriculture in the Far East” (AFE-2023)
Article Number 03030
Number of page(s) 13
Section Soil Science and Natural Resources Management
DOI https://doi.org/10.1051/e3sconf/202346203030
Published online 12 December 2023
  1. J.C. Hower et al., International Journal of Coal Geology, 179, (2017). [Google Scholar]
  2. R.S. Blissett, N.A. Rowson, Fuel, 97, (2012). [CrossRef] [Google Scholar]
  3. C. Wang, G. Xu, X. Gu, Y. Gao, P. Zhao, Ceramics International, 47 (2021). [Google Scholar]
  4. R. Nsiah-Gyambibi et al., Int. J. Environ. Sci. Technol., 20 (2023). [Google Scholar]
  5. B.G. Kutchko, A.G. Kim, Fuel, 85 (2006). [Google Scholar]
  6. S. Ghosal, J.L. Ebert, S.A. Self, Fuel Processing Technology, 44 (1995). [Google Scholar]
  7. O.E. Manz, Fuel, 78, (1999). [Google Scholar]
  8. B. Bailey, M. Crabtree, J. Tyrie, J. Elphick, F. Kuchuk, C. Romano et al., Oilfield Rev. 12(1) (2000). [Google Scholar]
  9. A.A. Adewunmi, S. Ismail, A.S. Sultan et al., Korean J. Chem. Eng., 34 (2017). [Google Scholar]
  10. P. Albonico, G. Burrafato, A. Di Lullu, T.P. Lockhart, Effective gelation-delaying additives for Cr+3/polymer gels, SPE International Symposium on Oilfield Chemistry, SPE Journal, 25221, March 2–5 (1993). [Google Scholar]
  11. M. Simjoo, A.D. Koohi, M. Vafaie-Sefti, P.L.J. Zitha, Water Shut-off in a Fractured System Using a Robust Polymer Gel, SPE European Formation Damage Conference, SPE 122280, Netherlands, 27-29 May (2009). [Google Scholar]
  12. J. Aalaie, E. Vasheghani-Farahani, A. Rahmatpour, M.A. Semsarzadeh, Eur. Polym. J., 44 (2008). [Google Scholar]
  13. T. Huang, P.M. Mcelfresh, Compositions and methods for water shut-off in subterranean wells, United States Pat. Number US 2004/0031611 A1 (2004). [Google Scholar]
  14. P. Patil, R. Kalgaonkar, Environmentally acceptable compositions comprising nanomaterials for plugging and sealing subterranean formations, SPE International Oilfield Nanotechnology Conference and Exhibition, SPE-154917-MS (2012). [Google Scholar]
  15. P. Tongwa, R. Nygaard, B. Bai, J. Appl. Polym. Sci., 128 (2013) [Google Scholar]
  16. R. Zolfaghari, A.A. Katbab, J. Nabavizadeh, R.Y. Tabasi, M.H. Nejad, J. Appl. Polym. Sci., 100 (2006). [Google Scholar]
  17. B. Al-Shakry, B.S. Shiran, T. Skauge, A. Skauge, Enhanced Oil Recovery by Polymer Flooding: Optimizing Polymer Injectivity, Soc Pet Eng, SPE-192437-MS (2018). [Google Scholar]
  18. B. Al-Shakry, B. Shaker Shiran, T. Skauge, A. Skauge, Polymer Injectivity: Influence of Permeability in the Flow of EOR Polymers in Porous Media, SPE EuropEC featured at 81st EAGE Conference and Exhibition, London, England, UK, SPE-195495-MS (2019). [Google Scholar]
  19. R.S. Seright, SPE Journal, 22 (01), SPE-179543-PA (2017). [CrossRef] [Google Scholar]
  20. H. Koh, V.B. Lee, G.A. Pope, SPE Journal, 23 (01), SPE-179683-PA (2018). [Google Scholar]
  21. S. Fakher, M. Ahdaya, A. Imqam, Fuel 260, 116310 (2020). [CrossRef] [Google Scholar]
  22. S. Fakher, B.A. Bai, A Newly Developed Mathematical Model to Predict Hydrolyzed Polyacrylamide Crosslinked Polymer Gel Plugging Efficiency in Fractures and High Permeability Features, SPE, 191180-MS (2018). [Google Scholar]
  23. X. Xin et al., Polymers, 10, 857 (2018). [CrossRef] [PubMed] [Google Scholar]
  24. W. Luo, S. Xu, F. Torabi, Chemical Degradation of HPAM by Oxidization in Produced Water: Experimental Study, SPE, SPE-163751-MS (2013). [Google Scholar]
  25. R.S. Seright, I. Skjevrak, Effect of dissolved iron and oxygen on stability of HPAM polymers, SPE Improved Oil Recovery Symposium, SPE, 169030 (2014). [Google Scholar]
  26. R.S. Seright, M. Seheult, T. Talashek, Injectivity Characteristics of EOR Polymers, SPE Reservoir Evaluation & Engineering, 12 (2009). [Google Scholar]
  27. M. Ahdaya, A. Imqam, Journal of Petroleum Science and Engineering, 176 (2019). [Google Scholar]
  28. S. Salehi, M.J. Khattak, N. Ali, H.R. Rizvi, Development of Geopolymer-based Cement Slurries with Enhanced Thickening Time, Compressive and Shear Bond Strength and Durability, IADC/SPE Drilling Conference and Exhibition, SPE-178793-MS (2016). [Google Scholar]
  29. S. Salehi, N. Ali, M.J. Khattak, H. Rizvi, Geopolymer Composites as Efficient and Economical Plugging Materials in Peanuts Price Oil Market, SPE Annual Technical Conference and Exhibition, Dubai, UAE, SPE-181426-MS (2016). [Google Scholar]
  30. K. Fukui et al., Journal of Environmental Management, 90 (2009). [Google Scholar]
  31. K. Fukui, N. Arimitsu, K. Jikihara, T. Yamamoto, H. Yoshida, Journal of Hazardous Materials, 168, (2009). [Google Scholar]
  32. L. Jiang, P. Liu, ACS Sustainable Chem. Eng., 2 (2014). [Google Scholar]
  33. M. Lotfollahi et al., Mechanistic Simulation of Polymer Injectivity in Field Tests, SPE Journal, 21(04) (2016). [Google Scholar]
  34. K.A.B. Pereira, K.A.B. Pereira, P.F. Oliveira, C.R.E. Mansur, J. Appl. Polym. Sci, 137, 49423 (2020). [CrossRef] [Google Scholar]
  35. H.J. Rathod, D.P. Mehta, International Journal of Pharmaceutical Sciences, 1(1) (2015). [Google Scholar]
  36. Z. Zhang, L. Wang, J. Wang, X. Jiang, X. Li, Z. Hu, Y. Ji, X. Wu, C. Chen, Advanced Materials, 24(11) (2012). [Google Scholar]
  37. Q. Jiang, X. Wang, Y. Zhu, D. Hui, Y. Qiu, Compos. Part B Eng., 56 (2014). [Google Scholar]
  38. Y. Wang, R.S. Seright, Correlating Gel Rheology with Behavior during Extrusion through Fractures, SPE, SPE-99462-MS (2006). [Google Scholar]
  39. R. Singh, V. Mahto, H. Vuthaluru, Journal of Petroleum Science and Engineering, 165 (2018). [Google Scholar]
  40. A.A. Adewunmi et al., Journal of Petroleum Science and Engineering, 157 (2017). [Google Scholar]
  41. A.A. Eftekhari, R. Krastev, R. Farajzadeh, Ind. Eng. Chem. Res., 54 (2015). [Google Scholar]
  42. L.L. Wesson, J.H. Harwell, Surfactant adsorption in porous media, Surfactants: Fundamentals and Applications in the Petroleum Industry, Cambridge University Press (2000). [Google Scholar]
  43. R.F. Li, G.J. Hirasaki, C.A. Miller, S.K. Masalmeh, Wettability Wettability Alteration and Foam Mobility Control in a Layered 2-D Heterogeneous System, SPE International Symposium on Oilfield Chemistry, SPE-141462-MS (2011). [Google Scholar]
  44. Q. Lv, T. Zhou, X. Zhang, X. Guo, Z. Dong, Storage of CO2 and Coal Fly Ash using Pickering Foam for Enhanced Oil Recovery, SPE International Conference on Oilfield Chemistry, SPE-204330-MS (2021). [Google Scholar]
  45. A.K. Shokanov, A.A. Kyrykbayeva, B.T. Suleimenov, Neft’ i gaz, 6 (132) (2022) [Google Scholar]
  46. A. Shokanov, B. Suleimenov, E. Smikhan, Bulletin of Shakarim University. Technical Sciences, 4(92) (2020) [Google Scholar]
  47. C.C. Bose, B. Fairchild, T. Jones, A. Gul, R.B. Ghahfarokhi, Journal of Natural Gas Science and Engineering, 27 (2015). [Google Scholar]
  48. R. Snellings, G. Mertens, J. Elsen, Reviews in Mineralogy and Geochemistry, 74(1) (2012). [Google Scholar]
  49. T.L. Robl, A.E. Oberlink, Proppant for use in hydraulic fracturing to stimulate a well, [Electronic resource]:https://uknowledge.uky.edu/cgi/viewcontent.cgi?article=1056&c ontext=caer_patents (Accessed: October 24, 2023) (2019). [Google Scholar]
  50. R. Manchanda, A general poro-elastic model for pad-scale fracturing of horizontal wells, Doctoral dissertation (2015). [Google Scholar]
  51. E. Ghanbari, H. Dehghanpour, Fuel, 163 (2016). [Google Scholar]
  52. D.J. Tenenbaum, Environ Health Perspect, 117(11) (2009). [Google Scholar]
  53. M.A. Goncharova, N.A. Matchenko, Scientific research: from theory to practice: Proceedings of the V International Scientific and Practical Conference, Vol. 2, 4 (5) (2015). [Google Scholar]
  54. A.G. Dudnikov, M.S. Dudnikova, A. Reggiani, Geopolymer concrete and its application, Stroitel’nye materialy, oborudovanie, tekhnologii XXI veka, 1-2 (2018). [Google Scholar]
  55. T. Van Lam, B.I. Bulgakov, O.V. Alexandrova, Possibility of using fly ash and rice husk ash to produce geopolymer concrete, Innovations and modeling in building materials science and land management: Proceedings of the V International Scientific and Technical Conference, Tver (2021). [Google Scholar]
  56. Working Document of the NPC North American Resource Development Study, Paper № 2-25. Plugging and abandonment of oil and gas wells, Prepared by the Technology Subgroup of the Operations & Environment Task Group, [Electronic resource]: https://www.npc.org/Prudent_Development-Topic_Papers/2- 25_Well_Plugging_and_Abandonment_Paper.pdf (Accessed: October 24, 2023) (2011). [Google Scholar]
  57. S.N. Shah, Y. Jeong, Development of an Environmentally Friendly and Economical Process for Plugging Abandoned Wells, Proceedings of the 10th Integrated Petroleum Environmental Conference, Houston, TX, November 11-14 (2003). [Google Scholar]
  58. S. Salehi, C.P. Ezeakacha, M.J. Khattak, Geopolymer Cements: How Can You Plug and Abandon a Well with New Class of Cheap Efficient Sealing Materials, SPE Oklahoma City Oil and Gas Symposium, SPE-185106-MS (2017). [Google Scholar]

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