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Full Length Article

Design of novel temperature-resistant and salt-tolerant acrylamide-based copolymers by aqueous dispersion polymerization

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Pages 220-230 | Received 19 May 2022, Accepted 07 Aug 2022, Published online: 11 Aug 2022

References

  • Maurya NK, Kushwaha P, Mandal A. Studies on interfacial and rheological properties of water soluble polymer grafted nanoparticle for application in enhanced oil recovery - scienceDirect. J Taiwan Inst Chem Eng. 2017;70:319–330.
  • Deng S, Bai R, Chen JP, et al. Produced water from polymer flooding process in crude oil extraction: characterization and treatment by a novel crossflow oil-water separator. Sep Purif Technol. 2002;29(3):207–216.
  • Victor AL. Microfluidics: an enabling screening technology for enhanced oil recovery (EOR). Lab on a Chip. 2016;16(10):1777–1796.
  • Shah A, Fishwick R, Wood J, et al. A review of novel techniques for heavy oil and bitumen extraction and upgrading. Energy Environ Sci. 2010;3(6):700–714.
  • Yang H, Kang W, Wu H, et al. Stability, rheological property and oil-displacement mechanism of a dispersed low-elastic microsphere system for enhanced oil recovery. RSC Adv. 2017;7(14):8118–8130.
  • Stephen A, Adebusuyi A, Baldygin A, et al. Bioconversion of coal: new insights from a core flooding study. RSC Adv. 2014;4(43):22779–22791.
  • Jung JC, Ke Z, Bo HC, et al. Rheology and polymer flooding characteristics of partially hydrolyzed polyacrylamide for enhanced heavy oil recovery. J Appl Polym Sci. 2013;127(6):4833–4839.
  • Pu WF, Liu R, Wang KY, et al. Water-soluble core–shell hyperbranched polymers for enhanced oil recovery. Ind Eng Chem Res. 2015;54(3):798–807.
  • Caulfield MJ, Qiao GG, Solomon DH. Some aspects of the properties and degradation of polyacrylamides. Chem Rev. 2010;33(44):274.
  • Rui L, Dd A, Wp A, et al. Viscoelastic displacement and anomalously enhanced oil recovery of a novel star-like amphiphilic polyacrylamide. Chem Eng Res Des. 2019;142:369–385.
  • Zhong C, Luo P, Ye Z, et al. Characterization and solution properties of a novel water-soluble terpolymer for enhanced oil recovery. Polym Bull. 2009;62(1):79–89.
  • Seright RS, Campbell A, Mozley P. Stability of partially hydrolyzed polyacrylamides at elevated temperatures in the absence of divalent cations. SPE journal. 2010;15(2):341–348
  • Sabhapondit A, Borthakur A, Haque I. Characterization of acrylamide polymers for enhanced oil recovery. Journal of Applied Polymer ence. 2010;87(12):1869–1878
  • Shi L-T, Li C, Zhu -S-S, et al. Study on properties of branched hydrophobically modified polyacrylamide for polymer flooding. J Chem. 2013;2013:1–5.
  • Dejam M, Chen Z, Saboorian-Jooybari H. Heavy oil polymer flooding from laboratory core floods to pilot tests and field applications: half-century studies. J Petroleum Sci Eng. 2016;142:85–100.
  • Vaisocherová H, Zhang Z, Yang W, et al. Functionalizable surface platform with reduced nonspecific protein adsorption from full blood plasma—Material selection and protein immobilization optimization. Biosens Bioelectron. 2009;24(7):1924–1930.
  • Ke H, Haoran D, Chen George Y, et al. Cleaning of oil fouling with water enabled by zwitterionic polyelectrolyte coatings: overcoming the imperative challenge of oil-water separation membranes. ACS Nano. 2015;9(9):9188–9198.
  • Du W, Wu P, Zhao Z, et al. Facile preparation and characterization of temperature-responsive hydrophilic crosslinked polymer microspheres by aqueous dispersion polymerization. Eur Polym J. 2020;128(5):109610.
  • Xiao S, Ren B, Huang L, et al. Salt-responsive zwitterionic polymer brushes with anti-polyelectrolyte property. 2018;Current Opinion in Chemical Engineering. 19:86–93.
  • Wang S, Zhang D, He X, et al. Polyzwitterionic double-network ionogel electrolytes for supercapacitors with cryogenic-effective stability. Chem Eng J. 2022;438:135607.
  • Mao S, Zhang D, Zhang Y, et al. A universal coating strategy for controllable functionalized polymer surfaces. Adv Funct Mater. 2020;30(40):2004633.
  • Xiao S, Zhang Y, Shen M, et al. Structural dependence of salt-responsive polyzwitterionic brushes with an anti-polyelectrolyte effect. Langmuir. 2017;34(1):97–105.
  • Dai C, Xu Z, Wu Y, et al. Design and study of a novel thermal-resistant and shear-stable amphoteric polyacrylamide in high-salinity solution. Polymers. 2017;9(7):296.
  • Liu R, Pu W, Sheng JJ, et al. Star-like hydrophobically associative polyacrylamide for enhanced oil recovery: comprehensive properties in harsh reservoir conditions. J Taiwan Inst Chem Eng. 2017:80.
  • Deng Q, Li H, Cao X, et al. Synergistic mechanism between laurel alkanolamide and hydrophobically associating polyacrylamide in solutions with high salinity. RSC Adv. 2015;5(17):13078–13086.
  • Long X, Sl A, Zhe Q, et al. Hydrophobic effect further improves the rheological behaviors and oil recovery of polyacrylamide/nanosilica hybrids at high salinity - ScienceDirect. Chem Eng Sci. 2020;232(15):116369.
  • Zheng C, Huang Z. Self-assembly of hydrophobic associating polyacrylamide prepared by aqueous dispersion polymerization. J Dispers Sci Technol. 2019;40(9):1317–1325.
  • Lü T, Liu X, Qi D, et al. Effect of hydrophobic monomer on the aqueous dispersion polymerization of acrylamide with quaternary ammonium cationic monomer. Iran Poly J. 2015;24(3):219–227.
  • Du D, Pu W, Hu P, et al. p‐Sulfocalix[4]arene functionalized hydrophobically associative polyacrylamide: flow characteristics and potential application to enhanced oil recovery. Polym Eng Sci. 2020;60:6.
  • Peng C, Gou S, Wu Q, et al. Modified acrylamide copolymers based on β-cyclodextrin and twin-tail structures for enhanced oil recovery through host–guest interactions. New J Chem. 2019;43(14):5363–5373.
  • Cao J, Song T, Zhu Y, et al. Application of amino-functionalized nanosilica in improving the thermal stability of acrylamide-based polymer for enhanced oil recovery. Energy Fuels. 2017;32(1):246–254.
  • Chen D, Liu X, Yue Y, et al. Dispersion copolymerization of acrylamide with quaternary ammonium cationic monomer in aqueous salts solution. Eur Polym J. 2006;42(6):1284–1297.
  • Wu Y, Wang C, Xu J. Aqueous dispersion polymerization of amphoteric polyacrylamide. J Appl Polym Sci. 2010;115(2):1131–1137.
  • Lu J, Peng B, Li M, et al. Dispersion polymerization of anionic polyacrylamide in an aqueous salt medium. Pet Sci. 2010;7(3):410–415.
  • Wang L, Li D, Sun J, et al. Preparation and characterization of amphoteric poly(acrylamide-itaconic acid-diallyl dimethyl ammonium chloride) uniform spherical particles by aqueous dispersion polymerization. Journal of Macromolecular Science: Part A - Chemistry. 2015;52(7):523–531