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Published in: Polymer Bulletin 5/2024

04-08-2023 | REVIEW PAPER

An overview on nanosilica–polymer composites as high-performance functional materials in oil fields

Authors: Mohan Raj Krishnan, Haneen Omar, Ayman Almohsin, Edreese H. Alsharaeh

Published in: Polymer Bulletin | Issue 5/2024

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Abstract

This review comprehensively summarizes potential applications of SiO2–polymer composites especially in oil industries: enhanced oil recovery (EOR), loss circulation (LC), and relative permeability modification (RPM). The significance of these materials has been widely recognized as high-performance functional materials as they combine the flexural properties of the polymer and enhanced thermo-mechanical characteristics of SiO2 nanoparticles (NPs). The composite exhibits increased impact resistance and tensile strength without decreasing the flexibility of the polymer. The addition of SiO2 into the polymer matrices can further extend the possibility of creating hierarchically structured materials, and therefore, SiO2–polymer composites have attracted great interest in various industries. Compared to other materials, suspended NPs/polymer composites offer various advantages, such as high thermal stability, long-term stability, salinity tolerance, and viscosity increment which are very crucial criteria for increased oil production.

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Literature
1.
go back to reference Firozjaii AM, Saghafi HR (2020) Review on chemical enhanced oil recovery using polymer flooding: fundamentals, experimental and numerical simulation. Petroleum 6:115–122 Firozjaii AM, Saghafi HR (2020) Review on chemical enhanced oil recovery using polymer flooding: fundamentals, experimental and numerical simulation. Petroleum 6:115–122
3.
go back to reference Huh C, Daigle H, Prigiobbe V, Prodanovic M (2019) Practical nanotechnology for petroleum engineers. CRC Press Huh C, Daigle H, Prigiobbe V, Prodanovic M (2019) Practical nanotechnology for petroleum engineers. CRC Press
4.
go back to reference Panchal H, Patel H, Patel J, Shah M (2021) A systematic review on nanotechnology in enhanced oil recovery. Petrol Res 6:204 Panchal H, Patel H, Patel J, Shah M (2021) A systematic review on nanotechnology in enhanced oil recovery. Petrol Res 6:204
5.
go back to reference Ngata MR, Yang B, Aminu MD et al (2021) Review of developments in nanotechnology application for formation damage control. Energy Fuels 36:80 Ngata MR, Yang B, Aminu MD et al (2021) Review of developments in nanotechnology application for formation damage control. Energy Fuels 36:80
6.
go back to reference Cheraghian GG, Afrand M (2021) Nanotechnology for drilling operations. In: Emerging Nanotechnologies for Renewable Energy. Elsevier, pp 135–148 Cheraghian GG, Afrand M (2021) Nanotechnology for drilling operations. In: Emerging Nanotechnologies for Renewable Energy. Elsevier, pp 135–148
7.
go back to reference Rajabi MS, Moradi R, Kavehpour HP (2021) An overview of nanotechnology in upstream and downstream of oil and gas industry: challenges and solutions. J Energy Res Technol 144:1–52 Rajabi MS, Moradi R, Kavehpour HP (2021) An overview of nanotechnology in upstream and downstream of oil and gas industry: challenges and solutions. J Energy Res Technol 144:1–52
9.
go back to reference Ali JA, Kalhury AM, Sabir AN et al (2020) A state-of-the-art review of the application of nanotechnology in the oil and gas industry with a focus on drilling engineering. J Petrol Sci Eng 191:107118 Ali JA, Kalhury AM, Sabir AN et al (2020) A state-of-the-art review of the application of nanotechnology in the oil and gas industry with a focus on drilling engineering. J Petrol Sci Eng 191:107118
10.
go back to reference Maagi MT, Lupyana SD, Jun G (2020) Nanotechnology in the petroleum industry: focus on the use of nanosilica in oil-well cementing applications—A review. J Petrol Sci Eng 193:107397 Maagi MT, Lupyana SD, Jun G (2020) Nanotechnology in the petroleum industry: focus on the use of nanosilica in oil-well cementing applications—A review. J Petrol Sci Eng 193:107397
11.
go back to reference Mady MF, Kelland MA (2020) Review of nanotechnology impacts on oilfield scale management. ACS Appl Nano Mater 3:7343–7364 Mady MF, Kelland MA (2020) Review of nanotechnology impacts on oilfield scale management. ACS Appl Nano Mater 3:7343–7364
12.
13.
go back to reference Bila A, Stensen JÅ, Torsæter O (2019) Experimental investigation of polymer-coated silica nanoparticles for enhanced oil recovery. Nanomaterials 9:822PubMedPubMedCentral Bila A, Stensen JÅ, Torsæter O (2019) Experimental investigation of polymer-coated silica nanoparticles for enhanced oil recovery. Nanomaterials 9:822PubMedPubMedCentral
14.
go back to reference Negi G, Anirbid S, Sivakumar P (2021) Applications of silica and titanium dioxide nanoparticles in enhanced oil recovery: promises and challenges. Petrol Res 6:224–246 Negi G, Anirbid S, Sivakumar P (2021) Applications of silica and titanium dioxide nanoparticles in enhanced oil recovery: promises and challenges. Petrol Res 6:224–246
15.
go back to reference Agista M, Guo K, Yu Z (2018) A state-of-the-art review of nanoparticles application in petroleum with a focus on enhanced oil recovery. Appl Sci 8:871 Agista M, Guo K, Yu Z (2018) A state-of-the-art review of nanoparticles application in petroleum with a focus on enhanced oil recovery. Appl Sci 8:871
16.
go back to reference Liu F, Zheng Z, Wang X et al (2022) Novel modified nano-silica/polymer composite in water-based drilling fluids to plug shale pores. Energy Sour Part A Recov Utilizat Environ Eff 44:8662–8678 Liu F, Zheng Z, Wang X et al (2022) Novel modified nano-silica/polymer composite in water-based drilling fluids to plug shale pores. Energy Sour Part A Recov Utilizat Environ Eff 44:8662–8678
17.
go back to reference Fan G, Li M, Chen X et al (2021) Polymer-nanosilica-assisted to evaluate oil recovery performances in sandstone reservoirs. Energy Rep 7:2588–2593 Fan G, Li M, Chen X et al (2021) Polymer-nanosilica-assisted to evaluate oil recovery performances in sandstone reservoirs. Energy Rep 7:2588–2593
18.
go back to reference Olivieri F, Castaldo R, Cocca M et al (2021) Mesoporous silica nanoparticles as carriers of active agents for smart anticorrosive organic coatings: a critical review. Nanoscale 13:9091–9111PubMed Olivieri F, Castaldo R, Cocca M et al (2021) Mesoporous silica nanoparticles as carriers of active agents for smart anticorrosive organic coatings: a critical review. Nanoscale 13:9091–9111PubMed
19.
go back to reference Narayan R, Nayak UY, Raichur AM, Garg S (2018) Mesoporous silica nanoparticles: a comprehensive review on synthesis and recent advances. Pharmaceutics 10:118PubMedPubMedCentral Narayan R, Nayak UY, Raichur AM, Garg S (2018) Mesoporous silica nanoparticles: a comprehensive review on synthesis and recent advances. Pharmaceutics 10:118PubMedPubMedCentral
20.
go back to reference Suzuki N, Zakaria MB, Chiang Y-D et al (2012) Thermally stable polymer composites with improved transparency by using colloidal mesoporous silica nanoparticles as inorganic fillers. Phys Chem Chem Phys 14:7427–7432PubMed Suzuki N, Zakaria MB, Chiang Y-D et al (2012) Thermally stable polymer composites with improved transparency by using colloidal mesoporous silica nanoparticles as inorganic fillers. Phys Chem Chem Phys 14:7427–7432PubMed
21.
go back to reference Murugadoss S, Lison D, Godderis L et al (2017) Toxicology of silica nanoparticles: an update. Arch Toxicol 91:2967–3010PubMedPubMedCentral Murugadoss S, Lison D, Godderis L et al (2017) Toxicology of silica nanoparticles: an update. Arch Toxicol 91:2967–3010PubMedPubMedCentral
22.
go back to reference Manzano M, Vallet-Regí M (2020) Mesoporous silica nanoparticles for drug delivery. Adv Func Mater 30:1902634 Manzano M, Vallet-Regí M (2020) Mesoporous silica nanoparticles for drug delivery. Adv Func Mater 30:1902634
23.
go back to reference Wu S-H, Mou C-Y, Lin H-P (2013) Synthesis of mesoporous silica nanoparticles. Chem Soc Rev 42:3862–3875PubMed Wu S-H, Mou C-Y, Lin H-P (2013) Synthesis of mesoporous silica nanoparticles. Chem Soc Rev 42:3862–3875PubMed
24.
go back to reference Jeelani PG, Mulay P, Venkat R, Ramalingam C (2020) Multifaceted application of silica nanoparticles. Rev Silicon 12:1337–1354 Jeelani PG, Mulay P, Venkat R, Ramalingam C (2020) Multifaceted application of silica nanoparticles. Rev Silicon 12:1337–1354
25.
go back to reference Kankala RK, Han Y, Na J et al (2020) Nanoarchitectured structure and surface biofunctionality of mesoporous silica nanoparticles. Adv Mater 32:1907035 Kankala RK, Han Y, Na J et al (2020) Nanoarchitectured structure and surface biofunctionality of mesoporous silica nanoparticles. Adv Mater 32:1907035
26.
go back to reference Zhou S, Zhong Q, Wang Y et al (2022) Chemically engineered mesoporous silica nanoparticles-based intelligent delivery systems for theranostic applications in multiple cancerous/non-cancerous diseases. Coord Chem Rev 452:214309 Zhou S, Zhong Q, Wang Y et al (2022) Chemically engineered mesoporous silica nanoparticles-based intelligent delivery systems for theranostic applications in multiple cancerous/non-cancerous diseases. Coord Chem Rev 452:214309
27.
go back to reference Krishnan MR, Chien Y-C, Cheng C-F, Ho R-M (2017) Fabrication of mesoporous polystyrene films with controlled porosity and pore size by solvent annealing for templated syntheses. Langmuir 33:8428–8435PubMed Krishnan MR, Chien Y-C, Cheng C-F, Ho R-M (2017) Fabrication of mesoporous polystyrene films with controlled porosity and pore size by solvent annealing for templated syntheses. Langmuir 33:8428–8435PubMed
28.
go back to reference Ke Y, Stroeve P (2005) Polymer-layered silicate and silica nanocomposites. Elsevier Ke Y, Stroeve P (2005) Polymer-layered silicate and silica nanocomposites. Elsevier
32.
go back to reference Peters ST (2013) Handbook of composites. Springer Science & Business Media Peters ST (2013) Handbook of composites. Springer Science & Business Media
34.
35.
go back to reference Yang F, Nelson GL (2006) Polymer/silica nanocomposites prepared via extrusion. Polym Adv Technol 17:320–326 Yang F, Nelson GL (2006) Polymer/silica nanocomposites prepared via extrusion. Polym Adv Technol 17:320–326
36.
go back to reference Zou H, Wu S, Shen J (2008) Polymer/silica nanocomposites: preparation, characterization, properties, and applications. Chem Rev 108:3893–3957PubMed Zou H, Wu S, Shen J (2008) Polymer/silica nanocomposites: preparation, characterization, properties, and applications. Chem Rev 108:3893–3957PubMed
43.
go back to reference Rosenberg E (2005) Silica polyamine composites: advanced materials for metal ion recovery and remediation. In: Macromolecules Containing Metal and Metal‐Like Elements. Wiley, Ltd, pp 51–78 Rosenberg E (2005) Silica polyamine composites: advanced materials for metal ion recovery and remediation. In: Macromolecules Containing Metal and Metal‐Like Elements. Wiley, Ltd, pp 51–78
44.
go back to reference Choi K, Lee S, Park JO et al (2018) Chromium removal from aqueous solution by a PEI-silica nanocomposite. Sci Rep 8:1–10 Choi K, Lee S, Park JO et al (2018) Chromium removal from aqueous solution by a PEI-silica nanocomposite. Sci Rep 8:1–10
48.
go back to reference Mahmoud ME, Mohamed AK, Amira MF, Seleim SM (2020) Water-stable metal-organic framework/amine-modified silica/poly (piperazine-cresol) hybrids for efficient uptake of La (III) ions. Mater Chem Phys 251:123107 Mahmoud ME, Mohamed AK, Amira MF, Seleim SM (2020) Water-stable metal-organic framework/amine-modified silica/poly (piperazine-cresol) hybrids for efficient uptake of La (III) ions. Mater Chem Phys 251:123107
49.
go back to reference Osman AM, Hendi A, Saleh TA (2020) Simultaneous adsorption of dye and toxic metal ions using an interfacially polymerized silica/polyamide nanocomposite: Kinetic and thermodynamic studies. J Mol Liq 314:113640 Osman AM, Hendi A, Saleh TA (2020) Simultaneous adsorption of dye and toxic metal ions using an interfacially polymerized silica/polyamide nanocomposite: Kinetic and thermodynamic studies. J Mol Liq 314:113640
52.
go back to reference Kang DJ, Park GU, Park HY, Im H-G (2017) A robust transparent encapsulation material: silica nanoparticle-embedded epoxy hybrid nanocomposite. Compos Sci Technol 144:107–113 Kang DJ, Park GU, Park HY, Im H-G (2017) A robust transparent encapsulation material: silica nanoparticle-embedded epoxy hybrid nanocomposite. Compos Sci Technol 144:107–113
53.
go back to reference Liu S, Chen T (2020) Synthesis and luminescent properties of polymer-silica multilayer-encapsulated perovskite quantum dots for optoelectronics. J Chin Chem Soc 67:109–115 Liu S, Chen T (2020) Synthesis and luminescent properties of polymer-silica multilayer-encapsulated perovskite quantum dots for optoelectronics. J Chin Chem Soc 67:109–115
54.
go back to reference Morozova S, Alikina M, Vinogradov A, Pagliaro M (2020) Silicon quantum dots: synthesis, encapsulation, and application in light-emitting diodes. Front Chem 8:191PubMedPubMedCentral Morozova S, Alikina M, Vinogradov A, Pagliaro M (2020) Silicon quantum dots: synthesis, encapsulation, and application in light-emitting diodes. Front Chem 8:191PubMedPubMedCentral
55.
go back to reference Park JH, Baek S-D, Cho JI et al (2019) Characteristics of transparent encapsulation materials for OLEDs prepared from mesoporous silica nanoparticle-polyurethane acrylate resin composites. Compos B Eng 175:107188 Park JH, Baek S-D, Cho JI et al (2019) Characteristics of transparent encapsulation materials for OLEDs prepared from mesoporous silica nanoparticle-polyurethane acrylate resin composites. Compos B Eng 175:107188
57.
go back to reference Yoon C, Yang KP, Kim J et al (2020) Fabrication of highly transparent and luminescent quantum dot/polymer nanocomposite for light emitting diode using amphiphilic polymer-modified quantum dots. Chem Eng J 382:122792 Yoon C, Yang KP, Kim J et al (2020) Fabrication of highly transparent and luminescent quantum dot/polymer nanocomposite for light emitting diode using amphiphilic polymer-modified quantum dots. Chem Eng J 382:122792
59.
go back to reference Bosc D, Devoldere N, Loisel B (1999) Mixed silica/polymer active directional coupler, in integrated optics Bosc D, Devoldere N, Loisel B (1999) Mixed silica/polymer active directional coupler, in integrated optics
66.
go back to reference Bifulco A, Parida D, Salmeia KA et al (2020) Improving flame retardancy of in-situ silica-epoxy nanocomposites cured with aliphatic hardener: combined effect of DOPO-based flame-retardant and melamine. Compos Part C Open Access 2:100022 Bifulco A, Parida D, Salmeia KA et al (2020) Improving flame retardancy of in-situ silica-epoxy nanocomposites cured with aliphatic hardener: combined effect of DOPO-based flame-retardant and melamine. Compos Part C Open Access 2:100022
67.
go back to reference Chiang CL, Ma CCM, Wu DL, Kuan HC (2003) J Polym Sci A: Polym Chem 41:1162 Chiang CL, Ma CCM, Wu DL, Kuan HC (2003) J Polym Sci A: Polym Chem 41:1162
68.
go back to reference Członka S, Strąkowska A, Strzelec K et al (2020) Melamine, silica, and ionic liquid as a novel flame retardant for rigid polyurethane foams with enhanced flame retardancy and mechanical properties. Polym Test 87:106511 Członka S, Strąkowska A, Strzelec K et al (2020) Melamine, silica, and ionic liquid as a novel flame retardant for rigid polyurethane foams with enhanced flame retardancy and mechanical properties. Polym Test 87:106511
72.
go back to reference Chia MY, San Thiam H, Leong LK et al (2020) Study on improvement of the selectivity of proton exchange membrane via incorporation of silicotungstic acid-doped silica into SPEEK. Int J Hydrog Energy 45:22315–22323 Chia MY, San Thiam H, Leong LK et al (2020) Study on improvement of the selectivity of proton exchange membrane via incorporation of silicotungstic acid-doped silica into SPEEK. Int J Hydrog Energy 45:22315–22323
78.
go back to reference Sharma PP, Gupta H, Kulshrestha V (2020) Phosphorylated hybrid silica-sulfonated polyethersulfone composite proton-exchange membranes: magnetic resonance investigation for enhanced proton-exchange dynamics. Int J Hydrog Energy 45:16955–16964 Sharma PP, Gupta H, Kulshrestha V (2020) Phosphorylated hybrid silica-sulfonated polyethersulfone composite proton-exchange membranes: magnetic resonance investigation for enhanced proton-exchange dynamics. Int J Hydrog Energy 45:16955–16964
82.
go back to reference Borisova D, Möhwald H, Shchukin DG (2011) Mesoporous silica nanoparticles for active corrosion protection. ACS Nano 5:1939–1946PubMed Borisova D, Möhwald H, Shchukin DG (2011) Mesoporous silica nanoparticles for active corrosion protection. ACS Nano 5:1939–1946PubMed
83.
go back to reference Golestaneh M, Amini G, Najafpour GD, Beygi MA (2010) Evaluation of mechanical strength of epoxy polymer concrete with silica powder as filler. World Appl Sci J 9:216–220 Golestaneh M, Amini G, Najafpour GD, Beygi MA (2010) Evaluation of mechanical strength of epoxy polymer concrete with silica powder as filler. World Appl Sci J 9:216–220
84.
go back to reference Yeh J-M, Chang K-C (2014) J Ind Eng Chem 20:275 Yeh J-M, Chang K-C (2014) J Ind Eng Chem 20:275
86.
go back to reference Izevbekhai OU, Gitari WM, Tavengwa NT et al (2020) Response surface optimization of oil removal using synthesized polypyrrole-silica polymer composite. Molecules 25:4628PubMedPubMedCentral Izevbekhai OU, Gitari WM, Tavengwa NT et al (2020) Response surface optimization of oil removal using synthesized polypyrrole-silica polymer composite. Molecules 25:4628PubMedPubMedCentral
87.
go back to reference Ma Q, Liu Y, Dong Z, et al (2015) Hydrophobic and nanoporous chitosan–silica composite aerogels for oil absorption. J Appl Polym Sci 132 Ma Q, Liu Y, Dong Z, et al (2015) Hydrophobic and nanoporous chitosan–silica composite aerogels for oil absorption. J Appl Polym Sci 132
89.
go back to reference Wang H, Zhang C, Zhou B et al (2020) Hydrophobic silica nanorod arrays vertically grown on melamine foams for oil/water separation. ACS Appl Nano Mater 3:1479–1488 Wang H, Zhang C, Zhou B et al (2020) Hydrophobic silica nanorod arrays vertically grown on melamine foams for oil/water separation. ACS Appl Nano Mater 3:1479–1488
90.
go back to reference Lei Q, Guo J, Noureddine A et al (2020) Sol–gel-based advanced porous silica materials for biomedical applications. Adv Func Mater 30:1909539 Lei Q, Guo J, Noureddine A et al (2020) Sol–gel-based advanced porous silica materials for biomedical applications. Adv Func Mater 30:1909539
91.
go back to reference Li H, Huang D, Ren K, Ji J (2020) Inorganic-polymer composite coatings for biomedical devices. Smart Mater Med 2:1–14 Li H, Huang D, Ren K, Ji J (2020) Inorganic-polymer composite coatings for biomedical devices. Smart Mater Med 2:1–14
93.
go back to reference Ramakrishna S, Mayer J, Wintermantel E, Leong KW (2001) Biomedical applications of polymer-composite materials: a review. Compos Sci Technol 61:1189–1224 Ramakrishna S, Mayer J, Wintermantel E, Leong KW (2001) Biomedical applications of polymer-composite materials: a review. Compos Sci Technol 61:1189–1224
95.
go back to reference Salernitano E, Migliaresi C (2003) Composite materials for biomedical applications: a review. J Appl Biomater Biomech 1:3–18PubMed Salernitano E, Migliaresi C (2003) Composite materials for biomedical applications: a review. J Appl Biomater Biomech 1:3–18PubMed
99.
go back to reference Zhong B, Shen L, Zhang X et al (2021) Reduced graphene oxide/silica nanocomposite-reinforced anticorrosive fluorocarbon coating. J Appl Polym Sci 138:49689 Zhong B, Shen L, Zhang X et al (2021) Reduced graphene oxide/silica nanocomposite-reinforced anticorrosive fluorocarbon coating. J Appl Polym Sci 138:49689
101.
go back to reference Mittal V (2015) Synthesis techniques for polymer nanocomposites. Wiley Mittal V (2015) Synthesis techniques for polymer nanocomposites. Wiley
102.
go back to reference Yang F, Nelson GL (2004) PMMA/silica nanocomposite studies: synthesis and properties. J Appl Polym Sci 91:3844–3850 Yang F, Nelson GL (2004) PMMA/silica nanocomposite studies: synthesis and properties. J Appl Polym Sci 91:3844–3850
104.
go back to reference Huang J-W, Wen Y-L, Kang C-C, Yeh M-Y (2007) Preparation of polyimide-silica nanocomposites from nanoscale colloidal silica. Polym J 39:654 Huang J-W, Wen Y-L, Kang C-C, Yeh M-Y (2007) Preparation of polyimide-silica nanocomposites from nanoscale colloidal silica. Polym J 39:654
109.
go back to reference Hyde ED, Seyfaee A, Neville F, Moreno-Atanasio R (2016) Colloidal silica particle synthesis and future industrial manufacturing pathways: a review. Ind Eng Chem Res 55:8891–8913 Hyde ED, Seyfaee A, Neville F, Moreno-Atanasio R (2016) Colloidal silica particle synthesis and future industrial manufacturing pathways: a review. Ind Eng Chem Res 55:8891–8913
111.
go back to reference Burrows LC, Haeri F, Cvetic P et al (2020) A literature review of CO2, natural gas, and water-based fluids for enhanced oil recovery in unconventional reservoirs. Energy Fuels 34:5331–5380 Burrows LC, Haeri F, Cvetic P et al (2020) A literature review of CO2, natural gas, and water-based fluids for enhanced oil recovery in unconventional reservoirs. Energy Fuels 34:5331–5380
112.
go back to reference Jin F (2017) Principles of enhanced oil recovery. In: Hu X, Hu S, Jin F, Huang S (eds) Physics of Petroleum Reservoirs. Springer, Berlin Heidelberg, pp 465–506 Jin F (2017) Principles of enhanced oil recovery. In: Hu X, Hu S, Jin F, Huang S (eds) Physics of Petroleum Reservoirs. Springer, Berlin Heidelberg, pp 465–506
114.
go back to reference Kong X, Ohadi MM (2010) Applications of micro and nano technologies in the oil and gas industry-an overview of the recent progress. OnePetro Kong X, Ohadi MM (2010) Applications of micro and nano technologies in the oil and gas industry-an overview of the recent progress. OnePetro
115.
go back to reference Lashari N, Ganat T (2020) Emerging applications of nanomaterials in chemical enhanced oil recovery: progress and perspective. Chin J Chem Eng 28:1995–2009 Lashari N, Ganat T (2020) Emerging applications of nanomaterials in chemical enhanced oil recovery: progress and perspective. Chin J Chem Eng 28:1995–2009
116.
go back to reference Cheraghian G, Rostami S, Afrand M (2020) Nanotechnology in enhanced oil recovery. Processes 8:1073 Cheraghian G, Rostami S, Afrand M (2020) Nanotechnology in enhanced oil recovery. Processes 8:1073
117.
go back to reference Gbadamosi A, Junin R, Manan M, et al (2019) Nanotechnology application in chemical enhanced oil recovery: current opinion and recent advances. Enhanced Oil Recovery Processes-New Technologies Gbadamosi A, Junin R, Manan M, et al (2019) Nanotechnology application in chemical enhanced oil recovery: current opinion and recent advances. Enhanced Oil Recovery Processes-New Technologies
119.
go back to reference Alnarabiji MS, Husein MM (2020) Application of bare nanoparticle-based nanofluids in enhanced oil recovery. Fuel 267:117262 Alnarabiji MS, Husein MM (2020) Application of bare nanoparticle-based nanofluids in enhanced oil recovery. Fuel 267:117262
120.
go back to reference Joshi D, Maurya NK, Kumar N, Mandal A (2022) Experimental investigation of silica nanoparticle assisted Surfactant and polymer systems for enhanced oil recovery. J Petrol Sci Eng 216:110791 Joshi D, Maurya NK, Kumar N, Mandal A (2022) Experimental investigation of silica nanoparticle assisted Surfactant and polymer systems for enhanced oil recovery. J Petrol Sci Eng 216:110791
123.
go back to reference Rahimi K, Adibifard M (2015) Experimental study of the nanoparticles effect on surfactant absorption and oil recovery in one of the Iranian oil reservoirs. Pet Sci Technol 33:79–85 Rahimi K, Adibifard M (2015) Experimental study of the nanoparticles effect on surfactant absorption and oil recovery in one of the Iranian oil reservoirs. Pet Sci Technol 33:79–85
124.
go back to reference Negin C, Ali S, Xie Q (2016) Application of nanotechnology for enhancing oil recovery–A review. Petroleum 2:324–333 Negin C, Ali S, Xie Q (2016) Application of nanotechnology for enhancing oil recovery–A review. Petroleum 2:324–333
125.
go back to reference Sun X, Zhang Y, Chen G, Gai Z (2017) Application of nanoparticles in enhanced oil recovery: a critical review of recent progress. Energies 10:345 Sun X, Zhang Y, Chen G, Gai Z (2017) Application of nanoparticles in enhanced oil recovery: a critical review of recent progress. Energies 10:345
126.
go back to reference Yakasai F, Jaafar MZ, Sidek MA et al (2023) Co-precipitation and grafting of (3-Aminopropyl) triethoxysilane on Ferro nanoparticles to enhance oil recovery mechanisms at reservoir conditions. J Mol Liq 371:121007 Yakasai F, Jaafar MZ, Sidek MA et al (2023) Co-precipitation and grafting of (3-Aminopropyl) triethoxysilane on Ferro nanoparticles to enhance oil recovery mechanisms at reservoir conditions. J Mol Liq 371:121007
127.
go back to reference Tavakkoli O, Kamyab H, Shariati M et al (2022) Effect of nanoparticles on the performance of polymer/surfactant flooding for enhanced oil recovery: a review. Fuel 312:122867 Tavakkoli O, Kamyab H, Shariati M et al (2022) Effect of nanoparticles on the performance of polymer/surfactant flooding for enhanced oil recovery: a review. Fuel 312:122867
128.
go back to reference Ju B, Fan T, Ma M (2006) Enhanced oil recovery by flooding with hydrophilic nanoparticles. China Particuol 4:41–46 Ju B, Fan T, Ma M (2006) Enhanced oil recovery by flooding with hydrophilic nanoparticles. China Particuol 4:41–46
129.
go back to reference Khilar KC, Fogler HS (1998) Migrations of fines in porous media. Springer Science & Business Media Khilar KC, Fogler HS (1998) Migrations of fines in porous media. Springer Science & Business Media
130.
go back to reference Afekare D, Garno J, Rao D (2021) Enhancing oil recovery using silica nanoparticles: nanoscale wettability alteration effects and implications for shale oil recovery. J Petrol Sci Eng 203:108897 Afekare D, Garno J, Rao D (2021) Enhancing oil recovery using silica nanoparticles: nanoscale wettability alteration effects and implications for shale oil recovery. J Petrol Sci Eng 203:108897
131.
go back to reference Cheraghian G (2015) Effects of nanoparticles on wettability: a review on applications of nanotechnology in the enhanced Oil recovery Cheraghian G (2015) Effects of nanoparticles on wettability: a review on applications of nanotechnology in the enhanced Oil recovery
133.
go back to reference Hammond PS, Unsal E (2011) Spontaneous imbibition of surfactant solution into an oil-wet capillary: wettability restoration by surfactant-contaminant complexation. Langmuir 27:4412–4429PubMed Hammond PS, Unsal E (2011) Spontaneous imbibition of surfactant solution into an oil-wet capillary: wettability restoration by surfactant-contaminant complexation. Langmuir 27:4412–4429PubMed
134.
go back to reference Chatzis I, Morrow NR (1984) Correlation of capillary number relationships for sandstone. Soc Petrol Eng J 24:555–562 Chatzis I, Morrow NR (1984) Correlation of capillary number relationships for sandstone. Soc Petrol Eng J 24:555–562
135.
go back to reference Munshi A, Singh V, Kumar M, Singh J (2008) Effect of nanoparticle size on sessile droplet contact angle. J Appl Phys 103:084315 Munshi A, Singh V, Kumar M, Singh J (2008) Effect of nanoparticle size on sessile droplet contact angle. J Appl Phys 103:084315
137.
go back to reference Keykhosravi A, Simjoo M (2019) Insights into stability of silica nanofluids in brine solution coupled with rock wettability alteration: an enhanced oil recovery study in oil-wet carbonates. Colloids Surf A 583:124008 Keykhosravi A, Simjoo M (2019) Insights into stability of silica nanofluids in brine solution coupled with rock wettability alteration: an enhanced oil recovery study in oil-wet carbonates. Colloids Surf A 583:124008
138.
go back to reference Dehghan Monfared A, Ghazanfari MH, Jamialahmadi M, Helalizadeh A (2016) Potential application of silica nanoparticles for wettability alteration of oil–wet calcite: a mechanistic study. Energy Fuels 30:3947–3961 Dehghan Monfared A, Ghazanfari MH, Jamialahmadi M, Helalizadeh A (2016) Potential application of silica nanoparticles for wettability alteration of oil–wet calcite: a mechanistic study. Energy Fuels 30:3947–3961
140.
go back to reference Shah DO (2012) Improved oil recovery by surfactant and polymer flooding. Elsevier Shah DO (2012) Improved oil recovery by surfactant and polymer flooding. Elsevier
141.
go back to reference Agi A, Junin R, Abdullah MO et al (2020) Application of polymeric nanofluid in enhancing oil recovery at reservoir condition. J Petrol Sci Eng 194:107476 Agi A, Junin R, Abdullah MO et al (2020) Application of polymeric nanofluid in enhancing oil recovery at reservoir condition. J Petrol Sci Eng 194:107476
142.
go back to reference Choi SK, Son HA, Kim HT, Kim JW (2017) Nanofluid enhanced oil recovery using hydrophobically associative zwitterionic polymer-coated silica nanoparticles. Energy Fuels 31:7777–7782 Choi SK, Son HA, Kim HT, Kim JW (2017) Nanofluid enhanced oil recovery using hydrophobically associative zwitterionic polymer-coated silica nanoparticles. Energy Fuels 31:7777–7782
143.
go back to reference Zeyghami M, Kharrat R, Ghazanfari M (2014) Investigation of the applicability of nano silica particles as a thickening additive for polymer solutions applied in EOR processes. Energy Sources Part A Recov Utiliz Environ Eff 36:1315–1324 Zeyghami M, Kharrat R, Ghazanfari M (2014) Investigation of the applicability of nano silica particles as a thickening additive for polymer solutions applied in EOR processes. Energy Sources Part A Recov Utiliz Environ Eff 36:1315–1324
144.
go back to reference Cheraghian G, Hemmati M, Bazgir S (2014) Application of TiO2 and fumed silica nanoparticles and improve the performance of drilling fluids. American Institute of Physics, pp 266–270 Cheraghian G, Hemmati M, Bazgir S (2014) Application of TiO2 and fumed silica nanoparticles and improve the performance of drilling fluids. American Institute of Physics, pp 266–270
146.
go back to reference Sandvik E, Maerker J (1977) Application of xanthan gum for enhanced oil recovery. ACS Publications Sandvik E, Maerker J (1977) Application of xanthan gum for enhanced oil recovery. ACS Publications
147.
go back to reference Navaie F, Esmaeilnezhad E, Choi HJ (2022) Xanthan gum-added natural surfactant solution of Chuback: a green and clean technique for enhanced oil recovery. J Mol Liq 354:118909 Navaie F, Esmaeilnezhad E, Choi HJ (2022) Xanthan gum-added natural surfactant solution of Chuback: a green and clean technique for enhanced oil recovery. J Mol Liq 354:118909
148.
go back to reference Li Q, Wei B, Lu L et al (2017) Investigation of physical properties and displacement mechanisms of surface-grafted nano-cellulose fluids for enhanced oil recovery. Fuel 207:352–364 Li Q, Wei B, Lu L et al (2017) Investigation of physical properties and displacement mechanisms of surface-grafted nano-cellulose fluids for enhanced oil recovery. Fuel 207:352–364
157.
go back to reference Lake LW, Venuto PB (1990) A niche for enhanced oil recovery in the 1990s. Oil Gas J 88:62–67 Lake LW, Venuto PB (1990) A niche for enhanced oil recovery in the 1990s. Oil Gas J 88:62–67
158.
go back to reference Sorbie KS (2013) Polymer-improved oil recovery. Springer Science & Business Media Sorbie KS (2013) Polymer-improved oil recovery. Springer Science & Business Media
159.
go back to reference Gaillard N, Sanders DB, Favero C (2010) Improved oil recovery using thermally and chemically protected compositions based on co-and ter-polymers containing acrylamide. Soc Petrol Eng Gaillard N, Sanders DB, Favero C (2010) Improved oil recovery using thermally and chemically protected compositions based on co-and ter-polymers containing acrylamide. Soc Petrol Eng
160.
go back to reference Pancharoen M, Thiele MR, Kovscek AR (2010) Inaccessible pore volume of associative polymer floods. Soc Petrol Eng Pancharoen M, Thiele MR, Kovscek AR (2010) Inaccessible pore volume of associative polymer floods. Soc Petrol Eng
161.
go back to reference Almohsin A, Michal F, Alsharaeh E, et al (2019) Self-healing PAM composite hydrogel for water shutoff at high temperatures: thermal and rheological investigations. In: SPE-198664-MS. Society of Petroleum Engineers, Dubai, UAE, p 8 Almohsin A, Michal F, Alsharaeh E, et al (2019) Self-healing PAM composite hydrogel for water shutoff at high temperatures: thermal and rheological investigations. In: SPE-198664-MS. Society of Petroleum Engineers, Dubai, UAE, p 8
162.
go back to reference Krishnan M, Michal F, Alsoughayer S, et al (2019) Thermodynamic and kinetic investigation of water absorption by PAM composite hydrogel. In: SPE-198033-MS. Society of Petroleum Engineers, Mishref, Kuwait, p 11 Krishnan M, Michal F, Alsoughayer S, et al (2019) Thermodynamic and kinetic investigation of water absorption by PAM composite hydrogel. In: SPE-198033-MS. Society of Petroleum Engineers, Mishref, Kuwait, p 11
166.
go back to reference Wang D, Xia H, Liu Z, Yang Q (2001) Study of the mechanism of polymer solution with visco-elastic behavior increasing microscopic oil displacement efficiency and the forming of steady" Oil thread" flow channels. Society of Petroleum Engineers Wang D, Xia H, Liu Z, Yang Q (2001) Study of the mechanism of polymer solution with visco-elastic behavior increasing microscopic oil displacement efficiency and the forming of steady" Oil thread" flow channels. Society of Petroleum Engineers
167.
go back to reference Zhang L, Guo F (2008) Micro-mechanisms of residual oil mobilization by viscoelastic fluids. Pet Sci 5:56–61 Zhang L, Guo F (2008) Micro-mechanisms of residual oil mobilization by viscoelastic fluids. Pet Sci 5:56–61
168.
go back to reference Bai B, Zhou J, Yin M (2015) A comprehensive review of polyacrylamide polymer gels for conformance control. Pet Explor Dev 42:525–532 Bai B, Zhou J, Yin M (2015) A comprehensive review of polyacrylamide polymer gels for conformance control. Pet Explor Dev 42:525–532
169.
go back to reference Morgan SE, McCormick CL (1990) Water-soluble polymers in enhanced oil recovery. Prog Polym Sci 15:103–145 Morgan SE, McCormick CL (1990) Water-soluble polymers in enhanced oil recovery. Prog Polym Sci 15:103–145
170.
go back to reference Sabhapondit A, Borthakur A, Haque I (2003) Characterization of acrylamide polymers for enhanced oil recovery. J Appl Polym Sci 87:1869–1878 Sabhapondit A, Borthakur A, Haque I (2003) Characterization of acrylamide polymers for enhanced oil recovery. J Appl Polym Sci 87:1869–1878
171.
go back to reference Sabhapondit A, Borthakur A, Haque I (2003) Water soluble acrylamidomethyl propane sulfonate (AMPS) copolymer as an enhanced oil recovery chemical. Energy Fuels 17:683–688 Sabhapondit A, Borthakur A, Haque I (2003) Water soluble acrylamidomethyl propane sulfonate (AMPS) copolymer as an enhanced oil recovery chemical. Energy Fuels 17:683–688
172.
go back to reference Song H, Zhang S-F, Ma X-C et al (2007) Synthesis and application of starch-graft-poly (AM-co-AMPS) by using a complex initiation system of CS-APS. Carbohydr Polym 69:189–195 Song H, Zhang S-F, Ma X-C et al (2007) Synthesis and application of starch-graft-poly (AM-co-AMPS) by using a complex initiation system of CS-APS. Carbohydr Polym 69:189–195
173.
go back to reference Levitt D, Pope GA (2008) Selection and screening of polymers for enhanced-oil recovery. Society of Petroleum Engineers Levitt D, Pope GA (2008) Selection and screening of polymers for enhanced-oil recovery. Society of Petroleum Engineers
174.
go back to reference Abu-Sharkh B, Yahaya G, Ali S, Kazi I (2001) Solution and interfacial behavior of hydrophobically modified water-soluble block copolymers of acrylamide and N-phenethylacrylamide. J Appl Polym Sci 82:467–476 Abu-Sharkh B, Yahaya G, Ali S, Kazi I (2001) Solution and interfacial behavior of hydrophobically modified water-soluble block copolymers of acrylamide and N-phenethylacrylamide. J Appl Polym Sci 82:467–476
175.
go back to reference Metin CO, Baran JR, Nguyen QP (2012) Adsorption of surface functionalized silica nanoparticles onto mineral surfaces and decane/water interface. J Nanopart Res 14:1246PubMedPubMedCentral Metin CO, Baran JR, Nguyen QP (2012) Adsorption of surface functionalized silica nanoparticles onto mineral surfaces and decane/water interface. J Nanopart Res 14:1246PubMedPubMedCentral
176.
go back to reference Ju B, Dai S, Luan Z, et al (2002) A study of wettability and permeability change caused by adsorption of nanometer structured polysilicon on the surface of porous media. Society of Petroleum Engineers Ju B, Dai S, Luan Z, et al (2002) A study of wettability and permeability change caused by adsorption of nanometer structured polysilicon on the surface of porous media. Society of Petroleum Engineers
177.
go back to reference Wang L, Wang Z, Yang H, Yang G (1999) The study of thermal stability of the SiO2 powders with high specific surface area. Mater Chem Phys 57:260–263 Wang L, Wang Z, Yang H, Yang G (1999) The study of thermal stability of the SiO2 powders with high specific surface area. Mater Chem Phys 57:260–263
182.
go back to reference Rostami S, Ahmadlouydarab M, Haddad AS (2022) Effects of hot nanofluid injection on oil recovery from a model porous medium. Chem Eng Res Des 186:451–461 Rostami S, Ahmadlouydarab M, Haddad AS (2022) Effects of hot nanofluid injection on oil recovery from a model porous medium. Chem Eng Res Des 186:451–461
186.
go back to reference Onyekonwu MO, Ogolo NA (2010) Investigating the use of nanoparticles in enhancing oil recovery. Society of Petroleum Engineers Onyekonwu MO, Ogolo NA (2010) Investigating the use of nanoparticles in enhancing oil recovery. Society of Petroleum Engineers
187.
go back to reference Hendraningrat L, Li S, Torsaeter O (2013) Enhancing oil recovery of low-permeability berea sandstone through optimised nanofluids concentration. In: SPE-165283-MS. Society of Petroleum Engineers, Kuala Lumpur, Malaysia, p 10 Hendraningrat L, Li S, Torsaeter O (2013) Enhancing oil recovery of low-permeability berea sandstone through optimised nanofluids concentration. In: SPE-165283-MS. Society of Petroleum Engineers, Kuala Lumpur, Malaysia, p 10
189.
go back to reference Zhu D, Han Y, Zhang J, et al (2014) Enhancing rheological properties of hydrophobically associative polyacrylamide aqueous solutions by hybriding with silica nanoparticles. J Appl Polym Sci 131 Zhu D, Han Y, Zhang J, et al (2014) Enhancing rheological properties of hydrophobically associative polyacrylamide aqueous solutions by hybriding with silica nanoparticles. J Appl Polym Sci 131
190.
go back to reference Aqcheli F, Salehi MB, Pahlevani H, Taghikhani V (2020) Rheological properties and the micromodel investigation of nanosilica gel-reinforced preformed particle gels developed for improved oil recovery. J Pet Sci Eng 192:107258 Aqcheli F, Salehi MB, Pahlevani H, Taghikhani V (2020) Rheological properties and the micromodel investigation of nanosilica gel-reinforced preformed particle gels developed for improved oil recovery. J Pet Sci Eng 192:107258
191.
go back to reference Kamibayashi M, Ogura H, Otsubo Y (2005) Viscosity behavior of silica suspensions flocculated by associating polymers. J Colloid Interface Sci 290:592–597PubMed Kamibayashi M, Ogura H, Otsubo Y (2005) Viscosity behavior of silica suspensions flocculated by associating polymers. J Colloid Interface Sci 290:592–597PubMed
192.
go back to reference Otsubo Y, Umeya K (1984) Rheological properties of silica suspensions in polyacrylamide solutions. J Rheol 28:95–108 Otsubo Y, Umeya K (1984) Rheological properties of silica suspensions in polyacrylamide solutions. J Rheol 28:95–108
193.
go back to reference Aalaie J (2012) Rheological behavior of polyacrylamide/laponite nanoparticle suspensions in electrolyte media. J Macromol Sci Part B 51:1139–1147 Aalaie J (2012) Rheological behavior of polyacrylamide/laponite nanoparticle suspensions in electrolyte media. J Macromol Sci Part B 51:1139–1147
194.
go back to reference Whitby CP, Scales PJ, Grieser F et al (2003) PAA/PEO comb polymer effects on rheological properties and interparticle forces in aqueous silica suspensions. J Colloid Interface Sci 262:274–281PubMed Whitby CP, Scales PJ, Grieser F et al (2003) PAA/PEO comb polymer effects on rheological properties and interparticle forces in aqueous silica suspensions. J Colloid Interface Sci 262:274–281PubMed
195.
go back to reference Li Q, Yu X, Wang L, et al (2021) Nano-silica Hybrid Polyacrylamide/Polyethylenimine Gel for Enhanced Oil Recovery at Harsh Conditions. Colloids and Surfaces A: Physicochemical and Engineering Aspects 127898 Li Q, Yu X, Wang L, et al (2021) Nano-silica Hybrid Polyacrylamide/Polyethylenimine Gel for Enhanced Oil Recovery at Harsh Conditions. Colloids and Surfaces A: Physicochemical and Engineering Aspects 127898
196.
go back to reference Cao J, Song T, Wang X et al (2019) Studies on the rheological properties of amphiphilic nanosilica and a partially hydrolyzed polyacrylamide hybrid for enhanced oil recovery. Chem Eng Sci 206:146–155 Cao J, Song T, Wang X et al (2019) Studies on the rheological properties of amphiphilic nanosilica and a partially hydrolyzed polyacrylamide hybrid for enhanced oil recovery. Chem Eng Sci 206:146–155
197.
go back to reference Xu L, Liu S, Qiu Z et al (2021) Hydrophobic effect further improves the rheological behaviors and oil recovery of polyacrylamide/nanosilica hybrids at high salinity. Chem Eng Sci 232:116369 Xu L, Liu S, Qiu Z et al (2021) Hydrophobic effect further improves the rheological behaviors and oil recovery of polyacrylamide/nanosilica hybrids at high salinity. Chem Eng Sci 232:116369
198.
go back to reference Gbadamosi AO, Junin R, Manan MA et al (2019) Hybrid suspension of polymer and nanoparticles for enhanced oil recovery. Polym Bull 76:6193–6230 Gbadamosi AO, Junin R, Manan MA et al (2019) Hybrid suspension of polymer and nanoparticles for enhanced oil recovery. Polym Bull 76:6193–6230
199.
go back to reference Kennedy JR, Kent KE, Brown JR (2015) Rheology of dispersions of xanthan gum, locust bean gum and mixed biopolymer gel with silicon dioxide nanoparticles. Mater Sci Eng, C 48:347–353 Kennedy JR, Kent KE, Brown JR (2015) Rheology of dispersions of xanthan gum, locust bean gum and mixed biopolymer gel with silicon dioxide nanoparticles. Mater Sci Eng, C 48:347–353
200.
go back to reference Bera A, Shah S, Shah M et al (2020) Mechanistic study on silica nanoparticles-assisted guar gum polymer flooding for enhanced oil recovery in sandstone reservoirs. Colloids Surf, A 598:124833 Bera A, Shah S, Shah M et al (2020) Mechanistic study on silica nanoparticles-assisted guar gum polymer flooding for enhanced oil recovery in sandstone reservoirs. Colloids Surf, A 598:124833
201.
go back to reference Maurya NK, Mandal A (2016) Studies on behavior of suspension of silica nanoparticle in aqueous polyacrylamide solution for application in enhanced oil recovery. Pet Sci Technol 34:429–436 Maurya NK, Mandal A (2016) Studies on behavior of suspension of silica nanoparticle in aqueous polyacrylamide solution for application in enhanced oil recovery. Pet Sci Technol 34:429–436
202.
go back to reference Maghzi A, Kharrat R, Mohebbi A, Ghazanfari MH (2014) The impact of silica nanoparticles on the performance of polymer solution in presence of salts in polymer flooding for heavy oil recovery. Fuel 123:123–132 Maghzi A, Kharrat R, Mohebbi A, Ghazanfari MH (2014) The impact of silica nanoparticles on the performance of polymer solution in presence of salts in polymer flooding for heavy oil recovery. Fuel 123:123–132
204.
go back to reference Shahrabadi A, Bagherzadeh H, Roostaie A, Golghanddashti H (2012) Experimental investigation of HLP nanofluid potential to enhance oil recovery: a mechanistic approach. In: SPE-156642-MS. Society of Petroleum Engineers, SPE, p 9 Shahrabadi A, Bagherzadeh H, Roostaie A, Golghanddashti H (2012) Experimental investigation of HLP nanofluid potential to enhance oil recovery: a mechanistic approach. In: SPE-156642-MS. Society of Petroleum Engineers, SPE, p 9
205.
go back to reference Hendraningrat L, Torsaeter O (2014) Unlocking the potential of metal oxides nanoparticles to enhance the oil recovery. In: OTC-24696-MS. Offshore Technology Conference, OTC, p 12 Hendraningrat L, Torsaeter O (2014) Unlocking the potential of metal oxides nanoparticles to enhance the oil recovery. In: OTC-24696-MS. Offshore Technology Conference, OTC, p 12
207.
go back to reference Zhang T, Davidson D, Bryant SL, Huh C (2010) Nanoparticle-stabilized emulsions for applications in enhanced oil recovery. In: SPE-129885-MS. Society of Petroleum Engineers, Tulsa, Oklahoma, USA, p 18 Zhang T, Davidson D, Bryant SL, Huh C (2010) Nanoparticle-stabilized emulsions for applications in enhanced oil recovery. In: SPE-129885-MS. Society of Petroleum Engineers, Tulsa, Oklahoma, USA, p 18
213.
go back to reference Yadav US, Kumar H, Roy V et al (2020) Experimental evaluation of partially hydrolyzed polyacrylamide and silica nanoparticles solutions for enhanced oil recovery. J Pet Explor Prod Technol 10:1109–1114 Yadav US, Kumar H, Roy V et al (2020) Experimental evaluation of partially hydrolyzed polyacrylamide and silica nanoparticles solutions for enhanced oil recovery. J Pet Explor Prod Technol 10:1109–1114
215.
go back to reference Cao J, Song T, Zhu Y et al (2018) Aqueous hybrids of amino-functionalized nanosilica and acrylamide-based polymer for enhanced oil recovery. RSC Adv 8:38056–38064PubMedPubMedCentral Cao J, Song T, Zhu Y et al (2018) Aqueous hybrids of amino-functionalized nanosilica and acrylamide-based polymer for enhanced oil recovery. RSC Adv 8:38056–38064PubMedPubMedCentral
216.
go back to reference Liu J, Wang S, He L et al (2022) Preparation and properties of nano-silica hybrid hydrophobic associated polyacrylamide for polymer flooding. J Petrol Sci Eng 208:109434 Liu J, Wang S, He L et al (2022) Preparation and properties of nano-silica hybrid hydrophobic associated polyacrylamide for polymer flooding. J Petrol Sci Eng 208:109434
217.
go back to reference Cao J, Song T, Zhu Y et al (2018) Application of amino-functionalized nanosilica in improving the thermal stability of acrylamide-based polymer for enhanced oil recovery. Energy Fuels 32:246–254 Cao J, Song T, Zhu Y et al (2018) Application of amino-functionalized nanosilica in improving the thermal stability of acrylamide-based polymer for enhanced oil recovery. Energy Fuels 32:246–254
218.
go back to reference Zhu D, Wei L, Wang B, Feng Y (2014) Aqueous hybrids of silica nanoparticles and hydrophobically associating hydrolyzed polyacrylamide used for EOR in high-temperature and high-salinity reservoirs. Energies 7:3858–3871 Zhu D, Wei L, Wang B, Feng Y (2014) Aqueous hybrids of silica nanoparticles and hydrophobically associating hydrolyzed polyacrylamide used for EOR in high-temperature and high-salinity reservoirs. Energies 7:3858–3871
219.
go back to reference Wang Y, He Z, Chen W et al (2020) Stability and rheological properties of HPAM/nanosilica suspensions: impact of salinity. Colloids Surf A 587:124320 Wang Y, He Z, Chen W et al (2020) Stability and rheological properties of HPAM/nanosilica suspensions: impact of salinity. Colloids Surf A 587:124320
220.
go back to reference Elhaei R, Kharrat R, Madani M (2020) Stability, flocculation, and rheological behavior of silica suspensions-augmented polyacrylamide and the possibility to improve polymer flooding functionality. J Mol Liq 322:114572 Elhaei R, Kharrat R, Madani M (2020) Stability, flocculation, and rheological behavior of silica suspensions-augmented polyacrylamide and the possibility to improve polymer flooding functionality. J Mol Liq 322:114572
221.
go back to reference Haruna MA, Gardy J, Yao G et al (2020) Nanoparticle modified polyacrylamide for enhanced oil recovery at harsh conditions. Fuel 268:117186 Haruna MA, Gardy J, Yao G et al (2020) Nanoparticle modified polyacrylamide for enhanced oil recovery at harsh conditions. Fuel 268:117186
222.
go back to reference Corredor LM, Husein MM, Maini BB (2019) Impact of PAM-grafted nanoparticles on the performance of hydrolyzed polyacrylamide solutions for heavy oil recovery at different salinities. Ind Eng Chem Res 58:9888–9899 Corredor LM, Husein MM, Maini BB (2019) Impact of PAM-grafted nanoparticles on the performance of hydrolyzed polyacrylamide solutions for heavy oil recovery at different salinities. Ind Eng Chem Res 58:9888–9899
224.
go back to reference Sharma T, Iglauer S, Sangwai JS (2016) Silica nanofluids in an oilfield polymer polyacrylamide: interfacial properties, wettability alteration, and applications for chemical enhanced oil recovery. Ind Eng Chem Res 55:12387–12397 Sharma T, Iglauer S, Sangwai JS (2016) Silica nanofluids in an oilfield polymer polyacrylamide: interfacial properties, wettability alteration, and applications for chemical enhanced oil recovery. Ind Eng Chem Res 55:12387–12397
225.
go back to reference Muggeridge A, Cockin A, Webb K et al (2014) Recovery rates, enhanced oil recovery and technological limits. Philos Trans Royal Soc A Math Phys Eng Sci 372:20120320 Muggeridge A, Cockin A, Webb K et al (2014) Recovery rates, enhanced oil recovery and technological limits. Philos Trans Royal Soc A Math Phys Eng Sci 372:20120320
226.
go back to reference Lashari N, Ganat T, Elraies KA et al (2022) Impact of nanoparticles stability on rheology, interfacial tension, and wettability in chemical enhanced oil recovery: a critical parametric review. J Petrol Sci Eng 212:110199 Lashari N, Ganat T, Elraies KA et al (2022) Impact of nanoparticles stability on rheology, interfacial tension, and wettability in chemical enhanced oil recovery: a critical parametric review. J Petrol Sci Eng 212:110199
227.
go back to reference Nwidee LN (2017) Nanoparticles for enhanced oil recovery processes Nwidee LN (2017) Nanoparticles for enhanced oil recovery processes
229.
go back to reference Kalfayan LJ, Dawson JC (2004) Successful implementation of resurgent Relative Permeability Modifier (RPM) technology in well treatments requires realistic expectations. OnePetro Kalfayan LJ, Dawson JC (2004) Successful implementation of resurgent Relative Permeability Modifier (RPM) technology in well treatments requires realistic expectations. OnePetro
230.
go back to reference Grattoni C, Luckham P, Jing X et al (2004) Polymers as relative permeability modifiers: adsorption and the dynamic formation of thick polyacrylamide layers. J Petrol Sci Eng 45:233–245 Grattoni C, Luckham P, Jing X et al (2004) Polymers as relative permeability modifiers: adsorption and the dynamic formation of thick polyacrylamide layers. J Petrol Sci Eng 45:233–245
231.
go back to reference Qin L, Arjomand E, Myers MB et al (2020) Mechanistic aspects of polymeric relative permeability modifier adsorption onto carbonate rocks. Energy Fuels 34:12065–12077 Qin L, Arjomand E, Myers MB et al (2020) Mechanistic aspects of polymeric relative permeability modifier adsorption onto carbonate rocks. Energy Fuels 34:12065–12077
232.
go back to reference Esmaeili S, Sarma H, Harding T, Maini B (2019) Review of the effect of temperature on oil-water relative permeability in porous rocks of oil reservoirs. Fuel 237:91–116 Esmaeili S, Sarma H, Harding T, Maini B (2019) Review of the effect of temperature on oil-water relative permeability in porous rocks of oil reservoirs. Fuel 237:91–116
233.
go back to reference Di Lullo G, Rae P (2002) New Insights into water control—A review of the state of the art. In: SPE-77963-MS. Society of Petroleum Engineers, SPE, p 10 Di Lullo G, Rae P (2002) New Insights into water control—A review of the state of the art. In: SPE-77963-MS. Society of Petroleum Engineers, SPE, p 10
234.
go back to reference Fathima A, Almohsin A, Michael FM et al (2018) Polymer nanocomposites for water shutoff application—A review. Mater Res Express 6:032001 Fathima A, Almohsin A, Michael FM et al (2018) Polymer nanocomposites for water shutoff application—A review. Mater Res Express 6:032001
235.
go back to reference Sydansk RD, Seright RS (2006) When and where relative permeability modification water-shutoff treatments can be successfully applied. In: SPE-99371-MS. Society of Petroleum Engineers, Tulsa, Oklahoma, USA, p 15 Sydansk RD, Seright RS (2006) When and where relative permeability modification water-shutoff treatments can be successfully applied. In: SPE-99371-MS. Society of Petroleum Engineers, Tulsa, Oklahoma, USA, p 15
236.
go back to reference Zaltoun A, Kohler N, Guerrinl Y (1991) Improved polyacrylamide treatments for water control in producing wells. J Petrol Technol 43:862–867 Zaltoun A, Kohler N, Guerrinl Y (1991) Improved polyacrylamide treatments for water control in producing wells. J Petrol Technol 43:862–867
237.
go back to reference Zaitoun A, Kohler N, Marrast J, Guerrini Y (1990) On the use of polymers to reduce water production from gas wells. In Situ;(USA) 14 Zaitoun A, Kohler N, Marrast J, Guerrini Y (1990) On the use of polymers to reduce water production from gas wells. In Situ;(USA) 14
238.
go back to reference Sparlin DD (1976) An evaluation of polyacrylamides for reducing water production (includes associated papers 6561 and 6562). J Petrol Technol 28:906–914 Sparlin DD (1976) An evaluation of polyacrylamides for reducing water production (includes associated papers 6561 and 6562). J Petrol Technol 28:906–914
239.
go back to reference Vasquez J, Eoff L (2013) A relative permeability modifier for water control: candidate selection, case histories, and lessons learned after more than 3000 well interventions. OnePetro Vasquez J, Eoff L (2013) A relative permeability modifier for water control: candidate selection, case histories, and lessons learned after more than 3000 well interventions. OnePetro
240.
go back to reference Maffra DA, Freitas TC, da Cruz GF et al (2018) Evaluation of barium sulfate scale inhibition using relative permeability modifier polymers as adsorption enhancer for mature offshore well treatments in Campos Basin, Brazil. Ind Eng Chem Res 57:11493–11504 Maffra DA, Freitas TC, da Cruz GF et al (2018) Evaluation of barium sulfate scale inhibition using relative permeability modifier polymers as adsorption enhancer for mature offshore well treatments in Campos Basin, Brazil. Ind Eng Chem Res 57:11493–11504
241.
go back to reference Chiappa L, Mennella A, Lockhart TP, Burrafato G (1999) Polymer adsorption at the brine/rock interface: the role of electrostatic interactions and wettability. J Petrol Sci Eng 24:113–122 Chiappa L, Mennella A, Lockhart TP, Burrafato G (1999) Polymer adsorption at the brine/rock interface: the role of electrostatic interactions and wettability. J Petrol Sci Eng 24:113–122
242.
go back to reference Marra J, Hair ML (1988) Interactions between two adsorbed layers of poly (ethylene oxide)/polystyrene diblock copolymers in heptane—Toluene mixtures. Colloids Surf 34:215–226 Marra J, Hair ML (1988) Interactions between two adsorbed layers of poly (ethylene oxide)/polystyrene diblock copolymers in heptane—Toluene mixtures. Colloids Surf 34:215–226
243.
go back to reference Cohen Y, Christ F (1986) Polymer retention and adsorption in the flow of polymer solutions through porous media. SPE Reserv Eng 1:113–118 Cohen Y, Christ F (1986) Polymer retention and adsorption in the flow of polymer solutions through porous media. SPE Reserv Eng 1:113–118
244.
go back to reference Willhite GP, Zhu H, Natarajan D et al (2002) Mechanisms causing disproportionate permeability reduction in porous media treated with chromium acetate/HPAM gels. SPE J 7:100–108 Willhite GP, Zhu H, Natarajan D et al (2002) Mechanisms causing disproportionate permeability reduction in porous media treated with chromium acetate/HPAM gels. SPE J 7:100–108
245.
go back to reference Seright RS, Prodanovic M, Lindquist WB (2006) X-ray computed microtomography studies of fluid partitioning in drainage and imbibition before and after gel placement: disproportionate permeability reduction. SPE J 11:159–170 Seright RS, Prodanovic M, Lindquist WB (2006) X-ray computed microtomography studies of fluid partitioning in drainage and imbibition before and after gel placement: disproportionate permeability reduction. SPE J 11:159–170
246.
go back to reference Liang B, Jiang H, Li J et al (2018) Mechanism study of disproportionate permeability reduction using nuclear magnetic resonance T2. Energy Fuels 32:4959–4968 Liang B, Jiang H, Li J et al (2018) Mechanism study of disproportionate permeability reduction using nuclear magnetic resonance T2. Energy Fuels 32:4959–4968
247.
go back to reference Yao C, Wang D, Wang J et al (2017) Effect of ionic strength on the transport and retention of polyacrylamide microspheres in reservoir water shutoff treatment. Ind Eng Chem Res 56:8158–8168 Yao C, Wang D, Wang J et al (2017) Effect of ionic strength on the transport and retention of polyacrylamide microspheres in reservoir water shutoff treatment. Ind Eng Chem Res 56:8158–8168
248.
go back to reference Han M, Zhou X, Alhasan FB, et al (2012) Laboratory investigation of the injectivity of sulfonated polymer solutions into carbonate reservoir rocks. OnePetro Han M, Zhou X, Alhasan FB, et al (2012) Laboratory investigation of the injectivity of sulfonated polymer solutions into carbonate reservoir rocks. OnePetro
249.
go back to reference Seright R, Brattekas B (2021) Water shutoff and conformance improvement: an introduction. Pet Sci 18:450–478 Seright R, Brattekas B (2021) Water shutoff and conformance improvement: an introduction. Pet Sci 18:450–478
250.
go back to reference Seright R, Liang J (1994) A survey of field applications of gel treatments for water shutoff. OnePetro Seright R, Liang J (1994) A survey of field applications of gel treatments for water shutoff. OnePetro
251.
go back to reference Krishnan MR, Almohsin A, Alsharaeh EH (2022) Syntheses and fabrication of mesoporous styrene-co-methyl methacrylate-graphene composites for oil removal. Diam Relat Mater 130:109494 Krishnan MR, Almohsin A, Alsharaeh EH (2022) Syntheses and fabrication of mesoporous styrene-co-methyl methacrylate-graphene composites for oil removal. Diam Relat Mater 130:109494
252.
go back to reference Almohsin A, Alsharaeh E, Krishnan MR, Alghazali M (2022) Coated nanosand as relative permeability modifier Almohsin A, Alsharaeh E, Krishnan MR, Alghazali M (2022) Coated nanosand as relative permeability modifier
253.
go back to reference Eoff L, Dalrymple ED, Reddy BR, Everett D (2001) Structure and process optimization for the use of a polymeric relative-permeability modifier in conformance Control. OnePetro Eoff L, Dalrymple ED, Reddy BR, Everett D (2001) Structure and process optimization for the use of a polymeric relative-permeability modifier in conformance Control. OnePetro
254.
go back to reference Liang J, Seright R (2001) Wall-effect/gel-droplet model of disproportionate permeability reduction. SPE J 6:268–272 Liang J, Seright R (2001) Wall-effect/gel-droplet model of disproportionate permeability reduction. SPE J 6:268–272
255.
go back to reference Al-Sharji H, Grattoni C, Dawe R, Zimmerman R (2001) Flow of oil and water through elastic polymer gels. Oil Gas Sci Technol 56:145–152 Al-Sharji H, Grattoni C, Dawe R, Zimmerman R (2001) Flow of oil and water through elastic polymer gels. Oil Gas Sci Technol 56:145–152
256.
go back to reference Stavland A, Nilsson S (2001) Segregated flow is the governing mechanism of disproportionate permeability reduction in water and gas shutoff. OnePetro Stavland A, Nilsson S (2001) Segregated flow is the governing mechanism of disproportionate permeability reduction in water and gas shutoff. OnePetro
257.
go back to reference Zaitoun A, Kohler N (1988) Two-phase flow through porous media: effect of an adsorbed polymer layer. OnePetro Zaitoun A, Kohler N (1988) Two-phase flow through porous media: effect of an adsorbed polymer layer. OnePetro
258.
go back to reference Cohen Y (1988) Hydrodynamic thickness of adsorbed polymers in steady shear flow. Macromolecules 21:494–499 Cohen Y (1988) Hydrodynamic thickness of adsorbed polymers in steady shear flow. Macromolecules 21:494–499
259.
go back to reference Ranjbar M, Rupp J, Prusch G (1991) Influence of pore radi distribution on polymer retention in natural sandstones. European Association of Geoscientists & Engineers, p cp-44 Ranjbar M, Rupp J, Prusch G (1991) Influence of pore radi distribution on polymer retention in natural sandstones. European Association of Geoscientists & Engineers, p cp-44
260.
go back to reference Goudarzi A, Zhang H, Varavei A et al (2015) A laboratory and simulation study of preformed particle gels for water conformance control. Fuel 140:502–513 Goudarzi A, Zhang H, Varavei A et al (2015) A laboratory and simulation study of preformed particle gels for water conformance control. Fuel 140:502–513
261.
go back to reference Al-Shajalee F, Arif M, Machale J et al (2020) A multiscale investigation of cross-linked polymer gel injection in sandstone gas reservoirs: implications for water shutoff treatment. Energy Fuels 34:14046–14057 Al-Shajalee F, Arif M, Machale J et al (2020) A multiscale investigation of cross-linked polymer gel injection in sandstone gas reservoirs: implications for water shutoff treatment. Energy Fuels 34:14046–14057
262.
go back to reference El-Hoshoudy A, Mohammedy M, Ramzi M et al (2019) Experimental, modeling and simulation investigations of a novel surfmer-co-poly acrylates crosslinked hydrogels for water shut-off and improved oil recovery. J Mol Liq 277:142–156 El-Hoshoudy A, Mohammedy M, Ramzi M et al (2019) Experimental, modeling and simulation investigations of a novel surfmer-co-poly acrylates crosslinked hydrogels for water shut-off and improved oil recovery. J Mol Liq 277:142–156
263.
go back to reference Mohamadian N, Ghorbani H, Wood DA, Khoshmardan MA (2019) A hybrid nanocomposite of poly (styrene-methyl methacrylate-acrylic acid)/clay as a novel rheology-improvement additive for drilling fluids. J Polym Res 26:33 Mohamadian N, Ghorbani H, Wood DA, Khoshmardan MA (2019) A hybrid nanocomposite of poly (styrene-methyl methacrylate-acrylic acid)/clay as a novel rheology-improvement additive for drilling fluids. J Polym Res 26:33
264.
go back to reference Lenji MA, Haghshenasfard M, Sefti MV, Salehi MB (2018) Experimental study of swelling and rheological behavior of preformed particle gel used in water shutoff treatment. J Petrol Sci Eng 169:739–747 Lenji MA, Haghshenasfard M, Sefti MV, Salehi MB (2018) Experimental study of swelling and rheological behavior of preformed particle gel used in water shutoff treatment. J Petrol Sci Eng 169:739–747
265.
go back to reference Saghafi HR, Emadi MA, Farasat A et al (2016) Performance evaluation of optimized preformed particle gel (PPG) in porous media. Chem Eng Res Des 112:175–189 Saghafi HR, Emadi MA, Farasat A et al (2016) Performance evaluation of optimized preformed particle gel (PPG) in porous media. Chem Eng Res Des 112:175–189
266.
go back to reference Imqam A, Bai B, Delshad M (2015) Preformed particle gel propagation through super-K permeability sand and its resistance to water flow during conformance control. Society of Petroleum Engineers Imqam A, Bai B, Delshad M (2015) Preformed particle gel propagation through super-K permeability sand and its resistance to water flow during conformance control. Society of Petroleum Engineers
267.
go back to reference Heidari A, Vasheghani-Farahani E, Vafaie-Sefti M (2019) Preformed particle gels of sulfonated polyacrylamide: preparation, characterization, and application as permeability modifier. Iran Polym J 28:1001–1013 Heidari A, Vasheghani-Farahani E, Vafaie-Sefti M (2019) Preformed particle gels of sulfonated polyacrylamide: preparation, characterization, and application as permeability modifier. Iran Polym J 28:1001–1013
268.
go back to reference Qin L, Myers MB, Otto C, et al (2021) Further insights into the performance of silylated polyacrylamide-based relative permeability modifiers in carbonate reservoirs and influencing factors. ACS omega Qin L, Myers MB, Otto C, et al (2021) Further insights into the performance of silylated polyacrylamide-based relative permeability modifiers in carbonate reservoirs and influencing factors. ACS omega
269.
go back to reference Ahmed AA, Mohd Saaid I, Mohd Shafian S (2020) Novel relative permeability modifier using polymer grafted nanoclay. Energy Fuels 34:2703–2709 Ahmed AA, Mohd Saaid I, Mohd Shafian S (2020) Novel relative permeability modifier using polymer grafted nanoclay. Energy Fuels 34:2703–2709
270.
go back to reference Gramain P, Myard P (1981) Elongational deformation by shear flow of flexible polymers adsorbed in porous media. Macromolecules 14:180–184 Gramain P, Myard P (1981) Elongational deformation by shear flow of flexible polymers adsorbed in porous media. Macromolecules 14:180–184
271.
go back to reference Mennella A, Chiappa L, Lockhart TP, Burrafato G (2001) Candidate and chemical selection guidelines for relative permeability modification (RPM) treatments. SPE Prod Facil 16:181–188 Mennella A, Chiappa L, Lockhart TP, Burrafato G (2001) Candidate and chemical selection guidelines for relative permeability modification (RPM) treatments. SPE Prod Facil 16:181–188
272.
go back to reference Chiappa L, Andrei M, Lockhart TP, et al (2003) Polymer design for relative permeability modification treatments at high temperature. SPE, p SPE-80202 Chiappa L, Andrei M, Lockhart TP, et al (2003) Polymer design for relative permeability modification treatments at high temperature. SPE, p SPE-80202
273.
go back to reference Qi Z, Wang Y, Liu C et al (2013) A laboratory evaluation of a relative permeability modifier for water production control. Pet Sci Technol 31:2357–2363 Qi Z, Wang Y, Liu C et al (2013) A laboratory evaluation of a relative permeability modifier for water production control. Pet Sci Technol 31:2357–2363
274.
go back to reference Fulin Z, Dai Caili WY, Decheng F, Kai C (2006) Comprehension of water shutoff in oil wells and its technical keys. Acta Petrolei Sinica 27:71 Fulin Z, Dai Caili WY, Decheng F, Kai C (2006) Comprehension of water shutoff in oil wells and its technical keys. Acta Petrolei Sinica 27:71
275.
go back to reference Al-Shajalee F, Saeedi A, Wood C (2019) A new dimensionless approach to assess relative permeability modifiers. Energy Fuels 33:3448–3455 Al-Shajalee F, Saeedi A, Wood C (2019) A new dimensionless approach to assess relative permeability modifiers. Energy Fuels 33:3448–3455
276.
go back to reference Li W, Sahu Q (2023) A review: progress of diverter technology for oil and gas production applications in the past decade. SPE, p D031S038R002 Li W, Sahu Q (2023) A review: progress of diverter technology for oil and gas production applications in the past decade. SPE, p D031S038R002
277.
go back to reference Yang C, Navarrete R, Asadi M (2020) A novel relative permeability modifier polymer. OnePetro Yang C, Navarrete R, Asadi M (2020) A novel relative permeability modifier polymer. OnePetro
278.
go back to reference Magzoub MI, Salehi S, Hussein IA, Nasser MS (2020) Loss circulation in drilling and well construction: the significance of applications of crosslinked polymers in wellbore strengthening: a review. J Petrol Sci Eng 185:106653 Magzoub MI, Salehi S, Hussein IA, Nasser MS (2020) Loss circulation in drilling and well construction: the significance of applications of crosslinked polymers in wellbore strengthening: a review. J Petrol Sci Eng 185:106653
279.
go back to reference Alkinani HH, Al-Hameedi ATT, Dunn-Norman S, et al (2019) State-of-the-art review of lost circulation materials and treatments—Part I: general trends and uses. Society of Petroleum Engineers Alkinani HH, Al-Hameedi ATT, Dunn-Norman S, et al (2019) State-of-the-art review of lost circulation materials and treatments—Part I: general trends and uses. Society of Petroleum Engineers
280.
go back to reference Feng Y, Jones JF, Gray K (2016) A review on fracture-initiation and-propagation pressures for lost circulation and wellbore strengthening. SPE Drill Complet 31:134–144 Feng Y, Jones JF, Gray K (2016) A review on fracture-initiation and-propagation pressures for lost circulation and wellbore strengthening. SPE Drill Complet 31:134–144
281.
go back to reference Zhu Q, Wang Y, Zhang Y, et al (2018) Successful Applications of a Novel Compound Lost Circulation Additive With Variable Structure. Society of Petroleum Engineers Zhu Q, Wang Y, Zhang Y, et al (2018) Successful Applications of a Novel Compound Lost Circulation Additive With Variable Structure. Society of Petroleum Engineers
282.
go back to reference Al-Arfaj M, Amanullah M, Al-Ouhali R (2018) Loss circulation materials testing methods: literature review. Society of Petroleum Engineers Al-Arfaj M, Amanullah M, Al-Ouhali R (2018) Loss circulation materials testing methods: literature review. Society of Petroleum Engineers
283.
go back to reference Boukadi F, Yaghi B, Al-Hadrami H et al (2004) A comparative study of lost circulation materials. Energy Sources 26:1043–1051 Boukadi F, Yaghi B, Al-Hadrami H et al (2004) A comparative study of lost circulation materials. Energy Sources 26:1043–1051
284.
go back to reference Elkatatny S, Ahmed A, Abughaban M, Patil S (2020) Deep illustration for loss of circulation while drilling. Arab J Sci Eng 45:483–499 Elkatatny S, Ahmed A, Abughaban M, Patil S (2020) Deep illustration for loss of circulation while drilling. Arab J Sci Eng 45:483–499
286.
go back to reference Savari S, Whitfill DL (2019) Managing Lost Circulation in Highly Fractured, Vugular Formations: Engineering the LCM Design and Application. Society of Petroleum Engineers Savari S, Whitfill DL (2019) Managing Lost Circulation in Highly Fractured, Vugular Formations: Engineering the LCM Design and Application. Society of Petroleum Engineers
287.
go back to reference de Andrade AR, Borges RA, Guilherme HC et al (2019) A new loss circulation control strategy combining a cross-linkable polymer and magnetic fluid. J Petrol Sci Eng 180:958–966 de Andrade AR, Borges RA, Guilherme HC et al (2019) A new loss circulation control strategy combining a cross-linkable polymer and magnetic fluid. J Petrol Sci Eng 180:958–966
288.
go back to reference Wagle V, Kalgaonkar R, Al-Yami AS (2018) Nanoparticle-based chemical treatment for preventing loss circulation. OnePetro Wagle V, Kalgaonkar R, Al-Yami AS (2018) Nanoparticle-based chemical treatment for preventing loss circulation. OnePetro
289.
go back to reference Addagalla AK, Jadhav P, Yadav P, et al (2020) A novel phase transition loss circulation solution for severe losses scenario: case histories from Middle East and Africa. OnePetro Addagalla AK, Jadhav P, Yadav P, et al (2020) A novel phase transition loss circulation solution for severe losses scenario: case histories from Middle East and Africa. OnePetro
290.
go back to reference Alanqari K, Wagle V, Al-Yami A, Mohammed A (2021) A novel epoxy resin composition as a lost circulation material: formulation, lab testing and field execution. OnePetro Alanqari K, Wagle V, Al-Yami A, Mohammed A (2021) A novel epoxy resin composition as a lost circulation material: formulation, lab testing and field execution. OnePetro
291.
go back to reference Whaley K, Jackson PJ, Wolanski M, et al (2021) Paradigm shift in completion limits: open hole gravel pack in highly depleted reservoirs drilled with well bore strengthening technology. OnePetro Whaley K, Jackson PJ, Wolanski M, et al (2021) Paradigm shift in completion limits: open hole gravel pack in highly depleted reservoirs drilled with well bore strengthening technology. OnePetro
292.
293.
go back to reference Alsaba M, Nygaard R, Hareland G, Contreras O (2014) Review of lost circulation materials and treatments with an updated classification. pp 1–9 Alsaba M, Nygaard R, Hareland G, Contreras O (2014) Review of lost circulation materials and treatments with an updated classification. pp 1–9
294.
go back to reference Schmid G (2011) Nanoparticles: from theory to application. Wiley Schmid G (2011) Nanoparticles: from theory to application. Wiley
295.
go back to reference Ma L, Luo P, He Y et al (2019) Ultra-stable silica nanoparticles as nano-plugging additive for shale exploitation in harsh environments. Nanomaterials 9:1683PubMedPubMedCentral Ma L, Luo P, He Y et al (2019) Ultra-stable silica nanoparticles as nano-plugging additive for shale exploitation in harsh environments. Nanomaterials 9:1683PubMedPubMedCentral
296.
go back to reference Hoelscher KP, De Stefano G, Riley M, Young S (2012) Application of nanotechnology in drilling fluids. OnePetro Hoelscher KP, De Stefano G, Riley M, Young S (2012) Application of nanotechnology in drilling fluids. OnePetro
297.
go back to reference Javeri SM, Haindade ZW, Jere CB (2011) Mitigating loss circulation and differential sticking problems using silicon nanoparticles. OnePetro Javeri SM, Haindade ZW, Jere CB (2011) Mitigating loss circulation and differential sticking problems using silicon nanoparticles. OnePetro
298.
go back to reference Okunade OA, Yekeen N, Padmanabhan E et al (2021) Shale core wettability alteration, foam and emulsion stabilization by surfactant: Impact of surfactant concentration, rock surface roughness and nanoparticles. J Petrol Sci Eng 207:109139 Okunade OA, Yekeen N, Padmanabhan E et al (2021) Shale core wettability alteration, foam and emulsion stabilization by surfactant: Impact of surfactant concentration, rock surface roughness and nanoparticles. J Petrol Sci Eng 207:109139
299.
go back to reference Maagi MT, Jun G (2020) Application of nanoparticles for strengthening wellbore cement-formation bonding. Oil Gas Sci Technol-Revue d’IFP Energies nouvelles 75:64 Maagi MT, Jun G (2020) Application of nanoparticles for strengthening wellbore cement-formation bonding. Oil Gas Sci Technol-Revue d’IFP Energies nouvelles 75:64
300.
go back to reference Li H, Sun J, Lv K et al (2022) Wettability alteration to maintain wellbore stability of shale formation using hydrophobic nanoparticles. Colloids Surf A 635:128015 Li H, Sun J, Lv K et al (2022) Wettability alteration to maintain wellbore stability of shale formation using hydrophobic nanoparticles. Colloids Surf A 635:128015
301.
go back to reference Ko S, Huh C (2019) Use of nanoparticles for oil production applications. J Petrol Sci Eng 172:97–114 Ko S, Huh C (2019) Use of nanoparticles for oil production applications. J Petrol Sci Eng 172:97–114
302.
go back to reference Gang W, Honghai F, Jie F et al (2020) Performance and application of high-strength water-swellable material for reducing lost circulation under high temperature. J Petrol Sci Eng 189:106957 Gang W, Honghai F, Jie F et al (2020) Performance and application of high-strength water-swellable material for reducing lost circulation under high temperature. J Petrol Sci Eng 189:106957
303.
go back to reference Pu L, Xu P, Xu M et al (2022) Lost circulation materials for deep and ultra-deep wells: a review. J Petrol Sci Eng 214:110404 Pu L, Xu P, Xu M et al (2022) Lost circulation materials for deep and ultra-deep wells: a review. J Petrol Sci Eng 214:110404
304.
go back to reference Ramasamy J, Gooneratne P C, Amanullah M (2019) Current methods and novel solutions for mitigating lost circulation. OnePetro Ramasamy J, Gooneratne P C, Amanullah M (2019) Current methods and novel solutions for mitigating lost circulation. OnePetro
305.
go back to reference Yang J, Sun J, Bai Y et al (2022) Status and prospect of drilling fluid loss and lost circulation control technology in fractured formation. Gels 8:260PubMedPubMedCentral Yang J, Sun J, Bai Y et al (2022) Status and prospect of drilling fluid loss and lost circulation control technology in fractured formation. Gels 8:260PubMedPubMedCentral
306.
go back to reference Hamza A, Shamlooh M, Hussein IA et al (2019) Polymeric formulations used for loss circulation materials and wellbore strengthening applications in oil and gas wells: a review. J Petrol Sci Eng 180:197–214 Hamza A, Shamlooh M, Hussein IA et al (2019) Polymeric formulations used for loss circulation materials and wellbore strengthening applications in oil and gas wells: a review. J Petrol Sci Eng 180:197–214
307.
go back to reference Lei S, Sun J, Lv K et al (2022) Types and performances of polymer gels for oil-gas drilling and production: a review. Gels 8:386PubMedPubMedCentral Lei S, Sun J, Lv K et al (2022) Types and performances of polymer gels for oil-gas drilling and production: a review. Gels 8:386PubMedPubMedCentral
308.
go back to reference Paul JM, Strom ET (1987) Oil reservoir permeability control using polymeric gels Paul JM, Strom ET (1987) Oil reservoir permeability control using polymeric gels
309.
go back to reference Bruton JR, Ivan CD, Heinz TJ (2001) Lost circulation control: evolving techniques and strategies to reduce downhole mud losses. OnePetro Bruton JR, Ivan CD, Heinz TJ (2001) Lost circulation control: evolving techniques and strategies to reduce downhole mud losses. OnePetro
310.
go back to reference Bai Y, Liu C, Sun J et al (2022) High temperature resistant polymer gel as lost circulation material for fractured formation during drilling. Colloids Surf A 637:128244 Bai Y, Liu C, Sun J et al (2022) High temperature resistant polymer gel as lost circulation material for fractured formation during drilling. Colloids Surf A 637:128244
312.
go back to reference Ahmad HM, Iqbal T, Kamal MS, Al-Harthi MA (2020) Influence of hydrophobically modified polymer and titania nanoparticles on shale hydration and swelling properties. Energy Fuels 34:16456–16468 Ahmad HM, Iqbal T, Kamal MS, Al-Harthi MA (2020) Influence of hydrophobically modified polymer and titania nanoparticles on shale hydration and swelling properties. Energy Fuels 34:16456–16468
313.
go back to reference Davidson E, Richardson L, Zoller S (2000) Control of lost circulation in fractured limestone reservoirs. In: SPE-62734-MS. Society of Petroleum Engineers, SPE, p 9 Davidson E, Richardson L, Zoller S (2000) Control of lost circulation in fractured limestone reservoirs. In: SPE-62734-MS. Society of Petroleum Engineers, SPE, p 9
314.
go back to reference Fan X, Zhao P, Zhang Q et al (2018) A polymer plugging gel for the fractured strata and its application. Materials 11:856PubMedPubMedCentral Fan X, Zhao P, Zhang Q et al (2018) A polymer plugging gel for the fractured strata and its application. Materials 11:856PubMedPubMedCentral
315.
go back to reference Alkinani HH, Al-Hameedi ATT, Dunn-Norman S, Al-Bazzaz WH (2020) State-of-the-Art review of lost circulation materials and treatments–Part ii: probability and cost analyses. OnePetro Alkinani HH, Al-Hameedi ATT, Dunn-Norman S, Al-Bazzaz WH (2020) State-of-the-Art review of lost circulation materials and treatments–Part ii: probability and cost analyses. OnePetro
316.
go back to reference Lavrov A (2016) Lost circulation: mechanisms and solutions. Gulf professional publishing Lavrov A (2016) Lost circulation: mechanisms and solutions. Gulf professional publishing
317.
go back to reference Ahmed A, Elkatatny S, Ali A, et al (2020) Application of artificial intelligence techniques in predicting the lost circulation zones using drilling sensors. J Sens 2020 Ahmed A, Elkatatny S, Ali A, et al (2020) Application of artificial intelligence techniques in predicting the lost circulation zones using drilling sensors. J Sens 2020
318.
go back to reference Jinsheng S, Yingrui B, Cheng R et al (2021) Research progress and prospect of plugging technologies for fractured formation with severe lost circulation. Pet Explor Dev 48:732–743 Jinsheng S, Yingrui B, Cheng R et al (2021) Research progress and prospect of plugging technologies for fractured formation with severe lost circulation. Pet Explor Dev 48:732–743
319.
go back to reference Keishnan MR, Michael FM, Almohsin AM, Alsharaeh EH (2020) Thermal and rheological investigations on N,N’-methylenebis acrylamide cross-linked polyacrylamide nanocomposite hydrogels for water shutoff applications. In: OTC-30123-MS. Offshore Technology Conference, OTC, p 9 Keishnan MR, Michael FM, Almohsin AM, Alsharaeh EH (2020) Thermal and rheological investigations on N,N’-methylenebis acrylamide cross-linked polyacrylamide nanocomposite hydrogels for water shutoff applications. In: OTC-30123-MS. Offshore Technology Conference, OTC, p 9
320.
go back to reference Michael FM, Fathima A, AlYemni E et al (2018) Enhanced polyacrylamide polymer gels using zirconium hydroxide nanoparticles for water shutoff at high temperatures: thermal and rheological investigations. Ind Eng Chem Res 57:16347–16357 Michael FM, Fathima A, AlYemni E et al (2018) Enhanced polyacrylamide polymer gels using zirconium hydroxide nanoparticles for water shutoff at high temperatures: thermal and rheological investigations. Ind Eng Chem Res 57:16347–16357
321.
go back to reference Almohsin A, Alsharaeh E, Michael FM, Krishnan MR (2022) Polymer-nanofiller hydrogels Almohsin A, Alsharaeh E, Michael FM, Krishnan MR (2022) Polymer-nanofiller hydrogels
322.
go back to reference Almohsin A, Alsharaeh E, Krishnan MR (2022) Polymer-sand nanocomposite lost circulation material Almohsin A, Alsharaeh E, Krishnan MR (2022) Polymer-sand nanocomposite lost circulation material
324.
go back to reference Krishnan MR, Aldawsari YF, Alsharaeh EH (2020) Three-dimensionally cross-linked styrene-methyl methacrylate-divinyl benzene terpolymer networks for organic solvents and crude oil absorption. J Appl Polym Sci 138:49942 Krishnan MR, Aldawsari YF, Alsharaeh EH (2020) Three-dimensionally cross-linked styrene-methyl methacrylate-divinyl benzene terpolymer networks for organic solvents and crude oil absorption. J Appl Polym Sci 138:49942
Metadata
Title
An overview on nanosilica–polymer composites as high-performance functional materials in oil fields
Authors
Mohan Raj Krishnan
Haneen Omar
Ayman Almohsin
Edreese H. Alsharaeh
Publication date
04-08-2023
Publisher
Springer Berlin Heidelberg
Published in
Polymer Bulletin / Issue 5/2024
Print ISSN: 0170-0839
Electronic ISSN: 1436-2449
DOI
https://doi.org/10.1007/s00289-023-04934-y

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