Enhanced Oil Recovery in High Salinity and Elevated Temperature Conditions with a Zwitterionic Surfactant and Silica Nanoparticles Acting in Synergy

Повышение нефтеотдачи в условиях высокой минерализации и повышенной температуры с использованием цвиттерионного поверхностно-активного вещества и кремнезёмных наночастиц, действующих синергически
Xun Zhong, Chuncheng Li, Yinghui Li, Hui Pu, Yanxia Zhou, Julia Xiaojun Zhao
2020-02-03

Core floodingEnhanced oil recoverySilica nanoparticlesWettability alterationZwitterionic surfactant
Novel SiO 2 nanoparticles (NPs) costabilized by a low-molecular-weight ligand (steric stabilization) and a zwitterionic surfactant (electrostatic stabilization) were developed for enhanced oil recovery purpose in sandstone reservoirs with high salinity and elevated temperatures. According to our experiments, the proposed NPs were not sensitive to either monovalent or divalent cations, whose size remained around 10.0 nm in API brine within 8 weeks at 25 °C and 4 weeks at 60 °C. Using the zwitterionic surfactant with NPs reduced the NP dosage required to induce wettability alteration and the possibility of severe permeability damage. The presence of NPs in return effectively decreased the surfactant adsorption loss on rocks, reduced the surfactant concentration needed to produce a low interfacial tension, and rendered the oil-wet solid surface toward a more water-wet condition beneficial for water imbibition and oil displacement. Core flooding tests showed that the nanofluid composed of 800 mg/L of zwitterionic surfactant and 2000 mg/L of lab-synthesized SiO 2 NPs was able to recover extra 3.12 and 5.39% original oil-in-place from Berea sandstone cores in the tertiary recovery mode after surfactant flooding or pure NP flooding, respectively. In addition, thanks to the weak interactions between the zwitterionic surfactant and the surface-modified SiO 2 NPs, flexible adjustments can be made to their concentration ratios to customize the desirable nanofluid formulas intended for specific applications.
1
A nanofluid containing 800 mg/L surfactant and 2000 mg/L SiO₂ nanoparticles recovered an additional 3.12% or 5.39% of original oil in place after surfactant or pure-nanoparticle flooding, respectively.
2
A zwitterionic surfactant and low-molecular-weight ligand synergistically costabilized SiO₂ nanoparticles for enhanced oil recovery under high salinity and elevated temperature.
3
Combining the surfactant with nanoparticles reduced nanoparticle dosage for wettability alteration and lowered the risk of severe permeability damage, while nanoparticles reduced surfactant adsorption loss.
4
Nanoparticles also reduced the surfactant concentration required for low interfacial tension and shifted oil-wet surfaces toward water-wet conditions, improving water imbibition and oil displacement.
5
The nanoparticles remained approximately 10.0 nm in API brine despite monovalent and divalent cations, maintaining stability for eight weeks at 25 °C and four weeks at 60 °C.
6
Weak surfactant–nanoparticle interactions enabled flexible concentration-ratio adjustment for application-specific nanofluid formulations.

Zwitterionic-surfactant/silica-nanoparticle nanofluids for enhanced oil recovery in high-salinity, elevated-temperature sandstone reservoirs

Synergistic effects on nanoparticle stability, surfactant adsorption, wettability alteration, interfacial tension, permeability damage, and tertiary oil recovery

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2020-02-03
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Xun Zhong
Chuncheng Li
Yinghui Li
Hui Pu
Yanxia Zhou
Julia Xiaojun Zhao
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