Surfactant-Augmented Functional Silica Nanoparticle Based Nanofluid for Enhanced Oil Recovery at High Temperature and Salinity

Нанофлюид на основе функционализированных силикатных наночастиц с добавлением поверхностно-активного вещества для повышения нефтеотдачи при высокой температуре и минерализации
Hui Pu, Julia Xiaojun Zhao, Yanxia Zhou, Xu Wu, Xun Zhong, Wen Sun
2019-11-15

enhanced oil recoveryhigh-salinity high-temperature stabilitysilica nanoparticle nanofluidspontaneous imbibitionsurfactant coating
Nanofluids in recent years have shown great potential as a chemical enhanced oil recovery (EOR) technology, thanks to their excellent performance in altering interfacial properties. However, because of the great challenge in preparing stable systems suitable for an elevated temperature and a high salinity environment, expanding the application of nanofluids has been greatly restrained. In this work, a novel nanofluid was prepared by integrating positively charged amino-terminated silica nanoparticles (SiNP-NH 2 ) with negatively charged anionic surfactant (Soloterra 964) via electrostatic force. The resulted nanofluid could be stored at relatively high salinity (15 wt % NaCl solution) and high temperature (65 °C) for more than 30 days without aggregation. Successful coating of the surfactant on target SiNPs was verified by Fourier transform infrared spectrometry and the surface charge and size distribution. In addition, the potential of the nanofluid in recovering oil was investigated by analyzing the nanofluid/Bakken oil interfacial tension and the variation trend of the oil contact angle when brine was replaced by nanofluids. Experimental results showed that the water–oil interfacial tension of the Bakken crude oil decreased by 99.85% and the contact angle increased by 237.8% compared to the original value of 13.78 mN/m and 43.4°, respectively, indicating strong oil displacement efficiency and obvious wetting transition from oil-wet toward water-wet. Spontaneous imbibition tests conducted on Berea rocks showed that the nanofluid yielded a high oil recovery rate of 46.61%, compared to that of 11.30, 16.58, and 22.89% for brine, pure SiNP-NH 2, and pure surfactant (Soloterra 964), respectively. In addition, when core flooding was applied, a total of 60.88% of the original oil in place could be recovered and an additional oil recovery of 17.23% was achieved in the chemical flooding stage. Moreover, a possible mechanism of the EOR using the nanofluid was proposed. Overall, the developed nanofluid is a promising new material for EOR.
1
A stable nanofluid was created by electrostatically integrating positively charged amino-terminated silica nanoparticles with negatively charged Soloterra 964 surfactant.
2
Core flooding recovered 60.88% of original oil in place, including an additional 17.23% recovery during chemical flooding.
3
Spontaneous imbibition recovered 46.61% of oil from Berea rocks, outperforming brine, pure nanoparticles, and pure surfactant recoveries of 11.30%, 16.58%, and 22.89%.
4
The formulation reduced Bakken oil–water interfacial tension by 99.85% and increased contact angle by 237.8%, indicating a transition toward water-wet conditions.
5
The nanofluid remained aggregation-free for over 30 days in 15 wt% NaCl at 65 °C, demonstrating high-temperature and high-salinity stability.

Surfactant-augmented amino-terminated silica nanoparticle nanofluid for enhanced oil recovery in high-temperature, high-salinity conditions

Nanofluid stability, interfacial-tension reduction, wettability alteration, and oil-recovery performance in Bakken oil and Berea rock under high-temperature, high-salinity conditions

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2019-11-15
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Hui Pu
Julia Xiaojun Zhao
Yanxia Zhou
Xu Wu
Xun Zhong
Wen Sun
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