Zeta potential in oil-water-carbonate systems and its impact on oil recovery during controlled salinity water-flooding

被引:224
作者
Jackson, Matthew D. [1 ]
Al-Mahrouqi, Dawoud [1 ,2 ]
Vinogradov, Jan [1 ,3 ]
机构
[1] Imperial Coll London, Dept Earth Sci & Engn, London, England
[2] Petr Dev Oman LLC, Muscat, Oman
[3] Univ Aberdeen, Sch Engn, Aberdeen, Scotland
关键词
DETERMINING IONS CA2+; WETTABILITY ALTERATION; SURFACE-CHEMISTRY; SPONTANEOUS IMBIBITION; CALCITE SURFACE; SMART WATER; PORE-SCALE; LIMESTONE; CHALK; ELECTROKINETICS;
D O I
10.1038/srep37363
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Laboratory experiments and field trials have shown that oil recovery from carbonate reservoirs can be increased by modifying the brine composition injected during recovery in a process termed controlled salinity water-flooding (CSW). However, CSW remains poorly understood and there is no method to predict the optimum CSW composition. This work demonstrates for the first time that improved oil recovery (IOR) during CSW is strongly correlated to changes in zeta potential at both the mineral-water and oil-water interfaces. We report experiments in which IOR during CSW occurs only when the change in brine composition induces a repulsive electrostatic force between the oil-brine and mineral-brine interfaces. The polarity of the zeta potential at both interfaces must be determined when designing the optimum CSW composition. A new experimental method is presented that allows this. Results also show for the first time that the zeta potential at the oil-water interface may be positive at conditions relevant to carbonate reservoirs. A key challenge for any model of CSW is to explain why IOR is not always observed. Here we suggest that failures using the conventional (dilution) approach to CSW may have been caused by a positively charged oil-water interface that had not been identified.
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页数:13
相关论文
共 63 条
[1]  
Al Mahrouqi D., ADV COLLOID IN PRESS
[2]  
Alotaibi M. B., 2016, SPE RESERVOIR EVALUA
[3]   Electrokinetics of Limestone Particles and Crude-Oil Droplets in Saline Solutions [J].
Alotaibi, Mohammed B. ;
Nasr-El-Din, Hisham A. .
SPE RESERVOIR EVALUATION & ENGINEERING, 2011, 14 (05) :604-611
[4]   Electrokinetics of Limestone and Dolomite Rock Particles [J].
Alotaibi, Mohammed B. ;
Nasr-El-Din, Hisham A. ;
Fletcher, James J. .
SPE RESERVOIR EVALUATION & ENGINEERING, 2011, 14 (05) :594-603
[5]   Zeta potential of intact natural limestone: Impact of potential-determining ions Ca, Mg and SO4 [J].
Alroudhan, A. ;
Vinogradov, J. ;
Jackson, M. D. .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2016, 493 :83-98
[6]   Conditions for a Low-Salinity Enhanced Oil Recovery (EOR) Effect in Carbonate Oil Reservoirs [J].
Austad, T. ;
Shariatpanahi, S. F. ;
Strand, S. ;
Black, C. J. J. ;
Webb, K. J. .
ENERGY & FUELS, 2012, 26 (01) :569-575
[7]   Spontaneous imbibition of water into oil-wet carbonates [J].
Austad, T ;
Standnes, DC .
JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2003, 39 (3-4) :363-376
[8]   Seawater in chalk: An EOR and compaction fluid [J].
Austad, Tor ;
Strand, Skule ;
Madland, Merete V. ;
Puntervold, Tina ;
Korsnes, Reidar I. .
SPE RESERVOIR EVALUATION & ENGINEERING, 2008, 11 (04) :648-654
[9]   The pristine oil/water interface: Surfactant-free hydroxide-charged emulsions [J].
Beattie, JK ;
Djerdjev, AM .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2004, 43 (27) :3568-3571
[10]  
Bradley H., 1987, Petroleum engineering handbook