Method of Moments for Computational Microemulsion Analysis and Prediction in Tertiary Oil Recovery

被引:42
作者
Fraaije, Johannes G. E. M. [1 ,3 ]
Tandon, Kunj [2 ]
Jain, Shekhar [2 ]
Handgraaf, Jan-Willem [3 ]
Buijse, Marten [2 ]
机构
[1] Leiden Univ, Leiden Inst Chem, Soft Matter Chem Grp, NL-2300 RA Leiden, Netherlands
[2] Shell Int Explorat & Prod BV, NL-2288 GS Rijswijk, Netherlands
[3] Culgi BV, NL-2300 AG Leiden, Netherlands
关键词
INTERFACIAL-TENSION; UNDERSTANDING MICROEMULSIONS; LIQUID-CRYSTALLINE; NACL SYSTEMS; CURVATURE; BEHAVIOR; MODEL; SOLUBILIZATION; SURFACTANTS; MONOLAYERS;
D O I
10.1021/la304505u
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We discuss the application of Helfrich's surface torque density concept to microemulsion design and analysis from three different angles: (i) from the point of view of coarse-grained molecular simulations, using Dissipative Particle Dynamics, including charge interactions and added salt, (ii) using an approximate double-film model for the surface, and (iii) comparison with formulation approaches. The simulations use that the surface torque can be calculated unambiguously from the stress profile, provided the surface is tensionless. Very good agreement is found on predicting optimal salinity (or the absence of that) for a range of surfactants: dioctyl sodium sulfosuccinate, various twin-tailed sulfonates and sodium dodecyl sulfate. The simulations are very fast, on par with times for experiments, thus they could lead to a practical tool for discovery of more efficient surfactants, although much remains to be done with respect to other important variables: oil composition, surfactant mixtures, aggregation in solution, and so on. The microscopic model (second approach) is highly approximate: it is essentially based on two opposing swelling tendencies, that are both of osmotic nature. In accordance with the model, the tails are swollen by the oil and the charged head groups are confined in a salty layer in Donnan equilibrium with the salt solution. In this way, the surface interactions are purely entropic. The comparison of the film model with existing formulation approaches (third approach) covers the interfacial tension minimum, Winsor R theory, quantitative structure property relations (QSPR), hydrophilic lipophilic deviation (HLD), HLD-net average curvature, and temperature coefficients. Using the surface torque analysis, we succeed in deriving in an ab initio way QSPR empirical coefficients that have been known for decades, but until now, have been obscure in origin.
引用
收藏
页码:2136 / 2151
页数:16
相关论文
共 37 条
  • [1] Linker-modified microemulsions for a variety of oils and surfactants
    Acosta, E
    Do Mai, P
    Harwell, JH
    Sabatini, DA
    [J]. JOURNAL OF SURFACTANTS AND DETERGENTS, 2003, 6 (04) : 353 - 363
  • [2] Net-average curvature model for solubilization and supersolubilization in surfactant microemulsions
    Acosta, E
    Szekeres, E
    Sabatini, DA
    Harwell, JH
    [J]. LANGMUIR, 2003, 19 (01) : 186 - 195
  • [3] The characteristic curvature of ionic surfactants
    Acosta, Edgar J.
    Yuan, Jessica Sh.
    Bhakta, Arti Sh.
    [J]. JOURNAL OF SURFACTANTS AND DETERGENTS, 2008, 11 (02) : 145 - 158
  • [4] The HLD-NAC equation of state for microemulsions formulated with nonionic alcohol ethoxylate and alkylphenol ethoxylate surfactants
    Acosta, Edgar J.
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2008, 320 (1-3) : 193 - 204
  • [5] The HLD-NAC Model for Mixtures of Ionic and Nonionic Surfactants
    Acosta, Edgar J.
    Bhakta, Arti S.
    [J]. JOURNAL OF SURFACTANTS AND DETERGENTS, 2009, 12 (01) : 7 - 19
  • [6] [Anonymous], 1981, Phys. Des. defauts (Phys. Defects)
  • [7] [Anonymous], 2000, DRUGS PHARM SCI
  • [8] [Anonymous], 1998, SPE TXB SERIES
  • [9] Practical Surfactant Mixing Rules Based on the Attainment of Microemulsion-Oil-Water Three-Phase Behavior Systems
    Anton, Raquel E.
    Anderez, Jose M.
    Bracho, Carlos
    Vejar, Francia
    Salager, Jean-Louis
    [J]. INTERFACIAL PROCESSES AND MOLECULAR AGGREGATION OF SURFACTANTS, 2008, 218 : 83 - 113
  • [10] Arleth L., 2001, PHYS REV E, P63