Asphaltene-Laden Interfaces Form Soft Glassy Layers in Contraction Experiments: A Mechanism for Coalescence Blocking

被引:74
作者
Pauchard, Vincent [3 ,4 ]
Rane, Jayant P. [1 ,2 ,4 ]
Banerjee, Sanjoy [1 ,2 ,4 ]
机构
[1] CUNY City Coll, Energy Inst, New York, NY 10031 USA
[2] CUNY City Coll, Dept Chem Engn, New York, NY 10031 USA
[3] SINTEF Mat & Chem, Proc Technol Dept, Flow Technol Grp, Trondheim, Norway
[4] FACE, Kjeller, Norway
关键词
OIL-WATER INTERFACE; KINETIC RATE CONSTANTS; NEWTONIAN BLACK FILMS; GEL POINT; NUCLEATION MECHANISM; ADSORPTION-KINETICS; EMULSION STABILITY; MODEL; RHEOLOGY; SURFACE;
D O I
10.1021/la5028042
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In previous studies, the adsorption kinetics of asphaltenes at the water-oil interface were interpreted utilizing a Langmuir equation of state (EOS) based on droplet expansion experiments.1-3 Long-term adsorption kinetics followed random sequential adsorption (RSA) theory predictions, asymptotically reaching similar to 85% limiting surface coverage, which is similar to limiting random 2D close packing of disks. To extend this work beyond this slow adsorption process, we performed rapid contractions and contraction-expansions of asphaltene-laden interfaces using the pendant drop experiment to emulate a Langmuir trough. This simulates the rapid increase in interfacial asphaltene concentration that occurs during coalescence events. For the contraction of droplets aged in asphaltene solutions, deviation from the EOS consistently occurs at a surface pressure value similar to 21 mN/m corresponding to a surface coverage similar to 80%. At this point droplets lose the shape required for validity of the Laplace-Young equation, indicating solidlike surface behavior. On further contraction wrinkles appear, which disappear when the droplet is held at constant volume. Surface pressure also decreases down to an equilibrium value near that measured for slow adsorption experiments. This behavior appears to be due to a transition to a glassy interface on contraction past the packing limit, followed by relaxation toward equilibrium by desorption at constant volume. This hypothesis is supported by cycling experiments around the close-packed limit where the transition to and from a solidlike state appears to be both fast and reversible, with little hysteresis. Also, the soft glass rheology model of Sollich is shown to capture previously reported shear behavior during adsorption. The results suggest that the mechanism by which asphaltenes stabilize water-in-oil emulsions is by blocking coalescence due to rapid formation of a glassy interface, in turn caused by interfacial asphaltenes rapidly increasing in concentration beyond the glass transition point.
引用
收藏
页码:12795 / 12803
页数:9
相关论文
共 51 条
[1]   High-Q ultrasonic determination of the critical nanoaggregate concentration of asphaltenes and the critical micelle concentration of standard surfactants [J].
Andreatta, G ;
Bostrom, N ;
Mullins, OC .
LANGMUIR, 2005, 21 (07) :2728-2736
[2]   Molecular Orientation of Asphaltenes and PAH Model Compounds in Langmuir-Blodgett Films Using Sum Frequency Generation Spectroscopy [J].
Andrews, A. Ballard ;
McClelland, Arthur ;
Korkeila, Oona ;
Demidov, Alexander ;
Krummel, Amber ;
Mullins, Oliver C. ;
Chen, Zhan .
LANGMUIR, 2011, 27 (10) :6049-6058
[3]  
[Anonymous], SOC PET ENG J
[4]   Observation of Liquid Crystals in Heavy Petroleum Fractions [J].
Bagheri, S. Reza ;
Bazyleva, Ala ;
Gray, Murray R. ;
McCaffrey, William C. ;
Shaw, John M. .
ENERGY & FUELS, 2010, 24 (08) :4327-4332
[5]  
Barnes G., 2005, Interfacial science: an introduction, P247
[6]   Dynamic surface properties of asphaltenes and resins at the oil-air interface [J].
Bauget, F ;
Langevin, D ;
Lenormand, R .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2001, 239 (02) :501-508
[7]  
BLAIR CM, 1960, CHEM IND-LONDON, P538
[8]   SELF-INDUCED QUENCHED DISORDER - A MODEL FOR THE GLASS-TRANSITION [J].
BOUCHAUD, JP ;
MEZARD, M .
JOURNAL DE PHYSIQUE I, 1994, 4 (08) :1109-1114
[9]   Tensorial constitutive models for disordered foams, dense emulsions, and other soft nonergodic materials [J].
Cates, ME ;
Sollich, P .
JOURNAL OF RHEOLOGY, 2004, 48 (01) :193-207
[10]   RHEOLOGY OF MODEL POLYURETHANES AT THE GEL POINT [J].
CHAMBON, F ;
PETROVIC, ZS ;
MACKNIGHT, WJ ;
WINTER, HH .
MACROMOLECULES, 1986, 19 (08) :2146-2149