Investigation of Discrete Population Balance Models and Breakage Kernels for Dilute Emulsification Systems

被引:40
作者
Becker, Per Julian
Puel, Francois
Henry, Reynald
Sheibat-Othman, Nida
机构
[1] Université de Lyon, CNRS, Laboratoire D'Automatique et de Génie des Procédés (LAGEP), F-69622 Villeurbanne
关键词
LIQUID-LIQUID DISPERSIONS; DEVELOPED TURBULENT-FLOW; DROP SIZE DISTRIBUTION; NONIDEAL STIRRED-TANK; BUBBLE BREAKUP; EFFICIENT SOLUTION; PART; AGGREGATION; COALESCENCE; EQUATIONS;
D O I
10.1021/ie2006033
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A novel in situ video probe with automated image analysis was used to develop a population balance model for a breakage-dominated liquid liquid emulsification system. Experiments were performed in a 2 L tank, agitated by an axial flow propeller. The dispersed phase (ethylene glycol distearate) concentration was varied from 0.2 to 1.0% (w/w), and agitation rates were varied from 0.2 to 0.5 W/kg, in the presence of excess surfactant. Three numerical discretization methods were compared: fixed pivot, cell average, and finite volumes. The latter was then chosen for the subsequent simulations due to its rapidity and higher precision. An investigation of the different theories for bubble/droplet breakage was done and the frequencies (or breakage rate kernels) were compared. Four models were found applicable: the models developed by Coulaloglou and Tavlarides (Coulaloglou, C. A.; Tavlarides, L. L. Chem. Eng. Sci. 1977, 32, 1289); Sathyagal and Ramkrishna (Sathyagal, A. N.; Ramkrishna, D. Chem. Eng. Sri. 1996, SI, 1377); Alopaeus, Koskinen, and Keskinen (Alopaeus, V.; Koskinen, J.; Keskinen, K. L Chem. Eng. Sci. 1999, 54, 5887); and Baldyga and Podgorska (Baldyga, J.; Podgorska, W. Can. J. Chem. Eng. 1998, 76, 456). The one by Sathygal and Ramkrishna included the daughter size distribution. A log-normal daughter size distribution was chosen for the models by Coulaloglou and Tavlarides and Alopeus et al. Also, a normal distribution was used in the model by Baldyga and Podgorska. These models were compared with the experimental data to allow parameter identification. The model by Baldyga and Podgorska was found to give the best prediction of the shape of the distribution, its mean diameter, and standard deviation.
引用
收藏
页码:11358 / 11374
页数:17
相关论文
共 51 条
[1]   Simulation of the population balances for liquid-liquid systems in a nonideal stirred tank. Part 2 - parameter fitting and the use of the multiblock model for dense dispersions [J].
Alopaeus, V ;
Koskinen, J ;
Keskinen, KI ;
Majander, J .
CHEMICAL ENGINEERING SCIENCE, 2002, 57 (10) :1815-1825
[2]   Simulation of the population balances for liquid-liquid systems in a nonideal stirred tank. Part 1 Description and qualitative validation of the model [J].
Alopaeus, V ;
Koskinen, J ;
Keskinen, KI .
CHEMICAL ENGINEERING SCIENCE, 1999, 54 (24) :5887-5899
[3]   Effects of agitation and scale-up on drop size in turbulent dispersions: allowance for intermittency [J].
Baldyga, J ;
Bourne, JR ;
Pacek, AW ;
Amanullah, A ;
Nienow, AW .
CHEMICAL ENGINEERING SCIENCE, 2001, 56 (11) :3377-3385
[4]   Drop break-up in intermittent turbulence: Maximum stable and transient sizes of drops [J].
Baldyga, J ;
Podgorska, W .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1998, 76 (03) :456-470
[5]  
Baldyga J., 1999, TURBULENT MIXING CHE
[6]   MONTE-CARLO SIMULATION OF MASS-TRANSFER IN LIQUID-LIQUID DISPERSIONS [J].
BAPAT, PM ;
TAVLARIDES, LL ;
SMITH, GW .
CHEMICAL ENGINEERING SCIENCE, 1983, 38 (12) :2003-2013
[7]  
BROWN D.A. R., 2004, Handbook of industrial Mixing: Science and Practice, P145, DOI DOI 10.1002/0471451452
[8]   DESCRIPTION OF INTERACTION PROCESSES IN AGITATED LIQUID-LIQUID DISPERSIONS [J].
COULALOGLOU, CA ;
TAVLARIDES, LL .
CHEMICAL ENGINEERING SCIENCE, 1977, 32 (11) :1289-1297
[9]   DROP SIZE DISTRIBUTIONS AND COALESCENCE FREQUENCIES OF LIQUID-LIQUID DISPERSIONS IN FLOW VESSELS [J].
COULALOGLOU, CA ;
TAVLARIDES, LL .
AICHE JOURNAL, 1976, 22 (02) :289-297
[10]  
Crombie R L, 1997, Int J Cosmet Sci, V19, P205, DOI 10.1046/j.1467-2494.1997.171716.x