Numerical Simulation of Ethanol-Water-NaCl Droplet Evaporation

被引:22
作者
Jiang, Xingmao [1 ,2 ]
Ward, Timothy L. [1 ,2 ]
van Swol, Frank [3 ]
Brinker, C. Jeffrey [1 ,2 ,3 ]
机构
[1] Univ New Mexico, Dept Chem & Nucl Engn, Albuquerque, NM 87106 USA
[2] Univ New Mexico, Ctr Microengineered Mat, Albuquerque, NM 87106 USA
[3] Sandia Natl Labs, Albuquerque, NM 87185 USA
关键词
LIQUID-SOLID EQUILIBRIA; EXTENDED UNIQUAC MODEL; AQUEOUS SALT SYSTEMS; POTASSIUM-CHLORIDE; SODIUM-CHLORIDE; AEROSOL; PREDICTION; NONELECTROLYTES; SOLUBILITIES; ELECTROLYTE;
D O I
10.1021/ie902042z
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A quantitative description of droplet evaporation is important to aerosol research for nanofabrication, spray drying, fuel combustion, pollution control, and respiratory medical treatments. Evaporation is a moving-boundary problem with coupled mass and heat transport. An explicit finite-difference methodology and computer code has been developed for simulation of an evolving droplet, property data for size, and profiles for various compositions and temperature. The code accurately predicts the evaporation of pure water and pure ethanol droplets. To understand aerosol-assisted evaporation-induced self-assembly and the formation mechanism for single-crystal NaCl core/hexagonally ordered mesoporous silica shell particles, evaporation of ethanol-water-NaCl droplets in N-2 has been investigated by numerical simulation. The extended universal quasichemical (UNIQUAC) model with a Debye-Huckel term is used to describe the vapor liquid phase equilibrium. For 1-2-mu m-radius droplets with a number density of 10(7)similar to 10(8)/cm(3), it takes only tens of milliseconds to reach phase equilibrium after adiabatic or isothermal evaporation at 25 degrees C in the drying zone. The droplets entering a heating zone can be simply treated like a single-stage flash evaporation at 25 C. For a 1-mu um-radius droplet, after 0.18 ms of evaporation at 100 degrees C in N-2, the NaCl saturation ratio reaches levels as high as 1.3, first at the droplet center, where the initial NaCl nucleation and crystallization happens as a result of relatively quick evaporation and a steep gradient in the concentration of ethanol, an antisolvent for NaCl. NaCl crystallization "consumes" NaCl molecules near the droplet center and quenches the formation of new stable NaCl nuclei, favoring the formation of only one single-crystal NaCl core per droplet. The code provides guidance for the custom engineering of aerosol nanoparticle architectures.
引用
收藏
页码:5631 / 5643
页数:13
相关论文
共 46 条
[21]  
JIANG XM, 2008, Patent No. 0210053
[22]  
Kammler HK, 2001, CHEM ENG TECHNOL, V24, P583, DOI 10.1002/1521-4125(200106)24:6<583::AID-CEAT583>3.0.CO
[23]  
2-H
[24]  
Kodas T.T., 1999, AEROSOL PROCESSING M
[25]  
Lide D. R., 1996, CRC Handbook of Chemistry and Physics
[26]   Combustion aerosols: Factors governing their size and composition and implications to human health [J].
Lighty, JS ;
Veranth, JM ;
Sarofim, AF .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2000, 50 (09) :1565-1618
[27]   Electrostatically Mediated Liposome Fusion and Lipid Exchange with a Nanoparticle-Supported Bilayer for Control of Surface Charge, Drug Containment, and Delivery [J].
Liu, Juewen ;
Jiang, Xingmao ;
Ashley, Carlee ;
Brinker, C. Jeffrey .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (22) :7567-+
[28]   Porous Nanoparticle Supported Lipid Bilayers (Protocells) as Delivery Vehicles [J].
Liu, Juewen ;
Stace-Naughton, Alison ;
Jiang, Xingmao ;
Brinker, C. Jeffrey .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (04) :1354-+
[29]   Aerosol-assisted self-assembly of mesostructured spherical nanoparticles [J].
Lu, YF ;
Fan, HY ;
Stump, A ;
Ward, TL ;
Rieker, T ;
Brinker, CJ .
NATURE, 1999, 398 (6724) :223-226
[30]   CERAMIC POWDER SYNTHESIS BY SPRAY-PYROLYSIS [J].
MESSING, GL ;
ZHANG, SC ;
JAYANTHI, GV .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1993, 76 (11) :2707-2726