Keh Huan J, Wei Yeu K
Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan 106-17, ROC.
J Colloid Interface Sci. 2002 Aug 15;252(2):354-64. doi: 10.1006/jcis.2002.8483.
The steady diffusioosmotic and electroosmotic flows of an electrolyte solution in the fibrous porous medium constructed by a homogeneous array of parallel charged circular cylinders are analyzed under conditions of small Peclet and Reynolds numbers. The imposed electrolyte concentration gradient or electric field is constant and can be oriented arbitrarily with respect to the axes of the cylinders. The thickness of the electric double layers surrounding the cylinders is assumed to be small relative to the radius of the cylinders and to the gap width between two neighboring cylinders, but the polarization effect of the diffuse ions in the double layers is incorporated. Through the use of a unit cell model, the appropriate equations of conservation of the electrochemical potential energies of ionic species and the fluid momentum are solved for each cell, in which a cylinder is envisaged to be surrounded by a coaxial shell of the fluid. Analytical expressions for the diffusioosmotic and electroosmotic velocities of the bulk electrolyte solution as functions of the porosity of the ordered array of cylinders are obtained in closed form for various cases. Comparisons of the results of the cell model with different conditions at the outer boundary of the cell are made. In the limit of maximum porosity, these results can be interpreted as the diffusiophoretic and electrophoretic velocities of an isolated circular cylinder caused by the imposed electrolyte concentration gradient or electric field.
在小佩克莱数和雷诺数条件下,分析了由均匀排列的平行带电圆柱体构成的纤维多孔介质中电解质溶液的稳态扩散渗透流和电渗流。施加的电解质浓度梯度或电场是恒定的,并且可以相对于圆柱体的轴线任意定向。假设围绕圆柱体的双电层厚度相对于圆柱体半径和两个相邻圆柱体之间的间隙宽度较小,但考虑了双电层中扩散离子的极化效应。通过使用单胞模型,针对每个单胞求解离子物种的电化学势能和流体动量的适当守恒方程,其中设想一个圆柱体被流体的同轴壳包围。对于各种情况,以封闭形式获得了作为圆柱体有序阵列孔隙率函数的本体电解质溶液的扩散渗透速度和电渗速度的解析表达式。对单胞模型在单胞外边界不同条件下的结果进行了比较。在最大孔隙率的极限情况下,这些结果可以解释为由施加的电解质浓度梯度或电场引起的孤立圆柱体的扩散泳动速度和电泳速度。