Wang Moran, Wang Jinku, Chen Shiyi, Pan Ning
Department of Biological and Agricultural Engineering, University of California, Davis, CA 95616, USA.
J Colloid Interface Sci. 2006 Dec 1;304(1):246-53. doi: 10.1016/j.jcis.2006.08.050. Epub 2006 Aug 30.
The electrokinetic pumping characteristics of nanoscale charged porous media packed in microchannels are investigated using a mesoscopic evolution method. When the pore size of porous media is comparable to the thickness of electric double layer, the effects of particle surface potentials on the bulk electric potential distribution will not be negligible. The lattice Poisson-Boltzmann method provides an accurate numerical solution for such problems, which combines two sets of lattice evolution methods solving the nonlinear Poisson-Boltzmann equation for electric potential distribution and the Navier-Stokes equations for fluid flow, respectively. The effects of the finite particle size, the bulk ionic concentration, the external electric field strength and the surface potentials on the electroosmotic micropump performances are therefore studied. The results show that for a certain porosity the maximum pumping pressure is inversely proportional to the particle diameter and the flow rate under zero pressure drop increases with the particle size. The pumping flow rate decreases with the backpressure yet increases with the external electric field strength, linearly respectively. The averaged flow rate increases with the bulk ionic concentration and the particle surface potential, but is slightly influenced by the surface potentials of channel walls. The numerical results agree with the published experimental data while some results deviate from the predictions based on the macroscopic linear assumptions.
采用介观演化方法研究了微通道中填充的纳米级带电多孔介质的电动泵特性。当多孔介质的孔径与双电层厚度相当时,颗粒表面电势对体电势分布的影响不可忽略。格子泊松-玻尔兹曼方法为这类问题提供了精确的数值解,它结合了两组格子演化方法,分别求解电势分布的非线性泊松-玻尔兹曼方程和流体流动的纳维-斯托克斯方程。因此,研究了有限颗粒尺寸、体离子浓度、外部电场强度和表面电势对电渗微泵性能的影响。结果表明,对于一定的孔隙率,最大泵送压力与颗粒直径成反比,零压降下的流速随颗粒尺寸增大而增加。泵送流速随背压降低而减小,但随外部电场强度增加而增加,分别呈线性关系。平均流速随体离子浓度和颗粒表面电势增加而增加,但受通道壁表面电势的影响较小。数值结果与已发表的实验数据一致,而一些结果与基于宏观线性假设的预测有所偏差。