Department of Mechanical Engineering, Stanford University, CA, USA.
Electrophoresis. 2012 Oct;33(19-20):3036-51. doi: 10.1002/elps.201200264. Epub 2012 Sep 20.
We present a model and an associated numerical scheme to simulate complex electrokinetic processes in channels with nonuniform cross-sectional area. We develop a quasi-1D model based on local cross-sectional area averaging of the equations describing unsteady, multispecies, electromigration-diffusion transport. Our approach uses techniques of lubrication theory to approximate electrokinetic flows in channels with arbitrary variations in cross-section; and we include chemical equilibrium calculations for weak electrolytes, Taylor-Aris type dispersion due of nonuniform bulk flow, and the effects of ionic strength on species mobility and on acid-base equilibrium constants. To solve the quasi-1D governing equations, we provide a dissipative finite volume scheme that adds numerical dissipation at selective locations to ensure both unconditional stability and high accuracy. We couple the numerical scheme with a novel adaptive grid refinement algorithm that further improves the accuracy of simulations by minimizing numerical dissipation. We benchmark our numerical scheme with existing numerical schemes by simulating nonlinear electrokinetic problems, including ITP and electromigration dispersion in CZE. Simulation results show that our approach yields fast, stable, and high-resolution solutions using an order of magnitude less grid points compared to the existing dissipative schemes. To highlight our model's capabilities, we demonstrate simulations that predict increase in detection sensitivity of ITP in converging cross-sectional area channels. We also show that our simulations of ITP in variable cross-sectional area channels have very good quantitative agreement with published experimental data.
我们提出了一个模型和相关的数值方案,以模拟具有非均匀横截面的通道中的复杂电动过程。我们基于描述非稳态、多组分、电泳扩散输运的方程,通过局部横截面平均法开发了一个准一维模型。我们的方法使用润滑理论技术来近似具有任意截面变化的通道中的电动流;我们还包括对弱电解质的化学平衡计算、由于非均匀体流引起的泰勒-阿里斯型弥散以及离子强度对物种迁移率和酸碱平衡常数的影响。为了解决准一维控制方程,我们提供了一个耗散有限体积方案,该方案在选择性位置添加数值耗散,以确保无条件稳定性和高精度。我们将数值方案与一种新颖的自适应网格细化算法耦合,通过最小化数值耗散进一步提高模拟的准确性。我们通过模拟非线性电动问题,包括 CZE 中的 ITP 和电泳弥散,用现有的数值方案对我们的数值方案进行了基准测试。模拟结果表明,与现有的耗散方案相比,我们的方法使用数量级更少的网格点即可快速、稳定、高分辨率地求解。为了突出我们模型的功能,我们展示了预测在会聚横截面通道中 ITP 检测灵敏度增加的模拟。我们还表明,我们对变横截面通道中的 ITP 的模拟与已发表的实验数据非常吻合。