Pham Van Sang, Li Zirui, Lim Kian Meng, White Jacob K, Han Jongyoon
Singapore-MIT Alliance, National University of Singapore, Singapore.
Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Oct;86(4 Pt 2):046310. doi: 10.1103/PhysRevE.86.046310. Epub 2012 Oct 11.
We present a systematic, multiscale, fully detailed numerical modeling for dynamics of fluid flow and ion transport covering Ohmic, limiting, and overlimiting current regimes in conductance of ion-selective membrane. By numerically solving the Poisson-Nernst-Planck-Navier-Stokes equations, it is demonstrated that the electroconvective instability, arising from the electric field acting upon the extended space charge layer, and the induced strong vortical fluid flow are the dominant factors of the overlimiting current in the planar membrane system. More importantly, at the transition between the limiting and the overlimiting current regimes, hysteresis of electric current is identified. The hysteresis demonstrates the important role of the electroconvective flow in enhancing of current in electrolyte systems with ion-selective membrane.
我们提出了一种系统的、多尺度的、完全详细的数值模型,用于研究离子选择性膜电导中涵盖欧姆、极限和过极限电流状态的流体流动和离子传输动力学。通过数值求解泊松-能斯特-普朗克-纳维-斯托克斯方程,结果表明,作用于扩展空间电荷层的电场引发的电对流不稳定性以及诱导产生的强烈涡旋流体流动是平面膜系统中过极限电流的主要因素。更重要的是,在极限电流状态和过极限电流状态之间的转变过程中,识别出了电流的滞后现象。这种滞后现象表明了电对流在具有离子选择性膜的电解质系统中增强电流方面的重要作用。