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Potentiodynamic and Galvanodynamic Regimes of Mass Transfer in Flow-Through Electrodialysis Membrane Systems: Numerical Simulation of Electroconvection and Current-Voltage Curve

机译:流通式电渗析膜系统中传质的电位动力学和电流动力学形式:电对流和电流-电压曲线的数值模拟

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摘要

Electromembrane devices are usually operated in two electrical regimes: potentiodynamic (PD), when a potential drop in the system is set, and galvanodynamic (GD), when the current density is set. This article theoretically investigates the current-voltage curves (CVCs) of flow-through electrodialysis membrane systems calculated in the PD and GD regimes and compares the parameters of the electroconvective vortex layer for these regimes. The study is based on numerical modelling using a basic model of overlimiting transfer enhanced by electroconvection with a modification of the boundary conditions. The Dankwerts’ boundary condition is used for the ion concentration at the inlet boundary of the membrane channel. The Dankwerts’ condition allows one to increase the accuracy of the numerical implementation of the boundary condition at the channel inlet. On the CVCs calculated for PD and DG regimes, four main current modes can be distinguished: underlimiting, limiting, overlimiting, and chaotic overlimiting. The effect of the electric field regime is manifested in overlimiting current modes, when a significant electroconvection vortex layer develops in the channel.
机译:电膜装置通常在两种电状态下运行:设置系统中的电势下降时的电动力(PD)和设置电流密度时的电动力(GD)。本文从理论上研究了以PD和GD方案计算的流通式电渗析膜系统的电流-电压曲线(CVC),并比较了这些方案中电对流涡流层的参数。该研究基于数值模型,该模型使用通过对流条件修改的电对流增强的超限传递的基本模型。 Dankwerts的边界条件用于膜通道入口边界处的离子浓度。通过使用Dankwerts条件,可以提高通道入口处边界条件的数值实现精度。在针对PD和DG方案计算的CVC上,可以区分出四种主要的电流模式:欠限,限制,超限和混沌超限。当通道中形成显着的电对流涡流层时,电场机制的影响表现为电流模式的极限。

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