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首页> 外文期刊>Journal of Applied Electrochemistry >Maxwell-Stefan model of multicomponent ion transport inside a monolayer Nafion membrane for intensified chlor-alkali electrolysis
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Maxwell-Stefan model of multicomponent ion transport inside a monolayer Nafion membrane for intensified chlor-alkali electrolysis

机译:麦克斯韦尔 - 斯蒂芬模型在单层Nafion膜内的多组分离子输送,用于加强氯碱电解

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摘要

A mathematical model based on a generalized Maxwell-Stefan equation has been developed to describe multicomponent ion and water transport inside a cation-exchange membrane. This model has been validated using experimental data and has been used to predict concentration profiles, membrane potential drop, and transport numbers of ions and water for the chlor-alkali process at increased current densities. Several improvements have been made to previously developed Maxwell-Stefan models. In our model, the generalized Maxwell-Stefan equation is written in terms of concentration instead of mole fraction and the fixed group (membrane) concentration is assumed to be constant. We have adapted the Augmented matrix method using the built-in partial differential equation parabolic elliptic (pdepe) solver in Matlab (R), and both the concentration and the electrical potential gradients have been solved simultaneously. The boundary conditions are determined with the Donnan equilibrium at the membrane-solution interface. We have also employed semi-empirical correlations to define the Maxwell-Stefan diffusivities inside the membrane. For the bulk diffusivities, we applied the correlations for the concentrated solution instead of the values at infinite dilution. With the diffusivities presented in this work, the model shows a better fit to the experimental data than with previously reported fitted diffusivities. Prediction of the sodium transport number and water transport number is generally good, whereas the deviations with regard to membrane potential might also be related to issues with the experimental data. The model predicts an increase in both sodium and water transport numbers at increased current density operation of chlor-alkali production.
机译:已经开发了一种基于广义麦克斯韦 - Stefan方程的数学模型来描述阳离子交换膜内的多组分离子和水输送。该模型已经使用实验数据验证,并且已经用于预测浓度曲线,膜势下降和在增加电流密度下的氯碱过程的离子和水的运输数量。已经提出了几种改进,以前开发了Maxwell-Stefan模型。在我们的模型中,通过浓度代替摩尔分数来编写广义的Maxwell-Stefan方程,并且假设固定基团(膜)浓度是恒定的。我们已经使用Matlab(R)中的内置部分微分方程抛物杠(PDEPE)求解器改编了增强矩阵方法,并且浓度和电势梯度都已同时解决。用膜 - 溶液界面的Donnan平衡确定边界条件。我们还采用了半经验相关性来定义膜内的Maxwell-Stefan扩散性。对于散装扩散性,我们应用浓缩溶液的相关性,而不是无限稀释的值。利用本作作品中呈现的扩散性,该模型显示出比先前报告的拟合扩散性更好地适合实验数据。预测钠运输号码和水运输数通常是良好的,而关于膜电位的偏差也可能与实验数据的问题有关。该模型预测氯碱产量增加的电流密度运算下的钠和水运输数量增加。

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