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Theoretical Analysis of the Stationary Transport of 1:1 Salt Ions in a Cross-Section of a Desalination Channel Taking into Account the Non-Catalytic Dissociation/Recombination Reaction of Water Molecules

机译:脱盐通道横截面横截面中的1:1盐离子的静止运输理论分析考虑到水分子的非催化解离/重组反应

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摘要

In electromembrane systems, the theoretical study of salt ion transport usually uses mathematical models of salt ion transport in the depleted diffusion layer of ion-exchange membranes. This study uses a one-dimensional mathematical model of salt ion transport in a cross-section of a desalination channel formed by anion-exchange and cation-exchange membranes, taking into account an effect of a dissociation/recombination reaction of water molecules. The reaction on the one hand leads to an overlimiting mass transfer due to the effect of exaltation of the limiting current. On the other hand, an appearance of new electric charge carriers (hydrogen and hydroxyl ions) can reduce the space charge that occurs in membranes and suppress an electroconvective mechanism of overlimiting transport. Thus, there is a problem of studying these phenomena together, taking into account their mutual influence, and this article is devoted to the solution of this problem. Theoretically, using a method of mathematical modeling and numerical research, main regularities are established; in particular, it is shown that the dissociation/recombination reaction of water molecules does not lead to the destruction of the double electric layer at the membranes, but also creates a new double electric layer in the middle of the desalination channel. Thus, the space charge and the dissociation/recombination reaction significantly affect each other and simultaneously the transport of salt ions.
机译:在电磁体系中,盐离子转运的理论研究通常使用离子交换膜的耗尽扩散层中的盐离子输送的数学模型。本研究使用由阴离子交换和阳离子交换膜形成的脱盐通道的横截面的盐离子输送的一维数学模型,考虑到水分子的解离/重组反应的效果。由于提升限制电流的效果,一方面的反应导致覆重大的质量转移。另一方面,新的电荷载流子(氢气和羟基)的外观可以减少膜中发生的空间电荷,并抑制覆盖运输的电频道机制。因此,考虑到它们的相互影响,研究了这些现象的问题,并且本文致力于解决这个问题的解决方案。从理论上,使用数学建模和数值研究的方法,建立了主要规律;特别地,示出水分子的解离/重组反应不会导致膜上的双电层破坏,而且在脱盐通道的中间产生新的双电层。因此,空间电荷和解离/重组反应显着影响彼此并同时同时转运盐离子。

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