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Theoretical analysis of the effects of operational and designed parameters on the performance of a flow-through porous electrode

机译:对工作参数和设计参数对流通式多孔电极性能影响的理论分析

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摘要

A two-dimensional mathematical model for a now-through porous electrode, in which the electrolyte flow is perpendicular to the current flow, is presented in this paper. In order to study the effects of ohmic resistance, mass transfer and kinetics on the performance of the porous electrode, a set of dimensionless parameters were imported into the model equations. The results reveal that lower ohmic resistance lead to a more uniform current density distribution, which will get a higher utilization of the electrode; an enhancement in convective mass transport will increase the reaction rate, but the increase is in a diminishing manner due to the limit of diffusion rate, so that the effective reaction layer will get thinner until to a limited value; an increase of local mass transfer coefficient will increase the reaction rate and make the effective reaction layer thinner; and the longer the electrode is, the worse the concentration polarization will be. The model could help to guide the rational design of the porous electrode and the operating parameters.
机译:本文提出了一种用于多孔电极的二维数学模型,其中电解质流与电流垂直。为了研究欧姆电阻,传质和动力学对多孔电极性能的影响,将一组无量纲参数导入模型方程。结果表明,较低的欧姆电阻导致更均匀的电流密度分布,这将提高电极的利用率。对流传质的增强将增加反应速率,但是由于扩散速率的限制,这种增加以递减的方式发生,从而有效的反应层将变薄直到极限值。局部传质系数的增加将增加反应速率并使有效反应层更薄。电极越长,浓度极化越差。该模型有助于指导多孔电极的合理设计和工作参数。

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