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Numerical simulation of gas-diffusion-electrodes with moving gas-liquid interface: A study on pulse-current operation and electrode flooding

机译:气液界面移动的扩散电极的数值模拟:脉冲电流操作和电极溢流研究

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In gas-diffusion-electrodes of electrochemical systems, the interface between gas and liquid electrolyte can move with operation time. It is challenging to mathematically assess moving interfaces, especially if the transient and spatial distribution of species are of interest. We mathematically model a gas-diffusion-electrode and apply a finite volume method with moving grid to solve the model equations. The step-size of the finite volume method is coupled to the moving gas-liquid interface, which is coupled to the current density applied. In detail, we study pulse-current operation and flooding of the electrode, and investigate parameters that influence the oxygen distribution in the electrode. The results obtained emphasize the benefit of the moving grid method applied. This method is able to assess the accurate diffusion resistance for oxygen in the gas-diffusion-electrode. Based on this work, possible limitations of gas-diffusion-electrodes can be derived for their usage in metal air batteries.
机译:在电化学系统的气体扩散电极中,气体和液体电解质之间的界面会随着操作时间而移动。数学上评估运动界面是一项挑战,特别是在物种的瞬时和空间分布受到关注的情况下。我们对气体扩散电极进行数学建模,并应用带有移动网格的有限体积方法来求解模型方程。有限体积方法的步长大小与移动的气液界面有关,后者与所施加的电流密度有关。详细地,我们研究脉冲电流操作和电极的溢流,并研究影响电极中氧分布的参数。获得的结果强调了应用移动网格方法的好处。该方法能够评估氧气在气体扩散电极中的准确扩散阻力。基于这项工作,可以得出气体扩散电极在金属空气电池中的使用可能受到的限制。

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