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Modeling of a solid oxide electrolysis cell for carbon dioxide electrolysis

机译:用于二氧化碳电解的固体氧化物电解池的建模

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摘要

In this study, two models are developed to investigate the performance of a solid oxide electrolysis cell (SOEC) for CO₂ electrolysis at different levels. The first model is a one-dimensional model which is basing on a previously developed electrochemical model for steam electrolysis and considered all overpotentials in the SOEC. The second model is a two-dimensional thermal-fluid model consisting of the 1D model and a computational fluid dynamics (CFD) model. It is found that the mean electrolyte temperature initially decreases with increasing operating potential, reaches the minimum at about 1.1V and increases considerably with a further increase in potential. At the thermal-neutral voltage (1.463V at 1173 K), the calculated mean electrolyte temperature matches the inlet gas temperature. Increasing the operating potential increases both the local current density and the electrolyte Nernst potential. The electrochemical performance can be improved by increasing the inlet gas velocity from 0.2ms⁻¹ to 1.0ms⁻¹ but further increasing the inlet gas velocity will not considerably enhance the SOEC performance. It is also found that a change of electrode permeability in the order of 10⁻¹⁶m² to 10⁻¹³m² does not noticeably influence the SOEC performance in the present study, due to negligible convection effect in the porous electrodes.
机译:在这项研究中,开发了两个模型来研究固态氧化物电解槽(SOEC)在不同水平下对CO 2电解的性能。第一个模型是一维模型,该模型基于先前开发的用于蒸汽电解的电化学模型,并考虑了SOEC中的所有超电势。第二个模型是一个二维热流体模型,由一维模型和计算流体动力学(CFD)模型组成。已经发现,平均电解质温度起初随着工作电势的增加而降低,在约1.1V时达到最低,并且随着电势​​的进一步增加而显着提高。在热中性电压(1173 K,1.463V)下,计算出的平均电解液温度与进口气体温度匹配。增加工作电势会同时增加局部电流密度和电解质能斯特势能。通过将进口气体速度从0.2ms -1增加到1.0ms -1可以改善电化学性能,但是进一步提高进口气体速度不会显着提高SOEC性能。还发现,由于多孔电极中的对流效应可忽略不计,在本研究中,电极磁导率在10 -1 m 2到10 13 m 2数量级的变化不会显着影响SOEC性能。

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    Ni, M;

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  • 年度 2010
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