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An approximate analytical model of reduction of carbon dioxide in solid oxide electrolysis cell by regular and singular perturbation methods

机译:常规和奇异摄动法还原固体氧化物电解槽中二氧化碳的近似分析模型

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摘要

The objective of this study was to describe the behaviour of carbon dioxide reduction in Solid Oxide Electrolysis Cell (SOEC) in an easy way, so that it can be further applied to cell unit analysis. In this article, an approximate analytical model was established. Concentration overpotential, activation overpotential and Ohmic overpotential were carefully expressed. Regular perturbation method (RPM) was firstly used to get implicit solutions. Then singular perturbation method (SPM) was further developed. Combining RPM and SPM, explicit solutions describing gas concentration and overpotential distributions along electrode were accessible. Calculating time was largely saved, with clear and concise expressions of electrochemical process. Similar to fluid boundary, by comparing ionic current to operating current, a precise description of electrochemical reaction boundary layer (approximate 6%-11% electrode) was developed. It gave us a deeper understanding of the mechanism where electrochemical reaction happens and how it is influenced in SOEC. Using similar analytical models, comparisons of overpotential and ionic current distribution, gas concentration distribution between Solid Oxide Fuel Cell (SOFC) and SOEC in a CO_2-CO binary system were given, with ratio of reactant/product varying from 0.5 to 2.0. Meanwhile, analysis on important impact factors through analytical way in SOEC system, such as current density (from 0 to 0.3 A cm~(-2)), temperature (973 K and 1073 K), triple phase boundary (TPB), was provided.
机译:这项研究的目的是以一种简单的方式描述二氧化碳在固体氧化物电解池(SOEC)中的还原行为,以便可以将其进一步应用于电池单元分析。在本文中,建立了一个近似的分析模型。浓度超电势,活化超电势和欧姆超电势被仔细地表达。首先使用规则扰动法(RPM)来获得隐式解。然后进一步发展了奇摄动法(SPM)。结合RPM和SPM,可得到描述气体浓度和沿电极的超电势分布的明确解决方案。计算时间被大大节省,电化学过程的表述简洁明了。与流体边界相似,通过将离子电流与工作电流进行比较,对电化学反应边界层(约6%-11%的电极)进行了精确描述。它使我们对电化学反应发生的机理及其在SOEC中的影响有更深入的了解。使用相似的分析模型,比较了在CO_2-CO二元系统中固体氧化物燃料电池(SOFC)和SOEC之间的过电势和离子电流分布,气体浓度分布,反应物/产物的比率在0.5到2.0之间变化。同时,通过分析方法对SOEC系统中的重要影响因素进行了分析,例如电流密度(从0到0.3 A cm〜(-2),温度(973 K和1073 K),三相边界(TPB))。 。

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