Modelling of solid oxide cell oxygen electrodes

IF 7 3区 材料科学 Q1 ENERGY & FUELS
Silvère Panisset, M. Burriel, J. Laurencin, D. Jauffrès
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引用次数: 1

Abstract

Numerical models are versatile tools to study and predict efficiently the performance of solid oxide cells (SOCs) according to their microstructure and composition. As the main contribution to the cell polarisation is due to the oxygen electrode, a large part of the proposed models has been focused on this electrode. Electrode modelling aims to improve the SOCs performance by serving as a guide for the microstructural optimisation, and helps to better understand the electrochemical reaction mechanisms. For studying the electrode microstructure, three categories of models can be distinguished: homogenised models, simplified geometry based models, and reconstructed microstructure based models. Most models are based on continuum physics, while elementary kinetic models have been developed more recently. This article presents a review of the existing SOCs models for the oxygen electrode. As a perspective, the current challenges of electrode modelling are discussed in views of a better prediction of the performance and durability, and more specifically for the case of thin-film SOCs.
固体氧化物电池氧电极的建模
数值模型是根据固体氧化物电池的微观结构和成分有效研究和预测其性能的通用工具。由于对细胞极化的主要贡献是由于氧电极,因此所提出的模型的很大一部分都集中在该电极上。电极建模旨在通过指导微观结构优化来提高SOC的性能,并有助于更好地理解电化学反应机制。为了研究电极微观结构,可以区分三类模型:均匀化模型、基于简化几何结构的模型和基于重构微观结构的模型。大多数模型都是基于连续介质物理学,而基本动力学模型是最近才开发出来的。本文对现有的氧电极SOC模型进行了综述。从一个角度来看,从更好地预测性能和耐久性的角度,特别是薄膜SOC的角度,讨论了电极建模的当前挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
10.90
自引率
1.40%
发文量
58
期刊介绍: The Journal of Physics-Energy is an interdisciplinary and fully open-access publication dedicated to setting the agenda for the identification and dissemination of the most exciting and significant advancements in all realms of energy-related research. Committed to the principles of open science, JPhys Energy is designed to maximize the exchange of knowledge between both established and emerging communities, thereby fostering a collaborative and inclusive environment for the advancement of energy research.
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