固体氧化物电解系统的降解模型:运行模式比较分析

IF 7.1 Q1 ENERGY & FUELS
Javid Beyrami, Rafael Nogueira Nakashima, Arash Nemati, Henrik Lund Frandsen
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引用次数: 0

摘要

要充分发挥固体氧化物电解(SOE)系统的潜力,就必须提高其长期耐用性和可扩展性。研究和比较不同条件下的不同降解机制至关重要。本文介绍了一个多尺度电池到系统级时间依赖性模拟框架,用于模拟包括各种降解现象在内的 SOE 系统。研究了电位静态、电位静态和电位-电位静态运行(前两种模式的组合)。比较了各种性能和降解参数的时间和空间演变。电位-恒压运行在整个寿命期间始终保持着稳定的效率。电位静态和电位-电位静态工作时保持接近热中性的状态,而在电位-电位静态模式下,退化最终导致放热工作。阴极过电位在电位静态工作时较高,而在电位静态工作时,随着温度的升高,阴极过电位会逐渐降低。在规定条件下工作 25,000 小时后,电位静态和电位静态工作模式下的特定区域电阻 (ASR) 分别增加了 51% 和 62%,而电位静态工作模式下的特定区域电阻 (ASR) 与寿命开始时相比仅增加了 4%。在电位-静电模式下,互连氧化最为明显,这突出表明在这种运行策略中需要高质量的钢材和涂层。随着时间的推移,在 Galvanostatic 运行模式下,电流密度从入口处最高转向出口处最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Degradation modeling in solid oxide electrolysis systems: A comparative analysis of operation modes

To fully realize the potential of solid oxide electrolysis (SOE) systems, improvements in long-term durability and scalability are required. Investigating and comparing different degradation mechanisms under different conditions is crucial. A multi-scale cell to system level time-dependent simulation framework for SOE systems including various degradation phenomena is presented. Galvanostatic, Potentiostatic, and Potentio-Galvanostatic operation, a combination of the two previous modes, are investigated. The time and space evolution of various performance and degradation parameters are compared. Potentio-Galvanostatic operation consistently maintains stable efficiency throughout its lifetime. Near thermoneutral condition is maintained in Potentiostatic and Potentio-Galvanostatic operations, while degradation eventually leads to exothermic operation in Galvanostatic mode. Cathode overpotential is higher in Galvanostatic operation, while in Potentio-Galvanostatic operation, it drops over time as the temperature increases. After 25,000 h of operation under specified conditions, the area-specific resistance (ASR) experiences a 51% and 62% increase in Galvanostatic and Potentiostatic operations, respectively, while Potentio-Galvanostatic operation results in only a 4% increase compared to the beginning of life. Interconnect oxidation is most pronounced in Potentio-Galvanostatic mode, highlighting the need for high-quality steels and coatings in this operation strategy. Over time, in Galvanostatic operation, the current density shifts from being highest at the inlet towards the outlet.

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来源期刊
CiteScore
8.80
自引率
3.20%
发文量
180
审稿时长
58 days
期刊介绍: Energy Conversion and Management: X is the open access extension of the reputable journal Energy Conversion and Management, serving as a platform for interdisciplinary research on a wide array of critical energy subjects. The journal is dedicated to publishing original contributions and in-depth technical review articles that present groundbreaking research on topics spanning energy generation, utilization, conversion, storage, transmission, conservation, management, and sustainability. The scope of Energy Conversion and Management: X encompasses various forms of energy, including mechanical, thermal, nuclear, chemical, electromagnetic, magnetic, and electric energy. It addresses all known energy resources, highlighting both conventional sources like fossil fuels and nuclear power, as well as renewable resources such as solar, biomass, hydro, wind, geothermal, and ocean energy.
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