Performance modelling of intermediate temperature solid oxide cells applied as electrochemical air separation unit

IF 5.5 Q1 ENGINEERING, CHEMICAL
Fiammetta Rita Bianchi, Barbara Bosio
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引用次数: 0

Abstract

Oxygen production is a highly energy-consuming process, above all at the required purity increase. The state-of-the-art application consists of cryogenic distillation widely used for a high production scale, while the adsorption and polymeric membrane technologies are more convenient for low demands without reaching the performance of the first yet. Solid oxide cells are a promising alternative since the performance in terms of the energy demand and the purity degree is independent from the system capacity, making them suitable for several application fields. Nevertheless, the technology readiness level is still too low for commercial use, requiring further improvements on material performance and durability, cell design and process management. Performing a detailed multiscale feasibility analysis, the work discusses the use of planar stacked cells working at intermediate temperatures and atmospheric pressure. High-performing co-doped double perovskite electrodes allow for optimising the separation kinetics. At the air side, the molecular oxygen dissociates through an externally applied potential into ions that migrate inside a highly anionic conductive electrolyte and reconvert to O2 at the pure oxygen side.
氧气生产是一种高耗能工艺,尤其是在要求提高纯度的情况下。最先进的应用包括广泛用于高生产规模的低温蒸馏技术,而吸附和聚合膜技术则更便于满足低需求,但尚未达到前者的性能。固体氧化物电池是一种很有前途的替代技术,因为它在能量需求和纯度方面的性能与系统容量无关,因此适用于多个应用领域。然而,由于技术准备水平仍然太低,无法投入商业使用,因此需要进一步改进材料性能和耐用性、电池设计和工艺管理。本研究进行了详细的多尺度可行性分析,讨论了在中等温度和大气压力下使用平面叠层电池的问题。高性能的共掺杂双包晶石电极可以优化分离动力学。在空气一侧,分子氧通过外部施加的电势解离成离子,这些离子在高阴离子导电电解质中迁移,并在纯氧一侧重新转化为氧气。
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
Chemical Engineering Journal Advances
Chemical Engineering Journal Advances Engineering-Industrial and Manufacturing Engineering
CiteScore
8.30
自引率
0.00%
发文量
213
审稿时长
26 days
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