不同结构固体氧化物燃料电池多孔阳极中甲烷蒸汽传输的孔隙尺度研究

IF 8.1 2区 工程技术 Q1 CHEMISTRY, PHYSICAL Journal of Power Sources Pub Date : 2024-11-19 DOI:10.1016/j.jpowsour.2024.235881
Xiaoxing Yang , Guogang Yang , Hao Wang , Zhuangzhuang Xu , Shengzheng Ji , Han Sun , He Miao , Jinliang Yuan
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摘要

为了模拟使用甲烷蒸汽的固体氧化物燃料电池(SOFC)多孔阳极中的多组分质量传输,我们开发了一种孔隙尺度的晶格玻尔兹曼(LB)模型。在该模型中,通过四元结构生成集方法重建了不同的孔隙率、碳沉积和阳极微结构梯度,并深入研究了它们对甲烷蒸汽局部分布的定性和定量影响。研究明确了阳极微结构与传质之间的关系。结果表明,阳极微观结构中的局部孔隙率对传质有重大影响。通过将阳极结构改造成梯度电极,可以有效增强传质效果,并减缓碳沉积。LB 模型和本研究的发现对于开发抗碳沉积的阳极结构至关重要。
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Pore-scale investigation of methane steam transport in porous anodes of solid oxide fuel cells with varying structures
A pore-scale Lattice Boltzmann (LB) model has been developed to simulate multi-component mass transport in the porous anodes of solid oxide fuel cells (SOFCs) operating with methane steam. In this model, different porosities, carbon depositions, and gradients of anode microstructures are reconstructed through quartet structure generation set methods, and their impact on the local distribution of methane steam is thoroughly investigated both qualitatively and quantitatively. The relationship between anode microstructures and mass transfer has been clearly established. The results demonstrate that the localized porosity within the anode microstructure has a significant impact on mass transport. By modifying the anode structure into a gradient electrode, the transport effect can be effectively enhanced, and carbon deposition is slowed down. The LB model and the findings of this study are crucial for developing anode structures resistant to carbon deposition.
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来源期刊
Journal of Power Sources
Journal of Power Sources 工程技术-电化学
CiteScore
16.40
自引率
6.50%
发文量
1249
审稿时长
36 days
期刊介绍: The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells. Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include: • Portable electronics • Electric and Hybrid Electric Vehicles • Uninterruptible Power Supply (UPS) systems • Storage of renewable energy • Satellites and deep space probes • Boats and ships, drones and aircrafts • Wearable energy storage systems
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