Corrosion behavior and surface structure analysis of pure aluminum immersed in fluoride-sulfate solutions simulating polymer electrolyte membrane fuel cell-produced water

IF 2.6 4区 工程技术 Q3 ELECTROCHEMISTRY Fuel Cells Pub Date : 2024-04-14 DOI:10.1002/fuce.202300015
Md. Ashraful Alam, Aklima Jahan, Eiichi Suzuki, Hitoshi Yashiro
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Abstract

Bipolar plates are the key component in polymer electrolyte membrane fuel cells (PEMFCs), which ensure the low cost of the fuel cell stack and furnish some of the important applications such as distributing the reactant gases, conducting the electrons, and removing the waste heat in PEMFCs. Thus, metallic bipolar plates (BPs), such as aluminum (Al), have attracted immense consideration and afford better performance in different machine-driven applications and mass manufacturing opportunities. In order to increase the corrosion resistance of Al BPs, several methods are used and conducted by scientists. The corrosion behavior and surface structure analysis of pure Al were studied through the immersion process in fluoride-sulfate solutions, assuming its use as BPs in PEMFC-produced water. The open cell voltage, interfacial contact resistance, and polarization tests and the fuel cell operations were performed to evaluate cell voltage, current density, corrosion resistance, and the effect of fluoride and sulfate ions on the BPs in PEMFC. The hydrophobicity character of the surface of Al BPs was observed by the measurement of the wettability test. The atomic force microscopy images were taken to study the surface roughness, which was correlated with the corrosion rates of Al BPs. In addition, the amount of corrosion was calculated after 24–120 h of immersion in fluoride-sulfate solutions. The scanning electron microscopy, transmission electron microscopy, and energy-dispersive X-ray spectroscopy data were analyzed to investigate the surface structure, morphology, and elemental analyses. Thus, the results found in this study revealed that Al-based materials can be suitable for BPs in PEMFCs. Furthermore, it is noticed that the amount of corrosion was influenced by the presence of even a very small amount of fluoride ions present in the PEMFC environment, while it was suppressed efficiently by sulfate ions.

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浸入模拟聚合物电解质膜燃料电池产水的氟化物-硫酸盐溶液中的纯铝的腐蚀行为和表面结构分析
双极板是聚合物电解质膜燃料电池(PEMFC)中的关键部件,可确保燃料电池堆的低成本,并提供一些重要的应用,如在 PEMFC 中分配反应气体、传导电子和去除废热。因此,铝(Al)等金属双极板(BP)引起了广泛的关注,并在不同的机器驱动应用和大规模制造中提供了更好的性能。为了提高铝双极板的耐腐蚀性,科学家们采用了多种方法。假设纯铝用作 PEMFC 生产水中的 BPs,通过在氟化物-硫酸盐溶液中的浸泡过程,研究了纯铝的腐蚀行为和表面结构分析。为了评估 PEMFC 中电池电压、电流密度、耐腐蚀性以及氟离子和硫酸根离子对 BPs 的影响,进行了开电池电压、界面接触电阻和极化测试以及燃料电池操作。通过润湿性测试,观察了 Al BPs 表面的疏水性。通过原子力显微镜图像研究了表面粗糙度,该粗糙度与 Al BPs 的腐蚀速率相关。此外,还计算了在氟化物-硫酸盐溶液中浸泡 24-120 小时后的腐蚀量。通过分析扫描电子显微镜、透射电子显微镜和能量色散 X 射线光谱数据,研究了表面结构、形态和元素分析。因此,本研究的结果表明,铝基材料适用于 PEMFC 中的 BP。此外,研究还发现,即使 PEMFC 环境中存在极少量的氟离子,腐蚀量也会受到影响,而硫酸根离子则能有效抑制腐蚀。
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来源期刊
Fuel Cells
Fuel Cells 工程技术-电化学
CiteScore
5.80
自引率
3.60%
发文量
31
审稿时长
3.7 months
期刊介绍: This journal is only available online from 2011 onwards. Fuel Cells — From Fundamentals to Systems publishes on all aspects of fuel cells, ranging from their molecular basis to their applications in systems such as power plants, road vehicles and power sources in portables. Fuel Cells is a platform for scientific exchange in a diverse interdisciplinary field. All related work in -chemistry- materials science- physics- chemical engineering- electrical engineering- mechanical engineering- is included. Fuel Cells—From Fundamentals to Systems has an International Editorial Board and Editorial Advisory Board, with each Editor being a renowned expert representing a key discipline in the field from either a distinguished academic institution or one of the globally leading companies. Fuel Cells—From Fundamentals to Systems is designed to meet the needs of scientists and engineers who are actively working in the field. Until now, information on materials, stack technology and system approaches has been dispersed over a number of traditional scientific journals dedicated to classical disciplines such as electrochemistry, materials science or power technology. Fuel Cells—From Fundamentals to Systems concentrates on the publication of peer-reviewed original research papers and reviews.
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