A parametric analysis on PEFCs for high-temperature applications

System Administrator, Filip Bojko, Giorge Gemisis, James Mitchell, Christopher Parker
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Abstract

Polymer Electrolyte Fuel Cells (PEFCs) are an increasingly significant facet of modern renewable energy and transportation, providing an electrochemical method of energy generation with high power density, thermal properties, and efficiency. PEFCs tend to increase in efficiency as temperature increases but detrimental effects begin to occur, including membrane degradation and dehydration. These effects are unfavourable in the design of optimised fuel cells as they can result in reduced efficiency and lifetime. Current PEFCs are in a state where they are commercially viable but have a very limited temperature operation region (<80°C). This meta-study analysis presents research around expanding the operational temperatures of PEFCs through a parametric analysis of active cell area, phosphonic acid content, and organic/inorganic fillers. This analysis finds an increase in proton conductivity for PEFCs at higher temperature by using phosphonic acid functionalised membranes with maximised degree of phosphonation (up to 1.5 DP). It was also found that using ionic liquid functionalised carbon materials as fillers was an effective strategy to enhance the proton conductivity of PEFCs in a higher temperature environment while also providing increased thermal stability of the membrane. Additionally, higher thermal efficiency and power density may be achieved by increasing temperature and humidity to maximise proton conductivity towards theoretical maxima dictated by the active cell area, which was found to peak at 36 cm2.
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高温应用pefc的参数分析
聚合物电解质燃料电池(pefc)是现代可再生能源和交通运输中日益重要的一个方面,它提供了一种具有高功率密度、热性能和效率的电化学发电方法。随着温度的升高,pefc的效率趋于提高,但也开始出现不利影响,包括膜降解和脱水。这些影响对优化燃料电池的设计是不利的,因为它们会导致效率和寿命的降低。目前的pefc处于商业上可行的状态,但其温度工作区域非常有限(<80°C)。本meta研究分析通过对活性电池面积、磷酸含量和有机/无机填料的参数分析,介绍了围绕扩大pefc操作温度的研究。该分析发现,在较高温度下,通过使用磷酸功能化膜,最大程度的磷化(高达1.5 DP), pefc的质子电导率增加。研究还发现,使用离子液体功能化碳材料作为填料是一种有效的策略,可以提高pefc在高温环境下的质子导电性,同时还可以提高膜的热稳定性。此外,更高的热效率和功率密度可以通过提高温度和湿度来实现,以最大限度地提高质子电导率,达到由活性电池面积决定的理论最大值,发现活性电池面积的峰值为36 cm2。
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来源期刊
CiteScore
0.80
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2
期刊介绍: Today, nuclear reactors generate nearly one quarter of the electricity in nations representing two thirds of humanity, and other nuclear applications are integral to many aspects of the world economy. Nuclear fission remains an important option for meeting energy requirements and maintaining a balanced worldwide energy policy; with major countries expanding nuclear energy"s role and new countries poised to introduce it, the key issue is not whether the use of nuclear technology will grow worldwide, even if public opinion concerning safety, the economics of nuclear power, and waste disposal issues adversely affect the general acceptance of nuclear power, but whether it will grow fast enough to make a decisive contribution to the global imperative of sustainable development.
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