Novel electrochemical and thermodynamic conditioning approaches and their evaluation for open cathode PEM-FC stacks

阴极 电化学 材料科学 化学工程 化学 工程类 电气工程 电极 物理化学
作者
Florian Becker,Carsten Cosse,Christoph Gentner,Detlef Schulz,L. Liphardt
出处
期刊:Applied Energy [Elsevier BV]
卷期号:363: 123048-123048 被引量:3
标识
DOI:10.1016/j.apenergy.2024.123048
摘要

The Air cooled and open cathode proton exchange fuel cell (PEMFC) offers particular advantages in terms of \ncomplexity and weight reduction. Therefore, it seems very attractive to support the aviation industry in their \ndecarbonisation process. Major challenges in terms of operational stability and reliability hinders this technology to be used in commercial applications. \nTherefore, this study thoroughly examines the conditioning and optimization of open cathode PEMFC stacks, \ndrawing insights from experimental findings. Key areas of focus include the enduring impact of prehumidification, the quantification of efficiency enhancements through reconditioning via oxygen starvation, \nand the refinement of Electrochemical Impedance Spectroscopy (EIS) data analysis under non-stationary \nconditions. \nThe pre-humidification enhances stack performance by improving cell voltages from 40.09 V to 41.37 V at 30 \nA, increasing membrane humidity and improving efficiency. Furthermore, the residual water in the stack also \nfunctions as evaporative cooling and can assist in limiting the operating temperature of the stack during system \nstart up. However, it is demonstrated that excessive soaking with water leads to severe flooding phenomena at \nthe beginning of operation. \nA reconditioning period of 100 s through oxygen starvation induces a notable increase in stack voltage, from \n41.37 V to 47.79 V at 35 A, which decreases to 43.56 V after 10 min of operation. This corresponds to an average \nincrease in electric energy provision of about 6.2% at constant hydrogen consumption, attributed to PtOx \nreduction and increased water production. \nDespite limitations outside the medium frequency range (approximately 10 Hz - 15 kHz) for non-stationary \nconditions, EIS aids in understanding of the stack behaviour and supports the interpretation of current and \nvoltage results. A novel evaluation method enables the quantitative description of the condition using EIS data. \nThis data reveals a considerable drop (on average about 21,5% for the 10 A point and about 27,4% for the 30 A \npoint) in charge transfer resistances of the fuel cell from initial operation to measurements after overnight \nsoaking and the first series of oxygen starvation recovery.
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