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High-pressure PEM water electrolysis and corresponding safety issues

机译:高压PEM水电解及相应的安全问题

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摘要

In this paper, safety considerations related to the operation of proton-exchange membrane (PEM) water electrolysers (hydrogen production capacity up to 1 Nm~3/h and operating pressure up to 130 bars) are presented. These results were obtained in the course of the GenHyPEM project, a research program on high-pressure PEM water electrolysis supported by the European Commission. Experiments were made using a high-pressure electrolysis stack designed for operation in the 0-130 bars pressure range at temperatures up to 90 ℃. Besides hazards related to the pressure itself, hydrogen concentration in the oxygen gas production and vice-versa (resulting from membrane crossover permeation effects) have been identified as the most significant risks. Results show that the oxygen concentration in hydrogen at 130 bars can be as high as 2.66 vol %. This is a value still outside the flam-mability limit for hydrogen-oxygen mixtures (3.9-95.8 vol %), but safety measures are required to prevent explosion hazards. A simple model based on the diffusion of dissolved gases is proposed to account for gas cross-permeation effects. To reduce contamination levels, different solutions are proposed. First, thicker membranes can be used. Second, modified or composite membranes with lower gas permeabilities can be used. Third, as reported earlier, external catalytic gas recombiners can be used to promote H_2/O_2 recombination and reduce contamination levels in the gas production. Finally, other considerations related to cell and stack design are also discussed to further reduce operation risks.
机译:本文提出了与质子交换膜(PEM)水电解槽操作有关的安全注意事项(制氢能力高达1 Nm〜3 / h,工作压力高达130 bar)。这些结果是在GenHyPEM项目的过程中获得的,该项目是由欧盟委员会支持的高压PEM水电解研究计划。使用高压电解堆进行实验,该堆设计为在0-130 bar压力范围内,最高温度为90℃的条件下运行。除了与压力本身有关的危害外,氧气生产中的氢气浓度以及反之亦然(由于膜交叉渗透效应所致)也被认为是最重大的风险。结果表明,在130 bar的氢气中氧的浓度可高达2.66 vol%。该值仍超出氢氧混合物的可燃性极限(3.9-95.8体积%),但是需要采取安全措施以防止爆炸危险。提出了一种基于溶解气体扩散的简单模型来说明气体的交叉渗透效应。为了降低污染水平,提出了不同的解决方案。首先,可以使用较厚的膜。第二,可以使用具有较低透气性的改性或复合膜。第三,如前所述,外部催化气体重组器可用于促进H_2 / O_2重组并降低气体生产中的污染水平。最后,还讨论了与电池和电池堆设计有关的其他考虑因素,以进一步降低操作风险。

著录项

  • 来源
    《International journal of hydrogen energy》 |2011年第3期|p.2721-2728|共8页
  • 作者单位

    Hydrogen Energy and Plasma Technology Institute, Russian Research Center "Kurchatou Institute", 123182 Moscow, Kurchatov sq., 1,Federation of Russia;

    Hydrogen Energy and Plasma Technology Institute, Russian Research Center "Kurchatou Institute", 123182 Moscow, Kurchatov sq., 1,Federation of Russia;

    Hydrogen Energy and Plasma Technology Institute, Russian Research Center "Kurchatou Institute", 123182 Moscow, Kurchatov sq., 1,Federation of Russia;

    Hydrogen Energy and Plasma Technology Institute, Russian Research Center "Kurchatou Institute", 123182 Moscow, Kurchatov sq., 1,Federation of Russia;

    Compagnie Europeenne des Technologies de I'Hydrogene, Innou Valley, Route de Nozay, 91460 Marcoussis, France;

    Institut de Chimie Moleculaire et des Materiaux, UMR CNRS n° 8182, Uniuersite Paris Sud 11, bât 410, 91405 Orsay Cedex, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    water electrolysis; hydrogen; high pressure; safety;

    机译:水电解氢气高压安全性;
  • 入库时间 2022-08-18 00:28:50

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