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Description and characterization of an electrochemical hydrogen compressor/concentrator based on solid polymer electrolyte technology

机译:基于固体聚合物电解质技术的电化学氢气压缩机/浓缩器的描述和特性

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摘要

Proton-exchange membrane (PEM) technology is commonly used for manufacturing water electrolysers, H_2/O_2 fuel cells and unitized regenerative fuel cells. It can also be used to develop electrochemical compressors, for the purpose of concentrating and/or pressurizing gaseous hydrogen. The aim of the work reported here was to evaluate the main operating characteristics of a laboratory scale (=10 N liter/h) monocell compressor. The role of various operating parameters (current density, temperature of electrochemical cell, water vapor partial pressure in the hydrogen feed gas, anodic gas composition, etc.) has been evaluated and is discussed. It is shown that the relative humidity of hydrogen oxidized at the anode of the compressor should be adapted to the current density during operation to avoid mass transfer limitations or electrode flooding. A cell voltage of 140 mV is required at 0.2 A cm~(-2) to compress hydrogen in one step from atmospheric pressure up to 48 bar, corresponding to an energy consumption of ca. 0.3 kW h/Nm~3. Experiments have been performed up to 130 bar. Series connection of several compressors is recommended to reach output pressures higher than 50 bar. To reduce gas cross-permeation effects which can negatively impact the efficiency of the compressor, additional experiments have been made using Nau0001on membrane modified by addition of zirconyl phosphate. Finally, data related to the extraction of hydrogen from H_2-N_2 gas mixtures are also reported and discussed.
机译:质子交换膜(PEM)技术通常用于制造水电解槽,H_2 / O_2燃料电池和单元式再生燃料电池。它也可以用于开发电化学压缩机,以浓缩和/或加压气态氢。此处报告的工作目的是评估实验室规模(= 10 N升/小时)单电池压缩机的主要运行特性。已评估并讨论了各种操作参数(电流密度,电化学电池温度,氢气进料气中的水蒸气分压,阳极气体成分等)的作用。结果表明,在压缩机的阳极氧化的氢的相对湿度应在运行期间适应电流密度,以避免传质限制或电极溢流。在0.2 A cm〜(-2)的条件下,需要140 mV的电池电压,以从大气压到48 bar的一步压缩氢气,这相当于约2,000的能量消耗。 0.3 kW h / Nm〜3。实验已经进行到130 bar。建议将多个压缩机串联以达到高于50 bar的输出压力。为了减少可能对压缩机效率产生负面影响的气体渗透作用,已使用通过添加磷酸氧锆改性的Nau0001on膜进行了其他实验。最后,还报道和讨论了与从H_2-N_2气体混合物中提取氢气有关的数据。

著录项

  • 来源
    《International journal of hydrogen energy》 |2011年第6期|p.4148-4155|共8页
  • 作者单位

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

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

    Institut de Chimie Moléculaire et des Matériaux, UMR CNRS no 8182, Universite Paris Sud, bât 410, 91405 Orsay Cedex, France;

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

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

  • 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

    hydrogen; electrochemical compression; proton-exchange membrane;

    机译:氢;电化学压缩质子交换膜;
  • 入库时间 2022-08-18 00:28:52

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